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                            <title><![CDATA[ Latest from Tom's Hardware UK in Seasonic ]]></title>
                <link>https://www.tomshardware.com/uk/tag/seasonic</link>
        <description><![CDATA[ All the latest seasonic content from the Tom's Hardware  UK team ]]></description>
                                    <lastBuildDate>Tue, 07 Jul 2026 21:34:05 +0000</lastBuildDate>
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                                                            <title><![CDATA[ Unannounced Nvidia RTX 50 Super GPUs appear in Seasonic PSU calculator — unreleased graphics cards shown with 10-17% higher TGP over original models ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/gpus/unannounced-nvidia-rtx-50-super-gpus-appear-in-seasonic-psu-calculator-unreleased-graphics-cards-shown-with-10-17-percent-higher-tgp-over-original-models</link>
                                                                            <description>
                            <![CDATA[ Total graphics power figures for Nvidia's unanounced, unreleased RTX 50 Super-series graphics cards have appeared in Seasonic's PSU capacity calculator, revealing potentially higher TGPs of those products. ]]>
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                                                                        <pubDate>Tue, 07 Jul 2026 21:34:05 +0000</pubDate>                                                                                                                                <updated>Wed, 08 Jul 2026 11:57:46 +0000</updated>
                                                                                                                                            <category><![CDATA[GPUs]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Jeffrey Kampman ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/8JCjGs5yVZds2YdKmzjUDE.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Jeff Kampman has been playing PC games ever since he learned how to fire up freeware CDs from the DOS command line. He started building his own PCs in the mid-aughts and later turned that passion into a career, working as a news and guides writer, reviewer, and ultimately Editor-in-Chief at The Tech Report, where he dove deep on CPUs and GPUs (and more) in pursuit of the smoothest gaming experiences around. Jeff later took on roles at Asus and Intel as a technical marketer before joining Tom&#039;s Hardware. As Senior Analyst, Graphics, Jeff covers everything from integrated graphics processors to discrete graphics cards to the massive data center GPU installations powering our AI future. Jeff is also a hobbyist photographer, Twitch streamer, espresso enthusiast, and runner.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[A GeForce RTX 5090 graphics card]]></media:description>                                                            <media:text><![CDATA[A GeForce RTX 5090 graphics card]]></media:text>
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                                <p>The GeForce RTX 50-series desktop graphics lineup has remained unchanged for just over a year now (since the introduction of the RTX 5050), and none of the conversations we've had at major trade shows suggests that a mid-cycle Super refresh will occur any time soon. But there are still signs that such an update could still happen at some point, and the latest sign comes from Seasonic, <a href="https://seasonic.com/wattage-calculator/" target="_blank">which has listed an RTX 5080 Super, an RTX 5070 Ti Super, and RTX 5070 Ti Super in its PSU wattage calculator</a>. </p><div  class="fancy-box"><div class="fancy_box-title">Go deeper with TH Premium: GPUs</div><div class="fancy_box_body"><figure class="van-image-figure "  ><div class='image-full-width-wrapper'><div class='image-widthsetter' ><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="Wh9EZgD8NG9yUioNNgPB3d" name="ASUS RTX 5080 Noctua Edition - Continuing the legacy of acoustic excellence 6-26 screenshot" caption="" alt="Asus RTX 5080 Noctua Edition" src="https://cdn.mos.cms.futurecdn.net/Wh9EZgD8NG9yUioNNgPB3d.png" mos="" link="" align="" fullscreen="" width="" height="" attribution="" endorsement="" class="pinterest-pin-exclude"></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Noctua)</span></figcaption></figure><p class="fancy-box__body-text"><ul><li><a data-analytics-id="inline-link" href="https://www.tomshardware.com/pc-components/gpus/desktop-gpu-roadmap-nvidia-rubin-amd-udna-and-intel-xe3-celestial?utm_source=edit-links&utm_medium=boxout&utm_term=gpu" target="_blank">Desktop Roadmap</a></li><li><a data-analytics-id="inline-link" href="https://www.tomshardware.com/tech-industry/semiconductors/nvidia-enterprise-roadmap-rubin-rubin-ultra-feynman-and-silicon-photonics?utm_source=edit-links&utm_medium=boxout&utm_term=gpu" target="_blank">Enterprise Roadmap</a></li><li><a data-analytics-id="inline-link" href="https://www.tomshardware.com/pc-components/gpus/nvidias-vera-rubin-platform-in-depth-inside-nvidias-most-complex-ai-and-hpc-platform-to-date?utm_source=edit-links&utm_medium=boxout&utm_term=gpu" target="_blank">Rubin in-depth</a></li><li><a data-analytics-id="inline-link" href="https://www.tomshardware.com/pc-components/cooling/the-stout-owl-how-i-built-the-ultimate-noctua-g2-pc?utm_source=edit-links&utm_medium=boxout&utm_term=gpu" target="_blank">The Stout Owl: The ultimate Noctua G2 PC</a></li></ul></p></div></div><p>You can click through the calculator and assemble a hypothetical system with these unannounced products inside.  </p><p>To be useful, this calculator also provides board power numbers for these as-yet-unreleased cards, and that gives us another bit of juicy info. Given that no official specifications for these GPUs exist, it's impossible to say whether these figures are accurate. But it does allow us to speculate a bit on how they might stack up to existing products. </p><div ><table><caption>Unannounced RTX 50 Super-series TGPs</caption><thead><tr><th class="firstcol " ><p>Graphics Card</p></th><th  ><p>Total Graphics Power (W)</p></th><th  ><p>% Change</p></th></tr></thead><tbody><tr><td class="firstcol " ><p><strong>RTX 5070</strong></p></td><td  ><p>250</p></td><td  ><p>--</p></td></tr><tr><td class="firstcol " ><p><strong>RTX 5070 Super</strong></p></td><td  ><p>275*</p></td><td  ><p>10% </p></td></tr><tr><td class="firstcol " ><p><strong>RTX 5070 Ti</strong></p></td><td  ><p>300</p></td><td  ><p>--</p></td></tr><tr><td class="firstcol " ><p><strong>RTX 5070 Ti Super</strong></p></td><td  ><p>350*</p></td><td  ><p>17%</p></td></tr><tr><td class="firstcol " ><p><strong>RTX 5080</strong></p></td><td  ><p>380</p></td><td  ><p>--</p></td></tr><tr><td class="firstcol " ><p><strong>RTX 5080 Super</strong></p></td><td  ><p>415*</p></td><td  ><p>15% </p></td></tr></tbody></table></div><p><em>*As listed in Seasonic PSU calculator. Unconfirmed by Nvidia. </em></p><p>Seasonic gives this purported RTX 5080 Super a board power of 415W in its calculator, or 15% higher than <a href="https://www.tomshardware.com/pc-components/gpus/nvidia-geforce-rtx-5080-review" target="_blank">the existing RTX 5080's 360W envelope</a>. That makes sense, because the RTX 5080's GB203 GPU is already fully enabled, so any Super version of that card would have to lean on higher power limits and more aggressive clock speeds to see any baseline performance benefit. </p><p>That figure could also partially account for slightly higher power usage from 8 GB more GDDR7 memory on such a card. Past RTX 50 Super-series rumors have suggested that Nvidia will boost VRAM capacity on those products by moving to higher-density GDDR7 modules with 3GB of capacity each. GDDR7's power consumption as part of the overall board picture is relatively small, but more of it will still matter. </p><p>If Seasonic's figures are accurate, we should also expect a similarly sized TGP increase out of the RTX 5070 Ti Super, whose 350W rating <a href="https://www.tomshardware.com/pc-components/gpus/nvidia-geforce-rtx-5070-ti-review-asus" target="_blank">is 17% higher than that of the RTX 5070 Ti</a>. The RTX 5070 Super, meanwhile, gets only a 10% TGP bump <a href="https://www.tomshardware.com/pc-components/gpus/nvidia-geforce-rtx-5070-review-founders-edition" target="_blank">over the RTX 5070</a>, from 250W to 275W. Both of these cards rely on GPUs that are slightly cut down from their full available resources, so it's possible that Nvidia could boost their performance through a balance of enabling more Streaming Multiprocessors (SMs) in addition to boosting clocks through higher power envelopes. </p><p>Beware of extrapolating performance improvements directly from these percentages, though. Our own testing has shown that any real-world performance benefits from these power limit increases are likely to be smaller than those figures would suggest. </p><p><a href="https://www.tomshardware.com/pc-components/gpus/msi-geforce-rtx-5090-lightning-z-review" target="_blank">As our review of the MSI RTX 5090 Lightning Z showed</a>, the largest performance boosts from higher power limits are likely to be concentrated in ray-traced and path-traced games, whose computational intensity is significantly higher than pure raster titles and is more likely to run the GPU into its power limits. </p><p>In any event, we shouldn't expect to see these products any time soon. Nvidia has instead been focused on getting more out of existing Blackwell silicon with software improvements such as DLSS 4.5 upscaling and Multi-Frame Generation multipliers up to 6X. </p><p>These technologies enable higher output frame rates and image quality with lower input resolution than past DLSS technologies, and the boost to both performance and image quality from those technologies in tandem has certainly made existing Blackwell products more appealing than they were at launch.</p><p>But as monitor refresh rates continue to climb thanks to ongoing improvements to OLED and LCD panels, and next-generation HDMI 2.2 connectors looming over 2027, a hardware update of some kind that boosts baseline performance and potentially implements support for those standards seems practical at some point. Given these primarily consumer-focused improvements, an announcement at CES 2027 or Computex 2027 might make sense. As with any future product rumors, however, only time will truly tell. </p>
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                                                            <title><![CDATA[ Seasonic G12 GC-750 750W power supply review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/power-supplies/seasonic-g12-gc-750-750w-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ A premium-engineered power supply masquerading as a budget option, delivering exceptional electrical performance in a conservative package, though its high retail price and dated connectivity undermine its value proposition. ]]>
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                                                                        <pubDate>Mon, 10 Nov 2025 12:00:00 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:35:03 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ E. Fylladitakis ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/QDSA4uhfxo6kryXrFYUYom.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Dr. E. Fylladitakis has been passionate about PCs since the 8088 era, beginning his PC gaming journey with classics like Metal Mutant and Battle Chess. Not long after, he built his first PC, a 486, and has been an enthusiast ever since. In the early 2000’s, he delved deeply into overclocking Duron and Pentium 4 processors, liquid cooling, and phase-change cooling technologies. While he has an extensive and broad engineering education, Dr. Fylladitakis specializes in electrical and energy engineering, with numerous articles published in scientific journals, some contributing to novel cooling technologies and power electronics. He has been a hardware reviewer at AnandTech for nearly a decade. Outside of his professional pursuits, he enjoys immersing himself in a good philosophy book and unwinding through PC games.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Seasonic G12 GC-750 750W]]></media:description>                                                            <media:text><![CDATA[Seasonic G12 GC-750 750W]]></media:text>
                                <media:title type="plain"><![CDATA[Seasonic G12 GC-750 750W]]></media:title>
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                                <p>Seasonic has long occupied a unique position in the power supply industry as one of the few manufacturers that designs, engineers, and produces its own units rather than relying on third-party ODMs. This vertical integration allows the Taiwan-based company to maintain exceptional quality control while building decades of platform development expertise. The Seasonic name has become virtually synonymous with reliability in enthusiast circles, though this reputation commands premium pricing that can make their products difficult to recommend in intensely competitive market segments.</p><p>The G12 GC-750 enters this challenging landscape with an unusual strategy. Rather than developing an entirely new budget-oriented platform, Seasonic has repurposed a proven design that has underpinned several high-end products over the past five years. This approach promises exceptional engineering fundamentals typically reserved for premium units, theoretically allowing Seasonic to compete on quality rather than features. The unit adheres to the Intel ATX 12V v2.31 specification and achieves 80 Plus Gold certification, targeting the mainstream market while maintaining Seasonic's characteristic focus on long-term reliability. At its typical retail price exceeding $140, however, the G12 GC-750 faces formidable competition from both Seasonic's own product line and rivals offering modular designs with contemporary connectivity. This positioning creates an intriguing question: can exceptional internal quality overcome external compromises in today's feature-driven market? We take a close look at the G12 GC-750 to determine whether it belongs on our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best power supplies</a> list.</p><h3 class="article-body__section" id="section-specifications-and-design"><span>Specifications and Design</span></h3><div ><table><caption>Power Specifications (Rated @ 50 °C)</caption><tbody><tr><td class="firstcol " ><p><strong>RAIL</strong></p></td><td  ><p>+3.3V</p></td><td  ><p>+5V</p></td><td  ><p>+12V</p></td><td  ><p>+5Vsb</p></td><td  ><p>-12V</p></td></tr><tr><td class="firstcol " ><p><strong>MAX OUTPUT</strong></p></td><td  ><p>20A</p></td><td  ><p>20A</p></td><td  ><p>62A</p></td><td  ><p>3A</p></td><td  ><p>0.3A</p></td></tr><tr><td class="firstcol empty" ></td><td  ><p>100W</p></td><td  ><p>100W</p></td><td  ><p>744W</p></td><td  ><p>15W</p></td><td  ><p>3.6W</p></td></tr><tr><td class="firstcol " ><p><strong>TOTAL</strong></p></td><td  ><p>750W</p></td><td  ></td><td  ></td><td  ></td><td  ></td></tr><tr><td class="firstcol " ><p><strong>AC INPUT</strong></p></td><td  ><p>100 - 240 VAC, 50 - 60 Hz</p></td><td  ></td><td  ></td><td  ></td><td  ></td></tr><tr><td class="firstcol " ><p><strong>MSRP</strong></p></td><td  ><p>$100</p></td><td  ></td><td  ></td><td  ></td><td  ></td></tr></tbody></table></div><p><em>*100% capacity at 40 °C, 80% capacity at 50 °C</em></p><h2 id="in-the-box">In the Box</h2><p>The Seasonic G12 GC-750 arrives in packaging that reflects the unit's split personality between premium engineering and budget positioning. The cardboard box features a black and blue aesthetic theme, with the G12 GC series logo dominating the front panel while smaller product images occupy the sides. Inside, foam inserts and a nylon pouch that cradle the unit during transport provide additional protection.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="staKzocztUy4H3Tk4WJKHc" name="SEASONIC_G12_GC-750_GOLD_750W_01" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/staKzocztUy4H3Tk4WJKHc.jpg" mos="" align="middle" fullscreen="1" width="1920" height="1080" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/staKzocztUy4H3Tk4WJKHc.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The accessory bundle strips away any pretense of premium treatment. Seasonic includes only the bare essentials: mounting screws and a standard AC power cable. There are no cable management accessories, no documentation beyond basic specifications, and none of the extras that we would expect bundled with a premium unit.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="RmFryqm9dXz5ZmUT5qMeFc" name="SEASONIC_G12_GC-750_GOLD_750W_02" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/RmFryqm9dXz5ZmUT5qMeFc.jpg" mos="" align="middle" fullscreen="1" width="1920" height="1080" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/RmFryqm9dXz5ZmUT5qMeFc.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The cable situation warrants significant discussion, as it represents one of the G12 GC-750's most controversial design decisions. Every cable emerges hardwired from the unit's chassis, a design philosophy that has become increasingly rare in an era where even budget power supplies typically offer at least partial modularity. Seasonic also offers the G12 GM series, a semi-modular version of these units for a slightly higher price. Most significantly, the G12 GC-750 completely omits a 12V-2x6 connector, immediately limiting compatibility with graphics cards requiring one. Given the unit's 750W capacity and the proven platform's ability to handle high-end components, this absence appears to be a product age issue rather than a technical limitation. For builders planning to use current-generation high-end graphics cards or for users planning on frequent future upgrades, this represents a deal-breaking omission. Seasonic employs all-black cables throughout, with most featuring flat, ribbon-like construction devoid of exterior sleeving. The ATX cable receives special treatment with black nylon sleeving, while a substantial reusable cable strap keeps the bundle organized.</p><div ><table><caption>Seasonic G12 GC-750</caption><thead><tr><th class="firstcol " ><p>Connector type</p></th><th  ><p>Hardwired</p></th><th  ><p>Modular</p></th></tr></thead><tbody><tr><td class="firstcol " ><p>ATX 24 Pin</p></td><td  ><p>1</p></td><td  ><p>-</p></td></tr><tr><td class="firstcol " ><p>EPS 4+4 Pin</p></td><td  ><p>2</p></td><td  ><p>-</p></td></tr><tr><td class="firstcol " ><p>EPS 8 Pin</p></td><td  ><p>-</p></td><td  ><p>-</p></td></tr><tr><td class="firstcol " ><p>PCI-E 5.0</p></td><td  ><p>-</p></td><td  ><p>-</p></td></tr><tr><td class="firstcol " ><p>PCI-E 8 Pin</p></td><td  ><p>3</p></td><td  ><p>-</p></td></tr><tr><td class="firstcol " ><p>SATA</p></td><td  ><p>6</p></td><td  ><p>-</p></td></tr><tr><td class="firstcol " ><p>Molex</p></td><td  ><p>3</p></td><td  ><p>-</p></td></tr><tr><td class="firstcol " ><p>Floppy</p></td><td  ><p>-</p></td><td  ><p>-</p></td></tr></tbody></table></div><h2 id="external-appearance">External Appearance</h2><p>Seasonic's design philosophy more frequently than not emphasizes elegant simplicity over aggressive styling, and the G12 GC-750 exemplifies this approach beautifully. The unit receives a satin black chassis finish that demonstrates exceptional quality, resisting fingerprint marks and scratching. The chassis adheres precisely to the ATX standard's 140mm length specification, ensuring universal compatibility with any ATX-compliant case without clearance concerns.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="AYQ2Pf3K2amYRa2xvvowEc" name="SEASONIC_G12_GC-750_GOLD_750W_03" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/AYQ2Pf3K2amYRa2xvvowEc.jpg" mos="" align="middle" fullscreen="" width="1920" height="1080" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The front panel is home to just a typical AC cable receptacle and an on/off switch, complemented by subtle Seasonic branding. The rear panel, dictated by the fully hardwired cable design, presents a plain surface that is adorned with the series logo. The right side of the unit displays the electrical specifications and certifications sticker, providing essential information without cluttering the overall aesthetic.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="g2GaRH63PGoLkFGmB2NiEc" name="SEASONIC_G12_GC-750_GOLD_750W_05" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/g2GaRH63PGoLkFGmB2NiEc.jpg" mos="" align="middle" fullscreen="" width="1920" height="1080" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The top surface features a honeycomb-pattern fan finger guard that integrates seamlessly with the chassis. It is very dense and there is no logo standing out. This design provides effective airflow characteristics while maintaining the unit's clean, professional appearance. The overall presentation strikes a balance between functionality and understated elegance that should complement virtually any build without drawing attention to itself.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vopbKZb9jKFkbQm5C8dvFc.jpg" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uLyxATuyvdkH5fax3D82Fc.jpg" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="internal-design">Internal Design</h2><p>A Hong Hua HA1225H12F-Z 120mm fan equipped with a fluid dynamic bearing (FDB) engine is responsible for the cooling of this unit. This represents a significant step up from the basic sleeve-based alternatives typically found in budget-oriented units. FDB fans offer exceptional reliability and remarkably quiet operation, with premium pricing being virtually their own practical drawback. The maximum rotational speed of 2200 RPM seems very aggressive for a 750W unit.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="aj6LeJYy8obTVreGw5jSKc" name="SEASONIC_G12_GC-750_GOLD_750W_09" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/aj6LeJYy8obTVreGw5jSKc.jpg" mos="" align="middle" fullscreen="" width="1920" height="1080" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>As expected from Seasonic, the G12 GC-750 eschews third-party ODM platforms entirely. Seasonic designed and manufactured this unit in-house, drawing upon the company's extensive platform development experience. The use of a proven design that has powered numerous high-end products over the past five years immediately signals that the G12 GC-750 benefits from mature engineering.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="wXC6piwu7Wrg9XnUbPqSNc" name="SEASONIC_G12_GC-750_GOLD_750W_10" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/wXC6piwu7Wrg9XnUbPqSNc.jpg" mos="" align="middle" fullscreen="" width="1920" height="1080" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The input filtering stage implements a fairly strong configuration utilizing four Y capacitors, two X capacitors, and two filtering inductors. Two rectifying bridges are mounted on a substantial shared heatsink positioned immediately after the filtration stage. The APFC circuitry demonstrates Seasonic's willingness to invest in quality components despite the unit's budget positioning. Two Infineon 60R180P7S MOSFETs handle active power factor correction alongside a single STMicroelectronics diode, paired with an encased inductor and a premium Nippon Chemi-Con 470 μF capacitor.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="jcPkcVjhpkgGcKCfNrPRPc" name="SEASONIC_G12_GC-750_GOLD_750W_12" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/jcPkcVjhpkgGcKCfNrPRPc.jpg" mos="" align="middle" fullscreen="" width="1920" height="1080" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The primary inversion stage employs four Great Power GPT10N50AD MOSFETs arranged in a full-bridge topology configuration. This design choice merits discussion, as full-bridge topologies typically appear in higher-end units rather than budget-focused designs. Rather than utilizing two expensive high-performance MOSFETs in a half-bridge configuration, Seasonic opted for four mainstream components that collectively deliver comparable performance while potentially offering better thermal characteristics through load distribution. These MOSFETs mount on two dedicated heatsinks in pairs, ensuring adequate cooling even under sustained high-load conditions.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uAQsWE84JJR6Azz96CNTMc.jpg" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SHxrMHVB3vyuAwiKHms8Pc.jpg" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The secondary side implementation places synchronous rectification MOSFETs underneath the main PCB. Four Nexperia units handle the primary 12V rail generation through standard synchronous rectification assembly. Separate DC-to-DC circuits on a vertical daughterboard generate the 3.3V and 5V rails.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="SiDRTaYYPGuN8UWkxahRQc" name="SEASONIC_G12_GC-750_GOLD_750W_15" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/SiDRTaYYPGuN8UWkxahRQc.jpg" mos="" align="middle" fullscreen="" width="1920" height="1080" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The capacitor selection throughout the secondary side comes exclusively from Teapo, a highly reputable Taiwanese manufacturer whose products occupy a respected position in the component hierarchy. While Teapo capacitors may not command the same reverence as flagship Japanese alternatives from manufacturers like Nippon Chemi-Con or Rubycon, they represent excellent choices for mainstream retail products and far exceed the specifications of budget-tier alternatives. An interesting construction detail: rather than direct PCB soldering, the wires connect through some sort of crimped wire end terminals that are then soldered to the board, with a plastic assembly grouping them.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="mAtrueJ2ExrFm5u7hUV8Pc" name="SEASONIC_G12_GC-750_GOLD_750W_16" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/mAtrueJ2ExrFm5u7hUV8Pc.jpg" mos="" align="middle" fullscreen="" width="1920" height="1080" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h3 class="article-body__section" id="section-cold-test-results"><span>Cold Test Results</span></h3><h2 id="cold-test-results-250c-ambient">Cold Test Results (25°C Ambient)</h2><p>For the testing of PSUs, we are using high precision electronic loads with a maximum power draw of 2700 Watts, a Rigol DS5042M 40 MHz oscilloscope, an Extech 380803 power analyzer, two high precision UNI-T UT-325 digital thermometers, an Extech HD600 SPL meter, a self-designed hotbox and various other bits and parts.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/64rDni6W3GuBtkA7Drntab.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/srF6Zkn2oMLfQaSyr8oebb.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bVinvwfspfrZzWuJpiexdb.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GLoSPqMKqgnpxPRSHAVAeb.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NcyegPEpJfqdTbRMTPVZbb.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Under controlled cold testing conditions, the Seasonic G12 GC-750 delivered efficiency performance that satisfies its 80 Plus Gold certification requirements. At 115 VAC input voltage, the unit achieved an average nominal load efficiency of 88.8%, while 230 VAC input improved performance to 89.7%. These figures place the unit solidly within Gold certification parameters and represent respectable performance for a mainstream power supply. The efficiency curve exhibits typical behavior, peaking at approximately 50% load. Low load efficiency proves quite good for a unit in this market segment, suggesting that users running basic systems will benefit from acceptable power conversion characteristics even during idle or light usage scenarios.</p><p>The fan behavior during cold testing reveals Seasonic's conservative thermal management philosophy. The Hong Hua fan maintains remarkably low rotational speeds across most of the load spectrum, remaining virtually inaudible even at moderate loads. However, the fan profile exhibits a sudden jump in speed once load exceeds 500 watts, creating a noticeable acoustic step rather than a gradual ramp. While this behavior may prove disconcerting for users planning for a quiet build even when it becomes heavily loaded, it reflects Seasonic's prioritization of component longevity over absolute acoustic refinement. Internal temperatures remain very low throughout testing, suggesting that the fan curve provides substantial thermal headroom even when not strictly necessary.</p><h3 class="article-body__section" id="section-hot-test-results"><span>Hot Test Results</span></h3><h2 id="hot-test-results-450c-ambient">Hot Test Results (~45°C Ambient)</h2><p>Elevated ambient temperature testing reveals the G12 GC-750's remarkable resilience under thermal stress. Contrary to typical mainstream power supply behavior, high ambient temperatures exert almost no detrimental effect on electrical performance. Average nominal load efficiency measures 87.5% at 115 VAC and 88.4% at 230 VAC under hot conditions, a hardly meaningful performance loss. This stability represents exceptional engineering, particularly given that Seasonic rates this unit for full output at 40 °C ambient and 80% output at 50 °C ambient temperature.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pLZFMdN2wuauBpRRp7Rceb.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FA5g8PC7XDqhL4YCYKxibb.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9yqZDKDEiKSYQbt6UW6qbb.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DuVSVhbjKnPvUjKVQVYnbb.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B3Us4pVgd2n3PhxuAdoobb.png" alt="Seasonic G12 GC-750 750W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The fan profile under hot conditions reveals the conservative philosophy underlying this unit's thermal management strategy. The steps in the fan curve become considerably wider compared to cold testing, and the fan reaches maximum speed at just 80% load despite internal temperatures remaining quite low throughout testing. This behavior creates significant acoustic impact, as the fan becomes noticeably audible well before the unit approaches its thermal limits. It becomes apparent that the company has aggressively optimized the G12 GC-750 for long-term reliability rather than acoustic comfort. By maintaining substantial thermal margins even under adverse conditions, Seasonic ensures that component temperatures remain conservative, maximizing lifespan at the expense of noise generation. Users in warm climates or poorly ventilated cases will experience increased noise levels during demanding applications, but they can take comfort knowing their power supply operates well within safe thermal parameters.</p><h3 class="article-body__section" id="section-psu-quality-and-bottom-line"><span>PSU Quality and Bottom Line</span></h3><h2 id="power-supply-quality">Power Supply Quality</h2><p>The Seasonic G12 GC-750's electrical performance validates its premium platform heritage, delivering metrics that approach or match far more expensive units. Voltage ripple filtering proves exceptional across all rails, with maximum measurements of just 20 mV on the 12V rail and 14 mV on both the 5V and 3.3V rails. These figures place the G12 GC-750 in elite company, comparable to flagship power supplies costing significantly more. Voltage regulation also achieves near-perfection across all rails. The primary 12V rail maintains an outstanding 0.3% regulation from 20% to 100% load, while the 5V and 3.3V rails achieve 0.6% and 0.5% regulation respectively. These extraordinarily tight specifications exceed typical requirements by substantial margins and ensure that connected components receive stable, clean power regardless of load conditions.</p><p>During our thorough assessment, we evaluate the essential protection features of every power supply unit we review, including Over Current Protection (OCP), Over Voltage Protection (OVP), Over Power Protection (OPP), and Short Circuit Protection (SCP). All protection mechanisms were activated and functioned correctly during testing.</p><p>Over Current Protection (OCP) triggers at sensible thresholds: 132% on both the 3.3V and 12V rails, and 130% on the 5V rail. These settings provide adequate headroom for transient load spikes while protecting against sustained overcurrent conditions that could damage components or the power supply itself. Over Power Protection (OPP) activates at 130% under hot conditions. The unit handles very short temporary power bursts approaching 1000 watts. This transient power handling capability proves valuable for modern systems with components that exhibit brief power spikes, such as graphics cards during load transitions.</p><div ><table><caption>Main Output</caption><thead><tr><th class="firstcol " ><p>Load (Watts)</p></th><th  ><p>150.84 W</p></th><th  ></th><th  ><p>376.59 W</p></th><th  ></th><th  ><p>564.07 W</p></th><th  ></th><th  ><p>751.420W</p></th><th  ></th></tr></thead><tbody><tr><td class="firstcol " ><p><strong>Load (Percent)</strong></p></td><td  ><p>20.11%</p></td><td  ></td><td  ><p>50.21%</p></td><td  ></td><td  ><p>75.12%</p></td><td  ></td><td  ><p>100.19%</p></td><td  ></td></tr><tr><td class="firstcol empty" ></td><td  ><p><strong>Amperes</strong></p></td><td  ><p><strong>Volts</strong></p></td><td  ><p><strong>Amperes</strong></p></td><td  ><p><strong>Volts</strong></p></td><td  ><p><strong>Amperes</strong></p></td><td  ><p><strong>Volts</strong></p></td><td  ><p><strong>Amperes</strong></p></td><td  ><p><strong>Volts</strong></p></td></tr><tr><td class="firstcol " ><p><strong>3.3 V</strong></p></td><td  ><p>1.81</p></td><td  ><p>3.35</p></td><td  ><p>4.53</p></td><td  ><p>3.34</p></td><td  ><p>6.8</p></td><td  ><p>3.34</p></td><td  ><p>9.07</p></td><td  ><p>3.33</p></td></tr><tr><td class="firstcol " ><p><strong>5 V</strong></p></td><td  ><p>1.81</p></td><td  ><p>5.09</p></td><td  ><p>4.53</p></td><td  ><p>5.08</p></td><td  ><p>6.8</p></td><td  ><p>5.07</p></td><td  ><p>9.07</p></td><td  ><p>5.06</p></td></tr><tr><td class="firstcol " ><p><strong>12 V</strong></p></td><td  ><p>11.25</p></td><td  ><p>12.05</p></td><td  ><p>28.11</p></td><td  ><p>12.04</p></td><td  ><p>42.17</p></td><td  ><p>12.01</p></td><td  ><p>56.23</p></td><td  ><p>12.01</p></td></tr></tbody></table></div><div ><table><thead><tr><th class="firstcol " ><p>Line</p></th><th  ><p>Regulation  (20% to 100% load)</p></th><th  ><p>Voltage Ripple (mV)</p></th><th  ></th><th  ></th><th  ></th><th  ></th><th  ></th></tr></thead><tbody><tr><td class="firstcol empty" ></td><td  ></td><td  ><p><strong>20% Load</strong></p></td><td  ><p><strong>50% Load</strong></p></td><td  ><p><strong>75% Load</strong></p></td><td  ><p><strong>100% Load</strong></p></td><td  ><p><strong>CL1  12V</strong></p></td><td  ><p><strong>CL2  3.3V + 5V</strong></p></td></tr><tr><td class="firstcol " ><p><strong>3.3V</strong></p></td><td  ><p>0.5%</p></td><td  ><p>6</p></td><td  ><p>12</p></td><td  ><p>14</p></td><td  ><p>10</p></td><td  ><p>10</p></td><td  ><p>16</p></td></tr><tr><td class="firstcol " ><p><strong>5V</strong></p></td><td  ><p>0.6%</p></td><td  ><p>8</p></td><td  ><p>12</p></td><td  ><p>14</p></td><td  ><p>8</p></td><td  ><p>12</p></td><td  ><p>16</p></td></tr><tr><td class="firstcol " ><p><strong>12V</strong></p></td><td  ><p>0.3%</p></td><td  ><p>10</p></td><td  ><p>6</p></td><td  ><p>20</p></td><td  ><p>18</p></td><td  ><p>12</p></td><td  ><p>14</p></td></tr></tbody></table></div><h2 id="bottom-line">Bottom Line</h2><p>The Seasonic G12 GC-750 exists as a study in contradictions - a power supply where exceptional internal engineering confronts pragmatic market realities. From a purely technical perspective, this unit performs magnificently. The electrical characteristics rival units costing twice as much, the component selection demonstrates Seasonic's commitment to quality even in supposedly budget-focused products, and the proven platform heritage promises long-term reliability that cheaper alternatives cannot match. This truly is a wolf in sheep's clothing, with top-tier performance hidden beneath a conservative exterior and budget-segment positioning.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="GQqygB9JB7YVsnmkMDhRHc" name="SEASONIC_G12_GC-750_GOLD_750W_08" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/GQqygB9JB7YVsnmkMDhRHc.jpg" mos="" align="middle" fullscreen="1" width="1920" height="1080" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/GQqygB9JB7YVsnmkMDhRHc.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>However, power supplies compete in markets where technical excellence represents only one dimension of value. The completely non-modular cable design, while potentially defensible as a cost-reduction measure that could enable better component investment, becomes difficult to justify when the retail price regularly exceeds $140. At this price point, competitors offer modular connectivity as a standard feature, and Seasonic's own product line includes semi-modular alternatives like the G12 GM series. The non-modular design might appeal to builders who prioritize internal quality over cable management convenience and aesthetics but the pricing undermines this value proposition significantly. The absence of a 12V-2x6 connector represents a more fundamental limitation, immediately restricting compatibility with newer graphics cards. Given the unit's 750W capacity and demonstrated ability to handle power bursts approaching 1000W, this omission appears to stem from platform age rather than technical limitations. For builders planning system longevity, this missing connector could necessitate premature power supply replacement as graphics card requirements evolve.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="nyg6nqF9eCCC8EPHS5JLQc" name="SEASONIC_G12_GC-750_GOLD_750W_11" alt="Seasonic G12 GC-750 750W" src="https://cdn.mos.cms.futurecdn.net/nyg6nqF9eCCC8EPHS5JLQc.jpg" mos="" align="middle" fullscreen="1" width="1920" height="1080" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/nyg6nqF9eCCC8EPHS5JLQc.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Yet these criticisms must be contextualized by market realities: the G12 GC-750 frequently appears on sale for less than $80 or €70, transforming its value proposition entirely. At these promotional prices, the technical excellence and component quality become genuine advantages rather than footnotes to an overpriced product. A builder acquiring this unit on sale receives electrical performance and reliability typically reserved for units costing $150 or more, with the only compromises being cable management convenience and modern connectivity that may not matter for current-generation systems. For builders assembling systems intended for multi-year service lives, particularly those using graphics cards that do not require PCIe 5.0 power connectors, the G12 GC-750 on sale represents an outstanding choice. The exceptional power quality ensures stability and longevity for sensitive components, the conservative thermal management promises longevity in challenging environments, and the top-tier electrical performance eliminates power delivery as a potential system bottleneck. The non-modular cables become a minor inconvenience rather than a deal-breaker in this context.</p><p>However, at full retail price, the G12 GC-750 struggles to justify its premium. Builders paying $140+ would be better served by competitors offering modular designs, contemporary connectivity, and longer warranties even if internal electrical performance proves slightly inferior. The technical excellence, while genuinely impressive, cannot overcome market realities when similar money purchases more well-rounded products. The Seasonic G12 GC-750 ultimately succeeds brilliantly in its intended role as a sale-priced powerhouse for reliability-focused builders, while struggling at MSRP against feature-rich alternatives. For those fortunate enough to acquire it at promotional pricing, this represents one of the best values in the PSU market, proof that Seasonic's engineering excellence can create compelling products even when compromised by positioning decisions. For those paying full retail: shop around.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p>
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                                                            <title><![CDATA[ Nvidia RTX 5070 Ti Super and RTX 5070 Super TDP leaked — long-rumored RTX 50 Super series GPUs appear in power supply calculator ]]></title>
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                            <![CDATA[ Nvidia's rumored RTX 50 Super mid-gen refresh has no concrete launch window, but there have already been plenty of leaks. Rumors suggest a CES 2026 announcement, and we now have what appears to be our first substantial confirmation of RTX 50 Super GPUs, courtesy of Seasonic's PSU calculator. ]]>
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                                                                        <pubDate>Sat, 27 Sep 2025 18:19:32 +0000</pubDate>                                                                                                                                                                                                                                <category><![CDATA[GPUs]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                <author><![CDATA[ editors@tomshardware.com (Hassam Nasir) ]]></author>                    <dc:creator><![CDATA[ Hassam Nasir ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/SxxNFHt95eGK37mKPhJpdZ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Hassam is a lifelong PC gamer and tech enthusiast with over five years of experience in PC hardware journalism. His passion began in childhood when he rescued a discarded Pentium 4 processor, straightening its pins with a kitchen knife to revive a Dell Dimension 2400 at the age of seven. Since then, he has followed the advancements in technology, witnessing the evolution of hardware from the era of AMD&#039;s Opteron architecture to Intel&#039;s Smithfield (Pentium D), and the rise of Voodoo GPUs alongside Nvidia&#039;s FX GPUs taking the market by storm to the latest innovations today. As a seasoned writer, Hassam loves to get into the nitty-gritty details of hardware, providing insights on everything from CPUs, Motherboards and RAM to GPUs. When he’s not writing, you’ll find him building custom water-cooled PCs for himself and his friends, attending drag racing events, or collecting niche fragrances.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Nvidia RTX 50 Super series]]></media:description>                                                            <media:text><![CDATA[Nvidia RTX 50 Super series]]></media:text>
                                <media:title type="plain"><![CDATA[Nvidia RTX 50 Super series]]></media:title>
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                                <p>Nvidia's mid-gen refresh for Blackwell is currently best rumored to launch next year at CES 2026. The RTX 50 Super series was recently caught up in the rumor mill, as some <a href="https://www.tomshardware.com/pc-components/gpus/nvidia-may-have-ended-rtx-50-founders-edition-gpu-production-report-suggests-move-is-in-preparation-for-super-refresh">current-gen FE cards were delisted</a> from the chipmaker's website, which was later confirmed to <a href="https://www.tomshardware.com/pc-components/gpus/nvidia-confirms-its-recently-delisted-rtx-50-series-founders-edition-cards-are-not-discontinued-limited-edition-products-were-removed-because-they-were-out-of-stock?utm_source=chatgpt.com">be a stock issue</a>. Now, the informal chatter is set to reignite as Seasonic — a leading PSU manufacturer — has just listed a few RTX 50 Super models on its website, <a href="https://seasonic.com/wattage-calculator/">as part of its PSU calculator</a>.</p><p>Various PC hardware companies have power supply calculators on their websites these days to not only help customers estimate the wattage they'll be pulling, but also to pick out an appropriate model subsequently. Hence, in these PSU calculators, one of the most crucial questions is that of the GPU: which graphics card would be in your system? For Seasonic, that list of potential nominees includes the unreleased and unannounced RTX 50 Super cards, at least two of which.</p><p>Seasonic doesn't list the specs of a GPU beyond its TDP. Still, the RTX 50 Super series is rumored to <a href="https://www.tomshardware.com/pc-components/gpus/nvidia-may-release-the-rtx-5080-and-5070-super-with-boosted-memory-configurations-according-to-leaker?utm_source=chatgpt.com">feature 3 GB memory modules</a>, effectively increasing the VRAM capacity by 50% while keeping the same number of chips onboard. That means the RTX 5070 Super would potentially have 18 GB (up from 12 GB on the 5070) of memory, and the 5070 Ti Super might rock 24 GB (up from 18 GB on the 5070 Ti), which would make them notable upgrades in what is otherwise a similar spec sheet. </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2642px;"><p class="vanilla-image-block" style="padding-top:76.61%;"><img id="Ak8ytiry4UeHzB7MnunZcj" name="Screenshot 2025-09-27 at 10.16.17 PM" alt="RTX 5070 Super and 5070 Ti Super showing up on Seasonic's PSU Calculator" src="https://cdn.mos.cms.futurecdn.net/Ak8ytiry4UeHzB7MnunZcj.png" mos="" align="middle" fullscreen="" width="2642" height="2024" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Future)</span></figcaption></figure><p>Seasonic states that the 5070 Super has a 275W TDP, which aligns with the leaked specs, as the additional 25W for the 6GB VRAM makes sense. The same goes for the 5070 Ti Super, which has a 350W TDP listed on the PSU calculator, a 50W increase over the standard 5070 Ti. The RTX 5080 Super is conspicuously missing from the website, but <a href="https://www.tomshardware.com/pc-components/gpus/nvidias-rtx-50-super-lineup-leak-hints-at-increased-vram-of-up-to-24gb-and-415w-tgp?utm_source=chatgpt.com" target="_blank">a 415W TDP has been leaked for it before</a>. These numbers align with previous industry rumors, so Seasonic's not necessarily leaking anything new, but rather corroborating existing information.</p><h2 id="nvidia-geforce-rtx-50-super-series">Nvidia GeForce RTX 50 Super Series* </h2><div ><table><thead><tr><th class="firstcol " ><p>Graphics Card</p></th><th  ><p>GPU Die</p></th><th  ><p>GPU Cores (CUDA)</p></th><th  ><p>Memory (Capacity, bus)</p></th><th  ><p>TDP</p></th><th  ><p>Price</p></th></tr></thead><tbody><tr><td class="firstcol " ><p>RTX 5090</p></td><td  ><p>GB202-300</p></td><td  ><p>21,760</p></td><td  ><p>32 GB, 512-bit</p></td><td  ><p>575 W</p></td><td  ><p>$2,000</p></td></tr><tr><td class="firstcol " ><p><strong>RTX 5080 Super</strong></p></td><td  ><p><strong>GB203-450</strong></p></td><td  ><p><strong>10,752</strong></p></td><td  ><p><strong>24 GB, 256-bit</strong></p></td><td  ><p><strong>~415 W </strong></p></td><td  ><p><strong>TBD</strong></p></td></tr><tr><td class="firstcol " ><p>RTX 5080</p></td><td  ><p>GB203-400</p></td><td  ><p>10,752</p></td><td  ><p>16 GB, 256-bit</p></td><td  ><p>360 W</p></td><td  ><p>$1,000</p></td></tr><tr><td class="firstcol " ><p><strong>RTX 5070 Ti Super</strong></p></td><td  ><p><strong>GB203-350</strong></p></td><td  ><p><strong>8,960</strong></p></td><td  ><p><strong>24 GB, 256-bit</strong></p></td><td  ><p><strong>350 W</strong></p></td><td  ><p><strong>TBD</strong></p></td></tr><tr><td class="firstcol " ><p>RTX 5070 Ti</p></td><td  ><p>GB203-200</p></td><td  ><p>8,960</p></td><td  ><p>16 GB, 256-bit</p></td><td  ><p>300 W</p></td><td  ><p>$750</p></td></tr><tr><td class="firstcol " ><p><strong>RTX 5070 Super</strong></p></td><td  ><p><strong>GB205-400</strong></p></td><td  ><p><strong>6,400</strong></p></td><td  ><p><strong>18 GB, 192-bit</strong></p></td><td  ><p><strong>275 W</strong></p></td><td  ><p><strong>TBD</strong></p></td></tr><tr><td class="firstcol " ><p>RTX 5070</p></td><td  ><p>GB205-300-A1</p></td><td  ><p>6,144</p></td><td  ><p>12 GB, 192-bit</p></td><td  ><p>250 W</p></td><td  ><p>$550</p></td></tr><tr><td class="firstcol " ><p>RTX 5060 Ti</p></td><td  ><p>GB205-300</p></td><td  ><p>4,608</p></td><td  ><p>8 / 16 GB, 128-bit</p></td><td  ><p>180 W</p></td><td  ><p>$380 / $430</p></td></tr><tr><td class="firstcol " ><p>RTX 5060</p></td><td  ><p>GB206-250</p></td><td  ><p>3,840</p></td><td  ><p>8 GB, 128-bit</p></td><td  ><p>145 W</p></td><td  ><p>$300</p></td></tr></tbody></table></div>
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                                                            <title><![CDATA[ 3,000W PSUs are taking over Computex — Seasonic and Superflower debut behemoth power supplies ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/power-supplies/3-000w-psus-are-taking-over-computex-seasonic-and-superflower-are-making-massive-power-supplies</link>
                                                                            <description>
                            <![CDATA[ Seasonic and Super Flower showcase 3,200W and 3,300W power supplies with four 12V-2×6. ]]>
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                                                                        <pubDate>Thu, 22 May 2025 16:41:04 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 12:53:54 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                <author><![CDATA[ ashilov@gmail.com (Anton Shilov) ]]></author>                    <dc:creator><![CDATA[ Anton Shilov ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/uMZ5kNphxA2Ut6whdLaSQV.png ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Anton Shilov has been in the PC industry since 1990s playing games, building PCs, and writing stories about pretty much everything that relates to PCs, Macs, smartphones, tablets, and even fab equipment. Over his career, he has worked at a variety of high-ranking websites, including AnandTech, EE Times, TechRadar, X-bit labs, and now Tom&#039;s Hardware. When Anton is not reading or writing about something high-tech, he is probably watching a good movie, playing a video game, or spending time with his family.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[A massive PSU]]></media:description>                                                            <media:text><![CDATA[A massive PSU]]></media:text>
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                                <p>As hardware gets more powerful and power hungry, makers of power supplies have to keep up to offer relevant PSUs to interested parties, and to that end, we see even more and more powerful PSUs at every <a href="http://www.tomshardware.com/tag/computex">Computex</a>. If last year we thought that 2,800W was crazy, then this year we see that several manufacturers have managed to build 3,000W+ power supplies.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2560px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="3e6V92C4dPFDZ4c5aHJC6M" name="IMG_5761.jpg" alt="A massive PSU" src="https://cdn.mos.cms.futurecdn.net/3e6V92C4dPFDZ4c5aHJC6M.jpg" mos="" align="middle" fullscreen="1" width="2560" height="1440" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/3e6V92C4dPFDZ4c5aHJC6M.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Seasonic introduced the Prime PX-2300, a 3,200W 80+ Platinum ATX 3.1 model, at the show, beating <a href="https://www.tomshardware.com/pc-components/power-supplies/asus-introduces-3000-watt-psu-enough-capacity-to-power-4-rtx-5090s">Asus’s 3,000W PSU that the company showcased earlier this week</a>. The new unit features four 12V-2×6 connectors for high-performance gaming or AI/HPC GPUs, and to that end, it powered a server running four Nvidia datacenter-grade graphics cards and an AMD datacenter processor during the demonstration.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Nj92434gMQdpNTYgoFcXZN.jpg" alt="A massive PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xzTnNApKgpqTek3xHkTK6a.jpg" alt="Specifications of Seasonic's 3200W PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Such a setup is common for datacenter environments, though as this is an ATX-standard PSU, it can perfectly fit into a workstation, or even into a gaming desktop, though 3.2kW of power is an overkill for the vast majority of machines that are out there.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:4032px;"><p class="vanilla-image-block" style="padding-top:75.00%;"><img id="dw9cnPScLeoCtrEgN4ASBT" name="IMG_6024.jpg" alt="A massive PSU" src="https://cdn.mos.cms.futurecdn.net/dw9cnPScLeoCtrEgN4ASBT.jpg" mos="" align="middle" fullscreen="" width="4032" height="3024" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>But as if 3200W is not enough, Super Flower stole Seasonic’s thunder with a 3,300W PSU. In fact, Super Flower again displayed the most powerful PSU at Computex — the Leadex SF-3300F14HP. This 3300W monster is also fully ATX 3.1 compliant, offers five power rails, and is capable of supplying power to high-end processors and four GPUs using four 12V-2×6 connectors. The company expects to start its mass production late this year, so expect its wide availability in late 2025 – early 2026. As for pricing, the company’s current-generation flagship 2800W PSU costs some $899. Since the new 3300W does not really replace the previous-gen, but rather enhances the product lineup, expect it to exceed the $1,000 mark.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/M6zxP3kAJGeQJiioExSiiQ.jpg" alt="A massive PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dw9cnPScLeoCtrEgN4ASBT.jpg" alt="A massive PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LggyeFdsWHvTju7yboPNxU.jpg" alt="A massive PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure>
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                                                            <title><![CDATA[ Seasonic’s next-generation Prime PSUs to will try to stop connectors from melting ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/power-supplies/seasonics-next-generation-prime-psus-to-will-try-to-stop-connectors-from-melting</link>
                                                                            <description>
                            <![CDATA[ Seasonic is equipping its next-generation Prime power supplies with sensors, firmware, and external monitoring to prevent overheating and melting of 12VHPWR and 12V-2×6 connectors. ]]>
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                                                                        <pubDate>Wed, 21 May 2025 18:45:44 +0000</pubDate>                                                                                                                                                                                                                                <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                <author><![CDATA[ ashilov@gmail.com (Anton Shilov) ]]></author>                    <dc:creator><![CDATA[ Anton Shilov ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/uMZ5kNphxA2Ut6whdLaSQV.png ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Anton Shilov has been in the PC industry since 1990s playing games, building PCs, and writing stories about pretty much everything that relates to PCs, Macs, smartphones, tablets, and even fab equipment. Over his career, he has worked at a variety of high-ranking websites, including AnandTech, EE Times, TechRadar, X-bit labs, and now Tom&#039;s Hardware. When Anton is not reading or writing about something high-tech, he is probably watching a good movie, playing a video game, or spending time with his family.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Seasonic&#039;s nexy-gen PSUs]]></media:description>                                                            <media:text><![CDATA[Seasonic&#039;s nexy-gen PSUs]]></media:text>
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                                <p>Seasonic plans to add a feature to its next-generation Prime power supplies that promises to solve the problem of overheating and melting 12VHPWR and 12V-2×6 power connectors once and for all. While the company promises to solve the problem, it does not resolve its source. At <a href="http://www.tomshardware.com/tags/computex">Computex</a>, the company demonstrated a prototype. </p><p>A set of sensors, a microcontroller, and firmware that Seasonic plans to incorporate into its upcoming Prime power supplies will all work together, according to the company. </p><p>Although the production quality of cables, connectors, and the way people plug in their graphics cards have consequences, one of the key sources of the problem lies in the fact that graphics cards can create unbalanced loads on power rails in different circumstances, which can cause voltage increases and/or current increases on the power supply side. This causes wires in the power cable to overheat, eventually melting them and damaging graphics cards.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2560px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="DRrEprJAnohBZtRZRVhaPQ" name="IMG_5739.jpg" alt="Seasonic's nexy-gen PSUs" src="https://cdn.mos.cms.futurecdn.net/DRrEprJAnohBZtRZRVhaPQ.jpg" mos="" align="middle" fullscreen="1" width="2560" height="1440" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/DRrEprJAnohBZtRZRVhaPQ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Seasonic proposes what is essentially two-factor protection against such a catastrophe. First up, contemporary premium power supplies can monitor their voltage output and current, and can alert PC owners of a malfunction. Seasonic proposes to use a special external device to tell users about problems, as well as enable end-users to monitor their 12V-2×6 connectors while using their graphics cards.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:4032px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="jBWRGB46jdDgVsBSC324dV" name="IMG_5744.jpg" alt="Seasonic's nexy-gen PSUs" src="https://cdn.mos.cms.futurecdn.net/jBWRGB46jdDgVsBSC324dV.jpg" mos="" align="middle" fullscreen="" width="4032" height="2268" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure>
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                                                            <title><![CDATA[ Nvidia RTX 5090D experiment bakes the label off a 750W SFX power supply ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/gpus/nvidia-rtx-5090d-experiment-bakes-the-label-off-a-750w-sfx-power-supply</link>
                                                                            <description>
                            <![CDATA[ Chinese TechTubers tested an RTX 5090D Mini ITX PC system with an inappropriately weedy PSU - baking the label ]]>
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                                                                        <pubDate>Mon, 27 Jan 2025 16:10:24 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 12:43:17 +0000</updated>
                                                                                                                                            <category><![CDATA[GPUs]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Mark Tyson ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/56vqMYLDaKRHPhHZgbADFR.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Mark&#039;s enthusiasm for computers dampened at an early age by the rubber-keyed Sinclair Spectrum 48K and feelings of Commodore 64 envy. However, in the mid-80s, hope in a digital future was rekindled by the purchase of an Atari 520 STe. Since that time Mark has used a multitude of computers for fun and professional endeavors. He often owned both Macs and PCs but went cold on the former after OS9 was killed off, and warmed to the latter with the introduction of Windows XP.&lt;br&gt;
&lt;br&gt;
Early work years were spent in artwork and reprographics but in the late noughties, Mark started to blog about computers, Taiwanese food culture, and guitar design. This activity led to a full-time position writing about breaking PC tech news for HEXUS, for the best part of a decade. When HEXUS was abruptly closed, Mark helped with the foundation of Club386, before finding a new home at Tom&#039;s Hardware.&lt;br&gt;
&lt;br&gt;
When not wearing through the keycap legends on his PC keyboards, Mark can be found wandering the computer malls of Taiwan&#039;s neon-lit conurbations and enjoying local and international cuisine.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Chinese tech video channel Eixa Studio ]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[Testing an RTX 5090D system with an inappropriate PSU]]></media:description>                                                            <media:text><![CDATA[Testing an RTX 5090D system with an inappropriate PSU]]></media:text>
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                                <p>Chinese tech video channel <a href="https://www.bilibili.com/video/BV1iHf9YeETw">Eixa Studio</a> tested one of Nvidia&apos;s powerful new GeForce RTX 5090D graphics cards this weekend (h/t <a href="https://x.com/unikoshardware/status/1883700026607902739">Uniko&apos;s Hardware</a>). What makes this video stand out from the pack, though, is that the channel investigated whether the "monster grade card with DLSS 4" would be feasible to shoehorn into a Mini ITX PC build, but they used a decidedly underspec&apos;d power supply for their experiment. While this ambitious PC DIY project was a success – the system ran without restarts or crashes - one of the little SFX PSUs that was tested got so hot its barcode label started to disintegrate.</p><p>Eixa introduced the video with an overview of the <a href="https://www.tomshardware.com/pc-components/gpus/nvidia-cuts-down-the-china-specific-rtx-5090d-ai-tops-performance-by-almost-23-percent-to-meet-us-export-guidelines">GeForce RTX 5090D</a>. The Bilibili channel had access to a substantial looking (360 x 149 x 71mm) Colorful iGame GeForce RTX 5090D Vulcan OC model. This sports quad fans (one round the back) and a pivoting detachable display. A 1,000W PSU is recommended, according to Colorful&apos;s product pages, which seems reasonable for a card rated at 600W, but enthusiasts would be advised to pick something with a little more headroom.</p><p>The Chinese TechTuber wanted this 360mm card to fit into a prototype 15.8-liter Mini ITX chassis they had received. This case&apos;s max compatibility figures stated that GPUs up to 362mm in length could be accommodated. Great, that would leave 2mm of &apos;breathing space.&apos;</p><h2 id="now-comes-the-power-crunch">Now comes the power crunch</h2><p>Moving onto power, Eixa noted that the case was supposed to be compatible with PSUs up to 140mm long. On PC Part Picker, we see it is quite easy to grab an 850W PSU for about $100, which fits this constraint. However, high-efficiency PSUs of >1,000W can easily double this expected price, and a desirable compact SFX unit like the <a href="https://www.tomshardware.com/pc-components/power-supplies/silverstone-extreme-1200r-platinum-sfx-l-psu-review">SilverStone Extreme 1200R Platinum SFX-L</a> we reviewed in November is currently on offer at $330 on Amazon. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fxodgzbsx4bwzKmCJTMmFU.jpg" alt="Testing an RTX 5090D system with an inappropriate PSU" /><figcaption><small role="credit">Chinese tech video channel Eixa Studio </small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kvwynkMpaK4KAgrvRAk2KU.jpg" alt="Testing an RTX 5090D system with an inappropriate PSU" /><figcaption><small role="credit">Chinese tech video channel Eixa Studio </small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EXemh77Jy8iphSWCYvfuJU.jpg" alt="Testing an RTX 5090D system with an inappropriate PSU" /><figcaption><small role="credit">Chinese tech video channel Eixa Studio </small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NrJtPAqBAAAi4rrcKDN8EU.jpg" alt="Testing an RTX 5090D system with an inappropriate PSU" /><figcaption><small role="credit">Chinese tech video channel Eixa Studio </small></figcaption></figure></figure><p>Eixa chose three PSUs to test out in this Mini ITX build project. The first was the headlining Seasonic Focus SFX 750W model. However, they are clear that they "wouldn&apos;t recommend anyone use this wattage" (machine translation). During a 20-minute Furmark run with the 750W PSU, Eixa seemed pleased that the system experienced "no black screen or reboots." Thanks to the tests, including the view of a plug-in power meter, we can see that the little Seasonic could deliver a sustained 1,000W+. However, as our main image shows, the barcode label on the PSU began to bake and disintegrate, even after this relatively short test run.</p><p>After the Seasonic Focus SFX 750W power test, Eixa said that it isn&apos;t recommended to use an underpowered PSU like this to shoulder such a power burden in your PC at home. They recommended at least a 1,000W PSU for smooth running (as per Colorful&apos;s specs). This should also ensure better temperatures and avoid power limiting with these choice components. The TechTubers also tested a more appropriately selected Asus ROG Loki SFX-L 1,000W Platinum PSU and a Cooler Master SFX V1300 Platinum, which handled the ITX PC system&apos;s power demands much better.</p><p>Eixa also used an <a href="https://www.tomshardware.com/pc-components/cpus/amd-ryzen-7-9800x3d-review-devastating-gaming-performance/">AMD Ryzen 9800X3D</a> processor (120W) for this compact yet powerful build. This chip&apos;s gaming performance was demonstrably devastating to the competition during our lab investigations, so it&apos;s the best match for the 5090D. An Asus ROG Strix X870-i Gaming WiFi ITX motherboard was the other major component chosen for this build. This board was launched at Gamescom last year, but we haven&apos;t reviewed it (yet).</p><p>This experiment serves as yet another reminder that you should always use a properly equipped power supply. That said, the Eixa channel seems to like pushing PSUs to their limits. They note in this video that the last build to use this ITX chassis mixed an RTX 4090 and a <a href="https://www.tomshardware.com/reviews/intel-core-i9-12900k-and-core-i5-12600k-review-retaking-the-gaming-crown">Core i9-12900K</a>, but the chosen 1,000W Silverstone SFX PSU endured just 20 minutes before it died.</p>
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                                                            <title><![CDATA[ Seasonic Focus GX ATX 3 1000W Gold PSU Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/power-supplies/seasonic-focus-gx-atx-3-1000w-gold-psu-review</link>
                                                                            <description>
                            <![CDATA[ The Seasonic Focus GX ATX 3 offers a perfect blend of quality, balanced performance, and quiet operation. ]]>
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                                                                        <pubDate>Sun, 29 Dec 2024 14:00:46 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:34:21 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ E. Fylladitakis ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/QDSA4uhfxo6kryXrFYUYom.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Dr. E. Fylladitakis has been passionate about PCs since the 8088 era, beginning his PC gaming journey with classics like Metal Mutant and Battle Chess. Not long after, he built his first PC, a 486, and has been an enthusiast ever since. In the early 2000’s, he delved deeply into overclocking Duron and Pentium 4 processors, liquid cooling, and phase-change cooling technologies. While he has an extensive and broad engineering education, Dr. Fylladitakis specializes in electrical and energy engineering, with numerous articles published in scientific journals, some contributing to novel cooling technologies and power electronics. He has been a hardware reviewer at AnandTech for nearly a decade. Outside of his professional pursuits, he enjoys immersing himself in a good philosophy book and unwinding through PC games.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Tom&#039;s Hardware]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[Seasonic Focus GX ATX 3 1000W Gold]]></media:description>                                                            <media:text><![CDATA[Seasonic Focus GX ATX 3 1000W Gold]]></media:text>
                                <media:title type="plain"><![CDATA[Seasonic Focus GX ATX 3 1000W Gold]]></media:title>
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                                <p>Seasonic, a veteran in power supply technology, is renowned for its commitment to high-quality PC hardware, particularly in the power supply unit (PSU) sector. Seasonic’s long-standing reputation is built on delivering reliable and efficient products tailored for a wide array of users, from high-demanding professionals to gaming enthusiasts. Known for designing and manufacturing its own platforms, Seasonic sets itself apart by focusing on component quality and performance, making the brand a staple for those who prioritize durability and stability in their systems.</p><p>In this review, we examine the Focus GX ATX 3, currently $189 in the U.S. and the latest in Seasonic’s widely-recognized Focus GX series. This 4th revision brings the new “OptiSink” design that offers improved thermal performance and enhanced efficiency, along with ATX 3.1 and PCIe 5.1 compliance. The unit that we tested is rated at 1000W @ 50°C and has an 80Plus Gold certification, appealing to users looking for a highly reliable, balanced offering with substantial power and the efficiency to compete with the <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><u>best power supplies</u></a> on the market.  </p><h3 class="article-body__section" id="section-specifications-and-design"><span>Specifications and Design</span></h3><div ><table><caption>Seasonic Focus GX ATX 3 1000W Power specifications ( Rated @ 50 °C )</caption><tbody><tr><td class="firstcol " ><strong>RAIL</strong></td><td  >+3.3V</td><td  >+5V</td><td  >+12V</td><td  >+5Vsb</td><td  >-12V</td></tr><tr><td class="firstcol " ><strong>MAX OUTPUT</strong></td><td  >25A</td><td  >25A</td><td  >83A</td><td  >3A</td><td  >0.3A</td></tr><tr><td class="firstcol empty" ></td><td  >125W</td><td  ></td><td  >996W</td><td  >15W</td><td  >3.6W</td></tr><tr><td class="firstcol " ><strong>TOTAL</strong></td><td  >1000W</td><td  ></td><td  ></td><td  ></td><td  ></td></tr><tr><td class="firstcol " ><strong>AC INPUT</strong></td><td  >100 - 240 VAC, 50 - 60 Hz</td><td  ></td><td  ></td><td  ></td><td  ></td></tr><tr><td class="firstcol " ><strong>PRICE</strong></td><td  >$190</td><td  ></td><td  ></td><td  ></td><td  ></td></tr></tbody></table></div><h2 id="in-the-box-2">In the Box</h2><p>The Seasonic Focus GX ATX 3 comes in robust packaging, featuring the black-and-gold aesthetic typically used by the company for the Focus series. The PSU itself is securely encased in a nylon pouch and protected by dense foam inserts for safe transit.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1408px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="aPb7Gbe4AAyUyq5WoqFY6P" name="image1.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" src="https://cdn.mos.cms.futurecdn.net/aPb7Gbe4AAyUyq5WoqFY6P.jpg" mos="" align="middle" fullscreen="1" width="1408" height="792" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/aPb7Gbe4AAyUyq5WoqFY6P.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The company provides a comprehensive bundle of essentials, including mounting screws, an AC power cable, a jump-starting connector for testing, cable ties, and three quality cable straps, catering well to users who value a more complete installation kit.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1408px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="UuYDuhFxyHB85cU6EgmnuM" name="image3.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" src="https://cdn.mos.cms.futurecdn.net/UuYDuhFxyHB85cU6EgmnuM.jpg" mos="" align="middle" fullscreen="1" width="1408" height="792" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/UuYDuhFxyHB85cU6EgmnuM.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The Focus GX ATX 3 includes all-black, individually sleeved cables, designed for flexibility and ease of management. This PSU comes with one 600W 12+4 pin PCIe connector, along with three 6+2 pin PCI Express connectors – a fairly conservative setup for the rated output of the unit.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1408px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="jMPUhGVvLvedPkCEEKq4pM" name="image2.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" src="https://cdn.mos.cms.futurecdn.net/jMPUhGVvLvedPkCEEKq4pM.jpg" mos="" align="middle" fullscreen="1" width="1408" height="792" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/jMPUhGVvLvedPkCEEKq4pM.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><div ><table><caption>FSP Hydro G Pro ATX 3.0 1000W</caption><thead><tr><th class="firstcol " >Connector type</th><th  >Hardwired</th><th  >Modular</th></tr></thead><tbody><tr><td class="firstcol " >ATX 24 Pin</td><td  >-</td><td  >1</td></tr><tr><td class="firstcol " >EPS 4+4 Pin</td><td  >-</td><td  >2</td></tr><tr><td class="firstcol " >EPS 8 Pin</td><td  >-</td><td  >-</td></tr><tr><td class="firstcol " >PCI-E 5.0</td><td  >-</td><td  >1</td></tr><tr><td class="firstcol " >PCI-E 8 Pin</td><td  >-</td><td  >3</td></tr><tr><td class="firstcol " >SATA</td><td  >-</td><td  >8</td></tr><tr><td class="firstcol " >Molex</td><td  >-</td><td  >3</td></tr><tr><td class="firstcol " >Floppy</td><td  >-</td><td  >-</td></tr></tbody></table></div><h2 id="external-appearance-2">External Appearance</h2><p> The external appearance of the Seasonic Focus GX ATX 3 has a premium, understated look. The PSU is encased in a satin black chassis with a smooth, high-quality finish. Seasonic added decorative embossments on the chassis&apos;s sides, which provide a slight texture and break up the otherwise minimalist aesthetic. Both sides and the front of the PSU display the Seasonic and Focus GX branding. </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1408px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="YpaDYPFumLmX84NbsDTz6N" name="image5.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" src="https://cdn.mos.cms.futurecdn.net/YpaDYPFumLmX84NbsDTz6N.jpg" mos="" align="middle" fullscreen="1" width="1408" height="792" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/YpaDYPFumLmX84NbsDTz6N.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The unit adheres to the ATX standard length of 140mm, making it compact enough to fit into any ATX-compliant case and leaving space for optimal airflow in tighter builds. Although 140 mm long units are typically limited to 120 mm fans, Seasonic tweaked the chassis to force a 135 mm fan to fit. The fan grille design is integrated directly into the chassis, forming a unique visual pattern.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1408px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="dhdb8bhLpHoffq46ytTb2N" name="image4.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" src="https://cdn.mos.cms.futurecdn.net/dhdb8bhLpHoffq46ytTb2N.jpg" mos="" align="middle" fullscreen="1" width="1408" height="792" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/dhdb8bhLpHoffq46ytTb2N.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>On the rear panel, we find the standard AC input socket, an on/off power switch, and a hybrid fan mode button. Turning off the hybrid fan mode will force the fan to start regardless of the load but it does not override the thermal control of the fan, meaning that it would still be rotating at minimal speeds when the load is low. The front panel is where the modular cable connectors are located, with a subtle legend to guide users during installation.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BRpoEUYmqsXustw6PNN2EN.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vf7uUBY3EFyMX3MTAHkLAN.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="internal-design-2">Internal Design</h2><p>The Seasonic Focus GX ATX 3 is equipped with a 135mm Hong Hua HA13525H12F-X fan featuring a fluid dynamic bearing (FDB), known for balancing durability and low-noise performance. By default, the fan is only engaging when necessary, thanks to its zero-RPM mode, which aids in reducing both operational noise and component wear over time. </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1408px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="vBtFZRLHTesm5BvdRdY2UN" name="image9.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" src="https://cdn.mos.cms.futurecdn.net/vBtFZRLHTesm5BvdRdY2UN.jpg" mos="" align="middle" fullscreen="1" width="1408" height="792" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/vBtFZRLHTesm5BvdRdY2UN.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>As a fully in-house platform designed by Seasonic, the Focus GX ATX 3 series integrates Seasonic’s proprietary OptiSink design. OptiSink places the majority of heat-generating components on a dedicated daughterboard before the main transformer, reducing the space needed for heatsinks. This approach aids in heat dissipation and reduces the PSU&apos;s overall footprint.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1408px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="TmTEVSVavECZR6eTy6fkLN" name="image8.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" src="https://cdn.mos.cms.futurecdn.net/TmTEVSVavECZR6eTy6fkLN.jpg" mos="" align="middle" fullscreen="1" width="1408" height="792" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/TmTEVSVavECZR6eTy6fkLN.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The input filtering stage includes four Y capacitors, two X capacitors, and two inductors, a typical and effective filtering scheme. The Active Power Factor Correction (APFC) stage features two Alpha & Omega B125A60L MOSFETs and one high-quality Nippon Chemi-Con 820 μF capacitor.  The active components of APFC circuitry are located on the OptiSink PCB. The primary inversion stage is also located on the OptiSink PCB, comprising four Alpha & Omega B190A60C MOSFETs that form a standard full-bridge LLC setup. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/EePGdW2HwsC8ZSzo9b3SiN.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GRXMAH2PBtbJpJRVUVfWZN.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>On the secondary side, six Nexperia MOSFETs, located right after the main transformer in between two simple but tall heatsinks, generate the primary 12V line. DC-to-DC circuitry on a daughterboard at the edge of the unit produces the 3.3V and 5V lines. The secondary capacitors are all sourced from reputable Japanese manufacturers like Nichicon, Rubycon, and Nippon Chemi-Con.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kZuNwGtoBYr4u6GPb6r4eN.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VRjuXbXKcB529G2x3jGnnN.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h3 class="article-body__section" id="section-cold-test-results"><span>Cold Test Results</span></h3><h2 id="cold-test-results-250c-ambient-2">Cold Test Results (25°C Ambient)</h2><p>For the testing of PSUs, we are using high precision electronic loads with a maximum power draw of 2700 Watts, a Rigol DS5042M 40 MHz oscilloscope, an Extech 380803 power analyzer, two high precision UNI-T UT-325 digital thermometers, an Extech HD600 SPL meter, a self-designed hotbox and various other bits and parts.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/eao6SYtTmX3LJQt6RjEWra.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YyAtGLrqxvKt65Zh67LG2b.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ADCoUg5Rj99WzTUuLQZUwa.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hMFANhkS8knrwwkGsXvF6b.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WgzuBBeH8SeXAPtYdCCwMb.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>During cold testing, the Seasonic Focus GX ATX 3 consistently meets the 80Plus Gold certification requirements across different input voltages. With a 115 VAC input, it achieves an average nominal load efficiency of 89.8%, which increases to 92.1% at 230 VAC. Efficiency peaks around 40% load, a little sooner than typically expected, and the unit maintains reliable efficiency throughout the nominal load range (10-100%). Efficiency at very low loads is also acceptable, though it could be improved further.</p><p>The fan in the Focus GX ATX 3 starts operating once the load exceeds 450 watts, running at a low speed up to approximately 700 watts. The fan becomes audible as the load exceeds 700 watts but never reaches its maximum speed, not even if the unit is left at maximum load for a prolonged period of time. The unit’s internal temperatures are relatively low throughout room temperature testing.</p><h3 class="article-body__section" id="section-hot-test-results"><span>Hot Test Results</span></h3><h2 id="hot-test-results-450c-ambient-2">Hot Test Results (~45°C Ambient)</h2><p>During hot testing, the Seasonic Focus GX ATX 3 experiences a measurable but unsurprising decrease in efficiency. The unit averages 88.9% efficiency at 115 VAC and 91.2% at 230 VAC, about 0.9% lower than the 89.8% and 92.1% observed during cold testing. This decrease is expected in elevated temperatures and remains within acceptable performance limits, with the unit showing no indication of thermal stress.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BwEarsS9PNHJuLPv2jGEBb.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/a6rJPYghYjtfib2hCzxMSb.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rVDCWVAPoK9HcWGwsHjdEb.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VwXC9iks2GiHqYMYKYSDJb.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pTrNToRFujMFtCNSVxMAWb.png" alt="Seasonic Focus GX ATX 3 1000W Gold PSU" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>In higher ambient temperatures, the fan in the Focus GX ATX 3 activates at a slightly lower load threshold than during cold testing, beginning operation as soon as the load exceeds approximately 250 watts. The fan speed then ramps up progressively with the load, though it again never reaches maximum speed, not even under full load. While the fan becomes audible at higher loads, it remains within a tolerable noise range for the most part of the load range. </p><p>Internal temperatures are very well-regulated given the high power output of the unit, staying within safe operating limits and not getting anywhere near the thresholds for over-temperature protection (OTP), indicating an exceptional balance between thermal and acoustics performance.</p><h3 class="article-body__section" id="section-psu-quality-and-bottom-line"><span>PSU Quality and Bottom Line</span></h3><h2 id="power-supply-quality-2">Power Supply Quality</h2><p>The Seasonic Focus GX ATX 3 demonstrates strong electrical stability and power quality within its category. Voltage regulation is precise, with the 12V rail holding at 0.4%, the 5V rail at 0.6%, and the 3.3V rail at 0.5%. Ripple suppression is well-executed, with maximum ripple levels of 34 mV on the 12V rail, 20 mV on the 5V rail, and 20 mV on the 3.3V rail. Filtering has room for improvement but is by all means excellent for a PSU of this tier.</p><p>During our thorough assessment, we evaluate the essential protection features of every power supply unit we review, including Over Current Protection (OCP), Over Voltage Protection (OVP), Over Power Protection (OPP), and Short Circuit Protection (SCP). All protection mechanisms were activated and functioned correctly during testing.</p><p>The Focus GX&apos;s OCP is set to engage at 136% for the 3.3V rail, 140% for the 5V rail, and 130% for the 12V rail, with an OPP setting of 132%, all of which are reasonable trigger points for an ATX 3.1-compliant unit.</p><div ><table><caption>Main Output</caption><tbody><tr><td class="firstcol " ><strong>Load (Watts)</strong></td><td  >201.91 W</td><td  ></td><td  >504.56 W</td><td  ></td><td  >754.85 W</td><td  ></td><td  >1005.72 W</td><td  ></td></tr><tr><td class="firstcol " ><strong>Load (Percent)</strong></td><td  >20.19%</td><td  ></td><td  >50.46%</td><td  ></td><td  >75.48%</td><td  ></td><td  >100.57%</td><td  ></td></tr><tr><td class="firstcol " ><strong></strong></td><td  ><strong>Amperes</strong></td><td  ><strong>Volts</strong></td><td  ><strong>Amperes</strong></td><td  ><strong>Volts</strong></td><td  ><strong>Amperes</strong></td><td  ><strong>Volts</strong></td><td  ><strong>Amperes</strong></td><td  ><strong>Volts</strong></td></tr><tr><td class="firstcol " ><strong>3.3 V</strong></td><td  >$2</td><td  >$3</td><td  >$6</td><td  >$3</td><td  >$9</td><td  >3.4</td><td  >11.37</td><td  >3.4</td></tr><tr><td class="firstcol " ><strong>5 V</strong></td><td  >$2</td><td  >$5</td><td  >$6</td><td  >$5</td><td  >$9</td><td  >5.08</td><td  >11.37</td><td  >5.07</td></tr><tr><td class="firstcol " ><strong>12 V</strong></td><td  >15.09</td><td  >12.1</td><td  >37.74</td><td  >12.09</td><td  >56.6</td><td  >12.06</td><td  >75.47</td><td  >12.05</td></tr></tbody></table></div><div ><table><tbody><tr><td class="firstcol " ><strong>Line</strong></td><td  ><strong>Regulation(20% to 100% load)</strong></td><td  ><strong>Voltage Ripple (mV)</strong></td><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td></tr><tr><td class="firstcol empty" ></td><td  ></td><td  ><strong>20% Load</strong></td><td  ><strong>50% Load</strong></td><td  ><strong>75% Load</strong></td><td  ><strong>100% Load</strong></td><td  ><strong>CL112V</strong></td><td  ><strong>CL23.3V + 5V</strong></td></tr><tr><td class="firstcol " ><strong>3.3V</strong></td><td  >0.50%</td><td  >16</td><td  >12</td><td  >16</td><td  >20</td><td  >18</td><td  >14</td></tr><tr><td class="firstcol " ><strong>5V</strong></td><td  >0.55%</td><td  >18</td><td  >12</td><td  >18</td><td  >20</td><td  >18</td><td  >16</td></tr><tr><td class="firstcol " ><strong>12V</strong></td><td  >0.40%</td><td  >20</td><td  >18</td><td  >24</td><td  >34</td><td  >30</td><td  >20</td></tr></tbody></table></div><h2 id="bottom-line-2">Bottom Line</h2><p>The Seasonic Focus GX ATX 3 presents itself as a high-quality, well-rounded PSU that combines good overall performance, long-term reliability, and modern features, making it a compelling choice for users with high demands. </p><p>With its 1000W output and 80Plus Gold certification, this unit delivers solid efficiency, consistently meeting the requirements across a wide range of input voltages. Its compliance with ATX 3.1 and PCIe 5.1 standards ensures compatibility with current top-tier and next-gen equipment, making it future-proof for demanding setups.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1408px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="HnXhaj6i5KQ3aUYEzsgJtN" name="image14.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" src="https://cdn.mos.cms.futurecdn.net/HnXhaj6i5KQ3aUYEzsgJtN.jpg" mos="" align="middle" fullscreen="1" width="1408" height="792" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/HnXhaj6i5KQ3aUYEzsgJtN.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The standout aspect of the Focus GX ATX 3 undoubtedly is its exceptional build quality. It is built with premium components all-around and sports an immaculate assembly job. The highlight is the OptiSink design that helps with heat dissipation and reduces the overall size of the unit. According to Seasonic, the OptiSink design also minimizes manufacturing defects, ensuring better quality. </p><p>Performance-wise, the Focus GX ATX 3 does not set any records but shines through its balance. It achieves great average efficiency figures that rival Platinum-certified units, with a relatively small drop in efficiency during hot testing that implies exceptional resilience towards adverse operating conditions. The fan remains either off or relatively quiet across most of the load range, only becoming noticeable under high loads, all while internal temperatures are very well-managed. Voltage regulation is precise and ripple suppression is effective, ensuring clean and stable power.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1408px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="TmTEVSVavECZR6eTy6fkLN" name="image8.jpg" alt="Seasonic Focus GX ATX 3 1000W Gold" src="https://cdn.mos.cms.futurecdn.net/TmTEVSVavECZR6eTy6fkLN.jpg" mos="" align="middle" fullscreen="1" width="1408" height="792" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/TmTEVSVavECZR6eTy6fkLN.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Perhaps the only shortcoming of the Focus GX ATX 3 is the current retail price. Retailing at $189, the Focus GX ATX 3 is priced on the higher end of the spectrum. While it may be considered expensive for some, the cost is justified by its top-quality components, reliability, and balanced performance. For users prioritizing long-term durability, especially in high-demand systems, the Focus GX ATX 3 currently is a good investment.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p>
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                                                            <title><![CDATA[ Noctua shares a fan grill design that drops noise levels — 3D print your own 120mm fan grill like the one on the Seasonic x Noctua 1,600W power supply ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/case-fans/noctua-shares-a-fan-grill-design-that-drops-noise-levels-3d-print-your-own-120mm-fan-grill-like-the-one-on-the-seasonic-x-noctua-1-600w-power-supply</link>
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                            <![CDATA[ Noctua is giving away the 3D file for its ultra-quiet fan grill. ]]>
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                                                                        <pubDate>Wed, 04 Dec 2024 18:56:46 +0000</pubDate>                                                                                                                                <updated>Wed, 09 Apr 2025 13:17:43 +0000</updated>
                                                                                                                                            <category><![CDATA[Case Fans]]></category>
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                                                                                                <author><![CDATA[ editors@tomshardware.com (Jowi Morales) ]]></author>                    <dc:creator><![CDATA[ Jowi Morales ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/gM7E2WSDg2wgCFoaDPz9yK.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Jowi Morales is a writer and journalist covering the tech beat since 2021. However, he’s been interested in technology far earlier than that. He started discovering desktop computers when his father brought home a Windows 95 PC, but his first real experience working under the hood of the PC was when the old computer’s hard drive was filled to the brim in the year 2000. He deleted the Windows folder to attempt to rectify the situation, which led to his dad buying a new desktop PC. Since then, he learned a lot more about computers, and he’s always been the go-to tech expert for his family and friends.&lt;/p&gt;&lt;p&gt;Jowi primarily uses a Windows workstation and an Android phone, but he also bought into the Apple ecosystem with the 6th-gen iPad, iPhone 14 Pro Max, and the M1 MacBook Air. Today, Jowi covers hardware and software from Redmond and Cupertino, while also looking at the tech industry in general.&lt;/p&gt;&lt;p&gt;Aside from covering technology, Jowi is an avid photographer and writes about automobiles, aviation, and tanks. You can find his bylines at &lt;a href=&quot;https://www.makeuseof.com/author/jowi-morales/&quot;&gt;MakeUseOf&lt;/a&gt;, &lt;a href=&quot;https://www.slashgear.com/author/jowimorales/&quot;&gt;SlashGear&lt;/a&gt;, and, of course, &lt;a href=&quot;https://www.tomshardware.com/author/jowi-morales&quot;&gt;Tom’s Hardware&lt;/a&gt;.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Noctua fan grill]]></media:description>                                                            <media:text><![CDATA[Noctua fan grill]]></media:text>
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                                <p>Noctua developed a custom 120mm fan grill for the Seasonic Prime TX-1600 Noctua Edition built for silence, and now anyone can get it for free. The company posted on its <a href="https://x.com/Noctua_at/status/1864298785620242615">X (formerly Twitter)</a> account that it’s sharing the high-efficiency fan grill on <a href="https://x.com/Noctua_at/status/1864298785620242615">Printables</a>, allowing anyone with a 3D printer or laser cutter to make one of their own.</p><p>According to Noctua, the fan grill “ensures smooth pressure gradients as the fan blades pass the radial struts,” which results in higher airflow and a noise reduction of about 2dB(A) versus the stock power supply grill found on the Seasonic power supply.</p><p>The high-efficiency Noctua 120mm fan grill, as the company calls it on the 3D model database, is licensed under Creative Commons 4.0 (CC BY-NC-SA 4.0). That means you can remix it and share it anywhere you like if you attribute its original creator, do it for non-commercial purposes, and your creation should have the same license as the original (i.e., CC BY-NC-SA 4.0).</p><p>This isn’t the first thing that Noctua and Seasonic have for free in recent weeks. The two collaborated on a <a href="https://www.tomshardware.com/pc-components/cooling/seasonic-x-noctua-turn-to-keychain-merch-after-their-successful-1-600w-power-supply-collab">keychain merch giveaway</a> that’s up for grabs for users who commented on the Seasonic Prime TX-1600 Noctua Edition post on the Chinese video-sharing site BiliBili. These events seem to celebrate the <a href="https://www.tomshardware.com/pc-components/power-supplies/seasonics-ultra-quiet-1-600w-flagship-psu-with-noctua-cooling-hits-retail-at-usd569">successful launch of the PSU</a>, an improvement of Seasonic’s flagship power supply. This ultra-quiet version retains the exact excellent specifications and performance but reduces the noise generated by replacing its cooling fan with Noctua’s 120mm NF-A12x25 fan and this unique fan grill.</p><p>Seasonic and Noctua might also have no problems releasing this fan grill for free, especially with the price that this high-performance PSU demands. The vanilla Seasonic Prime TX-1600 has a <a href="https://www.amazon.com/dp/B0C571LRNB">retail price of $539.99 on Amazon</a>, while you have to pay a $30 premium to get the Noctua Edition. Nevertheless, you’re getting a good power supply for the price, with the TX-1600 being one of our recommended options in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best PSUs of 2024</a> list. So, if you need that much power and have grown tired of the cacophony of multiple noisy fans, this ultra-quiet PSU might just be exactly what you need for a quieter workspace.</p><p>Noctua has also shared several other 3D designs you can download, like the NV-AA1-12 Airflow Amplifier, which will turn your 120mm Noctua fan into <a href="https://www.tomshardware.com/pc-components/cooling/noctua-unveils-its-home-series-products-dollar100-nv-fs1-desk-fan-is-the-star-attraction">the $100 NV-FS1 desk fa</a> (without the stand), the NA-FD1 Fan Duct, designed to improve the performance of Noctua fans with SFF cases that has a significant gap, and the NA-FMA1 120mm/140mm Adaptor for Noctua 120mm fans. Aside from its excellent fan designs (and controversial color choices), this tendency to share some of its designs for free is one of the reasons why Noctua is loved by its fans love Noctua.</p><p> </p>
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                                                            <title><![CDATA[ Seasonic x Noctua turn to keychain merch after their successful 1,600W power supply collab ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/cooling/seasonic-x-noctua-turn-to-keychain-merch-after-their-successful-1-600w-power-supply-collab</link>
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                            <![CDATA[ To promote the new Seasonic x Noctua 1,600W PSU, these PC tech partners have turned to the keychain merch business. ]]>
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                                                                        <pubDate>Tue, 03 Dec 2024 17:07:14 +0000</pubDate>                                                                                                                                <updated>Wed, 09 Apr 2025 13:17:42 +0000</updated>
                                                                                                                                            <category><![CDATA[Cooling]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Mark Tyson ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/56vqMYLDaKRHPhHZgbADFR.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Mark&#039;s enthusiasm for computers dampened at an early age by the rubber-keyed Sinclair Spectrum 48K and feelings of Commodore 64 envy. However, in the mid-80s, hope in a digital future was rekindled by the purchase of an Atari 520 STe. Since that time Mark has used a multitude of computers for fun and professional endeavors. He often owned both Macs and PCs but went cold on the former after OS9 was killed off, and warmed to the latter with the introduction of Windows XP.&lt;br&gt;
&lt;br&gt;
Early work years were spent in artwork and reprographics but in the late noughties, Mark started to blog about computers, Taiwanese food culture, and guitar design. This activity led to a full-time position writing about breaking PC tech news for HEXUS, for the best part of a decade. When HEXUS was abruptly closed, Mark helped with the foundation of Club386, before finding a new home at Tom&#039;s Hardware.&lt;br&gt;
&lt;br&gt;
When not wearing through the keycap legends on his PC keyboards, Mark can be found wandering the computer malls of Taiwan&#039;s neon-lit conurbations and enjoying local and international cuisine.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Seasonic x Noctua ]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[Seasonic x Noctua keychain trinkets]]></media:description>                                                            <media:text><![CDATA[Seasonic x Noctua keychain trinkets]]></media:text>
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                                <p>After the big launch of Seasonic's ultra-quiet <a href="https://www.tomshardware.com/pc-components/power-supplies/seasonics-ultra-quiet-1-600w-flagship-psu-with-noctua-cooling-hits-retail-at-usd569">1,600W flagship PSU</a> with Noctua cooling last week, the tech twosome is following up with some less obvious new products. Seasonic's Bilibili (Chinese) social media channel <a href="https://www.bilibili.com/opus/1006550926145617925" target="_blank">announced</a> a new collaborative venture into the promotional keychain business today. The renowned PC power supply maker teased followers that keychains modeled on a Noctua Fan and Seasonic Power Dog would be available to a few customers to complete various social media tasks.</p><p>This week, eager participants will get a chance to grab Noctua keychains by commenting on a Seasonic Prime TX-1600 Noctua Edition <a href="https://www.bilibili.com/opus/1006267174850920470">post</a>. The post seems pretty popular with PC aficionados and tech trinket collectors, attracting 170 comments at the time of writing. Many offered up jokes about the silence of the fan-based keychain.</p><p>The Noctua keychain delivers on the firm's unmistakable branding, with a tiny cute fan hewn from the firm's signature coffee and cream plastics. We wonder if it also works as a fidget spinner. Noctua China said it will also give away these keychains starting next week.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UC4RpSx7uGvdGAywavhFWC.jpg" alt="Seasonic x Noctua keychain trinkets" /><figcaption><small role="credit">Seasonic x Noctua </small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bMFd34dbtt9S86v676uLRC.jpg" alt="Seasonic x Noctua keychain trinkets" /><figcaption><small role="credit">Seasonic x Noctua </small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5M47Nzeuc6BMFJ73xC6LRC.jpg" alt="Seasonic x Noctua keychain trinkets" /><figcaption><small role="credit">Seasonic x Noctua </small></figcaption></figure></figure><p>It is doubtful we will see similar promo trinket giveaways in the West. However, for those of you feeling pangs of Noctua keychain envy right now, we note that the cooling specialist sells eminently pocketable 40mm fans on Amazon, like the <a href="https://www.amazon.com/Noctua-Cooling-Blades-Bearing-NF-A4x10/dp/B009NQLT0M">Noctua NF-A4x10 FLX Premium Quiet Fan</a> at $13.95. Attaching your keychain hardware to one of the fan's corners would be a cinch. Moreover, it would be a working spare that you always carry around with your keys.</p><p>Seasonic's Power Dog is also very cute. We only see this Seasonic branded trinket's front and one side in the official social media posts. Its bulk suggests it might be more than an inert lump of stylized plastic. However, more digging through Chinese social media revealed that the dog doesn't feature any ports (so it's not a charger or power bank), and its tail ends with a plastic PCIe 5.0 connector replica. Seasonic also recently sold a mid-autumn festival <a href="https://www.bilibili.com/video/BV1xj4Ue6ERf/?spm_id_from=333.999.0.0&vd_source=ab6f7cce77d930be2096916d61222bc9">Power Dog Lego model</a> as a promotional gift.</p>
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                                                            <title><![CDATA[ Seasonic's ultra-quiet 1,600W flagship PSU with Noctua cooling hits retail at $569 ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/power-supplies/seasonics-ultra-quiet-1-600w-flagship-psu-with-noctua-cooling-hits-retail-at-usd569</link>
                                                                            <description>
                            <![CDATA[ The Seasonic Prime TX-1600 Noctua Edition power supply comes with a Noctua-themed brown styling with optimized silent cooling performance. ]]>
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                                                                        <pubDate>Mon, 25 Nov 2024 14:19:00 +0000</pubDate>                                                                                                                                                                                                                                <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                <author><![CDATA[ editors@tomshardware.com (Kunal Khullar) ]]></author>                    <dc:creator><![CDATA[ Kunal Khullar ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/NDK3ae3zDxAx2BJnMXxBJV.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Kunal Khullar is a contributor at Tom’s Hardware with extensive writing experience in computing. With a deep-seated passion for technology, Kunal has dedicated years to mastering the intricacies of computer hardware components and staying at the forefront of the latest software developments. His journey in the tech world began with hands-on experience in assembling and troubleshooting PCs and laptops as a kid in the 90s, a skill he has meticulously honed over the years. He has worked for various publications covering a range of topics including smartphones, laptops, audio devices, and PC hardware. Currently, he is engrossed with everything happening in the world of computing with a growing obsession for unique PC cases and RGB cooling fans. Through his articles Kunal strives to demystify complex concepts for a broad audience. Kunal is also a casual gamer as he loves to squad up with his friends in &lt;em&gt;Apex Legends&lt;/em&gt;, and claims to have a fairly good taste in music especially when it comes to heavy metal.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Noctua]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[The Seasonic Prime TX-1600 Noctua Edition power supply unit standing vertically in front of a brown background.]]></media:description>                                                            <media:text><![CDATA[The Seasonic Prime TX-1600 Noctua Edition power supply unit standing vertically in front of a brown background.]]></media:text>
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                                <p>At Computex earlier this year, we witnessed an exciting collaboration between cooling specialists Noctua and renowned power supply manufacturer Seasonic. The result was the <a href="https://www.tomshardware.com/pc-components/power-supplies/seasonics-latest-big-and-silent-1600w-psu-gets-a-quieter-120mm-noctua-fan-upgrade">Prime TX-1600 Noctua Edition</a>, a flagship PSU designed to deliver unparalleled performance alongside optimized silent operation. True to their promise, this one-of-a-kind desktop PC power supply is now available for purchase.</p><p>As a quick refresher, the Prime TX-1600 Noctua Edition is a customized version of the original <a href="https://www.tomshardware.com/reviews/seasonic-prime-tx-1600-power-supply-review">Prime TX-1600</a> with Noctua's cooling optimizations. It replaces the original 135mm Hong Hua fan with Noctua’s 120mm NF-A12x25, which spins up to 2,000 RPM and reduces noise by up to 10 dB(A). The PSU retains semi-passive fan control, keeping the fan off at loads below 50% under 25°C. Fully modular and equipped with Noctua-themed braided cables, it minimizes clutter but may polarize users with its distinctive design.</p><p>The PSU also maintains certifications such as 80 Plus Titanium and Cybenetics Titanium for efficiency, and Cybenetics Lambda A for low noise levels. With Noctua’s cooling expertise, the unit features a custom brown fan grill, optimizing airflow while minimizing visual impact in most PC cases. </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1920px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="wZF4844KYgBEBYDPJEHnBY" name="Seasonic PRIME TX-1600 Noctua Edition-graph" alt="Performance graph showing acoustic difference between standard version and Noctua Edition of the Seasonic Prime TX-1600 power supply unit." src="https://cdn.mos.cms.futurecdn.net/wZF4844KYgBEBYDPJEHnBY.png" mos="" align="middle" fullscreen="" width="1920" height="1080" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Noctua)</span></figcaption></figure><p>This PSU delivers up to 1,600W, including 133.3A on the +12V rail, making it suitable for multi-GPU setups. While technologies like Nvidia SLI and AMD CrossFire have declined, the power supply is ideal for professionals or enthusiasts using multiple GPUs for tasks like AI workloads. It complies with ATX 3.1 and PCIe 5.1 standards, featuring the latest 12V-2x6 connectors to support Nvidia GeForce RTX 40-series GPUs with reduced risk of connector overheating. By the looks of it, the Prime TX-1600 Noctua Edition should be more than enough to tame the upcoming Nvidia RTX 50-series GPUs. </p><p>As per Noctua, the suggested retail price is $569 and €499, and the PSU is available for purchase as of today via Noctua’s official <a href="https://www.amazon.com/dp/B0DMW5F3GG">Amazon webpage</a>. Notably, if you do end up ordering one, the earliest shipment date one can expect in the US is around the second week of January 2025. This is possibly to maintain buzz until CES 2025 when <a href="https://www.tomshardware.com/pc-components/gpus/nvidias-jensen-huang-will-be-ces-2025s-keynote-speaker-as-rtx-50-rumors-abound">Nvidia is going to announce</a> at least two new GeForce RTX 50-series GPUs - the RTX 5090 and the RTX 5080.</p>
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                                                            <title><![CDATA[ Seasonic power supplies debut with OptiSink design to improve cooling — Opti Sink touts an 8X increase in thermal conductivity ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/power-supplies/seasonic-power-supplies-debut-with-optisink-design-to-improve-cooling-opti-sink-touts-an-8x-increase-in-thermal-conductivity</link>
                                                                            <description>
                            <![CDATA[ Seasonic has updated its Focus GX PSU lineup for 2024 with an all-new cooling technology dubbed 'OptiSink' that significantly revamps how the MOS is cooled. ]]>
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                                                                        <pubDate>Mon, 30 Sep 2024 17:46:32 +0000</pubDate>                                                                                                                                <updated>Wed, 09 Apr 2025 13:17:42 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                <author><![CDATA[ editors@tomshardware.com (Aaron Klotz) ]]></author>                    <dc:creator><![CDATA[ Aaron Klotz ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/aAk2saHqkgFuTCanz8LnmD.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aaron began building computers back when he was 8 years old in the mid-2000s, and it’s been a hobby of his ever since then. With a focus on computer hardware, he became an avid member of the Tom’s Hardware forums several years later, helping people solve issues with their PCs. He is now a freelance writer for Tom’s Hardware, writing about computer hardware news and more. When not busy playing or writing about computer hardware, he spends his free time playing video games like Star Citizen or Apex Legends.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Seasonic Focus GX 2024 with OptiSink]]></media:description>                                                            <media:text><![CDATA[Seasonic Focus GX 2024 with OptiSink]]></media:text>
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                                <p><a href="https://mailchi.mp/06733624016b/seasonic-launches-the-new-focus-gx-2024-series" target="_blank">Seasonic</a> has introduced its fourth iteration of Focus GX series power supplies with several new updates, including a new PCB layout and smaller MOSFETs. However, the main update Seasonic has incorporated is its all-new OptiSink technology, which has a revamped and improved cooling design.</p><p>Seasonic has coined the term OptiSink for its latest thermal solution for power supplies. OptiSink "increases internal space by approximately 48%, facilitating better air movement." According to the PSU maker, the extra space available allows OptiSink to exchange heat at a "significantly" faster rate, which boosts efficiency.</p><p>Optisink does this by changing how the power supply components are installed and making additional improvements to the cooling aspects of the power supply. Seasonic&apos;s new tech takes advantage of "modern surface mounting technology with direct soldering of components" and a fully automated manufacturing process "that minimizes human error."</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vJvsw36CJQcnotC4q2EMkm.png" alt="Seasonic OptiSink" /><figcaption><small role="credit">Seasonic</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RR8hLuj78hJ8ieUyTrDBuk.png" alt="Seasonic OptiSink" /><figcaption><small role="credit">Seasonic</small></figcaption></figure></figure><p>The main design change with OptiSink is the introduction of PCBs used to power and cool the Metal-Oxide Semiconductors (MOS) powering the PSU. Seasonic&apos;s new tech takes advantage of PCBs by installing the MOS directly onto the copper surface of the PCB through soldering. This was done to "harness the superior thermal conductivity of copper." OptiSink differs massively from Seasonic&apos;s older implementation, which uses screws and thermal pads to mount the MOS onto aluminum heatsinks —completely lacking PCBs and any copper material.</p><p>This design has enabled Seasonic to massively reduce the footprint of many of its power supply components. The heatsinks alone are substantially smaller than Seasonic&apos;s previous design iterations, taking up only a very small amount of space on the PCB they help cool. The new heatsinks can also dissipate heat in any direction.</p><p>As the image above demonstrates, Seasonic&apos;s OptiSink tech drastically changes the layout of its GX Focus 2024 power supplies compared to the previous generation. Most of the components have been moved to multiple PCBs installed on the borders of the unit, opening up space in the middle of the unit. As previously mentioned, the heatsinks have been massively altered, now featuring a significantly smaller footprint.</p><p>Seasonic&apos;s v4 (2024) Focus GX lineup is purportedly one of the first (if not the first) power supply lineups to use OptiSink technology. Seasonic states that OptiSink will be introduced into all future power supply models.</p>
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                                                            <title><![CDATA[ Nvidia RTX 50 graphics card family TDPs 'leaked' by Seasonic ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/gpus/nvidia-rtx-50-graphics-card-family-tdps-leaked-by-seasonic</link>
                                                                            <description>
                            <![CDATA[ Seasonic’s PSU wattage calculator has suddenly become surprisingly interesting: It appears to show the TDPs of the upcoming Blackwell architecture gaming cards, from the RTX 5090 at the top all the way down to an RTX 5050. ]]>
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                                                                        <pubDate>Sun, 14 Jul 2024 14:42:42 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 12:44:12 +0000</updated>
                                                                                                                                            <category><![CDATA[GPUs]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Mark Tyson ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/56vqMYLDaKRHPhHZgbADFR.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Mark&#039;s enthusiasm for computers dampened at an early age by the rubber-keyed Sinclair Spectrum 48K and feelings of Commodore 64 envy. However, in the mid-80s, hope in a digital future was rekindled by the purchase of an Atari 520 STe. Since that time Mark has used a multitude of computers for fun and professional endeavors. He often owned both Macs and PCs but went cold on the former after OS9 was killed off, and warmed to the latter with the introduction of Windows XP.&lt;br&gt;
&lt;br&gt;
Early work years were spent in artwork and reprographics but in the late noughties, Mark started to blog about computers, Taiwanese food culture, and guitar design. This activity led to a full-time position writing about breaking PC tech news for HEXUS, for the best part of a decade. When HEXUS was abruptly closed, Mark helped with the foundation of Club386, before finding a new home at Tom&#039;s Hardware.&lt;br&gt;
&lt;br&gt;
When not wearing through the keycap legends on his PC keyboards, Mark can be found wandering the computer malls of Taiwan&#039;s neon-lit conurbations and enjoying local and international cuisine.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Nvidia]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[Jensen Huang at GTC 2024]]></media:description>                                                            <media:text><![CDATA[Jensen Huang at GTC 2024]]></media:text>
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                                <p>Seasonic’s PSU wattage calculator has suddenly become surprisingly interesting. Twitter/X’s <a href="https://twitter.com/Olrak29_/status/1812460326685638998">Everest</a> today noticed the online tool has been updated with Nvidia’s GeForce RTX 50 family graphics cards. Specifically, this data may show the TDPs of the upcoming Blackwell architecture gaming cards from the RTX 5090 at the top, all the way down to an RTX 5050. Of course, the data used by Seasonic may or may not be accurate, but let’s have a look.</p><p>We&apos;ve plucked the RTX 50 family TDP data from Seasonic&apos;s wattage tool and tabulated it for your convenience, alongside of the existing RTX 40 family. To get a stronger grip on the other key specifications of the RTX 50 family, and thus the changes and benefits they will deliver, please check out our extensive feature: <a href="https://www.tomshardware.com/pc-components/gpus/nvidia-blackwell-rtx-50-series-gpus-everything-we-know">Nvidia Blackwell and GeForce RTX 50-Series GPUs</a>, which has rumors, specifications, release dates, pricing, and everything we know.</p><div ><table><tbody><tr><td class="firstcol " >Nvidia GeForce</td><td  >TDP (W)</td><td  >Nvidia GeForce</td><td  >TDP (W)</td></tr><tr><td class="firstcol " >RTX 5090</td><td  >500</td><td  >RTX 4090</td><td  >450</td></tr><tr><td class="firstcol " >RTX 5080</td><td  >350</td><td  >RTX 4080</td><td  >320</td></tr><tr><td class="firstcol " >RTX 5070</td><td  >220</td><td  >RTX 4070</td><td  >200</td></tr><tr><td class="firstcol " >RTX 5060</td><td  >170</td><td  >RTX 4060</td><td  >115</td></tr><tr><td class="firstcol " >RTX 5050</td><td  >100</td><td  >RTX 4050</td><td  >Desktop N/A</td></tr></tbody></table></div><p>If the above data is correct, it is interesting to see the largest generational uplift in TDP is going to be with the ’60 series GPU. Hopefully, this means Nvidia is addressing the common complaints that it faced due to the large performance and price gap between the RTX 4070 and 4060. Importantly, we should see the RTX 5060 return to a 12GB VRAM standard, too.</p><p>We expect Nvidia’s rollout of its Blackwell architecture consumer graphics cards to begin around October – starting with the high-end RTX 5090 and RTX 5080 cards. The enthusiast RTX 5070 should follow in January 2025, with the mainstream RTX 5060 launched in Q3 or Q4.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1530px;"><p class="vanilla-image-block" style="padding-top:70.59%;"><img id="nefk6qsR3iERyMW6irPz7J" name="rtx-5090-seasonic.jpg" alt="RTX 50 cards exposed by Seasonic" src="https://cdn.mos.cms.futurecdn.net/nefk6qsR3iERyMW6irPz7J.jpg" mos="" align="middle" fullscreen="1" width="1530" height="1080" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/nefk6qsR3iERyMW6irPz7J.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Future)</span></figcaption></figure><h2 id="amd-spills-too">AMD spills too</h2><p>Seasonic’s PSU wattage calculator has also been updated with the Ryzen 9000 series of desktop processors. Specifically, the Ryzen 9 9950X, the 9900X, Ryzen 7 9700X, and Ryzen 5 9600X. We already have the specifications and pricing for these Zen 5 processors from AMD, though. You can read <a href="https://www.tomshardware.com/pc-components/cpus/amd-announces-zen-5-ryzen-9000-processors-launches-in-july-four-new-ryzen-9-7-and-5-processors-with-a-16-ipc-improvement">AMD Granite Ridge details in-depth</a> in our guide from Computex. These AM5 chips are due to go official by the end of this month.</p><p>Lastly, Seasonic includes the AMD Radeon RX 7990 XTX and RX 7500 XT in its TDP database, for some reason. Neither of these cards has been released, and as time marches on towards the AMD RDNA 4 era, they don’t look as likely to reach the market.</p>
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                                                            <title><![CDATA[ Seasonic unveils 600W 12V-2X6 GPU power cable upgrade — company's earlier ATX 3.0 PSUs came with older 12VHPWR cables ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/power-supplies/seasonic-unveils-600w-12v-2x6-gpu-power-cable-upgrade-companys-earlier-atx-30-psus-came-with-older-12vhpwr-cables</link>
                                                                            <description>
                            <![CDATA[ Seasonic announced a new 12V-2X6 cable that can be bought as an upgrade for its outgoing ATX 3.0 PSUs. The cable is designed to replace its older 12VHPWR cables that were susceptible to meltdowns. ]]>
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                                                                        <pubDate>Wed, 13 Mar 2024 15:05:16 +0000</pubDate>                                                                                                                                <updated>Wed, 09 Apr 2025 13:17:43 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                <author><![CDATA[ editors@tomshardware.com (Aaron Klotz) ]]></author>                    <dc:creator><![CDATA[ Aaron Klotz ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/aAk2saHqkgFuTCanz8LnmD.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aaron began building computers back when he was 8 years old in the mid-2000s, and it’s been a hobby of his ever since then. With a focus on computer hardware, he became an avid member of the Tom’s Hardware forums several years later, helping people solve issues with their PCs. He is now a freelance writer for Tom’s Hardware, writing about computer hardware news and more. When not busy playing or writing about computer hardware, he spends his free time playing video games like Star Citizen or Apex Legends.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Seasonic 12V-2X6 Power Cable]]></media:description>                                                            <media:text><![CDATA[Seasonic 12V-2X6 Power Cable]]></media:text>
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                                <p>Seasonic has released a new <a href="https://seasonic.com/native-12v-2x6-cable?__cf_chl_tk=qY5xUQANIeTnpK6nwqopWHIGHqX6AMHgW3y0WGISAbs-1710259053-0.0.1.1-1514">12V-2x6 600W power cable</a> for its outgoing ATX 3.0 compatible power supplies. The new cable is designed to replace its older 12VHPWR cables that came with all its original <a href="https://www.tomshardware.com/news/intel-atx-v3-psu-standard">ATX 3.0</a> power supplies. The newer 12V-2x6 cable is a more mature revision of the 12VHPWR cable that is less susceptible — dare we say immune? — to meltdowns.<br><br>The cable itself is 700mm long and can deliver up to 600 watts to a connected GPU, and it uses 16 gauge wiring. The connector features HCS (High-Current System) terminals with 94V-0 plastic material for the 16-pin housing, and it&apos;s rated for up to 50-lifetime mating cycles. The connectors are also colored blue to help differentiate them from <a href="https://www.tomshardware.com/news/seasonic-psus-with-12vhpwr-connector-to-start-at-230">Seasonic&apos;s earlier black 12VHPWR power cables</a>.<br><br>The new cable and the 12V-2X6 standard are backward compatible with 12VHPWR power connectors, which is how Seasonic was able to provide this upgrade in the first place. Compatible Seasonic power supplies include any of its ATX 3.0 power supplies. These PSU lineups are the <a href="https://www.tomshardware.com/reviews/seasonic-prime-tx-1600-power-supply-review">Prime TX</a> ATX 3.0 series, Prime PX ATX 3.0 series, Vertex GX, PX, GX White, and Sakura units, and the Focus GX and GX White ATX 3.0 lineups. Older ATX 2.0 Seasonic units are not compatible with this new power cable.<br><br>Seasonic recommends that you only use 750W or higher if your graphics card pulls a significant amount of power, like the <a href="https://www.tomshardware.com/reviews/nvidia-geforce-rtx-4090-review">RTX 4090</a>. The new cable will be optimal for users who want to be free from the risk of a system meltdown due to the 16-pin power connector. The original 16-pin <a href="https://www.tomshardware.com/news/pcie-5-power-connector-600w-next-gen-amd-nvidia-gpus">12VHPWR standard</a> became notorious for causing GPU meltdowns and was responsible for the <a href="https://www.tomshardware.com/news/rtx-4090-16-pin-connector-melted-after-one-year-of-usage">vast majority of RTX 4090 deaths last year</a>.<br><br>The new <a href="https://www.tomshardware.com/news/16-pin-power-connector-gets-a-much-needed-revision-meet-the-new-12v-2x6-connector">12V-2X6 standard</a> alleviates this problem by rectifying many of the problematic elements of the 12VHPWR standard. Most notably, the new connection standard boasts shortened connecting pins that are less resistant to voltage coming from the power supply. <a href="https://www.tomshardware.com/news/12v-2x6-connector-tested">Hardware Busters tested</a> the new 12V-2X6 standard and found it drastically outperforms the 12VHPWR standard in operating thermals, making it "virtually impossible" for the connector to melt.<br><br>Seasonic&apos;s new cable is available now, though that&apos;s dependent on your location. If you have any questions regarding availability, Seasonic recommends you contact them via their support email for assistance.</p>
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                                                            <title><![CDATA[ Seasonic asks you to gamble your $1,000+ GPU that its new 16-pin connector won't melt — company gives out a free 16-pin power cable for beta testing ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/pc-components/gpus/seasonic-asks-you-to-gamble-your-dollar1000-gpu-that-its-new-16-pin-connector-wont-melt</link>
                                                                            <description>
                            <![CDATA[ Seasonic introduces a suitable connector with the new 12V-2x6 connector standard with reinforcements soldered connections. The company is also running a contest in China for users to test this new cable with their own compatible SeaSonic PSU and Nvidia GPUs. ]]>
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                                                                        <pubDate>Wed, 27 Dec 2023 17:46:25 +0000</pubDate>                                                                                                                                <updated>Wed, 27 Dec 2023 18:10:20 +0000</updated>
                                                                                                                                            <category><![CDATA[GPUs]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Roshan Ashraf Shaikh ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/zdehzmQF3FFdL62x7CtdmT.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Roshan Ashraf Shaikh has been in the Indian PC hardware community since the early 2000s and has been building PCs, contributing to many Indian tech forums, &amp;amp; blogs. He operated Hardware BBQ for 11 years and wrote news for eTeknix &amp;amp; TweakTown before joining Tom&#039;s Hardware team. Besides tech, he is interested in fighting games, movies, anime, and mechanical watches.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Seasonic]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[Seasonic]]></media:description>                                                            <media:text><![CDATA[Seasonic]]></media:text>
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                                <p><a href="https://weibo.com/6215110805/NwE3t7EwG" target="_blank">Seasonic is ready</a> with its new ATX 3.1 compliant <a href="https://www.tomshardware.com/news/16-pin-power-connector-gets-a-much-needed-revision-meet-the-new-12v-2x6-connector">12V-2x6</a> connector to replace the <a href="https://www.tomshardware.com/news/pcie-5-power-connector-600w-next-gen-amd-nvidia-gpus">12VHPWR</a> (16-pin) power connector, unofficially dubbed the <a href="https://www.tomshardware.com/news/technician-repairs-hundreds-rtx-4090-melted-connectors-every-month">&apos;RTX 4090 killer&apos;</a>, for its power supplies. Seasonic is also willing to give these cables to 100 users in China for free if users sign up for beta testing with their graphics cards that utilize a 16-pin power connector and a compatible Seasonic power supply.</p><p>The beta test application is open until December 31st, and it&apos;s for users with either Focus, Vertex, or Prime series ATX 3.0 compliant power supplies and GPUs with a 12VHPWR connector. Though many would like to see this be tested with an <a href="https://www.tomshardware.com/reviews/nvidia-geforce-rtx-4080-review">RTX 4080</a> and <a href="https://www.tomshardware.com/reviews/nvidia-geforce-rtx-4090-review">RTX 4090</a>, two of the <a href="https://www.tomshardware.com/reviews/best-gpus,4380.html">best graphics cards</a>, some GPUs with a much lower draw use this connector.</p><p>The leaked images of the <a href="https://www.tomshardware.com/pc-components/gpus/leaked-images-of-asus-geforce-rtx-4070-super-12gb-show-a-16-pin-connector-for-power">Asus RTX 4070 Super OC Edition</a> show that some GeForce RTX 4070 Super will likely use the 16-pin connector instead of the 8-pin PCIe connector used by its non-Super version. Irrespective of the GPU and its draw, one would like to be assured this new standard is also not prone to the same meltdown issues— Seasonic plans to address this by having up to 100 beta testers using their hardware.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rUAnu5xoCrBURY3Y73LgBV.jpg" alt="Seasonic's public BETA invitation to 100 users to test its new L-type 12V-2X6 cable with compatible power supplies and graphics cards. " /><figcaption>Seasonic's public BETA invitation to 100 users to test its new L-type 12V-2X6 cable with compatible power supplies and graphics cards. <small role="credit">SeaSonic via Weibo (Google Translated)</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fTKCk8oGTEYt976pxTcqRV.jpg" alt="Terms and Conditions for this public BETA testing" /><figcaption>Terms and Conditions for this public BETA testing<small role="credit">SeaSonic via Weibo (Google Translated)</small></figcaption></figure></figure><p>The contest is limited to one application per person. You will need to provide information such as the platform ID (Weibo, Bilibili, and WeChat), photographs of the power supply, and a graphics card showing the serial numbers. The entry is limited to up to 100 people; hence, it is first come, first served. Winners of these new power cables with the 12V-2x6 power connectors will be announced via Weibo, Bilibili, and WeChat on January 5, 2024.</p><p>Regarding the cable, Seasonic claims <a href="https://weibo.com/6215110805/NwO6IjA8K" target="_blank">via Weibo</a> that this is a one-piece molded connector with additional reinforcement and precision-wielded wires. As a result, there will be no need to bend, and its 12V-2x6 connector is claimed to have a reinforced terminal structure, high-current resistant allo,y, and copper right-angled terminals. As per specifications set by Intel (which also developed the specification for the 12VHPWR standard), this is a 16-AWG wiring support 600w output and complies with ATX 3.1 and CEM 5.1 standards.</p><p>It is not known at the time of writing if Seasonic will give these cables free of charge to qualifying PSU owners worldwide or if they need to be purchased. But the same question also applies to other power supply manufacturers.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/F9t7n5GNvdfmBdioavTC4A.jpg" alt="Seasonic's 12V-2X6 Cable with added reinforcement" /><figcaption>Seasonic's 12V-2X6 connector with added reinforcement<small role="credit">Seasonic via Weibo</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iig22GG8m5xhGu3BzBKdt9.jpg" alt="Seasonic's 12V-2X6 Cable" /><figcaption>Seasonic's 12V-2X6 connector<small role="credit">SeaSonic via Weibo</small></figcaption></figure></figure><p>The 12V-2x6 connectors could be safer than 12VHPWR because of their increased power terminal length and shorter sense pin, which addresses the cause of the meltdown. <a href="https://www.tomshardware.com/news/12v-2x6-connector-tested">The newer connector</a> shows it can maintain its cool even with a worst-case scenario. Also, 12VHPWR connectors have backward compatibility with 12V-2x6 cables, therefore addressing the meltdown concerns for existing users as they need to get this cable from respective PSU makers. Newer manufactured power supplies should be bundled with the 12V-2x6 cables by default, but <a href="https://www.tomshardware.com/news/fsp-launches-power-supplies-with-new-12v-2x6-connector">FSP has been doing that since September.</a></p><p>However, it would have been nice if Seasonic disclosed its responsibility if any user(s) faced a meltdown during this beta testing contest. Though this goes with the word &apos;beta,&apos; many would rather be a spectator given the potential fire and electric hazards surrounding the 12VHPWR standard. Nobody would want to be in a situation where they put their hardware at risk. And since this, in a way, is a public test and given the cost of the hardware, it wouldn&apos;t hurt if SeaSonic made that disclosure in these details, just like disclosing about warranty coverage with these free cables. Here&apos;s wishing there were no meltdowns with 12V-2x6 connectors, even in a worst-case scenario.</p><iframe src="https://content.jwplatform.com/players/XDf5PcNM.html" id="XDf5PcNM" title="How To Choose A Graphics Card" width="960" height="540" frameborder="0" scrolling="auto" allowfullscreen></iframe>
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                                                            <title><![CDATA[ MSI MEG Ai1000P PCIe 5 ATX v3.0 Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/msi-meg-ai1000p-pcie-5-atx-v30-power-supply-review</link>
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                            <![CDATA[ The MSI MEG Ai1000P PCIe 5 offers top performance and a digital interface. ]]>
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                                                                        <pubDate>Tue, 15 Nov 2022 15:00:09 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:30:50 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[MSI MEG Ai1000P PCIe5 ATX v3.0]]></media:description>                                                            <media:text><![CDATA[MSI MEG Ai1000P PCIe5 ATX v3.0]]></media:text>
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                                <p>The MSI MEG Ai1000P PCIe5 achieves top performance, and the fact that it is ATX 3.0 and PCIe 5.0 ready brings it to the newest standards. That combination earns it a place in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best PSUs article</a>. It achieves almost similar performance to the <a href="https://www.tomshardware.com/reviews/seasonic-prime-ultra-platinum-1000w-psu,5397.html">Seasonic Prime Platinum 1000</a> and the <a href="https://www.tomshardware.com/reviews/evga-supernova-1000-p6-power-supply">EVGA SuperNOVA 1000 P6</a>, but none of those units have 12VHPWR connectors, nor are they ATX 3.0 compatible. </p><p>Besides ATX 3.0 and PCIe 5.0 compatibility, the MSI MEG Ai1000P PCIe 5 also has an interesting (we could say appealing) exterior design. Thanks to the semi-digital platform that the PSU uses, provided by Channel Well Technology, there is compatibility with the MSI Gaming Intelligence application, through which you can adjust several settings, like the fan&apos;s speed and toggle on/off the single +12V mode while monitoring the PSU&apos;s vital functions and power delivery. </p><p><br></p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/SGKfsZLfGESDmvBCAtKY4W.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vShgF6tYT3HYwtmtV2NSEW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5CxGr9xthR2sfdd2DLQfQW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZLgTWVseKeCiatwmD5TVbW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TKY7vDwr2nUCSFGN2hR4mW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4K8n5QY7snJiCWNZBAbctW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3oHFsXiMaeyyMYmhkAQR7X.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4VcTroqhpeeyv6iRcggpEX.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TLDin6RMfGfgQFsGJLobRX.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ER3f3x8TCgmtScsm9wSuYX.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/umFm4jk2fm4MuajwWjW6gX.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FuWKDegXPsqd2LrC3dyHoX.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The MEG Ai1000P PCIe5 has a fully modular cable design and compact enough dimensions, given its capacity, measuring 160mm in depth. MSI could go with a larger fan than the 120mm it used, to keep the noise output low. Nonetheless, the fan&apos;s build quality is high, and the product&apos;s warranty is extended at ten years to match the competition&apos;s offerings. </p><h2 id="specifications">Specifications</h2><div ><table><tbody><tr><td  >Manufacturer (OEM)</td><td  >CWT</td></tr><tr><td  >Max. DC Output</td><td  >1000W</td></tr><tr><td  >Efficiency</td><td  >80 PLUS Platinum, Cybenetics Platinum (89-91%)</td></tr><tr><td  >Noise</td><td  >Cybenetics Standard++ (30-35 dB[A])</td></tr><tr><td  >Modular</td><td  >✓ (fully)</td></tr><tr><td  >Intel C6/C7 Power State Support</td><td  >✓</td></tr><tr><td  >Operating Temperature (Continuous Full Load)</td><td  >0 - 50°C</td></tr><tr><td  >Over Voltage Protection</td><td  >✓</td></tr><tr><td  >Under Voltage Protection</td><td  >✓</td></tr><tr><td  >Over Power Protection</td><td  >✓</td></tr><tr><td  >Over Current (+12V) Protection</td><td  >✓</td></tr><tr><td  >Over Temperature Protection</td><td  >✓</td></tr><tr><td  >Short Circuit Protection</td><td  >✓</td></tr><tr><td  >Surge Protection</td><td  >✓</td></tr><tr><td  >Inrush Current Protection</td><td  >✓</td></tr><tr><td  >Fan Failure Protection</td><td  >✗</td></tr><tr><td  >No Load Operation</td><td  >✓</td></tr><tr><td  >Cooling</td><td  >120mm Hydraulic Bearing Fan (PLA12025S12H)</td></tr><tr><td  >Semi-Passive Operation</td><td  >✓</td></tr><tr><td  >Dimensions (W x H x D)</td><td  >150 x 85 x 160mm</td></tr><tr><td  >Weight</td><td  >1.99 kg (4.39 lb)</td></tr><tr><td  >Form Factor</td><td  >ATX12V v3.0, EPS 2.92</td></tr><tr><td  >Alternative Low Power Mode (ALPM) compatible</td><td  >✓</td></tr><tr><td  >Warranty</td><td  >10 Years</td></tr></tbody></table></div><h2 id="power-specifications">Power Specifications</h2><div ><table><tbody><tr><td  ><strong>Rail</strong></td><td  ></td><td  ><strong>3.3V</strong></td><td  ><strong>5V</strong></td><td  ><strong>12V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>-12V</strong></td></tr><tr><td  ><strong>Max. Power</strong></td><td  ><strong>Amps</strong></td><td  >22</td><td  >22</td><td  >83.33</td><td  >3</td><td  >0.3</td></tr><tr><td  ></td><td  ><strong>Watts</strong></td><td  ></td><td  >120</td><td  >1000</td><td  >15</td><td  >3.6</td></tr><tr><td  ><strong>Total Max. Power (W)</strong></td><td  ></td><td  ></td><td  >1000</td><td  ></td><td  ></td><td  ></td></tr></tbody></table></div><h2 id="cables-amp-connectors">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Description</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (600mm)</th><td  >1</td><td  >1</td><td  >16-20AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (710mm)</th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (600mm)</th><td  >6</td><td  >6</td><td  >16AWG</td><td  >No</td></tr><tr><th  >12+4 pin PCIe (610mm)</th><td  >1</td><td  >1</td><td  >16-24AWG</td><td  >No</td></tr><tr><th  >2x 6+2 pin PCIe (610mm)</th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (500mm+150mm+150mm+150mm)</th><td  >4</td><td  >16</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><p>4 pin Molex (500mm+150mm+150mm+150mm) / FDD (+150mm)</p></th><td  >1</td><td  >4 / 1</td><td  >18-20AWG</td><td  >No</td></tr><tr><th  >USB Cable Mini to Type A (610mm)</th><td  >1</td><td  >1</td><td  >24-28AWG</td><td  >No</td></tr><tr><th  ><strong>USB Mini to Motherboard Header Cable</strong> (590mm)</th><td  >1</td><td  >1</td><td  >24-28AWG</td><td  >No</td></tr></tbody></table></div><p>The PSU is equipped with connectors, including two EPS and six PCIe, all in dedicated cables. It also has two more PCIe on a single cable and a 12VHPWR connector able to handle up to 600W. According to the ATX spec, a 1000W PSU should have up to 450W 12VHPWR connector, </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DiDmT7m7c39TxnY2eScGbC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DVfQkbA6wNkV9SzpfRYPmC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/i9a4ZwbzgJydaVREnGrNpC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kwysLGt6GYmG8y96pD5CtC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oYMsdtPm3fSGPFekRFgMwC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7HQrVmA2n4zDUhG7BHiEzC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SbGoT5mvg4tATSacV9bUSD.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WprYqD8pkcd4ZiXydMuXVD.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/v5xUcY3mYMWEc6ugbKskYD.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bkYZFfUycm22mLgQFKv3cD.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  ><kbd><strong>General Data</strong></kbd></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >CWT</td></tr><tr><td  >Platform</td><td  >CTT</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><kbd><strong>Primary Side</strong></kbd></td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >6x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  ><div>2x GBJ2506 (600V, 25A @ 100°C)</div></td></tr><tr><td  >APFC MOSFETs</td><td  ><div>2x Infineon IPA60R099P6 (600V, 24A @ 100°C, Rds(on): 0.099Ohm) &<br> 1x SYNC Power SPN5003 (to reduce no load consumption)</div></td></tr><tr><td  >APFC Boost Diode</td><td  ><div>2x Infineon IDH08G65C6 (650V, 8A @ 145°C)</div></td></tr><tr><td  >Bulk Cap(s)</td><td  ><div>1x Nichicon (400V, 680uF, 2,000h @ 105°C, GL) &<br> 1x Nichicon (400V, 560uF, 2,000h @ 105°C, GG)</div></td></tr><tr><td  >Main Switchers</td><td  ><div>4x Alpha & Omega AOTF29S50 (500V, 18A @ 100°C, Rds(on): 0.15Ohm)</div></td></tr><tr><td  ><p>IC Drivers</p></td><td  ><p>2x Novosense NSi6602 &<br> 1x Infineon 2EDN752x</p></td></tr><tr><td  >Digital APFC Controller</td><td  ><div>Texas Instruments UCD3138A</div></td></tr><tr><td  >Digital Resonant Controller</td><td  >Texas Instruments UCD3138A</td></tr><tr><td  >Topology</td><td  ><div>Primary side: Semi-Digital, Interleaved PFC, Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</div></td></tr><tr><td  ><kbd><strong>Secondary Side</strong></kbd></td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >6x Infineon BSC014N06NS (60V, 152A @ 100°C, Rds(on): 1.45mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 6x FETs PWM Controller(s): no info</td></tr><tr><td  >Filtering Capacitors</td><td  ><p>Electrolytic: 5x Nippon Chemi-Con (105°C, W), 1x Nichicon (2-5,000h @ 105°C, HD), 4x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 1x Nippon Chemi-Con (2-5,000h @ 105°C, KZE), 3x Rubycon (4-10,000h @ 105°C, YXJ), 3x Rubycon (4-10,000h @ 105°C, YXF)<br> Polymer: 11x Nippon Chemi-Con, 15x FPCAP, 5x NIC</p></td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7502R (OVP, UVP, SCP, PG)</td></tr><tr><td  >MCU & Fan Controller</td><td  >Microchip PIC32MM0064GPM036</td></tr><tr><td  >Fan Model</td><td  >MSI (Powerlogic) PLA12025S12H-4 (120mm, 12V, 0.36A, Hydro-Dynamic Bearing Fan)</td></tr><tr><td  ><kbd><strong>5VSB Circuit</strong></kbd></td><td  >-</td></tr><tr><td  >Rectifier</td><td  ><div>1x PS1045L SBR (45V, 10A)</div></td></tr><tr><td  >Standby PWM Controller</td><td  >On Bright OB2365T</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qqWAvQLGRRb2xXjWkVB39Q.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9PgMXHnE7SvkujgfZ9yWLQ.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/twUsE9hcYSm4KHvxRBrSQQ.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FwJsGJXCiWdtGkTESDcUWQ.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The platform is made by CWT and uses a semi-digital design with the code name CTT. This is a modern design where digital controllers handle the primary side and a part of the secondary side. Thanks to the digital controllers, the PSU can "talk" to the system so users, besides monitoring its vital functions, can also make changes to the fan speed control and toggle on/off the multi-rail mode for the 12V rail. CWT uses high-end parts everywhere, and our only objection is the small diameter fan, which is of extremely high quality, but the chassis could accommodate a 140 mm fan. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/y8gLnAZYA8R4Rq7Smp2jBW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RGbJAgjC9cTgSHYtc8JZGW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sdqbZFDuBuVoPFbQ9oeVNW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ma6yp8uLL9rY9acs9BSyVW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Qvt8ZzY5jxRXTW9F7xh8hW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ArPZnDFD7DrP4RbVFm95mW.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TCxnLZNtvXTNvCWe3YHxC8.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient/EMI filter has all necessary parts, including an MOV for protection against voltage surges. Moreover, there is an NTC thermistor and bypass relay combo for suppressing high inrush currents. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/28oV92XbmM8h7UEE6Twfcb.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZyVUSv4zVUD7QP7mShSmgb.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The pair of bridge rectifiers can handle up to 50A. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KcqsrZLakZYSN6MPpd7M7g.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CRzjQuTDErri9HjxCcxCCg.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zJVTES92JTpveP5fnRqHHg.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8AzWfF4zjMfbaU2889N2Ng.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC circuit has two Infineon FETs and two boost diodes because it uses an interleaved design where two converters work in parallel. The bulk caps are by Nichicon, and their combined capacity is high, allowing for more than 17ms hold-up time easily. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7gAMAFQvpXgc2TBwKvfyVn.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Z56W3wZxdrYVFpXjyzXiKf.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PVNzFY6MKvxhLfwqTPf7cn.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BV6i4emfDqoGL68Utq32kn.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Db37dLeoibyHFELRQfaGsn.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BTbuY7Js4JCgdmUzXB5T3o.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The four main FETs are installed into a full-bridge topology. An LLC resonant converter is also used for lowering energy losses. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RnRuk8ehHbS5dUoMxaMbJ7.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SSCeVENKtKR6iASDKrZ9X7.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>This is the board holding one of the Texas Instruments digital controllers. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xT2PVPuCkBuTSTkZ347F4C.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EVfbebU2nHNUaRxrWNG8NC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ceYnhtVutAKZvPEroqsQZC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Kj4ohCez7UNbzPkTC9ZmfC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Six Infineon FETs regulate the 12V rail. Two VRMs generate the minor rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/95HgCDtFvxe4suQVokao4G.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EaTw2UqoUa5XrgEweMC3DG.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vDSHsiMSZ2HjGee5iJzwLG.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>All filtering caps are of high quality, electrolytic and polymer ones. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DMrvfpTqZqYUroGURTR6uK.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/csugPwWRRoVCbu3tk6Fz8L.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cKNgYiWXHqnDRftH3gzdHL.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The standby PWM controller is an On Bright <a href="https://taoic.oss-cn-hangzhou.aliyuncs.com/6895/product/lisuo_1590570392000.pdf">OB2365T</a>. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BGwx3For8NTzqDGi7b2CHP.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DBJNuEH2DFaZNXfChyvRSP.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tsmrSPTvLFpAhYbpBzpocP.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Besides bus bars and shunt resistors, we also find several filtering caps at the face of the modular board. </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="supervisor_IC.jpg" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/TAaBKWJzB8ApWozZK93PPS.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The main supervisor IC is a Weltrend WT7502R.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4gA4EjtcfqnChaQ8T2pXMX.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/so5FPiUL9L5o8jW5t6qMaX.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tLSGBypDH6cG6CeMpHHRpX.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sujTy2J7bwFeFc6R9ksYyX.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Soldering quality is not the best we have seen by CWT, probably because this was an early sample. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/hBekRaz7ydFj7Lz7P2xmaa.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zDYGtHNrDSZbU8vnvFgoea.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/z8GCUHRPJMeot3oiyDdQka.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The Powerlogic fan is of high quality, using a hydro-dynamic bearing. MSI could use a larger diameter fan, though, for lower noise output. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="35b3e2ba-6f2a-4616-8e2f-242737b345f4">            <a href="https://www.newegg.com/super-flower-leadex-v-platinum-pro-sf-1000f14tp-1000w/p/1HU-024C-00038" data-model-name="Super Flower Leadex V Platinum PRO 1000W" 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/></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40 watts up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4QWdE4YNEzYrgwnjBxXVpG.png" alt="Thermaltake Toughpower GF3 850W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BcztKsRFAd4oyBbQ8H9rsG.png" alt="Thermaltake Toughpower GF3 850W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jmKKEeRBaFENXYPSGGUjyG.png" alt="Thermaltake Toughpower GF3 850W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/D2Cmq5cW9SKJ9jGGaBP64H.png" alt="Thermaltake Toughpower GF3 850W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/G8EcE4tCf9gCRDjrrWJJ7H.png" alt="Thermaltake Toughpower GF3 850W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZDNZDhQxHZYoRzSU66jnAH.png" alt="Thermaltake Toughpower GF3 850W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mnSwtK2EKNZhneCtgnQMDH.png" alt="Thermaltake Toughpower GF3 850W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/o3VwxzR7CWrJmkAiYYFpGH.png" alt="Thermaltake Toughpower GF3 850W" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is within 1% on all major rails, so it is pretty tight. It could be tighter at 12V, though. </p><h2 id="hold-up-time">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TVp3md8NsTyPx6QJgpzS4P.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P6Lyjf9BaLc5dqampDQU7P.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tFSHJTgf7Dzs2gZF4qDXAP.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/txGYJeMT9fLDMzS3tuFeDP.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is long and the power ok signal is accurate and longer than 16 ms. </p><h2 id="inrush-current">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HFHe3MEgXUpK3VRAHyUzJD.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/G3kLEiLX6ELeet42k6wxND.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Inrush current is low with 230V input, but pretty high with 115V. </p><h2 id="leakage-current">Leakage Current</h2><p>In layman&apos;s terms, leakage current is the unwanted transfer of energy from one circuit to another. In power supplies, it is the current flowing from the primary side to the ground or the chassis, which in the majority of cases is connected to the ground. For measuring leakage current, we use a <a href="https://www.gwinstek.com/en-global/products/detail/GPT-9900">GW Instek GPT-9904</a> electrical safety tester instrument.</p><p>The leakage current test is conducted at 110% of the DUT&apos;s rated voltage input (so for a 230-240V device, we should conduct the test with 253-264V input). The maximum acceptable limit of a leakage current is 3.5 mA and it is defined by the IEC-60950-1 regulation, ensuring that the current is low and will not harm any person coming in contact with the power supply&apos;s chassis.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 14b -27b_Leakage_Current_Comparison_264V.png" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/Qr8sp5dXC7V6taec3RHtXF.png" mos="" align="middle" fullscreen="" width="651" height="490" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Leakage current is low. </p><h2 id="10-110-load-tests">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>10%</strong></td><td  ><strong>6.530A</strong></td><td  ><strong>1.974A</strong></td><td  ><strong>1.979A</strong></td><td  ><strong>0.99A</strong></td><td  >99.994</td><td  >85.609%</td><td  >0</td><td  ><6.0</td><td  >44.53°C</td><td  >0.979</td></tr><tr><td  ></td><td  >12.006V</td><td  >5.066V</td><td  >3.334V</td><td  >5.053V</td><td  >116.82</td><td  ></td><td  ></td><td  ></td><td  >40.19°C</td><td  >115.13V</td></tr><tr><td  ><strong>20%</strong></td><td  ><strong>14.083A</strong></td><td  ><strong>2.963A</strong></td><td  ><strong>2.97A</strong></td><td  ><strong>1.189A</strong></td><td  >199.944</td><td  >90.96%</td><td  >0</td><td  ><6.0</td><td  >45.41°C</td><td  >0.993</td></tr><tr><td  ></td><td  >12.003V</td><td  >5.062V</td><td  >3.333V</td><td  >5.048V</td><td  >219.779</td><td  ></td><td  ></td><td  ></td><td  >40.58°C</td><td  >115.1V</td></tr><tr><td  ><strong>30%</strong></td><td  ><strong>22.029A</strong></td><td  ><strong>3.459A</strong></td><td  ><strong>3.465A</strong></td><td  ><strong>1.388A</strong></td><td  >299.991</td><td  >91.918%</td><td  >0</td><td  ><6.0</td><td  >46.59°C</td><td  >0.996</td></tr><tr><td  ></td><td  >11.982V</td><td  >5.06V</td><td  >3.333V</td><td  >5.044V</td><td  >326.286</td><td  ></td><td  ></td><td  ></td><td  >41.47°C</td><td  >115.08V</td></tr><tr><td  ><strong>40%</strong></td><td  ><strong>29.922A</strong></td><td  ><strong>3.955A</strong></td><td  ><strong>3.96A</strong></td><td  ><strong>1.588A</strong></td><td  >399.623</td><td  >92.367%</td><td  >0</td><td  ><6.0</td><td  >47.24°C</td><td  >0.997</td></tr><tr><td  ></td><td  >11.978V</td><td  >5.057V</td><td  >3.333V</td><td  >5.039V</td><td  >432.642</td><td  ></td><td  ></td><td  ></td><td  >41.62°C</td><td  >115.05V</td></tr><tr><td  ><strong>50%</strong></td><td  ><strong>37.485A</strong></td><td  ><strong>4.947A</strong></td><td  ><strong>4.951A</strong></td><td  ><strong>1.788A</strong></td><td  >499.353</td><td  >92.349%</td><td  >0</td><td  ><6.0</td><td  >48.83°C</td><td  >0.997</td></tr><tr><td  ></td><td  >11.974V</td><td  >5.054V</td><td  >3.332V</td><td  >5.034V</td><td  >540.71</td><td  ></td><td  ></td><td  ></td><td  >42.83°C</td><td  >115.02V</td></tr><tr><td  ><strong>60%</strong></td><td  ><strong>45.213A</strong></td><td  ><strong>5.941A</strong></td><td  ><strong>5.944A</strong></td><td  ><strong>1.989A</strong></td><td  >599.904</td><td  >91.849%</td><td  >786</td><td  >13.3</td><td  >43.66°C</td><td  >0.997</td></tr><tr><td  ></td><td  >11.946V</td><td  >5.051V</td><td  >3.331V</td><td  >5.029V</td><td  >653.12</td><td  ></td><td  ></td><td  ></td><td  >50.24°C</td><td  >114.99V</td></tr><tr><td  ><strong>70%</strong></td><td  ><strong>52.835A</strong></td><td  ><strong>6.936A</strong></td><td  ><strong>6.938A</strong></td><td  ><strong>2.19A</strong></td><td  >699.632</td><td  >91.291%</td><td  >1146</td><td  >25.4</td><td  >44.13°C</td><td  >0.997</td></tr><tr><td  ></td><td  >11.934V</td><td  >5.047V</td><td  >3.33V</td><td  >5.023V</td><td  >766.378</td><td  ></td><td  ></td><td  ></td><td  >51.14°C</td><td  >114.97V</td></tr><tr><td  ><strong>80%</strong></td><td  ><strong>60.507A</strong></td><td  ><strong>7.934A</strong></td><td  ><strong>7.932A</strong></td><td  ><strong>2.292A</strong></td><td  >799.673</td><td  >90.681%</td><td  >1493</td><td  >34.7</td><td  >44.48°C</td><td  >0.999</td></tr><tr><td  ></td><td  >11.929V</td><td  >5.043V</td><td  >3.328V</td><td  >5.019V</td><td  >881.889</td><td  ></td><td  ></td><td  ></td><td  >52.58°C</td><td  >114.96V</td></tr><tr><td  ><strong>90%</strong></td><td  ><strong>68.587A</strong></td><td  ><strong>8.434A</strong></td><td  ><strong>8.416A</strong></td><td  ><strong>2.393A</strong></td><td  >899.47</td><td  >90.043%</td><td  >1792</td><td  >39.4</td><td  >44.85°C</td><td  >0.999</td></tr><tr><td  ></td><td  >11.911V</td><td  >5.039V</td><td  >3.326V</td><td  >5.014V</td><td  >998.961</td><td  ></td><td  ></td><td  ></td><td  >54.17°C</td><td  >114.92V</td></tr><tr><td  ><strong>100%</strong></td><td  ><strong>76.422A</strong></td><td  ><strong>8.938A</strong></td><td  ><strong>8.93A</strong></td><td  ><strong>3A</strong></td><td  >999.511</td><td  >89.529%</td><td  >2079</td><td  >43.2</td><td  >45.62°C</td><td  >0.998</td></tr><tr><td  ></td><td  >11.905V</td><td  >5.035V</td><td  >3.325V</td><td  >5V</td><td  >1117.686</td><td  ></td><td  ></td><td  ></td><td  >55.69°C</td><td  >114.9V</td></tr><tr><td  ><strong>110%</strong></td><td  ><strong>84.195A</strong></td><td  ><strong>9.939A</strong></td><td  ><strong>10.017A</strong></td><td  ><strong>3.002A</strong></td><td  >1100.128</td><td  >88.743%</td><td  >2326</td><td  >47.0</td><td  >46.78°C</td><td  >0.998</td></tr><tr><td  ></td><td  >11.899V</td><td  >5.031V</td><td  >3.324V</td><td  >4.998V</td><td  >1239.721</td><td  ></td><td  ></td><td  ></td><td  >57.71°C</td><td  >114.87V</td></tr><tr><td  ><strong>CL1</strong></td><td  ><strong>0.117A</strong></td><td  ><strong>14.26A</strong></td><td  ><strong>14.322A</strong></td><td  ><strong>0A</strong></td><td  >121.295</td><td  >83.348%</td><td  >698</td><td  >8.7</td><td  >42.95°C</td><td  >0.985</td></tr><tr><td  ></td><td  >11.994V</td><td  >5.063V</td><td  >3.33V</td><td  >5.086V</td><td  >145.539</td><td  ></td><td  ></td><td  ></td><td  >48.88°C</td><td  >115.13V</td></tr><tr><td  ><strong>CL2</strong></td><td  ><strong>0.116A</strong></td><td  ><strong>21.715A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  >111.386</td><td  >81.875%</td><td  >1285</td><td  >29.4</td><td  >43.56°C</td><td  >0.983</td></tr><tr><td  ></td><td  >12.007V</td><td  >5.065V</td><td  >3.333V</td><td  >5.109V</td><td  >136.12</td><td  ></td><td  ></td><td  ></td><td  >50.64°C</td><td  >115.13V</td></tr><tr><td  ><strong>CL3</strong></td><td  ><strong>0.116A</strong></td><td  ><strong>0A</strong></td><td  ><strong>21.794A</strong></td><td  ><strong>0A</strong></td><td  >73.986</td><td  >74.395%</td><td  >1370</td><td  >31.7</td><td  >44.31°C</td><td  >0.837</td></tr><tr><td  ></td><td  >12.022V</td><td  >5.067V</td><td  >3.331V</td><td  >5.059V</td><td  >99.443</td><td  ></td><td  ></td><td  ></td><td  >52.49°C</td><td  >115.15V</td></tr><tr><td  ><strong>CL4</strong></td><td  ><strong>83.927A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  >1000.076</td><td  >90.096%</td><td  >2058</td><td  >42.8</td><td  >45.97°C</td><td  >0.998</td></tr><tr><td  ></td><td  >11.916V</td><td  >5.041V</td><td  >3.33V</td><td  >5.046V</td><td  >1112.815</td><td  ></td><td  ></td><td  ></td><td  >55.92°C</td><td  >114.9V</td></tr></tbody></table></div><p>The PSU delivered 1,100 wats of load at close to 47 degrees Celsius without any issues, but you should not over-stress it if you want it to outlive the extended warranty. The cooling fan rotated at full speed only during the overload test.</p><h2 id="20-80w-load-tests">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 Plus standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>20W</strong></td><td  ><strong>1.236A</strong></td><td  ><strong>0.493A</strong></td><td  ><strong>0.495A</strong></td><td  ><strong>0.197A</strong></td><td  >19.996</td><td  >73.387%</td><td  >0</td><td  ><6.0</td><td  >40.23°C</td><td  >0.687</td></tr><tr><td  ></td><td  >12.019V</td><td  >5.068V</td><td  >3.335V</td><td  >5.067V</td><td  >27.316</td><td  ></td><td  ></td><td  ></td><td  >37.09°C</td><td  >115.15V</td></tr><tr><td  ><strong>40W</strong></td><td  ><strong>2.723A</strong></td><td  ><strong>0.691A</strong></td><td  ><strong>0.693A</strong></td><td  ><strong>0.296A</strong></td><td  >39.994</td><td  >75.323%</td><td  >0</td><td  ><6.0</td><td  >41.24°C</td><td  >0.791</td></tr><tr><td  ></td><td  >12.003V</td><td  >5.067V</td><td  >3.334V</td><td  >5.064V</td><td  >53.123</td><td  ></td><td  ></td><td  ></td><td  >37.79°C</td><td  >115.15V</td></tr><tr><td  ><strong>60W</strong></td><td  ><strong>4.210A</strong></td><td  ><strong>0.888A</strong></td><td  ><strong>0.89A</strong></td><td  ><strong>0.395A</strong></td><td  >59.992</td><td  >79.229%</td><td  >0</td><td  ><6.0</td><td  >41.74°C</td><td  >0.818</td></tr><tr><td  ></td><td  >12.002V</td><td  >5.067V</td><td  >3.335V</td><td  >5.063V</td><td  >75.588</td><td  ></td><td  ></td><td  ></td><td  >38.05°C</td><td  >115.14V</td></tr><tr><td  ><strong>80W</strong></td><td  ><strong>5.682A</strong></td><td  ><strong>1.085A</strong></td><td  ><strong>1.088A</strong></td><td  ><strong>0.494A</strong></td><td  >79.942</td><td  >81.888%</td><td  >0</td><td  ><6.0</td><td  >43.29°C</td><td  >0.836</td></tr><tr><td  ></td><td  >12.021V</td><td  >5.067V</td><td  >3.335V</td><td  >5.062V</td><td  >97.633</td><td  ></td><td  ></td><td  ></td><td  >39.31°C</td><td  >115.14V</td></tr></tbody></table></div><p>Efficiency under light loads should be higher. We would like to see three out of four tests with over 80% efficiency. </p><h2 id="2-or-10w-load-test">2% or 10W Load Test</h2><p>From July 2020, the ATX spec requires 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units, we dial 2% of their max-rated capacity.</p><div ><table><tbody><tr><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>1.472A</strong></td><td  ><strong>0.255A</strong></td><td  ><strong>0.255A</strong></td><td  ><strong>0.053A</strong></td><td  >20.115</td><td  >73.301%</td><td  >0</td><td  ><6.0</td><td  >25.77°C</td><td  >0.678</td></tr><tr><td  ></td><td  >12.032V</td><td  >5.06V</td><td  >3.326V</td><td  >5.061V</td><td  >27.451</td><td  ></td><td  ></td><td  >23.78°C</td><td  >115.15V</td></tr></tbody></table></div><p>With super-light loads, the platform delivers high efficiency. </p><h2 id="efficiency-amp-power-factor">Efficiency & Power Factor</h2><p>Next, we plotted a chart showing the PSU&apos;s efficiency at low loads and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills. The same goes for Power Factor.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3cgxhPLPukmFcov2sKcCrM.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/77vDVdmzVEmaRkHhkD9NwM.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ShR7XDsoCzwyFVopWqGG4N.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Q9CSufyVLm5EmZRn4kGK8N.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hLkGZakkVST76oZ9aX8uDN.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UMrZSXWECEyRKoqBWUVFHN.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Efficiency is high enough with normal and super-light loads, but not so high with light loads. Moreover, the APFC converter needs tuning for higher PF readings with 230V input. </p><h2 id="5vsb-efficiency">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>1</strong></td><td  ><strong>0.1A</strong></td><td  >0.511W</td><td  >76.183%</td><td  >0.053</td></tr><tr><td  ></td><td  >5.108V</td><td  >0.671W</td><td  ></td><td  >115.16V</td></tr><tr><td  ><strong>2</strong></td><td  ><strong>0.25A</strong></td><td  >1.276W</td><td  >78.775%</td><td  >0.123</td></tr><tr><td  ></td><td  >5.104V</td><td  >1.62W</td><td  ></td><td  >115.16V</td></tr><tr><td  ><strong>3</strong></td><td  ><strong>0.55A</strong></td><td  >2.804W</td><td  >79.183%</td><td  >0.235</td></tr><tr><td  ></td><td  >5.097V</td><td  >3.541W</td><td  ></td><td  >115.15V</td></tr><tr><td  ><strong>4</strong></td><td  ><strong>1A</strong></td><td  >5.087W</td><td  >79.344%</td><td  >0.339</td></tr><tr><td  ></td><td  >5.086V</td><td  >6.411W</td><td  ></td><td  >115.15V</td></tr><tr><td  ><strong>5</strong></td><td  ><strong>1.5A</strong></td><td  >7.612W</td><td  >79.897%</td><td  >0.398</td></tr><tr><td  ></td><td  >5.074V</td><td  >9.529W</td><td  ></td><td  >115.16V</td></tr><tr><td  ><strong>6</strong></td><td  ><strong>3A</strong></td><td  >15.111W</td><td  >78.062%</td><td  >0.482</td></tr><tr><td  ></td><td  >5.037V</td><td  >19.357W</td><td  ></td><td  >115.15V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/oWJaFZnoq24aT73NjPmPAW.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/koV7kfDzbnwxBNxVYv3jEW.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail is not efficient and this is a great shame!</p><h2 id="power-consumption-in-idle-and-standby">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>Idle</strong></td><td  >12.043V</td><td  >5.056V</td><td  >3.323V</td><td  >5.057V</td><td  >4.15</td><td  >0.252</td></tr><tr><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >115.16V</td></tr><tr><td  ><strong>Standby</strong></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >0.012</td><td  >0.001</td></tr><tr><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >115.16V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/yPEMZ5FWyQDpFrTKkeeNEZ.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/39Z5E6w97v3J7ZYuCkA5JZ.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Vampire power is low. </p><h2 id="fan-rpm-delta-temperature-and-output-noise">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/mvdmHiqVgrp62DZSVBfaFb.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/mvdmHiqVgrp62DZSVBfaFb.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/eZbbRohRnrQHzc8vP6kfwc.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/eZbbRohRnrQHzc8vP6kfwc.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile is not aggressive, but the 120mm fan has to spin at high speeds under harsh conditions, to handle the thermal loads. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Fan_Noise.jpg" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/qXBR88NhyNxGE3dixjHzdn.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/qXBR88NhyNxGE3dixjHzdn.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Fan_Speed.jpg" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/mAPLzv3P43oUvZRhXgvh53.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/mAPLzv3P43oUvZRhXgvh53.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>At normal operating temperatures, close to 30 degrees Celsius, the PSU is silent with up to 500W loads. With more than 650W at it enters the 30-35 dBA zone and the 40 dBA mark is passed with 860W and higher loads. As we already stated, with a larger fan, noise output could be lower at high loads. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >OCP (Cold @ 26°C)</td><td  >12V: 102.2A (122.64%), 11.927V<br> 5V: 29A (131.82%), 5.046V<br> 3.3V: 28.4A (129.09%), 3.311V<br> 5VSB: 4.8A (160%), 4.993V</td></tr><tr><td  >OCP (Hot @ 44°C)</td><td  >12V: 101.4A (121.68%), 11.906V<br> 5V: 28.8A (130.91%), 5.057V<br> 3.3V: 27.4A (124.55%), 3.324V<br> 5VSB: 4.7A (156.67%), 4.989V</td></tr><tr><td  >OPP (Cold @ 28°C)</td><td  >1223.42W (122.34%)</td></tr><tr><td  >OPP (Hot @ 43°C)</td><td  >1223.42W (122.34%)</td></tr><tr><td  >OTP</td><td  >✓ (168°C @ 12V Heat Sink)</td></tr><tr><td  >SCP</td><td  >12V to Earth: ✓<br> 5V to Earth: ✓<br> 3.3V to Earth: ✓<br> 5VSB to Earth: ✓<br> -12V to Earth: ✓</td></tr><tr><td  >PWR_OK</td><td  >Proper operation</td></tr><tr><td  >NLO</td><td  >✓</td></tr><tr><td  >SIP</td><td  >Surge: MOV<br> Inrush: NTC Thermistor & Bypass relay</td></tr></tbody></table></div><p>The OCP triggering points are correctly set at 12V and the same goes for OPP. It is a pleasant surprise to find proper OCP triggering points on the minor rails, too. </p><h2 id="dc-power-sequencing">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/WoLUQJ5zUDBYDnfjJvF6se.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8LKruTMRk5VnkqNoLF4Kwe.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dt9ToTTdE72BPtXhHKq93f.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>No problems here since the 3.3V rail is always lower than the other two. </p><h2 id="cross-load-tests">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jJXi7sYBf5QMbKho99tAs7.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nxJt94KcxSNNN4xBxJaLv7.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rNM9aqyokECbpJqPjtTvz7.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/84KZzxJSrjx4UyJ39WFB68.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-graph">Efficiency Graph</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Efficiency.jpg" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/8w5JqGqXptgqVznD7NwJz9.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/8w5JqGqXptgqVznD7NwJz9.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-graphs">Ripple Graphs</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/EjZqcp35jFgYTaBnwPHjsC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ie8HNMZgjHy5DsMCtum2wC.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j4EEFD8STgyZMyh8L86r2D.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m7PvxcNWENJAA8mEKeEu6D.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU&apos;s top cover and cooling fan removed before taking photos with a modified Fluke Ti480 PRO camera able to deliver an IR resolution of 640x480 (307,200 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/tz8CAPvxHKcSzXQBsobDjG.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4T8pdS6LieGzoEHPsHwTpG.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bagfoyRe6m2aSCWhBN5EtG.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ifJnhKEvqpT8RBDsVy7rwG.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cujx3FARPUWXDXVDcRMf2H.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 12V board exceeded 100 degrees Celsius without active cooling and a half load for ten minutes. The FETs on this board can handle the heat, but up to a point, which is why active cooling is required at increased loads. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.007V</td><td  >11.930V</td><td  >0.64%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.063V</td><td  >4.997V</td><td  >1.30%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.334V</td><td  >3.228V</td><td  >3.17%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.049V</td><td  >4.990V</td><td  >1.17%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.007V</td><td  >11.898V</td><td  >0.90%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.062V</td><td  >4.984V</td><td  >1.55%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.334V</td><td  >3.229V</td><td  >3.16%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.048V</td><td  >4.966V</td><td  >1.62%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.009V</td><td  >11.909V</td><td  >0.83%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.062V</td><td  >4.996V</td><td  >1.31%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.333V</td><td  >3.225V</td><td  >3.24%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.048V</td><td  >4.997V</td><td  >1.01%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >11.983V</td><td  >11.909V</td><td  >0.62%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.051V</td><td  >4.982V</td><td  >1.37%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.330V</td><td  >3.219V</td><td  >3.34%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.031V</td><td  >4.973V</td><td  >1.14%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >11.984V</td><td  >11.890V</td><td  >0.78%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.050V</td><td  >4.968V</td><td  >1.62%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.329V</td><td  >3.219V</td><td  >3.29%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.030V</td><td  >4.977V</td><td  >1.06%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >11.985V</td><td  >11.906V</td><td  >0.66%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.051V</td><td  >4.987V</td><td  >1.26%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.329V</td><td  >3.214V</td><td  >3.45%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.031V</td><td  >4.978V</td><td  >1.06%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/32vfsHhB3wqidPzjfzaS2Q.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HFmeVuWQJszamQdaQDBY5Q.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gFrotcLNLrouo9AEeEih8Q.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/h62BtDgjcnzp856eZojMBQ.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Xpn6XE4LJUMFHycnfbGAEQ.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C9KBYNv8NiSdTc9xRKfiHQ.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tYtoTSTm4xGF8F6nWx5LLQ.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wYAhnNr8565sHCxrxnFnNQ.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Transient response is great on all rails! </p><h2 id="advanced-transient-response-tests-atx-3-0-amp-12vhpwr">Advanced Transient Response Tests (ATX 3.0 & 12VHPWR)</h2><p>The Intel ATX v3.0 spec, besides the 12VHPWR connector, also introduced new requirements for transient response testing. You can read more on our <a href="https://www.tomshardware.com/reviews/gigabyte-ud1000gm-pg5-review-the-first-pcie-gen-5-compatible-psu/ntel%20ATX%20v3.0">ATX v3.0 analysis</a>. So we have to conduct extra transient response tests in the new generation PSUs to check if they meet the ATX v3.0 requirements. </p><p><br></p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QvnwXDdC4VP65UiuozqWt.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4SHU8zbx7Xe7KLZ3XfBtz.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PSU doesn&apos;t have a problem with the tougher ATX 3.0 transient response tests for units with 12VHPWR connectors. All rails are within limits in all tests. </p><h2 id="turn-on-transient-tests">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LwMXX3z3ZgBL6FaANYXBrE.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6H5x8ToeZKFD62Qx3JMBvE.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PW8iJVHfJKLUMJ2mNCJ8yE.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Everything went fine in the turn-on transient response tests. </p><h2 id="power-supply-timing-tests">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From the year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150 ms and the PWR_OK delay (T3) from 100 to 150 ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >68ms</td><td  >132ms</td></tr><tr><th  ><strong>100%</strong></th><td  >74ms</td><td  >127ms</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9y7rwFAjqhfp6Unv3ZCLWU.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KRTeBmKmZ9TbkhogUBU3ZU.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oZzcBTXmpq9LRFYbdMVdcU.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yFGmL3JryUmmLGRFYcCAiU.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PWR_OK delay is within the 100-150ms region, so the PSU supports the alternative sleep mode recommended by the ATX spec.</p><h2 id="ripple-measurements">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU&apos;s DC rails. This phenomenon significantly decreases the capacitors&apos; lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap&apos;s useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>10% Load</strong></td><td  >16.1 mV</td><td  >5.4 mV</td><td  >5.7 mV</td><td  >13.0 mV</td><td  >Pass</td></tr><tr><td  ><strong>20% Load</strong></td><td  >13.7 mV</td><td  >5.0 mV</td><td  >5.0 mV</td><td  >12.4 mV</td><td  >Pass</td></tr><tr><td  ><strong>30% Load</strong></td><td  >17.4 mV</td><td  >5.5 mV</td><td  >7.4 mV</td><td  >12.6 mV</td><td  >Pass</td></tr><tr><td  ><strong>40% Load</strong></td><td  >18.2 mV</td><td  >6.3 mV</td><td  >6.5 mV</td><td  >13.5 mV</td><td  >Pass</td></tr><tr><td  ><strong>50% Load</strong></td><td  >19.7 mV</td><td  >6.0 mV</td><td  >6.3 mV</td><td  >13.6 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vXKoS3kAXhwYQBZ8fWVpeY.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AEPpkeTHN5uh6iZ5LjikiY.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cjSFsUCgpSLtHLEKdZExmY.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4brosRgFt2kQnQnaDxrjpY.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Ripple suppression is good on all rails. </p><h2 id="ripple-at-full-load">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/XqZgePV2mB5MBfGAXXRSsi.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NVeSXfuZ7bNpDhoSWxAc4j.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/c4B2zM6BTkdPEu6sesrtxi.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7QVWseUdPuGZKz5GcKus8j.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/22fSS2P6QFjmvEXY4oTmT.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TqC5JKfdjDbfdrzRztuEY.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/feW4pfkYBa87VG7YSxw7d.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8PFp66p6CUBVAJW5TyjQh.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aHQxQwJAe6ZDXzqGPkiKg5.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sU7daNxHw6ZT5BVrYbDbs5.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2oQz9VUwRADsxZgD4p4K26.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Egc9dz9YK8xMdWkJWcs976.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-4">Ripple At Cross-Load 4</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QNYXckGZq8nEr7MF6Chm69.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/F9cv5yQ9Xb5vq39ktWW5L9.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mpT9UW24wfqv27xhnRQmQ9.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dWQiw7p4Ds57LRpTndVgV9.jpg" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can cause increased static noise in your headphones or/and speakers.</p><p>΅We use <a href="https://www.tekbox.com/product/emcview-pc-software-emc-compliance-testing/">TekBox&apos;s EMCview</a> to conduct our EMC pre-compliance testing.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1475px;"><p class="vanilla-image-block" style="padding-top:35.73%;"><img id="" name="emi.jpg" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/pcuRhgScZ6qHKHAAdqEXCg.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1475" height="527" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/pcuRhgScZ6qHKHAAdqEXCg.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>There are some spikes with the average EMI detector, but everything is fine with the peak EMI detector. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 39 -39_Relative_Performance-small.png" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/4EwHCu7rWMePiSz3zrgzyc.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/4EwHCu7rWMePiSz3zrgzyc.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The flagship MSI PSU achieves top performance, meeting the Seasonic 1000 Prime Platinum and the EVGA 1000 P6 eye-to-eye. </p><h2 id="noise-rating">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 41 -41_Average_Noise_Output-small.png" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/7j9gZ7UR2V55esEEJWsTfg.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/7j9gZ7UR2V55esEEJWsTfg.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The average noise output is increased, because the fan has to spin at high speeds at higher loads. </p><h2 id="efficiency-rating">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 43 -43_Average_Efficiency-small.png" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/d67eQkygPaRSQeGnw398Cj.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/d67eQkygPaRSQeGnw398Cj.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The average efficiency is high enough. </p><h2 id="power-factor-rating">Power Factor Rating</h2><p>The following graphs show the PSU&apos;s average power factor reading throughout its operating range with an ambient temperature close to 30 degrees Celsius and 115V/230V voltage input. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YRCmHWm6AaSaVYUcj7GLnn.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WPJs2xvxRW9KvqXxvRpiqn.png" alt="MSI MEG Ai1000P PCIe5" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter could be tuned for higher PF readings with 230V input. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>MSI has a strong entry in the high-end category, with the MEG Ai1000P PCIe 5, which as its code name implies comes with a 12VHPWR connector. This is a true ATX 3.0-ready PSU, able to keep up with the demands of the new generation GPUs and most likely with the upcoming ones, too, since the RTX 4090 doesn&apos;t require an ATX 3.0 or PCIe 5.0 ready PSU to operate correctly. It just needs a powerful unit, especially if you plan to push its power limit up to 600 watts. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="MSI MEG Ai1000P PCIe5" src="https://cdn.mos.cms.futurecdn.net/Czqz5xucF8P9gQvpDt43A7.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Czqz5xucF8P9gQvpDt43A7.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The MSI MEG Ai1000P PCIe 5 is a fine PSU, topping our performance charts. Its main competitors are the <a href="https://www.tomshardware.com/reviews/seasonic-prime-ultra-platinum-1000w-psu,5397.html">Seasonic Prime 1000 Platinum</a> and the <a href="https://www.tomshardware.com/reviews/evga-supernova-1000-p6-power-supply">EVGA 1000 P6</a>, none of which are ATX 3.0 and PCIe 5.0 ready. <br><br>Even if you plan on getting an Nvidia GeForce RTX 4090, you don’t need an ATX 3.0, PCIe 5.0 ready PSU. Older but strong PSUs will deliver the necessary power, though you&apos;ll have to deal with unwieldy (and possibly dangerous) adapters. So if you&apos;re spending well over  $1,000 on a new high-end graphics card, you may want to invest in one of these new power supplies. Even if you don&apos;t plan on buying a high-end GPU in the near future, if you&apos;re buying a new PSU now that you plan to use for several years, it&apos;s at least worth considering buying one that supports the latest standard.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Right-Angle 16-pin Connector May Save A Lot of RTX 4090 GPUs (Updated) ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/news/right-angle-16-pin-connector-may-save-a-lot-of-rtx-4090-gpus</link>
                                                                            <description>
                            <![CDATA[ Seasonic shows off a 90-degree 16-pin power connector for Nvidia's GeForce RTX 4090 graphics cards. ]]>
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                                                                        <pubDate>Tue, 25 Oct 2022 23:57:11 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 12:56:48 +0000</updated>
                                                                                                                                            <category><![CDATA[GPUs]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Zhiye Liu ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/HhmwL5w9ggUtLCPfqGjTi4.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Zhiye’s love for PC hardware began when he accidentally set his Pentium P54CS PC on fire, short-circuiting his entire home. From that day on, he has constantly pursued greater hardware knowledge, which ultimately led him from being a power user to a writer at Tom’s Hardware. When Zhiye’s not covering the latest news on CPUs or GPUs, you can find him overclocking RAM to the latest trance hits.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Seasonic/Bilibili]]></media:credit>
                                                                                                                                                                        <media:description><![CDATA[16-pin Adapter]]></media:description>                                                            <media:text><![CDATA[16-pin Adapter]]></media:text>
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                                <p><a href="https://t.bilibili.com/720886294898540663" target="_blank">Seasonic</a> (via <a href="https://twitter.com/9550pro/status/1584825767175032832?s=20&t=xctJQH601s7JMK1MI_SHxQ" target="_blank">HXL</a>) has teased a sample of the brand&apos;s upcoming 90-degree 16-pin power connector for Nvidia&apos;s <a href="https://www.tomshardware.com/features/nvidia-ada-lovelace-and-geforce-rtx-40-series-everything-we-know">GeForce RTX 40-series</a> graphics cards. The design will potentially mitigate the <a href="https://www.tomshardware.com/news/rtx-4090-first-melted-adapter-cable">meltdown issues</a> with standard 16-pin power adapters on the <a href="https://www.tomshardware.com/reviews/nvidia-geforce-rtx-4090-review">GeForce RTX 4090</a>.</p><p>So far, there have been <a href="https://www.tomshardware.com/news/another-geforce-rtx-4090-16-pin-adapter-bites-the-dust">three user reports</a> (now apparently four) of the 16-pin power adapters melting. Admittedly, it&apos;s a small number compared to the number of GeForce RTX 4090 graphics cards Nvidia has sold, but there still may be affected users out there that haven&apos;t come forward. However, it&apos;s a severe problem since the issue can potentially be a fire hazard, so Nvidia has wasted no time investigating the situation.</p><p>Due to the thickness of the GeForce RTX 4090, consumers are likely having problems installing the flagship <a href="https://www.tomshardware.com/features/nvidia-ada-lovelace-and-geforce-rtx-40-series-everything-we-know">Ada Lovelace</a> graphics cards inside cases that don&apos;t have the luxury of space. It&apos;s not unreasonable to think that some users may have to bend the cable for the 16-power adapter more than they should to close the case&apos;s side panel.</p><p>Like any power cable, bending the 16-pin adapter&apos;s cable immoderately, whether vertically or horizontally, can cause the terminal to come loose and mess up the integrity of the mating. As a result, the load becomes unbalanced over the remaining terminals, which increases the risk of overheating and melting the connector. Cablemod, a popular custom cable vendor, recommends at least 35mm of space from the 16-pin power connector before bending the cable. However, we&apos;ve seen <a href="https://www.hardwareluxx.de/community/threads/atx-3-0-und-12vhpwr-netzteile.1324076/">user feedback</a> that the problem persists even at longer distances, for example, 40mm.</p><p>Seasonic isn&apos;t the only one with a workaround. Cablemod has announced the brand&apos;s custom <a href="https://www.tomshardware.com/news/rtx-4090-right-angle-adapter">right-angle 16-pin power adapter</a>, which uses a multiple PCB design and promises zero bending. While the adapter sells on October 31, the pricing is unknown. Seasonic&apos;s 90-degree connector doesn&apos;t look as pretty as Cablemod&apos;s adapter, but it should work similarly. Unfortunately, we can&apos;t see the other end of the cable, so we&apos;re unsure if Seasonic&apos;s product is an adapter or a special cable designed to connect directly to the brand&apos;s power supplies. The connector from the photograph is a sample, and Seasonic didn&apos;t reveal the launch date or pricing.</p><p>While right-angle adapters can reduce cable bending, owners aren&apos;t out of the danger zone yet. Remember that the <a href="https://www.tomshardware.com/news/pcie-5-power-connector-600w-next-gen-amd-nvidia-gpus">12VHPWR</a> power connector has a service life of 30 connection cycles. PCI-SIG detected the same mating issues around 40 cycles.</p><p>Up to now, we&apos;ve only seen complaints from consumers using the bundle 4x8-pin to 1x16-pin power adapter. <a href="https://www.tomshardware.com/news/intel-atx-v3-psu-standard">ATX 3.0 power supply</a> owners seem unaffected. These power supplies already come with the 12VHPWR connector, so adapters aren&apos;t needed. On the flip side, there aren&apos;t many ATX 3.0 units on the market, and they are expensive.</p><p>It&apos;s curious that the potential problems with the power adapter apparently never showed up in Nvidia&apos;s testing. We&apos;ve checked the GeForce RTX 4090&apos;s documentation and online user manuals, and there are no instructions or guidelines on manipulating the 16-pin power connector or its cable. Did Nvidia honestly not know about the issue? If so, it may want to rethink its procedures.<br><br>The chipmaker does warn against using third-party adapters, such as the Cablemod and the <a href="https://www.tomshardware.com/news/right-angle-16-pin-connector-may-save-a-lot-of-rtx-4090-gpus">upcoming Seasonic one</a>, which will void your warranty — though note that all the cases of melted connectors so far have been with the official Nvidia adapter. Can someone build a better right-angle connector than Nvidia&apos;s official adapter? Almost certainly, and it will still technically void your warranty.</p><p><strong>Updated 10/26/2022 9:00 pm PT: </strong>Added the relevant information about the usage of third-party adapters from Nvidia documentation included with the GeForce RTX 4090 Founders Edition.</p><p>"Use only the included PCIe Gen 5 compliant power connector adapter for your GeForce RTX 40-series Founders Edition graphics card. Use of non-compliant or third-party power connector adapters may cause technical issues, and may void your manufacturer warranty."</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:4032px;"><p class="vanilla-image-block" style="padding-top:75.00%;"><img id="" name="IMG_8913.jpg" alt="Nvidia Documentation" src="https://cdn.mos.cms.futurecdn.net/CjuonTf7bDWtSNYyQZj6g4.jpg" mos="" align="middle" fullscreen="1" width="4032" height="3024" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/CjuonTf7bDWtSNYyQZj6g4.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><iframe src="https://content.jwplatform.com/players/XDf5PcNM.html" id="XDf5PcNM" title="How To Choose A Graphics Card" width="960" height="540" frameborder="0" scrolling="auto" allowfullscreen></iframe>
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                                                            <title><![CDATA[ Seasonic's PSUs with Next-Gen 12VHPWR Connector to Start at $230 ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/news/seasonic-psus-with-12vhpwr-connector-to-start-at-230</link>
                                                                            <description>
                            <![CDATA[ Entry-level Seasonic's ATX 3.0 PSUs with 12VHPWR connector for next-generation graphics cards not going to be too expensive. ]]>
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                                                                        <pubDate>Fri, 02 Sep 2022 15:33:33 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 12:52:08 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                <author><![CDATA[ ashilov@gmail.com (Anton Shilov) ]]></author>                    <dc:creator><![CDATA[ Anton Shilov ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/uMZ5kNphxA2Ut6whdLaSQV.png ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Anton Shilov has been in the PC industry since 1990s playing games, building PCs, and writing stories about pretty much everything that relates to PCs, Macs, smartphones, tablets, and even fab equipment. Over his career, he has worked at a variety of high-ranking websites, including AnandTech, EE Times, TechRadar, X-bit labs, and now Tom&#039;s Hardware. When Anton is not reading or writing about something high-tech, he is probably watching a good movie, playing a video game, or spending time with his family.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Amphenol]]></media:credit>
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                                <p>As launch dates of next-generation graphics cards with a <a href="https://www.tomshardware.com/news/pcie-5-power-connector-600w-next-gen-amd-nvidia-gpus">12VHPWR power connector</a> inch closer, we see more makers of power supply units roll out their ATX 3.0 offerings. Seasonic yet has to announce its ATX 3.0 PSUs formally, but numerous retailers in North America already list these parts. So far, we have seen pretty expensive ATX 3.0 power supplies, but Seasonic&apos;s PS Vertex lineup will include models that cost around $230. </p><p>Seasonic&apos;s PS Vertex ATX 3.0 power supply family will include four SKUs: 80 Plus Gold-rated 1000W and 1200W models, as well as 80 Plus Platinum-badged 1000W and 1200W models, as discovered by <a href="https://twitter.com/momomo_us/status/1565681656417046528">@momomo_us</a>. These PSUs are currently listed at numerous U.S. and Canada stores, including <a href="https://www.provantage.com/service/searchsvcs/L-SESN?SEC=%40SESN&QUERY=Seasonic+PS+Vertex&SUBMIT.x=0&SUBMIT.y=0">ProVantage</a> and <a href="https://www.tech-america.com/p/go/go.asp?SearchString=Seasonic+PS+Vertex">Tech-America</a>, where they cost between $231.23 and $304.78. </p><p>Being aimed at enthusiasts, Seasonic&apos;s PS Vertex ATX 3.0 PSUs are fully modular and are equipped with a large fan to ensure stable performance under high loads. The key selling feature of these power supplies is their 12VHPWR connector for next-generation graphics cards. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/47z2QGcZTpTTUaULJ7sQCX.png" alt="Seasonic" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xGBK6yvnk8uDrzkbvTvj4X.png" alt="Seasonic" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p><br></p><p>Upcoming graphics cards from AMD and Nvidia (which are set to become the <a href="https://www.tomshardware.com/reviews/best-gpus,4380.html">best graphics cards</a>) are expected to use ATX 3.0-standard 12+4-pin auxiliary PCIe 5.0 power connector called 12VHPWR that can deliver up to 600W to a graphics card, depending on its needs and PSU capabilities (depending on the application, it is 150W, 300W, 450W or 600W). The 12VHPWR uses 12 pins for power delivery, whereas the four remaining pins carry sideband signals, such as sensing the connector&apos;s/PSU&apos;s initial allowable power and maximum allowable power. These sideband signals are implemented to ensure that an add-on card does not draw power above certain limits and burn PSU down. </p><p>Seasonic&apos;s PS Vertex 1000W 80 Plus Gold is the cheapest ATX 3.0 power supply we have encountered, but as the standard gets more widespread, we will undoubtedly see even more affordable options. Meanwhile, keeping in mind that these PSUs are designed to deliver up to 600W of power to an add-on card, these will be high-wattage power supplies that will be priced accordingly.</p><iframe src="https://content.jwplatform.com/players/4Z0km6XF.html" id="4Z0km6XF" title="Buy the Right Motherboard" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe>
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                                                            <title><![CDATA[ Seasonic Prime TX-1600 Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/seasonic-prime-tx-1600-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ The Seasonic Prime TX-1600 is one of the best PSUs, money can get you today. ]]>
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                                                                        <pubDate>Thu, 01 Sep 2022 12:13:43 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:25:57 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Seasonic Prime TX-1600]]></media:description>                                                            <media:text><![CDATA[Seasonic Prime TX-1600]]></media:text>
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                                <p>The Seasonic Prime TX-1600 deserves a place in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best PSUs article</a>, as the second best option, behind the mighty Corsair AX1600i. The latter remains the performance king, but it doesn&apos;t have a PCIe 5.0 connector since at the time it was introduced, there weren&apos;t 12+4 pin PCIe connectors. Seasonic&apos;s engineers did a fine job on this platform, and we are looking for an updated design providing full ATX 3.0 compatibility. </p><p>Seasonic&apos;s newest additions in its flagship Titanium efficiency TX line are the TX-1600 and TX-1300, two powerful PSUs able to support power-hungry gaming systems and workstations. We will look at the TX-1600 in this review and compare it against strong competitors from Corsair, be quiet, Thermaltake, and other key brands with a strong presence in the high-end PSU market. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5EdP4Tze56TCmSHJ4HFPwK.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/64x8F3iapu3SyRT29vu54L.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ksmXwcrqvuB8vWXz5P2G9L.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cvh8EbmmJGBfxdJPPGajFL.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q6ApQBBoU4Z5PKQeL3HBPL.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vaGLoSYHF4LGkbFSCAQwcL.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bB3dYki4WChMKVqWEY54mL.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zu8ziHndKsvrjtrie6chrL.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/exvU22VTcdJ93729hLm3yL.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eofphStsoR4PAqU5ngVU9M.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wQ23AkwBZLRJW2J8PrJ2PM.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/z23fy766NwJ5t6bCmSTKWM.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The TX-1600 has large dimensions, measuring 210mm in depth, so you must check if your chassis can accommodate it before you get it. That said, most normal dimension ATX chassis will be compatible. The fully modular cable design will make the installation easy despite the large footprint. </p><p>This is a high-end and expensive PSU, which is clearly shown by the exterior design and the quality finish. Moreover, the bundle is rich, including, among others, Velcro straps, zip ties, and a case badge. There is also a pouch for storing any unused modular cables. Given the amount of provided cables, you will surely need it. </p><p>Although the TX-1600 is a new PSU featuring two 12VHPWR connectors, it still isn&apos;t ATX 3.0 compatible. According to Seasonic, the TX-1600 supports systems where the AIC (Add-in Card) is up to 450W, so the PSU conforms with ATX 3.0 up to 1000W. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/h6iNN3zp2P2jH5YEFBHy9h.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YXxgH6invQ3p65z53hM5Fh.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ri8wD75WbRUVJdeUyRt6Nh.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/syhFgTkMkQyTPeiid4oFWh.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2QbMsmNecM6wau2d5Eipfh.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/V8YY2KVgPjxgMNWH948Hmh.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/o6qCtVk2oWu7ST8xNXyj8X.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dDaXKtSE94BVbfYypUysth.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Tj5QLVzqJPcrfGKatzrzzh.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-2">Specifications</h2><div ><table><tbody><tr><td  ><p>Manufacturer (OEM)</p></td><td  ><p>Seasonic</p></td></tr><tr><td  ><p>Max. DC Output</p></td><td  ><p>1600W</p></td></tr><tr><td  ><p>Efficiency</p></td><td  ><p>80 PLUS Titanium, Cybenetics Titanium (91-93%)</p></td></tr><tr><td  ><p>Noise</p></td><td  ><p>Cybenetics A (20-25 dB[A])</p></td></tr><tr><td  ><p>Modular</p></td><td  ><p>✓ (Fully)</p></td></tr><tr><td  ><p>Intel C6/C7 Power State Support</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Operating Temperature (Continuous Full Load)</p></td><td  ><p>0 - 50 °C (derating from 100 % to 80 % from 40 °C to 50 °C)</p></td></tr><tr><td  ><p>Over Voltage Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Under Voltage Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Over Power Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Over Current (+12V) Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Over Temperature Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Short Circuit Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Surge Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Inrush Current Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Fan Failure Protection</p></td><td  ><p>✗</p></td></tr><tr><td  ><p>No Load Operation</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Cooling</p></td><td  ><p>135mm Fluid Dynamic Bearing Fan (HA13525H12SF-Z)</p></td></tr><tr><td  ><p>Semi-Passive Operation</p></td><td  ><p>✓ (selectable)</p></td></tr><tr><td  ><p>Dimensions (W x H x D)</p></td><td  ><p>150 x 85 x 210mm</p></td></tr><tr><td  ><p>Weight</p></td><td  ><p>3.03 kg (6.7 lb)</p></td></tr><tr><td  ><p>Form Factor</p></td><td  ><p>ATX12V v2.52, EPS 2.92</p></td></tr><tr><td  ><p>Warranty</p></td><td  ><p>12 Years</p></td></tr></tbody></table></div><h2 id="power-specifications-2">Power Specifications</h2><div ><table><tbody><tr><td  ><strong>Rail</strong></td><td  ></td><td  ><strong>3.3V</strong></td><td  ><strong>5V</strong></td><td  ><strong>12V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>-12V</strong></td></tr><tr><td  ><strong>Max. Power</strong></td><td  ><strong>Amps</strong></td><td  >25</td><td  >25</td><td  >133.33</td><td  >3</td><td  >0.5</td></tr><tr><td  ></td><td  ><strong>Watts</strong></td><td  ></td><td  >125</td><td  >1600</td><td  >15</td><td  >6</td></tr><tr><td  ><strong>Total Max. Power (W)</strong></td><td  ></td><td  ></td><td  >1600</td><td  ></td><td  ></td><td  ></td></tr></tbody></table></div><h2 id="cables-amp-connectors-2">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Description</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (620mm)</th><td  >1</td><td  >1</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (710mm)</th><td  >3</td><td  >3</td><td  >16AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (760mm)</th><td  >8</td><td  >8</td><td  >16AWG</td><td  >No</td></tr><tr><th  >12+2 pin PCIe (760mm)</th><td  >2</td><td  >2</td><td  >16-28AWG</td><td  >No</td></tr><tr><th  >SATA (510mm+150mm+150mm+150mm)</th><td  >4</td><td  >16</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (410mm+150mm)</th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4 pin Molex (460mm+125mm+125mm)</th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1360mm) - C19 coupler</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >-</td></tr></tbody></table></div><p>Plenty of cables are provided, offering many connectors, including a pair of 12VHPWR. The PCIe 5.0 cables can handle 600W, but the PSU&apos;s respective outputs are rated at 450W. An issue we spotted here is that the sense pins of the 12+2 pin connector are grounded, informing the graphics card that the PSU can deliver the full 600W, but this is not accurate, according to Seasonic&apos;s statement. </p><p>We would like to see the extra two pins on the 12VHPWR connector. One of them handles the optional power-ok sideband signal from the Add-in PCIe card. This signal enhances the system&apos;s protection. The other sideband signal, routed from the fourth signal pin of the 12VHPWR connector, is the CARD_CBL_PRES which is not supported by the TX-1600. </p><p>Briefly, this signal informs the PSU how many graphics cards are connected, allowing it to decide how to configure the Sense 0/1 sideband signals and set the power levels it will deliver to its 12VHPWR connectors. From the moment the TX-1600 has two 12VHPWR connectors, the CARD_CBL_PRES signal would be helpful. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JKYP3PwoconbjB8uBtWV2T.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/thFgyhEUcSA8CwqUkjbFBT.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fFnnP8jwMYKBvKgw8DSoKT.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Zdi9sbX9f9F7ytKP7PrMTT.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GiqZ2YzeT45yjwC2zzHneT.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EJ2DuFgyoumRRhhzqVhKoT.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hn5qoongG8KPFwWBfanJyT.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-2">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  ><kbd><strong>General Data</strong></kbd></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><kbd><strong>Primary Side</strong></kbd></td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >5x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td></tr><tr><td  >Inrush Protection</td><td  >2x NTC Thermistor MF72-20D20M (20 Ohm) & Relay</td></tr><tr><td  ><p>Bridge Rectifier(s) (Standby Mode)</p></td><td  ><div>1x Shindengen <a href="https://pdf1.alldatasheet.com/datasheet-pdf/view/201998/SHINDENGEN/LL25XB60.html">LL25XB60</a> (600V, 25A @ 113°C)</div></td></tr><tr><td  ><p>Rectifier FETs</p></td><td  ><div>4x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPB60R040C7-DS-v02_00-EN.pdf?fileId=5546d46258fc0bc101591799c3465e8a">IPB60R040C7</a> (600V, 32A @ 100°C, Rds(on): 0.040Ohm)</div></td></tr><tr><td  >APFC MOSFETs</td><td  ><div>4x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPA60R099P6-DS-v02_01-EN.pdf?fileId=5546d461464245d301468f0e6251673a">IPA60R099P6</a> (600V, 24A @ 100°C, Rds(on): 0.099Ohm)</div></td></tr><tr><td  >APFC Boost Diodes</td><td  ><div>2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IDH10G65C6-DS-v02_00-EN.pdf?fileId=5546d4625cc9456a015cd505b4ec2e17">IDH10G65C6</a> (650V, 10A @ 140°C)</div></td></tr><tr><td  >Bulk Cap(s)</td><td  ><div>1x Nippon Chemi-Con (420V, 680uF, 2,000h @ 105°C, <a href="https://www.chemi-con.co.jp/products/relatedfiles/capacitor/catalog/KMZN-e.PDF">KMZ</a>) & 2x Nippon Chemi-Con (420V, 820uF each or 1640uF combined, 2,000h @ 105°C, <a href="https://www.chemi-con.co.jp/products/relatedfiles/capacitor/catalog/KHEN-e.PDF">KHE</a>)</div></td></tr><tr><td  >Main Switchers</td><td  ><div>4x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP60R099CP-DS-v02_02-en.pdf?fileId=db3a304412b407950112b42e3e6b4987">IPP60R099CP</a> (600V, 19A @ 100°C, Rds(on): 0.099Ohm)</div></td></tr><tr><td  >Drivers ICs</td><td  >2x Silicon Labs <a href="https://eu.mouser.com/datasheet/2/472/Si823x-2507830.pdf">Si8233BD</a></td></tr><tr><td  >APFC Controller</td><td  >Texas Instruments <a href="https://www.ti.com/lit/ds/symlink/ucc28070.pdf?ts=1654452994591">UCD28070</a></td></tr><tr><td  >Resonant Controller</td><td  >Champion <a href="http://docplayer.net/101507033-Cm6901t2-sls-src-llc-sr-controller-with-1-fm-2-pwms.html">CM6901T2X</a></td></tr><tr><td  >Topology</td><td  ><div>Primary side: Bridgeless, Interleaved PFC, Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</div></td></tr><tr><td  ><kbd><strong>Secondary Side</strong></kbd></td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >16x Nexperia <a href="https://assets.nexperia.com/documents/data-sheet/PSMN1R0-40YLD.pdf">PSMN1R0-40YLD</a> (40V, 198A @ 100°C, Rds(on): 1.93mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters</td></tr><tr><td  >Filtering Capacitors</td><td  ><p>Electrolytic: 7x Nippon Chemi-Con (105°C, W), 1x Nippon Chemi-Con (5-6,000h @ 105°C, <a href="https://chemi-con.com/wp-content/uploads/2021/05/KZH-Series.pdf">KZH</a>), 1x Nippon Chemi-Con (2-5,000h @ 105°C, <a href="https://chemi-con.com/wp-content/uploads/2021/05/KZE-Series.pdf">KZE</a>), 3x Nippon Chemi-Con (4-10,000h @ 105°C, <a href="https://chemi-con.com/wp-content/uploads/2021/05/KY-Series.pdf">KY</a>), 2x Rubycon (3-6,000h @ 105°C, <a href="https://www.rubycon.co.jp/wp-content/uploads/catalog-aluminum/YXG.pdf">YXG</a>)<br> Polymer: 18x Nippon Chemi-Con, 20x FPCAP</p></td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7527RA (OCP, OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Controller</td><td  >Weltrend <a href="http://www.weltrend.com/upload/website/product/WT51F104_DataSheet_EN_V3.0.pdf">WT51F104</a></td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA13525H12SF-Z (135mm, 12V, 0.5A, Fluid Dynamic Bearing Fan)</td></tr><tr><td  ><kbd><strong>5VSB Circuit</strong></kbd></td><td  >-</td></tr><tr><td  >Rectifier</td><td  ><div>1x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC100N06LS3-DS-v02_03-en.pdf?fileId=db3a30431ddc9372011ebb0823387fd7">BSC100N06LS3</a> FET (60V, 36A @ 100°C, Rds(on): 10mOhm)</div></td></tr><tr><td  >Standby PWM Controller</td><td  >Power Integrations <a href="https://eu.mouser.com/datasheet/2/328/innoswitch3-ce_family_datasheet-1145285.pdf">INN3164C</a></td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/N8x2ZMFePFrZg8pRdweu8a.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q2gYuCyBb5pcy9RMLeY6Ha.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YX2HLViii3CuLWU6wTUWQa.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bkrLm7JyPxe6EEbWx2jJZa.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4vM9Ph6tfiop3LGFrnnkia.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/w4DKoy2oJbdmPcYDxSPTg7.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Seasonic used top-notch parts, as expected, in a high-end platform. The sad part is that it didn&apos;t go wild in the design section, using a totem-pole PFC and GaN MODFETs. Its engineers preferred a more conventional approach which still can achieve high performance, but it cannot meet the totem pole in terms of efficiency (and performance if we take the AX1600i as reference). It would be nice to see more brands following the totem-pole design and digital controllers, especially in the high-end market. Because only when totem pole APFC overruns the high-end market will we start seeing this highly efficient design in the lower segments, too. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/trh9GrbTgqdm29oynCgMJg.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BtqbMfcoQpr8faavdMssSg.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LpD3XYPUVayAmvTvVHtubg.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yE2ZaYhHrbdrRNFJvYtWkg.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/V8wMBAMmD4zreVRoxWJBsg.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient/EMI filter has all the necessary parts, including an MOV and an NTC thermistor and bypass relay combo. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kX4gaT2ujdDAuRsTVrhiSk.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zvuvMNj28ZDgVh3fCrsgZk.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The single bridge rectifier is for the standby rail only, since the PSU uses a bridgeless PFC, where FETs are used instead of the typical bridge rectifiers, for higher efficiency. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aYBwf5Zmgj4egCcHeQx6i4.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r7ETw2ZJtvSheQycJMxMp4.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yWMyaMptDVwW2zCQXgDsu4.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FxJZPBXJXRC7BbhSRtVs35.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WCe2JYjfrjPqxdLxv89JC5.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC circuit has four Infineon FETs and two boost diodes because it uses an interleaved design, where two APFC converters operate in parallel, offering lower energy losses. The next best thing to totem-pole PFC is an interleaved PFC. The bulk caps are by Chemi-Con and have enough capacity to meet the ATX spec&apos;s hold-up time requirements. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/SmeobRMzo9UrSfEfs6TgmB.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xPtA2VRdNB3fntVfZSUDdB.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gtdKT64MwDs6YNDKxSv4vB.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fcb4DkoFUn7WAPDFpaTmyX.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CsrToaJATyX9zDyQraFN8Y.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main FETs are four Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP60R099CP-DS-v02_02-en.pdf?fileId=db3a304412b407950112b42e3e6b4987">IPP60R099CP</a> installed in a full-bridge topology. Two Silicon Labs <a href="https://eu.mouser.com/datasheet/2/472/Si823x-2507830.pdf">Si8233BD</a> drive them. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/batvh7UFBTYiyFGtFVZc7G.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YZNQjQ8j7yFqDXLWs5thFG.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/x2aN8EicADKSqbzdFp3qNG.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jUyYgMdjMkwqQms4V4LmfT.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Sixteen Nexperia FETs regulate the 12V rail, while a pair of DC-DC converters utilize the minor rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/utpabEgtL35EAzUeHk6APK.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FMFJebcvVdqH2kGHd4uCWK.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SzCoKFF96hioDZWoAfrGdK.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6dNmu8Wxpjti3pYvcQZemK.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The filtering caps are by Chemi-Con mostly, the electrolytics, and many polymer caps are also used. </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="standby_controller_&_5VSB_rectifier.jpg" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/3JhF2e8Mu2RZPHgWzUXLYD.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The standby PWM controller is a Power Integrations <a href="https://eu.mouser.com/datasheet/2/328/innoswitch3-ce_family_datasheet-1145285.pdf">INN3164C</a> IC. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3dDAWWdGLBgqYsgGF4mC88.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7BB6Ahus8vXhcyTZ5ZsUL8.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/75dWyPH3rrhhhSWtcKzhX8.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Besides bus bars, we also find several polymer and electrolytic caps on the face of the modular PCB. </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="supervisor_IC_&_fan_controller.jpg" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/JrnfzqCpEJaHFLVCrDpaqn.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The main supervisor IC is a Weltrend WT7527RA IC. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9qArkJSw4PtLNEWmqkKtgj.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SMLWp3e9aYNjUapx9NreYj.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/34frjiUG2tgDN5gQeFVKPj.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fGrDUnZUWJVu4GPix3wZCj.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oXyCZGJitBzuvYFrmpLtzi.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Soldering quality is good.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ufbmhtSoJkiAu8rQzWRJWa.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ugud8FhteJec5QZR5dTeda.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Seasonic used a fluid dynamic bearing fan, provided by Hong Hua. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="d7b3b52c-3321-44c7-9c5b-ba3ef7f74ec1">            <a href="https://www.newegg.com/corsair-axi-series-ax1600i-cp-9020087-na-1600w/p/1HU-028E-00004" data-model-name="Corsair AX1600i" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/pr3AYGCChWpuRfcStxUWCY.jpg" alt="Corsair AX1600i"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair AX1600i</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star half"></span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="90" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="b6acd90c-55f5-4d5b-a4aa-5a6536495893">            <a href="https://www.newegg.com/thermaltake-toughpower-tf1-ps-tpd-1550fnfatu-1-1550w/p/N82E16817153430" data-model-name="Thermaltake Toughpower TF1 1550W" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/ywnPnUrHfJ4gXbuRjHZdDh.jpg" alt="Thermaltake Toughpower TF1 1550W"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Thermaltake Toughpower TF1 1550W</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="ebb17bf2-3b1c-4d20-9b5f-57d158460202">            <a href="https://www.newegg.com/corsair-hx1500i-cp-9020215-na-1500w/p/N82E16817139288" data-model-name="CORSAIR HX1500i" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/t4mQhjJKC7k7JGwyF9qAw3.jpg" alt="CORSAIR HX1500i"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">CORSAIR HX1500i</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-2">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Ede33KVMsxwjZGK3yVuKu4.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fsGNyz4maiHz72oeM8dL35.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jbggHi25bvRgqUjh7XGA75.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WyWiS7FU5S8opSbmX5dwB5.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KLcTQgRk9wzYNe3GM97qK5.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xTfd5Ry5DQa5svpRuXBzR5.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8KTiibNoEgJk7dFh52Axa5.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/L9zjkvDbCafWECcTzMX8g5.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is not as tight as in the digital units from Corsair, Asus, and Wentai, but it is pretty tight. At 5VSB, the most insignificant rail when it comes to load regulation, the TX-1600 takes over the top spot. </p><h2 id="hold-up-time-2">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DUrnpbzX3u7em8TFb6vBB7.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j9sSYN8KU9mf8PnSd8R3G7.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/43GyWgaAvf2oxmUskmKpK7.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AWQzaEoed6p24WMovPj3fF.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is extra long and the power ok signal is accurate. </p><h2 id="inrush-current-2">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pTMFBPoASS9nMnEhx7QZoM.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3aoGvYeQuXJMvb2L6PjMvM.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Inrush current is a bit higher at 115V, compared to most competitors, and at a normal level, given the PSU&apos;s capacity, with 230V input. </p><h2 id="leakage-current-2">Leakage Current</h2><p>In layman&apos;s terms, leakage current is the unwanted transfer of energy from one circuit to another. In power supplies, it is the current flowing from the primary side to the ground or the chassis, which in the majority of cases is connected to the ground. For measuring leakage current, we use a <a href="https://www.gwinstek.com/en-global/products/detail/GPT-9900">GW Instek GPT-9904</a> electrical safety tester instrument.</p><p>The leakage current test is conducted at 110% of the DUT&apos;s rated voltage input (so for a 230-240V device, we should conduct the test with 253-264V input). The maximum acceptable limit of a leakage current is 3.5 mA and it is defined by the IEC-60950-1 regulation, ensuring that the current is low and will not harm any person coming in contact with the power supply&apos;s chassis.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 14b -27b_Leakage_Current_Comparison_264V.png" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/tdA7kBQMCvKP8yzHhUGYoR.png" mos="" align="middle" fullscreen="" width="651" height="490" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Leakage current is higher than the other PSUs in the chart, still much lower than the max allowed limit. </p><h2 id="10-110-load-tests-2">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>10%</strong></td><td  ><strong>11.504A</strong></td><td  ><strong>1.982A</strong></td><td  ><strong>1.976A</strong></td><td  ><strong>0.987A</strong></td><td  >160.039</td><td  >91.365%</td><td  >0</td><td  ><6.0</td><td  >44.79°C</td><td  >0.976</td></tr><tr><td  > </td><td  >12.033V</td><td  >5.047V</td><td  >3.34V</td><td  >5.07V</td><td  >175.17</td><td  ></td><td  ></td><td  ></td><td  >40.71°C</td><td  >115.13V</td></tr><tr><td  ><strong>20%</strong></td><td  ><strong>24.033A</strong></td><td  ><strong>2.977A</strong></td><td  ><strong>2.966A</strong></td><td  ><strong>1.186A</strong></td><td  >320.023</td><td  >93.842%</td><td  >0</td><td  ><6.0</td><td  >45.36°C</td><td  >0.985</td></tr><tr><td  ></td><td  >12.030V</td><td  >5.041V</td><td  >3.338V</td><td  >5.061V</td><td  >341.027</td><td  ></td><td  ></td><td  ></td><td  >41.05°C</td><td  >115.09V</td></tr><tr><td  ><strong>30%</strong></td><td  ><strong>36.876A</strong></td><td  ><strong>3.477A</strong></td><td  ><strong>3.462A</strong></td><td  ><strong>1.379A</strong></td><td  >479.547</td><td  >94.175%</td><td  >0</td><td  ><6.0</td><td  >46.42°C</td><td  >0.985</td></tr><tr><td  ></td><td  >12.026V</td><td  >5.035V</td><td  >3.336V</td><td  >5.077V</td><td  >509.224</td><td  ></td><td  ></td><td  ></td><td  >41.67°C</td><td  >115.05V</td></tr><tr><td  ><strong>40%</strong></td><td  ><strong>49.801A</strong></td><td  ><strong>3.978A</strong></td><td  ><strong>3.959A</strong></td><td  ><strong>1.58A</strong></td><td  >639.968</td><td  >93.987%</td><td  >0</td><td  ><6.0</td><td  >47.4°C</td><td  >0.989</td></tr><tr><td  ></td><td  >12.023V</td><td  >5.029V</td><td  >3.335V</td><td  >5.066V</td><td  >680.904</td><td  ></td><td  ></td><td  ></td><td  >42.36°C</td><td  >115.01V</td></tr><tr><td  ><strong>50%</strong></td><td  ><strong>62.336A</strong></td><td  ><strong>4.977A</strong></td><td  ><strong>4.951A</strong></td><td  ><strong>1.777A</strong></td><td  >799.73</td><td  >93.523%</td><td  >486</td><td  >9.4</td><td  >42.8°C</td><td  >0.992</td></tr><tr><td  ></td><td  >12.019V</td><td  >5.025V</td><td  >3.333V</td><td  >5.065V</td><td  >855.115</td><td  ></td><td  ></td><td  ></td><td  >48.34°C</td><td  >114.97V</td></tr><tr><td  ><strong>60%</strong></td><td  ><strong>74.946A</strong></td><td  ><strong>5.979A</strong></td><td  ><strong>5.945A</strong></td><td  ><strong>1.976A</strong></td><td  >960.233</td><td  >92.92%</td><td  >486</td><td  >9.4</td><td  >43.65°C</td><td  >0.994</td></tr><tr><td  ></td><td  >12.015V</td><td  >5.019V</td><td  >3.331V</td><td  >5.062V</td><td  >1033.396</td><td  ></td><td  ></td><td  ></td><td  >49.79°C</td><td  >114.96V</td></tr><tr><td  ><strong>70%</strong></td><td  ><strong>87.494A</strong></td><td  ><strong>6.983A</strong></td><td  ><strong>6.94A</strong></td><td  ><strong>2.174A</strong></td><td  >1119.99</td><td  >92.317%</td><td  >722</td><td  >21.8</td><td  >43.71°C</td><td  >0.995</td></tr><tr><td  ></td><td  >12.011V</td><td  >5.014V</td><td  >3.329V</td><td  >5.06V</td><td  >1213.194</td><td  ></td><td  ></td><td  ></td><td  >50.77°C</td><td  >114.93V</td></tr><tr><td  ><strong>80%</strong></td><td  ><strong>100.122A</strong></td><td  ><strong>7.991A</strong></td><td  ><strong>7.935A</strong></td><td  ><strong>2.276A</strong></td><td  >1280.073</td><td  >91.692%</td><td  >822</td><td  >26.1</td><td  >44.3°C</td><td  >0.995</td></tr><tr><td  ></td><td  >12.006V</td><td  >5.008V</td><td  >3.327V</td><td  >5.054V</td><td  >1396.048</td><td  ></td><td  ></td><td  ></td><td  >52.41°C</td><td  >114.88V</td></tr><tr><td  ><strong>90%</strong></td><td  ><strong>113.093A</strong></td><td  ><strong>8.5A</strong></td><td  ><strong>8.42A</strong></td><td  ><strong>2.378A</strong></td><td  >1439.917</td><td  >90.985%</td><td  >973</td><td  >31.3</td><td  >44.75°C</td><td  >0.996</td></tr><tr><td  ></td><td  >12.002V</td><td  >5.001V</td><td  >3.326V</td><td  >5.048V</td><td  >1582.587</td><td  ></td><td  ></td><td  ></td><td  >54.04°C</td><td  >114.84V</td></tr><tr><td  ><strong>100%</strong></td><td  ><strong>125.866A</strong></td><td  ><strong>9.011A</strong></td><td  ><strong>8.937A</strong></td><td  ><strong>2.966A</strong></td><td  >1599.951</td><td  >90.214%</td><td  >1028</td><td  >33.0</td><td  >45.32°C</td><td  >0.996</td></tr><tr><td  ></td><td  >11.998V</td><td  >4.995V</td><td  >3.324V</td><td  >5.059V</td><td  >1773.5</td><td  ></td><td  ></td><td  ></td><td  >55.38°C</td><td  >114.8V</td></tr><tr><td  ><strong>110%</strong></td><td  ><strong>138.585A</strong></td><td  ><strong>10.024A</strong></td><td  ><strong>10.026A</strong></td><td  ><strong>2.971A</strong></td><td  >1760.605</td><td  >89.374%</td><td  >1031</td><td  >33.1</td><td  >46.83°C</td><td  >0.996</td></tr><tr><td  ></td><td  >11.994V</td><td  >4.989V</td><td  >3.322V</td><td  >5.049V</td><td  >1969.92</td><td  ></td><td  ></td><td  ></td><td  >57.75°C</td><td  >114.75V</td></tr><tr><td  ><strong>CL1</strong></td><td  ><strong>0.117A</strong></td><td  ><strong>14.948A</strong></td><td  ><strong>14.895A</strong></td><td  ><strong>0A</strong></td><td  >126.32</td><td  >86.503%</td><td  >0</td><td  ><6.0</td><td  >50.42°C</td><td  >0.971</td></tr><tr><td  ></td><td  >12.026V</td><td  >5.038V</td><td  >3.33V</td><td  >5.016V</td><td  >146.013</td><td  ></td><td  ></td><td  ></td><td  >45°C</td><td  >115.14V</td></tr><tr><td  ><strong>CL2</strong></td><td  ><strong>0.116A</strong></td><td  ><strong>24.771A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  >126.406</td><td  >85.219%</td><td  >465</td><td  >8.8</td><td  >40.89°C</td><td  >0.971</td></tr><tr><td  ></td><td  >12.033V</td><td  >5.046V</td><td  >3.331V</td><td  >5.028V</td><td  >148.323</td><td  ></td><td  ></td><td  ></td><td  >48.23°C</td><td  >115.14V</td></tr><tr><td  ><strong>CL3</strong></td><td  ><strong>0.116A</strong></td><td  ><strong>0A</strong></td><td  ><strong>24.727A</strong></td><td  ><strong>0A</strong></td><td  >83.902</td><td  >79.482%</td><td  >439</td><td  >8.2</td><td  >41.15°C</td><td  >0.964</td></tr><tr><td  ></td><td  >12.019V</td><td  >5.039V</td><td  >3.336V</td><td  >5.009V</td><td  >105.554</td><td  ></td><td  ></td><td  ></td><td  >50.17°C</td><td  >115.15V</td></tr><tr><td  ><strong>CL4</strong></td><td  ><strong>133.335A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  >1600.366</td><td  >90.57%</td><td  >1027</td><td  >33.0</td><td  >43.51°C</td><td  >0.996</td></tr><tr><td  ></td><td  >12.002V</td><td  >5.005V</td><td  >3.333V</td><td  >4.948V</td><td  >1766.982</td><td  ></td><td  ></td><td  ></td><td  >54.25°C</td><td  >114.8V</td></tr></tbody></table></div><p>The PSU doesn&apos;t have a problem delivering close to 139A at 12V, at high operating temperatures and for prolonged periods. Moreover, its fan spins at low speeds, even during the full load and over-load tests, so the output noise remains low. </p><h2 id="20-80w-load-tests-2">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>20W</strong></td><td  ><strong>1.234A</strong></td><td  ><strong>0.494A</strong></td><td  ><strong>0.493A</strong></td><td  ><strong>0.199A</strong></td><td  >20.013</td><td  >62.29%</td><td  >0</td><td  ><6.0</td><td  >40.24°C</td><td  >0.875</td></tr><tr><td  ></td><td  >12.046V</td><td  >5.058V</td><td  >3.346V</td><td  >5.034V</td><td  >32.146</td><td  ></td><td  ></td><td  ></td><td  >37.23°C</td><td  >115.17V</td></tr><tr><td  ><strong>40W</strong></td><td  ><strong>2.719A</strong></td><td  ><strong>0.692A</strong></td><td  ><strong>0.69A</strong></td><td  ><strong>0.298A</strong></td><td  >40.008</td><td  >77.593%</td><td  >0</td><td  ><6.0</td><td  >40.88°C</td><td  >0.928</td></tr><tr><td  ></td><td  >12.026V</td><td  >5.057V</td><td  >3.346V</td><td  >5.035V</td><td  >51.558</td><td  ></td><td  ></td><td  ></td><td  >37.55°C</td><td  >115.16V</td></tr><tr><td  ><strong>60W</strong></td><td  ><strong>4.202A</strong></td><td  ><strong>0.891A</strong></td><td  ><strong>0.888A</strong></td><td  ><strong>0.397A</strong></td><td  >60.006</td><td  >82.444%</td><td  >0</td><td  ><6.0</td><td  >41.91°C</td><td  >0.947</td></tr><tr><td  ></td><td  >12.027V</td><td  >5.053V</td><td  >3.344V</td><td  >5.039V</td><td  >72.796</td><td  ></td><td  ></td><td  ></td><td  >38.18°C</td><td  >115.15V</td></tr><tr><td  ><strong>80W</strong></td><td  ><strong>5.682A</strong></td><td  ><strong>1.089A</strong></td><td  ><strong>1.086A</strong></td><td  ><strong>0.496A</strong></td><td  >79.975</td><td  >85.897%</td><td  >0</td><td  ><6.0</td><td  >42.29°C</td><td  >0.957</td></tr><tr><td  ></td><td  >12.027V</td><td  >5.051V</td><td  >3.342V</td><td  >5.042V</td><td  >93.11</td><td  ></td><td  ></td><td  ></td><td  >38.32°C</td><td  >115.15V</td></tr></tbody></table></div><p>The fan doesn&apos;t spin at light loads, if you enable the semi-passive mode. </p><h2 id="2-or-10w-load-test-2">2% or 10W Load Test</h2><p>From July 2020, the ATX spec requires 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units, we dial 2% of their max-rated capacity.</p><div ><table><tbody><tr><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>2.456A</strong></td><td  ><strong>0.277A</strong></td><td  ><strong>0.277A</strong></td><td  ><strong>0.055A</strong></td><td  >32.151</td><td  >73.199%</td><td  >0</td><td  ><6.0</td><td  >29.03°C</td><td  >0.909</td></tr><tr><td  ></td><td  >12.028V</td><td  >5.062V</td><td  >3.349V</td><td  >5.023V</td><td  >43.92</td><td  ></td><td  ></td><td  >28.13°C</td><td  >115.15V</td></tr></tbody></table></div><p>The 70% mark is easily passed, with a 2% load. </p><h2 id="efficiency-amp-power-factor-2">Efficiency & Power Factor</h2><p>Next, we plotted a chart showing the PSU&apos;s efficiency at low loads and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills. The same goes for Power Factor.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/6cmAf6sD9D8xT4n2UNnrs.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JvGsHR5XJ9QbyZEk6LMow.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9UFsJJoWp49kL8e7NTjB33.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/A5hp5AeZ83tyRFnEmu4W93.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y8KLMNZFcHRyncwSTNi4D3.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CBWRvvXcFGekKrwdoJ8xG3.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>This is a highly efficient platform, but it could be further improved at light and super-light loads. Not that it delivers mediocre efficiency levels in these load ranges, but because the competition raised the bar too high. </p><h2 id="5vsb-efficiency-2">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>1</strong></td><td  ><strong>0.1A</strong></td><td  >0.501W</td><td  >79.601%</td><td  >0.06</td></tr><tr><td  ></td><td  >5.005V</td><td  >0.63W</td><td  ></td><td  >115.18V</td></tr><tr><td  ><strong>2</strong></td><td  ><strong>0.25A</strong></td><td  >1.254W</td><td  >84.915%</td><td  >0.134</td></tr><tr><td  ></td><td  >5.013V</td><td  >1.477W</td><td  ></td><td  >115.18V</td></tr><tr><td  ><strong>3</strong></td><td  ><strong>0.55A</strong></td><td  >2.766W</td><td  >86.023%</td><td  >0.253</td></tr><tr><td  ></td><td  >5.027V</td><td  >3.215W</td><td  ></td><td  >115.18V</td></tr><tr><td  ><strong>4</strong></td><td  ><strong>1A</strong></td><td  >5.056W</td><td  >85.595%</td><td  >0.366</td></tr><tr><td  ></td><td  >5.054V</td><td  >5.907W</td><td  ></td><td  >115.18V</td></tr><tr><td  ><strong>5</strong></td><td  ><strong>1.5A</strong></td><td  >7.636W</td><td  >84.995%</td><td  >0.434</td></tr><tr><td  ></td><td  >5.089V</td><td  >8.985W</td><td  ></td><td  >115.18V</td></tr><tr><td  ><strong>6</strong></td><td  ><strong>3.001A</strong></td><td  >15.44W</td><td  >83.152%</td><td  >0.528</td></tr><tr><td  ></td><td  >5.146V</td><td  >18.569W</td><td  ></td><td  >115.18V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ZF5HW6QB64U2PoEGmG6RTF.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s8YKM5F6MAsFM6YjCR3vZF.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail is highly efficient! </p><h2 id="power-consumption-in-idle-and-standby-2">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>Idle</strong></td><td  >12.132V</td><td  >5.068V</td><td  >3.351V</td><td  >5.021V</td><td  >12.674</td><td  >0.667</td></tr><tr><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >115.16V</td></tr><tr><td  ><strong>Standby</strong></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >0.02</td><td  >0.002</td></tr><tr><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >115.16V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/VuN7Zf3mtwumcXDL9mji4K.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hfJzJdPkcKbCmWp7kRUq8K.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Vampire power is low with 115V. It would be nice to see below 0.1W with 230V. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-2">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/eQKBNHVfCvRxx92jENfN5Z.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/eQKBNHVfCvRxx92jENfN5Z.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/cxDYCkTcDtKV5Cvn4LMFBd.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/cxDYCkTcDtKV5Cvn4LMFBd.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile is relaxed even at harsh operating conditions. The highly efficient platform helps in that, because energy losses are minimized. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Fan_Noise.jpg" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/AMsoMTbEyveAVNCUtqPj6.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/AMsoMTbEyveAVNCUtqPj6.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Fan_Speed.jpg" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/pcDuXwbBDjAdtg476W6ht3.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/pcDuXwbBDjAdtg476W6ht3.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>At normal operating temperatures, close to 30 degrees Celsius, the PSU&apos;s passive operation lasts long and isn&apos;t affected by the load on the minor rails. It needs 1300W of load to enter the 30-35 dBA range, so this unit is ideal for high power consumption systems with low output noise. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-2">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  ><p>OCP (Cold @ 28°C)</p></td><td  >12V: 169A (126.77%), 11.991V 5V: 34.9A (139.6%), 5.053V 3.3V: 32.9A (131.6%), 3.341V 5VSB: 5.1A (170%), 5.210V</td></tr><tr><td  ><p>OCP (Hot @ 41°C)</p></td><td  >12V: 168.4A (126.32%), 11.992V 5V: 34.8A (139.2%), 5.044V 3.3V: 33.0A (132%), 3.338V 5VSB: 4.8A (160%), 5.223V</td></tr><tr><td  ><p>OPP (Cold @ 31°C)</p></td><td  ><p>2089.77W (130.61%)</p></td></tr><tr><td  ><p>OPP (Hot @ 41°C)</p></td><td  ><p>2023.79W (126.49%)</p></td></tr><tr><td  ><p>OTP</p></td><td  ><p>✓ (162°C @ 12V Heat Sink)</p></td></tr><tr><td  ><p>SCP</p></td><td  ><p>12V to Earth: ✓<br> 5V to Earth: ✓<br> 3.3V to Earth: ✓<br> 5VSB to Earth: ✓<br> -12V to Earth: ✓</p></td></tr><tr><td  ><p>PWR_OK</p></td><td  ><p>Proper operation</p></td></tr><tr><td  ><p>NLO</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>SIP</p></td><td  ><p>Surge: MOV<br> Inrush: NTC Thermistor & Bypass relay</p></td></tr></tbody></table></div><p>The over power and over current protection features are correctly set on all rails but 5V, where OCP is set too high. Moreover, there is over temperature protection along with the other, essential protection features. </p><h2 id="dc-power-sequencing-2">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Gawn6dxJPoHV3vYoeAcnZ8.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/g3qsKW3JExUBuwTpd3QQh8.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gVoo8nMWyriCwmKNzJXxr8.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>No problems here since the 3.3V rail is always lower than the other two. </p><h2 id="cross-load-tests-2">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-2">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mokBxdhvd8wXJSKQePXKaD.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/chtge3hMpDEByQjtQpsYaQ.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Axuuxgk9nHuKFaUsGwPpdQ.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HCVuxC2hNuFYPgLiqE4hMH.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-graph-2">Efficiency Graph</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Efficiency.jpg" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/wSNSnTN5DewTSDDEgCPw4V.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/wSNSnTN5DewTSDDEgCPw4V.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-graphs-2">Ripple Graphs</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/e9LnicoLE25uXjYKFpzT5Y.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eT5qohkAXA8tYRpEop3T9Y.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qjbbmFDNhoFKszFcp2A2EY.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LWQrjuTVaCAeGjqCDTqWJY.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-2">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU&apos;s top cover and cooling fan removed before taking photos with a modified Fluke Ti480 PRO camera able to deliver an IR resolution of 640x480 (307,200 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/khe2wUvz2VnPyjbe5TKs9f.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cc3ChAczjv3La48bz4ndJf.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Kk2UiMXFqy7wGYy2gwBSTf.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hwBb5SdwEc85UyTRdNnvbf.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eH7Wi9FwFMtne3fteZ9Qkf.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We didn&apos;t measure high temperatures inside the PSU during this test. The highly efficient platform minimizes energy losses,</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-2">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-2">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.030V</td><td  >11.939V</td><td  >0.75%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.045V</td><td  >4.943V</td><td  >2.02%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.340V</td><td  >3.213V</td><td  >3.80%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.057V</td><td  >5.002V</td><td  >1.10%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-2">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.029V</td><td  >11.941V</td><td  >0.73%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.044V</td><td  >4.942V</td><td  >2.01%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.340V</td><td  >3.213V</td><td  >3.81%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.055V</td><td  >5.006V</td><td  >0.97%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-2">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.029V</td><td  >11.949V</td><td  >0.67%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.043V</td><td  >4.943V</td><td  >1.98%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.339V</td><td  >3.212V</td><td  >3.82%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.054V</td><td  >5.020V</td><td  >0.68%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-2">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.019V</td><td  >11.955V</td><td  >0.53%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.028V</td><td  >4.931V</td><td  >1.93%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.335V</td><td  >3.203V</td><td  >3.96%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.060V</td><td  >5.014V</td><td  >0.92%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-2">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.019V</td><td  >11.957V</td><td  >0.51%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.026V</td><td  >4.954V</td><td  >1.44%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.334V</td><td  >3.236V</td><td  >2.94%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.061V</td><td  >5.043V</td><td  >0.36%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-2">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.019V</td><td  >11.953V</td><td  >0.55%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.027V</td><td  >4.921V</td><td  >2.10%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.334V</td><td  >3.200V</td><td  >4.02%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.061V</td><td  >5.022V</td><td  >0.78%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8rTT9BUrFxrr9pRmFCVDfk.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LWmYkoTgH5e5yQx8D9Hxik.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DiKrDvLYGWR44riVSZiHok.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QzhqMgT76W2pGPbXxCumrk.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/svjnBqRQW85Q6zBAJYFjwk.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3ZzRmmQYxdCEf6kVAAsF3m.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y7KcFmET2rwqy8saQXzT7m.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fzTErqFbybCBNBqQyPR8Jm.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Transient response is good at 12V and 5VSB, and average on the minor rails. </p><h2 id="turn-on-transient-tests-2">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/sti7fcZZ4WLvE5iu9ZT2HB.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b2MHs7Bbh47DRSqemJDGPB.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Lw9Sw4WXjKzTtPV5aeejUB.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail takes some time to settle down. Still, it is way below the maximum allowed, which according to the ATX spec, is 2 seconds. We didn&apos;t notice anything peculiar on the 12V rail in both turn-on transients we conducted. The slope in the "PSU off to full 12V" could be smoother, but it won&apos;t create any issues as it is. </p><h2 id="power-supply-timing-tests-2">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >37ms</td><td  >127ms</td></tr><tr><th  ><strong>100%</strong></th><td  >41ms</td><td  >126ms</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/oLQGG2kCo5XVaFZ9koAak3.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yrC5nbppfeFK6ApFe75tp3.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fKtCGCD3crfb9KMZYWJXt3.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JECGjsSpZWBPB3eETdfty3.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PWR_OK delay is within the 100-150ms region, so the PSU supports the alternative sleep mode recommended by the ATX spec.</p><h2 id="ripple-measurements-2">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU&apos;s DC rails. This phenomenon significantly decreases the capacitors&apos; lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap&apos;s useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>10% Load</strong></td><td  >12.5 mV</td><td  >4.0 mV</td><td  >4.4 mV</td><td  >25.6 mV</td><td  >Pass</td></tr><tr><td  ><strong>20% Load</strong></td><td  >10.7 mV</td><td  >4.3 mV</td><td  >4.3 mV</td><td  >10.0 mV</td><td  >Pass</td></tr><tr><td  ><strong>30% Load</strong></td><td  >10.0 mV</td><td  >3.9 mV</td><td  >4.5 mV</td><td  >23.8 mV</td><td  >Pass</td></tr><tr><td  ><strong>40% Load</strong></td><td  >10.6 mV</td><td  >4.5 mV</td><td  >4.7 mV</td><td  >14.9 mV</td><td  >Pass</td></tr><tr><td  ><strong>50% Load</strong></td><td  >10.9 mV</td><td  >4.1 mV</td><td  >4.7 mV</td><td  >10.0 mV</td><td  >Pass</td></tr><tr><td  ><strong>60% Load</strong></td><td  >10.9 mV</td><td  >4.8 mV</td><td  >4.6 mV</td><td  >17.2 mV</td><td  >Pass</td></tr><tr><td  ><strong>70% Load</strong></td><td  >11.1 mV</td><td  >5.7 mV</td><td  >4.9 mV</td><td  >15.6 mV</td><td  >Pass</td></tr><tr><td  ><strong>80% Load</strong></td><td  >11.8 mV</td><td  >6.1 mV</td><td  >10.1 mV</td><td  >17.1 mV</td><td  >Pass</td></tr><tr><td  ><strong>90% Load</strong></td><td  >12.0 mV</td><td  >5.8 mV</td><td  >11.2 mV</td><td  >16.2 mV</td><td  >Pass</td></tr><tr><td  ><strong>100% Load</strong></td><td  >16.5 mV</td><td  >6.2 mV</td><td  >11.4 mV</td><td  >14.2 mV</td><td  >Pass</td></tr><tr><td  ><strong>110% Load</strong></td><td  >17.6 mV</td><td  >5.7 mV</td><td  >12.0 mV</td><td  >16.5 mV</td><td  >Pass</td></tr><tr><td  ><strong>Crossload 1</strong></td><td  >17.4 mV</td><td  >5.2 mV</td><td  >13.0 mV</td><td  >7.0 mV</td><td  >Pass</td></tr><tr><td  ><strong>Crossload 2</strong></td><td  >14.6 mV</td><td  >6.1 mV</td><td  >6.0 mV</td><td  >6.0 mV</td><td  >Pass</td></tr><tr><td  ><strong>Crossload 3</strong></td><td  >8.5 mV</td><td  >4.6 mV</td><td  >15.7 mV</td><td  >5.8 mV</td><td  >Pass</td></tr><tr><td  ><strong>Crossload 4</strong></td><td  >16.2 mV</td><td  >5.7 mV</td><td  >5.6 mV</td><td  >9.3 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xCJgVnZeHBF6chYpwTLds8.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zsuivb8HGmRcw3RvK6NUx8.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7JnqAtwLTmBkN49whZAL39.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aj8528eJHFyLG2YgJr7V89.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Ripple suppression is fantastic! </p><h2 id="ripple-at-full-load-2">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rAMQEC7SwsNfmmNG9qdZsE.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nDozLZmSVRGePxC63a7fxE.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kSsDBFrmu8KvSAS8WVQu4F.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zedXyGinKUWquHkXat8c9F.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-2">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Pi5sFLRXXsn8mxLmKJfeEJ.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qstmypZz9hsEJZdoG5idKJ.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/w8PwrYs3w67BE2wPidoTRJ.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BcdZH7PKUsyvW6gVGksPYJ.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-2">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/b5cAe5echCoBWnUjiD2YhM.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/So9FDQG3SDh6XZuZnWzGnM.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/D3FeuRb5M7GFHLwUUxpSsM.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RvUFvU38G7k3e29Jq7f7yM.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-4-2">Ripple At Cross-Load 4</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2Qkn4JNczjdWMEDzXm9MvQ.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uqhq9qFGngDcZ63QrEcV2R.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n4FR6RviGxa5KhTjLkZZ7R.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sW2LKrFnY4SG3V2iTSFQCR.jpg" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-2">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can cause increased static noise in your headphones or/and speakers.</p><p>΅We use <a href="https://www.tekbox.com/product/emcview-pc-software-emc-compliance-testing/">TekBox&apos;s EMCview</a> to conduct our EMC pre-compliance testing.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1805px;"><p class="vanilla-image-block" style="padding-top:35.79%;"><img id="" name="emi.jpg" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/GPDxHs8SRwcrkm6usfXiaT.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1805" height="646" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/GPDxHs8SRwcrkm6usfXiaT.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>EMI emissions are low. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-2">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 39 -39_Relative_Performance-small.png" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/aKJzbGMi6ZuS478xuDLH3W.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/aKJzbGMi6ZuS478xuDLH3W.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The TX-1600 achieves top performance, taking the lead from the Wentai Aidan. Still, the Corsair AX1600i remains the performance king, thanks to its state-of-the-art platform with the totem-pole PFC converter and the digital controllers. Flextronics&apos; work on the AX1600i looks nothing less but amazing, even after several years of its release! </p><h2 id="noise-rating-2">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 41 -41_Average_Noise_Output-small.png" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/gSAW8oWhxncHXKHoq2eYyX.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/gSAW8oWhxncHXKHoq2eYyX.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Under normal operating temperatures, the average noise output is deal low for a 1600W beast. Only the Asus Rog Thor bests the TX-1600 here. </p><h2 id="efficiency-rating-2">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 43 -43_Average_Efficiency-small.png" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/Y8p5PV699zVKPrFjrLF5jZ.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Y8p5PV699zVKPrFjrLF5jZ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The Wentai unit is the performance king, followed by the AX1600i and the TX-1600 comes third. This is not bad, at all, given that the latter doesn&apos;t use a totem-pole PFC converter, like the aforementioned units. </p><h2 id="power-factor-rating-2">Power Factor Rating</h2><p>The following graphs show the PSU&apos;s average power factor reading throughout its operating range with an ambient temperature close to 30 degrees Celsius and 115V/230V voltage input. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/S2iQvj2TbLatXgQHadwuCc.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fZ2McB2rRm6KaTCKq9W2Rc.png" alt="Seasonic Prime TX-1600" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter needs tuning for higher readings, especially with 230V input. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>Seasonic made a point with the TX-1600, that it can create high-performance PSUs without using complex, digital circuits. Analog circuits still have life in them, but we are not sure for how long, considering the crazy requirements of the ATX 3.0 spec for every PSU featuring 12VHPWR connectors. </p><p>Having proper protection features and being able to deliver twice the maximum power, for short periods, is challenging, especially for high power units like the TX-1600. This is why Seasonic had to derate it for ATX 3.0 compatibility and states that this unit meets Intel&apos;s newest design guideline up to 1000W only. Despite that, the TX-1600 comes with a pair of 12VHPWR connectors, which can handle up to 600W each. Testing aside, it will be interesting to see if the TX-1600 can handle the upcoming GPUs and why not, a pair of them. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="Seasonic Prime TX-1600" src="https://cdn.mos.cms.futurecdn.net/yoW7bcqnV7WzCLR4A2wcvm.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/yoW7bcqnV7WzCLR4A2wcvm.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The primary opponents of the Seasonic TX-1600 are the Asus Rog Thor with similar capacity, which stays behind in overall performance, registering a win only in noise output. At the same time, the <a href="https://www.tomshardware.com/reviews/corsair-ax1600i-psu,5406.html">Corsair AX1600i</a> remains the performance king several years after its release. Seasonic&apos;s engineers did a fantastic job on this platform, but we expect them to continue working on it to make it fully ATX 3.0 ready. Moreover, it is high time for Seasonic to enter the totem-pole PFC train and introduce a digital platform able to take the lead from the AX1600i. </p><p>The TX-1600 achieves top performance while keeping noise output low, utilizing a conventional platform proven to be super reliable. We get it. Why mess with something new when you can achieve such results with the technology you know best? But as we see it, digital circuits are the future for PSUs. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Seasonic PSU Wattage Calculator Includes AMD Radeon RX 7000 Series GPUs ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/news/seasonic-psu-wattage-calculator-includes-amd-radeon-rx-7000-series-gpus</link>
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                            <![CDATA[ Using the calculator appears to indicate that AMD's RDNA 3 series GPUs will have similar max power consumption figures to the cards they replace. ]]>
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                                                                        <pubDate>Mon, 06 Jun 2022 13:28:38 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 12:52:19 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Mark Tyson ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/56vqMYLDaKRHPhHZgbADFR.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Mark&#039;s enthusiasm for computers dampened at an early age by the rubber-keyed Sinclair Spectrum 48K and feelings of Commodore 64 envy. However, in the mid-80s, hope in a digital future was rekindled by the purchase of an Atari 520 STe. Since that time Mark has used a multitude of computers for fun and professional endeavors. He often owned both Macs and PCs but went cold on the former after OS9 was killed off, and warmed to the latter with the introduction of Windows XP.&lt;br&gt;
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Early work years were spent in artwork and reprographics but in the late noughties, Mark started to blog about computers, Taiwanese food culture, and guitar design. This activity led to a full-time position writing about breaking PC tech news for HEXUS, for the best part of a decade. When HEXUS was abruptly closed, Mark helped with the foundation of Club386, before finding a new home at Tom&#039;s Hardware.&lt;br&gt;
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When not wearing through the keycap legends on his PC keyboards, Mark can be found wandering the computer malls of Taiwan&#039;s neon-lit conurbations and enjoying local and international cuisine.&lt;/p&gt; ]]></dc:description>
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                                <p>Seasonic&apos;s official Power Supply wattage calculator page has been updated to support the AMD Radeon RX 7000 series of GPUs. Twitter user <a href="https://twitter.com/SkyJuice60/status/1533709461420113920">SkyJuice</a> spotted the &apos;error.&apos; According to Seasonic&apos;s handy web tool, AMD&apos;s upcoming RDNA 3 graphics cards will consume similar amounts of power as their predecessors. </p><p>If you head on over to the Seasonic <a href="https://seasonic.com/wattage-calculator">wattage calculator page</a> now, you&apos;ll be greeted with a simple but functional page. You can select components from a series of drop-down lists and then press &apos;calculate&apos; to get a page full of Seasonic PSU recommendations.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:892px;"><p class="vanilla-image-block" style="padding-top:70.07%;"><img id="" name="wattage-calc-1.jpg" alt="Seasonic wattage calculator" src="https://cdn.mos.cms.futurecdn.net/vD7LHwNQZ6XTP9a2a77ruK.jpg" mos="" align="middle" fullscreen="1" width="892" height="625" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/vD7LHwNQZ6XTP9a2a77ruK.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Future)</span></figcaption></figure><p>According to the tool, a mid-range modern Core i5 system packing an AMD Radeon RX 6700 XT requires at least a 650W PSU. Swapping the GPU out to the unannounced RX 7700 XT and recalculating results in the same minimum recommendation — a 650W PSU. The database Seasonic uses also appears to hold wattage values for the Radeon RX 7800 XT and the RX 7900 XT. Below you will see the figures we got from plugging in the unannounced RX 7000 series cards and their current-gen counterparts.</p><div ><table><thead><tr><th class="firstcol " ><p>GPU</p></th><th  ><p>Graphics card power (W)</p></th><th  ><p>Recommended PSU (W)</p></th></tr></thead><tbody><tr><td class="firstcol " ><p>AMD RX 7900 XT</p></td><td  ><p>NA</p></td><td  ><p>750</p></td></tr><tr><td class="firstcol " ><p>AMD RX 6900 XT</p></td><td  ><p>335</p></td><td  ><p>750</p></td></tr><tr><td class="firstcol " ><p>AMD RX 7800 XT</p></td><td  ><p>NA</p></td><td  ><p>750</p></td></tr><tr><td class="firstcol " ><p>AMD RX 6800 XT</p></td><td  ><p>300</p></td><td  ><p>750</p></td></tr><tr><td class="firstcol " ><p>AMD RX 7700 XT</p></td><td  ><p>NA</p></td><td  ><p>650</p></td></tr><tr><td class="firstcol " ><p>AMD RX 6700 XT</p></td><td  ><p>230</p></td><td  ><p>650</p></td></tr><tr><td class="firstcol " ><p>Nvidia RTX 3070</p></td><td  ><p>220</p></td><td  ><p>750*</p></td></tr><tr><td class="firstcol " ><p>Nvidia RTX 4060</p></td><td  ><p>220+*</p></td><td  ><p>750*</p></td></tr></tbody></table></div><p>The above PC system was configured in Seasonic&apos;s calculator with an Intel Core i5-12400, a GPU as above, twin SSDs, twin system fans, and no HDDs. *Please note that Seasonic recommends a 750W PSU for the system configured with an RTX 3070, but Nvidia says it is OK with a 650W PSU. Additionally, our article about <a href="https://www.tomshardware.com/news/geforce-rtx-4060-may-consume-more-power-than-a-rtx-3070">GeForce RTX 4060 power requirement rumors</a> is based on a source saying the upcoming RTX 4060 may consume <em>more</em> power than the current RX 3070 graphics card.</p><p>The above results are interesting to see with users concerned about the ballooning power requirements of discrete GPUs for PCs. There have been a number of rumors of <a href="https://www.tomshardware.com/news/900w-rtx-40-series-gpu">very high power requirements</a> for next-gen PC GPUs. If this AMD information is accurate it could be a good sign for fans of the red team as they await some official RNDA 3 architecture and product announcements.</p><p>Seasonic&apos;s PSU calculator also features the Radeon RX 6700 non-XT, which was <a href="https://www.tomshardware.com/news/sapphire-radeon-rx-6700-custom">listed by Sapphire last week</a> but isn&apos;t yet an official product on AMD&apos;s website.</p><p>Readers should add a pinch of salt to the above data found on the Seasonic website. It is possible but unlikely that these are input errors. However, they could just be using placeholder figures rather than basing their calculations on data on the next-gen GPUs supplied by AMD.</p>
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                                                            <title><![CDATA[ Deepcool PQ850M Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/deepcool-pq850m-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ The Deepcool PQ850M uses a reliable Seasonic platform and has a weird exterior design. ]]>
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                                                                        <pubDate>Thu, 28 Apr 2022 12:00:14 +0000</pubDate>                                                                                                                                <updated>Thu, 30 Jan 2025 16:35:26 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Deepcool PQ850M]]></media:description>                                                            <media:text><![CDATA[Deepcool PQ850M]]></media:text>
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                                <p>The Deepcool PQ850M uses a pretty good and reliable Seasonic platform, which has started to show its age, though. Thanks to its terrific CWT platform, the <a href="https://www.tomshardware.com/reviews/corsair-rm850x-2021-power-supply-review">Corsair RM850x (2021)</a> remains the performance king in the 850W Gold category. The weird exterior design of the PQ850 doesn&apos;t help, either. Another decent option with similar specs from Deepcool is the <a href="https://www.tomshardware.com/reviews/deepcool-gamerstorm-dq-m-v2l-850w-power-supply-review#:~:text=Our%20Verdict,given%20the%20ten%2Dyear%20warranty.">DQ850-M-V2L</a>, which achieves better performance than the PQ850M, using a budget CWT platform. A revision of the PQ850M is required, featuring a 12+4 pin connector, to give it a chance for inclusion in our<a href="https://www.tomshardware.com/reviews/best-psus,4229.html"> best PSUs article</a>. </p><p>Deepcool enriched its PSU lines with the PQ-M series, including four models with 650W to 1000W max power. All are fully modular and use the trendy Seasonic Focus Gold platform. They have compact dimensions and are equipped with a 120mm diameter fluid dynamic bearing fan provided by Hong Hua. The exterior design looks weird because of the square holes of the fan grille. The design definitely stands out from the crowd, but not in a good way, according to our taste, at least. </p><p>This review will evaluate the second strongest member of the PQ-M line, the 850W unit, which is strong enough to support a capable gaming system. The PSU doesn&apos;t have a 12+4 pin PCIe connector, meaning that it isn&apos;t compatible with either the newest ATX spec (v3.0) or upcoming GPUs. It is not ideal to buy a PSU right now because we are in a transition phase from the previous ATX spec to the new one. </p><p>The only graphics card, so far at least, that comes with a 12+4 pin PCIe connector is the <a href="https://www.tomshardware.com/reviews/asus-geforce-rtx-3090-ti-review">Nvidia RTX 3090 Ti</a>, and it has an adapter from three 6+2 PCIe to a single 12+4 PCIe. Still, you need the PSU to be as future-proof as possible, and the upcoming GPUs will utilize the extra 4-pins so that adapters won&apos;t be fully compatible. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/tZ6wQsAGWfspNMJZJvFd2M.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BKApSbJ7VQGFYYxvowhV7M.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/U57hucf22mP9vPQL39eSDM.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Es8DEikWQ9Yg75pZHskTKM.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TLZBVB7nGKa8nnKHWuVeRM.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MpoZqjHrXBPy86gNSAoyWM.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gzHZBwyLo963tzxp5ZR5dM.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MYfNJnyZEekMeQaTWEPykM.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NPRjP4JJgpfFpKVoHdHZvM.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MshAgoPfgT652HW6hgCW3N.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B8EwAqZwEGPaqSwoykMV8N.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/paRrrUQmBRhjGtoarQrDDN.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>An extended, ten-year warranty covers the PQ850M, and its MSRP is set at 169 dollars, which is a fair amount given its features. It is certified as Gold by 80 PLUS and Platinum by Cybenetics. It also has a noise rating of Cybenetics A- (25-30 dB[A]). </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5RCGcdJDCsEPFNyMqb2UiU.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/73ucQ99o6X5q44RHoWH5qU.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NAZgWcexyRUTuNb6iR9dvU.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/92cvXibMia5dHHPyUgAC3V.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XTe7uYmBxaGU6wK7N7bk7V.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5xLcCeRajmmvQmVwvs9NEV.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oiT24DNN2ChGmWyRMWEHKV.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-3">Specifications</h2><div ><table><tbody><tr><td  ><p>Manufacturer (OEM)</p></td><td  ><p>Seasonic</p></td></tr><tr><td  ><p>Max. DC Output</p></td><td  ><p>850W</p></td></tr><tr><td  >Efficiency</td><td  >80 PLUS Gold, Cybenetics Gold (87-89%)</td></tr><tr><td  ><p>Noise</p></td><td  >Cybenetics A- (25-30 dB[A])</td></tr><tr><td  ><p>Modular</p></td><td  ><p>✓ (fully)</p></td></tr><tr><td  ><p>Intel C6/C7 Power State Support</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Operating Temperature (Continuous Full Load)</p></td><td  >0 - 40°C</td></tr><tr><td  ><p>Over Voltage Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Under Voltage Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Over Power Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Over Current (+12V) Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Over Temperature Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Short Circuit Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Surge Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Inrush Current Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Fan Failure Protection</p></td><td  ><p>✗</p></td></tr><tr><td  ><p>No Load Operation</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Cooling</p></td><td  ><p>135mm Fluid Dynamic Bearing Fan (HA13525M12F-Z)</p></td></tr><tr><td  ><p>Semi-Passive Operation</p></td><td  ><p>✓ (selectable)</p></td></tr><tr><td  ><p>Dimensions (W x H x D)</p></td><td  ><p>150 x 85 x 140mm</p></td></tr><tr><td  ><p>Weight</p></td><td  ><p>1.7 kg (3.75 lb)</p></td></tr><tr><td  ><p>Form Factor</p></td><td  ><p>ATX12V v2.53, EPS 2.92</p></td></tr><tr><td  ><p>Warranty</p></td><td  ><p>10 Years</p></td></tr></tbody></table></div><h2 id="power-specifications-3">Power Specifications</h2><div ><table><tbody><tr><td  ><strong>Rail</strong></td><td  ></td><td  ><strong>3.3V</strong></td><td  ><strong>5V</strong></td><td  ><strong>12V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>-12V</strong></td></tr><tr><td  ><strong>Max. Power</strong></td><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >70</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  ></td><td  ></td><td  >100</td><td  >840</td><td  >15</td><td  >3.6</td></tr><tr><td  ><strong>Total Max. Power (W)</strong></td><td  ></td><td  ></td><td  >850</td><td  ></td><td  ></td><td  ></td></tr></tbody></table></div><h2 id="cables-amp-connectors-3">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Description</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (610mm)</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (660mm)</th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (760mm)</th><td  >3</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (460mm+120mm+120mm+120mm)</th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (450mm+120mm) / 4-pin Molex (+120mm+120mm)</th><td  >1</td><td  >2 / 2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (450mm+120mm+120mm)</th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1370mm) - C13 coupler</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>The only three PCIe connectors are on dedicated cables, so this PSU can even power an RTX 3090 Ti, using the provided adapter. Given that it is not wise to use PCIe cables with more than one connector and that SLI and Crossfire are long dead, there is no need for more than three PCIe connectors on dedicated cables in an 850W PSU. </p><p>There are no in-cable caps, and all cables are long enough. If only the distance between the peripheral connectors was longer, at 150mm, at least. Finally, it would be nice to see thicker gauges on the ATX, EPS, and PCIe connectors. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ifut2rBym8SE4RNZ4oUqUh.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5tymDaas6NFLue3U7XcpZh.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fCmGJJnsXA3xDfTTGytFhh.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uXKw2hxFyGrpUabSBCi2wh.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gfCrDQxxQsCSsWzkNZDXAi.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HW29JKoiGN8553zmYirFHi.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-3">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  ><kbd><strong>General Data</strong></kbd></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><kbd><strong>Primary Side</strong></kbd></td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV, 1x Champion <a href="https://html.alldatasheet.com/html-pdf/1179145/CHAMP/CM02XISTR/176/1/CM02XISTR.html">CM02X</a> (Discharge IC)</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor <a href="https://pdf1.alldatasheet.com/datasheet-pdf/view/619224/ETC2/MF72-5D15.html">MF72-5D15M</a> (5Ohm) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  ><div>2x <a href="https://datasheetspdf.com/pdf-file/1343522/GOODELECTRONIC/GBU1508/1">GBU1508</a> (800V, 15A @ 100°C)</div></td></tr><tr><td  >APFC MOSFETs</td><td  ><div>2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPX60R125P6-DS-v02_00-en.pdf?fileId=5546d461464245d301468b0fade666af">IPA60R190P6</a> (600V, 12.7A @ 100°C, Rds(on): 0.19Ohm)</div></td></tr><tr><td  >APFC Boost Diode</td><td  ><div>1x STMicronics <a href="https://www.st.com/resource/en/datasheet/stth8s06.pdf">STTH8S06D</a> (600V, 8A)</div></td></tr><tr><td  >Bulk Cap(s)</td><td  ><div>1x Nippon Chemi-Con (400V, 680uF, 2,000h @ 105°C, <a href="https://www.chemi-con.co.jp/products/relatedfiles/capacitor/catalog/KMRN-e.PDF">KMR</a>)</div></td></tr><tr><td  >Main Switchers</td><td  ><div>4x Great Power <a href="http://micric.ru/data/documents/GPT13N50.pdf">GPT13N50DG</a> (500V, 13A, Rds(on): 0.49Ohm)</div></td></tr><tr><td  >APFC Controller</td><td  ><div>Champion <a href="https://docplayer.net/99673183-Cm6500un-1mhz-pfc-general-description-epa-90-zvs-like-pfc-controller-design-for-high-efficient-power-supply-at-both-full-load-and-light-load.html">CM6500UNX</a></div></td></tr><tr><td  >Resonant Controller</td><td  >Champion <a href="https://composter.com.ua/documents/Champion-CM6901T6X.pdf">CM6901T6</a></td></tr><tr><td  >Topology</td><td  ><div>Primary side: APFC, Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</div></td></tr><tr><td  ><kbd><strong>Secondary Side</strong></kbd></td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >4x Nexperia <a href="https://assets.nexperia.com/documents/data-sheet/PSMN2R6-40YS.pdf">PSMN2R6-40YS</a> (40V, 100A @ 100°C, Rds(on): 2.8mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converter(s)</td></tr><tr><td  >Filtering Capacitors</td><td  ><p>Electrolytic: 2x Nippon Chemi-Con (105°C, W), 5x Nippon Chemi-Con (2-5,000h @ 105°C, <a href="https://www.chemi-con.co.jp/products/relatedfiles/capacitor/catalog/KZELL-e.PDF">KZE</a>), 6x Nippon Chemi-Con (4-10,000h @ 105°C, <a href="http://www.chemi-con.com/upload/files/5/1/74811667552d6c4d41a84c.pdf">KY</a>)<br> Polymer: 17x FPCAP, 8x NIC, 2x no info</p></td></tr><tr><td  >Supervisor IC</td><td  >Weltrend <a href="http://www.datalinker.com.hk/uploads/spec/WT7527V_T1_datasheet_v1.01.pdf">WT7527V</a> (OCP, OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA1225H12F-Z (120mm, 12V, 0.58A, Fluid Dynamic Bearing Fan)</td></tr><tr><td  ><kbd><strong>5VSB Circuit</strong></kbd></td><td  >-</td></tr><tr><td  >Rectifier</td><td  ><div>1x M.C.C. <a href="https://www.mouser.com/datasheet/2/258/MBR1045ULPS(TO-277B)-269088.pdf">MBR1045ULPS</a> SBR (45V, 10A)</div></td></tr><tr><td  >Standby PWM Controller</td><td  >Excelliance MOS <a href="https://www.datasheet4u.com/datasheet-pdf/ExcellianceMOS/EM8569/pdf.php?id=1112112">EM8569C</a></td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rgU3NCuoN6s7axzi6wWcQF.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aWAYhviUkUxDzb67ikTRiF.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gAsDxiDodoKLkXnYgVMSyF.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/94bMWsfJfMuMQryBJaKPFG.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Deepcool utilized Seasonic&apos;s trendy Focus Plus Gold design for this series. This is a good and reliable platform but not fully compatible with the newest ATX spec. The build quality is good, and as usual, Seasonic used good parts everywhere. The heat sinks are small, and there is ample space between parts for good airflow, so the Hong Hua FDB fan won&apos;t have to work over hours. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JZ9R9mqFSYqoABUBvePjYR.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BLiKvTsNJyPKhcBSxLRNwR.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5yDwQotJSqwJb5YvXQFCTS.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P2PLCeAKALVVKt4TrD9MqS.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HiPZFkHnLUJ6VbwNAsbk8T.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DtvDzqk2JvgEg8xfz8o7UT.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/F6JN5x3E6HBcrzMTmCksqT.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient/EMI filter has all necessary parts, including an MOV and a discharge IC, providing a small efficiency boost. There is also an NTC thermistor for lowering inrush currents, supported by a bypass relay. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DKxoHgjo6t9DDR95GDqiwb.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/S5kjsDaexGYZtWZ5gpQTJc.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The pair of bridge rectifiers can handle up to 30A of current. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DgXcPyNsYLZazfANe5qKoh.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WFTxBxSq96qS6yvTGpJV8i.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bMt65ee4GELBoCVAotHWXi.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jL4PG6p9kUxeJdkuwhSwoi.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter uses two Infineon FETs and a single boost diode provided by STMicronics. The bulk cap is by Chemi-Con, and it has enough capacity to provide a longer than 17ms hold-up time. The APFC controller is a Champion <a href="https://docplayer.net/99673183-Cm6500un-1mhz-pfc-general-description-epa-90-zvs-like-pfc-controller-design-for-high-efficient-power-supply-at-both-full-load-and-light-load.html">CM6500UNX</a>. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Yp5ECrRyUcNEgEG8trJp84.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/A2Kt5dk6CKCEVpcGpoDiM4.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Aj5VfFRiTFhxCe4nDQyub4.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eWC2kYtSNHeu2rkrij5u45.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main FETs are four Great Power, installed in a full-bridge topology. An LLC resonant converter is also used to increase efficiency. The resonant controller is a Champion <a href="https://composter.com.ua/documents/Champion-CM6901T6X.pdf">CM6901T6</a>.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/o6zjASVk4FxeFjtgBaFn4C.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DzvFUoQWnqCoifGyyV3jFC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SdKsbcUccNnam836SQmLVC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s4ypFV3ZZqhN455YjWYEnC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Four Nexperia FETs regulate the 12V rail. Two DC-DC converters generate the minor rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FTES3HDbBNkGdrDzdU6rvH.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pp4pGGurV628np4f8fsGCJ.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r4cHWKmMKYvxd6aVi8A5VJ.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The electrolytic filtering caps are by Chemi-Con so that they will outlive the provided warranty. Lots of polymer caps are also used. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GQorcBEPqeHiGXxbZAYnGP.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nCkg7YZscAtQeSSwMMC5ZP.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DDpvJ4N9xXULMHmPAcUUnP.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The standby PWM controller is an Excelliance MOS <a href="https://www.datasheet4u.com/datasheet-pdf/ExcellianceMOS/EM8569/pdf.php?id=1112112">EM8569C</a>. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JmUZvuBqkAPU83hBD55oaU.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/84MSgSp3DXn2WxvwhuqU2V.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Uvj3YZe2TUGAAPJBgN8oMV.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The modular board has many polymer and two electrolytic caps. </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="supervisor_IC.jpg" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/ixefbGNZMSZNZM3z2h6uoY.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The main supervisor IC is a Weltrend <a href="http://www.datalinker.com.hk/uploads/spec/WT7527V_T1_datasheet_v1.01.pdf">WT7527V</a>.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2QQ4GzuFNovDaEncMQWm4e.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GTkqLRHxcrU2DcDET54kVe.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VeoJdmLX5YkS3hPqMvF4se.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qqXQNZuAGkV4DgDxUzZ9Lf.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8Ay7GD246JhhnpRzfiQPZf.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Soldering quality is good. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/S6m3cNv6bJByuub9VFddZj.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SmiY9B47frgmfhywkAFXAk.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The cooling fan measures 120mm across and it uses a fluid dynamic bearing. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="d6351bab-dea4-4b42-bd52-55974ea52995">            <a href="https://www.newegg.com/corsair-rmx-series-rm850x-cp-9020200-na-850w/p/N82E16817139272" data-model-name="Corsair RM850x (2021)" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/UVRxBetxEo7RNJ5fR9Pwgn.jpg" alt="Corsair RM850x (2021)"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM850x (2021)</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="2b4b391f-7a6e-4ca7-aa8d-2fa6cfc04b8e">            <a href="https://www.newegg.com/seasonic-focus-plus-850-gold-ssr-850fx-850w/p/N82E16817151188" data-model-name="Seasonic FOCUS GX-850" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/vGEFNk52qaMYA4S5HfcwAY.jpg" alt="Seasonic FOCUS GX-850"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Seasonic FOCUS GX-850</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="6afd167d-3375-4dd4-a84a-a3ee0e4da08c">            <a href="https://www.newegg.com/asus-rog-strix-850g-850w/p/N82E16817320008" data-model-name="ASUS ROG STRIX 850G" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/jx5gGDDiLyfMwZrAU9jnX8.jpg" alt="ASUS ROG STRIX 850G"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">ASUS ROG STRIX 850G</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-3">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/oAm366cAEiAKaeS98QGGk8.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CGN2efhbJqT3bfHv74vxx8.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AEWtTqNYChBNmZRAmxsqK9.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ychv4Wxfu2zr4KKChK96W9.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sue7L2FyJTxtp4YL9fcVi9.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iqndnBR4yBM9y5ezrSghu9.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pPKVnZT5t39MjFF7atwQ6A.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/88VTwrnhAPbdeco5naGpGA.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is perfect on the main three rails and acceptable at 5VSB, where it doesn&apos;t matter much as long as this rail keeps its voltages within the specified range by the ATX spec. </p><h2 id="hold-up-time-3">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/n2AAvrHSVaXyhinpj3FukC.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Bq9vT3LCVqPeTAceBDbD9D.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iYq5VnkDP6fcpg7aWmPhLD.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vn5BHaYZX2EwPDENsCkHZD.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is longer than 17ms, but the power ok signal is lower than 16ms. </p><h2 id="inrush-current-3">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Htu26ku8jHEMwkHS8bsj7H.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8ajTypRebieZvZfmys5jLH.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Inrush current is low with 115V but pretty high with 230V. A higher resistance NTC thermistor would help here. </p><h2 id="leakage-current-3">Leakage Current</h2><p>In layman&apos;s terms, leakage current is the unwanted transfer of energy from one circuit to another. In power supplies, it is the current flowing from the primary side to the ground or the chassis, which in the majority of cases is connected to the ground. For measuring leakage current, we use a <a href="https://www.gwinstek.com/en-global/products/detail/GPT-9900">GW Instek GPT-9904</a> electrical safety tester instrument.</p><p>The leakage current test is conducted at 110% of the DUT&apos;s rated voltage input (so for a 230-240V device, we should conduct the test with 253-264V input). The maximum acceptable limit of a leakage current is 3.5 mA and it is defined by the IEC-60950-1 regulation, ensuring that the current is low and will not harm any person coming in contact with the power supply&apos;s chassis.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 14b -27b_Leakage_Current_Comparison_264V.png" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/zMgJTgnCg6MxkC2HVYeupL.png" mos="" align="middle" fullscreen="" width="651" height="490" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Leakage current is higher than competing offerings, but still lower than the limit. </p><h2 id="10-110-load-tests-3">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>10%</strong></td><td  ><strong>5.242A</strong></td><td  ><strong>1.983A</strong></td><td  ><strong>1.982A</strong></td><td  ><strong>0.982A</strong></td><td  >85.01</td><td  >86.479%</td><td  >0</td><td  ><6.0</td><td  >44.78°C</td><td  >0.937</td></tr><tr><td  ></td><td  >12.098V</td><td  >5.042V</td><td  >3.33V</td><td  >5.095V</td><td  >98.302</td><td  ></td><td  ></td><td  ></td><td  >40.65°C</td><td  >115.12V</td></tr><tr><td  ><strong>20%</strong></td><td  ><strong>11.495A</strong></td><td  ><strong>2.976A</strong></td><td  ><strong>2.973A</strong></td><td  ><strong>1.181A</strong></td><td  >169.972</td><td  >89.733%</td><td  >0</td><td  ><6.0</td><td  >45.01°C</td><td  >0.962</td></tr><tr><td  ></td><td  >12.098V</td><td  >5.041V</td><td  >3.33V</td><td  >5.083V</td><td  >189.421</td><td  ></td><td  ></td><td  ></td><td  >40.34°C</td><td  >115.12V</td></tr><tr><td  ><strong>30%</strong></td><td  ><strong>18.096A</strong></td><td  ><strong>3.472A</strong></td><td  ><strong>3.468A</strong></td><td  ><strong>1.381A</strong></td><td  >254.99</td><td  >90.468%</td><td  >715</td><td  >16.8</td><td  >41.52°C</td><td  >0.975</td></tr><tr><td  ></td><td  >12.099V</td><td  >5.041V</td><td  >3.33V</td><td  >5.07V</td><td  >281.857</td><td  ></td><td  ></td><td  ></td><td  >46.39°C</td><td  >115.11V</td></tr><tr><td  ><strong>40%</strong></td><td  ><strong>24.703A</strong></td><td  ><strong>3.969A</strong></td><td  ><strong>3.964A</strong></td><td  ><strong>1.582A</strong></td><td  >340.095</td><td  >90.527%</td><td  >720</td><td  >16.9</td><td  >41.73°C</td><td  >0.981</td></tr><tr><td  ></td><td  >12.099V</td><td  >5.04V</td><td  >3.33V</td><td  >5.058V</td><td  >375.683</td><td  ></td><td  ></td><td  ></td><td  >46.87°C</td><td  >115.11V</td></tr><tr><td  ><strong>50%</strong></td><td  ><strong>30.957A</strong></td><td  ><strong>4.962A</strong></td><td  ><strong>4.956A</strong></td><td  ><strong>1.784A</strong></td><td  >425.073</td><td  >90.166%</td><td  >731</td><td  >17.2</td><td  >42.11°C</td><td  >0.984</td></tr><tr><td  ></td><td  >12.100V</td><td  >5.039V</td><td  >3.33V</td><td  >5.046V</td><td  >471.436</td><td  ></td><td  ></td><td  ></td><td  >47.68°C</td><td  >115.11V</td></tr><tr><td  ><strong>60%</strong></td><td  ><strong>37.171A</strong></td><td  ><strong>5.957A</strong></td><td  ><strong>5.948A</strong></td><td  ><strong>1.988A</strong></td><td  >509.59</td><td  >89.514%</td><td  >759</td><td  >18.4</td><td  >42.51°C</td><td  >0.986</td></tr><tr><td  ></td><td  >12.100V</td><td  >5.037V</td><td  >3.329V</td><td  >5.031V</td><td  >569.287</td><td  ></td><td  ></td><td  ></td><td  >48.62°C</td><td  >115.11V</td></tr><tr><td  ><strong>70%</strong></td><td  ><strong>43.451A</strong></td><td  ><strong>6.951A</strong></td><td  ><strong>6.94A</strong></td><td  ><strong>2.192A</strong></td><td  >594.902</td><td  >88.828%</td><td  >1015</td><td  >26.2</td><td  >43.06°C</td><td  >0.987</td></tr><tr><td  ></td><td  >12.101V</td><td  >5.036V</td><td  >3.329V</td><td  >5.019V</td><td  >669.724</td><td  ></td><td  ></td><td  ></td><td  >50.13°C</td><td  >115.1V</td></tr><tr><td  ><strong>80%</strong></td><td  ><strong>49.733A</strong></td><td  ><strong>7.947A</strong></td><td  ><strong>7.931A</strong></td><td  ><strong>2.298A</strong></td><td  >679.732</td><td  >88.084%</td><td  >1456</td><td  >36.3</td><td  >43.87°C</td><td  >0.989</td></tr><tr><td  ></td><td  >12.101V</td><td  >5.035V</td><td  >3.328V</td><td  >5.006V</td><td  >771.683</td><td  ></td><td  ></td><td  ></td><td  >51.96°C</td><td  >115.1V</td></tr><tr><td  ><strong>90%</strong></td><td  ><strong>56.410A</strong></td><td  ><strong>8.445A</strong></td><td  ><strong>8.412A</strong></td><td  ><strong>2.402A</strong></td><td  >765.14</td><td  >87.222%</td><td  >1843</td><td  >42.2</td><td  >44.68°C</td><td  >0.99</td></tr><tr><td  ></td><td  >12.101V</td><td  >5.034V</td><td  >3.328V</td><td  >4.996V</td><td  >877.233</td><td  ></td><td  ></td><td  ></td><td  >54.26°C</td><td  >115.09V</td></tr><tr><td  ><strong>100%</strong></td><td  ><strong>62.823A</strong></td><td  ><strong>8.943A</strong></td><td  ><strong>8.924A</strong></td><td  ><strong>3.016A</strong></td><td  >849.956</td><td  >86.164%</td><td  >2048</td><td  >45.5</td><td  >45.98°C</td><td  >0.99</td></tr><tr><td  ></td><td  >12.101V</td><td  >5.033V</td><td  >3.328V</td><td  >4.974V</td><td  >986.442</td><td  ></td><td  ></td><td  ></td><td  >55.77°C</td><td  >115.08V</td></tr><tr><td  ><strong>110%</strong></td><td  ><strong>69.104A</strong></td><td  ><strong>9.939A</strong></td><td  ><strong>10.003A</strong></td><td  ><strong>3.021A</strong></td><td  >934.509</td><td  >84.924%</td><td  >2060</td><td  >45.8</td><td  >46.85°C</td><td  >0.991</td></tr><tr><td  ></td><td  >12.101V</td><td  >5.032V</td><td  >3.328V</td><td  >4.966V</td><td  >1100.413</td><td  ></td><td  ></td><td  ></td><td  >57.1°C</td><td  >115.08V</td></tr><tr><td  ><strong>CL1</strong></td><td  ><strong>0.116A</strong></td><td  ><strong>11.957A</strong></td><td  ><strong>11.894A</strong></td><td  ><strong>0A</strong></td><td  >101.313</td><td  >84.291%</td><td  >733</td><td  >17.2</td><td  >39.74°C</td><td  >0.948</td></tr><tr><td  ></td><td  >12.097V</td><td  >5.036V</td><td  >3.337V</td><td  >5.102V</td><td  >120.194</td><td  ></td><td  ></td><td  ></td><td  >45.26°C</td><td  >115.12V</td></tr><tr><td  ><strong>CL2</strong></td><td  ><strong>0.116A</strong></td><td  ><strong>19.9A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  >101.418</td><td  >83.613%</td><td  >476</td><td  >12.6</td><td  >37.97°C</td><td  >0.949</td></tr><tr><td  ></td><td  >12.098V</td><td  >5.026V</td><td  >3.328V</td><td  >5.108V</td><td  >121.294</td><td  ></td><td  ></td><td  ></td><td  >45.12°C</td><td  >115.12V</td></tr><tr><td  ><strong>CL3</strong></td><td  ><strong>0.115A</strong></td><td  ><strong>0A</strong></td><td  ><strong>19.774A</strong></td><td  ><strong>0A</strong></td><td  >67.384</td><td  >77.732%</td><td  >438</td><td  >11.7</td><td  >36.69°C</td><td  >0.934</td></tr><tr><td  ></td><td  >12.097V</td><td  >5.04V</td><td  >3.337V</td><td  >5.106V</td><td  >86.69</td><td  ></td><td  ></td><td  ></td><td  >44.7°C</td><td  >115.12V</td></tr><tr><td  ><strong>CL4</strong></td><td  ><strong>70.216A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  >849.78</td><td  >86.773%</td><td  >2052</td><td  >45.6</td><td  >47.46°C</td><td  >0.99</td></tr><tr><td  ></td><td  >12.103V</td><td  >5.034V</td><td  >3.32V</td><td  >5.058V</td><td  >979.315</td><td  ></td><td  ></td><td  ></td><td  >56.99°C</td><td  >115.08V</td></tr></tbody></table></div><p>The PSU doesn&apos;t sweat at high operating temperatures, but its fan gets screaming loud. Moreover, efficiency takes a huge hit, so you better not push it so hard. </p><h2 id="20-80w-load-tests-3">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>20W</strong></td><td  ><strong>1.228A</strong></td><td  ><strong>0.496A</strong></td><td  ><strong>0.496A</strong></td><td  ><strong>0.195A</strong></td><td  >20.006</td><td  >69.956%</td><td  >0</td><td  ><6.0</td><td  >38.99°C</td><td  >0.826</td></tr><tr><td  ></td><td  >12.098V</td><td  >5.04V</td><td  >3.328V</td><td  >5.119V</td><td  >28.599</td><td  ></td><td  ></td><td  ></td><td  >36.03°C</td><td  >115.12V</td></tr><tr><td  ><strong>40W</strong></td><td  ><strong>2.702A</strong></td><td  ><strong>0.694A</strong></td><td  ><strong>0.694A</strong></td><td  ><strong>0.293A</strong></td><td  >40.006</td><td  >80.44%</td><td  >0</td><td  ><6.0</td><td  >41.27°C</td><td  >0.895</td></tr><tr><td  ></td><td  >12.098V</td><td  >5.04V</td><td  >3.329V</td><td  >5.116V</td><td  >49.735</td><td  ></td><td  ></td><td  ></td><td  >37.69°C</td><td  >115.12V</td></tr><tr><td  ><strong>60W</strong></td><td  ><strong>4.178A</strong></td><td  ><strong>0.893A</strong></td><td  ><strong>0.892A</strong></td><td  ><strong>0.391A</strong></td><td  >60.006</td><td  >84.566%</td><td  >0</td><td  ><6.0</td><td  >42.14°C</td><td  >0.921</td></tr><tr><td  ></td><td  >12.098V</td><td  >5.041V</td><td  >3.329V</td><td  >5.112V</td><td  >70.958</td><td  ></td><td  ></td><td  ></td><td  >38.38°C</td><td  >115.12V</td></tr><tr><td  ><strong>80W</strong></td><td  ><strong>5.648A</strong></td><td  ><strong>1.091A</strong></td><td  ><strong>1.09A</strong></td><td  ><strong>0.49A</strong></td><td  >79.968</td><td  >86.79%</td><td  >0</td><td  ><6.0</td><td  >44.05°C</td><td  >0.936</td></tr><tr><td  ></td><td  >12.098V</td><td  >5.04V</td><td  >3.329V</td><td  >5.108V</td><td  >92.14</td><td  ></td><td  ></td><td  ></td><td  >40.01°C</td><td  >115.12V</td></tr></tbody></table></div><p>The fan is not needed to spin under light loads, even under increased temperatures. </p><h2 id="2-or-10w-load-test-3">2% or 10W Load Test</h2><p>From July 2020, the ATX spec requires 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units, we dial 2% of their max-rated capacity.</p><div ><table><tbody><tr><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>1.248A</strong></td><td  ><strong>0.214A</strong></td><td  ><strong>0.214A</strong></td><td  ><strong>0.053A</strong></td><td  >17.161</td><td  >66.798%</td><td  >0</td><td  ><6.0</td><td  >30.33°C</td><td  >0.814</td></tr><tr><td  ></td><td  >12.095V</td><td  >5.04V</td><td  >3.33V</td><td  >5.123V</td><td  >25.692</td><td  ></td><td  ></td><td  >27.6°C</td><td  >115.11V</td></tr></tbody></table></div><p>It would be nice to see over 70% efficiency with a 2% load. </p><h2 id="efficiency-amp-power-factor-3">Efficiency & Power Factor</h2><p>Next, we plotted a chart showing the PSU&apos;s efficiency at low loads and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills. The same goes for Power Factor.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pULqsVpb6UfQBmfgAsXo7T.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dAkgpHVHRJDwjwE7WZpoGT.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/V6VFqTbNG57h32Tud9kzTT.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HgKahHKFBi8SnnyFN6TTfT.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NspXjpvRH8baJDDGDzJxpT.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ainqUSciwUQb94fSqswZwT.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>With normal loads, the competition is ahead. With 20-80W loads, the PQ850M performs better. Finally, with a 2% load, it cannot reach 70% efficiency, which is not a problem for the EVGA 850 G6, which uses a more advanced version of the Focus platform.</p><h2 id="5vsb-efficiency-3">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>1</strong></td><td  ><strong>0.1A</strong></td><td  >0.513W</td><td  >74.635%</td><td  >0.107</td></tr><tr><td  ></td><td  >5.125V</td><td  >0.687W</td><td  ></td><td  >115.11V</td></tr><tr><td  ><strong>2</strong></td><td  ><strong>0.25A</strong></td><td  >1.281W</td><td  >77.404%</td><td  >0.219</td></tr><tr><td  ></td><td  >5.121V</td><td  >1.655W</td><td  ></td><td  >115.11V</td></tr><tr><td  ><strong>3</strong></td><td  ><strong>0.55A</strong></td><td  >2.813W</td><td  >78.395%</td><td  >0.334</td></tr><tr><td  ></td><td  >5.114V</td><td  >3.588W</td><td  ></td><td  >115.11V</td></tr><tr><td  ><strong>4</strong></td><td  ><strong>1A</strong></td><td  >5.105W</td><td  >78.324%</td><td  >0.405</td></tr><tr><td  ></td><td  >5.104V</td><td  >6.518W</td><td  ></td><td  >115.11V</td></tr><tr><td  ><strong>5</strong></td><td  ><strong>1.5A</strong></td><td  >7.64W</td><td  >78.283%</td><td  >0.442</td></tr><tr><td  ></td><td  >5.093V</td><td  >9.759W</td><td  ></td><td  >115.11V</td></tr><tr><td  ><strong>6</strong></td><td  ><strong>3A</strong></td><td  >15.155W</td><td  >76.86%</td><td  >0.489</td></tr><tr><td  ></td><td  >5.051V</td><td  >19.717W</td><td  ></td><td  >115.11V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ucbmWknzSJ8yAXgMGptChZ.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yuU7CX2Nw8rTkkJUPwBQxZ.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We would like to see over 79% average efficiency at 5VSB. </p><h2 id="power-consumption-in-idle-and-standby-3">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>Idle</strong></td><td  >12.095V</td><td  >5.041V</td><td  >3.33V</td><td  >5.127V</td><td  >7.761</td><td  >0.505</td></tr><tr><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >115.11V</td></tr><tr><td  ><strong>Standby</strong></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >0.043</td><td  >0.007</td></tr><tr><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >115.11V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/azZQzcGmAzx7kA3JDLPBZe.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Mgy8s6awidQJRjBbDonKse.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Vampire power is low.</p><h2 id="fan-rpm-delta-temperature-and-output-noise-3">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/ySTkgdg4fnnvUH7vYRKeoh.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ySTkgdg4fnnvUH7vYRKeoh.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/isSp8VfPSGPpMamK4qwzdk.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/isSp8VfPSGPpMamK4qwzdk.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile pushes the small fan to its limits, under high operating conditions. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Fan_Noise.jpg" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/5G7adWdyjcoVAtPPAxaUaG.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/5G7adWdyjcoVAtPPAxaUaG.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Fan_Speed.jpg" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/cBeiYZB7QcCPiTak3oeb6L.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/cBeiYZB7QcCPiTak3oeb6L.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>At normal operating temperatures, close to 30 degrees Celsius, the PSU is silent with up to 620W loads. It exceeds 30 dBA with more than 690W, and it enters the 35-40 dBA zone with more than 750W at 12V. All in all, this is not a noisy PSU. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-3">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >OCP (Cold @ 26°C)</td><td  >12V: 99.6A (141.71%), 12.102V<br> 5V: 27.3A (136.5%), 5.019V<br> 3.3V: 26.8A (134%), 3.338V<br> 5VSB: 6.3A (210%), 4.971V</td></tr><tr><td  >OCP (Hot @ 43°C)</td><td  >12V: 83.2A (118.86%), 12.033V<br> 5V: 27.2A (136%), 4.990V<br> 3.3V: 26.6A (133%), 3.314V<br> 5VSB: 6.2A (206.67%), 4.952V</td></tr><tr><td  >OPP (Cold @ 27°C)</td><td  >1200.61W (142.93%)</td></tr><tr><td  >OPP (Hot @ 43°C)</td><td  >1001.06W (119.17%)</td></tr><tr><td  >OTP</td><td  >✓ (147°C @ secondary side)</td></tr><tr><td  >SCP</td><td  >12V to Earth: ✓<br> 5V to Earth: ✓<br> 3.3V to Earth: ✓<br> 5VSB to Earth: ✓<br> -12V to Earth: ✓</td></tr><tr><td  >PWR_OK</td><td  >Accurate but lower than 16ms</td></tr><tr><td  >NLO</td><td  >✓</td></tr><tr><td  >SIP</td><td  >Surge: MOV<br> Inrush: NTC Thermistor & Bypass relay</td></tr></tbody></table></div><p>The OCP triggering points at low temperatures are higher than usual, but this doesn&apos;t affect the PSU&apos;s operation. With increased temperatures, OCP at 12V drops notably lower, protecting the platform more effectively. The same goes for OPP. At low temperatures, it is pretty high, while with increased ambient, it drops 200W lower. We don&apos;t usually see so much difference in OCP and OPP under cold and hot conditions. </p><h2 id="dc-power-sequencing-3">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/dixbQjGesWsPFbDRNWLpPB.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nd8zkyQvuUMJEifwgpTeVC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/atWLpnKRm69U98zdmEmPsC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>No problems here since the 3.3V rail is always lower than the other two. </p><h2 id="cross-load-tests-3">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-3">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7dpTMDZdCeWjshUGxSpeiC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dpFHYzZs2ZWa5FJ57cGpsC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DPQkuWDU4yhMK4SVcEz55D.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eSy5N7MMKtYbyKZKnro7ED.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Future</small></figcaption></figure></figure><h2 id="efficiency-graph-3">Efficiency Graph</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Efficiency.jpg" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/LdPaiALzDXwu7z5WdT7f4H.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/LdPaiALzDXwu7z5WdT7f4H.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-graphs-3">Ripple Graphs</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kheT7pcMMTsepYrn49RVWT.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HEb6y5Gdh5a5mmGX3C87qT.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Wzzyo5YGTassaB5RaEXLxT.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GLJnddnEnkiknz2FJxdb6U.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-3">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU&apos;s top cover and cooling fan removed before taking photos with a modified Fluke Ti480 PRO camera able to deliver an IR resolution of 640x480 (307,200 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JiJKbYGPs84AkSPadhNKba.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5adHiyAXRbx8TCW6PWkB4b.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ogvjPJBEDDPoMegTEGRQHb.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kWyAqVXuRhcay3irgXc4Wb.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZaQ3oHL6rFrEPrB2j36i2c.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Without active cooling, the boost diode gets hot, very hot. This is strange since it is firmly secured on the APFC heat sink, using a thermal pad for better contact. Nonetheless, this diode can handle 8A with 125 degrees Celsius junction temperature. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-3">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-3">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.096V</td><td  >11.945V</td><td  >1.25%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.042V</td><td  >4.941V</td><td  >2.00%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.332V</td><td  >3.175V</td><td  >4.71%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.084V</td><td  >5.029V</td><td  >1.08%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-3">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.097V</td><td  >11.947V</td><td  >1.23%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.042V</td><td  >4.941V</td><td  >2.00%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.332V</td><td  >3.175V</td><td  >4.72%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.084V</td><td  >5.036V</td><td  >0.94%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-3">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.097V</td><td  >11.957V</td><td  >1.16%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.042V</td><td  >4.942V</td><td  >1.98%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.331V</td><td  >3.173V</td><td  >4.74%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.084V</td><td  >5.038V</td><td  >0.90%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-3">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.097V</td><td  >11.949V</td><td  >1.23%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.039V</td><td  >4.939V</td><td  >1.98%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.330V</td><td  >3.167V</td><td  >4.89%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.049V</td><td  >4.995V</td><td  >1.06%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-3">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.098V</td><td  >11.952V</td><td  >1.21%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.039V</td><td  >4.940V</td><td  >1.96%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.330V</td><td  >3.168V</td><td  >4.88%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.049V</td><td  >4.998V</td><td  >1.02%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-3">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.098V</td><td  >11.962V</td><td  >1.13%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.040V</td><td  >4.941V</td><td  >1.97%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.330V</td><td  >3.164V</td><td  >4.98%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.049V</td><td  >5.000V</td><td  >0.98%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7NUJnLRZVmDez8oDCGXvTZ.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZHvEYCp86QERzZGcodDskZ.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nVUzMcipeAqwYn2txFPc3a.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3wMFzJFgQpvHDhwDLSEzMa.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FAMgT3n6feGvzSoQKxFxZa.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/V2RPW84oka67KozYEFcUma.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y5taCXdu4oReLa35PYjkwa.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KZcwhwgtFU4JJTLVVvNPEb.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Transient response is good enough at 12V and 5VSB, decent at 5V and mediocre at 3.3V.</p><h2 id="turn-on-transient-tests-3">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/WpdJQmEEmz8BMLTC8VmubD.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Axsyc8sCFj2eVuf73HQPpD.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aNxZvDPNFWjY8ooczkwN7E.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There is a tiny voltage overshoot at 5VSB, while at 12V, we meet the usual steps and some rigging in the last test, where we apply a full load immediately after switching on the PSU. </p><h2 id="power-supply-timing-tests-3">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >90ms</td><td  >316ms</td></tr><tr><th  ><strong>100%</strong></th><td  >94ms</td><td  >318ms</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Sb5nJfRTg5AMhYcqYLdaCV.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hrqth8Fx3k8bKoW7UdFSjV.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yXrU79PXHFcQkQoGtgsCxV.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vT7zJEYD2JCqWVj7eFtnHW.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PWR_OK delay is way above the 100-150ms region, so the PSU does not support the alternative sleep mode recommended by the ATX spec. The power-on time is below 100ms, at least, but it could be close to 50ms, to not create compatibility issues with "picky" mainboards. </p><h2 id="ripple-measurements-3">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU&apos;s DC rails. This phenomenon significantly decreases the capacitors&apos; lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap&apos;s useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>10% Load</strong></font></td><td  >11.8 mV</td><td  >11.9 mV</td><td  >14.4 mV</td><td  >5.8 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>20% Load</strong></font></td><td  >13.9 mV</td><td  >13.7 mV</td><td  >16.5 mV</td><td  >6.1 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>30% Load</strong></font></td><td  >15.5 mV</td><td  >12.5 mV</td><td  >16.1 mV</td><td  >6.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>40% Load</strong></font></td><td  >15.6 mV</td><td  >12.4 mV</td><td  >16.4 mV</td><td  >6.8 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>50% Load</strong></font></td><td  >16.2 mV</td><td  >13.3 mV</td><td  >15.8 mV</td><td  >6.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>60% Load</strong></font></td><td  >16.8 mV</td><td  >13.3 mV</td><td  >16.6 mV</td><td  >7.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>70% Load</strong></font></td><td  >18.4 mV</td><td  >13.0 mV</td><td  >16.6 mV</td><td  >6.8 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>80% Load</strong></font></td><td  >18.9 mV</td><td  >14.4 mV</td><td  >17.2 mV</td><td  >8.0 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>90% Load</strong></font></td><td  >21.4 mV</td><td  >15.2 mV</td><td  >18.3 mV</td><td  >9.6 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>100% Load</strong></font></td><td  >33.7 mV</td><td  >16.3 mV</td><td  >20.1 mV</td><td  >11.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>110% Load</strong></font></td><td  >37.5 mV</td><td  >18.4 mV</td><td  >21.7 mV</td><td  >10.6 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>Crossload 1</strong></font></td><td  >18.6 mV</td><td  >14.6 mV</td><td  >17.6 mV</td><td  >6.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>Crossload 2</strong></font></td><td  >14.2 mV</td><td  >14.7 mV</td><td  >15.8 mV</td><td  >6.0 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>Crossload 3</strong></font></td><td  >11.9 mV</td><td  >11.6 mV</td><td  >14.7 mV</td><td  >5.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>Crossload 4</strong></font></td><td  >33.3 mV</td><td  >13.1 mV</td><td  >16.7 mV</td><td  >8.2 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/sjzwymvaB9FHt4NLpAYBZi.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sd2iWouFwFZJhFiwB6xqpi.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NytmLoVG6GkPhVsQYQVF2j.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/drBTFh9hyxXaq7jiRxDRBj.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There is a significant increase in the 12V rail&apos;s ripple from 90% to full load, which doesn&apos;t look nice on the charts. Still, you cannot call ripple suppression bad since 33.7mV at 12V under sky-high operating temperatures is not that high. </p><h2 id="ripple-at-full-load-3">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FWWYQbLtbMMqbxTMDpWFY6.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CUTLBT9Rvv5djdyoTusVx6.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jKDrtuLsadQxKkvme5reB7.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ss67Kd29kKtdMFraBXjoP7.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-3">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mWL3gyrWPBgjLnmnQCptNC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TrefU9ksbBtoifQ6pmkNaC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZcPENH2s6VUZhGJM8LexjC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JxtJdnaM9FNw2yNhgWeGvC.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-3">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aeCjbqyh9tdqvhMik3YHFJ.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q72i3yBwPwNtXpBhKgNuWJ.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eNZx7WddfmAsFydSrZCMmJ.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XB2HH2DxnuTxYCDosK3Q8K.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-4-3">Ripple At Cross-Load 4</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/XrDU26asivoMrGk5deuQeP.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C7RH68DLVbNHZy7DeewKqP.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xyHpKbQ5aiwZLqui53Gc2Q.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vbRiCNjcbxrahEisjUnVDQ.jpg" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-3">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can cause increased static noise in your headphones or/and speakers.</p><p>΅We use <a href="https://www.tekbox.com/product/emcview-pc-software-emc-compliance-testing/">TekBox&apos;s EMCview</a> to conduct our EMC pre-compliance testing. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1634px;"><p class="vanilla-image-block" style="padding-top:36.05%;"><img id="" name="EMI.jpg" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/vDzmac6JFK6pYPPUE3xafP.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1634" height="589" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/vDzmac6JFK6pYPPUE3xafP.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Conducted EMI emissions are low. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-3">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 39 -39_Relative_Performance-small.png" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/gpbthtWV7kcpXCPqX5tupV.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/gpbthtWV7kcpXCPqX5tupV.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance cannot meet the competition. The difference is not huge, though, but the second from the bottom place still doesn&apos;t look good. </p><h2 id="noise-rating-3">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 41 -41_Average_Noise_Output-small.png" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/nHuoVoV8o8TUhp2CtadNjZ.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/nHuoVoV8o8TUhp2CtadNjZ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Under normal operating temperatures, the average noise output is low and this is a major asset for the PQ850M</p><h2 id="efficiency-rating-3">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 43 -43_Average_Efficiency-small.png" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/hZwM5636YpqGo4GyAyCabc.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/hZwM5636YpqGo4GyAyCabc.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The average efficiency score is decent. It would be nice to be closer to or above 89%. </p><h2 id="power-factor-rating-3">Power Factor Rating</h2><p>The following graphs show the PSU&apos;s average power factor reading throughout its operating range with an ambient temperature close to 30 degrees Celsius and 115V/230V voltage input. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BdYsGPfSuneE9rvTJ6Mgcg.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6T6TVus6JwARBLtVkcVTrg.png" alt="Deepcool PQ850M" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter needs tuning for higher PF readings.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>Deepcool trusted Seasonic&apos;s trendy Focus Gold platform for the PQ-M series, which is starting to show its age, especially now that the <a href="https://www.tomshardware.com/news/intel-atx-v3-psu-standard">ATX12V v3.0</a> is out. There is no 12+4 pin connector, so that the PQ850M won&apos;t support the upcoming GPUs, and adapters are not recommended since they don&apos;t pass through the sense signals of the 12VHPWR connectors, which will unlock the full potential of the next-generation graphics cards. </p><p>The amount of PCIe connectors might trouble some of you. Still, nowadays, there is no need to install more than two graphics cards in gaming systems, so three PCIe connectors on dedicated cables will cover 99% of usage scenarios. There are also two EPS connectors available for power-hungry CPU and mainboard combinations. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="Deepcool PQ850M" src="https://cdn.mos.cms.futurecdn.net/7MEwo5Tf7VmjG29XkaqG9c.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/7MEwo5Tf7VmjG29XkaqG9c.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The PQ850M&apos;s overall performance is not far from most competing offerings, and it is among the quietest Gold PSUs with 850W capacity. This is not enough to dethrone the mighty <a href="https://www.tomshardware.com/reviews/corsair-rm850x-2021-power-supply-review">Corsair RM850x</a>, which sets the performance bar high in this category. It would help if you also kept in mind that we are in a transition phase right now, where every PSU with more than 450W capacity has to be equipped with a 12VHPWR connector to support the upcoming GPUs along with the rest changes that the ATX12V v3.0 spec requires. We expect most manufacturers to update the existing PSU models soon, so you better wait if you are not in a dead hurry for a new power supply.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ XPG Cybercore 1000 Platinum Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/xpg-cybercore-1000-platinum-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ The XPG Cybercore 1000 uses a modern platform and a top-quality fan from Nidec. ]]>
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                                                                        <pubDate>Tue, 26 Apr 2022 12:00:05 +0000</pubDate>                                                                                                                                <updated>Thu, 30 Jan 2025 13:05:37 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Tom&#039;s Hardware]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[XPG Cybercore 1000 Platinum]]></media:description>                                                            <media:text><![CDATA[XPG Cybercore 1000 Platinum]]></media:text>
                                <media:title type="plain"><![CDATA[XPG Cybercore 1000 Platinum]]></media:title>
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                                <p>The XPG Cybercore might be left a little behind by the EVGA (<a href="https://www.tomshardware.com/reviews/evga-supernova-1000-p6-power-supply">1000 P6</a>) and Asus (Rog Thor II 1000) competitors, but it features extra high build quality and uses one of the best fans we have seen in a PSU so far. Moreover, it has compact dimensions and loads of connectors, which don&apos;t include a 12+4 pin, though, and its transient response at 12V is good. Thanks to its semi-digital platform, it will be easily upgraded to meet the ATX12V v3.0 requirements, and soon enough, it will also have a 12+4 pin connector to support the <a href="https://www.tomshardware.com/reviews/asus-geforce-rtx-3090-ti-review">RTX 3090 Ti</a> and several upcoming GPUs. Its upcoming version looks promising and will probably earn a place in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best PSUs article</a>. </p><p>XPG takes power seriously since it has people with vast experience in power supplies in its arsenal. This time, it released two high-power PSUs, with 1000 W and 1300 W max power, and in today&apos;s review, we will evaluate the Cybercore 1000. For the Cybercore line, XPG teamed with Nidec, one of the best fan manufacturers, so the members of the line use top-notch fans (XPG Vento Pro 120 PWM). In PSUs, two parts are crucial: the electrolytic capacitors and the cooling fan. Usually, the latter has a problem keeping up, especially under harsh conditions, and if the cooling fan stops working, naturally, everything else will do the same after a while. </p><p>So a good fan plays a significant role in a PSU&apos;s longevity. The problem is that good fans cost a lot, so in most cases, you can see high-end PSUs using mid-level fans while the lower-end PSUs come with sleeve-bearing fans, which are not suitable for serious workloads.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fgraCgYccADZK6wL5bYD2K.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6PY8TM9Cdxb42wVtjqUWCK.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sevuRLGAZEg7oFXenEbxLK.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vyUzhkRenQXrdw2ZWjGzVK.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ioW2Dnb8FdPCcjyuGYHjgK.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gQujcFisejxCeBvi8humnK.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3re7Pv79sDMdrpBEUfUc2L.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Zh2ATVDapiExpoPi7uK58L.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LJucZGCJtFZLhwgRLA5wGL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m785qECkWDGu8ziBzTXkPL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rfpAU8rMw5KYXFBnKzrvVL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4iCPjCompsJAxRBeTWWrbL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Besides a top-quality fan, the Cybercore 1000 uses a fully modular cable design, which in this version doesn&apos;t include a 12+4 pin connector. Nonetheless, XPG informed me that they are already working on an updated version that will consist of this connector. Our best guess is that it will incorporate the rest changes required by the newest ATX spec, including improved response to transient loads. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Rz7rd4bNtaYwP5Qm5TbVPS.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9PmWZRuvFPMj5PwWHrZsVS.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ety2c4TJy78Vk7Bjy5YefS.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qKFCxpghrfsdsGYoaTCXpS.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cUyPk2z5NJe93DzExiKaxS.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rBqTqVkuNQkLyRmVC4zUAT.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BqkVeK63Nv45pTMTZTZ7LT.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/o7W8eH4hsoxuci8PkDp5VT.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-4">Specifications</h2><div ><table><tbody><tr><td  >Manufacturer (OEM)</td><td  >CWT</td></tr><tr><td  >Max. DC Output</td><td  >1000W</td></tr><tr><td  >Efficiency</td><td  >80 PLUS Platinum, Cybenetics Platinum (89-91%)</td></tr><tr><td  >Noise</td><td  >Cybenetics A- (25-30 dB[A])</td></tr><tr><td  >Modular</td><td  >✓ (fully)</td></tr><tr><td  >Intel C6/C7 Power State Support</td><td  >✓</td></tr><tr><td  >Operating Temperature (Continuous Full Load)</td><td  >0 - 40°C</td></tr><tr><td  >Over Voltage Protection</td><td  >✓</td></tr><tr><td  >Under Voltage Protection</td><td  >✓</td></tr><tr><td  >Over Power Protection</td><td  >✓</td></tr><tr><td  >Over Current (+12V) Protection</td><td  >✓</td></tr><tr><td  >Over Temperature Protection</td><td  >✓</td></tr><tr><td  >Short Circuit Protection</td><td  >✓</td></tr><tr><td  >Surge Protection</td><td  >✓</td></tr><tr><td  >Inrush Current Protection</td><td  >✓</td></tr><tr><td  >Fan Failure Protection</td><td  >✗</td></tr><tr><td  >No Load Operation</td><td  >✓</td></tr><tr><td  >Cooling</td><td  >120mm Double Ball Bearing Fan (D1225C12B6ZPAC7)</td></tr><tr><td  >Semi-Passive Operation</td><td  >✓</td></tr><tr><td  >Dimensions (W x H x D)</td><td  >150 x 85 x 160mm</td></tr><tr><td  >Weight</td><td  >1.94 kg (4.28 lb)</td></tr><tr><td  >Form Factor</td><td  >ATX12V v2.52, EPS 2.92</td></tr><tr><td  >Warranty</td><td  >10 Years</td></tr></tbody></table></div><h2 id="power-specifications-4">Power Specifications</h2><div ><table><tbody><tr><td  ><strong>Rail</strong></td><td  ></td><td  ><strong>3.3V</strong></td><td  ><strong>5V</strong></td><td  ><strong>12V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>-12V</strong></td></tr><tr><td  ><strong>Max. Power</strong></td><td  ><strong>Amps</strong></td><td  >22</td><td  >22</td><td  >83.33</td><td  >3</td><td  >0.3</td></tr><tr><td  ></td><td  ><strong>Watts</strong></td><td  ></td><td  >120</td><td  >1000</td><td  >15</td><td  >3.6</td></tr><tr><td  ><strong>Total Max. Power (W)</strong></td><td  ></td><td  ></td><td  >1000</td><td  ></td><td  ></td><td  ></td></tr></tbody></table></div><h2 id="cables-and-connectors">Cables and Connectors</h2><div ><table><thead><tr><th  ><strong>Description</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (750mm)</th><td  >1</td><td  >1</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (750mm)</th><td  >2</td><td  >2</td><td  >16AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (750mm)</th><td  >2</td><td  >2</td><td  >16AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (750mm+150mm)</th><td  >2</td><td  >4</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  >SATA (600mm+150mm+150mm+150mm)</th><td  >3</td><td  >12</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (600mm+150mm+150mm+150mm)</th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >FDD Adapter (150mm)</th><td  >1</td><td  >1</td><td  >20AWG</td><td  >No</td></tr></tbody></table></div><p>The release of the ATX12V v3.0 standard rendered almost all current PSUs obsolete because they lack the 12+4 pin connector, which can be found in the freshly released RTX 3090 Ti. Nonetheless, this doesn&apos;t mean that your older PSU will be useless since even Nvidia included an adapter in its recent release to provide compatibility with the 12+4 pin socket. It is not ideal to use adapters, but they allow you to continue using your old PSU if it is strong enough to support the new graphics cards. </p><p>The Cybercore 1000 comes with enough cables and connectors. It is nice to see super-long cables since these PSUs are for colossal chassis. Moreover, the distance between the peripheral connectors is ideal. Finally, there are no in-line caps, and the cables through which will pass lots of Amperes use thicker gauges. Everything is in order here. XPG did a great job!</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/D8qWvbfQQSxvFijegc9dPa.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oV8PATNfPe9iwvBMGp8RUa.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eRUCshBNVkkDmrh5xNpeYa.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9tV2TBbCHwkhPUvYoBPsca.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iSLhqYTqkonPdxx34Ny7ga.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fm8jzMBtMVwZvKXX9hKEoa.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-4">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  ><kbd><strong>General Data</strong></kbd></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >CWT</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><kbd><strong>Primary Side</strong></kbd></td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >6x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor <a href="https://pdf1.alldatasheet.es/datasheet-pdf/view/1132411/THINKING/SCK207R0.html">SCK207R0</a> (7 Ohm) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  ><div>2x Vishay <a href="https://www.vishay.com/docs/89393/lvb2560.pdf">LVB2560</a> (600V, 25A @ 105°C)</div></td></tr><tr><td  >APFC MOSFETs</td><td  ><div>2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPA60R099P6-DS-v02_01-EN.pdf?fileId=5546d461464245d301468f0e6251673a">IPA60R099P6</a> (600V, 24A @ 100°C, Rds(on): 0.099Ohm) &<br> 1x Sync Power <a href="http://www.syncpower.com/datasheet/SPN5003.pdf">SPN5003</a> FET (for reduced no-load consumption)</div></td></tr><tr><td  >APFC Boost Diode</td><td  ><div>2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IDH08G65C6-DS-v02_00-EN.pdf?fileId=5546d4625cc9456a015cd477f0d32dce">IDH08G65C6</a> (650V, 8A @ 145°C)</div></td></tr><tr><td  >Bulk Cap(s)</td><td  ><div>1x Nippon Chemi-Con (400V, 680uF, 2,000h @ 105°C, <a href="https://www.chemi-con.co.jp/products/relatedfiles/capacitor/catalog/KMWN-e.PDF">KMW</a>) & <br> 1x Nippon Chemi-Con (400V, 560uF, 2,000h @ 105°C, <a href="https://www.chemi-con.co.jp/products/relatedfiles/capacitor/catalog/KMRN-e.PDF">KMR</a>)</div></td></tr><tr><td  >Main Switchers</td><td  ><div>4x Alpha & Omega <a href="https://www.kynix.com/uploadfiles/pdf9675/TF29S50.pdf">AOTF29S50</a> (500V, 18A @ 100°C, Rds(on): 0.15Ohm)</div></td></tr><tr><td  ><p>IC Driver</p></td><td  ><p>2x Silicon Labs <a href="http://www.mouser.com/ds/2/368/silicon laboratories_23x-550702.pdf">Si8233BD</a> &<br> 1x On Semiconductor <a href="https://www.onsemi.com/pdf/datasheet/ncp81071-d.pdf">NCP81071</a></p></td></tr><tr><td  ><p>APFC MCU</p></td><td  ><p>1x Texas Instrument <a href="https://www.ti.com/lit/ds/symlink/ucd3138a.pdf?ts=1648121114681&ref_url=https%253A%252F%252Fwww.ti.com%252Fproduct%252FUCD3138A">UCD3138A</a></p></td></tr><tr><td  >LLC Resonant MCU</td><td  ><div>1x Texas Instrument <a href="https://www.ti.com/lit/ds/symlink/ucd3138a.pdf?ts=1648121114681&ref_url=https%253A%252F%252Fwww.ti.com%252Fproduct%252FUCD3138A">UCD3138A</a></div></td></tr><tr><td  >Topology</td><td  ><div>Primary side: Semi-Digital, Interleaved PFC, Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</div></td></tr><tr><td  ><kbd><strong>Secondary Side</strong></kbd></td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >8x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC016N06NS-DataSheet-v02_05-EN.pdf?fileId=db3a3043353fdc160135532b353c483c">BSC016N06NS</a> (60V, 143A @ 100°C, Rds(on): 1.6mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters</td></tr><tr><td  >Filtering Capacitors</td><td  ><p>Electrolytic: 4x Nippon Chemi-Con (105°C,W), 2x Nippon Chemi-Con (2-5,000h @ 105°C, <a href="https://chemi-con.com/wp-content/uploads/2021/05/KZE-Series.pdf">KZE</a>), 4x Nippon Chemi-Con (4-10,000h @ 105°C, <a href="https://chemi-con.com/wp-content/uploads/2021/05/KY-Series.pdf">KY</a>), 2x Rubycon (6-10,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_zlh.pdf">ZLH</a>), 1x Rubycon (4-10,000h @ 105°C, <a href="https://www.rubycon.co.jp/wp-content/uploads/catalog-aluminum/YXJ.pdf">YXJ</a>), 1x Rubycon (4-10,000h @ 105°C, <a href="https://www.rubycon.co.jp/wp-content/uploads/catalog-aluminum/YXF.pdf">YXF</a>)<br> Polymer: 29x FPCAP, 4x Nippon Chemi-Con</p></td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7502R (OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >XPG Nidec D1225C12B6ZPAC7 (120mm, 12V, 0.13A, Double Ball Bearing Fan)</td></tr><tr><td  ><kbd><strong>5VSB Circuit</strong></kbd></td><td  >-</td></tr><tr><td  >Rectifier</td><td  ><div>1x <a href="https://html.alldatasheet.com/html-pdf/868755/CHONGQING/PS1045L/486/1/PS1045L.html">PS1045L</a> (45V, 10A) SBR &<br> 1x IPS ISD04N65A FET</div></td></tr><tr><td  >Standby PWM Controller</td><td  >On-Bright <a href="https://datasheet.lcsc.com/szlcsc/On-Bright-Elec-OB5282CPA_C131099.pdf">OB5282</a></td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/y4hm5aP6nco4MCp2GNFUvk.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VSwsQzu84pJaM4gkossg5m.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BiibkHvZ5URXajE26HobAm.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RvyYMwnHrJDC36rHfm6ZHm.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>This is a slightly modified CST platform provided by Channel Well Technology. It uses a double-sided PCB, which is more suitable for high-power PSUs, and its build quality is top. The same goes for the parts used, including Infineon and Alpha & Omega FETs, Texas Instruments controllers, Japanese caps, and a Nidec fan. </p><p>Nidec is one of the best fan manufacturers, but its products are super expensive. The platform uses a semi-digital design with an interleaved APFC, a full-bridge topology, and an LLC resonant converter on the primary side. We meet the usual stuff, synchronous rectification, and a pair of DC-DC converters on the secondary side.  </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/nwBy9mCEsHgPSXRXsf6T46.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jyeqBFHLkPhzARrrUNyaK6.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3X9Hjo6fjwjmHJ5jQxdwS6.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PCeH7U5vTfntzpE57db5X6.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3EX92fN2CrfkSF8TebEHf6.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/69KqC82DgRLieT9CaBxHj6.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient/EMI filter is complete. The NTC thermistor, handling large inrush currents, is supported by a bypass relay to cool down fast once the PSU is in operation and not waste energy. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cEnSUGwKr4BYqD67FUBv2A.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7gBsQEkGCdr8EXRWGWXqLA.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The pair of bridge rectifiers can handle up to 50 Amperes, which is more than enough for this PSU. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Pehc5434zjHbm4uTmTMXGL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9eyKb9VaQaxd8ktuXrwwML.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hkjQ9fAkHUQXZBo6GBLCSL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/87nXWTf47JfunhTUvExSYL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hq9GSzq3g4d9avmDBMDgaN.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The interleaved APFC has two converters operating parallel, with a phase difference. This type of APFC allows for lower input and output current ripple, and it also offers lower conduction losses and higher efficiency. An MCU controls the interleaved APFC.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ENNxXnhE3SZ5UgVrdW9YRj.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nZtEmQpEEPeoZgEgYqNTYj.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BqiovV7NdwSyrkwcPEbUhj.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/N8Xigf2sY3a76rPB578LGk.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Four Alpha & Omega FETs are the primary switching FETs installed into a full-bridge topology. They are driven by an MCU and a pair of Silicon Labs <a href="http://www.mouser.com/ds/2/368/silicon laboratories_23x-550702.pdf">Si8233BD</a> ICs. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/c39btfJf2CKMLUyEYuiSvJ.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YTfCJQfrqdYkhkVNfSYC7K.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The control board hosting the Texas Instrument <a href="https://www.ti.com/lit/ds/symlink/ucd3138a.pdf?ts=1648121114681&ref_url=https%253A%252F%252Fwww.ti.com%252Fproduct%252FUCD3138A">UCD3138A</a> MCU and the pair of Silicon Labs <a href="http://www.mouser.com/ds/2/368/silicon laboratories_23x-550702.pdf">Si8233BD</a> drivers. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LxmkGCDVNDxtHZBRyHwTLi.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n5HcpDyx3sS28HbRVSZzRi.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Eight Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC016N06NS-DataSheet-v02_05-EN.pdf?fileId=db3a3043353fdc160135532b353c483c">BSC016N06NS</a> FETs regulate the 12V rail. They are installed on a board close to the main transformer to minimize energy losses. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Tu8HdfjJSpwP7tS2jkEqcX.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TUzgvWsWzU3B6UeLd8oqgX.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4acJxAT9xdwNsX6x6eVGqX.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The electrolytic caps are of good quality, belonging to good series of Japanese manufacturers. Lots of polymer caps are also used for ripple filtering purposes. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jUYezY6RZQwHxPuY2nXWVd.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2uGmTnS8KcJCQszEirEzdd.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mB87WcTNMFi2KbZYHgyPjd.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The standby PWM controller is an On-Bright <a href="https://datasheet.lcsc.com/szlcsc/On-Bright-Elec-OB5282CPA_C131099.pdf">OB5282</a> IC. The rectifier on the primary side is an IPS ISD04N65A FET, and on the secondary side, a <a href="https://html.alldatasheet.com/html-pdf/868755/CHONGQING/PS1045L/486/1/PS1045L.html">PS1045L</a> (45V, 10A) SBR.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/sqYxTzXZ8QWDjtNnnJdG8h.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8QDdxrvBmFpYnWiJBALDDh.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Si83FphFtSMrCp7mf6pZTh.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We find several bus bars on the modular board for power transfer use and several polymer caps. </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="supervisor_IC.jpg" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/KFTDRXReYc2kxec7ydL6w.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The main supervisor IC is a Weltrend WT7502R.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/u3aicRNsv2wZnCGGQSRnR7.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hYCFa3M39KwoSGWAGjzrX7.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cUTQczqnTiAvd4btGbehc7.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Soldering quality is great. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mRBdnBuaXG6oSTjUd4FXMB.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LUn8Lete24vkRGXyB2GUWB.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 120mm Nidec fan uses double-ball bearings, which have a high tolerance to increased operating temperatures. This is an expensive fan, and our only remark is that they could use a larger fan, with a 140mm diameter, to lower output noise. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="63868b68-e6b8-4723-8c69-e027eacab5d8">            <a href="https://www.newegg.com/corsair-rmx-series-rm1000x-cp-9020201-na-1000w/p/N82E16817139273" 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href="https://www.newegg.com/evga-supernova-1000-g6-220-g6-1000-x1-1000w/p/N82E16817438215" data-model-name="EVGA SuperNOVA 1000 G6" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/dUXEpiTD3PwYyVRDV4K4i3.jpg" alt="EVGA SuperNOVA 1000 G6"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">EVGA SuperNOVA 1000 G6</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-4">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/96Q5T2AUdsEktoVKDmnbC7.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UBrhPB7Loj5VWXyxMSJ3H7.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xig45shMC9fRmzkYNenpM7.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FXBcZQCBtTdJ6ugBbHtrT7.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Gp8KcmpWB6Q3VfKg2ZmfX7.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KVH6fw2z5toBWYzYNER7e7.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RyKvN7bn9hQDWKXCDgJei7.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/e5p9yukt8UsdVYRXViv4o7.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is not tight at 12V. We expected better results on this rail, which is the most important. The other rails perform better here, keeping up with the competition. </p><h2 id="hold-up-time-4">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ZWWu9NoWZkgXDLwJuiDnpP.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XjRWhxs56ZRVbXQY4aXguP.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DgoJr5QAbss5yk4Bm5YyzP.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PG2kRviVWFEnXxgB7Uqy7Q.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is higher than 17ms, and the power ok signal is accurate. </p><h2 id="inrush-current-4">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HPvvGbidVuUtqtzsKJvkJP.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b4jaxfVF6YhuQW27bLEFQP.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Inrush current is low with 115V, but high with 230V input. </p><h2 id="leakage-current-4">Leakage Current</h2><p>In layman&apos;s terms, leakage current is the unwanted transfer of energy from one circuit to another. In power supplies, it is the current flowing from the primary side to the ground or the chassis, which in the majority of cases is connected to the ground. For measuring leakage current, we use a <a href="https://www.gwinstek.com/en-global/products/detail/GPT-9900">GW Instek GPT-9904</a> electrical safety tester instrument.</p><p>The leakage current test is conducted at 110% of the DUT&apos;s rated voltage input (so for a 230-240V device, we should conduct the test with 253-264V input). The maximum acceptable limit of a leakage current is 3.5 mA and it is defined by the IEC-60950-1 regulation, ensuring that the current is low and will not harm any person coming in contact with the power supply&apos;s chassis.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 14b -27b_Leakage_Current_Comparison_264V.png" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/N6VgjrvoPQF3sgs6EnDAfU.png" mos="" align="middle" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/N6VgjrvoPQF3sgs6EnDAfU.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Leakage current is way below the 3.5mA limit. </p><h2 id="10-110-load-tests-4">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>10%</strong></td><td  ><strong>6.496A</strong></td><td  ><strong>1.982A</strong></td><td  ><strong>1.997A</strong></td><td  ><strong>0.994A</strong></td><td  >100.009</td><td  >84.327%</td><td  >0</td><td  ><6.0</td><td  >45.01°C</td><td  >0.861</td></tr><tr><td  ></td><td  >12.070V</td><td  >5.047V</td><td  >3.306V</td><td  >5.029V</td><td  >118.284</td><td  ></td><td  ></td><td  ></td><td  >40.79°C</td><td  >115.14V</td></tr><tr><td  ><strong>20%</strong></td><td  ><strong>14.020A</strong></td><td  ><strong>2.975A</strong></td><td  ><strong>2.997A</strong></td><td  ><strong>1.195A</strong></td><td  >199.964</td><td  >90.502%</td><td  >0</td><td  ><6.0</td><td  >46.19°C</td><td  >0.992</td></tr><tr><td  ></td><td  >12.058V</td><td  >5.044V</td><td  >3.303V</td><td  >5.023V</td><td  >220.978</td><td  ></td><td  ></td><td  ></td><td  >41.68°C</td><td  >115.1V</td></tr><tr><td  ><strong>30%</strong></td><td  ><strong>21.919A</strong></td><td  ><strong>3.472A</strong></td><td  ><strong>3.499A</strong></td><td  ><strong>1.396A</strong></td><td  >300.022</td><td  >91.474%</td><td  >0</td><td  ><6.0</td><td  >46.64°C</td><td  >0.996</td></tr><tr><td  ></td><td  >12.042V</td><td  >5.041V</td><td  >3.301V</td><td  >5.017V</td><td  >328.106</td><td  ></td><td  ></td><td  ></td><td  >41.82°C</td><td  >115.07V</td></tr><tr><td  ><strong>40%</strong></td><td  ><strong>29.810A</strong></td><td  ><strong>3.971A</strong></td><td  ><strong>4.001A</strong></td><td  ><strong>1.597A</strong></td><td  >399.737</td><td  >91.88%</td><td  >0</td><td  ><6.0</td><td  >47.47°C</td><td  >0.996</td></tr><tr><td  ></td><td  >12.027V</td><td  >5.038V</td><td  >3.299V</td><td  >5.011V</td><td  >435.011</td><td  ></td><td  ></td><td  ></td><td  >42.4°C</td><td  >115.04V</td></tr><tr><td  ><strong>50%</strong></td><td  ><strong>37.373A</strong></td><td  ><strong>4.966A</strong></td><td  ><strong>5.005A</strong></td><td  ><strong>1.799A</strong></td><td  >499.465</td><td  >92.004%</td><td  >0</td><td  ><6.0</td><td  >48.47°C</td><td  >0.997</td></tr><tr><td  ></td><td  >12.013V</td><td  >5.035V</td><td  >3.297V</td><td  >5.005V</td><td  >542.887</td><td  ></td><td  ></td><td  ></td><td  >42.83°C</td><td  >115.02V</td></tr><tr><td  ><strong>60%</strong></td><td  ><strong>45.039A</strong></td><td  ><strong>5.966A</strong></td><td  ><strong>6.013A</strong></td><td  ><strong>2.001A</strong></td><td  >600.021</td><td  >91.466%</td><td  >929</td><td  >16.2</td><td  >43.48°C</td><td  >0.997</td></tr><tr><td  ></td><td  >11.994V</td><td  >5.03V</td><td  >3.293V</td><td  >4.997V</td><td  >656.029</td><td  ></td><td  ></td><td  ></td><td  >49.58°C</td><td  >114.99V</td></tr><tr><td  ><strong>70%</strong></td><td  ><strong>52.641A</strong></td><td  ><strong>6.967A</strong></td><td  ><strong>7.023A</strong></td><td  ><strong>2.205A</strong></td><td  >699.769</td><td  >90.798%</td><td  >1207</td><td  >24.2</td><td  >43.92°C</td><td  >0.997</td></tr><tr><td  ></td><td  >11.980V</td><td  >5.025V</td><td  >3.29V</td><td  >4.989V</td><td  >770.621</td><td  ></td><td  ></td><td  ></td><td  >50.76°C</td><td  >114.96V</td></tr><tr><td  ><strong>80%</strong></td><td  ><strong>60.342A</strong></td><td  ><strong>7.97A</strong></td><td  ><strong>8.032A</strong></td><td  ><strong>2.308A</strong></td><td  >799.822</td><td  >90.291%</td><td  >1520</td><td  >30.2</td><td  >44.23°C</td><td  >0.998</td></tr><tr><td  ></td><td  >11.963V</td><td  >5.021V</td><td  >3.287V</td><td  >4.984V</td><td  >885.962</td><td  ></td><td  ></td><td  ></td><td  >52.05°C</td><td  >114.94V</td></tr><tr><td  ><strong>90%</strong></td><td  ><strong>68.388A</strong></td><td  ><strong>8.474A</strong></td><td  ><strong>8.526A</strong></td><td  ><strong>2.411A</strong></td><td  >899.596</td><td  >89.569%</td><td  >1794</td><td  >35.5</td><td  >44.84°C</td><td  >0.999</td></tr><tr><td  ></td><td  >11.948V</td><td  >5.016V</td><td  >3.284V</td><td  >4.978V</td><td  >1004.185</td><td  ></td><td  ></td><td  ></td><td  >53.4°C</td><td  >114.92V</td></tr><tr><td  ><strong>100%</strong></td><td  ><strong>76.274A</strong></td><td  ><strong>8.978A</strong></td><td  ><strong>9.052A</strong></td><td  ><strong>3.024A</strong></td><td  >999.64</td><td  >88.835%</td><td  >2016</td><td  >38.5</td><td  >45.46°C</td><td  >0.998</td></tr><tr><td  ></td><td  >11.930V</td><td  >5.013V</td><td  >3.281V</td><td  >4.961V</td><td  >1125.218</td><td  ></td><td  ></td><td  ></td><td  >55.04°C</td><td  >114.89V</td></tr><tr><td  ><strong>110%</strong></td><td  ><strong>84.115A</strong></td><td  ><strong>9.983A</strong></td><td  ><strong>10.158A</strong></td><td  ><strong>3.026A</strong></td><td  >1100.265</td><td  >88.152%</td><td  >2196</td><td  >40.9</td><td  >46.83°C</td><td  >0.998</td></tr><tr><td  ></td><td  >11.911V</td><td  >5.009V</td><td  >3.278V</td><td  >4.958V</td><td  >1248.338</td><td  ></td><td  ></td><td  ></td><td  >57.55°C</td><td  >114.86V</td></tr><tr><td  ><strong>CL1</strong></td><td  ><strong>0.116A</strong></td><td  ><strong>14.304A</strong></td><td  ><strong>14.452A</strong></td><td  ><strong>0A</strong></td><td  >121.311</td><td  >80.854%</td><td  >0</td><td  ><6.0</td><td  >53.72°C</td><td  >0.878</td></tr><tr><td  ></td><td  >12.051V</td><td  >5.048V</td><td  >3.3V</td><td  >5.071V</td><td  >150.132</td><td  ></td><td  ></td><td  ></td><td  >48.15°C</td><td  >115.13V</td></tr><tr><td  ><strong>CL2</strong></td><td  ><strong>0.116A</strong></td><td  ><strong>21.755A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  >111.399</td><td  >79.795%</td><td  >925</td><td  >15.7</td><td  >42.65°C</td><td  >0.873</td></tr><tr><td  ></td><td  >12.058V</td><td  >5.056V</td><td  >3.302V</td><td  >5.1V</td><td  >139.586</td><td  ></td><td  ></td><td  ></td><td  >50.19°C</td><td  >115.13V</td></tr><tr><td  ><strong>CL3</strong></td><td  ><strong>0.116A</strong></td><td  ><strong>0A</strong></td><td  ><strong>21.955A</strong></td><td  ><strong>0A</strong></td><td  >73.994</td><td  >73.495%</td><td  >923</td><td  >15.7</td><td  >41.46°C</td><td  >0.785</td></tr><tr><td  ></td><td  >12.057V</td><td  >5.053V</td><td  >3.307V</td><td  >5.045V</td><td  >100.664</td><td  ></td><td  ></td><td  ></td><td  >51.02°C</td><td  >115.15V</td></tr><tr><td  ><strong>CL4</strong></td><td  ><strong>83.740A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  >1000.131</td><td  >89.337%</td><td  >2185</td><td  >40.7</td><td  >46.99°C</td><td  >0.998</td></tr><tr><td  ></td><td  >11.943V</td><td  >5.021V</td><td  >3.29V</td><td  >5.027V</td><td  >1118.937</td><td  ></td><td  ></td><td  ></td><td  >58.3°C</td><td  >114.89V</td></tr></tbody></table></div><p>The PSU can easily handle harsh conditions, delivering 110% of its max-rated capacity even at 47 degrees Celsius for prolonged periods. You should not push it so hard, exceed its official rating, and expect it to outlive the provided warranty. </p><h2 id="20-80w-load-tests-4">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>20W</strong></td><td  ><strong>1.228A</strong></td><td  ><strong>0.495A</strong></td><td  ><strong>0.499A</strong></td><td  ><strong>0.198A</strong></td><td  >20</td><td  >67.441%</td><td  >0</td><td  ><6.0</td><td  >39.78°C</td><td  >0.663</td></tr><tr><td  ></td><td  >12.086V</td><td  >5.048V</td><td  >3.307V</td><td  >5.046V</td><td  >29.856</td><td  ></td><td  ></td><td  ></td><td  >36.71°C</td><td  >115.14V</td></tr><tr><td  ><strong>40W</strong></td><td  ><strong>2.706A</strong></td><td  ><strong>0.693A</strong></td><td  ><strong>0.699A</strong></td><td  ><strong>0.298A</strong></td><td  >39.999</td><td  >76.257%</td><td  >0</td><td  ><6.0</td><td  >40.57°C</td><td  >0.735</td></tr><tr><td  ></td><td  >12.082V</td><td  >5.048V</td><td  >3.307V</td><td  >5.043V</td><td  >52.499</td><td  ></td><td  ></td><td  ></td><td  >37.27°C</td><td  >115.14V</td></tr><tr><td  ><strong>60W</strong></td><td  ><strong>4.184A</strong></td><td  ><strong>0.892A</strong></td><td  ><strong>0.898A</strong></td><td  ><strong>0.397A</strong></td><td  >59.998</td><td  >80.508%</td><td  >0</td><td  ><6.0</td><td  >41.84°C</td><td  >0.767</td></tr><tr><td  ></td><td  >12.078V</td><td  >5.048V</td><td  >3.307V</td><td  >5.042V</td><td  >74.463</td><td  ></td><td  ></td><td  ></td><td  >38.09°C</td><td  >115.14V</td></tr><tr><td  ><strong>80W</strong></td><td  ><strong>5.658A</strong></td><td  ><strong>1.09A</strong></td><td  ><strong>1.098A</strong></td><td  ><strong>0.496A</strong></td><td  >79.956</td><td  >82.812%</td><td  >0</td><td  ><6.0</td><td  >44.42°C</td><td  >0.833</td></tr><tr><td  ></td><td  >12.074V</td><td  >5.048V</td><td  >3.307V</td><td  >5.04V</td><td  >96.402</td><td  ></td><td  ></td><td  ></td><td  >40.34°C</td><td  >115.13V</td></tr></tbody></table></div><p>The PSU&apos;s fan doesn&apos;t need to spin at light loads, even with close to 40 degrees Celsius ambient. </p><h2 id="2-or-10w-load-test-4">2% or 10W Load Test</h2><p>From July 2020, the ATX spec requires 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units, we dial 2% of their max-rated capacity.</p><div ><table><tbody><tr><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>1.472A</strong></td><td  ><strong>0.255A</strong></td><td  ><strong>0.255A</strong></td><td  ><strong>0.053A</strong></td><td  >20.181</td><td  >66.799%</td><td  >0</td><td  ><6.0</td><td  >17.83°C</td><td  >0.661</td></tr><tr><td  >12.092V</td><td  >5.036V</td><td  >3.299V</td><td  >5.037V</td><td  >30.503</td><td  ></td><td  ></td><td  ></td><td  >15.6°C</td><td  >115.1V</td></tr></tbody></table></div><p>The 60% efficiency mark, which is an ATX requirement, is passed with a 2% load. It would be nice to see over 70%. </p><h2 id="efficiency-and-power-factor">Efficiency and Power Factor</h2><p>Next, we plotted a chart showing the PSU&apos;s efficiency at low loads and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills. The same goes for Power Factor.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/tfJTkF6fqnpayMSneLvvLk.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gGYiHhrNJXAQ7sMN8KEPSk.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7SPL4wpfCSg22QsYVRu5Wk.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5M5Uy3QwwRUQYteWfRdbck.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Np3yeguQwBFJc4BqmfcDgk.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ej2swuMVuBovBcaDAwiynk.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>With normal loads, the average efficiency is high. The problem is with light loads, where the platform needs tuning for higher efficiency. We would also like to see higher PF readings with 230V input.</p><h2 id="5vsb-efficiency-4">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>1</strong></td><td  ><strong>0.1A</strong></td><td  >0.499W</td><td  >75.264%</td><td  >0.052</td></tr><tr><td  ></td><td  ></td><td  >4.989V</td><td  >0.663W</td><td  >115.14V</td></tr><tr><td  ><strong>2</strong></td><td  ><strong>0.25A</strong></td><td  >1.247W</td><td  >78.399%</td><td  >0.121</td></tr><tr><td  ></td><td  ></td><td  >4.985V</td><td  >1.591W</td><td  >115.15V</td></tr><tr><td  ><strong>3</strong></td><td  ><strong>0.55A</strong></td><td  >2.74W</td><td  >79.34%</td><td  >0.233</td></tr><tr><td  ></td><td  ></td><td  >4.98V</td><td  >3.453W</td><td  >115.14V</td></tr><tr><td  ><strong>4</strong></td><td  ><strong>1A</strong></td><td  >4.973W</td><td  >79.035%</td><td  >0.343</td></tr><tr><td  ></td><td  ></td><td  >4.972V</td><td  >6.291W</td><td  >115.14V</td></tr><tr><td  ><strong>5</strong></td><td  ><strong>1.5A</strong></td><td  >7.447W</td><td  >79.252%</td><td  >0.407</td></tr><tr><td  ></td><td  ></td><td  >4.963V</td><td  >9.397W</td><td  >115.14V</td></tr><tr><td  ><strong>6</strong></td><td  ><strong>3A</strong></td><td  >14.811W</td><td  >78.22%</td><td  >0.491</td></tr><tr><td  ></td><td  ></td><td  >4.937V</td><td  >18.936W</td><td  >115.13V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/r9Nm9hkFXvhSCDgxUiDgXU.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oMoT9t4ZabpCM6PZ9RmQbU.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail has high enough efficiency.</p><h2 id="power-consumption-in-idle-and-standby-4">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>Idle</strong></td><td  >12.098V</td><td  >5.028V</td><td  >3.294V</td><td  >5.029V</td><td  >6.005</td><td  >0.292</td></tr><tr><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >115.09V</td></tr><tr><td  ><strong>Standby</strong></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >0.045</td><td  >0.004</td></tr><tr><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  ></td><td  >115.09V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kDrvwxwu4cCZX4FMk5tpSe.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MpetbdR6cgt2nhTaB4PBXe.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Vampire power is low, with 115V and 230V input. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-4">Fan RPM, Delta Temperature and Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/Udk7DhyfxEwAMbca8ycSeh.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Udk7DhyfxEwAMbca8ycSeh.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/oUYKVinct7cbPk4tmsFfYj.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/oUYKVinct7cbPk4tmsFfYj.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile is not aggressive, even under high operating temperature, since as you can see in the graphs above, it increases linearly and up to 500W load, the PSU&apos;s fan doesn&apos;t spin. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Fan_Noise.jpg" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/VfaYDNJ8ndkWmBYwsstCVK.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/VfaYDNJ8ndkWmBYwsstCVK.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Fan_Speed.jpg" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/czyeEarzzBY9vZubwvTzYM.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/czyeEarzzBY9vZubwvTzYM.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>At average operating temperatures, close to 30 degrees Celsius, the PSU is dead silent with up to 540W load combinations. It remains in the 6-30 dBA zone with up to 725W loads, and it exceeds 35 dBA with more than 820W. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-4">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >OCP (Cold @ 25°C)</td><td  >12V: 94.6A (113.52%), 11.892V<br> 5V: 30.1A (136.82%), 5.011V<br> 3.3V: 30.1A (136.82%), 3.292V<br> 5VSB: 4.6A (153.33%), 4.904V</td></tr><tr><td  >OCP (Hot @ 40°C)</td><td  >12V: 94A (112.80%), 11.896V<br> 5V: 29.7A (135%), 5.028V<br> 3.3V: 29.4A (133.64%), 3.3V<br> 5VSB: 4.6A (153.33%), 4.902V</td></tr><tr><td  >OPP (Cold @ 23°C)</td><td  >1223.28W (122.33%)</td></tr><tr><td  >OPP (Hot @ 37°C)</td><td  >1223.44W (122.34%)</td></tr><tr><td  >OTP</td><td  >✓ (167°C @ 12V Heat Sink)</td></tr><tr><td  >SCP</td><td  >12V to Earth: ✓<br> 5V to Earth: ✓<br> 3.3V to Earth: ✓<br> 5VSB to Earth: ✓<br> -12V to Earth: ✓</td></tr><tr><td  >PWR_OK</td><td  >Proper operation</td></tr><tr><td  >NLO</td><td  >✓</td></tr><tr><td  >SIP</td><td  >Surge: MOV<br> Inrush: NTC Thermistor & Bypass relay</td></tr></tbody></table></div><p>The OCP triggering points are correctly set at 12V and 5V. At 3.3V, although there are no ripple or load regulation problems, there is no need for so many Amperes. Over power protection is set correctly, and there is over temperature protection to shut down the unit if it is overheated. </p><h2 id="dc-power-sequencing-4">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/M8vjrno9aqxP85ayjXrMH8.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/enGjDVBnEB6vsqxMVY8QM8.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Bh5qHg9GjUFKGA4nxPiiR8.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>No problems here since the 3.3V rail is always lower than the other two. </p><h2 id="cross-load-tests-4">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-4">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/g2LeteKS6hyPeFKPdrEt5E.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RB7CFcyLTTsu74REeTFX9E.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZRFHBJs39ZMMMYWYPFg8DE.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SU2CW6XwwNVX4YAtPnQUME.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-graph-4">Efficiency Graph</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CL_Efficiency.jpg" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/QthNh8ni4ogk2SzxaEKxRG.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="950" height="530" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/QthNh8ni4ogk2SzxaEKxRG.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-graphs-4">Ripple Graphs</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9PhkeMRdvJ4JLjQPWmcTWK.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FgToZxZ8STw56uDKyN4JbK.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LdbGv3NMyGUPXERc2eDrrK.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VCoFrPrL52CgtgF6EFCPxK.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-4">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU&apos;s top cover and cooling fan removed before taking photos with a modified Fluke Ti480 PRO camera able to deliver an IR resolution of 640x480 (307,200 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uubd84XDkrZAi5XZjqTXjP.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hYR724wa8CPUm5WyPpBLpP.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cd2g4Z22f7MF8FdRjiKftP.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iFrDLC62m4DbUHwi3kC2zP.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Without active cooling, the FETs that regulate the 12V rail get pretty hot, reaching 100 degrees Celsius. Nonetheless, these FETs can still handle up to 143A at this temperature. Moreover, the ZD502 diode on the vertical 5VSB board gets quite hot, at 104.55 degrees Celsius. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-4">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-4">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.055V</td><td  >11.925V</td><td  >1.08%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.038V</td><td  >4.917V</td><td  >2.40%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.300V</td><td  >3.138V</td><td  >4.92%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.018V</td><td  >4.938V</td><td  >1.59%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-4">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.054V</td><td  >11.931V</td><td  >1.02%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.038V</td><td  >4.918V</td><td  >2.38%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.300V</td><td  >3.138V</td><td  >4.90%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.018V</td><td  >4.928V</td><td  >1.80%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-4">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.055V</td><td  >11.938V</td><td  >0.97%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.037V</td><td  >4.916V</td><td  >2.40%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.300V</td><td  >3.130V</td><td  >5.16%</td><td  >Fail</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.018V</td><td  >4.929V</td><td  >1.78%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-4">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.003V</td><td  >11.891V</td><td  >0.93%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.027V</td><td  >4.919V</td><td  >2.16%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.292V</td><td  >3.121V</td><td  >5.21%</td><td  >Fail</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >4.998V</td><td  >4.942V</td><td  >1.12%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-4">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.002V</td><td  >11.888V</td><td  >0.95%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.028V</td><td  >4.903V</td><td  >2.49%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.293V</td><td  >3.124V</td><td  >5.15%</td><td  >Fail</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >5.000V</td><td  >4.934V</td><td  >1.32%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-4">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#FFFFFF"><strong>12V</strong></font></td><td  >12.004V</td><td  >11.880V</td><td  >1.03%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>5V</strong></font></td><td  >5.028V</td><td  >4.922V</td><td  >2.10%</td><td  >Pass</td></tr><tr><td  ><font color="#FFFFFF"><strong>3.3V</strong></font></td><td  >3.292V</td><td  >3.115V</td><td  >5.38%</td><td  >Fail</td></tr><tr><td  ><font color="#FFFFFF"><strong>5VSB</strong></font></td><td  >4.999V</td><td  >4.947V</td><td  >1.05%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8q9ZWbXsNLmGE4goVt5ebd.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pxwXrxFo9R8KtwtWRBYJfd.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n7xvo89Wy57tEj54QbwPjd.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RGjKpWawtBQM2fqDcT63od.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SJCZRzPGWNS948qdfAV4rd.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2gv8u72bwZBpoXWtT2bkud.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cVSrcsX6PBYozvP4dnks5e.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rxB4BcgFdRZq7FHidrz92e.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Transient response is good at 12V, where it matters the most. The minor rails don&apos;t perform so well in these tests, especially the 3.3V rail, which failed in many tests. More capacitance and a faster feedback are required for the DC-DC converters. </p><h2 id="turn-on-transient-tests-4">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/WGTDMB9wVFuA3NUqeFt53A.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gzChKcXszj2g5Kk4WShd6A.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dizAToj3FpoQKcMGrFRDCA.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There is a small voltage overshoot at 5VSB, and a tiny step in the last 12V test, which most likely won&apos;t create any problems. </p><h2 id="power-supply-timing-tests-4">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From the year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Low Power Modes. </p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >55ms</td><td  >139ms</td></tr><tr><th  ><strong>100%</strong></th><td  >50ms</td><td  >141ms</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qUmTGchrv94dQYcx6JDQUL.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/snGR5GM84rtbEtXqgRjVdL.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sxVyFNHXKmubMTrmaZ6ihL.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/imjk5tu46qbeuinvChVbnL.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PWR_OK delay is within the 100-150ms region, so the PSU supports the alternative low power modes recommended by the ATX spec.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wTDwSgHx6hWaysLmytCSNX.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b89pRRSdWKxQdZpFdZkbTX.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RGNktosfVUPN4qyza8nsaX.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HhnfzArDhirYLV6dtxurdX.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-measurements-4">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU&apos;s DC rails. This phenomenon significantly decreases the capacitors&apos; lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap&apos;s useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>10% Load</strong></td><td  >11.0 mV</td><td  >6.5 mV</td><td  >6.2 mV</td><td  >5.7 mV</td><td  >Pass</td></tr><tr><td  ><strong>20% Load</strong></td><td  >18.3 mV</td><td  >6.4 mV</td><td  >4.1 mV</td><td  >6.1 mV</td><td  >Pass</td></tr><tr><td  ><strong>30% Load</strong></td><td  >11.6 mV</td><td  >6.8 mV</td><td  >4.9 mV</td><td  >5.8 mV</td><td  >Pass</td></tr><tr><td  ><strong>40% Load</strong></td><td  >13.1 mV</td><td  >7.8 mV</td><td  >10.5 mV</td><td  >6.5 mV</td><td  >Pass</td></tr><tr><td  ><strong>50% Load</strong></td><td  >17.8 mV</td><td  >7.2 mV</td><td  >6.4 mV</td><td  >6.9 mV</td><td  >Pass</td></tr><tr><td  ><strong>60% Load</strong></td><td  >16.3 mV</td><td  >7.4 mV</td><td  >6.4 mV</td><td  >6.5 mV</td><td  >Pass</td></tr><tr><td  ><strong>70% Load</strong></td><td  >15.1 mV</td><td  >7.8 mV</td><td  >13.0 mV</td><td  >7.0 mV</td><td  >Pass</td></tr><tr><td  ><strong>80% Load</strong></td><td  >17.8 mV</td><td  >10.1 mV</td><td  >20.1 mV</td><td  >8.9 mV</td><td  >Pass</td></tr><tr><td  ><strong>90% Load</strong></td><td  >19.0 mV</td><td  >11.3 mV</td><td  >24.7 mV</td><td  >10.2 mV</td><td  >Pass</td></tr><tr><td  ><strong>100% Load</strong></td><td  >24.5 mV</td><td  >11.8 mV</td><td  >25.0 mV</td><td  >10.7 mV</td><td  >Pass</td></tr><tr><td  ><strong>110% Load</strong></td><td  >26.2 mV</td><td  >10.4 mV</td><td  >17.9 mV</td><td  >9.7 mV</td><td  >Pass</td></tr><tr><td  ><strong>Crossload 1</strong></td><td  >12.6 mV</td><td  >7.5 mV</td><td  >14.5 mV</td><td  >5.6 mV</td><td  >Pass</td></tr><tr><td  ><strong>Crossload 2</strong></td><td  >11.2 mV</td><td  >7.6 mV</td><td  >4.3 mV</td><td  >6.0 mV</td><td  >Pass</td></tr><tr><td  ><strong>Crossload 3</strong></td><td  >23.1 mV</td><td  >5.9 mV</td><td  >15.6 mV</td><td  >5.0 mV</td><td  >Pass</td></tr><tr><td  ><strong>Crossload 4</strong></td><td  >24.2 mV</td><td  >8.7 mV</td><td  >13.8 mV</td><td  >9.0 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4GZSq8Pv4cuo2nKWNMbZTh.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cpunDpe6f5YwLUnjWMv4Yh.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/seqQpYpzz8LDp42DDq9fch.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q28vYwLAgKvWWP9krh2Bih.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Ripple suppression is not impressive compared to other CWT platforms. Still, it is pretty good. </p><h2 id="ripple-at-full-load-4">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jtKJiTZ6KekTbDAxFUtWXL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/L4dexc3gkKL4adVPp4FKcL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y25LdBqDot9moxyyooKigL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Nvw3npeYQ9CR5reFKdeJmL.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-4">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mJ5bpyEcFrFriQhXBzdNpP.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8omzzJEKNS9Kkm2Cf4UAwP.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3V2V5Ks6tLsg79MG6xJ64Q.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WeTpPRVxPPSv5ThoGgJo7Q.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-4">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aGS4sMixAuLiYb2nFUyQ7V.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ptPfQBDajXywsub6naz6EV.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qyLHAYheStWeLm8vBM7kLV.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TzqXpxCRQayXxUnmE3yVTV.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-4-4">Ripple At Cross-Load 4</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/VWzTMJcnZhahJuC3kr6ipY.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pEGobyQBicjj3pqBRUFstY.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cm9U2uKyCzZqC7tx43BFyY.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PRY5TzVXGkvLAgW6c4bT4Z.jpg" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-and-quasi-peak-emi-detector-results">EMC Pre-Compliance Testing – Average and Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1777px;"><p class="vanilla-image-block" style="padding-top:35.51%;"><img id="" name="emi.jpg" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/caVM2jmkujme2nxsbdare8.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1777" height="631" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/caVM2jmkujme2nxsbdare8.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The conducted EMI emissions are low. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-4">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 39 -39_Relative_Performance-small.png" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/SCi58c5f5AqCiBSoS2JmYG.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/SCi58c5f5AqCiBSoS2JmYG.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Overall performance is good, but it cannot meet the top performers in this category. The Seasonic Platinum 1000, which is on top of this chart, is an older model, not available anymore, so the top in this category is the <a href="https://www.tomshardware.com/reviews/evga-supernova-1000-p6-power-supply">EVGA 1000 P6</a>, which is 3.33% away. </p><h2 id="noise-rating-4">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 41 -41_Average_Noise_Output-small.png" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/z533dEq4BKRjCVtQzB6WeJ.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/z533dEq4BKRjCVtQzB6WeJ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Given its capacity, it is not a noisy PSU. It is among the quietest in the 1000W category. </p><h2 id="efficiency-rating-4">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 43 -43_Average_Efficiency-small.png" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/AC54GLM5zbFFBi4gavQaMM.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/AC54GLM5zbFFBi4gavQaMM.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Average efficiency is high enough. Still, we would like to see a closer to 90% overall reading. </p><h2 id="power-factor-rating-4">Power Factor Rating</h2><p>The following graphs show the PSU&apos;s average power factor reading throughout its operating range with an ambient temperature close to 30 degrees Celsius and 115V/230V voltage input. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/PFARzWC6V4mPAzkK5FsAwP.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6TvJPzTC8cF7DUKPsfKQ2Q.png" alt="XPG Cybercore 1000" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter has room for improvement, with both voltage inputs (115V and 230V). </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>XPG tries hard to deliver good and reliable PSU products. This brand has "proper" PSU PMs who try to improve the designs they use and not just take a platform from the shelf and put their badges on. The new Cybercore series has one of the best fans we have ever encountered in PSUs, a double-ball bearing Nidec with increased cost.</p><p>The build quality of the Cybercore 1000 is excellent since XPG and CWT paid extra attention to all details. The platform is based on CWT&apos;s CST design with some improvements here and there to keep up with the modern requirements. The only thing missing is a 12+4 pin connector. Still, XPG informed me that they are already working on an updated version with this connector included and the other specifications that the new ATX12V v3.0 spec requires. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="XPG Cybercore 1000" src="https://cdn.mos.cms.futurecdn.net/fiPtSLTR3RCFcRKpsTPMoX.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/fiPtSLTR3RCFcRKpsTPMoX.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The XPG Cybercore 1000 might lose overall performance to the <a href="https://www.tomshardware.com/reviews/evga-supernova-1000-p6-power-supply">EVGA SuperNOVA 1000 P6</a> and the Asus Rog Thor 1000, but its build quality is even higher, and it uses a more modern platform than both of these units. Moreover, its Nidec fan sets the bar too high. The only thing missing is the 12+4 pin connector, so you should probably wait a bit for the upcoming version that will have it since it is a shame to buy a PSU now that won&apos;t be compatible with the upcoming GPUs. </p><p>This is not a problem only for the XPG Cybercore 1000 but for most current-generation PSUs. Thankfully Nvidia provided an adapter with its 3090 Ti, which uses three 6+2 PCIe connectors to power a single 12+4 pin connector, but this is not what the ATX spec v3.0 has in mind since the extra 4 pin connectors will be utilized in upcoming GPUs. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Asus ROG Strix LC GeForce RTX 3080 Ti Review: The Fastest Card We've Ever Tested ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/asus-rog-strix-lc-geforce-rtx-3080-ti</link>
                                                                            <description>
                            <![CDATA[ The Asus ROG Strix LC GeForce RTX 3080 Ti puts its liquid cooling to good use. Along with a colorful light show comes stellar performance that surpasses all other GPUs we've tested so far. The price might make you balk, however. This could have easily been an RTX 3090 instead of a 3080 Ti. ]]>
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                                                                        <pubDate>Thu, 23 Sep 2021 12:00:44 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 09:52:17 +0000</updated>
                                                                                                                                            <category><![CDATA[GPUs]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Jarred Walton ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/8uFgSGcCzKdFTTQdqonCPi.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Jarred&#039;s love of computers dates back to the dark ages, when his dad brought home a DOS 2.3 PC and he left his C-64 behind. He eventually built his first custom PC in 1990 with a 286 12MHz, only to discover it was already woefully outdated when Wing Commander released a few months later. He holds a BS in Computer Science from Brigham Young University and has been working as a tech journalist since 2004, writing for AnandTech, Maximum PC, and PC Gamer. From the first S3 Virge &#039;3D decelerators&#039; to today&#039;s GPUs, Jarred keeps up with all the latest graphics trends and is the one to ask about game performance.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Asus ROG Strix LC GeForce RTX 3080 Ti]]></media:description>                                                            <media:text><![CDATA[Asus ROG Strix LC GeForce RTX 3080 Ti]]></media:text>
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                                <p>The Asus ROG Strix LC RTX 3080 Ti sets a new record for out-of-box performance, no doubt helped along by the copious RGB lighting — you all know RGB makes your PC parts go faster, right? Despite having just half the VRAM of the RTX 3090, a healthy factory overclock combined with excellent cooling make this the fastest graphics card we&apos;ve ever tested, at least until the next heavily factory overclocked card shows up. This would potentially be one of the <a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><u>best graphics cards</u></a> you could buy right now, if you could actually go out and buy it.</p><p>The formula for breaking records isn&apos;t much of a secret: deliver more power and better cooling to the GPU, allowing for higher clock speeds. That&apos;s precisely what Asus has done with the ROG Strix LC line. We&apos;ve seen the same core design before, in the <a href="https://www.tomshardware.com/news/amd-radeon-rx-6800-xt-roundup-review/3"><u>ROG Strix LC RX 6800 XT</u></a> specifically, but the RTX 3080 Ti model has to kick things up a notch. Asus added a third 8-pin PEG power connector, giving a total theoretical maximum power delivery of 525W. Here are the specs, compared to the other RTX 3080 Ti cards we&apos;ve reviewed: </p><div ><table><thead><tr><th class="firstcol " >Graphics Card</th><th  >RTX 3080 Ti Asus</th><th  >RTX 3080 Ti</th><th  >RTX 3080 Ti Zotac</th></tr></thead><tbody><tr><td class="firstcol " >GPU</td><td  >GA102</td><td  >GA102</td><td  >GA102</td></tr><tr><td class="firstcol " >Process Technology</td><td  >Samsung 8N</td><td  >Samsung 8N</td><td  >Samsung 8N</td></tr><tr><td class="firstcol " >Transistors (Billion)</td><td  >28.3</td><td  >28.3</td><td  >28.3</td></tr><tr><td class="firstcol " >Die size (mm^2)</td><td  >628.4</td><td  >628.4</td><td  >628.4</td></tr><tr><td class="firstcol " >SMs / CUs</td><td  >80</td><td  >80</td><td  >80</td></tr><tr><td class="firstcol " >GPU Cores</td><td  >10240</td><td  >10240</td><td  >10240</td></tr><tr><td class="firstcol " >Tensor Cores</td><td  >320</td><td  >320</td><td  >320</td></tr><tr><td class="firstcol " >RT Cores</td><td  >80</td><td  >80</td><td  >80</td></tr><tr><td class="firstcol " >Boost Clock (MHz)</td><td  >1860 (OC mode), 1830 (Gaming mode)</td><td  >1665</td><td  >1710</td></tr><tr><td class="firstcol " >VRAM Speed (Gbps)</td><td  >19</td><td  >19</td><td  >19</td></tr><tr><td class="firstcol " >VRAM (GB)</td><td  >12</td><td  >12</td><td  >12</td></tr><tr><td class="firstcol " >VRAM Bus Width</td><td  >384</td><td  >384</td><td  >384</td></tr><tr><td class="firstcol " >ROPs</td><td  >112</td><td  >112</td><td  >112</td></tr><tr><td class="firstcol " >TMUs</td><td  >320</td><td  >320</td><td  >320</td></tr><tr><td class="firstcol " >TFLOPS FP32 (Boost)</td><td  >38.1</td><td  >34.1</td><td  >35</td></tr><tr><td class="firstcol " >TFLOPS FP16 (Tensor)</td><td  >152 (305)</td><td  >136 (273)</td><td  >140 (280)</td></tr><tr><td class="firstcol " >Bandwidth (GBps)</td><td  >912</td><td  >912</td><td  >912</td></tr><tr><td class="firstcol " >TDP (watts)</td><td  >380?</td><td  >350</td><td  >350</td></tr></tbody></table></div><p>Fundamentally, these are all the same GPU, so the only real difference is in clock speeds and power. Asus doesn&apos;t specify a card TGP, but does recommend at least an 850W power supply. Based on our testing, which we&apos;ll get to later, we&apos;ve listed an approximate TDP of 380W. Enabling the OC mode increased the power limit by an additional 10%, meaning the card could potentially draw as much as 420W, but in practice other limits (like clock speed) come into play, which we&apos;ll see in the power testing on page four.</p><p>Besides increasing the clocks, Asus provides some other extras. For example, you get two HDMI 2.1 ports, along with the usual gamut of three DisplayPort 1.4 outputs. While DisplayPort generally remains the preferred solution among gamers for the time being, HDMI 2.1 technically allows for higher resolutions and bandwidths. We haven&apos;t seen any DisplayPort 2.0 hardware yet, and HDMI 2.1 provides for up to 8K 60Hz over a single cable, which should prove more than sufficient for many years to come.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>GPU Benchmarks and Hierarchy</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><p>The Asus ROG Strix LC cards require a spacious case. Even with most of the cooling moved over to the 240mm radiator, the card remains beefy. It measures 295x133x51mm for the card itself, while the radiator measures 274x120x50mm (both are our measurements, give or take 1mm). The combined weight tips the scales at 2488g, but about half of that is in the radiator, so at least your PCIe x16 slot won&apos;t have to shoulder the load alone. Officially Asus calls this a 2.6-slot width, but it&apos;s basically a triple-slot card, plus a chunky radiator, all in pursuit of minimum temperatures and maximum performance.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LZLp7iHvXuG8CYqwYRRE4o.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SreGzuT8NrQx3Bg6gHCKAo.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/augnPc77d4ExKrbRkRaJNo.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7Gh8oMareQZZ2Pg6F3TRYo.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UxzR8943A27g36DcBSHm8.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r8eY2rH4sp5pQ4FJy6kBK.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uGseisJRs9mQibeQbgG6U.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KGVp4bJ493zwA9Sdm5ima.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RuXLB3unZeQ5RSrzJXt4k.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iFXs93F55PyHqrUp48yxr.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SKpaTxcZjKRXgc8bANkm43.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pTsU38U5mKnNcSjwUTmfH3.jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>As with other ROG Strix cards, there&apos;s a toggle on the card to switch between P-mode (performance) and Q-mode (quiet), but if you want maximum performance, you still need to install the <a href="https://www.asus.com/campaign/GPU-Tweak-III/"><u>Asus GPU Tweak III</u></a> software. That provides access to the OC mode, which boosts the power limit by 10% and also increases the boost clock an additional 30MHz. That&apos;s what we&apos;ve used for our performance testing, since we figure anyone forking over the money for this sort of card will want the maximum performance possible.</p><p>The only real omission here is in the memory department. The RTX 3080 Ti comes standard with 12GB GDDR6X, but at the current prices we still question the need for such a card. Why not give us more RTX 3090 models with double the VRAM? But that&apos;s its own answer. Double the memory would potentially limit the number of cards that can be produced, though it&apos;s not clear if the limiting factor right now is GPUs from Samsung Foundry, GDDR6X memory from Micron, or the substrate and other components needed to manufacture a complete graphics card. Still, it&apos;s a bit weird that Asus offers ROG Strix LC models on the RX 6800 XT and RX 6900 XT, but only the RTX 3080 Ti on the Nvidia side.</p><p>One nice benefit of all the extra cooling on the ROG Strix LC model is that GDDR6X temperatures remain relatively sane for a change. We&apos;ve seen Founders Edition cards hit 102C or more playing games, and that goes for many other models as well. Run something like <a href="https://www.tomshardware.com/how-to/mine-ethereum-nicehash-mining-pools-optimal-settings"><u>cryptocurrency mining</u></a> and you&apos;ll often need fan speeds of 80% or more just to keep the memory below the maximum 110C! But the ROG Strix LC topped out at 98C on its memory, even after an hour of mining, and gaming workloads landed in the 90C range.</p><p>Not that we&apos;d recommend buying an RTX 3080 Ti for mining purposes, as the potential profits are lower thanks to Nvidia&apos;s LHR limiter. You can now get about 70–75% of &apos;normal&apos; non-LHR performance, but that still puts the RTX 3080 Ti at around 75MH/s for Ethereum in our testing. Mining of Ethereum will also go away in the coming months, once the cryptocoin shifts to proof of stake, though plenty of other memory-intensive coins still exist and might take Ethereum&apos;s place among GPU miners. Regardless, if you need some excitement, we can think of other <a href="https://www.youtube.com/watch?v=qYjl11p3afM"><u>better uses of your time and money</u></a>.</p><p>You can also manually overclock the ROG Strix LC, and with a bit of tweaking and tuning you can get an extra 100MHz or so and bump the memory clocks to 20 or even 21 Gbps. For purposes of our graphics card reviews, however, we&apos;re focusing on the out-of-box experience (using the OC mode).</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>GPU Benchmarks and Hierarchy</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="test-setup-for-asus-rog-strix-lc-geforce-rtx-3080-ti">Test Setup for Asus ROG Strix LC GeForce RTX 3080 Ti</h2><div  class="fancy-box"><div class="fancy_box-title">TOM'S HARDWARE GPU TEST PC</div><div class="fancy_box_body"><p class="fancy-box__body-text"><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FIntel-i9-9900K-Desktop-Processor-Unlocked%2Fdp%2FB005404P9I%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-6918793734816095000-20">Intel Core i9-9900K</a><br><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FMSI-MEG-Z390-ACE-Motherboard%2Fdp%2FB07HM3M86B%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-1035929161828378600-20">MSI MEG Z390 Ace</a><br><a data-analytics-id="inline-link" href="https://www.amazon.com/CORSAIR-Vengeance-2x16GB-PC4-28800-Desktop/dp/B082DJ19CK">Corsair 2x16GB DDR4-3600 CL16</a><br><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FXPG-SX8200-Gen3x4-3000MB-ASX8200PNP-2TT-C%2Fdp%2FB07TY2TN64%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-8357985261475935000-20">XPG SX8200 Pro 2TB</a><br><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FSeasonic-Platinum-SSR-850PX-Modular-Warranty%2Fdp%2FB074N9FNV2%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-5529724473589895000-20">Seasonic Focus 850 Platinum</a><br><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FRadiator-Advanced-Lighting-Software-compatible%2Fdp%2FB077FZPCRH%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-8554374707963005000-20">Corsair Hydro H150i Pro RGB</a><br><a data-analytics-id="inline-link" href="https://streacom.com/products/bc1-open-benchtable/">OpenBenchTable</a><br><a data-analytics-id="inline-link" href="https://www.tomshardware.com/news/phanteks-enthoo-luxe-pro-m-tempered-glass,32888.html">Phanteks Enthoo Pro M</a></p></div></div><p>Our test configuration for the hardware and software remains unchanged from other recent reviews. We&apos;re using an 8-core/16-thread Core i9-9900K running stock clocks, but with DDR4-3600 memory and the XMP profile enabled. The CPU generally runs at 4.7GHz during our gaming benchmarks, though the slightly older Coffee Lake architecture can be a bit of a bottleneck at lower resolutions.<br><br>We&apos;re also still running Windows 10 21H1. We plan to update to <a href="https://www.tomshardware.com/news/windows-11-everything-you-need-to-know"><u>Windows 11</u></a> in the near future and see how that impacts performance — which will also require retesting a bunch of GPUs, so we&apos;re not looking to jump on the preview builds just yet.<br><br>We already tested ray tracing and DLSS performance using the reference <a href="https://www.tomshardware.com/news/nvidia-geforce-rtx-3080-ti-review"><u>RTX 3080 Ti Founders Edition</u></a>, so we&apos;re limiting testing on third-party cards to our standard 13 game test suite, running at 4K, 1440p, and 1080p at ultra (or equivalent) settings. Each test setting gets run multiple times, to ensure the consistency of our results. Now let&apos;s see how much the liquid cooling and factory overclock help with performance. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>GPU Benchmarks and Hierarchy</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YSaCRPPqpfhuhYz2HV2A2j.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kqfBNGg9YmFBZbzc3E5n6j.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iUfNB3xmhHNkJqZBvLzYCj.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/J9Uvctm36f2FhZgvrSGoKj.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H5MjVYXQDhGjRVU29WPsRj.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jtoG7rJvFcKs3gVBwjWoXj.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aYGTpZQFm7cPn5UwR47Tdj.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DYVb7fPa8UhAVXWAHAzxij.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KAXwUdwF4ZjaDNkK4zCFrj.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RpF4429mMcZSmKKh3iVuwj.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yCHCrhTJa9U5uQNpUmQm6k.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xVdaQghwUWHS78xUCGYZCk.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4MF9ojvVv9RpXeWVvTf9Wk.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KqxGEF6mGvcccSKP7HErbk.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We were more than a little underwhelmed with the <a href="https://www.tomshardware.com/reviews/zotac-rtx-3080-ti-amp-holo-review"><u>Zotac RTX 3080 Ti Amp Holo Black</u></a>, which basically tied the Founders Edition in terms of performance. The Asus ROG Strix LC scoffs at such paltry improvements and zips past the other 3080 Ti cards, then keeps right on going as it waves to the RTX 3090. Currently, the Asus ROG Strix LC RTX 3080 Ti is the fastest graphics card — out of the box — that we&apos;ve ever tested.</p><p>Overall, the Asus card was 7% faster than the Zotac and Founders Edition cards at 4K ultra, and 4% faster than the RTX 3090 Founders Edition. Okay, that&apos;s not a <em>massive</em> difference, but it&apos;s at least measurable and consistent. We even saw up to a 12% lead over the other 3080 Ti cards in <em>Watch Dogs Legion</em> and <em>The Division 2</em>, and the Asus was up to 7% faster than the 3090 FE in individual game results at 4K.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ZyAC4JYk8zaJABgBct2bp7.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wJhNGFLNbZs4b5jzEC7mv7.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bnxCrxRTT94UoT5braJg28.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ammXCcEbHJ5QHyUQ392h88.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gkuLjnWZivtjZhqykM2qD8.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qsu9drFN855wanjGg8YVJ8.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bk4jUBvFpYV4KMvsUdyNQ8.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sTMpDHxQpYkB4bDGKcEiW8.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tyzjTEQwK8dNTGzWB3Emd8.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aETTKxi6KMZb7AZaWDkhj8.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mc4TXNCWCHqF4irsahxXs8.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8rRqFzzw78Ceb9DF8nTtx8.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4B9ZsZKA9vdduuii5dW259.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8D9jCbDWCS9PCQpKrRHb99.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We start to encounter some GPU bottlenecks once we drop to 1440p, and it&apos;s only going to get worse at 1080p. <a href="https://www.tomshardware.com/news/amd-big_navi-rdna2-all-we-know"><u>AMD&apos;s Big Navi architecture</u></a> also tends to do better at lower resolutions, as the Infinity Cache provides proportionately larger improvements in effective bandwidth. There were several games in our suite where AMD&apos;s RX 6900 XT beats even the Asus ROG Strix LC, and at 1440p <em>Horizon Zero Dawn</em> joins <em>Assassin&apos;s Creed</em>, <em>Borderlands 3</em>, and <em>Forza Horizon 4</em> in favoring Team Red. Still, overall the Asus card was 5–6% faster than the Zotac and Nvidia cards, and 2% faster than the RTX 3090. It was also 5% faster than the RX 6900 XT.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Ts8TizSw96HbEKXYeKK6eG.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nQAixstcwEQP7aT6qobKjG.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TfMvUQpC2MUonSHb7XmqrG.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WveobKxEDoHNXwg3a9CcxG.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XGTvrp3HXYxSryudHdWT5H.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y3TWZ6RD4DHZkhk6Y7pVBH.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tjBjpyjxSQZoCmFAQcjmFH.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/biD8fcHbTKCFSd6GR3WkNH.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ty2ekZD2RLvFNELwP2ArUH.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aKNXrzeeSKy3sHxGwh5DaH.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ptvZfg3dy7N5JJSwyVmxeH.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XKChXYQXJWs9E3u49nz9vH.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r32S7a4RwF7WHtWYmoNG3J.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gTRMLaWmLwMvQoDzUqnG9J.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Cards like the RTX 3080 Ti aren&apos;t really intended to run at 1080p, at least not without other stuff like ray tracing. The Core i9-9900K becomes more of a limiting factor, and the 128MB Infinity Cache on AMD&apos;s Navi 21 GPUs helps push the RX 6900 XT to the top of the overall chart. Of course, that&apos;s also thanks to our use of <em>Assassin&apos;s Creed Valhalla</em>, which is laughably biased toward AMD&apos;s latest GPUs. Then again, even <em>Watch Dogs Legion</em> has the RX 6900 XT and RX 6800 XT beating the fastest Nvidia GPUs.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>GPU Benchmarks and Hierarchy</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><p>Performance isn&apos;t the only important metric when it comes to graphics cards. We also test power consumption using in-line monitoring tools and<a href="https://www.tomshardware.com/features/graphics-card-power-consumption-tested"> <u>Powenetics software</u></a>. We log power, clock speeds, temperatures, and fan speeds (note that the fan speed data wasn&apos;t properly collected for the Zotac card — we&apos;re working to fix that). We loop the <em>Metro Exodus</em> benchmark five times at 1440p ultra settings, and then run <em>FurMark</em> stress test at 1600x900 for over 10 minutes.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2560px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="Asus-ROG-Strix-LC-RTX-3080-Ti-(22).jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" src="https://cdn.mos.cms.futurecdn.net/pTsU38U5mKnNcSjwUTmfH3.jpg" mos="" align="middle" fullscreen="1" width="2560" height="1440" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/pTsU38U5mKnNcSjwUTmfH3.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>For the Asus card, we&apos;re also collecting these power metrics in both the default Gaming mode as well as using the OC mode. Again, all of our benchmarks were done with OC mode enabled, for maximum performance. Here we&apos;ll get to see how much that affects power consumption, temperatures, and other aspects of the card. Note that in limited testing, the OC mode improved performance just 1–2%.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7wXpxQFtpkzJrwZYhmUG7W.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BcBwPhqgcLBFLsaRJVBNhV.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dVpsXmHZBJqz8nAiRvUJMV.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QExae8fjs8f9pD2LHoVKzU.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Power consumption for the Asus 3080 Ti was about 10W higher than the Founders Edition in <em>Metro Exodus</em> and 20W higher in <em>FurMark</em>. The Zotac card actually used less power than the Founders Edition, but it also didn&apos;t perform any better. Enabling OC mode adds another 15–20W of power, still far lower than the theoretical limit you&apos;d expect from a 10% increase. The other charts will help explain the power difference, as all of these factors are interrelated.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/yJTYMU5Z4MBHD5xdjzbRCW.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JBreN4PcMAEWbXTW9ErPoV.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8pkZxaXWyks5wMekwk2fRV.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9G6tKv85aVtwFHDDcmuj6V.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The Asus card managed to deliver the highest GPU clocks we&apos;ve seen from an Nvidia card to date, which isn&apos;t surprising considering the added cooling. It averaged nearly 2GHz in <em>Metro Exodus</em>, beating the Founders Edition by over 175MHz and the Zotac card by 145MHz. It&apos;s still a far cry from the 2.3–2.5GHz we&apos;re seeing on AMD&apos;s RX 6000 GPUs, but those are very different architectures. The gap in <em>FurMark</em> is even larger, where the Asus card averaged 1575MHz compared to just 1278MHz on the Zotac card, and that 300MHz advantage more than explains the 25W power gap. As for the overclocking mode, it helped a lot more in <em>FurMark</em>, adding 115MHz to the average clocks, but in <em>Metro</em> it only increased the GPU clock by about 20MHz.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/om6SkdAkVmV5s6seJyE3HW.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BYk8wsBGMRcaAfXEybKJuV.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ffJgVkMFARQMhAnQf4huVV.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/irP6L7r3QpAL98fTycpvAV.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vGGbhuqPNtbQ8Ek3s8q2PW.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Eq5DYb5Zqys4R5nKqmRY2W.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fV2RpG8hBs7mxZ5NvuwtbV.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jfBXSwdA8xevNweLhrGEFV.png" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Fan speeds and temperatures are the final part of the power and performance story. Asus seems to play it pretty conservatively, with fan speeds quickly ramping up to a steady 1750 RPM, give or take. The flip-side of that is that the GPU temperatures on the Asus card during the <em>Metro</em> and <em>FurMark</em> tests pretty much flatlined at 54C max, over 15C cooler than the Zotac card and 20C lower than the Founders Edition. There&apos;s definitely plenty of cooling headroom left in the tank — and enabling the OC mode doesn&apos;t really change things.</p><p>We also measure peak noise levels using an SPL meter at a distance of 15cm from the GPU fans. We had to shift the radiator around a bit so that both it and the single blower fan on the card were equidistant from the SPL meter, and the result was a noise level of 51.8 dB(A). Interestingly, that corresponded to a rather high fan speed of 80%, so setting a static 75% fan speed dropped the noise level to 48.8 dB(A). The Zotac card was a bit quieter, but also ran at higher temperatures, while the Founders Edition was slightly louder (52.0 dB(A)) but ran significantly hotter.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>GPU Benchmarks and Hierarchy</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><p>It&apos;s difficult to determine the actual price of the Asus ROG Strix LC GeForce RTX 3080 Ti. Officially, it&apos;s supposed to be $2,199, but even then it&apos;s basically impossible to find the card anywhere. <a href="https://www.amazon.com/ASUS-Graphics-DisplayPort-Full-Coverage-Radiator/dp/B097NLSLLX"><u>Amazon has a listing for the card</u></a>, with two marketplace sellers asking $3,900 and $4,000. Yeah, thanks but no thanks. Most reputable places don&apos;t have any inventory, so for the time being this is basically vaporware.<br><br>When will the madness end? I don&apos;t know, but I think there&apos;s a good chance we&apos;ll see Lovelace and RDNA3 GPUs before we see RTX 30-series graphics cards on shelves selling at Nvidia&apos;s MSRPs — meaning, some time in late 2022 probably.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2560px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="Asus-ROG-Strix-LC-RTX-3080-Ti-(8).jpg" alt="Asus ROG Strix LC GeForce RTX 3080 Ti" src="https://cdn.mos.cms.futurecdn.net/KGVp4bJ493zwA9Sdm5ima.jpg" mos="" align="middle" fullscreen="1" width="2560" height="1440" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/KGVp4bJ493zwA9Sdm5ima.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>We get that this is an extreme card, and maybe some people could even justify paying $2,000 for it. Nvidia sold plenty of Titan graphics cards over the past five years, and this is basically as good as most of those (minus the &apos;professional&apos; drivers). But when normal RTX 3080 Ti cards go for an average price of around $1,900 on eBay, and the air-cooled Asus ROG Strix RTX 3080 Ti has an <a href="https://www.ebay.com/sch/i.html?_nkw=Asus+ROG+Strix+RTX+3080+Ti+12GB&_in_kw=1&_ex_kw=&_sacat=0&LH_Sold=1&_mPrRngCbx=1&_udlo=1200&_udhi=&_samilow=&_samihi=&_sadis=15&_stpos=80534&_sargn=-1%26saslc%3D1&_salic=1&_sop=12&_dmd=1&_ipg=50&LH_Complete=1&_fosrp=1"><u>average price of $2,250 on eBay</u></a> during the past month, the liquid-cooled version will be out of reach of any &apos;normal&apos; gamer.<br><br>That&apos;s basically the story of the past year. Every new graphics card we review feels like we&apos;re testing and writing about a product most people will never see or use. We keep hoping things will improve, but so far that hope has been all in vain. Hope can&apos;t change the realities of limited supply and extreme demand.<br><br>If a product like the Asus ROG Strix LC RTX 3080 Ti had launched a few years back, with a price of $1,200, we could have made a case for it being an extreme card built for enthusiasts. At potentially more than double that price, all we can do is give a sad shake of the head and look forward to better days.<br><br>Theoretically, Asus has an awesomely powerful and cool-running GPU for extreme enthusiasts. We&apos;d love to be able to recommend buying one. Practically speaking, unfortunately, all we really have is a <a href="https://rog.asus.com/us/graphics-cards/graphics-cards/rog-strix/rog-strix-lc-rtx3080ti-o12g-gaming-model/"><u>product page</u></a> and a review sample; we don&apos;t even know where to point people to actually buy one, at any price. If you can find one in stock at a reasonable price, by all means, go for it. Given current market conditions, we continue to suggest figuring out what settings to use in order to play games on your current hardware while we wait (and wiat, and wait) this GPU shortage out. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>GPU Benchmarks and Hierarchy</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe>
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                                                            <title><![CDATA[ EVGA SuperNOVA 1000 G6 Power Supply Review: EVGA Meets Seasonic ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/evga-supernova-1000-g6-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ The EVGA SuperNOVA 1000 G6 is among the best power supplies in the 1000W category. ]]>
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                                                                        <pubDate>Sat, 31 Jul 2021 10:00:07 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:31:59 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[EVGA SuperNOVA 1000 G6]]></media:description>                                                            <media:text><![CDATA[EVGA SuperNOVA 1000 G6]]></media:text>
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                                <p>EVGA has done it again, this time with Seasonic&apos;s help. The SuperNOVA 1000 G6 is one of the best of the Gold 1000W category, posing some serious competition to the <a href="https://www.tomshardware.com/reviews/corsair-rm1000x-2021-power-supply-review">Corsair RM1000x</a> (2021). Noise output is kept low, although it&apos;s only 1 dBA less than Corsair&apos;s top RMx unit, so the difference is barely noticeable. Overall, though, the new EVGA 1000 G6 boasts impressive performance, which justifies a place in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best PSUs article</a>. </p><p>Let&apos;s start with some history. After the highly successful SuperNOVA G2 line, which Super Flower produced, EVGA rolled out the G3 (Super Flower) and G5 (FSP) until it reached the G6 line, which is based on a Seasonic design. A major feature of the 1000 G6 is the hybrid (Hardware & Firmware) over power protection (OPP). An analog IC handles hardware OPP, and an MCU is responsible for the firmware OPP. The first is designed to trip when power output exceeds 135% for a few nanoseconds, while the latter trips once power exceeds 125% for longer periods, in the millisecond range. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UKKrD3bVo7oNHuEn5JvZAf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gdt3ZFAvxDJCnQh3wNTJEf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CXwTKabqC5gUc8yYirokJf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q7r99cecaeQ5kSqrxdkyPf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hj7FpCD5JHT9DgLn8rzBUf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6ZrhtF46MZ3cea8UYsL9Zf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xTacCKVbZh8JJDf6aPoygf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pvCMXHD4tS58yWMWR3eLnf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NNktoeGXsSkcR98VaBoFrf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NwYsmx45fD6DM3ayjFeSwf.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2UA8NunFQgwJz6nDofF52g.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uzJc3nvFK9ysAKW4JuRR5g.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bC5PdU7HiEjhqBhsXppZ8g.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Compared to 1000 G3, the similar capacity G6 model is smaller thanks to its 140mm depth. The 135mm fan barely fits in its chassis. Like we said earlier, EVGA uses an upgraded Seasonic Focus platform for its G6 models, so we expect high performance and increased reliability even with the small size. The PSU features semi-passive operation (ECO mode), which you can deactivate if you want the fan to operate constantly. Lastly, all cables are modular, and the provided warranty is long, at ten years. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cqrRHXrZbcJkrSScfKMLY3.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/V88oPS4uVbukk7Kitjztb3.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BnLFCdctczneZXRNrbuLh3.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/u3vBUYKcNYCHJeLagLBDn3.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8VVKwr5rroPYjjg3FzpUr3.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ugrXqhNqWr8dbyNwk7nsv3.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s7Nh6ND7CkMfTrzimK4A24.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fEGKhgVUnFFej9gD5jMN64.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7qaai6spVkXfTbp8ykcoA4.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-5">Specifications</h2><div ><table><tbody><tr><td  ><p>Manufacturer (OEM)</p></td><td  ><p>Seasonic</p></td></tr><tr><td  ><p>Max. DC Output</p></td><td  ><p>1000W</p></td></tr><tr><td  ><p>Efficiency</p></td><td  ><p>80 PLUS Gold, Cybenetics Gold (87-89%)</p></td></tr><tr><td  ><p>Noise</p></td><td  ><p>Cybenetics A- (25-30 dB[A])</p></td></tr><tr><td  ><p>Modular</p></td><td  ><p>✓ (fully)</p></td></tr><tr><td  ><p>Intel C6/C7 Power State Support</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Operating Temperature (Continuous Full Load)</p></td><td  ><p>0 - 50°C</p></td></tr><tr><td  ><p>Over Voltage Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Under Voltage Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Over Power Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Over Current (+12V) Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Over Temperature Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Short Circuit Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Surge Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Inrush Current Protection</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Fan Failure Protection</p></td><td  ><p>✗</p></td></tr><tr><td  ><p>No Load Operation</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>Cooling</p></td><td  ><p>135mm Fluid Dynamic Bearing Fan (HA13525H12F-Z)</p></td></tr><tr><td  ><p>Semi-Passive Operation</p></td><td  ><p>✓ (selectable)</p></td></tr><tr><td  ><p>Dimensions (W x H x D)</p></td><td  ><p>150 x 85 x 140mm</p></td></tr><tr><td  ><p>Weight</p></td><td  ><p>1.71 kg (3.77 lb)</p></td></tr><tr><td  ><p>Form Factor</p></td><td  ><p>ATX12V v2.53, EPS 2.92</p></td></tr><tr><td  ><p>Warranty</p></td><td  ><p>10 Years</p></td></tr></tbody></table></div><h2 id="power-specifications-5">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >25</td><td  >25</td><td  >62.5</td><td  >3</td><td  >0.5</td></tr><tr><td  ><strong>Watts</strong></td><td  >125</td><td  >1000</td><td  >15</td><td  >6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  >1000</td></tr></tbody></table></div><h2 id="cables-amp-connectors-4">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Description</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (610mm)</th><td  >1</td><td  >1</td><td  >18-22AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (700mm)</th><td  >2</td><td  >2</td><td  >16AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (700mm+125mm)</th><td  >3</td><td  >6</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (700mm)</th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (560mm+110mm+110mm)</th><td  >4</td><td  >12</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (560mm+100mm+100mm+100mm)</th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >FDD Adapter (105mm)</th><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1400mm) - C13 coupler</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >-</td></tr></tbody></table></div><p>This PSU comes with plenty of cables and connectors, including two EPS, eight PCIe, which are overkill even for a 1000W PSU, 12 SATA, and four 4-pin Molex. There is even a floppy adapter for those of you who still need a berg connector. </p><p>All cables are long, and there are no in-cable caps. Finally, all the cables are flat except for the 24-pin ATX cable, which is fully sleeved. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LBm5RRugmCgaeLQE7gpTPC.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BnRkHz5bmtZdVvgycDxjuB.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qXxRkTpRQuV5YnRHyBrVzB.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LWnPpv3F2zZsRDCu9VuP4C.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/57iVFHWHhx4RcbdSZXJd7C.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Qq8yRxFppcQUaYD3cFjFBC.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pKgUPYMtBpGA7Zrr7QicFC.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YcYz5o6MoRdNWpf7R57ZJC.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-5">Component Analysis </h2><p>Is this your first time buying a power supply? Before reading on, we strongly encourage you to look through our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong>allowing you to better understand the components we&apos;re about to discuss.</strong></p><div ><table><tbody><tr><td  ><kbd><strong>General Data</strong></kbd></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><kbd><strong>Primary Side</strong></kbd></td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV, 1x Discharge IC</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor MF72-5D20L (5 Ohm) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  ><div>2x GBUE2560 (600V, 25A @ 140°C)</div></td></tr><tr><td  >APFC MOSFETs</td><td  ><div>2x Infineon IPA60R099P6 (600V, 24A @ 100°C, Rds(on): 0.099Ohm)</div></td></tr><tr><td  >APFC Boost Diode</td><td  ><div>1x STMicroelectronics STPSC10H065 (650V, 10A @ 135°C)</div></td></tr><tr><td  >Bulk Cap(s)</td><td  ><div>2x Nippon Chemi-Con (420V, 470uF each or 940uF combined, 2,000h @ 105°C, KMZ)</div></td></tr><tr><td  >Main Switchers</td><td  ><div>4x Infineon IPA60R190P6 (600V, 12.7A @ 100°C, Rds(on): 0.19Ohm)</div></td></tr><tr><td  >APFC Controller</td><td  ><div>Champion CM6500UN</div></td></tr><tr><td  >Resonant Controller</td><td  >Champion CU6901V</td></tr><tr><td  >Topology</td><td  ><div>Primary side: APFC, Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</div></td></tr><tr><td  ><kbd><strong>Secondary Side</strong></kbd></td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >6x Nexperia PSMN1R4-40YLD (40V, 220A @ 100°C, Rds(on): 1.4mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 6x 40030L<br> PWM Controller(s): ANPEC APW7159C</td></tr><tr><td  >Filtering Capacitors</td><td  ><p>Electrolytic: 6x Nippon Chemi-Con (2-5,000h @ 105°C, KZE), 2x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 1x Nippon Chemi-Con (2,000h @ 105°C, KZH), 3x Rubycon (3-6,000h @ 105°C, YXG)<br> Polymer: 21x Nippon Chemi-Con, 13x FPCAP</p></td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7527RA (OCP, OVP, UVP, SCP, PG) & Weltrend WT51F104 (Firmware OPP)</td></tr><tr><td  >Fan Controller</td><td  >Weltrend WT51F104</td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA13525H12F-Z (135mm, 12V, 0.50A, Fuid DynamicBearing Fan)</td></tr><tr><td  ><kbd><strong>5VSB Circuit</strong></kbd></td><td  >-</td></tr><tr><td  >Rectifier</td><td  ><div>1x M.C.C. MBR1045ULPS SBR (45V, 10A)</div></td></tr><tr><td  >Standby PWM Controller</td><td  >Excelliance MOS EM8569C</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UnrHebfEU5vLVqJ6wpDqx.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/np5LMGukaQFDPeGHqEFu93.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/keYNw825CxYTzt5QiwCrN3.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9bzfeR7vU7WhgPaexiq8b3.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The G6 line uses an updated Seasonic Focus platform featuring an MCU which, besides the firmware OPP, as EVGA calls it, also handles over-temperature protection and controls the fan&apos;s speed. We noticed a single wire used for an NTC thermistor which provides information on the MCU hosted on the same daughter-board with the DC-DC converters. Ideally, this connection should be made through another, less visible way, but this would require a major platform re-design which costs money (and time). </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DhANd9TiUDFUxZRNJRSxoA.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/26E8s85VYYGGUMYykvLiyA.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AJAV5CBygKMBrfLNHzSr8B.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/snSvPVmcLSP6KdwZqVXpJB.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vUt4JFpNZpQKE9Z9NU2kXB.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RbCRXxmW9zZGguuzjUCcjB.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter is complete and does a good job. Moreover, an MOV provides protection against voltage surges, and the large inrush currents are suppressed by an NTC thermistor, with a bypass relay supporting it. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qs4HZMmsGTsXTeGjBURN9L.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/An4bpDSEZnL2PwuQrzYTLL.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The bridge rectifiers are powerful; combined, they can handle up to 50A of current.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/PKUzL49fUoaoa9CTWnxhcR.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HXSfS6qvJFK4eygUkRB6nR.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZDz7scTr4Ch7McgXnoPsuR.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Rhc7EJgAo2iBZHxxXTjE4S.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter uses two Infineon FETs and a single boost diode. The bulk caps are by Chemi-Con, and their combined capacity reaches 940uF. Finally, the APFC controller is the Champion CM6500UN, which offers higher performance (higher PF readings at light and moderate loads) than the CM6502, and it is pin to pin compatible with the latter. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/B6z4zuGYnFrwoH4Fqo5XGY.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iKPnQqQwQpTmWNwKo3EpQY.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XsYA5Td3sbXEMCg3ME7MZY.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3JGHWRLHmu4khFCxCDKshY.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main FETs are arranged into a full-bridge topology, and an LLC resonant converter is also used to boost efficiency. The resonant controller is the Champion CU6901V, which supports burst operation for higher efficiency at light loads. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uH62AwmrTycGoJGEF8ZwB9.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Aj4zfkadSDBtoTrmK5vWP9.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bijwyiGYeH7epXZFeKzZe9.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tPN44tj7f3KkUFJngA7sx9.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 12V FETs contact the PSU&apos;s chassis through the thermal paste and white material that looks like paper (but it isn&apos;t). We removed a piece of it to have a clean look at two of the FETs. </p><p>The VRMs handling the minor rails use six FETs, and the common PWM controller is by ANPEC. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/CC9oXiyiHSJ2c2P9tqmuDE.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6GDajmHHgBPJ9uWf4WnNNE.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nhquLqZ8S8zDkuLKCrqZWE.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>All filtering caps are provided by Japanese manufacturers and are of good quality to outlast the long warranty. Besides electrolytic caps, many polymer caps are also used. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Niiy3ZNZnEZuRbr8GczEPa.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qkkrsge6LBFaJGXMfAoVZa.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kt5sZyjDpukaEvLBPD5dga.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail uses an SBR on its secondary side, so we don&apos;t expect high-efficiency levels. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JZ6v3RqUZRGkDrSN8iWKvA.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mie8gq4vCHi9WcTgzG9p5B.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main supervisor IC is a Weltrend WT7527RA, supported by a <a href="http://www.weltrend.com/upload/website/product/WT51F104_DataSheet_EN_V3.0.pdf">WT51F104</a> micro-controller. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Bk8BmtyQr4ViCg2aFKTAhJ.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C6EhmZ5T4jkxw3Ad4C3FqJ.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YW9u7ovzgW2JhLyWt5w32K.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Besides bus bars, the modular board also hosts many polymer caps for cleaning the PSU&apos;s DC rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/69ACJg5UAf3VDERZYP6wpN.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/grUzedGvKjyMwACGgfmB8P.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/z4RohVxyn6gwUQkHxQn9UP.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Soldering quality is within expectations.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/XgJXnxAvujVy9idzq4KLvT.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gNNSJj4DmEEaEawppn7yKU.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Hong Hua provides the cooling fan, which uses a fluid dynamic bearing for lower noise output and increased reliability. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="f684d2c8-f269-495d-b3bf-c06fbfead171">            <a 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class="featured_product_title_wrapper">                                                                                <div class="featured__title">EVGA SuperNOVA 1000 G5</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star half"></span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="71" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="26ba82a0-9968-42e6-972d-938052ae6f61">            <a href="https://www.newegg.com/corsair-rmx-series-rm1000x-cp-9020201-na-1000w/p/N82E16817139273" data-model-name="Corsair RM1000x (2021)" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/MpXyqC8VRb3WGuV3fmaZyX.jpg" alt="Corsair RM1000x (2021)"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM1000x (2021)</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-5">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40W up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply, because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions. At the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/23v7w4HCDioNQMA8huAuVZ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gZAyRTKBYg3GBzFQ6EJSaZ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TikownHC7hgRENd74CGfdZ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/L7QcUVKNxrA9mFSAQpZyfZ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WB6462kCEh3ZZfTJNx6DjZ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/exZCdgkfZfTWVrw8juoxnZ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FmuAo2cS86q6QVnBNQo9tZ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/D92iY6gzmoDPmJYpnDvVxZ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is tight at 12V, satisfactory at 5V, and average at 5VSB. We would like to see a within 1% deviation at 3.3V. </p><h2 id="hold-up-time-5">Hold-Up Time</h2><p>Put simply, hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/h983DrC477MHejty93rATo.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cpd4EUbUGmRcdw2DkLV2Xo.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mfCpQGPoePqusxfhpLsY3.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eorA3XMTeUjLjMbr3vjH8.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time here is much longer than the 17ms we consider to be the bare minimum, and the power ok signal is accurate.</p><h2 id="inrush-current-5">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jCFxsGCPgFyYDSjARTdaDG.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8Rn6z28pFXVpgx4wpYozGG.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Inrush current is low with 115V input, but quite high with 230V. </p><h2 id="leakage-current-5">Leakage Current</h2><p>In layman&apos;s terms, leakage current is the unwanted transfer of energy from one circuit to another. In power supplies, it is the current flowing from the primary side to the ground or the chassis, which in the majority of cases is connected to the ground. For measuring leakage current, we use a <a href="https://www.gwinstek.com/en-global/products/detail/GPT-9900">GW Instek GPT-9904</a> electrical safety tester instrument.</p><p>The leakage current test is conducted at 110% of the DUT&apos;s rated voltage input (so for a 230-240V device, we should conduct the test with 253-264V input). The maximum acceptable limit of a leakage current is 3.5 mA and it is defined by the IEC-60950-1 regulation, ensuring that the current is low and will not harm any person coming in contact with the power supply&apos;s chassis.</p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 14b -27b_Leakage_Current_Comparison_264V.png" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/h6Bd9bYgbqvfFYgHsXGN8L.png" mos="" align="middle" fullscreen="" width="651" height="490" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Leakage current exceeds 2mA. Still, it is much lower than the limit (3.5mA). </p><h2 id="10-110-load-tests-5">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#B7BDCC"><strong>10%</strong></font></td><td  ><strong>6.435A</strong></td><td  ><strong>1.994A</strong></td><td  ><strong>1.981A</strong></td><td  ><strong>0.987A</strong></td><td  >100.008</td><td  >85.027%</td><td  >0</td><td  ><6.0</td><td  >43.88°C</td><td  >0.966</td></tr><tr><td  >12.184V</td><td  >5.016V</td><td  >3.332V</td><td  >5.069V</td><td  >117.619</td><td  >40.28°C</td><td  >115.19V</td></tr><tr><td  ><font color="#B7BDCC"><strong>20%</strong></font></td><td  ><strong>13.877A</strong></td><td  ><strong>2.994A</strong></td><td  ><strong>2.976A</strong></td><td  ><strong>1.187A</strong></td><td  >199.965</td><td  >89.663%</td><td  >0</td><td  ><6.0</td><td  >45.21°C</td><td  >0.975</td></tr><tr><td  >12.183V</td><td  >5.011V</td><td  >3.327V</td><td  >5.056V</td><td  >223.02</td><td  >40.87°C</td><td  >115.12V</td></tr><tr><td  ><font color="#B7BDCC"><strong>30%</strong></font></td><td  ><strong>21.705A</strong></td><td  ><strong>3.495A</strong></td><td  ><strong>3.475A</strong></td><td  ><strong>1.388A</strong></td><td  >300.019</td><td  >91.053%</td><td  >0</td><td  ><6.0</td><td  >46.26°C</td><td  >0.981</td></tr><tr><td  >12.161V</td><td  >5.008V</td><td  >3.324V</td><td  >5.044V</td><td  >329.499</td><td  >41.28°C</td><td  >115.12V</td></tr><tr><td  ><font color="#B7BDCC"><strong>40%</strong></font></td><td  ><strong>29.489A</strong></td><td  ><strong>3.998A</strong></td><td  ><strong>3.975A</strong></td><td  ><strong>1.59A</strong></td><td  >399.833</td><td  >91.168%</td><td  >658</td><td  >15.4</td><td  >42.03°C</td><td  >0.986</td></tr><tr><td  >12.161V</td><td  >5.004V</td><td  >3.321V</td><td  >5.033V</td><td  >438.569</td><td  >47.54°C</td><td  >115.12V</td></tr><tr><td  ><font color="#B7BDCC"><strong>50%</strong></font></td><td  ><strong>36.953A</strong></td><td  ><strong>5.003A</strong></td><td  ><strong>4.979A</strong></td><td  ><strong>1.793A</strong></td><td  >499.539</td><td  >90.681%</td><td  >1482</td><td  >40.7</td><td  >42.11°C</td><td  >0.988</td></tr><tr><td  >12.151V</td><td  >4.998V</td><td  >3.314V</td><td  >5.02V</td><td  >550.873</td><td  >48.25°C</td><td  >115.12V</td></tr><tr><td  ><font color="#B7BDCC"><strong>60%</strong></font></td><td  ><strong>44.482A</strong></td><td  ><strong>6.011A</strong></td><td  ><strong>5.985A</strong></td><td  ><strong>1.997A</strong></td><td  >600.074</td><td  >90.268%</td><td  >1483</td><td  >40.7</td><td  >42.84°C</td><td  >0.989</td></tr><tr><td  >12.146V</td><td  >4.992V</td><td  >3.308V</td><td  >5.008V</td><td  >664.768</td><td  >49.91°C</td><td  >115.11V</td></tr><tr><td  ><font color="#B7BDCC"><strong>70%</strong></font></td><td  ><strong>51.940A</strong></td><td  ><strong>7.021A</strong></td><td  ><strong>6.994A</strong></td><td  ><strong>2.203A</strong></td><td  >699.815</td><td  >89.67%</td><td  >1481</td><td  >40.7</td><td  >43.59°C</td><td  >0.99</td></tr><tr><td  >12.143V</td><td  >4.986V</td><td  >3.303V</td><td  >4.994V</td><td  >780.436</td><td  >51.39°C</td><td  >115.11V</td></tr><tr><td  ><font color="#B7BDCC"><strong>80%</strong></font></td><td  ><strong>59.447A</strong></td><td  ><strong>8.003A</strong></td><td  ><strong>8.005A</strong></td><td  ><strong>2.308A</strong></td><td  >799.741</td><td  >89.015%</td><td  >1484</td><td  >40.7</td><td  >43.72°C</td><td  >0.991</td></tr><tr><td  >12.145V</td><td  >4.982V</td><td  >3.298V</td><td  >4.985V</td><td  >898.431</td><td  >52.28°C</td><td  >115.11V</td></tr><tr><td  ><font color="#B7BDCC"><strong>90%</strong></font></td><td  ><strong>67.297A</strong></td><td  ><strong>8.539A</strong></td><td  ><strong>8.498A</strong></td><td  ><strong>2.412A</strong></td><td  >899.666</td><td  >88.163%</td><td  >1850</td><td  >46.4</td><td  >44.2°C</td><td  >0.992</td></tr><tr><td  >12.143V</td><td  >4.978V</td><td  >3.295V</td><td  >4.975V</td><td  >1020.457</td><td  >53.63°C</td><td  >115.1V</td></tr><tr><td  ><font color="#B7BDCC"><strong>100%</strong></font></td><td  ><strong>74.925A</strong></td><td  ><strong>9.048A</strong></td><td  ><strong>9.023A</strong></td><td  ><strong>3.029A</strong></td><td  >999.692</td><td  >87.21%</td><td  >1850</td><td  >46.4</td><td  >45.71°C</td><td  >0.992</td></tr><tr><td  >12.146V</td><td  >4.975V</td><td  >3.292V</td><td  >4.954V</td><td  >1146.311</td><td  >55.76°C</td><td  >115.09V</td></tr><tr><td  ><font color="#B7BDCC"><strong>110%</strong></font></td><td  ><strong>82.480A</strong></td><td  ><strong>10.062A</strong></td><td  ><strong>10.133A</strong></td><td  ><strong>3.034A</strong></td><td  >1100.312</td><td  >86.203%</td><td  >1853</td><td  >46.5</td><td  >46.93°C</td><td  >0.993</td></tr><tr><td  >12.148V</td><td  >4.97V</td><td  >3.286V</td><td  >4.945V</td><td  >1276.423</td><td  >57.76°C</td><td  >115.1V</td></tr><tr><td  ><font color="#B7BDCC"><strong>CL1</strong></font></td><td  ><strong>0.115A</strong></td><td  ><strong>15.088A</strong></td><td  ><strong>15.106A</strong></td><td  ><strong>0A</strong></td><td  >126.316</td><td  >81.409%</td><td  >1490</td><td  >40.9</td><td  >42.11°C</td><td  >0.982</td></tr><tr><td  >12.208V</td><td  >4.991V</td><td  >3.283V</td><td  >5.069V</td><td  >155.163</td><td  >48.64°C</td><td  >115.18V</td></tr><tr><td  ><font color="#B7BDCC"><strong>CL2</strong></font></td><td  ><strong>0.115A</strong></td><td  ><strong>25.112A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  >126.4</td><td  >79.477%</td><td  >1838</td><td  >46.2</td><td  >43.56°C</td><td  >0.98</td></tr><tr><td  >12.197V</td><td  >4.978V</td><td  >3.33V</td><td  >5.082V</td><td  >159.04</td><td  >50.64°C</td><td  >115.18V</td></tr><tr><td  ><font color="#B7BDCC"><strong>CL3</strong></font></td><td  ><strong>0.115A</strong></td><td  ><strong>0A</strong></td><td  ><strong>25.342A</strong></td><td  ><strong>0A</strong></td><td  >83.897</td><td  >72.862%</td><td  >1837</td><td  >46.2</td><td  >44.53°C</td><td  >0.964</td></tr><tr><td  >12.186V</td><td  >5.017V</td><td  >3.256V</td><td  >5.067V</td><td  >115.144</td><td  >52.52°C</td><td  >115.19V</td></tr><tr><td  ><font color="#B7BDCC"><strong>CL4</strong></font></td><td  ><strong>82.450A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0A</strong></td><td  ><strong>0.001A</strong></td><td  >1000.228</td><td  >87.932%</td><td  >1847</td><td  >46.4</td><td  >45.63°C</td><td  >0.992</td></tr><tr><td  >12.131V</td><td  >4.996V</td><td  >3.327V</td><td  >5.032V</td><td  >1137.5</td><td  >54.51°C</td><td  >115.08V</td></tr></tbody></table></div><p>The passive operation lasts up to 30% load, and with 40% load, the PSU&apos;s fan spins at low RPM. In all other tests, the fan speed is high, and the same applies to noise output. Lastly, the PSU doesn&apos;t have a problem with high operating temperatures, even under overload conditions. </p><h2 id="20-80w-load-tests-5">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#B7BDCC"><strong>10W</strong></font></td><td  ><strong>1.222A</strong></td><td  ><strong>0.498A</strong></td><td  ><strong>0.494A</strong></td><td  ><strong>0.196A</strong></td><td  >20.004</td><td  >76.442%</td><td  >0</td><td  ><6.0</td><td  >39.37°C</td><td  >0.617</td></tr><tr><td  >12.148V</td><td  >5.023V</td><td  >3.339V</td><td  >5.093V</td><td  >26.169</td><td  >37.07°C</td><td  >115.2V</td></tr><tr><td  ><font color="#B7BDCC"><strong>20W</strong></font></td><td  ><strong>2.690A</strong></td><td  ><strong>0.697A</strong></td><td  ><strong>0.692A</strong></td><td  ><strong>0.295A</strong></td><td  >40.002</td><td  >80.941%</td><td  >0</td><td  ><6.0</td><td  >40.84°C</td><td  >0.833</td></tr><tr><td  >12.151V</td><td  >5.022V</td><td  >3.338V</td><td  >5.089V</td><td  >49.428</td><td  >38.08°C</td><td  >115.23V</td></tr><tr><td  ><font color="#B7BDCC"><strong>30W</strong></font></td><td  ><strong>4.148A</strong></td><td  ><strong>0.897A</strong></td><td  ><strong>0.89A</strong></td><td  ><strong>0.393A</strong></td><td  >60.001</td><td  >79.783%</td><td  >0</td><td  ><6.0</td><td  >41.28°C</td><td  >0.92</td></tr><tr><td  >12.182V</td><td  >5.02V</td><td  >3.337V</td><td  >5.085V</td><td  >75.205</td><td  >38.93°C</td><td  >115.2V</td></tr><tr><td  ><font color="#B7BDCC"><strong>40W</strong></font></td><td  ><strong>5.608A</strong></td><td  ><strong>1.096A</strong></td><td  ><strong>1.088A</strong></td><td  ><strong>0.492A</strong></td><td  >79.958</td><td  >82.868%</td><td  >0</td><td  ><6.0</td><td  >42.61°C</td><td  >0.952</td></tr><tr><td  >12.185V</td><td  >5.018V</td><td  >3.336V</td><td  >5.082V</td><td  >96.488</td><td  >39.62°C</td><td  >115.21V</td></tr></tbody></table></div><p>Burst mode operation boosts efficiency during the first two tests, but there is an efficiency drop with a 60W load. Efficiency increases again at 80W. All in all, this platform is highly efficient at light loads. </p><h2 id="2-or-10w-load-test-5">2% or 10W Load Test</h2><p>From July 2020, the ATX spec requires 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units, we dial 2% of their max-rated capacity.</p><div ><table><tbody><tr><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>Standby Rail</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>1.464A</strong></td><td  ><strong>0.264A</strong></td><td  ><strong>0.264A</strong></td><td  ><strong>0.053A</strong></td><td  >20.253</td><td  >77.006%</td><td  >0</td><td  ><6.0</td><td  >31.25°C</td><td  >0.628</td></tr><tr><td  >12.139V</td><td  >5.022V</td><td  >3.338V</td><td  >5.096V</td><td  >26.301</td><td  >28.26°C</td><td  >115.19V</td></tr></tbody></table></div><p>At 2%, load efficiency is sky-high! </p><h2 id="efficiency-amp-power-factor-4">Efficiency & Power Factor</h2><p>Next, we plotted a chart showing the PSU&apos;s efficiency at low loads, and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills. The same goes for Power Factor.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qvyXMcVmmhezCTBswxVdCN.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rsKT7Q8PnGVjpBWW9rmCGN.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jk3GMGK7WiFBDUdJ9YyWXN.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/52KuimWQGPL6iWyBgs7VaN.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/onL7jfJc7TLfv7mWjfUJdN.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YgReuQ9rb368v9viSxvxgN.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>With normal loads, efficiency could be higher. Efficiency is satisfactory with light loads, though, and outstanding with super-light loads. </p><h2 id="5vsb-efficiency-5">5VSB Efficiency</h2><div ><table><caption>5VSB Efficiency Table</caption><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.512</td><td  rowspan="2">67.546%</td><td  >0.074</td></tr><tr><td  >5.123V</td><td  >0.758</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.279</td><td  rowspan="2">76.040%</td><td  >0.153</td></tr><tr><td  >5.118V</td><td  >1.682</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.809</td><td  rowspan="2">78.093%</td><td  >0.273</td></tr><tr><td  >5.107V</td><td  >3.597</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >5.093</td><td  rowspan="2">77.260%</td><td  >0.376</td></tr><tr><td  >5.092V</td><td  >6.592</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.615</td><td  rowspan="2">78.887%</td><td  >0.429</td></tr><tr><td  >5.076V</td><td  >9.653</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >15.077</td><td  rowspan="2">76.580%</td><td  >0.503</td></tr><tr><td  >5.026V</td><td  >19.688</td><td  >115.13V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mMWX3NbDJjwr8kX6iukyWF.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BuSXBuyULrgtNKCZQcZbbF.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We would like to see a more efficient 5VSB rail. </p><h2 id="power-consumption-in-idle-and-standby-5">Power Consumption In Idle And Standby</h2><div ><table><caption>Idle & Standby Power Consumption</caption><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">12.087V</td><td  rowspan="2">4.928V</td><td  rowspan="2">3.313V</td><td  rowspan="2">4.929V</td><th  rowspan="2">8.148</th><td  >0.458</td></tr><tr><td  >115.2V</td></tr><tr><td  colspan="5" rowspan="2"><strong>Standby</strong></td><td  rowspan="2">0.172</td><td  >0.017</td></tr><tr><td  >115.2V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/dkZJ3bSBByGUfzNgncE2eJ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/w9Mq8UwUULYp9sWMx7zQhJ.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Vampire power is low with 115V but exceeds 0.1W with 230V. Still, it is much lower than the limit, 0.25W, but it would be nice to see a below 0.1W reading. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-5">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/sMDFVNBKc9pUWJgzqm6RtP.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/sMDFVNBKc9pUWJgzqm6RtP.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/ZDAUn6LcEf4q4KtEXR7ytR.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ZDAUn6LcEf4q4KtEXR7ytR.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile gets highly aggressive at increased operating temperatures. The PCB is small for a 1000W PSU and densely populated, so the fan must rotate at high speeds to handle the heat load. </p><p>The following results were obtained at an ambient temperature of 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).       </p><figure class="van-image-figure  inline-layout" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:950px;"><p class="vanilla-image-block" style="padding-top:55.79%;"><img id="" name="CLNoise.png" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/BFy6XAatKsEc49G75Nnk2V.png" mos="" align="middle" fullscreen="" width="950" height="530" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=" inline-layout"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1020px;"><p class="vanilla-image-block" style="padding-top:55.78%;"><img id="" name="CL_Fan_Speed.JPG" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/M4PgmpMQJHCSaWbVszNEf4.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="1020" height="569" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/M4PgmpMQJHCSaWbVszNEf4.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile is quite loose at normal operating temperatures, keeping noise output in control. With up to 450W loads and with less than 80W on the minor rails, the PSU operates in passive mode if it is selected. The transition from 750W to higher loads could be smoother since the difference in noise output between moderate and high loads is vast. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-5">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  ><p>OCP (Cold @ 24°C)</p></td><td  >12V: 119.6A (143.58%), 12.087V 5V: 32.8A (131.2%), 4.903V 3.3V: 32.5A (130%), 3.251V 5VSB: 6.2A (206.67%), 4.954V</td></tr><tr><td  ><p>OCP (Hot @ 43°C)</p></td><td  ><p>12V: 119.8A (143.82%), 12.101V<br> 5V: 33.1A (132.4%), 4.907V<br> 3.3V: 32.1A (128.4%), 3.260V<br> 5VSB: 6.2A (206.67%), 4.921V</p></td></tr><tr><td  ><p>OPP (Cold @ 25°C)</p></td><td  ><p>1445.92W (144.59%)</p></td></tr><tr><td  ><p>OPP (Hot @ 43°C)</p></td><td  ><p>1449.96W (145%)</p></td></tr><tr><td  ><p>OTP</p></td><td  ><p>✓ (144°C @ 12V Heat Sink)</p></td></tr><tr><td  ><p>SCP</p></td><td  ><p>12V to Earth: ✓<br> 5V to Earth: ✓<br> 3.3V to Earth: ✓<br> 5VSB to Earth: ✓<br> -12V to Earth: ✓<br> </p></td></tr><tr><td  ><p>PWR_OK</p></td><td  ><p>Proper operation</p></td></tr><tr><td  ><p>NLO</p></td><td  ><p>✓</p></td></tr><tr><td  ><p>SIP</p></td><td  ><p>Surge: MOV<br> Inrush: NTC Thermistor & Bypass relay</p></td></tr></tbody></table></div><p>This PSU is supposed to have two different OPP triggering points. Nonetheless, we only managed to trigger one of them, most likely the one that EVGA calls hardware OPP, although we raise the load slowly during OCP and OPP evaluation. OCP is adequately set on the minor rails, but it is quite high at 12V. OPP has a high triggering point, too. Most likely, EVGA wanted to make sure that no power spike could shut down this unit. </p><h2 id="dc-power-sequencing-5">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rQUVFidSbdBW5menKWkKge.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HdzCokyHU2xWt5hmoayGke.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vxdL6RhcsrU7SX6jrxfDoe.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are no problems here, since the 3.3V rail is always at a lower voltage level than the other two rails. </p><h2 id="cross-load-tests-5">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-5">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Hp6ku4bSW4xkd9TB5xGuHJ.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cm32KBcPVnudrPQB3BXVLJ.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ppp4GiKcp5JPsBqcsppwPJ.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-graph-5">Efficiency Graph</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1020px;"><p class="vanilla-image-block" style="padding-top:55.78%;"><img id="" name="CL_Efficiency.JPG" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/qcLr3CZdu9QLYwd33oSguN.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="1020" height="569" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/qcLr3CZdu9QLYwd33oSguN.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-graphs-5">Ripple Graphs</h2><p>The lower the power supply&apos;s ripple, the more stable the system. Less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/E6HzSuwqwPi9qqFF2hGkCW.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5CDYtemMmHBBAnvm9cUYGW.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BaNQ5wQcMzsEv3mAmKjqKW.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/v4yYuqu3ZcjRW7A8YfUPPW.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-5">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rY9rM6CNDTEEB2yPjTTxQU.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FGzBeoSYQzDFpJqdRUAKZU.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/voZBX84J2tnQqYRxARoVhU.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yTa9vBofCzpFfQZZtVtAqU.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HxBzgBaeugfz5XsRzfWexU.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ax7zVhpAxALjLYncCgVz6V.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hottest parts are the main transformer and the resonant tank, close to the main switching FETs. The 12V heat sinks also get quite hot. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-5">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8"><strong>click here</strong></a><strong>.</strong></p><p>In the real world, power supplies are always working with loads that change. It&apos;s of immense importance, then, for the PSU to keep its rails within the ATX specification&apos;s defined ranges. The smaller the deviations, the more stable your PC will be, with less stress applied to its components. </p><p><em><strong>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </strong></em></p><h2 id="advanced-transient-response-at-20-x2013-20ms-5">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>12V</strong></td><td  >12.17V</td><td  >12.00V</td><td  >1.41%</td><td  >Pass</td></tr><tr><td  ><strong>5V</strong></td><td  >5.01V</td><td  >4.91V</td><td  >1.94%</td><td  >Pass</td></tr><tr><td  ><strong>3.3V</strong></td><td  >3.33V</td><td  >3.20V</td><td  >3.87%</td><td  >Pass</td></tr><tr><td  ><strong>5VSB</strong></td><td  >5.06V</td><td  >5.02V</td><td  >0.74%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-5">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>12V</strong></td><td  >12.17V</td><td  >12.01V</td><td  >1.34%</td><td  >Pass</td></tr><tr><td  ><strong>5V</strong></td><td  >5.01V</td><td  >4.91V</td><td  >2.02%</td><td  >Pass</td></tr><tr><td  ><strong>3.3V</strong></td><td  >3.33V</td><td  >3.20V</td><td  >3.82%</td><td  >Pass</td></tr><tr><td  ><strong>5VSB</strong></td><td  >5.06V</td><td  >5.00V</td><td  >1.02%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-5">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>12V</strong></td><td  >12.17V</td><td  >12.00V</td><td  >1.44%</td><td  >Pass</td></tr><tr><td  ><strong>5V</strong></td><td  >5.01V</td><td  >4.92V</td><td  >1.88%</td><td  >Pass</td></tr><tr><td  ><strong>3.3V</strong></td><td  >3.33V</td><td  >3.20V</td><td  >3.76%</td><td  >Pass</td></tr><tr><td  ><strong>5VSB</strong></td><td  >5.06V</td><td  >5.01V</td><td  >0.88%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-5">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>12V</strong></td><td  >12.13V</td><td  >12.02V</td><td  >0.95%</td><td  >Pass</td></tr><tr><td  ><strong>5V</strong></td><td  >5.00V</td><td  >4.80V</td><td  >3.93%</td><td  >Pass</td></tr><tr><td  ><strong>3.3V</strong></td><td  >3.31V</td><td  >3.18V</td><td  >4.06%</td><td  >Pass</td></tr><tr><td  ><strong>5VSB</strong></td><td  >5.02V</td><td  >4.98V</td><td  >0.81%</td><td  >Fail</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-5">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>12V</strong></td><td  >12.13V</td><td  >12.03V</td><td  >0.87%</td><td  >Pass</td></tr><tr><td  ><strong>5V</strong></td><td  >5.00V</td><td  >4.89V</td><td  >2.13%</td><td  >Pass</td></tr><tr><td  ><strong>3.3V</strong></td><td  >3.31V</td><td  >3.18V</td><td  >4.00%</td><td  >Pass</td></tr><tr><td  ><strong>5VSB</strong></td><td  >5.02V</td><td  >4.97V</td><td  >1.07%</td><td  >Fail</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-5">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><td  ><strong>Voltage</strong></td><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>12V</strong></td><td  >12.13V</td><td  >12.03V</td><td  >0.86%</td><td  >Pass</td></tr><tr><td  ><strong>5V</strong></td><td  >5.00V</td><td  >4.89V</td><td  >2.12%</td><td  >Pass</td></tr><tr><td  ><strong>3.3V</strong></td><td  >3.31V</td><td  >3.18V</td><td  >3.95%</td><td  >Pass</td></tr><tr><td  ><strong>5VSB</strong></td><td  >5.02V</td><td  >4.97V</td><td  >0.92%</td><td  >Fail</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Kdi8ipqf6Sdey4hG5mBGDh.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cn38RLtL9PMMv6ViYVNZUh.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9VwnwSZQmgtNwbgxW3zEYh.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qAMhqLknM7FpgxqLjNH9ch.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/G5fXF2rcwztjBtthLtTXfh.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uh4KrCSKNZCnngEJbjmijh.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PqpBwSMaYvSe9LBj73Kymh.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KFWdniPTkRPFmpgWd7DZph.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 1000 G6 unit cannot meet the performance levels of the similar capacity G3 model, and it also stays behind the Corsair RM1000x (2021) in transient response on all rails but 5VSB. All in all, the transient response is satisfactory but definitely not among the best in this category. </p><h2 id="turn-on-transient-tests-5">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HbZVCk7sUWywdXLk9eoWb9.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XVmazWmTY8XNMDHqhkiWe9.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eueawpE6TEMkQ5YVEENJj9.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There is only a tiny voltage overshoot at 5VSB, which is nothing to worry about. </p><h2 id="power-supply-timing-tests-5">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >89.5ms</td><td  >130ms</td></tr><tr><th  ><strong>100%</strong></th><td  >90ms</td><td  >131ms</td></tr></tbody></table></div><p>The PWR_OK delay is within the 100-150ms region, so the PSU supports the alternative sleep mode recommended by the ATX spec.</p><h2 id="ripple-measurements-5">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU&apos;s DC rails. This phenomenon significantly decreases the capacitors&apos; lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap&apos;s useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><strong>10%</strong></td><td  >9.04mV</td><td  >5.06mV</td><td  >4.45mV</td><td  >6.58mV</td><td  >Pass</td></tr><tr><td  ><strong>20%</strong></td><td  >4.34mV</td><td  >4.6mV</td><td  >3.94mV</td><td  >7.29mV</td><td  >Pass</td></tr><tr><td  ><strong>30%</strong></td><td  >6.38mV</td><td  >5.27mV</td><td  >4.35mV</td><td  >7.75mV</td><td  >Pass</td></tr><tr><td  ><strong>40%</strong></td><td  >6.03mV</td><td  >6.19mV</td><td  >4.66mV</td><td  >8.51mV</td><td  >Pass</td></tr><tr><td  ><strong>50%</strong></td><td  >6.95mV</td><td  >7.98mV</td><td  >6.04mV</td><td  >10.6mV</td><td  >Pass</td></tr><tr><td  ><strong>60%</strong></td><td  >7.46mV</td><td  >8.54mV</td><td  >6.45mV</td><td  >10.25mV</td><td  >Pass</td></tr><tr><td  ><strong>70%</strong></td><td  >8.63mV</td><td  >8.8mV</td><td  >6.09mV</td><td  >13.56mV</td><td  >Pass</td></tr><tr><td  ><strong>80%</strong></td><td  >7.81mV</td><td  >8.74mV</td><td  >10.75mV</td><td  >13.72mV</td><td  >Pass</td></tr><tr><td  ><strong>90%</strong></td><td  >9.66mV</td><td  >9.82mV</td><td  >12.18mV</td><td  >12.54mV</td><td  >Pass</td></tr><tr><td  ><strong>100%</strong></td><td  >12.05mV</td><td  >12.41mV</td><td  >14.69mV</td><td  >14.12mV</td><td  >Pass</td></tr><tr><td  ><strong>110%</strong></td><td  >12.98mV</td><td  >15.51mV</td><td  >15.86mV</td><td  >14.75mV</td><td  >Pass</td></tr><tr><td  ><strong>CL1</strong></td><td  >11.18mV</td><td  >7.56mV</td><td  >12.44mV</td><td  >7.42mV</td><td  >Pass</td></tr><tr><td  ><strong>CL2</strong></td><td  >6.39mV</td><td  >7.17mV</td><td  >4.69mV</td><td  >7.61mV</td><td  >Pass</td></tr><tr><td  ><strong>CL3</strong></td><td  >8.96mV</td><td  >5.4mV</td><td  >14.53mV</td><td  >7.77mV</td><td  >Pass</td></tr><tr><td  ><strong>CL4</strong></td><td  >11.51mV</td><td  >10.94mV</td><td  >9.33mV</td><td  >13.88mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ehfgGubj3sWEmvJLv87VmF.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8oRaWmN8nu7XMEY9K5rqpF.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TT59GpBxJ9xDZzW6MsjREG.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PgRrstLx8ErMYQ3RVnDoKG.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Ripple suppression is excellent, on all rails! </p><h2 id="ripple-at-full-load-5">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UDQFSCNuikzqVK3Uvk2dAN.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Nc8oEY4dDmrDfDErfwQPGN.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dvNqE9s9HBtQ6mWAWRTiNN.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JQTwp4dhPHYMPoQ3kMDxSN.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-5">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ruCLSCfFCDcAgVsmk4nvBS.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oBRcR5s8o64yp2cCmMkaJS.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iaBxifQuYXz3wdT8t26LNS.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jaiSJNv7aXp5P2gwiqsdRS.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-5">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/gERkfToKHv6YX4EkoBiFA4.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2ABvHeChMrLNakbfkoMtE4.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NghBD7DUgQbuFeN7rNVsK4.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PVfVBRKxmuuMQzCB36LFU4.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fVnkgc7uD3KQDcGV4rbZH8.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B8uryhvqucuRVxdmFBaMN8.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/45h3miC9RHoDEViqceMSS8.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FSNKAJbHVyN3ftKQwdWyW8.jpg" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-4">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones and/or speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1815px;"><p class="vanilla-image-block" style="padding-top:34.38%;"><img id="" name="EMI.jpg" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/3zakt8crxBB6aWpfj3Htxm.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1815" height="624" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/3zakt8crxBB6aWpfj3Htxm.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>One spur exceeds the limits with the average detector, but everything is fine with the peak detector. EMI emissions are kept bottom low in most frequencies. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-5">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 39 -39_Relative_Performance-small.png" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/Jzezcrm4Jqoa6SSupCeK8D.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Jzezcrm4Jqoa6SSupCeK8D.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>We have a new performance king in the 1000W Gold category! The Corsair RM1000x follows closely behind. </p><h2 id="noise-rating-5">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 41 -41_Average_Noise_Output-small.png" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/QmYA4CqumMBadoq5mLjvHF.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/QmYA4CqumMBadoq5mLjvHF.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Average noise output is low, under normal operating conditions. </p><h2 id="efficiency-rating-5">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 43 -43_Average_Efficiency-small.png" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/YxzrAdzSzUVpC3QamjqYDH.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/YxzrAdzSzUVpC3QamjqYDH.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>A small efficiency boost would be desirable here, since the G6&apos;s efficiency is actually below the G3 platform&apos;s levels. </p><h2 id="power-factor-rating-5">Power Factor Rating</h2><p>The following graphs show the PSU&apos;s average power factor reading throughout its operating range with an ambient temperature close to 30 degrees Celsius and 115V/230V voltage input.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qD4RssT2JizYCzAMRMfjLM.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oVcCEtWJXg7pAEjogjFTQM.png" alt="EVGA 1000 G6" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PF readings are low, especially with 230V input. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>The SuperNOVA 1000 G6 is an impressive unit by EVGA, which doesn&apos;t just take the Seasonic Focus platform and rebadge it, but actually makes some noticeable upgrades to improve performance and bring it up to today&apos;s standards. The newly released Corsair RM1000x is a tough opponent, but the 1000 G6 manages to take a slight lead in overall performance while keeping average noise output about one decibel lower. When it comes to efficiency, the G6 unit performs very well at light loads, but the average efficiency doesn&apos;t reach the levels of the previous G3 platform, which Super Flower provided. Another important region where the G6 model cannot take the lead from the competition is transient response. Not that it doesn&apos;t have a satisfactory transient response, but the competition performs better in this regard. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="EVGA 1000 G6" src="https://cdn.mos.cms.futurecdn.net/ymzGEqbCGzBPm5y6wsg2wa.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ymzGEqbCGzBPm5y6wsg2wa.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>It is nice to see EVGA back on track in the PSU market. After Super Flower and FSP, it&apos;s Seasonic&apos;s turn to provide a platform, and the result is very good. The SuperNOVA (what a name for a PSU!) 1000 G6 is among the best products money can buy in this market segment, and its main competitor is the <a href="https://www.tomshardware.com/reviews/corsair-rm1000x-2021-power-supply-review">Corsair RM1000x</a> which offers similar performance levels and has about the same average noise output, so it is up to you which one you prefer. A notable difference between these PSUs is that the G6 has two more PCIe connectors, while the Corsair unit is among the few that come with three EPS connectors. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Vendors Prep ATX12VO Motherboards Ahead of Intel 12th Gen Alder Lake Release  ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/news/vendors-prep-atx12vo-motherboards-ahead-of-intel-12th-gen-alder-lake-release</link>
                                                                            <description>
                            <![CDATA[ The ATX12VO power supply connector is slowly gaining adoption as Intel prepares to launch 12th Gen Alder Lake CPUs. ]]>
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                                                                        <pubDate>Fri, 21 May 2021 19:08:10 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 12:51:38 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                <author><![CDATA[ ashilov@gmail.com (Anton Shilov) ]]></author>                    <dc:creator><![CDATA[ Anton Shilov ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/uMZ5kNphxA2Ut6whdLaSQV.png ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Anton Shilov has been in the PC industry since 1990s playing games, building PCs, and writing stories about pretty much everything that relates to PCs, Macs, smartphones, tablets, and even fab equipment. Over his career, he has worked at a variety of high-ranking websites, including AnandTech, EE Times, TechRadar, X-bit labs, and now Tom&#039;s Hardware. When Anton is not reading or writing about something high-tech, he is probably watching a good movie, playing a video game, or spending time with his family.&lt;/p&gt; ]]></dc:description>
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                                <p>When Intel introduced its <a href="https://newsroom.intel.com/news/new-power-standard-desktops-sipping-energy-idling/#gs.1cnxb4">ATX12VO</a> (12 volts only) power connector specification last year, it only got support from a small number of motherboard and power supply manufacturers. A year later, the situation among motherboards is looking better. That&apos;s good news for Intel&apos;s upcoming <a href="https://www.tomshardware.com/news/intel-alder-lake-specifications-price-benchmarks-release-date">12th Gen Alder Lake </a>CPUs, which should arrive for desktop PCs by early 2022.</p><h2 id="state-of-the-atx12vo-union">State of the ATX12VO Union</h2><p>Intel formally introduced its ATX12VO spec on April 30, 2020. Meant to cut down on idle desktop power, the power connector was initially supported by ASRock with its Z490 Phantom Gaming 4SR motherboard and High Power with its HP1-P650GD-F12S power supply. While Intel also talked about  PSU support from Corsair, Channel Well and FSP, (which actually demonstrated an ATX12VO PSU at CES 2020), those power supplies never hit retail</p><p>This week, overclocker <a href="https://www.youtube.com/watch?v=IM485oY78DQ">Roman "der8auer" Hartung</a> asked several makers of the <a href="https://www.tomshardware.com/reviews/best-motherboards,3984.html">best motherboards </a>and <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best power supplies</a> about their plans to support ATX12VO this year. ASRock revealed that it&apos;s about to release its Z590 Pro 12VO motherboard. And as noted by German tech site <a href="https://www.hardwareluxx.de/index.php/news/hardware/mainboards/56208-netzteile-und-mainboards-atx12vo-koennte-2022-eine-groessere-rolle-spielen.html">HardwareLuxx</a> today, Asus already has a version of its Prime Z490-S with an ATX12VO connector. The enthusiast&apos;s video also pointed to Asus working on an ATX12VO motherboard. </p><p>Meanwhile, Gigabyte and MSI have not made any comments regarding their ATX12VO motherboard plans.  </p><p>Of course, Intel&apos;s partners are keen on staying mum on future plans regarding the unreleased Alder Lake platform. However, a rumor last week pointed to<a href="https://www.tomshardware.com/news/report-intel-pushing-atx12vo-power-connector-for-12th-gen-alder-lake-cpus"> Intel pushing motherboard makers to adopt ATX12VO</a> for the platform&apos;s upcoming LGA1700 motherboards. </p><p>On the PSU side of matters, Seasonic told der8auer that it has already developed its Focus GX650 that complies with Intel&apos;s ATX12VO requirements, and other models are awaiting Intel&apos;s certification. Corsair, which sometimes sells Seasonic-made power supplies, also indicated plans to release a Corsair-branded ATX12VO PSU. In the meantime, those who already have an ATX12VO motherboard and a standard PSU can use <a href="https://www.corsair.com/eu/en/Categories/Products/Accessories-%7C-Parts/PC-Components/Power-Supplies/ATX12VO-Adapter-Cable/p/CP-8920272">Corsair&apos;s ATX12VO</a> adapter cable.</p><h2 id="useful-tech-or-much-ado-about-nothing">Useful Tech or Much Ado About Nothing?</h2><p>The single-rail ATX12VO power delivery standard is appealing for a few reasons. First, the new ATX12VO connector is smaller, which is important for modern ultra-compact form-factor (UCFF) PCs. </p><p>Second, the most power-hungry components today only use 12V rails; whereas many of those that need 5V and 3.3V either have their own power circuitry (for example, <a href="https://www.tomshardware.com/reviews/glossary-m2-definition,5887.html">M.2 SSDs</a>) or can use DC-to-DC converters that are now sometimes located inside PSUs (but which could be re-located to the motherboard). That means transitioning to ATX12VO could simplify PSUs and potentially make them cheaper. </p><p>Next, conversion of 12V to 5V and 3.3V on motherboards is said to be more power-efficient, so ATX12VO is expected to reduce desktop PCs&apos; power consumption. </p><p>From an environmental point of view, every watt counts, so as various government regulations get stricter, it makes sense for pre-built PCs to identify paths to efficiency. Usage of 80Plus Titanium or 80Plus Platinum-badged PSUs is expensive, so ATX12VO seems like a potential way for OEMs to reduce power consumption of their low-end and midrange PCs.  </p><p>Yet, the industry is not eager to transit to ATX12VO. For one, moving DC-to-DC converters to the motherboard won&apos;t radically reduce power consumption of a PC. Unless someone runs millions of PCs, 4-5W savings aren&apos;t significant. </p><p>On top of that, adding converters to motherboards increases their overall footprint and bill-of-materials (BOM) cost. </p><p>Further complicating things, 3.3V and 5V rails are used by all controllers, all SATA storage devices, all add-in-cards, (including graphics cards, audio cards, RAID controllers and Thunderbolt adapters) and the vast majority of USB devices. </p><p><br></p><p>So far, Intel&apos;s ATX12VO has not gained much traction on the DIY market, largely because it does not bring any significant benefits. With some motherboard vendors sharing plans to increase ATX12VO adoption, this could change, but only time will tell how enthusiastic <a href="https://www.tomshardware.com/reviews/how-to-build-a-pc,5867.html">PC builders </a>will be about ATX12VO. </p><p>With OEMs, the situation may be different, as many systems have to comply with new environmental regulations. But it remains to be seen which route PC makers will choose. </p><p>We&apos;ll have to keep our eyes on this space to see if ATX12VO takes off or falls flat like DTX motherboards. </p><iframe src="https://content.jwplatform.com/players/4Z0km6XF.html" id="4Z0km6XF" title="Buy the Right Motherboard" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe>
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                                                            <title><![CDATA[ AMD Radeon RX 6800 XT Roundup: ASRock, Asus, and Sapphire Reviewed ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/news/amd-radeon-rx-6800-xt-roundup-review</link>
                                                                            <description>
                            <![CDATA[ We've rounded up multiple Radeon RX 6800 XT cards to see how the various models stack up. Higher factory overclocks, liquid cooling hybrids, massive coolers, and increased pricing are the general trend while GPUs continue to be in short supply. ]]>
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                                                                        <pubDate>Tue, 19 Jan 2021 21:39:59 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 09:53:35 +0000</updated>
                                                                                                                                            <category><![CDATA[GPUs]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Jarred Walton ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/8uFgSGcCzKdFTTQdqonCPi.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Jarred&#039;s love of computers dates back to the dark ages, when his dad brought home a DOS 2.3 PC and he left his C-64 behind. He eventually built his first custom PC in 1990 with a 286 12MHz, only to discover it was already woefully outdated when Wing Commander released a few months later. He holds a BS in Computer Science from Brigham Young University and has been working as a tech journalist since 2004, writing for AnandTech, Maximum PC, and PC Gamer. From the first S3 Virge &#039;3D decelerators&#039; to today&#039;s GPUs, Jarred keeps up with all the latest graphics trends and is the one to ask about game performance.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[AMD Radeon RX 6800 XT Roundup]]></media:description>                                                            <media:text><![CDATA[AMD Radeon RX 6800 XT Roundup]]></media:text>
                                <media:title type="plain"><![CDATA[AMD Radeon RX 6800 XT Roundup]]></media:title>
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                                <p>AMD launched the <a href="https://www.tomshardware.com/news/the-amd-radeon-rx-6800-xt-and-rx-6800-review"><u>Radeon RX 6800 XT and RX 6800</u></a> on November 23, 2020. The first of the new RDNA2 architecture graphics cards had plenty to offer, ranking near the top of our <a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><u>GPU benchmarks</u></a> hierarchy and earning a place on our list of the <a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><u>best graphics cards</u></a>. AMD does particularly well with games that <em>don&apos;t</em> support ray tracing. In such cases, there are quite a few games where the 6800 XT leads the (theoretically) more expensive RTX 3080, though enabling ray tracing or DLSS quickly turns the tables. The biggest problem, as we&apos;ve seen with all of the recent GPU launches, is actually finding one in stock. Now we&apos;re looking at three third-party custom cards, from ASRock, Asus, and Sapphire, to see what they bring to the table.</p><p>The core features and RDNA2 architecture are all unchanged, so the main differences between the cards will be in clock speeds, cooler designs, and aesthetics. There are also a few third-party add-ons, in the way of software, that might sway your purchasing decision. But let&apos;s be real: Finding any of these cards in stock can be an exercise in futility, and with the recent <a href="https://www.tomshardware.com/news/gpu-shortages-worsen-cryptocurrency-coin-miners-ethereum"><u>surge in cryptocurrency mining</u></a>, it could be months before supply is anywhere close to matching demand. In other words, if you want an RX 6800 XT as soon as possible, the brand and model of card will be far less of a consideration than whatever you can actually lay your grubby little mitts on.</p><p>The good news is that performance across all of the tested RX 6800 XT cards is very close. At factory stock settings, the speediest of the cards we&apos;ve tested is only 2-3 percent faster than the reference RX 6800 XT. Between the three custom cards, the performance deltas are even smaller, to the point of being effectively non-existent. But that doesn&apos;t mean the cards are all equal, as the cooling designs and other elements come into play. Here&apos;s a quick overview of the specs before we get into the individual card analysis and benchmark results. </p><div ><table><caption>AMD Radeon RX 6800 XT Specifications</caption><thead><tr><th class="firstcol empty" ></th><th  >ASRock Taichi RX 6800 XT</th><th  >Asus ROG Strix LC RX 6800 XT</th><th  >Sapphire Nitro+ RX 6800 XT</th><th  >Reference RX 6800 XT</th></tr></thead><tbody><tr><td class="firstcol " >Architecture</td><td  >Navi 21</td><td  >Navi 21</td><td  >Navi 21</td><td  >Navi 21</td></tr><tr><td class="firstcol " >Process Technology</td><td  >TSMC N7</td><td  >TSMC N7</td><td  >TSMC N7</td><td  >TSMC N7</td></tr><tr><td class="firstcol " >Transistors (Billion)</td><td  >10.3</td><td  >10.3</td><td  >10.3</td><td  >10.3</td></tr><tr><td class="firstcol " >Die size (mm^2)</td><td  >251</td><td  >251</td><td  >251</td><td  >251</td></tr><tr><td class="firstcol " >SMs / CUs</td><td  >72</td><td  >72</td><td  >72</td><td  >72</td></tr><tr><td class="firstcol " >GPU Cores</td><td  >4608</td><td  >4608</td><td  >4608</td><td  >4608</td></tr><tr><td class="firstcol " >Ray Accelerators</td><td  >72</td><td  >72</td><td  >72</td><td  >72</td></tr><tr><td class="firstcol " >Boost Clock (MHz)</td><td  >2360</td><td  >2360</td><td  >2360</td><td  >2250</td></tr><tr><td class="firstcol " >VRAM Speed (Gbps)</td><td  >16</td><td  >16</td><td  >16</td><td  >16</td></tr><tr><td class="firstcol " >VRAM (GB)</td><td  >16</td><td  >16</td><td  >16</td><td  >16</td></tr><tr><td class="firstcol " >VRAM Bus Width</td><td  >256</td><td  >256</td><td  >256</td><td  >256</td></tr><tr><td class="firstcol " >ROPs</td><td  >128</td><td  >128</td><td  >128</td><td  >128</td></tr><tr><td class="firstcol " >TMUs</td><td  >288</td><td  >288</td><td  >288</td><td  >288</td></tr><tr><td class="firstcol " >TFLOPS FP32 (Boost)</td><td  >21.7</td><td  >21.7</td><td  >21.7</td><td  >20.7</td></tr><tr><td class="firstcol " >Bandwidth (GBps)</td><td  >512</td><td  >512</td><td  >512</td><td  >512</td></tr><tr><td class="firstcol " >TDP (watts)</td><td  >350?</td><td  >350?</td><td  >350</td><td  >300</td></tr><tr><td class="firstcol " >Pricing</td><td  >$829 </td><td  >$899 ($1,080)</td><td  >$769 ($999)</td><td  >$649 </td></tr></tbody></table></div><p>Let&apos;s first address the elephant in the room: The pricing is either fantasy land or, in the case of actual &apos;street&apos; pricing, egregious. Theoretically, the Sapphire Nitro+ initially launched at $769, but of course, it was sold out — just like every other GPU. Newegg currently lists it at $999, and it’s still out of stock. The Asus Strix LC is a similar story, with a launch price of $899 but a current Asus store price of $1,080, and it&apos;s also sold out. ASRock gave a launch price of $829, but retail prices are much higher than that, and naturally, the reference AMD RX 6800 XT can&apos;t be had for anything close to $649.</p><p>Beyond price, the only difference in specs is the TDP. Sapphire lists 350W, while Asus and ASRock don&apos;t give any value. We put in 350W with a question mark based on our testing. All three AIB cards have the same 2360 MHz Boost Clock, which they can exceed in some cases. That&apos;s where the cooling solutions come into play.</p><p>That&apos;s it for the introduction. Let&apos;s get to the individual cards, and we&apos;ll dig into the finer points of each one, including any extra features that can help it stand out. We&apos;re going to dispense with actual scores on these cards, mostly because they all feel like ghost launches. Yes, they technically went on sale, but both pricing and availability are so limited that we don&apos;t know where they&apos;ll really land. They&apos;re all more or less equal, depending on your wants and needs.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>Desktop GPU Performance Hierarchy Table</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><div  class="fancy-box"><div class="fancy_box-title">ASRock Taichi RX 6800 XT</div><div class="fancy_box_body"><p class="fancy-box__body-text"><strong>Pros</strong></p><p class="fancy-box__body-text">+ Large and powerful cooler</p><p class="fancy-box__body-text">+ Plenty of RGB bling</p><p class="fancy-box__body-text">+ Quiet</p><p class="fancy-box__body-text"><strong>Cons</strong></p><p class="fancy-box__body-text"> - Large and heavy</p><p class="fancy-box__body-text">- Requires a spacious case</p><p class="fancy-box__body-text">- Only one RGB fan?</p><p class="fancy-box__body-text">- Old style fans</p></div></div><p>ASRock&apos;s Taichi brand is generally used for the company’s top-of-the-line products, and the RX 6800 XT Taichi is no exception. It&apos;s big and bold, with one of the largest coolers we&apos;ve seen on a third party card, plus a copious amount of bling. Meanwhile, performance is as you&apos;d expect: right in line with the other top-tier solutions from competing cards.</p><p>The 6800 XT Taichi is a massive card, dwarfing the reference model 6800 XT and tipping the scales at 1.75kg (3.85 pounds). ASRock actually lists the weight at 1815g, but my scale disagreed by about 65g. The dimensions are 330x140x56mm, and the cooler occupies 2.8-slots, which in today&apos;s single GPU market isn&apos;t much of a problem. The Taichi is also one of the longest cards we&apos;ve seen — 13 inches long — so you&apos;ll definitely need a spacious case if you want this card to fit.</p><p>For a while, most high-end GPUs tried to stay close to a 2-slot thickness so that you could add a second (or even third) card for CrossFire or SLI, but multi-GPU support in games has seriously declined in recent years, so it&apos;s now less of a consideration. The most common use case for multi-GPU these days is cryptocurrency mining, but since coin miners just build custom mining chassis with PCIe extension cables, size isn&apos;t much of a factor there either. That means manufacturers are more willing to create cards that effectively block off the two expansion slots adjacent to the GPU.</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2560px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="ASRock-Taichi-RX-6800-XT-(7).jpg" alt="AMD Radeon RX 6800 XT Roundup" src="https://cdn.mos.cms.futurecdn.net/Ja5JLbgs9EmjH7C7EDjfWj.jpg" mos="" align="middle" fullscreen="1" width="2560" height="1440" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/Ja5JLbgs9EmjH7C7EDjfWj.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>ASRock&apos;s Taichi brand is generally used for the top-of-the-line products from the company, and the RX 6800 XT Taichi is no exception. It&apos;s big and bold, with one of the largest coolers we&apos;ve seen on a third party card, plus a copious amount of bling. Performance meanwhile is as you&apos;d expect: right in line with the other top-tier solutions from competing cards.</p><p>The 6800 XT Taichi is a massive card, dwarfing the reference model 6800 XT and tipping the scales at 1.75kg (3.85 pounds). ASRock actually lists the weight at 1815g, but my scale disagreed by about 65g. The dimensions are 330x140x56mm and the cooler occupies 2.8-slots, which in today&apos;s single GPU market isn&apos;t much of a problem. The Taichi is also one of the longest cards we&apos;ve seen — 13 inches long — so you&apos;ll definitely need a spacious case if you want this card to fit.</p><p>For a while, most high-end GPUs tried to stay close to a 2-slot thickness so that you could add a second (or even third) card for CrossFire or SLI, but multi-GPU support in games has seriously declined in recent years and so it&apos;s now less of a consideration. The most common use case for multi-GPU these days is cryptocurrency mining, but sice coin miners just build custom mining chassis with PCIe extension cables, size isn&apos;t much of a factor there either. That means manufacturers are more willing to create cards that effectively block off the two expansion slots adjacent to the GPU.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Zzy8teUgSv6uUbq3gyHgBh.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zZceYBBLwCeGNqYdm53PVh.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zxptf8geV4jFCL6mbrVioh.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UjnLPTMbHqN2ENqBGQ3LFi.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TYybWhso8CDscmU9BzqBqi.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kWhJcLUspURuhfdiCenBBj.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ja5JLbgs9EmjH7C7EDjfWj.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JwQcoLtqMkGfz6ATsMEGrj.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UUdubTYQbCUyRhVkpwpEEk.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UG56WNoPo9L2mfbCSujhdk.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JkGu9apcVwdNjQug5Y4Z6m.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/S74BoRPydT5ecssScs2Hgm.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QBdkVALYbTDgRefjywusCn.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yEm7AntCiSwRgV6QLPVrjn.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>ASRock provides plenty of RGB lighting, with the center fan lighting up along with the top Taichi logo and the surrounding light strip, and there&apos;s another Taichi icon on the back of the card as a final RGB option. I sort of wish the company had gone whole hog and used RGB on the other two fans, but that would make for a very bright card. Also of note is that in a traditional PC case, the &apos;front&apos; fans on the graphics card will often end up facing the bottom of the case. That means you won&apos;t even see the fans unless you use a case that supports a vertically mounted GPU (which would <em>also</em> need to be able to handle a triple slot thickness, or you&apos;d obstruct the fan intakes).</p><p>There are some Taichi elements that haven&apos;t been updated to match the competitive landscape, and here I&apos;m looking specifically at the fans. Most of the latest generation RTX 30-series and RX 6000-series GPUs now have fans with an integrated &apos;barrier rim&apos; around the outside of the fan blades. This ring helps improve static pressure and airflow, improving cooling capabilities while potentially reducing fan noise. Meanwhile, ASRock has traditional fan blades like what we&apos;ve seen for many years. It&apos;s a small thing, but we&apos;d like to see the latest technology utilized on a premium card.</p><p>ASRock doesn&apos;t specify a TDP for the Taichi, though it does recommend a PSU wattage of 800W or more. The card also requires three 8-pin PEG power connectors, which in theory can deliver 450W of power, giving the card a peak power delivery of 525W when combined with the 75W of the x16 PCIe slot. (It didn&apos;t come close to hitting that mark, though maybe an adventurous overclocker with LN2 could do so.) In our testing, the Taichi used a bit less power than the other custom cards. It averaged 332W in Metro Exodus (still 10 percent more than the reference 6800 XT) and 352W in FurMark. Overclocking pushed power use up to 344W in <em>Metro</em> and 400W in FurMark. That means there&apos;s still potential for higher overclocks, but we generally seem to hit a similar limit with all of the 6800 XT cards of around 2.5GHz.</p><p>Digging into the overclocking specifics, for now, we&apos;re still somewhat restricted in what utilities we can use on RX 6000 cards, as MSI Afterburner doesn&apos;t fully support the new GPUs yet. AMD&apos;s own Radeon Software seems the best option, and we used it to increase the power limit by 15 percent, set the GPU to a maximum clock of 2580 MHz, and bumped the GDDR6 speed up by 150 MHz (to 17.2 Gbps). Combined with a more aggressive fan curve, we reached a stable OC where clocks in <em>Metro Exodus</em> averaged 2529 MHz, compared to 2391 MHz at factory stock settings. That&apos;s a 6 percent increase in GPU clocks and 7.5 percent on VRAM clocks, which improved performance in our test suite by 4-5 percent overall. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rSzDRpFXEBaq3opjCJUPSo.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rpbUPDpSnF6kmcXaviHkX.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oDPS8jGcETyGxQo6sPkg93.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>ASRock offers its Tweak software for tuning, which is sufficient for modest overclocking but doesn&apos;t really do much more than AMD&apos;s own Radeon Settings. You can see the default power limits (289W, or 317W in OC mode), but that&apos;s just for the GPU power — the VRAM, VRMs, and other components will also use power. Ultimately, we didn&apos;t see much reason to install the custom ASRock Tweak software, since the core functionality is already present with AMD&apos;s drivers.</p><p>Technically, the ASRock Taichi ended up as the slowest of the three custom cards, but that&apos;s very much splitting hairs. It’s within 0.5 percent of the other two cards at stock, and it&apos;s within 1.5 percent of the faster Asus card when overclocked. Performance when overclocked is also basically tied with the stock RX 6900 XT. It&apos;s also up to 2 percent faster than the reference 6800 XT.</p><p>Frankly, performance and even pricing are sort of a non-issue for now, as none of the cards are readily available for purchase. If you want a 6800 XT and can find the Taichi in stock somewhere, and you&apos;re willing to pay $900 or more for it, be our guest. Our general advice is to wait for supply to improve and hopefully for prices to end up closer to MSRP. With the recent <a href="https://www.tomshardware.com/news/gpu-tariff-asus-priceincrease"><u>tariffs on graphics cards further impacting pricing</u></a>, however, it could be a long and painful wait.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>Desktop GPU Performance Hierarchy Table</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><div  class="fancy-box"><div class="fancy_box-title">Asus ROG Strix LC RX 6800 XT</div><div class="fancy_box_body"><p class="fancy-box__body-text"><strong> Pros:</strong></p><p class="fancy-box__body-text">+ Excellent thermals</p><p class="fancy-box__body-text">+ Lots of RGB</p><p class="fancy-box__body-text">+ Great if you want an AIO</p><p class="fancy-box__body-text"><strong>Cons:</strong></p><p class="fancy-box__body-text">- Higher price thanks to the AIO</p><p class="fancy-box__body-text">- Requires 240mm radiator mount</p><p class="fancy-box__body-text">- Negligible performance increase</p></div></div><p>Asus has traditionally stayed away from the AIO graphics card market, but that changes with the ROG Strix LC. Not only does it come with an AIO (all-in-one) liquid cooler, but it includes a relatively large 240mm radiator. Some people will love that option, but it comes at a higher price and can be cumbersome to install — for someone like me that swaps GPUs regularly, AIO cards are more trouble than they&apos;re worth.</p><p>The external radiator adds a lot of bulk to the package, with the card plus radiator weighing in at 2166g. That&apos;s about as much as the RTX 3090 Founders Edition, but the good news is the x16 motherboard slot only has to deal with a 1340g card, with the rest of the bulk secured to the PC chassis. Thanks to the large radiator, the Strix LC can also get by with a traditional 2-slot thickness and a single blower fan on the main card, and the blower doesn&apos;t really have to work that hard.</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2560px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="Asus-ROG-Strix-LC-RX-6800-XT-(4).jpg" alt="AMD Radeon RX 6800 XT Roundup" src="https://cdn.mos.cms.futurecdn.net/CDqDgWZAXeqQwTfQvaxFS5.jpg" mos="" align="middle" fullscreen="" width="2560" height="1440" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The main graphics card measures 277x131x43.6mm, but the radiator is an additional 276x120x51.7mm. Make sure your case has a good mounting location before taking the plunge. If you&apos;re also using a 240mm or larger AIO for CPU cooling, speaking from experience, you&apos;ll definitely want to verify both coolers will fit properly before buying.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RFm7CuCg5B5upxSkXUmje3.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YrRuNZsrV5gE6KJqv9VRD4.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3XLVyMWehdsLXNFMFiqYu4.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CDqDgWZAXeqQwTfQvaxFS5.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eQGjCwdpTob9pfnPkHNg26.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NCibijJB75T8L546fZAcX6.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PdRnDk3u9w3BUue3dCDZB7.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TvpJa2YR9yvQZz7ZUANxo7.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CoDdiTqgL4gCduxXwQ4uM8.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xH5N3heYMfmaqAXoEGeny8.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gwGSSjhmbxJnHeFUr5kxY9.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jFNjRDLNFkNS59j2UEGD4A.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ROG Strix line is known for being Asus&apos;s top offering, and the Strix LC takes that one step further. Besides the RGB lighting on the graphics card, the two radiator fans also have RGB lighting. The above photos don&apos;t really show the RGB properly, but if you have a reasonably dark room and the radiator mounted in a case, there&apos;s plenty of RGB to go around. As with many other graphics cards, however, the RGB on the front of the card will end up facing the bottom of your PC in most builds, which sort of defeats the purpose.</p><p>Asus lists a relatively tame PSU requirement of 750W, which is technically sufficient based on our testing, but we recommend at least 850W. Actually, with most of the high-end graphics cards, you can make a legitimate argument for 1000W power supplies. PSUs often hit peak efficiency with a load of around 50 percent, and in a high-end PC build, that means the entire PC will consume close to 500W (depending on CPU and other factors) while gaming. If you do plan on using a lower wattage PSU, make sure it&apos;s a high-quality offering because the Asus card can hit power draws of over 400W when overclocked.</p><p>The big selling point with the Strix LC is, of course, the liquid cooling, and what that does for thermals. Despite having a similar power use and clock speed relative to the other two cards, thermals are far lower even with a modest fan speed. At stock, the Asus card has an excellent temperature of just 53C in FurMark, and that didn&apos;t change with our overclocked settings (though fan speeds did have to go up). Temps and fan speeds are even better when playing games, which are generally not as demanding as FurMark when it comes to power. Overall, the Asus card runs 15-20C cooler than the other two custom cards, with the same level of performance, and it delivers a bit more headroom for overclocking.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RKWnNuvnfgWBtY4gEL4PQA.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CiggnwJ4GcBQWNgXcbRMjA.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NUzQpjjTMxuAye5oTY8D6B.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Speaking of overclocking, you can use Asus&apos;s GPU Tweak II (and <a href="https://www.tomshardware.com/news/asus-gpu-tweak-3-open-beta"><u>GPU Tweak III</u></a>) software suite in addition to the built-in Radeon Software options. By default, like many of Asus&apos;s graphics cards, the 6800 XT ROG Strix LC will run at &apos;gaming&apos; clocks, and you need to install GPU Tweak II and select the OC profile to unlock the full potential. We did this for our testing, though the difference between &apos;gaming&apos; and &apos;OC&apos; modes is pretty minimal.</p><p>Is the Strix LC worth the price, though? Originally released with a $900 MSRP, Asus is one of several companies that has <a href="https://www.tomshardware.com/news/gpu-tariff-asus-priceincrease"><u>recently increased prices</u></a> due to US tariffs and other factors. The Strix LC 6800 XT now shows a price of $1,080 at the Asus store, and it&apos;s still out of stock. It&apos;s hard to recommend spending that much money on a GPU that has a nominal price of $650, but then again, that nominal price is nowhere to be found. Maybe we&apos;ll eventually see RX 6800 XT cards selling at $700 or less, but for now, they&apos;re more commonly in the $1,000+ range. By the time supply improves, we might have other GPUs that represent a better overall value. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>Desktop GPU Performance Hierarchy Table</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><div  class="fancy-box"><div class="fancy_box-title">Sapphire Nitro+ RX 6800 XT </div><div class="fancy_box_body"><p class="fancy-box__body-text"><strong>Pros:</strong></p><p class="fancy-box__body-text">+ Relatively lightweight with good cooling</p><p class="fancy-box__body-text">+ Smarter RGB location</p><p class="fancy-box__body-text">+ TriXX Boost</p><p class="fancy-box__body-text">+ Theoretically less expensive</p><p class="fancy-box__body-text"><strong>Cons:</strong></p><p class="fancy-box__body-text">- Finding one for sale</p><p class="fancy-box__body-text">- Requires a large case</p></div></div><p>The Sapphire RX 6800 XT Nitro+ is perhaps the most traditional of the three custom cards we&apos;re looking at today. It&apos;s not quite as large and certainly not as heavy as the ASRock card, but the cooling still gets the job done and the card runs cool and quiet. It&apos;s actually lighter than AMD&apos;s reference card, despite being slightly larger physically. The Nitro+ measures 310x134x55.3mm, so it&apos;s a bit shorter than the ASRock card but still occupies 2.7 slots. However, it only weighs 1232g, over 500g less than the ASRock, and 350g less than the AMD reference design. (AMD&apos;s card measures 267x120x49mm and weighs 1500g, if you&apos;re wondering.)</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2560px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="Sapphire Radeon RX 6800 XT Nitro+ (5).jpg" alt="Sapphire Radeon RX 6800 XT Nitro+ photos" src="https://cdn.mos.cms.futurecdn.net/cXqqiDX8PKj7Tn5Dhe4kC8.jpg" mos="" align="middle" fullscreen="1" width="2560" height="1440" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/cXqqiDX8PKj7Tn5Dhe4kC8.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Sapphire often has three different models of each GPU. The base model is the Pulse, the Nitro+ is a step up and offers a higher factory overclock and more RGB lighting, and sometimes a Nitro+ SE kicks things up another notch. The top GPUs may also get a Toxic variant, which boasts the highest overclocks and pulls out all the stops, often with extreme pricing. Due to the limited quantity of Navi 21 GPUs currently available, Sapphire doesn&apos;t have a Pulse 6800 XT right now, or a Toxic. Maybe those will come in the future, but currently all of Sapphire&apos;s 6800 XT cards are from the Nitro+ line.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/oR8adkFmMh3tUxr357KcrB.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FxxLPnXNNcrfW2MYjDPTjC.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bXoGVeYBLuDNfZahNCR6JD.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jpFACfkvSdHAMWk8W3wPpD.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/S9juRFZCp6fzoescxyGRJE.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ehwBxiriou6P7yTyjW4wpE.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oPdwezTGG4cqS5KusBFNPF.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GHYxJAcximjFm9BgHuXR5G.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JFppMs5Wx43WRo8MtoEuiG.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LiaGXzrD9zMZjLPzF6DgAH.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EBzF85NbHftZ2n6WAqwZgH.jpg" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main difference between the Nitro+ we&apos;re looking at and the Nitro+ SE is that the SE has RGB fans. If you want extra bling, the SE might be what you&apos;re after. Our take is that Sapphire actually has a smarter RGB setup than many other GPUs, as the fans typically face the bottom of the PC case and aren&apos;t even visible. The Nitro+ has all of its lighting on the &apos;top&apos; of the card (which would face the side of your PC case, right where the window would be) and also puts an RGB icon on the back of the card (which would face upward in your typical case). There&apos;s a light strip on the top along with the Sapphire logo, and while it&apos;s not quite as in-your-face as other cards, it gets the job done.</p><p>Sapphire is also the only company to specify a higher 350W TDP on its Nitro+, though all three custom cards use similar amounts of power in practice. No surprise there, since they&apos;re all rated at 2360 MHz boost clocks (and can often exceed that speed in games). Sapphire also recommends an 850W power supply. With a pair of 8-pin power connectors, plus the PCIe slot, the Nitro+ has access to 375W of power and uses nearly all of it. Overclocking does push the card beyond 375W, but the extra power comes from the 8-pin PEG rather than the x16 slot, which is good. Even overclocked, the highest PCIe slot power we measured for the Nitro+ was only 45W. Sapphire also has new fans with an integrated rim to improve static pressure, and the thermals and noise levels are very good.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ei54yMYDxdwzcXswbNJpzJ.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dxLPcdY8QSXqXf3EivXfJK.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/c4nHtH6va55zCjduZLwiDL.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/W6FJNbmHEkJ6nL6PDGMQbK.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YFhCMW9Mn4xiUegxAmmQtK.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>One extra that Sapphire offers is its TriXX software suite, which now has a new trick that&apos;s perhaps work checking out. TriXX Boost leverages AMD&apos;s own RIS (Radeon Image Sharpening) and supports upscaling of content. In most games (specifically, games that don&apos;t detect your monitor&apos;s native resolution and then internally scale from that), TriXX Boost lets you create a custom resolution that will then get scaled to the normal native resolution, and the sharpening helps to avoid the normal blurriness.</p><p>How does it perform? At 4K, upscaling from 85 percent resolution (3264x1836) to 4K, we measured performance that was anywhere from 20 to 30 percent higher than native. Did it look worse? Using screenshots and comparing, sure, there was a slight loss in fidelity, but it’s not something you&apos;d really notice in motion. 20-30 percent higher fps, though? Yeah, that was very noticeable. It&apos;s perhaps not as sophisticated as Nvidia&apos;s DLSS technology, but it&apos;s worth considering for relatively minor upscaling of around 10-15 percent.</p><p>Interestingly, because of TriXX Boost, Sapphire specifically discourages end-user overclocking and doesn&apos;t support it via TriXX. You can check the fans and tweak the lighting, but overclocking requires some other utility. Considering overclocking can void your warranty and cause instability in pursuit of usually 5 percent more performance, toying with resolution scaling generally delivers far more noticeable performance improvements.</p><p>Thanks to the traditional design, Sapphire officially has the lowest price of the custom cards we&apos;ve looked at so far. Whether it will remain at $770, or jump to a higher price segment (we&apos;re seeing a &apos;suggested&apos; price of $1000 at Newegg right now), however, isn&apos;t clear. Is the Sapphire Nitro+ 6800 XT a good value? That depends on actual prices. For now, good luck finding one in stock. In fact, supply of AMD&apos;s Big Navi chips appears to be even <em>worse</em> than Nvidia&apos;s Ampere GPUs, which is why the retailers are charging extra. If you can find the Sapphire Nitro+ at a more reasonable price, we have no qualms recommending it. At $1,000 or more, though, we&apos;d suggest biding your time. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>Desktop GPU Performance Hierarchy Table</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><div  class="fancy-box"><div class="fancy_box-title">TOM'S HARDWARE GPU TEST PC</div><div class="fancy_box_body"><p class="fancy-box__body-text"><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FIntel-i9-9900K-Desktop-Processor-Unlocked%2Fdp%2FB005404P9I%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-1285452095797064700-20">Intel Core i9-9900K</a><br><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FMSI-MEG-Z390-ACE-Motherboard%2Fdp%2FB07HM3M86B%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-6204470748793337000-20">MSI MEG Z390 Ace</a><br><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FCorsair-CMW32GX4M2C3200C16-Vengeance-PC4-25600-Desktop%2Fdp%2FB07GTG2T7L%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-1599643987671936800-20">Corsair 2x16GB DDR4-3200 CL16</a><br><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FXPG-SX8200-Gen3x4-3000MB-ASX8200PNP-2TT-C%2Fdp%2FB07TY2TN64%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-6527991277881132000-20">XPG SX8200 Pro 2TB</a><br><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FSeasonic-Platinum-SSR-850PX-Modular-Warranty%2Fdp%2FB074N9FNV2%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-1115041702769817000-20">Seasonic Focus 850 Platinum</a><br><a data-analytics-id="inline-link" href="https://target.georiot.com/Proxy.ashx?tsid=45723&GR_URL=https%3A%2F%2Famazon.com%2FRadiator-Advanced-Lighting-Software-compatible%2Fdp%2FB077FZPCRH%2F%3Ftag%3Dhawk-future-20%26ascsubtag%3Dtomshardware-us-6794378458651171000-20">Corsair Hydro H150i Pro RGB</a><br><a data-analytics-id="inline-link" href="https://streacom.com/products/bc1-open-benchtable/">OpenBenchTable</a><br><a data-analytics-id="inline-link" href="https://www.tomshardware.com/news/phanteks-enthoo-luxe-pro-m-tempered-glass,32888.html">Phanteks Enthoo Pro M</a> </p></div></div><p>We’ll shift away from the specific cards for the next several pages and look at gaming performance and other test results. We&apos;ve tested all of the RX 6800 XT GPUs using AMD&apos;s most recent 20.12.1 drivers, and we&apos;ll include a few other GPUs as reference points in the charts. Our standard test bed hardware is listed to the right, and it includes a stock clocked (4.7 GHz all-core) Core i9-9900K processor with overclocked DDR4-3600 CL16 memory.</p><p>While our CPU reviews focus on performance with the CPUs at full stock, meaning DDR4-2666 memory on the 9900K, my take is that enthusiasts will at least enable the memory XMP profile, and DDR4-3600 kits are readily available. We looked at performance scaling with similar memory kits (all running at DDR4-3600) with Core i9-10900K and Ryzen 9 5900X, and while there are instances where the newer CPUs do better — particularly at 1080p — in general the top three current CPUs are all within spitting distance of each other.</p><p>Our testing for the RX 6800 XT cards will use our expanded test suite from recent reviews, which includes the same nine games that we&apos;ve used for the past year, plus four newer releases. We&apos;ve tested all of the games at &apos;ultra&apos; settings (or whatever the highest preset is called — or in the case of <em>Red Dead Redemption 2</em>, we set all of the advanced settings to the minimum option and then set the basic settings to maximum).</p><p>Only two of the games we&apos;ve tested have ray tracing enabled, and one of those (<em>Dirt 5</em>) is an AMD-promoted game using a still-in-beta DXR patch. We didn’t enable DLSS on any of the games, though it can boost performance quite a bit, especially at 4K. We also want to note that our testing suite is decidedly slanted toward AMD right now, with half of the games as AMD-promoted titles, and two of the newer additions (<em>Assassin&apos;s Creed Valhalla</em> and <em>Dirt 5</em>) relatively strongly favoring AMD. If you want to view the larger picture of how the various GPUs stack up, we recommend looking at the full set of results, including DXR testing that we&apos;ve done in other articles, including the RX 6800 XT and 6800 launch review. Since we&apos;re mostly focused on the custom 6800 XT cards here, any inherent bias in our game selection is less of a factor.</p><p>We&apos;ll start with 1080p results and then move up to 1440p and 4K on the following pages, and wrap up with power and thermal testing. We have both stock and overclocked results for the four RX 6800 XT cards in the charts as well, which generally clump together. We&apos;ll focus our commentary on the main results, with the individual gaming charts as background detail.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ojNcdsHPQFu433rB2JKPNS.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9zBKdoLFJ2GU5YBjNHbfbX.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Given the mix of games and APIs used, it&apos;s not too surprising that the top four GPUs (RTX 3090, RX 6900 XT, RX 6800 XT, and RX 3080) end up relatively close in performance. The overclocked 6800 XT cards end up tying the 3090 and 6900 XT, but we&apos;re also hitting CPU bottlenecks in many of the games. While you can make the argument that 1080p is still the most popular resolution, and it&apos;s also the only place where you can get 240 Hz and 360 Hz displays right now, the latter is really only beneficial for a few select esports games. Out of the 13 games we tested, only <em>Strange Brigade</em> (which isn&apos;t exactly a popular game) breaks 240 fps at 1080p, and five of the games don&apos;t even get above 144 fps at the settings we&apos;ve used.</p><p>As far as the four 6800 XT cards go, the results are pretty close to margin of error differences. The Asus Strix LC does take first place at both stock and overclocked settings, and the AMD reference card does take fourth place, but in general, you wouldn&apos;t be able to tell the cards apart when actually playing games.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7DEfmnZ3CHqWCKrnMj4tgS.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LPh7BZ9ShRSw7Az2GF9Q4Y.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/geoKjcqzUhCQUrM26B44zS.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rMFnvS4rzWgD9hGAySZ9VY.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6vSdLLy8TxzcLezCuDhSHT.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JfXnDCoavfbNkSBhuuCruY.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/E3WLVqsQynsuKcekaY3xaT.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TFh4L8J8HA6kj3nHMLmzNZ.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nyK5uhTHV3cexAgtVfyXvT.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hpDUPxCJKciazPaWruBppZ.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ji3bTk5mBq5PgDhRdGbnJU.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AnsJML3HQzHaPQ2So9CsJa.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/p4imm8XePgiPdc8qTqpqeU.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GrQTk4sHmZza5sxhCvzpja.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8S6kBTVUCDBFaYoF2cvezU.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JwjnZxjpU5gDqeBZY8ZUEb.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/umgCHacjAEYtQW9tA9JdPV.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sKbrKvJPsUgGkP9JsKMWgb.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/axgqmH74fkRVzHvw82QToV.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/43dYx9S8kWA9L6ba95qVBc.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BD9UghHcDinKWFePdgmiEW.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Sehg8zTh5N28wNHu9mESdc.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AEefPCn4q6HNoAPRhYZ5gW.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cp37WXsQxNF5YNzsAvS56d.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vjAz3neC3cJLDNteP6Sw7X.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PozN5VMUqEr58gimq47PXd.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Looking at the individual games, there&apos;s a bit of variability in some instances, like <em>The Division 2</em>, but nothing that gives us any real indication that any of the custom cards are clearly superior. Aesthetics, availability, features, and pricing are going to be much greater factors than pure performance. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>Desktop GPU Performance Hierarchy Table</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><p>We still feel like 1440p gaming is the sweet spot for most people. Reasonably high frame rates are possible on quite a few GPUs, high refresh rate displays with adaptive sync technology can be had for under $300, and even 144Hz IPS and VA panels are commonplace. In our 1080p testing, we noted that a lot of games couldn&apos;t break 144 fps even at the lower resolution, but G-Sync and FreeSync make that less of a concern. CPU bottlenecks also become less of a factor at the higher resolution. Which doesn&apos;t actually change the overall standings much. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pLdHkgmceKuNFV3jfh2Byb.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sFKwN2brbdszdb5hRRBvng.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>At stock settings, the three custom 6800 XT cards are within 0.2 fps of each other, emphasizing once again how little difference there is among cards with the same GPU. The reference card does fall a bit off the pace, largely because it&apos;s using less power we&apos;d wager, though even with our overclocked settings it can&apos;t quite close the gap. Interestingly, despite having three 8-pin PEG connectors and a large cooler, the ASRock card doesn&apos;t do any better than the Sapphire card — actually, it&apos;s a bit worse. It could be the luck of the draw, or just variance between benchmark runs, but our results consistently put the ASRock a bit below the other two AIB cards.</p><p>In the larger scheme of things, the overclocked 6800 XT cards continue to basically match the reference 6900 XT. The RTX 3090 starts to pull away from the other GPUs a bit, now that CPU bottlenecks are reduced, while the 6800 XT still leads the RTX 3080. It will be interesting to see what happens if Nvidia actually does release a 20GB 3080 (or 3080 Ti) card in the future, though the pricing on such a GPU would be higher than the current 3080. Well, theoretical 3080 prices, since most cards are selling for quite a bit more than MSRP and supplies are still very limited.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/nqaAPh8eU6nb6caS7jYTJc.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mJpydLeZKAAfCZPDtxbhDh.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zRmjRCeHrZe44ybJtKEkbc.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dNkse3TAHeTdgAGHTCvXfh.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fV4DkKgTSr4enVSsF3v7uc.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ehwwijaT32SF8ZkqCKAY7i.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YhsfCkUZErVnJr4XTSmFDd.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fAN6QcpQ3LyB6EMhgx2tXi.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vuiEZ8cTuQcnPRXstXBpXd.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3ueC4AVadea29PBULcpHvi.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rmzTbMDhUppWYjCYLPS6rd.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pQsfpEwwRkJDS2xTtF4tNj.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CEJ2vYigwV2QusHDH4eECe.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mvsaVR4pC9CBMq68D9c6qj.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3sNYxXdbDm38cMLgdchZXe.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hV6j8UmWrJFCuBNDtF8jKk.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bek3id4Yt2p3efxosrQQre.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bV7Vh4hz2fjhjP6KZEbXkk.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jKgeKfSEUS7giXuoGefJFf.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UFaQaSp9iYGkqCbphCG8Cm.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/puqfpcfgscZUiedGXj4ubf.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/auucwWsxxV3UFaMEfeRDdm.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Lntm45Nf8zzRG4FXaN9Wxf.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zjpakEhBdatzQXNwWkSZ4n.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P9XzEV6eDaKHJiLpBLmSMg.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CWhSuLdD9kdvVke5ZzT9Un.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There&apos;s a bit more variation in performance this time, but nothing particularly noteworthy. The Sapphire Nitro+ takes the top spot in both stock and overclocked modes in several games, but most of the results are within 1-2 percent of each other at most (among the 6800 XT custom cards).</p><p>Looking at frame rates, even at stock clocks all of the games run at well over 60 fps, often into the 100+ fps range. Only a few break 144 fps, but again, that&apos;s why G-Sync and FreeSync are useful. There&apos;s one exception, naturally: <em>Watch Dogs Legion</em> with ray tracing enabled is a beast to run, as are most DXR games without DLSS. The 6800 XT can only manage high-30s performance, and it&apos;s worth mentioning that the DXR reflections on AMD and Nvidia <em>still</em> aren&apos;t the same. Check out the extra images in the gallery below to see what we&apos;re talking about.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7fyUTCH47r2NcovvVExpqA.jpg" alt="Watch Dogs Legion ray tracing image quality on AMD vs. Nvidia" /><figcaption><small role="credit">Ubisoft</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RrnjdhAibrxywjNZj4SBSA.jpg" alt="Watch Dogs Legion ray tracing image quality on AMD vs. Nvidia" /><figcaption><small role="credit">Ubisoft</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CEGjt9ezAbDugMapzFioGB.jpg" alt="Watch Dogs Legion ray tracing image quality on AMD vs. Nvidia" /><figcaption><small role="credit">Ubisoft</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rbFvYE55gS2kzqv3FdiHx9.jpg" alt="Watch Dogs Legion ray tracing image quality on AMD vs. Nvidia" /><figcaption><small role="credit">Ubisoft</small></figcaption></figure></figure><p>The above are with the latest patches in place, and we&apos;re still getting a lot of differences between AMD and Nvidia DXR (DirectX Raytracing) quality. It&apos;s only used for reflections in <em>Watch Dogs Legion</em>, but you can see the differences in puddles, shiny metal surfaces, and various windows. It&apos;s as though AMD has greatly reduced the range of testing for ray triangle intersections, which could improve performance but at the cost of image quality.</p><p>Whether you want or need ray tracing is debatable, but with consoles now supporting the tech, we expect to see additional DXR games. Will they also support DLSS, or AMD&apos;s upcoming FidelityFX Super Resolution? And will they be &apos;dumbed down&apos; for the console GPUs? Those are good questions, and considering the RX 6800 is faster than the Xbox Series X, we suspect limited RT effects on console games will be more common than more robust implementations like we&apos;ve seen in <a href="https://www.tomshardware.com/news/cyberpunk-2077-pc-benchmarks-settings-performance-analysis"><u><em>Cyberpunk 2077</em></u></a>. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>Desktop GPU Performance Hierarchy Table</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><p>The next-gen consoles are supposed to tackle 4K gaming, but there&apos;s 4K gaming and then there&apos;s <em>4K gaming</em>. 4K via upscaling and ray tracing effects targeting 30 fps is most likely what we&apos;ll see from the PS5 and XSX. 4K native at 60 fps, even without ray tracing, is going to be more difficult, even on high-end PC hardware. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4mzRjwbXSTd9rWTM4GLtrM.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Zn4NNYFGyaxiTC6tmhNtoS.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The good news is that many games easily reach 60+ fps at 4K on the RX 6800 XT cards, along with other extreme performance GPUs. The custom AIB models all end up around 2 percent faster than the reference 6800 XT at stock, which isn&apos;t actually that great considering they also use about 10 percent more power. Overclocking pushes the cards into 370W and higher territory, again for relatively minor performance improvements.</p><p>It&apos;s important to remember the mix of games and settings used when looking at this overall chart as well. If we toss out the newer games that strongly favor one GPU brand, like <em>Assassin&apos;s Creed Valhalla</em>, <em>Dirt 5</em>, and <em>Watch Dogs Legion</em>, the relative performance can shift around quite a bit. But we figure we at least capture a relatively large cross-section of the overall market with 13 games. The 3080 ends up just slightly ahead of the 6800 XT cards at stock, mostly thanks to its significant advantage in <em>WDL</em>. Do you need DXR to make a game fun? Absolutely not. However, it&apos;s also disingenuous to suggest that DXR doesn&apos;t matter at all; it&apos;s just going to take longer to get to the point where DXR and RT become the norm rather than an option for extreme hardware. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/iXXRFKZvUBwjJZEn9yVTCN.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/spBvw8FmPmseJtCcAxXqET.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uogTrhM7ZwxCS8HPKtBcVN.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/o7uWdCzYVAU6qSkEBc66eT.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/smtiRWPdUdYLguDCqodYoN.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ifhN4rem4i3MHgBSew9X7U.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oeYCADjJ8KGP99V9EPmo7P.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iZSCLo9uEeK7w6epvbx6YU.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/t7wpDMAEvXGxGeCEdNcNRP.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9EWp2BpGPohQftMtUyaUzU.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Afxah2d578GtxeCzQrsEmP.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NZ5Fe9biX3kemYVrpdaeUV.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fh4a7tqaQChUvTSHSHsg7Q.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TnnaiehCwjfRxaiCqmURvV.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VtJB3qBmiABupL8HHFScUQ.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xgQhaWF3hZGXrMYUQEVYNW.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aW9HSudhBNEoAnZ3rbMFsQ.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q8GdSNmVEfXvhYyobB6yoW.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/avngzhTF46QUdhbqRmpcGR.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jSGS33dUr6X7YQaEjTLoJX.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CdrErNMkuq6w3vsYdCupdR.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xSR2m3w4N5pvFCVpoA82rX.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mPu9urwDZLqzQEfSKcqPzR.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vkX4sHpfQjYdetySmMGnGY.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2gK76KAmyVPtchojNbYRMS.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/p57uomQMqnPtEXDnFk5rgY.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Individual gaming charts at 4K mostly echo what we&apos;ve seen already, just with lower frame rates. Every game outside of <em>Watch Dogs Legion</em> easily surpassed 60 fps at 1440p ultra, but there are a few more exceptions at 4K. <em>Assassin&apos;s Creed Valhalla</em> and <em>Dirt 5</em> join <em>WDL</em> in the sub-60 group, though they&apos;re both relatively close to 60 fps on the 6800 XT. On the other hand, Watch Dogs isn&apos;t even close — it falls below 20 fps on the custom 6800 XT cards we&apos;re focusing on. Radeon gamers will definitely need to disable DXR reflections or run at a lower resolution if they want to play that game at acceptable frame rates. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>Desktop GPU Performance Hierarchy Table</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><p>Wrapping up our performance testing, the power and thermal results are actually more interesting than the raw performance. At least there&apos;s more variation between the cards in these areas, though all three custom cards stay reasonably cool and should run fine in any PC large enough to accommodate the hardware.</p><p>For these tests, we&apos;re using <a href="https://www.tomshardware.com/features/graphics-card-power-consumption-tested"><u>Powenetics software</u></a> to gather the actual power draw of the graphics cards. GPU-Z is used to collect thermal, clock speed, and fan speed data. We also have an SPL meter that we set up 15cm from the side of the cards to capture noise. However, we don&apos;t have an anechoic chamber or anything particularly fancy. External noise (e.g., from traffic) means we have to simply eyeball the meter rather than logging data and generating a chart. We test all of these metrics using <em>Metro Exodus</em>, set to loop five times, and FurMark running at 1600x900 in stress test mode.</p><p>Let&apos;s quickly talk about the noise levels first. Recent changes to my office mean the new setup isn&apos;t identical to the old one, but the noise floor (when traffic isn&apos;t driving by) is now 34 dB. The SPL meter is kept close to the GPUs in order to isolate the noise from the card and not pick up as much fan noise from the CPU cooler, though differences in card design can be a factor. All of the latest GPUs support 0 dB fan technology, which means idle noise levels are all the same: 34 dB. Literally any other noise, like typing or someone walking around, registers at much higher levels than that, so it&apos;s pretty quiet.</p><p>Under load, the GPUs start to show their differences. For example, the Asus has two large 120mm fans on the radiator that move quite a bit of air, while the third fan on the card itself is basically silent. Asus ended up being the loudest of the three GPUs in the gaming test, measuring 45.6 dB peak and generally hovering in the 43-45 dB range, but the actual fan noise tends to be lower and, to my ears at least, not as noticeable as smaller fans. ASRock peaked at 44.5 dB in gaming, again with a range of around 41-44 dB. Sapphire showed the most variation, running as quiet as 37 dB but peaking at 42.1 dB.</p><p>Results under FurMark are more consistent, but the cards deal with the extreme power draw in different ways. As a result, ASRock was the loudest card in FurMark, peaking at 45.6 dB and basically staying in the 45+ dB range. Asus came in second at 44.1 dB, while the Sapphire card was the quietest of the three and only ran at 39.5 dB. Again, we didn&apos;t make charts because it&apos;s just the three cards, but none of the cards are particularly loud. Pay attention to the actual GPU clocks and thermals below when looking at noise levels, however, as all of these metrics are interrelated.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xJUq3pdNeDM2Mg6EFBjSkS.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qsZisZCWzBSDgxDFi7nwRR.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QZTcxvUPkzRLu2u4HoLGDQ.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gAR9VFa8T2HptRrqpdR5mN.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>As mentioned earlier, the three custom AIB cards all have higher power use than the reference 6800 XT. In the <em>Metro</em> test, the ASRock uses the least power at around 332W, 30W more than the reference model. The Asus card uses 341W, though it has a pump and two larger fans on the radiator that undoubtedly use more power than the three smaller fans used on the other two cards. The Sapphire card ends up with the highest power use of 344W, which is as much as some of the other cards use even when overclocked. Overclocking isn&apos;t even that bad when you consider that performance improves by 4-7 percent (in <em>Metro</em>), while power use increases 1-6 percent. (Except for the reference card, which used 13 percent more power.)</p><p>FurMark takes power use to even higher values, ranging from 352W for the ASRock to 358W on the Asus and Sapphire cards. Overclocking pushes the three cards into the 400W and higher range, again with Sapphire using the most power of the 6800 XT models.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/CyGq7HQ2j7Pkh2426MoF3T.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CpqezqJpvqNtdNRWHDucjR.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/srWGZoXmy5BttxJqjerqWQ.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pnzoXf7rwaa9abRdCovs5P.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>At factory stock settings, all of the RX 6800 XT cards meet or exceed the official boost clock, though in-game clocks will vary by game. In <em>Metro</em>, the custom cards reach 2386-2394 MHz average clocks, with overclocking pushing all three cards into the 2500 MHz and higher range. FurMark is a different story, with the GPUs reigning in clocks in order to keep thermals and power use in check, but 2.1GHz while running FurMark is still quite impressive, and overclocking takes that up to around 2.25GHz. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/goMaydxvembDxGurgjZWLT.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZLu8bLDaCZVinAEz4EfJ5S.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yzQN8PPVzMxNUPo6wuiEpQ.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SmkBmaoyYCdxZepGQv7SbP.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8NxGcf2eQRv6gNYRnKMBdT.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ko5ymUGxjRP5ePTaGAehPS.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GMLDWSs35e9uq3wz2LBS8R.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BXTW2VbwBcoKi4SqcggAsP.png" alt="AMD Radeon RX 6800 XT Roundup" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Temperatures have a direct correlation with fan speed and noise, so they can&apos;t be considered on their own. As noted earlier, the Asus card had the highest noise levels, and while the fan speeds are quite low, two large 120mm fans still move a lot of air and can create more noise and turbulence than three 90mm fans. Still, the Asus runs over 15C cooler than the other custom cards in <em>Metro</em>, and over 17C cooler in FurMark, all while hitting similar clocks. Somewhat surprisingly, the Sapphire card has lower fan speeds than the ASRock but tends to be just as loud while running a bit hotter. Still, 72-75C isn&apos;t particularly high for a high-end GPU playing a demanding game.</p><p>You can also see how the significant ramp in fan speed to help with overclocking affects things. Temperatures are actually lower than stock, but that&apos;s because overclocking puts enough of a strain on the GPU that we didn&apos;t want to risk instability in pursuit of lower noise levels. If you want low thermals with a decent overclock, the Asus liquid cooler ends up being far superior to traditional air cooling.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>Desktop GPU Performance Hierarchy Table</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><p>The performance, features, power, and aesthetics for these RX 6800 XT cards doesn&apos;t do much good if you can&apos;t actually buy the product, unfortunately. That&apos;s where we find ourselves right now. Theoretically, the Radeon RX 6800 XT is a good product, particularly if you&apos;re not as concerned about ray tracing performance. It&apos;s also theoretically slightly less expensive than the competing GeForce RTX 3080. In practice, however, it&apos;s all for naught.</p><p>As bad as the supply is on GeForce RTX 30-series cards, it might be even worse on AMD&apos;s alternatives. It&apos;s difficult to ascertain exactly how many of any of the cards are actually being shipped and sold, though, and both feel like ghost products right now. Tell someone you actually saw any of the latest GPUs in stock and they&apos;re liable to put you away. Which makes reviewing these cards a bit weird, but such is the way of the tech world right now.</p><p>The problem is that it&apos;s not just one thing causing the shortages. COVID plays a big role, and that impacted worldwide shipping as well. More people working and schooling from home, or just wanting to play games, means more demand. And in the case of the AMD RX 6800 XT, AMD uses TSMC&apos;s N7 process, which is in high demand from other companies as well. In the latest <a href="https://www.tomshardware.com/news/tsmc-capex-2021"><u>TSMC news</u></a>, you can see that TSMC only does about 55-60 thousand wafers per month. How many of those go to Apple and Nvidia, and how many are for AMD? And of the AMD wafers, there will be Zen 3 CPUs, PS5 and XSX console APUs, and RDNA2 GPUs.</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:6000px;"><p class="vanilla-image-block" style="padding-top:66.67%;"><img id="" name="shutterstock_1055165099_edited.jpg" alt="Wafer" src="https://cdn.mos.cms.futurecdn.net/5xyGKgFhfDjiTA8UcXmzAX.jpg" mos="" align="middle" fullscreen="1" width="6000" height="4000" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/5xyGKgFhfDjiTA8UcXmzAX.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Shutterstock)</span></figcaption></figure><p>Suppose AMD gets one-third of TSMC&apos;s N7 production. That&apos;s perhaps 20K wafers. However, the PS5 and XSX consoles probably use up 75 percent of the allotment, meaning only 5K wafers for GPUs <em>and</em> CPUs. And right now, the Zen 3 CPUs are more lucrative (smaller chips means more per wafer, and higher profit margins). It&apos;s entirely possible that AMD is only doing a few thousand (or less) Navi 21 wafers per month. With a 520mm square die size, that&apos;s <em>at best</em> around 100 GPUs per wafer. Even that might be optimistic, as based on what we&apos;ve seen it seems like less than 100K RX 6800 XT cards exist. Or maybe demand is simply so much higher than the supply that even with hundreds of thousands of cards, it wouldn&apos;t be enough.</p><p>If you want an RX 6800 XT and can find one of these cards in stock at a price you&apos;re willing to pay, have at it. The same applies to most of the other recent GPU launches. What everyone really wants to know is when these cards will be readily available at anything close to the launch price of $650-$700. Sadly, we don&apos;t know. Maybe in a few months, but we heard multiple companies at CES 2021 suggest that graphics card shortages are likely to continue until June at least. And if <a href="https://www.tomshardware.com/news/gpu-shortages-worsen-cryptocurrency-coin-miners-ethereum"><u>Bitcoin and Ethereum prices</u></a> stay high, that would only make the situation worse, plus <a href="https://www.tomshardware.com/news/gpu-tariff-asus-priceincrease"><u>tariffs are also impacting prices</u></a> in the United States.</p><p>It&apos;s annoying, and that&apos;s putting it nicely. In July, I wrote that it was a <a href="https://www.tomshardware.com/news/terrible-time-to-buy-gpu-late-2020"><u>terrible time to buy a graphics card</u></a> and updated that article after the new cards launched and immediately sold out. In retrospect, if you bought a previous-gen RTX 20-series or RX 5700-series GPU at MSRP or below right before the new cards launched, that was a smart buy. An even better buy would have been purchasing an RTX 20-series card back in 2018 because you&apos;d then have over two years of enjoyment from it, and you could probably still sell it at close to the original price.</p><p>The winner of the current GPU battle will be whichever company can produce the most GPUs first and ship them at reasonable prices, with features, performance, and all the other aspects being secondary concerns. If we take the RX 5700 XT and the RTX 2060 Super as $400 graphics cards for our baseline, the RX 6800 XT is around 75 percent faster than the 5700 XT and 90 percent faster than the 2060 Super. That means we could reasonably accept prices of $700-$800. Anything more than that and we recommend waiting and searching for a better deal.</p><p>We know for certain that, just as the 2017 GPU shortages eventually came to an end, the current shortages will also pass into history at some point. Hopefully, that happens sooner rather than later.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-gpus,4380.html"><strong>Best Graphics Cards</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/gpu-hierarchy,4388.html"><strong>Desktop GPU Performance Hierarchy Table</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/graphics"><strong>All Graphics Content</strong></a></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe>
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                                                            <title><![CDATA[ FSP Hydro PTM Pro 1200W Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/fsp-hydro-ptm-pro-1200w-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ A powerful power supply, ideal for the new generation GPUs, from FSP. ]]>
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                                                                        <pubDate>Wed, 09 Dec 2020 22:45:16 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:27:35 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[FSP Hydro PTM Pro 1200W Power Supply Review]]></media:description>                                                            <media:text><![CDATA[FSP Hydro PTM Pro 1200W Power Supply Review]]></media:text>
                                <media:title type="plain"><![CDATA[FSP Hydro PTM Pro 1200W Power Supply Review]]></media:title>
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                                <p>The FSP Hydro PTM Pro with 1200W capacity is a powerful PSU, able to keep up with the energy needs of the new generation, energy-hungry GPUs. It falls a little behind in terms of overall performance compared to the high-end offerings from <a href="https://www.tomshardware.com/reviews/asus-rog-thor-1200w-psu,5984.html">Asus</a>, <a href="https://www.tomshardware.com/reviews/corsair-hx1200-psu,5102.html">Corsair</a>, <a href="https://www.tomshardware.com/reviews/thermaltake-toughpower-pf1-argb-1200w-power-supply">Thermaltake</a>, and Seasonic, so that it won&apos;t be added to our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best PSU picks article</a>. Nonetheless, its build quality is high, and a hefty warranty supports it. </p><p>The FSP Hydro PTM Pro consists of four members with capacities ranging from 650W to 1200W. One major feature is that they all meet the new <a href="https://www.cui.com/catalog/resource/iec-62368-1-an-introduction-to-the-new-safety-standard-for-ict-and-av-equipment">IEC62368</a> safety requirements. Another interesting feature is the Off-Wet technology "conformal coating," which protects the power supply and its internal components from dust and humidity. According to FSP, the Hydro PTM PRO series is tested to work properly even in 95% relative humidity. This is an interesting feature for users wanting PSU for harsh environments.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mTicxLwwbH77dw9XTqFT2G.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YpDYKxrWjUniEm5gnk6qWG.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kaVA2KDnNejemU333Mc52H.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZzbqNBAkPUhmVucnFfgkYH.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/i2YNDPQu7kzUg3ADMq9y6J.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hh4HCo2ofYoLRofYBeRacJ.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JBPHTsC2KwAxqdyXhGCH9K.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HWdgtLZf6QRS25bQox4cdK.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qEvJ2DucYj6uZAgfhEW8EL.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/S7qQdg4Bk4xf6dL2NNbZjL.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8BqRnDzQgKUgqw2UFGQaGM.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uZCQsAq64jBpmmKKykWgmM.jpg" alt="PSU Out" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We will evaluate the flagship Hydro PTM Pro model with 1200W max power in this review. This unit uses a full-bridge topology, which is ideal for powerful power supplies. Given the ten-year warranty, we expect this platform to fare well in the long run and not cause any issues. Nonetheless, we will fully break the PSU to check its build quality and the quality of the parts that FSP used. A product review is not complete without a full break-down and a detailed part analysis. </p><p>To keep noise output as low as possible, especially with light and moderate loads, FSP equipped this unit with a semi-passive operation. They call it ECO mode, and it can be deactivated through a switch located at the PSU&apos;s front side. So users wanting the PSU&apos;s fan to operate all around the clock have this option. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ccSLHmdiRZTbRhGZuLPFsW.jpg" alt="PSU Box" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/o7EN8cUBHyqqq424qbtbPX.jpg" alt="PSU Box" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jCcrqL2QZ2LM5M3Qoj8buX.jpg" alt="PSU Box" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CCkDW5XicUUJwMvvCUNsSY.jpg" alt="PSU Box" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Z5sW8XBLCDiKkhjRKrikwY.jpg" alt="PSU Box" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YuSnkRu3hCkfqxBdWJjuSZ.jpg" alt="PSU Box" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aLffVAKFTV2jqPVt2HX7xZ.jpg" alt="PSU Box" /><figcaption><small role="credit">Future</small></figcaption></figure></figure><h2 id="specifications-6">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >      <p>FSP</p>    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>1200W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      <p>80 PLUS Platinum, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      <p>LAMBDA-A- (25-30 dB[A])</p>    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      <p>✓ (Fully)</p>    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      <p>135mm Fluid Dynamic Bearing Fan (MGA13512XF-A25)</p>    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✓ (selectable)</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>150 x 85 x 190mm</p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>2 kg (4.41 lb)</p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-6">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >100</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">120</td><td  >1200</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  >1200</td></tr></tbody></table></div><h2 id="cables-amp-connectors-5">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Modular Cables</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (600mm)</th><td  >1</td><td  >1</td><td  >16-22AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (700mm)</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >No</td></tr><tr><th  >8 pin EPS12V (700mm) / 4+4 pin EPS12V (150mm)</th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (650mm+150mm)</th><td  >2</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (500mm+150mm)</th><td  >2</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (510mm+160mm+160mm+160mm)</th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (510mm+160) / 4-pin Molex (+160mm+160mm)</th><td  >2</td><td  >4 / 4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (510mm+160) / 4-pin Molex (+160mm) / FDD (+160mm)</th><td  >1</td><td  >2 / 1 / 1</td><td  >18-22AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1440mm) -  C13 coupler</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >-</td></tr></tbody></table></div><p>The PSU comes with not two but three EPS connectors! Apparently, FSP knows something that we don&apos;t (mainboards with three EPS sockets?) The problem here is that a pair of these connectors are installed on a single cable, and to make matters even worse, this cable uses the standard 18AWG gauges instead of thicker ones. This means that if you push both EPS connectors hard, you will most likely melt either the gauges or the connector on the PSU&apos;s side. If you want to offer three EPS connectors, you should do it properly, and this is through dedicated cables—each EPS connector on its own cable. </p><p>There are no dedicated PCIe cables, and you should be careful not to use a single PCIe cable with two corresponding connectors on a power-hungry graphics card (e.g., Nvidia RTX 3080 or RTX 3090). Else you could damage both the PSU and the graphics card. </p><p>The amount of provided connectors is huge, and it is also nice to see an adequate distance between the peripheral connectors. </p><p><br></p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/38ExFdd2gbx3ekBdppTo6h.jpg" alt="Cables" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gvPqfoFkYoCCLB8EdTYfah.jpg" alt="Cables" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/A4Wtii6ztGk5wTYDp5375i.jpg" alt="Cables" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EkFvkJbgLcPwY97c4d8gYi.jpg" alt="Cables" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yDLxXviGxoNGi8qs35RB3j.jpg" alt="Cables" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FRYAUqwCgbuYGuZsqnoAXj.jpg" alt="Cables" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FecrpUNtgEAUm6opFQ362k.jpg" alt="Cables" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H8HiihoTpEd9egw4V55oVk.jpg" alt="Cables" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-6">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong>allowing you to better understand the components we&apos;re about to discuss.</strong></p><div ><table><tbody><tr><td  >General Data</td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >FSP</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  >Primary Side</td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 3x X caps, 2x CM chokes, 1x MOV</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor SCK-056 (5 Ohm) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  >2x HY GBJ2506P (600V, 25A @ 100°C)</td></tr><tr><td  >APFC MOSFETs</td><td  >3x Infineon IPA60R120P7 (650V, 16A @ 100°C, Rds(on): 0.12Ohm)</td></tr><tr><td  >APFC Boost Diode</td><td  >2x Infineon IDH08G65C6 (650V, 8A @ 145°C)</td></tr><tr><td  >Bulk Cap(s)</td><td  >2x Hitachi (450V, 560uF each or 1.120uF combined, 2,000h @ 105°C, HU)</td></tr><tr><td  >Main Switchers</td><td  >4x STMicroelectronics STF26NM60N (600V, 12.6A @ 100°C, Rds(on): 0.165Ohm)</td></tr><tr><td  ><p>IC Driver</p></td><td  >2x Silicon Labs Si8233BD</td></tr><tr><td  >APFC Controller</td><td  >Infineon ICE2PCS02G</td></tr><tr><td  >Resonant Controller</td><td  >Champion CM6901T2X</td></tr><tr><td  >Topology</td><td  >Primary side: APFC, Full-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td  >Secondary Side</td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >8x</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 6x Infineon BSC0901NS (30V, 94A @ 100°C, Rds(on): 1.9mOhm)<br> PWM Controllers: ANPEC APW7159C</td></tr><tr><td  >Filtering Capacitors</td><td  >Electrolytic: 4x Nippon Chemi-Con (1-5,000h @ 105°C, KZE), 2x Rubycon (4-10,000h @ 105°C, YXF), 1x Rubycon (6-10,000h @ 105°C, ZLH), 1x Rubycon (4-10,000h @ 105°C, YXH), 2x Rubycon (3-6,000h @ 105°C, YXG) Polymer: 31x United Chemi-Con</td></tr><tr><td  >Supervisor IC</td><td  >SITI PS223H (OCP, OTP, OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Controller</td><td  >APW9010</td></tr><tr><td  >Fan Model</td><td  >Protechnic Electric MGA13512XF-A25 (135mm, 12V, 0.38A, Fluid Dynamic Bearing Fan)</td></tr><tr><td  >5VSB Circuit</td><td  >-</td></tr><tr><td  >Rectifier</td><td  >1x International Rectifier IRF1018ESPbF FET (60V, 56A @ 100°C, Rds(on): 8.4mOhm)</td></tr><tr><td  >Standby PWM Controller</td><td  >Power Integrations INN2603K</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TBwjBaauromeVHWTemEkh8.jpg" alt="In Top" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/w7ZzK3ZovKbPKiosWSdaD9.jpg" alt="In Top" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/USRRQ7azMRiUcwM2ek5Ji9.jpg" alt="In Top" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MgwJkPLYgS4zzg3hYJTfDA.jpg" alt="In Top" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>This is an interesting platform by FSP. What caught our immediate attention, besides the compact dimensions of the PCB, is that the main transformers are not properly aligned. There are also some potentiometers in view, but it is better not to mess with them. Usually, most manufacturers don&apos;t allow any modifications through potentiometers, but this is not a problem, from the moment the owners of this product are not supposed to open it, as we did. </p><p>The heat sinks on both primary and secondary sides are super small if you consider a 1200W power supply. The PCB is also large enough to allow for good airflow, especially for the secondary side&apos;s electrolytic caps. </p><p>On the primary side, we meet a full-bridge topology supported by an LLC resonant converter. A synchronous design is used on the secondary side, and a pair of DC-DC converters generate the minor rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vxSGetiNkWndwnDAyBiSwT.jpg" alt="In Transient Filter" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yuqLj56qWeCK8SZbDf3kTU.jpg" alt="In Transient Filter" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Qu38iyrSPJt8fT7DaufQ8V.jpg" alt="In Transient Filter" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RfYWPncYzc9xqcjMhvxheV.jpg" alt="In Transient Filter" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/E7MJKKNjVWR7HH6LeJzpBW.jpg" alt="In Transient Filter" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oXpGz4Y5NpTKxoGaWf48gW.jpg" alt="In Transient Filter" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oeSzjCNrdZeTENg6DpYdBX.jpg" alt="In Transient Filter" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter uses four Y and three X caps, two CM chokes, and an MOV. There is also an NTC thermistor, supported by a bypass relay, for protection against large inrush currents. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ofo2a8UgfgWGn3ZJyD7iK6.jpg" alt="In Bridge" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TxhkFMWhmY45enmDWbSqu6.jpg" alt="In Bridge" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JAt6Dk9mWKXLU6TPEU9sT7.jpg" alt="In Bridge" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are two bridge rectifiers capable of handling up to 50A of current, so they easily meet this PSU&apos;s requirements. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jGEk9uqd7k7CtUFjuVGBan.jpg" alt="In APFC" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fTLejqxLHkb8pKt2ZvRL6o.jpg" alt="In APFC" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CLTL5fDT3N3PizUN8mFx3.jpg" alt="In APFC" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NwL62oMXDnWYuKgFjGq2a.jpg" alt="In APFC" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H5mFmaAvBzVymR8hvxRi63.jpg" alt="In APFC" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/emJwQ7TMzfhokxcurvGfb3.jpg" alt="In APFC" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The Active Power Factor Correction (APFC) converter uses three FETs and two boost diodes. The bulk caps are provided by Hitachi and have enough capacity to provide a longer than 17ms hold-up time. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Y8c7kP2zEv83G8nkDzcKYC.jpg" alt="In Main FETs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cyzeWWJQswHYnZwzzCN95D.jpg" alt="In Main FETs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fMj2x8Mvsi8AxUqeDA6caD.jpg" alt="In Main FETs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UJqXcnzADKc53C2ujUiL7E.jpg" alt="In Main FETs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zpYuxGzMa48WKbACVcE6cE.jpg" alt="In Main FETs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Four STMicroelectronics <a href="https://datasheetspdf.com/pdf-file/784911/STMicroelectronics/26NM60N/1">STF26NM60N</a> FETs are installed in a full-bridge topology. An LLC resonant converter supports them, and the controller is a Champion <a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901T2.pdf">CM6901T2X</a> IC. The aforementioned FETs are driven by a pair of Silicon Labs <a href="https://www.silabs.com/documents/public/data-sheets/Si823x.pdf">Si8233BD</a> ICs. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uRJAjQEtCPdNwfLC8U37Hj.jpg" alt="In 12V FETs and VRMs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/beGZnnJGQqXtmhVcNgF3oj.jpg" alt="In 12V FETs and VRMs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Eight FETs regulate the +12V rail. It was impossible to identify them since all markings were erased. The aforementioned rail feeds two DC-DC converters, which generate the minor rails. The common PWM control of these converters is an ANPEC <a href="http://www.anpec.com.tw/ashx_prod_file.ashx?prod_id=717&file_path=20131210180212790.pdf&original_name=APW7159A.pdf" target="_blank">APW7159C</a>.</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="side_PCB.jpg" alt="In Vertical PCB" src="https://cdn.mos.cms.futurecdn.net/Kr5BJrreLurEEoqH6FucCj.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Besides the VRMs of the minor rails, this daughter-board also hosts the supervisor IC, a SITI <a href="http://www.siti.com.tw/product/spec/Power/PS223.pdf" target="_blank">PS223H</a>, and an operational amplifier. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/J3DFoBtvvfrNaYjLNMqt7L.jpg" alt="In caps" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cRT952tZsBcfhsv4ogzgcL.jpg" alt="In caps" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JnRcQfH9X4ndS4WbzPkx8M.jpg" alt="In caps" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ycB5YxsTKoByeW3T4YCgdM.jpg" alt="In caps" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/i5UqTcC4mXNcL5QdT9rh9N.jpg" alt="In caps" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The electrolytic filtering caps on the secondary side are by Chemi-Con and Rubycon. Most of them belong to good lines, with four large ones from the mainstream, but still worthy, Chemi-Con KZE line. A large number of polymer caps are also used. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/t9vG6jc5jki7JjTTQ97nVb.jpg" alt="In Modular Front" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YunUjXBMRnX5Jx77eqX44c.jpg" alt="In Modular Front" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/W6whpuHkYGv43ovQqoJeac.jpg" alt="In Modular Front" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Besides bus bars, we also find many polymer caps on the modular board. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DiWGBxpRmWYh87d9TsTiX.jpg" alt="In Main PCB" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7fSr9b9VppDPwj3o8hFP73.jpg" alt="In Main PCB" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6FFyAREE8CmSnfSNQfKve3.jpg" alt="In Main PCB" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PSh5UBALEGzFfQnXuLZAE4.jpg" alt="In Main PCB" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4rTcA46AgkkdStejfGpfk4.jpg" alt="In Main PCB" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Soldering quality is good and all component leads are short enough. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Kxat6gXHTEbzmbYggUytbC.jpg" alt="In Fan" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TijUmCpGrdBzkjvsGYhP8D.jpg" alt="In Fan" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Re45T7fWzoLZDCfpP8RPdD.jpg" alt="In Fan" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The cooling fan is of high quality. You cannot go wrong with Protechnic Electric fans. They are not affordable, but you get what you pay for. The fan controller is an APW9010 IC.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="88aa4385-8dca-48cf-8453-b365e935a902">            <a href="https://www.newegg.com/corsair-hx-series-hx1200-cp-9020140-na-1200w/p/N82E16817139205?Description=1200W&cm_re=1200W-_-17-139-205-_-Product" data-model-name="Corsair HX1200" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/sc8doQ3JQtgBUn8NMn3rH5.jpg" alt="Corsair HX1200"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair HX1200</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="5f6431c6-158c-4ae9-a954-d09288e5a01b">            <a href="https://www.newegg.com/corsair-rm-series-rm750-cp-9020195-na-750w/p/N82E16817139168" data-model-name="ASUS ROG Thor 1200" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/mrLY7mgBxA9k3f2PwuoFSD.jpg" alt="ASUS ROG Thor 1200"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">ASUS ROG Thor 1200</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="a335518e-8449-497c-bfde-9acd41d1a0bd">            <a href="https://www.newegg.com/thermaltake-toughpower-pf1-argb-platinum-ps-tpd-1200f3fapa-1-1200w/p/N82E16817153410?Description=1200W&cm_re=1200W-_-17-153-410-_-Product" data-model-name="Thermaltake Toughpower PF1 ARGB 1200W" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.25%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/qZZSrk5NdCma2HM4v2xcFZ.jpg" alt="Thermaltake Toughpower PF1 ARGB 1200W"></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Thermaltake Toughpower PF1 ARGB 1200W</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-6">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/di6yJV8bpvGvdo7fvWu3EE.png" alt="Results 1-8" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fuPj5mCMSTnPMcN355QghE.png" alt="Results 1-8" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oXzHKdFPKc3WW9RbpKfXCF.png" alt="Results 1-8" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yYp4eRv8vviNkanNGXqogF.png" alt="Results 1-8" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/v3gsouRg3cKZLg7NEiuZBG.png" alt="Results 1-8" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dkdnkRqn9qmUw3GAodsyeG.png" alt="Results 1-8" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uTT8k8a8yHhKo9Pk9Lon9H.png" alt="Results 1-8" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NfDFJbz2ssxLpxfQDqngdH.png" alt="Results 1-8" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is within 1% on the 12V and 5V rails. Still, the competition performs notably better. </p><h2 id="hold-up-time-6">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KNS8zSCY6k8W2HPtdvzFw9.png" alt="Results 9-12" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kQzqPLHm6kzfSJyeAd2jRA.png" alt="Results 9-12" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WqbWJCBs35iTxLorCKSQuA.png" alt="Results 9-12" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xHeDvMSrEG46ZNBjb9KtPB.png" alt="Results 9-12" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kA6aP7QRuRUZrLRTehjksB.jpg" alt="Results 9-12" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gbMC7Z3QpobeReuoriv7PC.jpg" alt="Results 9-12" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bDEyDMCoTYPY986yddfFtC.jpg" alt="Results 9-12" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Thanks to the large bulk caps, the hold-up time is very long. The power ok signal is also accurate.</p><h2 id="inrush-current-6">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/dUuzMVbix5v7AbkcFwYhXH.png" alt="Results 13-14" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QzFTMGMnvqeBgBenQzQ33J.png" alt="Results 13-14" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current is low with both voltage inputs. </p><h2 id="leakage-current-6">Leakage Current</h2><p>In layman&apos;s terms, leakage current is the unwanted transfer of energy from one circuit to another. In power supplies, it is the current flowing from the primary side to the ground or the chassis, which in the majority of cases is connected to the ground. For measuring leakage current, we use a <a href="https://www.gwinstek.com/en-global/products/detail/GPT-9900">GW Instek GPT-9904</a> electrical safety tester instrument.</p><p>The leakage current test is conducted at 110% of the DUT&apos;s rated voltage input (so for a 230-240V device, we should conduct the test with 253-264V input). The maximum acceptable limit of a leakage current is 3.5 mA and it is defined by the IEC-60950-1 regulation, ensuring that the current is low and will not harm any person coming in contact with the power supply&apos;s chassis.</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 14b -27b_Leakage_Current_Comparison_230V.png" alt="Result 14a" src="https://cdn.mos.cms.futurecdn.net/77TqCfRMs8zKGYMZrRPsJd.png" mos="" align="middle" fullscreen="" width="651" height="490" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Very low leakage current. </p><h2 id="10-106-load-tests">10-106% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>8.137A</strong></td><td  ><strong>1.991A</strong></td><td  ><strong>1.978A</strong></td><td  ><strong>0.991A</strong></td><td  >119.985</td><td  >87.066%</td><td  >0</td><td  ><6.0</td><td  > 36.03°C</td><td  >0.972</td></tr><tr><td  >12.091V</td><td  >5.024V</td><td  >3.335V</td><td  >5.046V</td><td  >137.809</td><td  > 40.20°C</td><td  >115.17V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>17.307A</strong></td><td  ><strong>2.988A</strong></td><td  ><strong>2.972A</strong></td><td  ><strong>1.192A</strong></td><td  >240.014</td><td  >90.633%</td><td  >0</td><td  ><6.0</td><td  > 45.64°C</td><td  >0.992</td></tr><tr><td  >12.083V</td><td  >5.019V</td><td  >3.330V</td><td  >5.033V</td><td  >264.820</td><td  > 40.98°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>26.756A</strong></td><td  ><strong>3.486A</strong></td><td  ><strong>3.474A</strong></td><td  ><strong>1.393A</strong></td><td  >359.113</td><td  >91.654%</td><td  >0</td><td  ><6.0</td><td  > 46.82°C</td><td  >0.993</td></tr><tr><td  >12.075V</td><td  >5.015V</td><td  >3.325V</td><td  >5.026V</td><td  >391.815</td><td  > 41.48°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>36.330A</strong></td><td  ><strong>3.994A</strong></td><td  ><strong>3.975A</strong></td><td  ><strong>1.595A</strong></td><td  >479.533</td><td  >91.854%</td><td  >790</td><td  >22.3</td><td  > 41.62°C</td><td  >0.995</td></tr><tr><td  >12.065V</td><td  >5.010V</td><td  >3.321V</td><td  >5.016V</td><td  >522.058</td><td  > 47.76°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>45.567A</strong></td><td  ><strong>4.996A</strong></td><td  ><strong>4.976A</strong></td><td  ><strong>1.799A</strong></td><td  >599.674</td><td  >91.733%</td><td  >792</td><td  >22.3</td><td  > 42.06°C</td><td  >0.996</td></tr><tr><td  >12.052V</td><td  >5.004V</td><td  >3.316V</td><td  >5.003V</td><td  >653.715</td><td  > 48.76°C</td><td  >115.15V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>54.799A</strong></td><td  ><strong>6.002A</strong></td><td  ><strong>5.980A</strong></td><td  ><strong>2.000A</strong></td><td  >719.782</td><td  >91.119%</td><td  >975</td><td  >29.2</td><td  > 42.42°C</td><td  >0.996</td></tr><tr><td  >12.044V</td><td  >4.999V</td><td  >3.311V</td><td  >4.990V</td><td  >789.932</td><td  > 50.40°C</td><td  >115.14V</td></tr><tr><td  ><font><strong>7</strong></font></td><td  ><strong>64.020A</strong></td><td  ><strong>7.012A</strong></td><td  ><strong>6.989A</strong></td><td  ><strong>2.210A</strong></td><td  >839.538</td><td  >90.664%</td><td  >1263</td><td  >36.0</td><td  > 43.48°C</td><td  >0.996</td></tr><tr><td  >12.034V</td><td  >4.994V</td><td  >3.306V</td><td  >4.976V</td><td  >925.992</td><td  > 51.73°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>8</strong></font></td><td  ><strong>73.325A</strong></td><td  ><strong>8.003A</strong></td><td  ><strong>7.997A</strong></td><td  ><strong>2.418A</strong></td><td  >959.904</td><td  >90.050%</td><td  >1468</td><td  >40.2</td><td  > 43.66°C</td><td  >0.996</td></tr><tr><td  >12.023V</td><td  >4.988V</td><td  >3.301V</td><td  >4.963V</td><td  >1065.966</td><td  > 52.65°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>9</strong></font></td><td  ><strong>82.990A</strong></td><td  ><strong>8.530A</strong></td><td  ><strong>8.495A</strong></td><td  ><strong>2.422A</strong></td><td  >1079.289</td><td  >89.379%</td><td  >1749</td><td  >44.8</td><td  > 44.25°C</td><td  >0.995</td></tr><tr><td  >12.011V</td><td  >4.982V</td><td  >3.296V</td><td  >4.955V</td><td  >1207.546</td><td  > 53.71°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>10</strong></font></td><td  ><strong>92.503A</strong></td><td  ><strong>9.041A</strong></td><td  ><strong>9.021A</strong></td><td  ><strong>3.042A</strong></td><td  >1199.730</td><td  >88.571%</td><td  >2068</td><td  >49.2</td><td  > 45.48°C</td><td  >0.995</td></tr><tr><td  >12.000V</td><td  >4.977V</td><td  >3.292V</td><td  >4.931V</td><td  >1354.539</td><td  > 55.80°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>11</strong></font></td><td  ><strong>98.550A</strong></td><td  ><strong>9.045A</strong></td><td  ><strong>9.028A</strong></td><td  ><strong>3.044A</strong></td><td  >1271.698</td><td  >88.151%</td><td  >2157</td><td  >49.7</td><td  > 45.52°C</td><td  >0.994</td></tr><tr><td  >11.994V</td><td  >4.975V</td><td  >3.289V</td><td  >4.927V</td><td  >1442.643</td><td  > 56.46°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>CL1</strong></font></td><td  ><strong>0.100A</strong></td><td  ><strong>14.000A</strong></td><td  ><strong>14.000A</strong></td><td  ><strong>0.000A</strong></td><td  >117.913</td><td  >83.686%</td><td  >782 </td><td  >22.2</td><td  > 42.37°C</td><td  >0.973</td></tr><tr><td  >12.086V</td><td  >5.011V</td><td  >3.325V</td><td  >5.057V</td><td  >140.899</td><td  > 49.17°C</td><td  >115.17V</td></tr></tbody></table></div><p>The PSU couldn&apos;t deliver 110% of its max-rated power, so we had to apply a bit lower load, at 106%. It looks worse, though, because it couldn&apos;t handle our CL2 test, where we apply full load at 12V and minimum load on the minor rails. This was a huge letdown. Even at lower temperatures, we weren&apos;t able to run a full CL2 test, since the PSU stopped after a short period. </p><h2 id="20-80w-load-tests-6">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.226A</strong></td><td  ><strong>0.498A</strong></td><td  ><strong>0.494A</strong></td><td  ><strong>0.197A</strong></td><td  >19.979</td><td  >61.952%</td><td  >0</td><td  ><6.0</td><td  >0.821</td></tr><tr><td  >12.095V</td><td  >5.026V</td><td  >3.338V</td><td  >5.068V</td><td  >32.249</td><td  >115.17V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>2.453A</strong></td><td  ><strong>0.995A</strong></td><td  ><strong>0.989A</strong></td><td  ><strong>0.395A</strong></td><td  >39.969</td><td  >74.961%</td><td  >0</td><td  ><6.0</td><td  >0.906</td></tr><tr><td  >12.094V</td><td  >5.026V</td><td  >3.338V</td><td  >5.062V</td><td  >53.320</td><td  >115.17V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>3.684A</strong></td><td  ><strong>1.492A</strong></td><td  ><strong>1.483A</strong></td><td  ><strong>0.593A</strong></td><td  >60.001</td><td  >80.584%</td><td  >0</td><td  ><6.0</td><td  >0.938</td></tr><tr><td  >12.094V</td><td  >5.026V</td><td  >3.337V</td><td  >5.056V</td><td  >74.458</td><td  >115.17V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>4.908A</strong></td><td  ><strong>1.990A</strong></td><td  ><strong>1.978A</strong></td><td  ><strong>0.792A</strong></td><td  >79.954</td><td  >83.791%</td><td  >0</td><td  ><6.0</td><td  >0.956</td></tr><tr><td  >12.093V</td><td  >5.025V</td><td  >3.336V</td><td  >5.054V</td><td  >95.421</td><td  >115.17V</td></tr></tbody></table></div><p>The efficiency levels in this load range are not high. </p><h2 id="2-or-10w-load-test-6">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.800A</strong></td><td  ><strong>0.259A</strong></td><td  ><strong>0.260A</strong></td><td  ><strong>0.054A</strong></td><td  >24.214</td><td  >66.273%</td><td  >0</td><td  ><6.0</td><td  >0.847</td></tr><tr><td  >12.095V</td><td  >5.026V</td><td  >3.338V</td><td  >5.071V</td><td  >36.537</td><td  >115.18V</td></tr></tbody></table></div><p>The PSU cannot exceed 70% efficiency with 2%, of its max-rated-capacity, load. </p><h2 id="efficiency-amp-power-factor-5">Efficiency & Power Factor</h2><p>Next, we plotted a chart showing the PSU’s efficiency at low loads, and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills. The same goes for Power Factor.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/gBhYzJsjbCic4uhbPNDHN5.png" alt="Results Efficiency" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/osZ76JVjZ3HQnoTDbsxbs5.png" alt="Results Efficiency" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b2HbT8FtSGwxNs3ojv4AV6.png" alt="Results Efficiency" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JKgs5d58S3QfquLknj57y6.png" alt="Results Efficiency" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Xxy54j3Ab5JhtJFDrmuiT7.png" alt="Results Efficiency" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/h8vUUhT9aq5pTTNMRQ64w7.png" alt="Results Efficiency" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We would like to see higher efficiency under light and super-light loads. </p><h2 id="5vsb-efficiency-6">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.508</td><td  >77.914%</td><td  >0.050</td></tr><tr><td  >5.078V</td><td  >0.652</td><td  >115.18V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.268</td><td  >82.876%</td><td  >0.112</td></tr><tr><td  >5.074V</td><td  >1.530</td><td  >115.18V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.786</td><td  >84.836%</td><td  >0.215</td></tr><tr><td  >5.066V</td><td  >3.284</td><td  >115.18V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.052</td><td  >85.165%</td><td  >0.316</td></tr><tr><td  >5.052V</td><td  >5.932</td><td  >115.18V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.576</td><td  >83.759%</td><td  >0.384</td></tr><tr><td  >5.051V</td><td  >9.045</td><td  >115.18V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>3.000A</strong></td><td  >15.040</td><td  >82.938%</td><td  >0.466</td></tr><tr><td  >5.014V</td><td  >18.134</td><td  >115.18V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/6nBsVxuRk3VtEwsuwkvWVG.png" alt="Results 5VSB" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wJdAL6TGWLNNxnfzDeSVzG.png" alt="Results 5VSB" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>This is one of the most efficient 5VSB rails that we have encountered so far. </p><h2 id="power-consumption-in-idle-and-standby-6">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>Idle</strong></font></td><td  >12.093V</td><td  >5.023V</td><td  >3.338V</td><td  >5.074V</td><td  >10.958</td><td  >0.481</td></tr><tr><td  >115.2V</td></tr><tr><td  ><font><strong>Standby</strong></font></td><td  >0.075</td><td  >0.006</td></tr><tr><td  >115.2V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wV9Gqf9PLw6WDBP5yKxp6T.png" alt="Results vampire power" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Q4PFhTophhRKxevZRL3ZaT.png" alt="Results vampire power" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Vampire power is high, especially with 230V input. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-6">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="Fan RM Delta" src="https://cdn.mos.cms.futurecdn.net/hAutfd5nhprZ4UztM3UDZe.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/hAutfd5nhprZ4UztM3UDZe.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="Fan RPM Noise" src="https://cdn.mos.cms.futurecdn.net/XY8pm23yTe56QkcZkMrcvh.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/XY8pm23yTe56QkcZkMrcvh.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile is not aggressive. Still, it allows the fan to operate at high speeds under tough conditions because the PSU&apos;s PCB is small, so high airflow is required to keep the thermal load in control, despite the platform&apos;s high enough efficiency levels. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="CL Fan" src="https://cdn.mos.cms.futurecdn.net/z6uDBtP6dx8DQoSxHvcHbm.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/z6uDBtP6dx8DQoSxHvcHbm.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="CL Fan RPM" src="https://cdn.mos.cms.futurecdn.net/5s68MhwLXARyNa8f6Lsr23.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/5s68MhwLXARyNa8f6Lsr23.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Passive operation lasts for quite long, under normal operating temperatures. Average noise output is kept low, close to 27 dBA. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-6">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >      <p><strong>Protection Features</strong></p>    </td><td  > </td></tr><tr><td  >OCP (Cold @ 22°C)    </td><td  >12V: 102.4A (102.4%), 11.985V      5V: 33.9A (169.5%), 4.985V      3.3V: 29.1A (145.5%), 3.327V      5VSB: 4.2A (140%), 4.986V    </td></tr><tr><td  >OCP (Hot @ 40°C)</td><td  >12V: -5V: 33A (165%), 4.994V  3.3V: 27.5A (137.5%), 3.329V  5VSB: 4.2A (140%), 4.987V</td></tr><tr><td  >OPP (Cold @ 27°C)</td><td  >1319.91W (109.99%)</td></tr><tr><td  >OPP (Hot @ 44°C)    </td><td  >1319.88W (109.99%)    </td></tr><tr><td  >OTP    </td><td  >✓ (100°C @ secondary side)    </td></tr><tr><td  >SCP    </td><td  >12V to Earth: ✓5V to Earth: ✓3.3V to Earth: ✓5VSB to Earth: ✓-12V to Earth: ✓    </td></tr><tr><td  >PWR_OK    </td><td  >Proper Operation    </td></tr><tr><td  >NLO    </td><td  >✓    </td></tr><tr><td  >SIP    </td><td  >Surge: MOV      Inrush: NTC Thermistor & Bypass Relay    </td></tr></tbody></table></div><p>With high operating temperatures, we could not load the 12V rail higher than its nominal capacity, while at low temperatures, OCP on the same rail is set low. We are not sure why FSP left so little room for overloading on this rail, but this doesn&apos;t look right. </p><p>Normally, OCP at 12V should be higher than 110%. On the contrary, OCP is set high on the minor rails, especially at 5V. There is no need for such high power levels at 5V and 3.3V. The only thing you achieve with this is increasing the possibility of something bad happening to the PSU. Finally, OTP is set pretty low, but this didn&apos;t create any issues during our tough test sessions. </p><h2 id="dc-power-sequencing-6">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/97txt5WHymTtNDzH2J3EQA.jpg" alt="DC Power Seq" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VqdaBqSCnVSMV7jECsDNtA.jpg" alt="DC Power Seq" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/USQzpXKRdJkkqnUL4rG3QB.jpg" alt="DC Power Seq" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail is kept at a lower voltage level than the other two, in all cases. </p><h2 id="cross-load-tests-6">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. </p><p>The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-6">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/A8gZgS5WEv4qBheFrhD5oG.jpg" alt="CL Load Reg" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/irQJM24tAWtMRRAZUaqzHH.jpg" alt="CL Load Reg" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/W2cRv8y6BVdbfqXt3zJTmH.jpg" alt="CL Load Reg" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="CL Efficiency" src="https://cdn.mos.cms.futurecdn.net/g9FhzTLs3sgFnhkeepohwM.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/g9FhzTLs3sgFnhkeepohwM.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts">Ripple Charts</h2><p>The lower the power supply&apos;s ripple, the more stable the system will be, and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pFaDahhkNstdB3HX25oggS.jpg" alt="CL Ripple" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cbK5zBcrQBwL5UMEkccMET.jpg" alt="CL Ripple" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mtQZdvSwcNPd2y8qVXVxhT.jpg" alt="CL Ripple" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KY6CKuzMGqcp4bqHmTCgCU.jpg" alt="CL Ripple" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-6">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3XzAw7kitQwKBbmFrwk4Gb.jpg" alt="IR Images" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M2DdV387rseV5smuTe4Ykb.jpg" alt="IR Images" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MxZjqDAJQFEBHCPeJ9PaGc.jpg" alt="IR Images" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Bu6NrdgKtwWfLsivwscymc.jpg" alt="IR Images" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jdkoyfQEbyiU84N4RsCeJd.jpg" alt="IR Images" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hottest parts are the bridge rectifiers, which are installed on a small heat sink. Still, their operating temperature is kept much lower than the maximum allowed, and given that they are overrated, you won&apos;t have any problems as long as the fan operates normally. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-6">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-6">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.075V</td><td  >11.994V</td><td  >0.67%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.014V</td><td  >4.885V</td><td  >2.57%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.329V</td><td  >3.168V</td><td  >4.84%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.033V</td><td  >4.997V</td><td  >0.72%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-6">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.078V</td><td  >11.994V</td><td  >0.70%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.016V</td><td  >4.891V</td><td  >2.49%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.329V</td><td  >3.168V</td><td  >4.84%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.033V</td><td  >4.985V</td><td  >0.95%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-6">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.079V</td><td  >11.997V</td><td  >0.68%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.017V</td><td  >4.893V</td><td  >2.47%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.329V</td><td  >3.166V</td><td  >4.90%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.033V</td><td  >4.992V</td><td  >0.81%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-6">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.045V</td><td  >11.963V</td><td  >0.68%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >4.999V</td><td  >4.874V</td><td  >2.50%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.315V</td><td  >3.153V</td><td  >4.89%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.003V</td><td  >4.959V</td><td  >0.88%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-6">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.047V</td><td  >11.963V</td><td  >0.70%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.000V</td><td  >4.868V</td><td  >2.64%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.315V</td><td  >3.156V</td><td  >4.80%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.003V</td><td  >4.964V</td><td  >0.78%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-6">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.048V</td><td  >11.951V</td><td  >0.81%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.001V</td><td  >4.874V</td><td  >2.54%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.316V</td><td  >3.147V</td><td  >5.10%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.003V</td><td  >4.966V</td><td  >0.74%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GokkpM48KsVgvwJLckf4P6.png" alt="Results Transient Response" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9QFvZbdeMuEfSPSRga2Qs6.png" alt="Results Transient Response" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fqBEiUYvX4jtJMt66cGwM7.png" alt="Results Transient Response" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gpGRui3gAoZCoD8Gg6xsq7.png" alt="Results Transient Response" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jd5x9fVEWLcHGr8qFeSZL8.png" alt="Results Transient Response" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vtXeHvbJcXRFu8mb7Xmho8.png" alt="Results Transient Response" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9ehLoy2BuATJiutWJ7LGJ9.png" alt="Results Transient Response" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nkYeJZNhgnbfYCpjiDT3n9.png" alt="Results Transient Response" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 12V rail has good transient response. We cannot say the same, though, for the minor rails. </p><h2 id="turn-on-transient-tests-6">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/i9SnuqNEJ7woqtPhCi27JT.jpg" alt="Turn On Transient" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mEqoQ7PACh6c6tJ7H3UQnT.jpg" alt="Turn On Transient" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pcKC6d2LkLx7Thw26CmAHU.jpg" alt="Turn On Transient" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are no spikes or voltage overshoots in these tests. </p><h2 id="power-supply-timing-tests-6">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >77ms</td><td  >265ms</td></tr><tr><th  ><strong>100%</strong></th><td  >81ms</td><td  >270ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode recommended by the ATX spec. This is not a major issue since there are no mainboards available yet, supporting this feature. That said, a PSU should be as future-proof as it gets. </p><h2 id="ripple-measurements-6">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>10% Load</strong></font></td><td  >7.1 mV</td><td  >6.8 mV</td><td  >17.1 mV</td><td  >13.7 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>20% Load</strong></font></td><td  >10.0 mV</td><td  >7.6 mV</td><td  >17.3 mV</td><td  >20.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>30% Load</strong></font></td><td  >11.0 mV</td><td  >8.9 mV</td><td  >17.3 mV</td><td  >23.0 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>40% Load</strong></font></td><td  >12.0 mV</td><td  >9.0 mV</td><td  >17.7 mV</td><td  >22.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>50% Load</strong></font></td><td  >12.8 mV</td><td  >10.0 mV</td><td  >19.8 mV</td><td  >23.7 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>60% Load</strong></font></td><td  >10.5 mV</td><td  >10.3 mV</td><td  >20.6 mV</td><td  >24.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>70% Load</strong></font></td><td  >12.0 mV</td><td  >10.8 mV</td><td  >21.1 mV</td><td  >30.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>80% Load</strong></font></td><td  >12.4 mV</td><td  >11.1 mV</td><td  >22.7 mV</td><td  >33.1 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>90% Load</strong></font></td><td  >13.3 mV</td><td  >11.9 mV</td><td  >23.2 mV</td><td  >33.7 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>100% Load</strong></font></td><td  >22.8 mV</td><td  >12.6 mV</td><td  >26.1 mV</td><td  >36.1 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>106% Load</strong></font></td><td  >23.1 mV</td><td  >12.5 mV</td><td  >27.4 mV</td><td  >35.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 1</strong></font></td><td  >12.3 mV</td><td  >12.9 mV</td><td  >20.9 mV</td><td  >13.1 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3LwYvBKHry4XeEURGkRtxb.png" alt="Ripple Graphs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xSDaiG8E8FosFyNmbQtKTc.png" alt="Ripple Graphs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zEtTTEP5boyZviYEHv587d.png" alt="Ripple Graphs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Bx6LxBNRnWjCk2xYZxYWad.png" alt="Ripple Graphs" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Ripple suppression is good on all major rails. The 5VSB rail registers higher than the competition, ripple. Still, it is way lower than 50mV, which is the limit. </p><h2 id="ripple-at-full-load-6">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cXpTUgZoYQXP2iwkbWjMJj.jpg" alt="Ripple 100" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EfDidDm5M2XiNbVyTRQ2nj.jpg" alt="Ripple 100" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6YGJ2ow88yLmosUreQypGk.jpg" alt="Ripple 100" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2mMySTVXS8P8jJKzTYiFkk.jpg" alt="Ripple 100" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-106-load">Ripple At 106% Load</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LdgsXywZGGDVZqRWbdaLN3.jpg" alt="Ripple 110" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uK5Sa7q6dFDq8arq39JUr3.jpg" alt="Ripple 110" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/skneZFfeHxqwLnJEWYwuL4.jpg" alt="Ripple 110" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zRZmR5Y6apaDd3GnGjKYp4.jpg" alt="Ripple 110" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-6">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7wHCkShU88oei5khjMQ7nA.jpg" alt="Ripple CL1" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SEZG8h3nqBsFUFTvGYajGB.jpg" alt="Ripple CL1" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MWQ8Q7q5MgMXbcY4Mp7NkB.jpg" alt="Ripple CL1" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BmryrmM3KCJRV2mXJonuFC.jpg" alt="Ripple CL1" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-peak-emi-detector-results">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2428px;"><p class="vanilla-image-block" style="padding-top:35.01%;"><img id="" name="emi.jpg" alt="EMI" src="https://cdn.mos.cms.futurecdn.net/2Zg4Hy8fVEHtRd3inuuhoK.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="2428" height="850" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/2Zg4Hy8fVEHtRd3inuuhoK.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>There are no EMI emissions issues, even with the Peak detector that we tried first, which is much faster than the Quasi-Peak detector. If we spotted any higher than the corresponding limit spur with the Peak detector, we would rerun the test with the QP detector to confirm if the spur indeed exceeds the limits. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-6">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="Overall Performance" src="https://cdn.mos.cms.futurecdn.net/MmKsJq8RqYK56MWhTgRSe.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/MmKsJq8RqYK56MWhTgRSe.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance needs boosting, to meet the competition from Corsair, Asus, Seasonic and Thermaltake. </p><h2 id="noise-rating-6">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="Average Noise" src="https://cdn.mos.cms.futurecdn.net/2AkCHkcW7X2gSVYbs9wHV8.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/2AkCHkcW7X2gSVYbs9wHV8.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Although powerful and with compact dimensions, it still manages to keep its average noise output low. </p><h2 id="efficiency-rating-6">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="Average Efficiency" src="https://cdn.mos.cms.futurecdn.net/XEbN4NJNNKqM8khzuS2y3K.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/XEbN4NJNNKqM8khzuS2y3K.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The average efficiency score is high enough to take the lead from several notable competitors. </p><h2 id="power-factor-rating-6">Power Factor Rating</h2><p>The following graph shows the PSU&apos;s average power factor reading throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 37 -37_Power_Factor_Comparison_115V.png" alt="Average PF" src="https://cdn.mos.cms.futurecdn.net/gh9kmzPiVgB5zJesTTLDaV.png" mos="" align="middle" fullscreen="" width="651" height="490" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The PFC converter performs quite well, with both 115V and 230V input. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>The strong points of the FSP Hydro PTM Pro 1200W are the high build quality, the large amount of provided cables and connectors, and its high capacity. The overall performance is satisfactory but it cannot match the competition. </p><p>In terms of overall efficiency and noise output, FSP&apos;s offering can compete and, in some cases, even take the lead from units like the Corsair HX1200, the <a href="https://www.tomshardware.com/reviews/asus-rog-thor-1200w-psu,5984.html">Asus Rog Thor 1200</a>, and the Thermaltake Toughpower PF1 ARGB 1200W. FSP has made a good platform for this unit. Still, it needs more tuning in several areas like load regulation and transient response to register higher overall performance, which will make it more competitive. </p><p>Moreover, in a modern PSU in the market for several years, we expected full compatibility with the newest ATX spec, demanding more than 70% efficiency with 2% load. There is also no Alternative Sleep Mode (ASM) support, so it won&apos;t utilize this feature once it becomes available. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="PSU quarter" src="https://cdn.mos.cms.futurecdn.net/gCe7aEvHYaBJroqD4wkXpa.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/gCe7aEvHYaBJroqD4wkXpa.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Currently, the FSP Hydro PTM Pro 1200W is sold for 270 dollars, so it is notably more expensive than other similar capacity offerings from Corsair, <a href="https://www.tomshardware.com/reviews/silverstone-strider-platinum-st1200-pt-psu,4849.html">SilverStone</a>, and <a href="https://www.tomshardware.com/reviews/thermaltake-toughpower-pf1-argb-1200w-power-supply">Thermaltake</a>. The <a href="https://www.tomshardware.com/reviews/corsair-hx1200-psu,5102.html">Corsair HX1200</a> might have 1% lower average efficiency, but it achieves higher overall performance, and it has a quieter operation. If you consider all the above and consider the lower price of the HX1200, it is tough to recommend the Hydro PTM Pro 1200W. </p><p>FSP should work on all issues that we highlighted or notably lower this product&apos;s price to make it competitive. This is a well-built platform, but it requires some changes and tuning to reach the competition&apos;s performance levels. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Thermaltake Toughpower PF1 750W Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/thermaltake-toughpower-pf1-750w-power-supply-review</link>
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                            <![CDATA[ The Thermaltake Toughpower PF1 750W is a power supply that's worthy of your money, with high performance and low noise output. ]]>
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                                                                        <pubDate>Sun, 25 Oct 2020 11:00:11 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:27:45 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Thermaltake Toughpower PF1 750W ]]></media:description>                                                            <media:text><![CDATA[Thermaltake Toughpower PF1 750W ]]></media:text>
                                <media:title type="plain"><![CDATA[Thermaltake Toughpower PF1 750W ]]></media:title>
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                                <p>The Thermaltake Toughpower PF1 750 power supply achieves high performance in almost all areas, and on top of that, it is highly efficient. Its overall performance score is high, but it cannot threaten units like the <a href="https://www.tomshardware.com/reviews/corsair-hx750i-80-plus-platinum-750w,3997.html">Corsair HX750</a> and the popular <a href="https://www.tomshardware.com/reviews/seasonic-focus-plus-platinum-750-psu,5556.html">Seasonic Focus Plus Platinum</a> with similar capacity. Nonetheless, when it comes to efficiency, the Thermaltake offering loses only to the more expensive Seasonic Prime Platinum, having a notable difference from the Focus Plus Platinum 750 and an even larger from the Corsair HX750. With a longer hold-up time and even lower ripple on the minor rails, the PF1 750 could earn a place in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best PSU picks</a>. </p><p>The Thermaltake Toughpower PF1 line consists of three units with capacities ranging from 650W to 850W. All are 80 PLUS Platinum certified. Cybenetics has also certified them as ETA-A (efficiency), LAMBDA-A, and LAMBDA-A- (noise output). In this review, we will take a look at the middle member of the family, the PF1 with 750W max power. Like all other PF1 models, it is fully modular and has super-compact dimensions, thanks to the 140mm depth. Lastly, it uses a hydraulic bearing fan, which can offer high airflow if required. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/snxvFjd3MEgy6TSbsiAay9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jWcVY86Lfm4SLudWyZEM5A.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C7rSTGFrba6hnn4mhWGEAA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gpsVrX4dfG7qiKweoiaxEA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SssouiXairKGSUkEuu5sKA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cVPSehrQBn8qyaQpQUK3RA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/voHR2C3h2G6crBjFRebMZA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UzgJYcxV2ndtV8pJyM7peA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EiVUtYEz8H6Wzg3CGx8VjA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UxnzTZHUFNjM95Fr3LsoqA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XUuyYgCLkPxRikT2cKh6uA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/43P69EsWSUWPsg4UTytswA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The OEM behind Thermaltake&apos;s PF1 models is HKC, which is mostly known for its affordable products. During our test sessions, we will determine whether HKC can meet the performance levels of the competition in this high-end category. It won&apos;t be easy since it has to face  strong competition, including the Seasonic Focus Plus Platinum,  Corsair HX750, FSP HPT750M Hydro, and other products. Nonetheless, it is always nice to see new products, and new manufacturers, in this category at least, enter the game. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KzLaaAQAuYVu39e93tNpAC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ur3U6aUhr4a74XjDy7ikFC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wh8PEy8uMmt96Wb9QpKcRC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GLT7cEijruN7c2GsGmhRZC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vc2dHyJ4NMkHkaQBwMhdeC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-7">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >      <p>HKC</p>    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>750W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      <p>80 PLUS Platinum, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      <p>LAMBDA-A- (25-30 dB[A])</p>    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      <p>✓ (Fully)</p>    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      ✓    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >     ✓</td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      120mm Hydraulic Bearing Fan  [TT-1225(XW12025MS)]    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✓ (selectable)</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>150 x 85 x 140mm</p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>1.24 kg (2.73 lb)</p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-7">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >62</td><td  >2.5</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  >100</td><td  >744</td><td  >12.5</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">750</td></tr></tbody></table></div><h2 id="cables-amp-connectors-6">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Modular Cables</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (600mm)</th><td  >1</td><td  >1</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (650mm)</th><td  >2</td><td  >2</td><td  >16AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (500mm+150mm) </th><td  >2</td><td  >4</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  >SATA (480mm+150mm+150mm)</th><td  >3</td><td  >9</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (480mm+150mm+150mm+150mm)</th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >FDD Adapter (+100mm)</th><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1400mm) -  C13 coupler</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>As expected, the PSU has enough connectors to deliver its full power effortlessly. The two EPS connectors, on dedicated cables, ensure compatibility with all high-end mainboards, and you also have four PCIe to power a pair of energy-hungry GPUs. With the release of Nvidia&apos;s RTX 3080, there is no need for SLI anymore, which is not even supported in this product, so that most users won&apos;t utilize the second pair of PCIe connectors.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mwym2hpp97iPaav6SxcraN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wjzqN6FYV7xpSshC5ZsAfN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FGF2rB82VAn4zd6wSfHfiN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kfqcrDwNe5yh9ngHZwHYmN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WTxesRSTyrvUbjcAWdNepN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UdvRGdavyZpjLCPHinQisN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y6fydu9LA4XjhEzvTvPouN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WQ62bVbxyYTvSgePydCkxN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The number of peripheral connectors is adequate, and the distance between them is long enough, at 150mm. Finally, there are no in-cable caps, which can make cable routing hard.</p><h2 id="component-analysis-7">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  ><kbd><span style="color: #ffffff; font-size: large;"><strong>General Data</strong></span></kbd></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >HKC</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><kbd><span style="color: #ffffff; font-size: large;"><strong>Primary Side</strong></span></kbd></td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >6x Y caps, 2x X caps, 2x CM chokes</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor 2.5D-15 (2.5Ohm) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  ><div align="center">2x  GBU1506L (600V, 15A @ 100°C)</div></td></tr><tr><td  >APFC MOSFETs</td><td  ><div align="center">2x NCE Power NCE65TF130F (650V, 18A @ 100°C, Rds(on): 0.13Ohm)</div></td></tr><tr><td  >APFC Boost Diode</td><td  ><div align="center">1x Global Power Technology G3S06510H (650V, 10A @ 120°C)</div></td></tr><tr><td  >Bulk Cap(s)</td><td  ><div align="center">2x Rubycon (420V, 330uF each or 660uF combined, 2,000h @ 105°C, MXH)</div></td></tr><tr><td  >Main Switchers</td><td  ><div align="center">2x NCE Power NCE65TF130F (650V, 18A @ 100°C, Rds(on): 0.13Ohm)</div></td></tr><tr><td  >APFC Controller</td><td  ><div align="center">Champion CM6500UNX</div></td></tr><tr><td  >Resonant Controller</td><td  >Champion CM6901X</td></tr><tr><td  >Topology</td><td  ><div align="center">Primary side: APFC, Half-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</div></td></tr><tr><td  ><kbd><span style="color: #ffffff; font-size: large;"><strong>Secondary Side</strong></span></kbd></td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >6x Advanced Power AP4N1R8CMT-A (45V, 32A @ 70°C, Rds(on): 1.8mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 4x Advanced Power AP4024GEMT (30V, 20.9A @ 70°C, Rds(on): 4.5mOhm)<br> PWM Controllers: 2x ANPEC APW7164</td></tr><tr><td  >Filtering Capacitors</td><td  ><p>Electrolytic: 1x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 5x Nippon Chemi-Con (1-5,000h @ 105°C, KZE)<br> Polymer: 21x NIC</p></td></tr><tr><td  >Supervisor IC</td><td  >Sitronix ST9S313-DAG (OVP, UVP, SCP)</td></tr><tr><td  >Fan Model</td><td  >Thermaltake (120mm, 12V, 0.30A, Hydraulic Bearing Fan)</td></tr><tr><td  ><kbd><span style="color: #ffffff; font-size: large;"><strong>5VSB Circuit</strong></span></kbd></td><td  >-</td></tr><tr><td  >Rectifier</td><td  ><div align="center">1x SB1045L SBR (45V, 10A)</div></td></tr><tr><td  >Standby PWM Controller</td><td  >Excelliance MOS Corporation EM8564A</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ckLJAU2sPJ2jokyjuLkfZ3.jpg" alt="" /><figcaption><small role="credit">Thermaltake TTP-750AH2FKP</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9ukh7QoADTxPJjhRgyfV44.jpg" alt="" /><figcaption><small role="credit">Thermaltake TTP-750AH2FKP</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8aPfW6jPfhF6QLCtj6aN94.jpg" alt="" /><figcaption><small role="credit">Thermaltake TTP-750AH2FKP</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jBjFbdeCDH3nKJxMkiixE4.jpg" alt="" /><figcaption><small role="credit">Thermaltake TTP-750AH2FKP</small></figcaption></figure></figure><p>We don&apos;t often see HKC products, especially in the high-end categories. It is always interesting to see new designs. Thermaltake was smart enough to go to a less known OEM for this product line, achieving two things: lower production cost and the ability to offer something different from the competition, mostly based on Seasonic and CWT designs.</p><p>Build quality is pretty good, although HKC avoided using expensive FETs (e.g., Infineon ones) on the primary side, to keep the cost low. On the contrary, it used quality filtering caps, including many polymer ones, and an HDB fan. This is why they didn&apos;t have a problem providing an extra-long, ten-year warranty to match the competition&apos;s offerings.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4oV4M6V6YSfUg5LwtYZPhh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FddtcTvcxq4GLbK3fUnhsh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nYWWRtCrJtdncP5kuRTH7i.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UtiZwTFXizTrZAannnSAMi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>As usual, we find a two-stage transient/EMI filter. It has more than enough X and Y caps and two CM chokes, but it lacks a DM choke. It doesn&apos;t have an MOV, either, which is a great shame since this inexpensive part protects against voltage surges.</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="NTC_thermistor_&_Relay.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/TQbmXiHAHpw2mSRbEixyif.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>An NTC thermistor, supported by a bypass relay, suppress large inrush currents. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ecwL6f3sneoY3SPBHVRDV3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/v48F5rEgGwyeQMrVPSW6n3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The pair of bridge rectifiers can handle up to 30A of current, so it will easily meet this PSU&apos;s requirements.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BUNU3FMYzANjuPzdJf4bpM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KSePzjaVyo4xDozw4s8vCN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vLmWYVU2F3LqF2D4pQEUcN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Pr4QK9M9swtDSAkuNkiUxN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5S3UTGctdwX5B8jZgJDhEP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>In the APFC converter, we find two NCE Power FETs and a single, powerful (10A max current output) boost diode. The bulk caps are by Rubycon, and their combined capacity reaches 660uF.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JGkqdZnBCKS2LjcaGL67Li.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DRJkY3YY4eJLdKFje5xtji.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GiJbbYaZvxX68a6oV3oR4j.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5WPoCk7H4npwi3k8QkNYWj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main FETs are arranged in a half-bridge topology. An LLC resonant converter is used to boost efficiency, and its controller is a Champion CM6901X IC, which also controls the switching rate of the +12V FETs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jgGDCVMzJkATk2sBMeA5zA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xrWKNttvixKTqCfcSqQQYB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Six FETs, provided by Advanced Power Electronics, regulate the +12V rail, while the minor rails are generated through a pair of DC-DC converters. The latter use four FETs in total and two Anpec PWM controllers.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UPcKYJcKsfj6Pb3Mvxk9RZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cj5PNWvLjsxpGp2pKmzPsZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/truGU4PW4b8hMrpVjGR8Ca.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sAJctbH6KY9DfcKp6FCVda.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The filtering capacitors are of good quality, and besides electrolytic caps, HKC also used a large number of polymer caps, which are tolerant to high operating temperatures.</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="modular_front.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/afSp6VF5GPBMddirkQfoXm.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>At the face of the modular board, we find eleven polymer caps, forming an additional ripple filtering layer.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/VPbmoTLELTRg5Q64GnD999.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RnzBJCUb4TaF25nL3r5Qp9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YLjBX9m5iFKYpYRT2mrq6A.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There is not much to see on the backside of the main PCB, since all components are on the top side.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QwUHCJwj4kMhKhDe4DazQP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nDCBPkwW3rACDpMvpMqfdP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9gRkMJUbDtUSuDD8DTDYwP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB circuit uses an Excelliance MOS controller and on its secondary side, a Schottky barrier diode (SBR) regulated the rail. </p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="surpervisor_ICs.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/3tMDQuNAXyxCiBBQVB3Spe.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The supervisor IC is a Sitronix ST9S313-DAG, supporting only the fundamental protection features. All the rest are provided through external circuits that communicate with the IC mentioned above.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HQ24N4H4pLnN5zMrMwgXc3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8Gm8zUwguFF97QithNwo24.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>A smaller fan had to be used because of the PSU&apos;s compact dimensions. It uses a hydraulic bearing so it will have a long life, as long as you don&apos;t expose it to higher than 40 degrees Celsius operating temperatures for prolonged periods.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="e3736baf-5222-40ad-ab22-bc7ea856f897">            <a 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class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM750</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="ad78016b-4b49-4c7b-84f6-2941fba87aef">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https%3A%2F%2Fwww.newegg.com%2FProduct%2FProduct.aspx%3Fitem%3DN82E16817139233" data-model-name="Corsair RM750x" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/Cvh7Sj5RUu8U4E6YXhDhn7.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM750x V2</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-7">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Cj5mM9NrL9daxiwUSCGNtD.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ureJ5kDanJEyBafmCRmYxD.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ca478P29NBapacCVdJPj2E.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XR2hvzy8W8f6CuZK4tGhBE.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QbgfUiZcwTi28dzUkqq5NE.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2pShYmvdd8YL7rLeXRHuQE.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LGtcScXDsHHC6rwG37YgXE.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mFDp9w8TZ8JDxphckeaPbE.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is tight on all rails, but 5VSB where it doesn&apos;t matter so much. </p><h2 id="hold-up-time-7">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2SrBKfJ3EtXmuCgYnhXtRL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KZP7L9X239Yaf46NYCaJcL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/S9oyMXUSAAUVWjcAVcohfL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3XdGiR3RUsBYKhj7JaNvjL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y6NaaNHTXQzfJ7S73XL7oL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xPAupjLiFi24tVicmK6LsL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j9DdP3MNNdPGKiCgaVPmFM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is longer than 17ms and the power ok signal is accurate, so everything is good here. One small detail is that the delay period should be 1ms, at least. </p><h2 id="inrush-current-7">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HvWqQrG3qGbKavbJVc24BU.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wvUanwdnsR3X7Yq8i9ZPEU.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current is at normal levels with both voltage inputs. </p><h2 id="leakage-current-7">Leakage Current</h2><p>In layman&apos;s terms, leakage current is the unwanted transfer of energy from one circuit to another. In power supplies, it is the current flowing from the primary side to the ground or the chassis, which in the majority of cases is connected to the ground. For measuring leakage current, we use a <a href="https://www.gwinstek.com/en-global/products/detail/GPT-9900">GW Instek GPT-9904</a> electrical safety tester instrument.</p><p>The leakage current test is conducted at 110% of the DUT&apos;s rated voltage input (so for a 230-240V device, we should conduct the test with 253-264V input). The maximum acceptable limit of a leakage current is 3.5 mA and it is defined by the IEC-60950-1 regulation, ensuring that the current is low and will not harm any person coming in contact with the power supply&apos;s chassis.</p><p><br></p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 14b -27b_Leakage_Current_Comparison_230V.png" alt="" src="https://cdn.mos.cms.futurecdn.net/kBaXm23JNNEohFXnfYwTxi.png" mos="" align="middle" fullscreen="" width="651" height="490" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Low enough leakage current. </p><h2 id="10-110-load-tests-6">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>4.419A</strong></td><td  ><strong>1.967A</strong></td><td  ><strong>1.973A</strong></td><td  ><strong>0.982A</strong></td><td  >74.973</td><td  >88.331%</td><td  >0</td><td  ><6.0</td><td  > 44.60°C</td><td  >0.953</td></tr><tr><td  >12.078V</td><td  >5.085V</td><td  >3.343V</td><td  >5.093V</td><td  >84.877</td><td  > 40.00°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>9.861A</strong></td><td  ><strong>2.951A</strong></td><td  ><strong>2.965A</strong></td><td  ><strong>1.182A</strong></td><td  >150.052</td><td  >91.314%</td><td  >0</td><td  ><6.0</td><td  > 45.77°C</td><td  >0.974</td></tr><tr><td  >12.083V</td><td  >5.084V</td><td  >3.339V</td><td  >5.075V</td><td  >164.326</td><td  > 40.75°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>15.639A</strong></td><td  ><strong>3.443A</strong></td><td  ><strong>3.461A</strong></td><td  ><strong>1.384A</strong></td><td  >225.064</td><td  >92.257%</td><td  >0</td><td  ><6.0</td><td  > 47.37°C</td><td  >0.985</td></tr><tr><td  >12.086V</td><td  >5.083V</td><td  >3.337V</td><td  >5.059V</td><td  >243.952</td><td  > 41.60°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>21.410A</strong></td><td  ><strong>3.938A</strong></td><td  ><strong>3.962A</strong></td><td  ><strong>1.587A</strong></td><td  >300.087</td><td  >92.369%</td><td  >559</td><td  ><6.0</td><td  > 41.66°C</td><td  >0.990</td></tr><tr><td  >12.091V</td><td  >5.081V</td><td  >3.334V</td><td  >5.041V</td><td  >324.880</td><td  > 48.43°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>26.803A</strong></td><td  ><strong>4.925A</strong></td><td  ><strong>4.956A</strong></td><td  ><strong>1.792A</strong></td><td  >374.750</td><td  >91.857%</td><td  >582</td><td  ><6.0</td><td  > 42.04°C</td><td  >0.993</td></tr><tr><td  >12.097V</td><td  >5.078V</td><td  >3.330V</td><td  >5.023V</td><td  >407.970</td><td  > 49.55°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>32.206A</strong></td><td  ><strong>5.911A</strong></td><td  ><strong>5.954A</strong></td><td  ><strong>1.999A</strong></td><td  >449.669</td><td  >91.477%</td><td  >835</td><td  >17.3</td><td  > 42.17°C</td><td  >0.995</td></tr><tr><td  >12.105V</td><td  >5.077V</td><td  >3.326V</td><td  >5.004V</td><td  >491.565</td><td  > 50.95°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>7</strong></font></td><td  ><strong>37.640A</strong></td><td  ><strong>6.898A</strong></td><td  ><strong>6.959A</strong></td><td  ><strong>2.208A</strong></td><td  >524.990</td><td  >90.945%</td><td  >966</td><td  >22.5</td><td  > 43.49°C</td><td  >0.995</td></tr><tr><td  >12.111V</td><td  >5.076V</td><td  >3.321V</td><td  >4.985V</td><td  >577.260</td><td  > 52.73°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>8</strong></font></td><td  ><strong>43.097A</strong></td><td  ><strong>7.888A</strong></td><td  ><strong>7.958A</strong></td><td  ><strong>2.418A</strong></td><td  >600.306</td><td  >90.248%</td><td  >1059</td><td  >25.6</td><td  > 43.64°C</td><td  >0.996</td></tr><tr><td  >12.109V</td><td  >5.074V</td><td  >3.319V</td><td  >4.966V</td><td  >665.172</td><td  > 53.49°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>9</strong></font></td><td  ><strong>48.922A</strong></td><td  ><strong>8.384A</strong></td><td  ><strong>8.445A</strong></td><td  ><strong>2.422A</strong></td><td  >674.838</td><td  >89.666%</td><td  >1574</td><td  >37.6</td><td  > 44.80°C</td><td  >0.996</td></tr><tr><td  >12.107V</td><td  >5.072V</td><td  >3.317V</td><td  >4.956V</td><td  >752.612</td><td  > 55.27°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>10</strong></font></td><td  ><strong>54.716A</strong></td><td  ><strong>8.880A</strong></td><td  ><strong>8.964A</strong></td><td  ><strong>2.530A</strong></td><td  >749.951</td><td  >88.962%</td><td  >1808</td><td  >41.3</td><td  > 45.91°C</td><td  >0.997</td></tr><tr><td  >12.112V</td><td  >5.070V</td><td  >3.314V</td><td  >4.942V</td><td  >843.003</td><td  > 57.19°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>11</strong></font></td><td  ><strong>60.912A</strong></td><td  ><strong>8.880A</strong></td><td  ><strong>8.968A</strong></td><td  ><strong>2.535A</strong></td><td  >825.177</td><td  >88.178%</td><td  >2168</td><td  >46.2</td><td  > 46.64°C</td><td  >0.997</td></tr><tr><td  >12.115V</td><td  >5.069V</td><td  >3.313V</td><td  >4.933V</td><td  >935.805</td><td  > 58.31°C</td><td  >115.10V</td></tr><tr><td  ><font><strong>CL1</strong></font></td><td  ><strong>0.101A</strong></td><td  ><strong>12.004A</strong></td><td  ><strong>11.999A</strong></td><td  ><strong>0.000A</strong></td><td  >102.078</td><td  >85.683%</td><td  >592 </td><td  >6.5</td><td  > 41.91°C</td><td  >0.967</td></tr><tr><td  >12.123V</td><td  >5.081V</td><td  >3.322V</td><td  >5.110V</td><td  >119.135</td><td  > 49.52°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>CL2</strong></font></td><td  ><strong>62.022A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  >764.762</td><td  >89.507%</td><td  >1804 </td><td  >41.1</td><td  > 45.55°C</td><td  >0.997</td></tr><tr><td  >12.114V</td><td  >5.076V</td><td  >3.333V</td><td  >5.018V</td><td  >854.418</td><td  > 57.05°C</td><td  >115.10V</td></tr></tbody></table></div><p>The PSU can deliver full power at high temperatures for prolonged periods, without any problems. We had to overload the power supply, to force its fan spin at full speed.</p><h2 id="20-80w-load-tests-7">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>1.231A</strong></td><td  ><strong>0.492A</strong></td><td  ><strong>0.493A</strong></td><td  ><strong>0.195A</strong></td><td  >19.998</td><td  >75.116%</td><td  >0</td><td  ><6.0</td><td  >0.716</td></tr><tr><td  >12.060V</td><td  >5.085V</td><td  >3.346V</td><td  >5.133V</td><td  >26.623</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>2.461A</strong></td><td  ><strong>0.983A</strong></td><td  ><strong>0.985A</strong></td><td  ><strong>0.391A</strong></td><td  >39.989</td><td  >83.661%</td><td  >0</td><td  ><6.0</td><td  >0.872</td></tr><tr><td  >12.065V</td><td  >5.085V</td><td  >3.345V</td><td  >5.123V</td><td  >47.799</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>3.693A</strong></td><td  ><strong>1.475A</strong></td><td  ><strong>1.481A</strong></td><td  ><strong>0.587A</strong></td><td  >60.020</td><td  >86.965%</td><td  >0</td><td  ><6.0</td><td  >0.932</td></tr><tr><td  >12.068V</td><td  >5.085V</td><td  >3.344V</td><td  >5.112V</td><td  >69.016</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>4.918A</strong></td><td  ><strong>1.967A</strong></td><td  ><strong>1.973A</strong></td><td  ><strong>0.784A</strong></td><td  >79.972</td><td  >89.160%</td><td  >0</td><td  ><6.0</td><td  >0.963</td></tr><tr><td  >12.073V</td><td  >5.085V</td><td  >3.343V</td><td  >5.101V</td><td  >89.695</td><td  >115.13V</td></tr></tbody></table></div><p>It has high efficiency and silent operation, under light loads, even at high ambient temperatures. </p><h2 id="2-or-10w-load-test-7">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec requires 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>1.088A</strong></td><td  ><strong>0.212A</strong></td><td  ><strong>0.211A</strong></td><td  ><strong>0.044A</strong></td><td  >15.112</td><td  >71.384%</td><td  >0</td><td  ><6.0</td><td  >0.658</td></tr><tr><td  >12.042V</td><td  >5.084V</td><td  >3.346V</td><td  >5.141V</td><td  >21.170</td><td  >115.13V</td></tr></tbody></table></div><p>Impressive efficiency with 2% load.</p><h2 id="efficiency-amp-power-factor-6">Efficiency & Power Factor</h2><p>Next, we plotted a chart showing the PSU’s efficiency at low loads, and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills. The same goes for Power Factor.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pFtNzFZ7GtKk2mJZ9K33uY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Xmo9TyGCMzxjEgc9ML2AxY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RdVMonP84yJPVFGdFsZj3Z.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/34DqqauZ92E9eSzyxEis6Z.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fJjGeAt99jz4Ycr9LQzxCZ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jmUgjbSkuMfZY2ktKE3bN4.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>This is a highly efficient platform, especially with 230V input. As you can see in the charts above, the PSU scores high in every load segment.</p><p>The Power Factor readings are high enough with 115V but not as high with 230V. HKC has to tune the APFC converter to make it more efficient.</p><h2 id="5vsb-efficiency-7">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.514</td><td  >75.256%</td><td  >0.076</td></tr><tr><td  >5.141V</td><td  >0.683</td><td  >115.13V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.284</td><td  >79.505%</td><td  >0.163</td></tr><tr><td  >5.135V</td><td  >1.615</td><td  >115.13V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.819</td><td  >80.936%</td><td  >0.274</td></tr><tr><td  >5.124V</td><td  >3.483</td><td  >115.13V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.108</td><td  >81.325%</td><td  >0.354</td></tr><tr><td  >5.107V</td><td  >6.281</td><td  >115.13V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.632</td><td  >80.925%</td><td  >0.399</td></tr><tr><td  >5.087V</td><td  >9.431</td><td  >115.13V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>2.500A</strong></td><td  >12.622</td><td  >79.244%</td><td  >0.444</td></tr><tr><td  >5.048V</td><td  >15.928</td><td  >115.13V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/iQfV3sR58PxGEYsKiswkBn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bTztRxfG54gmfTV8FpiXFn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iQfV3sR58PxGEYsKiswkBn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bTztRxfG54gmfTV8FpiXFn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail is highly efficient, but FSP did a fantastic job in its power supply, leaving the competition far behind in this performance metric, at least.</p><h2 id="power-consumption-in-idle-and-standby-7">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>Idle</strong></font></td><td  >12.020V</td><td  >5.080V</td><td  >3.345V</td><td  >5.144V</td><td  >5.433</td><td  >0.315</td></tr><tr><td  >115.1V</td></tr><tr><td  ><font><strong>Standby</strong></font></td><td  >0.056</td><td  >0.006</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MaQHXZ2Zbmt3xKxyGcVXGF.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vhLKwuq8K9Wc4pkaZovHMF.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Vampire power consumption is low with both voltage inputs. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-7">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1017px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/fGKxKrod6AEZW2UZrxzD4J.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="1017" height="767" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/fGKxKrod6AEZW2UZrxzD4J.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1017px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/Sb7snbGPhJooaGNvyVFZuL.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="1017" height="767" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Sb7snbGPhJooaGNvyVFZuL.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile is relaxed, even under high operating temperatures. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/stDWcE5LfFhddWyEchhxP6.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/stDWcE5LfFhddWyEchhxP6.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/DNVnxGxcgGLRHV4Av6bfSB.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/DNVnxGxcgGLRHV4Av6bfSB.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Given the relaxed fan speed profile, we expected even lower fan speeds at normal operating temperatures. Not that this is a loud power supply, but it would be nice to see an even lower average noise output, as long as it doesn&apos;t compromise the product&apos;s reliability.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-7">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  ><p align="center" style="text-align:center"><strong><span style="font-size:13.5pt;font-family:"Courier New";color:white">Protection          Features</span></strong></p></td><td  ></td></tr><tr><td  ><p align="center" style="text-align:center">OCP</p></td><td  ><p align="center" style="text-align:center">12V: 84.6A (136.45%), 12.070V<br>          5V: 27.5A (137.5%), 5.063V<br>          3.3V: 30.6A (153%), 3.334V<br>          5VSB: 5.3A (212%), 4.803V</p></td></tr><tr><td  ><p align="center" style="text-align:center">OPP</p></td><td  ><p align="center" style="text-align:center">1024.34W (136.58%)</p></td></tr><tr><td  ><p align="center" style="text-align:center">OTP</p></td><td  ><p align="center" style="text-align:center">✓ (100°C @ secondary side)</p></td></tr><tr><td  ><p align="center" style="text-align:center">SCP</p></td><td  ><p align="center" style="text-align:center">      12V to Earth: ✓<br>          5V to Earth: ✓<br>          3.3V to Earth: ✓<br>          5VSB to Earth: ✓<br>          -12V to Earth: ✓<br>          <br>            </p>  </td></tr><tr><td  ><p align="center" style="text-align:center">PWR_OK</p></td><td  ><p align="center" style="text-align:center"> Accurate (but <1ms delay)</p></td></tr><tr><td  ><p align="center" style="text-align:center">NLO</p></td><td  ><p align="center" style="text-align:center">✓</p></td></tr><tr><td  ><p align="center" style="text-align:center">SIP</p></td><td  ><p align="center" style="text-align:center">Surge: -<br>          Inrush: NTC Thermistor & Bypass relay</p></td></tr></tbody></table></div><p>OCP is high at +12V and 5V, but it doesn&apos;t create any problems to the respective rails.  The 3.3V rail can also handle the high OCP triggering point, but it is insane to allow for so high amperage on this rail, which is only lightly used. </p><p>The PSU shuts down at a relatively low temperature, on the secondary heat sink, but we didn&apos;t encounter any issues during our test sessions. Finally, it is a shame that there is no surge protection. </p><h2 id="dc-power-sequencing-7">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/t8sFkqEUz3mTftRpRfvjak.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y2ZmFRSjfrQeGUiCUB2tek.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VbSbpRv8spLNH6yJ3vfuhk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail is lower than the other two in all cases, as the ATX spec requires. </p><h2 id="cross-load-tests-7">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-7">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8XAUyuL8qoiXiGccbaU7nE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rCGp6PvD4MMGgkGAZpbQrE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HF6WzW2MJrg6MBSFLathvE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-2">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/PxuWGYXCmDH4iNw6WDwYSH.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/PxuWGYXCmDH4iNw6WDwYSH.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-2">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qjvV8f6StEGAgPpDHGkxwL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M79WY5RvBwJH9LbyEXSr2M.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/btizjyXCE3KncGCJtoNd5M.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wyJMD7sBkV8dz3c43KYW8M.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-7">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TG2ex9tjVDxz8zV4Pui4Ld.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LTFWUb82GnmqZqkrRGzBRd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Xe7wBBAGdCHeFS9Atc6fVd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eoB6sHMYyvdaJ6DZYih8ad.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7khELZ9XpU8RTfeVJsURed.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hottest part is the vertical metallic bar right next to the +12V FETs, which is dead close to the filtering capacitors on the secondary side. This won&apos;t be a significant issue, though, because the airflow in this area is unobstructed.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-7">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-7">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.025V</td><td  >11.845V</td><td  >1.50%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.080V</td><td  >4.993V</td><td  >1.71%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.336V</td><td  >3.216V</td><td  >3.60%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.077V</td><td  >5.030V</td><td  >0.93%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-7">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.030V</td><td  >11.673V</td><td  >2.97%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.080V</td><td  >4.995V</td><td  >1.67%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.337V</td><td  >3.219V</td><td  >3.54%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.077V</td><td  >5.013V</td><td  >1.26%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-7">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.033V</td><td  >11.495V</td><td  >4.47%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.080V</td><td  >5.000V</td><td  >1.57%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.337V</td><td  >3.221V</td><td  >3.48%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.076V</td><td  >5.036V</td><td  >0.79%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-7">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.023V</td><td  >11.847V</td><td  >1.46%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.073V</td><td  >4.987V</td><td  >1.70%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.327V</td><td  >3.200V</td><td  >3.82%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.026V</td><td  >4.974V</td><td  >1.03%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-7">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.029V</td><td  >11.838V</td><td  >1.59%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.074V</td><td  >4.981V</td><td  >1.83%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.327V</td><td  >3.202V</td><td  >3.76%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.026V</td><td  >4.974V</td><td  >1.03%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-7">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.032V</td><td  >11.800V</td><td  >1.93%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.074V</td><td  >4.988V</td><td  >1.69%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.327V</td><td  >3.203V</td><td  >3.73%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.025V</td><td  >4.953V</td><td  >1.43%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wVfHvVRQg3VMHkvCwMhQGL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/d4MWzf8wijR5Wmuf89tcKL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aNcH9PtcbyquXC8rBrtfVL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hnw9fP5DTxDxcGiTaQZXYL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LFWsjwiGgQdKfpzk7L22dL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mTheUbMixYaUmvgxWEESgL.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9uPR6mRbr7ZhUuSK5uLaTM.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pRyqcqiQRGBTTQjss6T3YM.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We would like to see lower deviations at +12V with 100Hz and 1000Hz load repetition rates, with 20% starting load. At the higher starting load level, which is 50%, voltage drops at +12V are in control, since the primary switching FETs operate in FM mode.</p><h2 id="turn-on-transient-tests-7">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2EbkYF7FpxwyUHGVVwpnJT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yvZovuadK3TV5MiHvXnWMT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sS6RxLztLZo6TrgwenWCRT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Very good results here. </p><h2 id="power-supply-timing-tests-7">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >82ms</td><td  >278ms</td></tr><tr><th  ><strong>100%</strong></th><td  >82ms</td><td  >292ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode, which is recommended by the ATX spec. Although this is not a major problem, since there are no compatible mainboards, yet, still it would be nice to provide ASM compatibility.</p><h2 id="ripple-measurements-7">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU&apos;s DC rails. This phenomenon significantly decreases the capacitors&apos; lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap&apos;s useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>10% Load</strong></font></td><td  >11.7 mV</td><td  >11.5 mV</td><td  >15.0 mV</td><td  >4.2 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>20% Load</strong></font></td><td  >12.3 mV</td><td  >11.8 mV</td><td  >14.5 mV</td><td  >4.9 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>30% Load</strong></font></td><td  >12.8 mV</td><td  >12.6 mV</td><td  >15.0 mV</td><td  >5.8 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>40% Load</strong></font></td><td  >15.8 mV</td><td  >13.4 mV</td><td  >15.2 mV</td><td  >6.9 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>50% Load</strong></font></td><td  >15.2 mV</td><td  >14.7 mV</td><td  >18.2 mV</td><td  >8.2 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>60% Load</strong></font></td><td  >16.1 mV</td><td  >16.9 mV</td><td  >18.0 mV</td><td  >10.1 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>70% Load</strong></font></td><td  >16.3 mV</td><td  >17.9 mV</td><td  >19.0 mV</td><td  >10.9 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>80% Load</strong></font></td><td  >16.9 mV</td><td  >18.1 mV</td><td  >17.4 mV</td><td  >12.0 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>90% Load</strong></font></td><td  >17.6 mV</td><td  >20.1 mV</td><td  >19.4 mV</td><td  >11.8 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>100% Load</strong></font></td><td  >23.8 mV</td><td  >23.1 mV</td><td  >21.4 mV</td><td  >13.7 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>110% Load</strong></font></td><td  >24.7 mV</td><td  >24.7 mV</td><td  >23.2 mV</td><td  >15.0 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 1</strong></font></td><td  >16.5 mV</td><td  >15.0 mV</td><td  >19.7 mV</td><td  >6.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 2</strong></font></td><td  >23.5 mV</td><td  >22.1 mV</td><td  >19.8 mV</td><td  >11.1 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FJS8qEYcQorKJL5zwemv6G.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AjZvWH7qHs4JzWUnAG9pBG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ueVy2TspfSqkWqLtQXbWFG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b4teSMSYCZaofXj3kfjRJG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Ripple suppression is not the best we have seen, especially on the minor rails, but this doesn&apos;t mean that it isn&apos;t at good enough levels. It is just that the competition, from CWT and Seasonic mostly, set the bar too high in this metric. </p><h2 id="ripple-at-full-load-7">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GSTh9Ke7CBAgeaTjhRz757.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mHrX7zFFHqeCTLHPSh8un7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hYH59h4BCrKHB56ocmMCM8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VraXBDee8pKwCBof2Fcit8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-6">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/x3AX7bbdiE2MpmG7sZmNvF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nDeF8PUF2CCVEpYSH4LGbG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gDJPFp9kbibcWouPnMV5HH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZwRib9nFmkm7umB6SuhVtH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-7">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/tywJ3hBNm2bnVoY2WPJTsP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/t73Z2yqA8etNKFmk22m3aQ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZF9qJ8kwuePxTgJ4RgX99R.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kXourbhSpzT5DdytxaFedR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-2">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3JCeuGmBtdriXjX9zAryuX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BBKxF6XPqbpbaAGpsyCtTY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hyHpXHhQRgob9xQ8w8SWvY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YSzteR2UsKhTBVKe4gwHQZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-5">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1740px;"><p class="vanilla-image-block" style="padding-top:35.63%;"><img id="" name="EMI.png" alt="" src="https://cdn.mos.cms.futurecdn.net/iw3Rtq6EJR6a6UG5AEUtmh.png" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1740" height="620" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/iw3Rtq6EJR6a6UG5AEUtmh.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>There are several high EMI spurs, below 1MHz. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-7">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1017px;"><p class="vanilla-image-block" style="padding-top:75.32%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/v7kdXuVM3bapRcgQTcgbL6.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="1017" height="766" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/v7kdXuVM3bapRcgQTcgbL6.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>With a bit better ripple suppression on the minor rails, the overall performance would be even higher. </p><h2 id="noise-rating-7">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1018px;"><p class="vanilla-image-block" style="padding-top:75.15%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/AUAC3G9uq4c3kGYtk4gprA.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="1018" height="765" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/AUAC3G9uq4c3kGYtk4gprA.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>It has low overall noise output, but is not even close to the levels that the Corsair RM850x and the similar-capacity Seasonic Focus Platinum, achieve. </p><h2 id="efficiency-rating-7">Efficiency Rating</h2><p>The following graph shows the PSU&apos;s average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1021px;"><p class="vanilla-image-block" style="padding-top:75.02%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/9vWiYTijKcU9aRDPkVrtWE.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="1021" height="766" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/9vWiYTijKcU9aRDPkVrtWE.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>It comes in second place here, showing this platform&apos;s potential. </p><h2 id="power-factor-rating-7">Power Factor Rating</h2><p>The following graph shows the PSU&apos;s average power factor reading throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1017px;"><p class="vanilla-image-block" style="padding-top:75.22%;"><img id="" name="Result 76 -37_Power_Factor_Comparison.png" alt="PF Rating Chart" src="https://cdn.mos.cms.futurecdn.net/nYnpKmDbXbcVU3EiWK3qXU.png" mos="" align="middle" fullscreen="" width="1017" height="765" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The APFC converter needs tuning, to achieve higher performance. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>Thermaltake&apos;s gamble on choosing HKC to fight with respected OEMs like CWT and Seasonic seems to pay off. The Toughpower PF1 with 750W max power meets the competition eye-to-eye, achieving high overall performance in almost every aspect. It would be nice to see better transient response at +12V with a 20% starting load, but at higher loads, voltage drops on the same rail are not that high. </p><p>The APFC converter needs tuning as well, to become more efficient. On the other hand, the platform&apos;s efficiency is high, especially with light loads, load regulation is tight on all primary rails, and ripple suppression might not be top-notch, on the minor rails mostly, but it is fully satisfactory.</p><p>In the next revision of this model, I expect to see a MOV in the transient filtering stage and lower OCP triggering points, especially on the minor rails and 5VSB. There is no point in allowing for such high amperage at 3.3V. On the other hand, the 5V rail can take a high load if the system has lots of RGB LED strips installed. It would be much better if all LED lighting peripherals utilized the 12V rail.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/etzWozHxnNpoZptcvHrVVT.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/etzWozHxnNpoZptcvHrVVT.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>With a fair pricing scheme, the Toughpower PF1 750 will meet the tough competition in this category from Seasonic (Focus Plus Platinum), Corsair (HX750), and other brands. It achieves high performance, it is quiet, and an extended warranty backs it up, while its build quality is pretty good.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ NZXT C Series 750W Power Supply Review  ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/nzxt-c750-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ The NZXT C750 offers good performance, but its fan speed profile could be more relaxed. ]]>
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                                                                        <pubDate>Sat, 29 Aug 2020 10:00:50 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 09:48:16 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[NZXT]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[NZXT C750]]></media:description>                                                            <media:text><![CDATA[NZXT C750]]></media:text>
                                <media:title type="plain"><![CDATA[NZXT C750]]></media:title>
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                                <p>The NZXT C750 is an 80 Plus Gold certified power supply with ETA-A and LAMBDA-S efficiency and noise certifications, from Cybenetics. While it isn&apos;t among the quietest 750W power supplies, with up to 450W loads, it won&apos;t bother users who are sensitive to noise. Nonetheless, the <a href="https://www.tomshardware.com/reviews/corsair-rm750x-v2-psu,5585.html">Corsair RM750x</a> and <a href="https://www.tomshardware.com/reviews/corsair-rm750-power-supply,6172.html">RM750</a>, the <a href="https://www.tomshardware.com/reviews/asus-rog-strix-750w-power-supply-review">Asus ROG Strix 750</a>, and the <a href="https://www.tomshardware.com/reviews/xpg-core-reactor-750w-power-supply-review">XPG Core Reactor 750</a> are more suitable choices for users that set low noise output as priority one. The overall performance is about the same as the <a href="https://www.tomshardware.com/reviews/seasonic-ssr-750fx-focus-plus-750-gold-psu,5206.html">Seasonic Focus Plus Gold 750</a>, so it is pretty high. But this is a tough category, so the C750 cannot claim a top place in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best power supplies</a>.</p><p> NZXT&apos;s C750 is the middle of the C series lineup. We have already evaluated the <a href="https://www.tomshardware.com/reviews/nzxt-c-series-850w-power-supply-review">C850</a> and the <a href="https://www.tomshardware.com/reviews/nzxt-c650-power-supply-review">C650</a>, so we had to take a look at the C750 since the 750W category is highly popular among users, because it offers enough power to build a potent gaming system equipped with 8-core Intel or 12-core AMD processors and Nvidia RTX2070/2080 or AMD 5700XT graphics cards. If you plan on using more than one high-end graphics cards, then you should look for a stronger power supply with 1000W capacity, at least, just to be sure that you won&apos;t have any power issues. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/G7fSzxbb3CU8LftQ8e2upW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Bj5koGFN6GHTZF8dJwGt8X.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gpV53BXGfnA6gYYSnMTeVX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8fw5WjikUPbv9EUc55JrtX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/znG9dxk34RfcotebHmK4GY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yUJqMJZrv6hZsL58HeXWWY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y44o87DsDAhygD2Ug7XGuY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YAfuczznmVzaziephcDMHZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cHcM2cQgYkTEGUETEzt6kZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hy6fkD2cVmTVVfNki4ju7a.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dTh73hXbD5bYgwJjFa4naa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jExgaV5qppp8Gjym8beqsa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Like its siblings, the C750 uses the same platform as the Seasonic Focus Plus Gold, so we expect good and reliable performance along with high-enough efficiency levels. This platform isn&apos;t modified, though, to allow for higher than 70% efficiency at super-light loads (2% of the PSU&apos;s max rated capacity), and it doesn&apos;t support the alternative sleep mode, which allows the system to instantly wake-up from sleep. The latter doesn&apos;t look so remarkable from the moment there are no available mainboards on the market to support the feature. Still, when you buy a new power supply, you should think long-term, because the PSU is a component you could use across several builds.</p><p>All C series models feature a fully modular cable design and have compact dimensions, thanks to 150 mm depth. The cooling fans use fluid dynamic bearings and are supported by a semi-passive operation, which turns off the fan under light loads. Users have the option to deactivate this and allow the fan to spin throughout the entire load range.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/f9Bvr9shtZqqBSDTmWRd4k.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ve3KWMfAx7LuwRb3TCvtek.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LmaLqzHmwd6Mf8Lx5D4e9n.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ainMAU3FM2QeMPqUUrF32o.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m3CjtW5vzcMKvLerDc4HMo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cBsDfZbtknxYzKGCMdody5.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-8">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >      <p>Seasonic</p>    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>750W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      <p>80 PLUS Gold, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      <p>LAMBDA-S++ (30-35 dB[A])</p>    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      <p>✓ (Fully)</p>    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      <p>120mm Fluid Dynamic Bearing Fan  (HA1225H12F-Z)</p>    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✓ (selectable)</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>150 x 85 x 150mm</p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>1.61 kg (3.55 lb)</p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-8">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >62</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  >100</td><td  >744</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">750</td></tr></tbody></table></div><h2 id="cables-amp-connectors-7">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Modular Cables</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (610mm)</th><td  >1</td><td  >1</td><td  >18-22AWG</td><td  >Yes</td></tr><tr><th  >4+4 pin EPS12V (650mm)</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >Yes</td></tr><tr><th  >6+2 pin PCIe (680mm+80mm) </th><td  >2</td><td  >4</td><td  >18AWG</td><td  >Yes</td></tr><tr><th  >SATA (500mm+100mm+100mm+100mm)</th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (500+100mm+100mm)</th><td  >2</td><td  >6</td><td  >18AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1400mm) -  C13 coupler</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >-</td></tr></tbody></table></div><p>Our sample came with only one EPS connector, but according to NZXT&apos;s PR, all C650 and C750 will be equipped from now on with a second EPS cable, raising the number of corresponding connectors to two. Thanks to the vast increase of cores in modern CPUs, a pair of EPS connectors is required in all high-end mainboards. </p><p>Each of the two cables host a pair of PCIe connectors. The length of the PCIe cables is notable. Usually, these cables are shorter than the EPS one(s).  Finally, there are plenty of peripheral connectors, but the distance between them is too short at 100 mm.  Lastly, the inclusion of inline caps in the ATX, EPS, and PCIe cables can be a problem during cable management. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/q8fKquymCdpwsMxBkiDgGH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4D5pE9zW2Vrivtf3Eb3gUH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6R2AV5auj4Yps5TSRaB2kH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vJRpni2fsMSdTznvyyGzvH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NkNNi7z38SfMfxMMctAUBJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GfgAuxJHgzYRm2NXAFwoMJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QSfPhMjx9rvfCuTDgcKrZJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XXaj86fZQiCJiEgotXrViJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hd8hKUnbvEZz2J6AZScosJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-8">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  > </td><td  >General Data</td></tr><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  > </td><td  >Primary Side</td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV, 1x Champion CM02X (Discharge IC)</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor (MF72-5D15M) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  >2x GBU1508 (800V, 15A @ 100°C)</td></tr><tr><td  >APFC MOSFETs</td><td  >2x Infineon IPA60R180P7S (650V, 11A @ 100°C, Rds(on): 0.18Ohm)</td></tr><tr><td  >APFC Boost Diode</td><td  >1x STMicroelectronics STTH8S06 (600V, 8A @ 25°C)</td></tr><tr><td  >Bulk Cap(s)</td><td  >1x Nippon Chemi-Con (400V, 560uF, 2,000h @ 105°C, KMR)</td></tr><tr><td  >Main Switchers</td><td  >4x Great Power GPT10N50AD (500V, 9.7A, Rds(on): 0.7Ohm)</td></tr><tr><td  >APFC Controller</td><td  >Champion CM6500UNX</td></tr><tr><td  >Resonant Controller</td><td  >Champion CM6901T6X</td></tr><tr><td  >Topology</td><td  >Primary side: APFC, Full-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td  > </td><td  >Secondary Side</td></tr><tr><td  >+12V MOSFETs</td><td  >4x Nexperia PSMN2R6-40YS (40V, 100A @ 100°C, Rds(on): 5.3mOhm @ 175°C)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 6x Infineon BSC0906NS (30V, 40A @ 100°C, 4.5mΩ)  PWM Controller: ANPEC APW7159</td></tr><tr><td  >Filtering Capacitors</td><td  >Electrolytic: 2x Nippon Chemi-Con (105°C, W), 6x Nippon Chemi-Con (1-5,000h @ 105°C, KZE), 4x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 2x Rubycon (3-6,000h @ 105°C, YXG) Polymer: 8x Chemi-Con, 3x FPCAP, 6x NIC</td></tr><tr><td  > Supervisor IC</td><td  >Weltrend WT7527V (OCP, OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA1225H12F-Z (120mm, 12V, 0.58A, 2200 RPM, Fluid Dynamic Bearing)</td></tr><tr><td  > </td><td  >5VSB Circuit</td></tr><tr><td  >Rectifier</td><td  >1x MCC MBR1045ULPS SBR (45V, 10A @ 90°C)</td></tr><tr><td  >Standby PWM Controller</td><td  >Excelliance MOS EM8569</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Lrhv7aKar4KNTBbSXsAoFF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2o43J6wAshNdQbAyYiY4bF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RhjnXSLSYwpKY8dBB4akuF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JUNYG2zXLyUVyAbvV3qkGG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We have seen this platform numerous times so far. Besides the highly popular Focus models, Seasonic also provides this platform to several large brands. The design is up to date, and for increased efficiency and high power handling, Seasonic uses a full-bridge topology on the primary side, which is supported by an LLC resonant converter. On the secondary side, we meet the usual stuff: synchronous rectification where FETs regulate the 12V rail and a pair of VRMs for generating the minor rails. To keep the cost down, Seasonic used Great Power FETs as primary switchers instead of more expensive Infineons. Nonetheless, less stress is applied to the main FETs because of the full-bridge topology. No expense was spared in the other parts of this power supply, with the only exception the Chemi-Con KZE caps, which are not as good as the KY ones. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MGbjamenwGMP74xXsai6WY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Md4y3nGmFPJ8F8yWQ2vayY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WuobVouu24pchpnsA8WfoZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/g78gtDbJRxNEq5R2scp4Va.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KsHoxdsoNSkzDrqst9P7Jb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XAdpUYXcxF7mYfnaMxGkrb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter is complete. Still, its performance is not among the best we have seen. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/SjPVJ455tkiJgcvznYPzaj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y5auEdwpBuGP2TgdQaqUak.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The pair of bridge rectifiers can handle up to 30A of current, combined. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/L4QoBXv6oNvKoEFH26Vke6.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YFTxeHRUR7o75pqJpWkwi7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JSaqrw84nyZbXYvdJ46oJ8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VJe8cx35t3aFuaQuJRSRH9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter uses two Infineon FETs and a single boost diode, provided by STMicroelectronics, which is strong enough to handle this PSU&apos;s needs. The bulk cap is provided by Chemi-Con and has enough capacity to allow for a much longer than 17ms, hold-up time.  </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kUSswRCULuqhu2PEAmc7LK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9i3pW2sQPiRcU9v7HAfvzK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jakjSRQ6vLngVeZU5TGfmL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jH2vtYZVD6L7oUNbMQjYGM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ndjeZpDVKhqfTw7UjpvP8N.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Four switching FETs are installed in a full-bridge topology. Although this topology is considered an expensive option, you can save money since the FETs take less stress, so that you can use lower quality ones compared to a similar spec half-bridge topology. We recently saw this in our <a href="https://www.tomshardware.com/reviews/deepcool-gamerstorm-dq-m-v2l-850w-power-supply-review">DeepCool GamerStorm DQ-M V2L 850W</a> review. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ZmRYjzyvaT6A7iRpjjjZGZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GhczJzxuBZrLkDCR7o92Ba.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zVJDgmMGZqJGWkCmLfTVha.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Four Nexperia FETs handle the 12V rail, while a pair of DC-DC converters generate the minor rails. These converters use six Infineon FETs, and the common PWM controller is provided by Anpec. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Wht2HvcKMBr6Y5FkfL7BJj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RBMKSWrGd8Rb3fwN7EPQpj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pLpge4XkjQmh3fbgeGFtAk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The Chemi-Con KZE caps don&apos;t have such a high life but are usually met in good power supplies, and if they are combined with other, higher quality caps, they don&apos;t bring any trouble in the long run. Besides the KZE caps, we also find W, KY, and two Rubycons (YXG). Many polymer caps are also used for ripple filtering purposes. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/SQZba8YTuYXXpD3mirQvUc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gWgpDi2tkF7xiKombXUsrc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oCzKeWQLFvn4sJnCmadKCd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB circuit&apos;s PWM controller is an Excelliance MOS <a href="http://www.excelliancemos.com/download_prod_s.php?ds=70&file=2">EM8569</a>. On the secondary side of this circuit, a Schottky Barrier Diode (SBR) is used, so inevitably efficiency will take a hit. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/omgxdLJxkLutJHxiopsqa4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Gfu7qAntNpypxor6xjp9F5.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JiLqYGqckkc332BkoND6x5.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Several polymer caps are installed at the front side of the modular board. There are empty spots for several more, as you can see in the photos above. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/dbf7PyJcYcar5hqVLrKR6D.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uDpQh8GvxJxdnfmdaS5WaE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jt3YNt3eaNkZLYUnD8aM9G.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XA5tMHT23gNR3gwMt5zsiG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YNSYeBuqK9WD2TEGdUy6KH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>As usual, we don&apos;t have any complaints from Seasonic&apos;s manufacturing quality. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/p3RwcEHqPsVdZzdkbZjkuP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AQpcsB45Q6oETxR6RwTu3R.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XKRvb2kFfujJCpMMwo9ycR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Hong Hua dominates the PSU fan market nowadays since it manages to deliver good quality and performance at affordable prices. It is nice to see FDB fans everywhere instead of low-quality sleeve bearing fans. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="e15d4c0c-303e-4447-a50d-559bdacb928f">            <a href="https://www.newegg.com/evga-supernova-750-g5-220-g5-0750-x1-750w/p/N82E16817438162" data-model-name="EVGA SuperNOVA 750 G5" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.25%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">EVGA SuperNOVA 750 G5</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="60" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="7f08cb05-362f-4b1d-8ddd-565f2a4d9e4a">            <a href="https://www.newegg.com/corsair-rm-series-rm750-cp-9020195-na-750w/p/N82E16817139168" data-model-name="Corsair RM750" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.20%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/9rVtsEtWQGCKiKng9ny4be.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM750</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star half"></span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="70" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="067b4808-fa7b-420b-9ec7-fcd90789b7df">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https%3A%2F%2Fwww.newegg.com%2FProduct%2FProduct.aspx%3Fitem%3DN82E16817139233" data-model-name="Corsair RM750x" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/Cvh7Sj5RUu8U4E6YXhDhn7.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM750x V2</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-8">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40W up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QroxdfLonKC9rREabBUbVS.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6U4Jak6aBM6JZ2kirqeBhS.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/G4ukQq5bDXsosJsvVpHnuS.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yy6L9x4Ut368EG6w5NNvFT.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wNdLSA92CR8NF99ooaeTYT.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8fRSDVwkqyZjwhuA4VBZqT.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QSiyxcyVYi74cwZDsWvvFU.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sRF2z3GtgDzqJ26B2xXCZU.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is tight at 12V, but not that tight on the minor rails. </p><h2 id="hold-up-time-8">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/dyukyyvVDd3cZbsdzuYRMo.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xf2LoxxrEbTTpJ9Z4he9Zo.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kCvRwpPDWgRqr2Qi33jjF.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WzP87ewK46K5MMJuHie3W.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hicJCTcwkcxGam6jUrpqq.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JXemw3y9mdwWkaCYskHdD3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3ogKMCZSjS7gnXv2GSv9w3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is long and the power ok signal is accurate, so everything is good here. </p><h2 id="inrush-current-8">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/bAKadNGzP3bdT2mZ97NzmC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5uTb3uVAnHG6osczGughwC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush currents stay at low levels, with both voltage inputs. </p><h2 id="10-110-load-tests-7">10-110% Load Tests</h2><p>These tests reveal the C750&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>4.421A</strong></td><td  ><strong>1.988A</strong></td><td  ><strong>1.982A</strong></td><td  ><strong>0.982A</strong></td><td  >74.962</td><td  >86.060%</td><td  >0</td><td  ><6.0</td><td  > 43.25°C</td><td  >0.963</td></tr><tr><td  >12.070V</td><td  >5.030V</td><td  >3.331V</td><td  >5.091V</td><td  >87.104</td><td  > 39.63°C</td><td  >115.15V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>9.872A</strong></td><td  ><strong>2.986A</strong></td><td  ><strong>2.975A</strong></td><td  ><strong>1.182A</strong></td><td  >150.035</td><td  >89.637%</td><td  >577</td><td  >10.5</td><td  > 40.96°C</td><td  >0.979</td></tr><tr><td  >12.068V</td><td  >5.024V</td><td  >3.327V</td><td  >5.077V</td><td  >167.380</td><td  > 45.12°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>15.662A</strong></td><td  ><strong>3.489A</strong></td><td  ><strong>3.477A</strong></td><td  ><strong>1.383A</strong></td><td  >225.038</td><td  >90.437%</td><td  >691</td><td  >14.4</td><td  > 41.06°C</td><td  >0.985</td></tr><tr><td  >12.066V</td><td  >5.018V</td><td  >3.322V</td><td  >5.063V</td><td  >248.834</td><td  > 45.89°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>21.459A</strong></td><td  ><strong>3.992A</strong></td><td  ><strong>3.979A</strong></td><td  ><strong>1.585A</strong></td><td  >300.049</td><td  >90.458%</td><td  >903</td><td  >22.2</td><td  > 41.78°C</td><td  >0.986</td></tr><tr><td  >12.062V</td><td  >5.011V</td><td  >3.318V</td><td  >5.050V</td><td  >331.699</td><td  > 47.22°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>26.881A</strong></td><td  ><strong>4.997A</strong></td><td  ><strong>4.979A</strong></td><td  ><strong>1.788A</strong></td><td  >374.662</td><td  >90.144%</td><td  >1087</td><td  >28.1</td><td  > 42.03°C</td><td  >0.988</td></tr><tr><td  >12.059V</td><td  >5.004V</td><td  >3.313V</td><td  >5.036V</td><td  >415.624</td><td  > 48.10°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>32.333A</strong></td><td  ><strong>6.004A</strong></td><td  ><strong>5.986A</strong></td><td  ><strong>1.992A</strong></td><td  >449.612</td><td  >89.570%</td><td  >1316</td><td  >33.7</td><td  > 42.29°C</td><td  >0.988</td></tr><tr><td  >12.056V</td><td  >4.997V</td><td  >3.308V</td><td  >5.021V</td><td  >501.965</td><td  > 49.25°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>7</strong></font></td><td  ><strong>37.821A</strong></td><td  ><strong>7.017A</strong></td><td  ><strong>6.993A</strong></td><td  ><strong>2.198A</strong></td><td  >524.934</td><td  >88.902%</td><td  >1654</td><td  >39.3</td><td  > 43.06°C</td><td  >0.989</td></tr><tr><td  >12.052V</td><td  >4.989V</td><td  >3.304V</td><td  >5.006V</td><td  >590.462</td><td  > 50.69°C</td><td  >115.10V</td></tr><tr><td  ><font><strong>8</strong></font></td><td  ><strong>43.310A</strong></td><td  ><strong>8.003A</strong></td><td  ><strong>8.000A</strong></td><td  ><strong>2.405A</strong></td><td  >600.105</td><td  >88.138%</td><td  >1988</td><td  >43.6</td><td  > 44.27°C</td><td  >0.990</td></tr><tr><td  >12.049V</td><td  >4.981V</td><td  >3.300V</td><td  >4.990V</td><td  >680.873</td><td  > 52.28°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>9</strong></font></td><td  ><strong>49.172A</strong></td><td  ><strong>8.545A</strong></td><td  ><strong>8.497A</strong></td><td  ><strong>2.410A</strong></td><td  >674.779</td><td  >87.440%</td><td  >2081</td><td  >44.6</td><td  > 44.37°C</td><td  >0.990</td></tr><tr><td  >12.045V</td><td  >4.973V</td><td  >3.296V</td><td  >4.980V</td><td  >771.705</td><td  > 53.74°C</td><td  >115.08V</td></tr><tr><td  ><font><strong>10</strong></font></td><td  ><strong>54.836A</strong></td><td  ><strong>9.066A</strong></td><td  ><strong>9.032A</strong></td><td  ><strong>3.027A</strong></td><td  >750.005</td><td  >86.604%</td><td  >2094</td><td  >44.7</td><td  > 45.22°C</td><td  >0.991</td></tr><tr><td  >12.041V</td><td  >4.965V</td><td  >3.289V</td><td  >4.957V</td><td  >866.012</td><td  > 55.17°C</td><td  >115.08V</td></tr><tr><td  ><font><strong>11</strong></font></td><td  ><strong>61.100A</strong></td><td  ><strong>9.082A</strong></td><td  ><strong>9.056A</strong></td><td  ><strong>3.033A</strong></td><td  >825.239</td><td  >85.700%</td><td  >2104</td><td  >44.9</td><td  > 46.51°C</td><td  >0.992</td></tr><tr><td  >12.038V</td><td  >4.956V</td><td  >3.280V</td><td  >4.947V</td><td  >962.936</td><td  > 57.17°C</td><td  >115.07V</td></tr><tr><td  ><font><strong>CL1</strong></font></td><td  ><strong>0.117A</strong></td><td  ><strong>12.001A</strong></td><td  ><strong>12.001A</strong></td><td  ><strong>0.000A</strong></td><td  >101.657</td><td  >84.856%</td><td  >794 </td><td  >18.4</td><td  > 42.21°C</td><td  >0.972</td></tr><tr><td  >12.079V</td><td  >5.017V</td><td  >3.336V</td><td  >5.088V</td><td  >119.799</td><td  > 47.85°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>CL2</strong></font></td><td  ><strong>62.019A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  >759.915</td><td  >87.085%</td><td  >2096 </td><td  >44.8</td><td  > 45.47°C</td><td  >0.991</td></tr><tr><td  >12.039V</td><td  >4.971V</td><td  >3.280V</td><td  >5.018V</td><td  >872.613</td><td  > 55.83°C</td><td  >115.08V</td></tr></tbody></table></div><p>The PSU can deliver full power at high operating temperatures without any issues. Naturally, efficiency takes a notable hit under harsh conditions, and it cannot reach 87% at full load, dropping below 86% during the overload test. </p><h2 id="20-80w-load-tests-8">20-80W Load Tests</h2><p>In the following tests, we measure the C750&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 Plus standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.230A</strong></td><td  ><strong>0.496A</strong></td><td  ><strong>0.495A</strong></td><td  ><strong>0.196A</strong></td><td  >19.992</td><td  >70.086%</td><td  >0</td><td  ><6.0</td><td  >0.850</td></tr><tr><td  >12.067V</td><td  >5.036V</td><td  >3.332V</td><td  >5.117V</td><td  >28.525</td><td  >115.16V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>2.459A</strong></td><td  ><strong>0.994A</strong></td><td  ><strong>0.991A</strong></td><td  ><strong>0.392A</strong></td><td  >39.982</td><td  >80.502%</td><td  >0</td><td  ><6.0</td><td  >0.929</td></tr><tr><td  >12.067V</td><td  >5.035V</td><td  >3.332V</td><td  >5.109V</td><td  >49.666</td><td  >115.16V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>3.693A</strong></td><td  ><strong>1.490A</strong></td><td  ><strong>1.485A</strong></td><td  ><strong>0.588A</strong></td><td  >60.012</td><td  >84.673%</td><td  >0</td><td  ><6.0</td><td  >0.953</td></tr><tr><td  >12.068V</td><td  >5.032V</td><td  >3.331V</td><td  >5.102V</td><td  >70.875</td><td  >115.15V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>4.919A</strong></td><td  ><strong>1.987A</strong></td><td  ><strong>1.982A</strong></td><td  ><strong>0.785A</strong></td><td  >79.961</td><td  >86.795%</td><td  >0</td><td  ><6.0</td><td  >0.964</td></tr><tr><td  >12.068V</td><td  >5.031V</td><td  >3.331V</td><td  >5.095V</td><td  >92.126</td><td  >115.15V</td></tr></tbody></table></div><p>At light loads, there is no need for the fan to spin if the semi-passive mode is enabled. </p><h2 id="2-or-10w-load-test-8">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.080A</strong></td><td  ><strong>0.212A</strong></td><td  ><strong>0.208A</strong></td><td  ><strong>0.052A</strong></td><td  >15.053</td><td  >64.017%</td><td  >0</td><td  ><6.0</td><td  >0.799</td></tr><tr><td  >12.062V</td><td  >5.038V</td><td  >3.330V</td><td  >5.121V</td><td  >23.514</td><td  >115.16V</td></tr></tbody></table></div><p>With 2% of its max-rated-capacity load, efficiency is above 60%, but it cannot reach the 70% mark. </p><h2 id="efficiency">Efficiency</h2><p>Next, we plotted a chart showing the C750’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vsxMHx5FSNQQccpCCLwUZi.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4qiAbEPsBfcV4j8GyBygqi.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6QaMweX3m9Gygc37WieVPj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ttr5pbexQWzn7m8rragcfj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fpuiN5vbHDekzKPrVQ58Xk.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The platform performs decently when it comes to efficiency, especially in the 20-80W load range. </p><h2 id="5vsb-efficiency-8">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.512</td><td  >74.096%</td><td  >0.106</td></tr><tr><td  >5.122V</td><td  >0.691</td><td  >115.17V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.280</td><td  >76.647%</td><td  >0.219</td></tr><tr><td  >5.119V</td><td  >1.670</td><td  >115.17V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.813</td><td  >77.621%</td><td  >0.335</td></tr><tr><td  >5.112V</td><td  >3.624</td><td  >115.17V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.104</td><td  >77.498%</td><td  >0.407</td></tr><tr><td  >5.103V</td><td  >6.586</td><td  >115.17V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.639</td><td  >77.846%</td><td  >0.442</td></tr><tr><td  >5.091V</td><td  >9.813</td><td  >115.17V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>3.000A</strong></td><td  >15.159</td><td  >76.272%</td><td  >0.494</td></tr><tr><td  >5.053V</td><td  >19.875</td><td  >115.17V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/eE8s4hDKR8CKbgiG7HqBWb.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X3EqKF6RGbETEXgo8qi5Nd.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Close enough to the competition, but we would like to see more from Seasonic in this rail. </p><h2 id="power-consumption-in-idle-and-standby-8">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>Idle</strong></font></td><td  >12.062V</td><td  >5.040V</td><td  >3.331V</td><td  >5.124V</td><td  >7.744</td><td  >0.489</td></tr><tr><td  >115.2V</td></tr><tr><td  ><font><strong>Standby</strong></font></td><td  >0.044</td><td  >0.007</td></tr><tr><td  >115.2V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7ra8HS7ankb8Ta9sB3HBH6.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q6FSGJrzNkYmRX44bu6Qb7.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PSU&apos;s energy needs at standby mode are low. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-8">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/xkZCmZcq6Y6oFBrHEnPFhF.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/xkZCmZcq6Y6oFBrHEnPFhF.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/tHRDuMJhEhUKhMiagt7QSR.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/tHRDuMJhEhUKhMiagt7QSR.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile is quite aggressive overall, especially under high operating temperatures. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/LxWVQjQ5MdEVQ6eFeSFFzW.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/LxWVQjQ5MdEVQ6eFeSFFzW.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/xK6jo527oFFXbRwrfHhDBa.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/xK6jo527oFFXbRwrfHhDBa.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Up to 450W loads, the PSU&apos;s noise doesn&apos;t exceed 30 dBA, so it is fairly quiet. With higher than 500W loads, it enters the 35-40 dBA zone so it will make its presence felt, while with more than 560W loads, noise output exceeds 40 dBA, which can be annoying.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-8">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >      <p><strong>Protection Features</strong></p>    </td><td  > </td></tr><tr><td  >      <p><strong>OCP</strong></p>    </td><td  >      <p>12V: 87.2A (140.65%), 11.909V<br>      5V: 26.1A (130.5%), 4.996V<br>      3.3V: 26.8A (134%), 3.307V<br>      5VSB: 6.2A (206.67%), 4.977V</p>    </td></tr><tr><td  >      <p><strong>OPP</strong></p>    </td><td  >      <p>1051.81W (141.37%)</p>    </td></tr><tr><td  >      <p><strong>OTP</strong></p>    </td><td  >      ✓ (142.5°C ambient)    </td></tr><tr><td  >      <p><strong>SCP</strong></p>    </td><td  >      <p>12V: ✓<br>      5V: ✓<br>      3.3V: ✓<br>      5VSB: ✓<br>      -12V: ✓</p>    </td></tr><tr><td  >      <p><strong>PWR_OK</strong></p>    </td><td  >      <p>Proper Operation</p>    </td></tr><tr><td  >      <p><strong>NLO</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>SIP</strong></p>    </td><td  >      <p>Surge: MOV<br>      Inrush: NTC Thermistor & Bypass Relay</p>    </td></tr></tbody></table></div><p>The 12V rail has its over current protection triggering point set high, but this doesn&apos;t seem to bring any problems. The same goes for OPP. Seasonic wanted to avoid compatibility issues with some GPUs that have high power spikes, so it allowed for higher OCP at 12V. The minor rails have lower OCP triggering points. Lastly, there is over-temperature protection, which is among the most critical protection features, especially in power supplies. </p><h2 id="dc-power-sequencing-8">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ti4W79RdYAnactw87jYhpT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kNN55j3xzKyhXGA7oshU3U.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NKGr2n5ufc7ka5nYxPkYFU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail is always lower than the other two, as the ATX spec requires. </p><h2 id="cross-load-tests-8">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-8">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/SgdDW7K94KZKrL7bDKDabc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2sAPCXfoinf8jjftAMWjjc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2Sk3WBW6f7voxqZUphR9uc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-3">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/pRMgpudBsSndrvWpxiJUnf.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/pRMgpudBsSndrvWpxiJUnf.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-3">Ripple Charts</h2><p>The lower the power supply&apos;s ripple, the more stable the system will be, and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7V54H68GSmjB8oYhqhdXBj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KYsjtC7Y2w4MxAA5HzrGKj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kuwZhppd4YrmEcSaokUwVj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yDcouuSpkEK57Fi44uMafj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-8">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jZzbTnQTCpiUkXhD2ExHZ3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bGXjxvL6LvHiyiN2EszEu3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r6UN4gcVFDf2Ttqcsag5G4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j7Su3T8W4FDuSL2MbBCJf4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cLGUXjm6iNW6APvp5Cq7K5.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Le6emHrHRXjygFeFAWF6d5.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hottest part is the main transformer. The secondary side operates at pretty low temperatures, as you can see in the IR images above. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-8">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-8">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.063V</td><td  >11.907V</td><td  >1.29%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.024V</td><td  >4.898V</td><td  >2.51%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.324V</td><td  >3.134V</td><td  >5.72%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.076V</td><td  >5.040V</td><td  >0.71%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-8">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.065V</td><td  >11.934V</td><td  >1.09%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.023V</td><td  >4.911V</td><td  >2.23%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.325V</td><td  >3.149V</td><td  >5.29%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.076V</td><td  >5.029V</td><td  >0.93%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-8">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.066V</td><td  >11.953V</td><td  >0.94%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.023V</td><td  >4.904V</td><td  >2.37%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.325V</td><td  >3.140V</td><td  >5.56%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.076V</td><td  >5.043V</td><td  >0.65%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-8">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.052V</td><td  >11.945V</td><td  >0.89%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.002V</td><td  >4.868V</td><td  >2.68%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.309V</td><td  >3.130V</td><td  >5.41%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.036V</td><td  >4.993V</td><td  >0.85%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-8">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.054V</td><td  >11.948V</td><td  >0.88%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.001V</td><td  >4.886V</td><td  >2.30%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.309V</td><td  >3.126V</td><td  >5.53%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.036V</td><td  >4.993V</td><td  >0.85%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-8">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.055V</td><td  >11.947V</td><td  >0.90%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.000V</td><td  >4.884V</td><td  >2.32%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.309V</td><td  >3.126V</td><td  >5.53%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.036V</td><td  >4.994V</td><td  >0.83%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/6ZvvNgSp5znRPnhMcqGGGV.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/N9ENRDRP4GHdC4cGZdmUjV.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hQecEZzmNNQF2v6o8AfvxV.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/He7PMFWRXCowBFcAxk2zEW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bEABj5yQhkPzkCoEfWeSQW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RdsqCwKrBZowC9gcpkv8hW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RVtNexj9J7miLSMeEkFRrW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XAyLiwhDfWhkwkmEwE7c2X.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The deviation at 12V is at good levels since it remains close to 1%. On the minor rails the transient response is not so good though, especially at 3.3V.</p><h2 id="turn-on-transient-tests-8">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4zWvYypmRtfQFnhoYEy8Yd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NzdxMJFWzfKzAniVCPiMqd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ch9B6mmBJkQeJdS9RCT77e.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Besides the usual waveform steps, for a Focus platform, on the 12V rail, there is nothing more here to comment—all in all, good performance. </p><h2 id="power-supply-timing-tests-8">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  ><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >92ms</td><td  >324ms</td></tr><tr><th  ><strong>100%</strong></th><td  >85ms</td><td  >322ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode, which will is recommended by the ATX spec. As we already mentioned in the prologue, though, there are no compatible mainboards available yet. What matters the most, for the moment, is for the Power-on time to be lower than 100ms, to avoid compatibility issues with picky mainboards, and the C750 achieves that. </p><h2 id="ripple-measurements-8">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>10% Load</strong></font></td><td  >9.8 mV</td><td  >6.2 mV</td><td  >5.4 mV</td><td  >5.5 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>20% Load</strong></font></td><td  >13.4 mV</td><td  >6.3 mV</td><td  >5.7 mV</td><td  >6.0 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>30% Load</strong></font></td><td  >15.8 mV</td><td  >7.0 mV</td><td  >6.2 mV</td><td  >6.5 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>40% Load</strong></font></td><td  >17.9 mV</td><td  >7.1 mV</td><td  >6.9 mV</td><td  >6.7 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>50% Load</strong></font></td><td  >13.8 mV</td><td  >7.6 mV</td><td  >6.9 mV</td><td  >6.5 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>60% Load</strong></font></td><td  >12.2 mV</td><td  >7.8 mV</td><td  >7.1 mV</td><td  >6.9 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>70% Load</strong></font></td><td  >12.2 mV</td><td  >8.5 mV</td><td  >7.6 mV</td><td  >7.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>80% Load</strong></font></td><td  >12.7 mV</td><td  >9.2 mV</td><td  >13.6 mV</td><td  >8.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>90% Load</strong></font></td><td  >14.6 mV</td><td  >10.1 mV</td><td  >14.6 mV</td><td  >9.1 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>100% Load</strong></font></td><td  >22.7 mV</td><td  >11.8 mV</td><td  >15.4 mV</td><td  >9.2 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>110% Load</strong></font></td><td  >26.5 mV</td><td  >12.6 mV</td><td  >15.5 mV</td><td  >10.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 1</strong></font></td><td  >14.4 mV</td><td  >12.2 mV</td><td  >14.3 mV</td><td  >7.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 2</strong></font></td><td  >21.7 mV</td><td  >9.0 mV</td><td  >8.2 mV</td><td  >8.5 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cAH3LAUg63qfKbdLpnw9F4.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/diggMvSaAHMCVkYcwEFhn4.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nWBxepVWhPi3ANDekdhz45.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m7TqZGnDBPapmXmgXkbcM5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Ripple suppression is good on all rails. </p><h2 id="ripple-at-full-load-8">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/oScgdtQjbEkfNFWreZDkvM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MWkAR5ukb8CE6mNhvGybPN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BdeZHYJLpiEzVerrgqV3gN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ps7UMWStZz6BeS4Brx3V2P.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-7">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/q2awDqCuKdozqsSXFgmU9U.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XvSHYEFUfatijY2cjA3ZPU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3LQT8V8zSjjB5owZupVimU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mxcoP7qNGZ7Z3sM9oj283V.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-8">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/smDYHQ8U6VSdP4yRhWJMye.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/L5SirHAk7ShPDKc3eSxyGf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FSaXN9XDwNLUTxM4ZxnEsf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RTMHBZcL6FPZDAPkqWU2Bg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-3">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8n4Gfh33hx9WWLEWYgCeNo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WM69LPFVkeCjHZabQ4nDT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YzmGLopeBpgZpyMvX2cwg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dz5HtgpQht5GdhTPXq84u.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-6">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1764px;"><p class="vanilla-image-block" style="padding-top:35.49%;"><img id="" name="EMI.png" alt="" src="https://cdn.mos.cms.futurecdn.net/a7qxd7RoodXj2mnEpeeRCD.png" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1764" height="626" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/a7qxd7RoodXj2mnEpeeRCD.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>With the AVG EMI detector, some spurs are exceeding the limits. On the contrary, with the more accurate QP EMI detector, everything is fine. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-8">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/qMbm3A5vgwWBn4Y4R8jWvJ.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/qMbm3A5vgwWBn4Y4R8jWvJ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance is similar to the Seasonic Focus Plus Gold 750, which uses the same platform. The RM750 earns top place in the performance charts, while the RM750x scores lower because we made some changes in our overall performance algorithm, taking into account more factors. On top of that, we measured a new RM750x, which didn&apos;t perform as well as the previous one. </p><h2 id="noise-rating-8">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/kyiHCFvEe8N7jkEDBHD3QN.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/kyiHCFvEe8N7jkEDBHD3QN.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile could be more relaxed.</p><h2 id="efficiency-rating-8">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/wBcbJWns4pQudw2vQmigfR.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/wBcbJWns4pQudw2vQmigfR.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall efficiency is inline with the competition&apos;s offerings. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>With the C750, we finished our evaluation of the complete NZXT C series. Like the other two models of the line, the C750 meets the competition eye-to-eye thanks to the good Seasonic platform that it uses. Although it cannot exceed the competition&apos;s performance, which is fierce in this category, still the overall package is appealing. Moreover, NZXT was wise enough to offer dual EPS connectors in the new C750 and C650 models, making them compatible with all high-end CPUs and mainboards.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/jXUcYdXZnem9uXKRzbjMZX.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/jXUcYdXZnem9uXKRzbjMZX.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The main downside of the C750 is the aggressive fan speed profile, at increased loads and operating temperatures. This is a problem for the Seasonic Focus Plus Gold 750W as well, which uses the same platform. As it seems, larger heat sinks are required to loosen up the fan profile, something that Asus did in its <a href="https://www.tomshardware.com/reviews/asus-rog-strix-750w-power-supply-review">ROG Strix 750W</a> model. Another option would be to use higher quality primary switching FETs, but this would notably affect production cost. We have seen this in the DeepCool GamerStorm DQ-M V2L 850W, where CWT was forced to apply an aggressive fan speed profile to allow the low-quality primary switching FETs to run at lower temperatures. </p><p>All in all, the NZXT C750 is a solid choice, but if you care a lot about noise output, you should take a look at the <a href="https://www.tomshardware.com/reviews/corsair-rm750-power-supply,6172.html">Corsair RM750</a> and <a href="https://www.tomshardware.com/reviews/corsair-rm750x-v2-psu,5585.html#:~:text=Our%20Verdict,with%20more%20power%2Dhungry%20platforms.">RM750x</a>, the <a href="https://www.tomshardware.com/reviews/xpg-core-reactor-750w-power-supply-review">XPG Core Reactor 750</a> and the Asus ROG Strix 750. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Seasonic Outs 12-Pin Nvidia Power Connector, Lists 850W PSU Requirement (Updated) ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/news/seasonic-outs-nvidia-12-pin-power-connector-lists-850w-psu</link>
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                            <![CDATA[ A power supply manufacturer has posted pictures of a new 12-pin cable for Nvidia GPUs. ]]>
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                                                                        <pubDate>Sun, 23 Aug 2020 11:01:21 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 08:42:23 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Niels Broekhuijsen ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/eTUfMQF7d3Bm8wJfMzzfhe.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Niels Broekhuijsen has written for Tom’s Hardware dating all the way back to the start of 2012. If there’s one thing Niels specializes in it’s high-end cooling systems, be it top-of-the-line air-cooling or custom liquid cooling – whatever he builds, it has to be cool, quiet, and classy. In free time, you’ll catch Niels working on his allotment, sorting out the toolshed, or tinkering with his homelab.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[@9550pro on Twitter]]></media:credit>
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                                <p><em><strong>Update, 8/23/2020 11:45am PT: </strong></em>Added more pictures posted by Seasonic to bilibili forums.  </p><p>Original Article:</p><p>The <a href="https://www.tomshardware.com/news/nvidia-ampere-countdown-august-31">countdown to Nvidia&apos;s Ampere GeForce GPUs has started</a>, and meanwhile, the rumor mill is working as hard as it can to get you excited. We recently caught wind of <a href="https://www.tomshardware.com/news/nvidia-ampere-graphics-cards-may-use-new-12-pin-pcie-power-connector">a rumor detailing Nvidia&apos;s new 12-pin power connector</a> and verified through our sources that such a cable does exist, and now a new picture of a 12-pin cable has surfaced - and it&apos;s purportedly posted by Seasonic, a PSU manufacturer. </p><p>The posting was spotted by <a href="https://twitter.com/9550pro/status/1297457860222152705">twitter user HXL</a>, who found the image on the <a href="https://t.bilibili.com/426631230505955919?tab=2">bilibili forums</a>. It shows a Seasonic cable next to its box, adapting dual 8-pin connectors into a single 12-pin connector. The "Nvidia 12-pin PCIe Molex Micro-Fit 3.0 Connector" is 750 mm long, and the box notes "It is recommended to use a power supply rated 850 W or higher with this cable."</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5YcitNp9eMSUC4VFCHzawA.jpg" alt="" /><figcaption><small role="credit">Seasonic via Bilibili</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3998Cq7Cjq2EZuRtx7952B.jpg" alt="" /><figcaption><small role="credit">Seasonic via Bilibili</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7EFUpHAT7FPmgmxVWFDH6B.jpg" alt="" /><figcaption><small role="credit">Seasonic via Bilibili</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fboYmHAuQK5sF8n8dKmX9B.jpg" alt="" /><figcaption><small role="credit">Seasonic via Bilibili</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VhtMF4UmDJ7nPMwC7QLMDB.jpg" alt="" /><figcaption><small role="credit">Seasonic via Bilibili</small></figcaption></figure></figure><p>As you can see above, the 12-pin micro connector is <em>small</em>, being not much larger than a single one of the 8-pins on the other end. This cable features two male 8-pin connectors, it&apos;s intended to plug straight into the modular ports on a Seasonic PSU -- rather than to be used as an adapter on your existing 8-pin cables. </p><p>Normally, 8-pin power connectors are rated for 150W each, which paired with 75W through the PCIe port tallies up to 375W of total board power. This isn&apos;t completely unheard of, as even custom boards from Nvidia&apos;s AIC partners occasionally have three PCIe power connectors. However, it&apos;s noteworthy that this doesn&apos;t say much about Ampere&apos;s power consumption or efficiency.</p><p>The Nvidia GeForce RTX 3090 was also <a href="https://www.tomshardware.com/news/nvidia-geforce-rtx-3090-caught-on-camera">pictured again just yesterday</a>, and it looks like it will be a behemoth of a triple-slot card, suggestive of a power-hungry design.</p><p>It&apos;s unclear whether this new 12-pin connector will make it to the entire Ampere GeForce line. According to Google Translate, Seasonic notes "Is it really unsure, dare to send because there is no NDA. If it is true, the power supply manufacturer will increase the cost of the bonus line, and Lao Huang will not give us a penny. It is currently only used for testing"</p><p>The note on the box says "It is recommended to use a power supply rated 850 W or higher with this cable," but that might only be needed for the most power-hungry cards, as we could imagine it would upset quite a large group of people if something like the RTX 3070 would also need a near-kilowatt PSU. </p><p>That being said, it&apos;s also possible that the note is just there as a warning. After all, we can&apos;t deny that a single 12-pin connector would be a much more elegant solution than multiple connectors, especially if you decide to indulge in individually-sleeved cables. </p><p>Either way, <a href="https://www.tomshardware.com/news/nvidia-rtx-3080-ampere-all-we-know">the only way to know for sure</a> is by waiting for Nvidia&apos;s actual announcement, so just sit tight until September 1st. </p>
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                                                            <title><![CDATA[ DeepCool GamerStorm DQ-M V2L 850W Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/deepcool-gamerstorm-dq-m-v2l-850w-power-supply-review</link>
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                            <![CDATA[ The DeepCool GamerStorm DQ-M V2L 850W power supply offers good performance but it isn't as quiet as the competing offerings. ]]>
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                                                                        <pubDate>Sun, 09 Aug 2020 12:00:38 +0000</pubDate>                                                                                                                                <updated>Thu, 30 Jan 2025 16:35:22 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[DeepCool GamerStorm DQ-M V2L 850W]]></media:description>                                                            <media:text><![CDATA[DeepCool GamerStorm DQ-M V2L 850W]]></media:text>
                                <media:title type="plain"><![CDATA[DeepCool GamerStorm DQ-M V2L 850W]]></media:title>
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                                <p>The DeepCool GamerStorm DQ-M V2L 850W uses a new platform from Channel Well Technology (CWT), which has the codename GPX. In essence, GPX platform is a downgraded GPU design (which we have seen in the <a href="https://www.tomshardware.com/reviews/bitfenix-whisper-series-550w-psu,4805-11.html">Bitfenix Whisper line</a> and the older DeepCool GamerStorm models). Its goal is to offer high enough performance at a lower price, meaning that it doesn&apos;t use the same high-quality parts that the GPU design utilizes. With higher quality FETs and a stronger boost diode, the GamerStorm DQ-M V2L 850W could be included in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">Best Power Supplies</a> article, but performance alone isn&apos;t enough. </p><p>The design needs to be reliable enough to last for years to come, even under tough operating conditions, and it should also retain its good performance over time, because even PSUs age. DeepCool&apos;s new power supply line looks interesting, but it doesn&apos;t pose any threat to the highly popular <a href="https://www.tomshardware.com/reviews/corsair-rm850x-v2-psu,5568.html">Corsair RMx</a> and <a href="https://www.tomshardware.com/reviews/seasonic-focus-plus-gold-850-psu,5247.html">Seasonic Focus Plus Gold</a> lines.</p><p>DeepCool decided to expand its GamerStorm brand with a new PSU line, with the codename DQ-M V2L. This line consists of three members with capacities ranging from 650W to 850W. Compared to the original DQ-M line, which is based on the top-notch CWT GPU platform, the DQ-M V2L uses the inferior CWT GPX platform with some modifications, which allow for higher performance and increased reliability. The latter is depicted on the ten-year warranty that supports these new PSU models. Finally, all DQ-M V2L units feature a single +12V rail design, contrary to the DQ-M members, which had several +12V rails.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/6TkyhMD24gWvkAFjkGWoCE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YmSeigceYA9BebRfZV8pW9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bUVRRQbcCBRmp97XGRbVSA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZXexoPj4jxLR8pK4hqVA8B.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YTD7urnkX4aHuXtnFH8KbB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BmLimEPUd8mgUVPHLKnugC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/twHBmpFXUHLXF2oYyrNo6D.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wuxmtKLecmze8LapdWNxnE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yzVgLpX7ExuDeQjP7KTmdD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The GamerStorm DQ-M V2L 850W is the flagship of the line, featuring enough power (and connectors) to support a potent gaming system. It is a fully modular power supply with regular dimensions. A few years ago a 850W PSU with 160mm depth would be considered compact, but nowadays, we find similar capacity PSUs with only 140mm depth. With a quick look at the specifications, we wonder why DeepCool didn&apos;t use a larger fan (e.g., 140mm instead of 120mm), since the chassis is large enough to accommodate it. A larger fan can provide the same airflow with a smaller one, but at lower speeds so its noise output will be lower.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mStp9yUCKbWDembg6ZQana.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cLums9ZTS2CfHWkSeNg7ib.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZAgHSHhbSgUksc7g5MAhzc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WQpiyfU9Hc78R8qECKkS2e.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pEWjCeHP9xP3YPrwKH77qe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6UdTNzh68m9dnTi359iNVg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Etz7Nb6i7ZwAKtL9XWx86h.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-9">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >      <p> </p>    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>850W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      <p>80 PLUS Gold, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      <p>LAMBDA-S+ (35-40 dB[A])</p>    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      <p>✓ (Fully)</p>    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      <p>120mm Sleeve Bearing Fan  (HA1225H12S-Z)</p>    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>150 x 85 x 160mm</p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>1.53 kg (3.37 lb)</p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-9">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >70.5</td><td  >12.5</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  >110</td><td  >846</td><td  >12.5</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  >850</td></tr></tbody></table></div><h2 id="cables-amp-connectors-8">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Modular Cables</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (550mm)</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (700mm)</th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (500mm+100mm) </th><td  >2</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (550mm+150mm+150mm+150mm)</th><td  >1</td><td  >4</td><td  >20AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (450mm+150mm) / SATA (+150mm+150mm)</th><td  >3</td><td  >6 / 6</td><td  >20AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1380mm) -  C13 coupler</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>The ATX cable could be a bit longer, reaching 600mm, to ensure compatibility with full tower chassis. The length of the EPS connectors is satisfactory, but 50mm more wouldn&apos;t hurt. </p><p>It isn&apos;t common to see six 4-pin Molex connectors, even in 850W PSUs. DeepCool thought that users would like to have a large number of these connectors to power peripheral devices that need more juice than what SATA connectors can provide. It is nice also to see a large enough distance between peripheral connectors. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RxPShX4pNJSgctNEzzsN4h.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pkEZkcL4aGZvhRfC7rpZCf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yUgtosdC3MzAdvkGPdumRf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b4ef3EP2jWgpXkM6oMjCnf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5b7hJu4tChABxcBpFt4b4g.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JJ5ML55WhyHxkg6TdZqzJg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gVV5VoXVnvQWCuerdrRKZg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B4nEP3gp3vMWCtks4zjFpe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-9">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  >General Data</td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >CWT</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  >Primary Side</td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV, 1x CAP200DG (Discharge IC)</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor (SCK055) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  >1x  GBU1506 (600V, 15A @ 100°C)</td></tr><tr><td  >APFC MOSFETs</td><td  >2x Great Power GP28S50 (500V, 28A, Rds(on): 0.125Ohm)</td></tr><tr><td  >APFC Boost Diode</td><td  >1x ON Semiconductor FFSP0665A (650V, 6A @ 153°C)</td></tr><tr><td  >Hold-up Cap(s)</td><td  >1x Nippon Chemi-Con (400V, 680uF, 2,000h @ 105°C, KMR)</td></tr><tr><td  >Main Switchers</td><td  >4x Silan Microelectronics SVF20N50F (500V, 12.6A @ 100°C, Rds(on): 0.27Ohm)</td></tr><tr><td  >APFC Controller</td><td  >Champion CM6500UNX & Champion CM03X</td></tr><tr><td  >Resonant Controller</td><td  >Champion CM6901X</td></tr><tr><td  >Topology</td><td  >Primary side: APFC, Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td  >Secondary Side</td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >6 x IPS 014N04SA</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 4x Sync Power SPN3006 (30V, 57A @ 100°C, Rds(on): 5.5mOhm) PWM Controller: ANPEC APW7159C</td></tr><tr><td  >Filtering Capacitors</td><td  >Electrolytic: 3x Nippon Chemi-Con (1-5,000h @ 105°C, 16V, KZE), 9x Nippon Chemi-Con (4-10,000h @ 105°C, 5V - 16V, KY), 1x Nippon Chemi-Con (4-10,000h @ 105°C, 25V, KYA), 1x Nippon Chemi-Con (1-2,000h @ 105°C, 16V, KMG), 1x Nichicon (1,000h @ 105°C,16V, VZ) Polymer: 23x FPCAP</td></tr><tr><td  >Supervisor IC</td><td  >Sitronix ST9S429-PG14 (OVP, UVP, OCP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA1225H12S-Z (120mm, 12V, 0.58A, Rifle Bearing Fan)</td></tr><tr><td  >5VSB Circuit</td><td  >-</td></tr><tr><td  >Standby PWM Controller</td><td  >Power Integrations TNY287PG</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/sYVt2dnMxTquTKXqoUGwXY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Psa4WRnkjvzhEAHh77EnBZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UwJ6FAJeFkNE7uFyw6tNeZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BUHDygE7uWZfGwDvegEKMa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The GPX platform is a downgraded version of the GPU design, so we didn&apos;t expect to find top-notch quality parts and, in some areas, e.g., in the APFC converter, indeed this is the case. Compared to other 850W units with similar specs, this one uses a notably weaker boost diode in the APFC circuit, and on top of that, the quality of the FETs that CWT used is not high. For example, the Silan Microelectronics FETs are also used in the much more affordable Corsair CX450 (the one made by CWT). It would be ideal if CWT used Infineon or On Semiconductor FETs, but this would affect the production cost.</p><p>The good thing is that a full-bridge topology is used, while the GPU platform uses half-bridge. Briefly, a full-bridge topology can deliver more power, with the proper components, and it has lower energy losses than a half-bridge configuration. Nonetheless, in <a href="https://www.ieice.org/~nolta/symposium/archive/2002/nolta_pdf/4204.pdf">radiated EMI</a>, the half-bridge converter has the edge over the full-bridge converter.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jzgZsk6kJZmuFMqD9xJKHh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jjWeqwTsbL7DjLo2PyCyVh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6tiBwu8ARF6JKWj8u325Ci.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2ihNLJoPWb3QtdmpnATKti.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UhSeT75ud2viEWUg7zAr4k.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wkr3F6gDwsFeBaqmYpedTj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter includes all necessary components to restrict conducted EMI effectively. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JR5fZuKrSuFT4gHMq2wQ2M.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cVCNcMPofW7QvGG7XEbkJM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The single bridge rectifier is bolted on the primary heatsink. The DQ850-M, based on the GPU platform, also uses a single bridge rectifier with similar specifications. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KJS4KD4g2c9hJLt8h7LSrC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jfbx5TQtKmFa6h8jLaEwzC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mudrNnFCvWCRLuKqdzy2HD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WWd3WxEXbLfZfdQ8Py928G.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>In the APFC converter, we find two Great Power FETs, with model number GP28S50 and a single boost diode, which might be provided by a good manufacturer, but it isn&apos;t so strong. Usually, we find 8A boost diodes in higher-end 850W units. The DQ-850M uses an Infineon <a href="https://www.infineon.com/dgdl/Infineon-IDH08G65C5-DS-v02_02-en.pdf?fileId=db3a30433a047ba0013a068f5352012b">IDH08G65C5</a> (650V, 8A @ 145°C), for example. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/isPsb3G2b5JYLiubV5XXAM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pzob6AEEYw7xziR2WbcLJM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cM25f42Z3k4QDqzLyK2kiM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ayMBSefCJDJhhEuXMhfrwM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Dn557bePHsVp2w3iRVWX9N.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>It is nice to see a full-bridge topology, but we cannot say the same for the primary switching FETs. To keep the cost down, CWT used more affordable FETs compared to the ones that the DQ850-M has in the same stage. To speak with numbers, two Fairchild FCPF125N65S3 FETs (DQ850-M) cost $5.62 while four Silan Microelectronics SVF20N50F go for $3.26. Saving $2.36 in the primary FETs alone is a huge deal! </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BEX6MwQDP5YSxvotYqKpzS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AMmjvWnY7VPaKKwPWDRTST.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Pxg9o7hHGvh5yTnWj74m2U.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/saZMJV4wAs4AiefgvWLgKU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The +12V rail uses six InPower Semiconductor FETs, while the pair of DC-DC converters that handle the minor rails utilize four Sync Power FETs. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xM2amxZmHxqyceJvPevntX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Xz8uCVVMpQdZhwgrEsLZ6Y.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/t9SiWXUink2wq4xcPXxQGY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The majority of electrolytic filtering caps are by Chemi-Con. Besides the high-end KY and KYA lines, we also find four lower-end KZE and KMG caps, along with a single Nichicon VZ, with only 1,000h lifetime. CWT also used a large number of polymer caps, which are made by FPCAP.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7qYzJKgYpsgodo8B95nm2J.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tJFLmsBJt2quu9PfKg83FJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The standby circuit is controlled by a Power Integrations TNY287PG IC. </p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="surpervisor_ICs.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/8dXNNvfkhMWh3UHGyvLQpL.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The supervisor IC is provided by Sitronix and supports all necessary protection features but OTP (Over Temperature Protection), which is implemented through another circuit. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7z6UUhDrK5KJwZf7N4wNFd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gQtGRt4KBDhLhiTBjdetPe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/c5Cgdgzj93nCRpTgxn4bGf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Several polymer caps are installed at the face of the modular board, along with several bus-bars that transfer power to the modular sockets. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/AEmEWx8WVnCLEUPWMME42n.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Gh2pdnYuUK7oJme6pspxn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XPA8X4ev9wBaxfeebAeub4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wh3BagF6GtBeDr2JEYKZq5.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uFXsDA56ZZzXoScZSLjAT6.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jAYv86PoLqf4NeH3R4Qf37.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qBHquoGRbfBqntLgNdXqL7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The soldering quality is very good. CWT has solid production lines.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ZTQoq8dfN2BooMZQR8FYjB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PvXhecQ5odNDsAMrQSfE4C.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Most manufacturers have turned to Hong Hua because it offers high performance per buck products with satisfactory quality. This specific fan uses a rifle bearing, so under normal conditions, it will last for quite long. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="102709a4-1aff-40b0-bde6-4e24de80b478">            <a href="https://www.newegg.com/corsair-rmx-series-rm850x-cp-9020180-na-850w/p/N82E16817139234?Description=Rm850x&cm_re=Rm850x-_-17-139-234-_-Product&quicklink=true" data-model-name="Corsair RM850x" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/GiTBbyPSNfJ8pT5Td5gZzi.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">EVGA SuperNOVA 750 G5</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="c4b3b785-99a3-4417-82d1-27f37819e635">            <a href="https://www.newegg.com/seasonic-focus-plus-850-gold-ssr-850fx-850w/p/N82E16817151188" data-model-name="Seasonic FOCUS GM-850" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/v3bLTqaVR57oQs7i4v9C8K.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Seasonic FOCUS GM-850</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="1a60c8a5-030b-4574-a639-96cd424924a2">            <a href="https://www.newegg.com/fractal-design-ion-fd-psu-ionp-860p-bk-860w/p/N82E16817580024" data-model-name="Fractal Design Ion+ 860P" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/wuX8bRYZ6Lqjq75hMBEmNh.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Fractal Design Ion+ 860P</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="75" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-9">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/URTosWDRvQ7CiPB7pkm6D7.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QSBxV3CsS5tZEvBSpxFTK7.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2o7Xu2nPKfuzboPijaYBP7.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/naCHWKhi7PGZbq87Sj2rT7.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CgVLkPRda3Sr6yHBECt868.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qfczmewHuikTohTwcSN7A8.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CZbTFX96XSYNfvmZzZVXD8.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wxbuxZFkBhxTeWYELyrzG8.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is tight on all rails but 5VSB, where it doesn&apos;t play a significant role. </p><h2 id="hold-up-time-9">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zL4rV2oaUSgCyCtxeNZt6g.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XtRXSztK5NDZLaDpeEptLg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WiSftGQh6aoBfAZq3ZhTjg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/z6q8eXdcAywq7zf36eCP8h.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tX3zWHmRwZXw6sWpPBTKah.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JJJ5JpEAwLkvAzTiBGap4i.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is much longer than what the ATX spec requires (17ms), and the power ok signal is accurate. </p><h2 id="inrush-current-9">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pVPHZ4Xu4JHUaVfvTaLbba.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ej5vvyszZwFDr9yrU6PSfa.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current is low with 115V and quite high, but still not dangerously high, with 230V. </p><h2 id="10-110-load-tests-8">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>5.241A</strong></td><td  ><strong>1.994A</strong></td><td  ><strong>2.019A</strong></td><td  ><strong>0.988A</strong></td><td  >84.958</td><td  >87.286%</td><td  >944</td><td  >23.1</td><td  >40.42°C</td><td  >0.955</td></tr><tr><td  >12.088V</td><td  >5.017V</td><td  >3.269V</td><td  >5.063V</td><td  >97.333</td><td  >43.61°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>11.502A</strong></td><td  ><strong>2.992A</strong></td><td  ><strong>3.031A</strong></td><td  ><strong>1.188A</strong></td><td  >170.022</td><td  >90.424%</td><td  >947</td><td  >23.7</td><td  >41.12°C</td><td  >0.982</td></tr><tr><td  >12.095V</td><td  >5.014V</td><td  >3.267V</td><td  >5.052V</td><td  >188.027</td><td  >44.59°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>18.106A</strong></td><td  ><strong>3.491A</strong></td><td  ><strong>3.538A</strong></td><td  ><strong>1.389A</strong></td><td  >255.026</td><td  >91.236%</td><td  >950</td><td  >23.7</td><td  >41.29°C</td><td  >0.985</td></tr><tr><td  >12.094V</td><td  >5.013V</td><td  >3.265V</td><td  >5.040V</td><td  >279.522</td><td  >45.29°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>24.713A</strong></td><td  ><strong>3.993A</strong></td><td  ><strong>4.044A</strong></td><td  ><strong>1.591A</strong></td><td  >340.033</td><td  >91.196%</td><td  >952</td><td  >23.5</td><td  >41.42°C</td><td  >0.981</td></tr><tr><td  >12.092V</td><td  >5.011V</td><td  >3.263V</td><td  >5.028V</td><td  >372.860</td><td  >46.14°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>30.963A</strong></td><td  ><strong>4.990A</strong></td><td  ><strong>5.061A</strong></td><td  ><strong>1.795A</strong></td><td  >424.910</td><td  >90.790%</td><td  >958</td><td  >23.0</td><td  >42.68°C</td><td  >0.980</td></tr><tr><td  >12.092V</td><td  >5.010V</td><td  >3.261V</td><td  >5.015V</td><td  >468.012</td><td  >47.85°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>37.181A</strong></td><td  ><strong>5.991A</strong></td><td  ><strong>6.075A</strong></td><td  ><strong>1.999A</strong></td><td  >509.443</td><td  >90.246%</td><td  >963</td><td  >23.2</td><td  >42.77°C</td><td  >0.982</td></tr><tr><td  >12.093V</td><td  >5.009V</td><td  >3.260V</td><td  >5.002V</td><td  >564.505</td><td  >48.48°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>7</strong></font></td><td  ><strong>43.467A</strong></td><td  ><strong>6.991A</strong></td><td  ><strong>7.090A</strong></td><td  ><strong>2.205A</strong></td><td  >594.758</td><td  >89.460%</td><td  >1167</td><td  >29.0</td><td  >43.70°C</td><td  >0.984</td></tr><tr><td  >12.093V</td><td  >5.008V</td><td  >3.258V</td><td  >4.989V</td><td  >664.828</td><td  >50.71°C</td><td  >115.15V</td></tr><tr><td  ><font><strong>8</strong></font></td><td  ><strong>49.760A</strong></td><td  ><strong>7.993A</strong></td><td  ><strong>8.107A</strong></td><td  ><strong>2.410A</strong></td><td  >680.055</td><td  >88.683%</td><td  >1717</td><td  >39.2</td><td  >43.87°C</td><td  >0.985</td></tr><tr><td  >12.091V</td><td  >5.006V</td><td  >3.256V</td><td  >4.978V</td><td  >766.836</td><td  >51.38°C</td><td  >115.15V</td></tr><tr><td  ><font><strong>9</strong></font></td><td  ><strong>56.451A</strong></td><td  ><strong>8.495A</strong></td><td  ><strong>8.605A</strong></td><td  ><strong>2.413A</strong></td><td  >764.923</td><td  >87.968%</td><td  >2348</td><td  >51.2</td><td  >44.88°C</td><td  >0.987</td></tr><tr><td  >12.089V</td><td  >5.003V</td><td  >3.253V</td><td  >4.971V</td><td  >869.546</td><td  >52.88°C</td><td  >115.14V</td></tr><tr><td  ><font><strong>10</strong></font></td><td  ><strong>63.068A</strong></td><td  ><strong>8.998A</strong></td><td  ><strong>9.131A</strong></td><td  ><strong>2.519A</strong></td><td  >849.626</td><td  >87.136%</td><td  >2347</td><td  >51.2</td><td  >45.18°C</td><td  >0.988</td></tr><tr><td  >12.089V</td><td  >5.002V</td><td  >3.252V</td><td  >4.960V</td><td  >975.058</td><td  >53.77°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>11</strong></font></td><td  ><strong>70.085A</strong></td><td  ><strong>8.998A</strong></td><td  ><strong>9.133A</strong></td><td  ><strong>2.523A</strong></td><td  >934.365</td><td  >86.284%</td><td  >2349</td><td  >51.3</td><td  >45.91°C</td><td  >0.988</td></tr><tr><td  >12.088V</td><td  >5.000V</td><td  >3.251V</td><td  >4.953V</td><td  >1082.893</td><td  >54.80°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>CL1</strong></font></td><td  ><strong>0.100A</strong></td><td  ><strong>12.999A</strong></td><td  ><strong>12.997A</strong></td><td  ><strong>0.000A</strong></td><td  >108.862</td><td  >83.409%</td><td  >972 </td><td  >24.2</td><td  >42.34°C</td><td  >0.970</td></tr><tr><td  >12.106V</td><td  >5.018V</td><td  >3.264V</td><td  >5.072V</td><td  >130.516</td><td  >47.39°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>CL2</strong></font></td><td  ><strong>70.499A</strong></td><td  ><strong>1.001A</strong></td><td  ><strong>1.0001A</strong></td><td  ><strong>1.000A</strong></td><td  >865.531</td><td  >87.728%</td><td  >2344 </td><td  >51.3</td><td  >45.05°C</td><td  >0.988</td></tr><tr><td  >12.089V</td><td  >5.005V</td><td  >3.258V</td><td  >5.000V</td><td  >986.602</td><td  >53.90°C</td><td  >115.12V</td></tr></tbody></table></div><p>The efficiency levels get a big hit under high operating temperatures, showing that the parts that CWT used are not highly tolerant to harsh operating conditions. The cooling fan also has to work at its maximum speed from test #9, to cope with the thermal load and keep as cool as possible the low-quality FETs.</p><h2 id="20-80w-load-tests-9">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.227A</strong></td><td  ><strong>0.498A</strong></td><td  ><strong>0.506A</strong></td><td  ><strong>0.197A</strong></td><td  >19.984</td><td  >69.403%</td><td  >934</td><td  >21.8</td><td  >0.756</td></tr><tr><td  >12.084V</td><td  >5.019V</td><td  >3.272V</td><td  >5.088V</td><td  >28.794</td><td  >115.15V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>2.455A</strong></td><td  ><strong>0.997A</strong></td><td  ><strong>1.009A</strong></td><td  ><strong>0.394A</strong></td><td  >39.974</td><td  >80.311%</td><td  >938</td><td  >22.2</td><td  >0.887</td></tr><tr><td  >12.085V</td><td  >5.018V</td><td  >3.271V</td><td  >5.082V</td><td  >49.774</td><td  >115.14V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>3.687A</strong></td><td  ><strong>1.495A</strong></td><td  ><strong>1.514A</strong></td><td  ><strong>0.591A</strong></td><td  >60.005</td><td  >84.531%</td><td  >938</td><td  >22.2</td><td  >0.930</td></tr><tr><td  >12.084V</td><td  >5.017V</td><td  >3.270V</td><td  >5.075V</td><td  >70.986</td><td  >115.15V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>4.919A</strong></td><td  ><strong>1.995A</strong></td><td  ><strong>2.022A</strong></td><td  ><strong>0.789A</strong></td><td  >79.951</td><td  >86.506%</td><td  >945</td><td  >23.1</td><td  >0.955</td></tr><tr><td  >12.067V</td><td  >5.008V</td><td  >3.265V</td><td  >5.070V</td><td  >92.422</td><td  >115.12V</td></tr></tbody></table></div><p>With 20W load, efficiency doesn&apos;t exceed 70%. In all other tests, it exceeds 80%, though. </p><h2 id="2-or-10w-load-test-9">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.240A</strong></td><td  ><strong>0.233A</strong></td><td  ><strong>0.232A</strong></td><td  ><strong>0.044A</strong></td><td  >17.118</td><td  >66.003%</td><td  >859</td><td  >20.5</td><td  >0.726</td></tr><tr><td  >12.071V</td><td  >5.014V</td><td  >3.270V</td><td  >5.092V</td><td  >25.935</td><td  >115.17V</td></tr></tbody></table></div><p>With 2% load, the 70% efficiency mark isn&apos;t reached, so this PSU cannot meet the newest ATX spec requirements. </p><h2 id="efficiency-2">Efficiency</h2><p>Next, we plotted a chart showing the PSU’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5qQb78YRaN2pgd3bNMMmTg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NrsD4d7n4Q5KN7hYZy55Zg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/phosw9TDRbNDf5P8fok2dg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FNH3LveJFmuPEvncZNSiyg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CGwjkzJw7vpMNEsfYf32ug.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The efficiency levels are at satisfactory levels, given the parts that this platform uses. </p><h2 id="5vsb-efficiency-9">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.509</td><td  >77.356%</td><td  >0.063</td></tr><tr><td  >5.093V</td><td  >0.658</td><td  >115.17V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.272</td><td  >80.303%</td><td  >0.142</td></tr><tr><td  >5.090V</td><td  >1.584</td><td  >115.17V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.795</td><td  >81.582%</td><td  >0.255</td></tr><tr><td  >5.083V</td><td  >3.426</td><td  >115.17V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.073</td><td  >79.589%</td><td  >0.353</td></tr><tr><td  >5.073V</td><td  >6.374</td><td  >115.17V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.592</td><td  >79.431%</td><td  >0.406</td></tr><tr><td  >5.061V</td><td  >9.558</td><td  >115.17V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>2.499A</strong></td><td  >12.595</td><td  >77.351%</td><td  >0.461</td></tr><tr><td  >5.039V</td><td  >16.283</td><td  >115.17V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HcNdxvVPzEJWaZJhtcZYgm.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vpgxYV2ZSL75HxdicB8Ekm.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail is highly efficient! </p><h2 id="power-consumption-in-idle-and-standby-9">Power Consumption In Idle And Standby</h2><div ><table><caption>Idle & Standby Power Consumption</caption><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  >12.070V</td><td  >5.009V</td><td  >3.267V</td><td  >5.094V</td><th  >21.726</th><td  >0.673</td></tr><tr><td  >115.2V</td></tr><tr><td  colspan="5" rowspan="2"><strong>Standby</strong></td><td  >0.044</td><td  >0.004</td></tr><tr><td  >115.2V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/gPQUAwkjiaPfQYfC6X6eR3.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/R6KoJXPGiq9Hjzn6YNPRV3.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The vampire power levels are low, with both voltage inputs. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-9">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/Z4VoaKefigUYgRmwHTGP66.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Z4VoaKefigUYgRmwHTGP66.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/KtpZwMQgjNCYwN5NoTtxSC.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/KtpZwMQgjNCYwN5NoTtxSC.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Up to 500W, the fan spins at below 1000 RPM, but at higher loads, the fan speed profile gets wild. The low-quality FETs don&apos;t allow for a more relaxed speed profile, as it seems. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/acQ7wbg5Tpa3marRVWeSCH.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/acQ7wbg5Tpa3marRVWeSCH.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/HLgucShnGvCywxV5MmCHGL.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/HLgucShnGvCywxV5MmCHGL.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>There is no passive operation, but this is not a problem since the fan isn&apos;t noisy, with loads up to around 550W. With higher loads, though, the fan quickly increases its speed, and the same goes for the output noise, which exceeds 40 dBA with >610W loads. In some cases, noise can go over 45 dBA, so if you plan to push this PSU hard, you should be prepared for noisy operation. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-9">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >      <p><strong>Protection Features</strong></p>    </td><td  > </td></tr><tr><td  >      <p><strong>OCP</strong></p>    </td><td  >      <p>12V: 90.2A (127.94%), 12.077V<br>      5V: 29.1A (145.5%), 5.015V<br>      3.3V: 29A (145%), 3.258V<br>      5VSB: 3.8A (152%), 5.007V</p>    </td></tr><tr><td  >      <p><strong>OPP</strong></p>    </td><td  >      <p>1102.59W (129.72%)</p>    </td></tr><tr><td  >      <p><strong>OTP</strong></p>    </td><td  >      <p>✓ (143°C @ 12V Heat Sink)</p>    </td></tr><tr><td  >      <p><strong>SCP</strong></p>    </td><td  >      <p>12V: ✓<br>      5V: ✓<br>      3.3V: ✓<br>      5VSB: ✓<br>      -12V: ✓</p>    </td></tr><tr><td  >      <p><strong>PWR_OK</strong></p>    </td><td  >      <p>Proper Operation</p>    </td></tr><tr><td  >      <p><strong>NLO</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>SIP</strong></p>    </td><td  >      <p>Surge: MOV<br>      Inrush: NTC Thermistor & Bypass Relay</p>    </td></tr></tbody></table></div><p>The over current protection at +12V along with over power protection is configured correctly. This doesn&apos;t apply, though, to the minor rails which are close to 145%, compared to their nominal levels. There is no need for such high power levels on these rails and at some point, PSU manufacturers should realize it. The other protection features have normal operation. </p><h2 id="dc-power-sequencing-9">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wvVQkZPapGFXpuoAsubveB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5S7u3GmVLzTp8LFyVM2t5C.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/F2NPKbDEThZMtvWA4FfZUC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail is lower than the other two in all tests we conducted, so there are no problems here. </p><h2 id="cross-load-tests-9">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-9">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/T4sWJsPSGBZsaV5xvV44ZQ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TtgGEhTMP8juNnPkyKXxoQ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/db4D6feFyGZqT7Aepc7L6R.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-4">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/PVVWod6Fb3aTqk7j2P8BbV.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/PVVWod6Fb3aTqk7j2P8BbV.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-4">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GcpV47FCTzBuiSQHy2CQkZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WkHiRQZgghaU7bb9NsSLyZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gp7pXxCkxm6Up7JBwCCSJa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YdpNUVruU6vbth463fDQYa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-9">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HkWCXZBxTHgDLKFDY6duXh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GR2nVNA9mB3juwEw3ScBhi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xKiNyQYmENCWiD8zcBqvMj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WrRVCnUPLPKYjynHanz3zj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GspDkLxUT4U4ujj36zRDak.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RUB9v4axCSR3YcEkGhsG7m.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MFkA58HrgkkTWqzfUc2Xjm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hottest areas are near the bridge rectifier and the voltage regulators that handle the minor rails. The temperatures are not high, but CWT was forced to use an aggressive fan speed profile to keep as cool as possible the internals, to ensure that the low-quality FETs will outlive the provided warranty. The latter is super-long for the low-grade FETs under mid to severe operating conditions. Only time will reveal more on this platform&apos;s reliability. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-9">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-9">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.072V</td><td  >11.881V</td><td  >1.58%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.007V</td><td  >4.924V</td><td  >1.66%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.264V</td><td  >3.137V</td><td  >3.89%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.053V</td><td  >5.000V</td><td  >1.05%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-9">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.072V</td><td  >11.880V</td><td  >1.59%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.008V</td><td  >4.921V</td><td  >1.74%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.264V</td><td  >3.135V</td><td  >3.95%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.053V</td><td  >5.000V</td><td  >1.05%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-9">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.070V</td><td  >11.911V</td><td  >1.32%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.007V</td><td  >4.921V</td><td  >1.72%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.264V</td><td  >3.136V</td><td  >3.92%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.053V</td><td  >4.995V</td><td  >1.15%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-9">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.067V</td><td  >11.922V</td><td  >1.20%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.003V</td><td  >4.908V</td><td  >1.90%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.259V</td><td  >3.113V</td><td  >4.48%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.018V</td><td  >4.967V</td><td  >1.02%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-9">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.065V</td><td  >11.910V</td><td  >1.28%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.001V</td><td  >4.910V</td><td  >1.82%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.258V</td><td  >3.125V</td><td  >4.08%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.018V</td><td  >4.962V</td><td  >1.12%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-9">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.064V</td><td  >11.909V</td><td  >1.28%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.001V</td><td  >4.915V</td><td  >1.72%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.257V</td><td  >3.113V</td><td  >4.42%</td><td  >Fail</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.018V</td><td  >4.967V</td><td  >1.02%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vmZnwC42Z5L4p9wGYALvvj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yJG3G3seHEBE5h68Ao9q9k.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ThozxNyLEBMHkbiYKhK4pj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RS9ypV5zLXDzvukHSnvfsj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/h8gcMv9vsYc9TcvUaWTHDk.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aLfdYCK8PS5xkaKaNN8oLk.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cTwVy4dmtGqVw7bYcNpBQk.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6nNRfbZn6pYSqcLbcWwuTk.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Only 5V and 5VSB perform well in these tests. The +12V is away from 1% deviation, which is considered good performance while the deviation at 3.3V exceeds 4%. </p><h2 id="turn-on-transient-tests-9">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RnWkPgvTcv5AFVJixaFVST.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RLS2HkT8fCmAoPfFqcZXXT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2zyBajor5iegxwVRZzvecT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We only noticed a small spike at 5VSB and two small steps during the last test. All in all, good enough performance here. </p><h2 id="power-supply-timing-tests-9">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >77ms</td><td  >328ms</td></tr><tr><th  ><strong>100%</strong></th><td  >76ms</td><td  >327ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode (ASM). No mainboards are supporting this mode yet, but given the ten-year warranty, you will keep this PSU for quite long, so it would be ideal for supporting ASM.</p><h2 id="ripple-measurements-9">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>10% Load</strong></font></td><td  >25.6 mV</td><td  >7.7 mV</td><td  >6.3 mV</td><td  >8.2 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>20% Load</strong></font></td><td  >16.3 mV</td><td  >8.9 mV</td><td  >6.4 mV</td><td  >11.9 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>30% Load</strong></font></td><td  >17.9 mV</td><td  >15.5 mV</td><td  >6.7 mV</td><td  >15.9 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>40% Load</strong></font></td><td  >18.6 mV</td><td  >20.0 mV</td><td  >7.5 mV</td><td  >18.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>50% Load</strong></font></td><td  >14.0 mV</td><td  >15.0 mV</td><td  >7.6 mV</td><td  >24.0 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>60% Load</strong></font></td><td  >11.3 mV</td><td  >15.1 mV</td><td  >8.0 mV</td><td  >22.6 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>70% Load</strong></font></td><td  >10.2 mV</td><td  >17.8 mV</td><td  >8.9 mV</td><td  >15.9 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>80% Load</strong></font></td><td  >10.6 mV</td><td  >18.2 mV</td><td  >11.3 mV</td><td  >17.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>90% Load</strong></font></td><td  >11.5 mV</td><td  >18.0 mV</td><td  >11.6 mV</td><td  >19.0 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>100% Load</strong></font></td><td  >18.0 mV</td><td  >19.4 mV</td><td  >13.1 mV</td><td  >19.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>110% Load</strong></font></td><td  >19.6 mV</td><td  >19.3 mV</td><td  >13.4 mV</td><td  >19.6 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 1</strong></font></td><td  >23.4 mV</td><td  >15.0 mV</td><td  >12.4 mV</td><td  >5.5 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 2</strong></font></td><td  >17.2 mV</td><td  >16.9 mV</td><td  >9.6 mV</td><td  >22.4 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wDsnv5f2rxX6S3KY6szyU6.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PCGhsdNSA4ZSPAWmAK5od6.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/42MM6WMopzgc3j55rzSai6.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aAYpCPuMMnnQRJHRRQjEo6.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ripple suppression is good on all rails, even at 5V, which looks high in the charts compared to other, similar spec, PSUs. From the moment the minor rails stay below 20mV, at full load and higher than 45 degrees Celsius ambient, we cannot complain about their performance. </p><h2 id="ripple-at-full-load-9">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qrep3x9pSg9i9Xq5LWp6EX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iJiJtGPWvVYYpd8DFaQcLX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GHdsRGNudWwzudvq8uHKTX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r9VcbbrBShDPkW9k5GsPaX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-8">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/AR7jacHfgAeTsgPd7XNRgb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dmTfDCAuSEZfnz9vQnhjnb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/35ULeWqnwFBcvebdKLumub.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QkPTmWxpc5rXjGa53n3W2c.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-9">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fDCx3giN4bfoFycFXxz9Gg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zHA8BccPqGd7SiLcNDfeMg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/egZGHu6L98yHcxjCeoebSg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zn3ghykFwNVVDh3xjkD3Xg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-4">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/iu7JoFWJPMdygB25dunskk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZVmakxhL5vpgkMCforv3sk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qFM8ix54nhw38PK2R2qpxk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/K3wEKo7SJLoE5SRwe7XH4m.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-7">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1646px;"><p class="vanilla-image-block" style="padding-top:34.45%;"><img id="" name="EMI.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/tqb9YhsFZgRiJhaoz7Mg47.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1646" height="567" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/tqb9YhsFZgRiJhaoz7Mg47.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>With the Average detector several, sixteen to be exact, spurs exceed the limits in the 342 - 808 kHz range. Using the QP detector, which is more accurate, everything is ok, although some emissions are dead close to the limits. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-9">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/v9tkFTkJsmUEWWpwwr5UH7.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/v9tkFTkJsmUEWWpwwr5UH7.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance is very good, taking the lead from the XPG Core Reactor 850, which has higher build quality, though. The RM850x and Seasonic Focus Plus Gold with similar capacity perform better than DeepCool&apos;s offering. </p><h2 id="noise-rating-9">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/KFSSiAZetqzEDxaxf5zf7C.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/KFSSiAZetqzEDxaxf5zf7C.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>This is a noisy PSU. The DQ850-M, which uses CWT&apos;s GPU platform (GPU850V-G), has a much more relaxed fan speed profile since it uses higher quality parts, which are more tolerant to high operating temperatures. </p><h2 id="efficiency-rating-9">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/RsRdi4D2gefQ4wWVJ7inbF.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/RsRdi4D2gefQ4wWVJ7inbF.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall efficiency is a bit higher than the DQ850-M that uses a half-bridge topology. This is an efficient platform, but given the full-bridge topology, we expected even better results here. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>DeepCool utilized a mainstream platform from CWT, with code name GPX, and with some modifications, it managed to get good performance out of it along with a long hold-up time, since they also changed the bulk capacitor. This change costs a lot, since bulk caps are among the most expensive parts in a power supply, along with the cooling fan and the switching MOS(FETs). </p><p>Speaking of FETs, we were not pleased, at all, to see lower grade FETs made by off-brand Chinese manufacturers in this unit. CWT might use a superior full-bridge topology in this platform, instead of the half-bridge that the higher-grade GPU design uses. Still, it only did so to lower the production cost since this topology allowed for lower and much more affordable FETs. It is strange to see such an extended warranty period, reaching ten-years, in a product that doesn&apos;t use quality FETs. The aggressive fan speed profile might boost reliability, but it won&apos;t help in the long run if you push hard the PSU on a daily basis. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/J3Syfn2r72cdCe2YDer3RN.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/J3Syfn2r72cdCe2YDer3RN.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>With higher quality FETs and a stronger boost diode in the APFC converter, this power supply would be equally good, if not better, than its competitors. This is not the case, though, and despite the ten-year warranty that DeepCool provides, we are not sure if it will manage to outlive it, especially if you are not gentle with it. </p><p>On top of that, the fan speed profile is aggressive, so under high loads and increased operating temperatures, the PSU will make its presence felt. This product could be so much better if it used the proper parts. As it is, the majority of competing offerings, including the Corsair RMx, Seasonic Focus, and XPG Core Reactor, are better choices. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ NZXT C Series 850W Power Supply Review  ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/nzxt-c-series-850w-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ The NZXT C series power supply with 850W capacity has high build quality and performs well in almost all sections. ]]>
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                                                                        <pubDate>Sat, 08 Aug 2020 12:00:34 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:28:40 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[NZXT C Series 850W]]></media:description>                                                            <media:text><![CDATA[NZXT C Series 850W]]></media:text>
                                <media:title type="plain"><![CDATA[NZXT C Series 850W]]></media:title>
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                                <p>The  NZXT C Series model with 850W max power uses the popular Seasonic Focus Plus Gold platform, but the performance, of our sample at least, wasn&apos;t at the same level as the corresponding Seasonic model. The competition is fierce in this market segment, and even if we had a budget 850W category in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best PSUs</a> article, the C850 would have a hard time overtaking competitors like the <a href="https://www.tomshardware.com/reviews/corsair-rm850x-v2-psu,5568.html">Corsair RM850x</a>, the <a href="https://www.tomshardware.com/reviews/seasonic-focus-plus-gold-850-psu,5247.html">aforementioned Seasonic</a> unit, and the <a href="https://www.tomshardware.com/reviews/xpg-core-reactor-850w-power-supply-review">XPG Core Reactor 850</a>. This doesn&apos;t mean though that you shouldn&apos;t get one if you find it at a good price. </p><p>NZXT&apos;s C series PSUs come in three flavors, with capacities ranging from 650W to 850W. We have already evaluated the <a href="https://www.tomshardware.com/reviews/nzxt-c650-power-supply-review">650W model</a>, and this time the strongest model of the line will have the chance to meet our Chroma load testers. The C850 has enough power to support a potent CPU (AMD Ryzen 9 3900/3950x or an Intel Core i9-10900K) and a power-hungry graphics card (e.g., Nvidia RTX2080Ti). We are not sure about the PCIe connectors that the upcoming Nvidia Ampere GPUs will use, but this shouldn&apos;t be a problem for fully and semi-modular PSUs since, with a plain cable change, any compatibility problems can be addressed (but still there will be limitations in the power output since from the PSU&apos;s side the connectors will remain the same). </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mhGiE7R35UKvWKmmY8qGyE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n4vPZGqxdHJhGuQqdBwr6F.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LaXoubcBihG9XwjxZCyfHF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Gft4qNAFwauW2E9r3pb2QF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ep67JkZxHYAk65oQryzfYF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hzd3ZGqgVLxugttXy7UseF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BumCfb8FUnTH6bjsJMQFqF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The NZXT C850 is a fully modular power supply with high power density, thanks to its compact dimensions (only 140mm depth). The whole C series is based on Seasonic&apos;s popular Focus Plus Gold platform without any significant changes. The <a href="https://www.tomshardware.com/reviews/nzxt-e-series-850w-psu,5802.html">E series</a> is also based on the same Seasonic platform but has several notable changes, including a digital controller.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JKjD82bo2QVfQgEobyyYoD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MCsRBzQXGrHWFwKnvoe6wD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qhchN5ZbTW89TP3NXCWm7E.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PCHaVw6CWAJUwjELPYMYDE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3SYaVA6DSSkqwUuQmtG2KE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gnFQyqdB9duzozBC5Nb3SE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sa3hSCYyCbfV7kuYs5BtdE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-10">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >      <p>Seasonic</p>    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>850W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      <p>80 PLUS Gold, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      <p>LAMBDA-S++ (30-35 dB[A])</p>    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      <p>✓ (Fully)</p>    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      <p>120mm Fluid Dynamic Bearing Fan  (HA1225H12F-Z)</p>    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✓ (selectable)</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>150 x 85 x 150mm</p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>1.62 kg (3.57 lb)</p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-10">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >70</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  >100</td><td  >840</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  >850</td></tr></tbody></table></div><h2 id="cables-amp-connectors-9">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Description</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (610mm)</th><td  >1</td><td  >1</td><td  >18-22AWG</td><td  >Yes</td></tr><tr><th  >4+4 pin EPS12V (650mm)</th><td  >2</td><td  >2</td><td  >18AWG</td><td  >Yes</td></tr><tr><th  >6+2 pin PCIe (680mm+80mm) </th><td  >3</td><td  >6</td><td  >18AWG</td><td  >Yes</td></tr><tr><th  >SATA (500mm+100mm+100mm+100mm)</th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (500+100mm+100mm)</th><td  >2</td><td  >6</td><td  >18AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1400mm) -  C13 coupler</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >-</td></tr></tbody></table></div><p>The double EPS connectors are a necessity if you plan on using this power supply with a high-end mainboard and a similar level processor. The number of PCIe connectors is also increased, although most users won&apos;t need more than two. Finally, there are enough peripheral connectors, but the distance between them is too small, at 100mm. It should be 150mm, at least.</p><p>Several cables have inline caps, unfortunately, and although these caps improve ripple suppression, they will also give you a hard time during cable management and routing processes.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Y332n4NscxRXVoY8kMSAFX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FVovWboFKgcdA3kbqiEZLX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZmfLY5o4ySpr2oagAFm6SX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SR4Lo2yjuHjDDdrxx6ApVX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jcPeZMMPYJJKVqWV3u3baX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BAyZZVU6AVUXeQTVg5hLeX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JwRYvemWEVYPWARchpPJmX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C87uJLcFnaYdVk55toospX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WuCc7zMfyPanfQoztDQYuX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WfGmHjL8T3c4K4ajoiWHzX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-10">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  >General Data</td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  >Primary Side</td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV, 1x Champion  CM02 (Discharge IC)</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor (MF72-5D15M) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  >2x GBU1508 (800V, 15A @ 100°C)</td></tr><tr><td  >APFC MOSFETs</td><td  >2x Infineon IPA60R180P7S (650V, 11A @ 100°C, Rds(on): 0.18Ohm)</td></tr><tr><td  >APFC Boost Diode</td><td  >1x STMicroelectronics STTH8S06 (600V, 8A @ 25°C)</td></tr><tr><td  >Bulk Cap(s)</td><td  >1x Hitachi (400V, 470uF, 2,000h @ 105°C, HU)</td></tr><tr><td  >Main Switchers</td><td  >4x Great Power GPT13N50D (500V, 13A, Rds(on): 0.49Ohm)</td></tr><tr><td  >APFC Controller</td><td  >Champion CM6500UNX</td></tr><tr><td  >Resonant Controller</td><td  >Champion CM6901T6</td></tr><tr><td  >Topology</td><td  >Primary side: APFC, Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td  >Secondary Side</td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >4x Nexperia PSMN2R6-40YS (40V, 100A @ 100°C, Rds(on): 5.3mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 6x Infineon BSC0906NS (30V, 40A @ 100°C, 4.5mΩ) PWM Controller: APW7159</td></tr><tr><td  >Filtering Capacitors</td><td  >Electrolytic: 2x Nippon Chemi-Con (105°C, W), 6x Nippon Chemi-Con (1-5,000h @ 105°C, KZE), 3x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 3x Rubycon (3-6,000h @ 105°C, YXG)<br> Polymer: 6x Chemi-Con, 5x FPCAP, 6x NIC</td></tr><tr><td  > Supervisor IC</td><td  >Weltrend WT7527V (OCP, OVP, UVP, SCP, PG) </td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA1225H12F-Z (120mm, 12V, 0.58A, 2200 RPM, Fluid Dynamic Bearing)</td></tr><tr><td  >Standby Circuit</td><td  >-</td></tr><tr><td  >Rectifier</td><td  >1x MCC MBR1045ULPS SBR (45V, 10A @ 90°C)</td></tr><tr><td  >Standby PWM Controller</td><td  >Excelliance MOS EM8569</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Fumwmgt7SBLZkXLrgcVTb3.jpg" alt="" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4QKBFrYP7GJiLJsU3gNsk3.jpg" alt="" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NrgRPgcUMiqRKSvXPPyju3.jpg" alt="" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Q9JJGnkF88mjraLgx48t34.jpg" alt="" /><figcaption><small role="credit">Future</small></figcaption></figure></figure><p>This is the Seasonic Focus Plus Gold platform, so there are no surprises here since we have seen this design numerous times so far. The build quality is good, and the parts that Seasonic used are quite good and definitely up to the task. Still, we would like to see a higher-voltage-rating bulk cap, and less Chemi-Con KZE caps on the secondary side. </p><p>On the primary side, Seasonic used a full-bridge topology, which is ideal for higher capacity PSUs (>500-600W max power), along with an LLC resonant converter. The secondary side employs a synchronous design for +12V, and a pair of DC-DC converters generate the minor rails. This is typical stuff for a modern PSU.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QLZqyCkv856e9a8rJnbFDj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iToSjgNbVD8DkezHhw6qMj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gCQ3JtAQXtGzAb5pcdoDXj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YNApiiMMv9YGRFchJonAgj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/anZ6DefUUJZu4szeg5Q4qj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nFzRkNFCyp4SNehSHoDfAk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter has all the necessary components to suppress both incoming and outgoing EMI emissions. The real-life tests and our spectrum analyzer will shed more light on this, though. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TzDTwRNxKAHsaKwHp6QoAM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/znks6G6GW5ndkZ3h6m5VHM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The two bridge rectifiers can handle up to 30 Amperes. This is way more than what an 850W power supply requires, but by using two of them in parallel, you have lower energy losses since each bridge deals with half of the load.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/nehUdCLSKXk2jVDPYXYrLV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oB6LwauiAxH3LGChp2kbVV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2XWvUCK2cBdkeDdNrWhvZV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P44bCq6cYghu5yBacmoUiV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter uses quality FETs and a strong enough boost diode. The bulk cap isn&apos;t that large. Still, it manages to deliver close to 21ms hold-up time. Besides the size of the bulk cap, a significant role also plays the primary switching controller and its configuration when it comes to hold-up time. That said, we would like to see a higher voltage rating on the bulk cap, 420V, or even better 450V. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8p4LSZAuidcumtozr6SFif.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/S4mJbocdYZ5xANqpfSdzof.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PsZ6GAvReCfaYFiwnxMSuf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aUVsG4zDZgravMCSx4x74g.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main FETs are installed in a full-bridge topology. An LLC resonant converter is also utilized to boost efficiency.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4T2czMESRsJLousRvCoywn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n8bBjSYEEchw6kRYyiwsDo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rGgx9cYbaF8ZjTTuAhHQQo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Four Nexperia FETs regulate the +12V rail. The minor rails are regulated by a pair of DC-DC converters. Six Infineon FETs are used in total and the common PWM controller is an ANPEC APW7159.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QhkRgTW2XfP8sq3opZpQQ9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rULYxh5zxUW74rejDpKBX9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DyyeV2E6f7gjgm6C3Kq8d9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The electrolytic filtering caps are provided by Chemi-Con and Rubycon. The KZE caps have low lifetime and a pretty large number of these is used in this PSU. The KY caps are much better, but more expensive, too. </p><p>Many polymer caps are also used, besides the electrolytic ones. They have increased tolerance to high operating temperatures, but they lack in capacity which is required for good transient response. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BbrkMhU4NKLE45XAT7dMjY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RDbswGZ8Wn5hkKnt43dFJZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB circuit uses an Excelliance MOS EM8569 PWM controller and in its secondary side we meet an MCC MBR1045ULPS SBR. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MZ5LcQuchLqVHCosQcSdFD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8k7zABGMHcUoxXVqxRBzoD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7FV3P3WQCet4wSBhEJbQxD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There is room for more polymer caps at the face of the modular board. Three out of the six KZE electrolytic caps are installed here. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wepgnjTD5HigocNnhTvknL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yrRMTvGWpraHqofvopsq3M.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9zSYaiBzbu5BKGBmUAZPJM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RsZwbjYUbQ7BoWCCtDkrRM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DyFSsBZXoQserzusTTHGZM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X4QZAGFCyKceubrvpwuVgM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3MDc3z6kdusqnXNvw9J4sM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We have no complaints about the soldering quality. </p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="surpervisor_ICs.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/pnGcWn6rMMqPdchHKxiKMe.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The supervisor IC is the Weltrend WT7527V which supports all crucial protections but  OTP (over temperature protection). The latter is implemented through another circuit. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YaDG727wjRHQDnRcxtRWXR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/npkDTjuNeAGiEL57UYAofR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/E37pL4BttbBjh5B794DGoR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The cooling fan is provided by Hong Hua, which seems to dominate the fan market for quite some time now. It uses a fluid dynamic bearing and it measures 120mm across. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="9dd69f6a-23bd-42b8-9c56-ca3dfaeebd04">            <a href="https://www.newegg.com/p/1HU-0272-00002?Description=XPG%20Core%20Reactor%20850&cm_re=XPG_Core%20Reactor%20850-_-9SIAHT8BH92586" data-model-name="XPG CORE Reactor 850W" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/FqeGZYsNZ4oV7BomCcBRp.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">XPG CORE Reactor 850W</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="768be5ca-ab1c-4fd9-b083-b34c74905e8e">            <a href="https://www.newegg.com/corsair-rmx-series-rm850x-cp-9020180-na-850w/p/N82E16817139234" data-model-name="Corsair RM850x" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/23mXWvZd6np9Uyw9cx6UQA.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM850x</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="e707cd71-6fa0-4cbe-8a0a-731c0ff473be">            <a href="https://www.newegg.com/seasonic-focus-gm-series-focus-gm-850-750w/p/N82E16817151231" data-model-name="Seasonic FOCUS GM-850" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.12%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/yvEe3oTCyu22hSVWNEw97W.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Seasonic FOCUS GM-850</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-10">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/WPh9nDbH28CR6oNz8Sx9gh.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eYXrDQqdoLnwMerr6FUcvh.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KzEWUYB3UxkmM6dbUVhtBi.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dBeq6bdmYjKc6e2CqG2Twi.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zipuk5z8ghnNo3Tt2Pc6Dj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BCxAqY3cZ4xYyFHQmK6STj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mmKGpdVRhuTsV58GuVBMjj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Z6732Kr97aFypizGyjW9zj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Load regulation is tight on all rails. </p><h2 id="hold-up-time-10">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/w52J7hcGUckTwqphCUo6j9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8xrCn5MuL9nQqVC2SGs5x9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Rz4Y6T2YS6iWyX6dQb9PCA.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zFMSnbbmU6a2dDK6G7vsSA.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RNf7edmXiDEQwNXTMXyStA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LJrMyeUjDU6bDrAgJgoyKB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/brrGchkuiuziGXeWCZHWkB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>With close to 21ms hold-up time, the corresponding ATX requirement is easily met. The power ok signal is accurate, too. </p><h2 id="inrush-current-10">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UzJ5oug2SFSnjpAjLmr3UG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NMxjpZfMntEgbwL9vZfFfG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current is low with 115V and at normal levels with 230V. </p><h2 id="10-110-load-tests-9">10-110% Load Tests</h2><p>These tests reveal the C850&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>5.263A</strong></td><td  ><strong>1.984A</strong></td><td  ><strong>1.984A</strong></td><td  ><strong>0.984A</strong></td><td  >84.956</td><td  >86.711%</td><td  >0</td><td  ><6.0</td><td  > 45.23°C</td><td  >0.953</td></tr><tr><td  >12.038V</td><td  >5.042V</td><td  >3.325V</td><td  >5.081V</td><td  >97.976</td><td  > 40.77°C</td><td  >115.19V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>11.560A</strong></td><td  ><strong>2.977A</strong></td><td  ><strong>2.981A</strong></td><td  ><strong>1.184A</strong></td><td  >170.024</td><td  >89.821%</td><td  >0</td><td  ><6.0</td><td  > 46.22°C</td><td  >0.973</td></tr><tr><td  >12.034V</td><td  >5.039V</td><td  >3.324V</td><td  >5.069V</td><td  >189.291</td><td  > 41.04°C</td><td  >115.19V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>18.200A</strong></td><td  ><strong>3.474A</strong></td><td  ><strong>3.475A</strong></td><td  ><strong>1.384A</strong></td><td  >255.028</td><td  >90.500%</td><td  >537</td><td  >9.5</td><td  > 41.20°C</td><td  >0.982</td></tr><tr><td  >12.032V</td><td  >5.038V</td><td  >3.322V</td><td  >5.058V</td><td  >281.800</td><td  > 47.07°C</td><td  >115.18V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>24.844A</strong></td><td  ><strong>3.971A</strong></td><td  ><strong>3.977A</strong></td><td  ><strong>1.585A</strong></td><td  >340.033</td><td  >90.610%</td><td  >543</td><td  >9.6</td><td  > 41.56°C</td><td  >0.985</td></tr><tr><td  >12.028V</td><td  >5.038V</td><td  >3.320V</td><td  >5.047V</td><td  >375.273</td><td  > 48.25°C</td><td  >115.18V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>31.139A</strong></td><td  ><strong>4.967A</strong></td><td  ><strong>4.975A</strong></td><td  ><strong>1.787A</strong></td><td  >424.868</td><td  >90.299%</td><td  >557</td><td  >9.9</td><td  > 42.04°C</td><td  >0.987</td></tr><tr><td  >12.022V</td><td  >5.035V</td><td  >3.318V</td><td  >5.036V</td><td  >470.511</td><td  > 49.09°C</td><td  >115.18V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>37.421A</strong></td><td  ><strong>5.964A</strong></td><td  ><strong>5.972A</strong></td><td  ><strong>1.991A</strong></td><td  >509.390</td><td  >89.661%</td><td  >818</td><td  >19.5</td><td  > 42.83°C</td><td  >0.988</td></tr><tr><td  >12.014V</td><td  >5.032V</td><td  >3.316V</td><td  >5.023V</td><td  >568.132</td><td  > 50.85°C</td><td  >115.17V</td></tr><tr><td  ><font><strong>7</strong></font></td><td  ><strong>43.785A</strong></td><td  ><strong>6.960A</strong></td><td  ><strong>6.970A</strong></td><td  ><strong>2.194A</strong></td><td  >594.699</td><td  >88.841%</td><td  >1197</td><td  >31.4</td><td  > 43.27°C</td><td  >0.989</td></tr><tr><td  >12.004V</td><td  >5.030V</td><td  >3.314V</td><td  >5.012V</td><td  >669.397</td><td  > 51.81°C</td><td  >115.17V</td></tr><tr><td  ><font><strong>8</strong></font></td><td  ><strong>50.161A</strong></td><td  ><strong>7.957A</strong></td><td  ><strong>7.969A</strong></td><td  ><strong>2.399A</strong></td><td  >680.036</td><td  >88.099%</td><td  >1664</td><td  >39.4</td><td  > 43.73°C</td><td  >0.990</td></tr><tr><td  >11.994V</td><td  >5.029V</td><td  >3.312V</td><td  >5.000V</td><td  >771.904</td><td  > 53.27°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>9</strong></font></td><td  ><strong>56.927A</strong></td><td  ><strong>8.455A</strong></td><td  ><strong>8.456A</strong></td><td  ><strong>2.403A</strong></td><td  >764.933</td><td  >87.297%</td><td  >2060</td><td  >44.3</td><td  > 44.30°C</td><td  >0.991</td></tr><tr><td  >11.988V</td><td  >5.027V</td><td  >3.310V</td><td  >4.994V</td><td  >876.238</td><td  > 54.52°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>10</strong></font></td><td  ><strong>63.437A</strong></td><td  ><strong>8.957A</strong></td><td  ><strong>8.974A</strong></td><td  ><strong>3.016A</strong></td><td  >849.744</td><td  >86.349%</td><td  >2086</td><td  >44.6</td><td  > 45.52°C</td><td  >0.992</td></tr><tr><td  >11.981V</td><td  >5.025V</td><td  >3.309V</td><td  >4.974V</td><td  >984.086</td><td  > 56.57°C</td><td  >115.15V</td></tr><tr><td  ><font><strong>11</strong></font></td><td  ><strong>70.541A</strong></td><td  ><strong>8.963A</strong></td><td  ><strong>8.980A</strong></td><td  ><strong>3.020A</strong></td><td  >934.497</td><td  >85.244%</td><td  >2096</td><td  >44.8</td><td  > 46.84°C</td><td  >0.992</td></tr><tr><td  >11.976V</td><td  >5.021V</td><td  >3.307V</td><td  >4.966V</td><td  >1096.260</td><td  > 58.77°C</td><td  >115.14V</td></tr><tr><td  ><font><strong>CL1</strong></font></td><td  ><strong>0.100A</strong></td><td  ><strong>11.999A</strong></td><td  ><strong>11.999A</strong></td><td  ><strong>0.000A</strong></td><td  >101.443</td><td  >84.686%</td><td  >563 </td><td  >10.1</td><td  > 42.45°C</td><td  >0.961</td></tr><tr><td  >12.041V</td><td  >5.034V</td><td  >3.320V</td><td  >5.088V</td><td  >119.787</td><td  > 49.45°C</td><td  >115.19V</td></tr><tr><td  ><font><strong>CL2</strong></font></td><td  ><strong>70.002A</strong></td><td  ><strong>0.999A</strong></td><td  ><strong>1.001A</strong></td><td  ><strong>1.000A</strong></td><td  >851.704</td><td  >86.788%</td><td  >2087 </td><td  >44.6</td><td  > 45.75°C</td><td  >0.991</td></tr><tr><td  >11.976V</td><td  >5.026V</td><td  >3.311V</td><td  >5.025V</td><td  >981.364</td><td  > 56.69°C</td><td  >115.14V</td></tr></tbody></table></div><p>There is no problem, at all, under high operating temperatures. The fan has to work at high speeds, though, to handle the heat load and this leads to loud operation. </p><h2 id="20-80w-load-tests-10">20-80W Load Tests</h2><p>In the following tests, we measure the C850&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.233A</strong></td><td  ><strong>0.494A</strong></td><td  ><strong>0.496A</strong></td><td  ><strong>0.196A</strong></td><td  >19.985</td><td  >70.569%</td><td  >0</td><td  ><6.0</td><td  >0.792</td></tr><tr><td  >12.040V</td><td  >5.039V</td><td  >3.326V</td><td  >5.103V</td><td  >28.320</td><td  >115.18V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>2.465A</strong></td><td  ><strong>0.992A</strong></td><td  ><strong>0.992A</strong></td><td  ><strong>0.392A</strong></td><td  >39.975</td><td  >80.609%</td><td  >0</td><td  ><6.0</td><td  >0.889</td></tr><tr><td  >12.040V</td><td  >5.039V</td><td  >3.326V</td><td  >5.098V</td><td  >49.591</td><td  >115.18V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>3.701A</strong></td><td  ><strong>1.488A</strong></td><td  ><strong>1.490A</strong></td><td  ><strong>0.589A</strong></td><td  >60.006</td><td  >84.613%</td><td  >0</td><td  ><6.0</td><td  >0.924</td></tr><tr><td  >12.039V</td><td  >5.038V</td><td  >3.325V</td><td  >5.092V</td><td  >70.918</td><td  >115.18V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>4.932A</strong></td><td  ><strong>1.982A</strong></td><td  ><strong>1.983A</strong></td><td  ><strong>0.786A</strong></td><td  >79.957</td><td  >86.132%</td><td  >0</td><td  ><6.0</td><td  >0.948</td></tr><tr><td  >12.036V</td><td  >5.046V</td><td  >3.326V</td><td  >5.087V</td><td  >92.831</td><td  >115.19V</td></tr></tbody></table></div><p>With the semi-passive operation active, there is no need for the fan to spin under light loads, even at higher than 35 degrees Celsius ambient temperature.</p><h2 id="2-or-10w-load-test-10">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.247A</strong></td><td  ><strong>0.214A</strong></td><td  ><strong>0.213A</strong></td><td  ><strong>0.053A</strong></td><td  >17.073</td><td  >65.414%</td><td  >0</td><td  ><6.0</td><td  >0.784</td></tr><tr><td  >12.039V</td><td  >5.049V</td><td  >3.327V</td><td  >5.110V</td><td  >26.100</td><td  >115.16V</td></tr></tbody></table></div><p>The C850 achieves high efficiency with 2% load, if its max-rated-capacity, but it cannot reach 70%.</p><h2 id="efficiency-3">Efficiency</h2><p>Next, we plotted a chart showing the C850’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GfynRUi7A5aGj24YYBc9YQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vifsn4Nvu5htCfAAmK4GkQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ut9Q8LvEvr2FRQRtVwsT2R.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GnHAfxx8BboFJtiwnDWzFR.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zEFzxmuM9CBC2u3vGseXZR.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>In the 10-100% load tests the overall efficiency doesn&apos;t meet the competition, but the overall efficiency score, which takes into account more than 1500 different load scenarios, tells a different story. With light and super-light loads, the C850 scores betters in our charts. </p><h2 id="5vsb-efficiency-10">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.511</td><td  >73.844%</td><td  >0.105</td></tr><tr><td  >5.110V</td><td  >0.692</td><td  >115.13V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.276</td><td  >76.499%</td><td  >0.217</td></tr><tr><td  >5.107V</td><td  >1.668</td><td  >115.13V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.804</td><td  >77.587%</td><td  >0.330</td></tr><tr><td  >5.101V</td><td  >3.614</td><td  >115.13V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.090</td><td  >77.544%</td><td  >0.400</td></tr><tr><td  >5.091V</td><td  >6.564</td><td  >115.13V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.621</td><td  >77.908%</td><td  >0.435</td></tr><tr><td  >5.081V</td><td  >9.782</td><td  >115.13V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>2.999A</strong></td><td  >15.122</td><td  >76.005%</td><td  >0.482</td></tr><tr><td  >5.043V</td><td  >19.896</td><td  >115.13V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Sj8SAg8ywLh95tBiDmxkuV.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rymRsv4zDjrwsEtjMWmLBW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail has satisfactory efficiency, which could be further increased, though. </p><h2 id="power-consumption-in-idle-and-standby-10">Power Consumption In Idle And Standby</h2><div ><table><caption>Idle & Standby Power Consumption</caption><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">12.087V</td><td  rowspan="2">4.928V</td><td  rowspan="2">3.313V</td><td  rowspan="2">4.929V</td><th  rowspan="2">8.148</th><td  >0.458</td></tr><tr><td  >115.2V</td></tr><tr><td  colspan="5" rowspan="2"><strong>Standby</strong></td><td  rowspan="2">0.172</td><td  >0.017</td></tr><tr><td  >115.2V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cvq2ZHpMbuGCQo8NwVAypZ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2NWGJHxL8TQNikVWLg3y4a.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The vampire power levels are low in both cases (115V and 230V).</p><h2 id="fan-rpm-delta-temperature-and-output-noise-10">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/jfy4DzVrqaCFQzyxGVvADe.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/jfy4DzVrqaCFQzyxGVvADe.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/Zq3qT4FeQXvrvSYR2uqPbi.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Zq3qT4FeQXvrvSYR2uqPbi.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Under high operating temperatures, the fan profile is definitely aggressive and the semi-passive mode doesn&apos;t last long. The PSU&apos;s compact dimensions don&apos;t help airflow and on top of that don&apos;t allow for a larger cooling fan. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/cnhz6rEd2cP3tUnk6iSnz.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/cnhz6rEd2cP3tUnk6iSnz.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/xZ85VzUzQCMFhiGWGwLTE6.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/xZ85VzUzQCMFhiGWGwLTE6.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>At normal ambient temperatures, the semi-passive operation doesn&apos;t last for long, as is the case with higher temperatures. The fan has a less aggressive speed profile in these conditions. It takes more than 600W load for the PSU to exceed 30 dBA noise output.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-10">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >      <p><strong>Protection Features</strong></p>    </td><td  > </td></tr><tr><td  >      <p><strong>OCP</strong></p>    </td><td  >      <p>12V: 97.8A (139.71%), 11.950V, 96.44mV ripple<br>      5V: 27.6A (138%), 5.026V<br>      3.3V: 27.3A (136.5%), 3.312V<br>      5VSB: 6.2A (206.67%), 4.968V</p>    </td></tr><tr><td  >      <p><strong>OPP</strong></p>    </td><td  >      <p>1176.91W (140.11%)</p>    </td></tr><tr><td  >      <p><strong>OTP</strong></p>    </td><td  >      <p>✓ (171°C @ 12V heat sink)</p>    </td></tr><tr><td  >      <p><strong>SCP</strong></p>    </td><td  >      <p>12V: ✓<br>      5V: ✓<br>      3.3V: ✓<br>      5VSB: ✓<br>      -12V: ✓</p>    </td></tr><tr><td  >      <p><strong>PWR_OK</strong></p>    </td><td  >      <p>Proper Operation</p>    </td></tr><tr><td  >      <p><strong>NLO</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>SIP</strong></p>    </td><td  >      <p>Surge: MOV<br>      Inrush: NTC Thermistor & Bypass Relay</p>    </td></tr></tbody></table></div><p>There is no point in allowing the minor rails going so high, since they are only lightly used by today&apos;s PCs. Moreover, the +12V rail goes much higher than 130%, but it manages to keep ripple within the ATX spec&apos;s requirements. Nonetheless, close to 100mV ripple is quite high so you should not overload the power supply. Finally, the over temperature protection is set high, since this PSU features a semi-passive operation.</p><h2 id="dc-power-sequencing-10">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HRHK3aJVSdKSnZsKcXHTc8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GEqjQcqBe2t2X35Yn3RUh8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/z8SiM9eyrzYWgzE5jcCjm8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are no issues here, since the 3.3V rail is always lower than the other two. </p><h2 id="cross-load-tests-10">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-10">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jL7MgxayAMHVQjRR7f56b.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jXPFw9b68WwvJczGSeAge.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Q48d9S5tTqZmVCkGrUX8i.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-5">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/dmuMBwBT6bbxKrpDYEc8V5.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/dmuMBwBT6bbxKrpDYEc8V5.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-5">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9KrRPjKkkRLe6i2Axqb4i8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/L3D4LZiSitKmfUw7Sk6um8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4ydDGeDkkM3rZUUSJwe5s8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gqnzRYyUJy2dpeiMG4Jtv8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-10">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/nVaajmFAmgQupSDtkGDk5E.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dzUJpYni9KXLA63TpewmBE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Qr8UV6rLDpJzstYL7cZFJE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ecJmQgswz9iTXcih5jQ7QE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dWi7BfQXH2HLLxb4R6SqVE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hottest part is the main transformer. The temperatures on the secondary side, including the DC-DC converters of the minor rails, stay at relatively low levels.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-10">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-10">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.027V</td><td  >11.868V</td><td  >1.32%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.044V</td><td  >4.929V</td><td  >2.28%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.324V</td><td  >3.175V</td><td  >4.48%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.071V</td><td  >5.021V</td><td  >0.99%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-10">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.028V</td><td  >11.879V</td><td  >1.24%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.042V</td><td  >4.929V</td><td  >2.24%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.324V</td><td  >3.174V</td><td  >4.51%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.071V</td><td  >5.037V</td><td  >0.67%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-10">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.028V</td><td  >11.895V</td><td  >1.11%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.041V</td><td  >4.926V</td><td  >2.28%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.324V</td><td  >3.173V</td><td  >4.54%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.070V</td><td  >5.034V</td><td  >0.71%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-10">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.012V</td><td  >11.920V</td><td  >0.77%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.037V</td><td  >4.921V</td><td  >2.30%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.319V</td><td  >3.163V</td><td  >4.70%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.039V</td><td  >4.991V</td><td  >0.95%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-10">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.012V</td><td  >11.918V</td><td  >0.78%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.036V</td><td  >4.920V</td><td  >2.30%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.319V</td><td  >3.163V</td><td  >4.70%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.039V</td><td  >4.983V</td><td  >1.11%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-10">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.012V</td><td  >11.916V</td><td  >0.80%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.035V</td><td  >4.914V</td><td  >2.40%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.318V</td><td  >3.160V</td><td  >4.76%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.039V</td><td  >4.999V</td><td  >0.79%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/njawP9riLnHtc7oKQa4LPb.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fty3mTyXzjuhqndj3s6HUb.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yv79YMmZZ2YECDm9ymdeXb.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ruSaGmc7cozSKAhA8qymab.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6kM9T2JVTYzWnfzUWW5Zeb.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s7mpHLaPzAo8AEh2qm9Nib.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xLEBszGxGvc9fABYTN8tmb.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xnx2AvUSHoEstbHMUN48qb.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The +12V rail performs quite well, and the same goes for the 5V and 5VSB rails. On the other hand, the 3.3V rail registers high voltage drops. In all tests, its voltage level falls below 3.2V. Thankfully, this rail is not loaded significantly in real-life conditions. Still, it should be able to keep its voltage above 3.2V in our tests. </p><h2 id="turn-on-transient-tests-10">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zbCQppvToHT3dncwbJto5j.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Rz3Ghc5xxRkSgXD84tZBBj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3rTAk8jZgHhRHGhNJgpvEj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Typically for the Seasonic Focus Plus platform, there are no spikes at 5VSB, and the +12V rail takes some time before it settles down to its nominal voltage.  </p><h2 id="power-supply-timing-tests-10">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >92ms</td><td  >325ms</td></tr><tr><th  ><strong>100%</strong></th><td  >84ms</td><td  >324ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode (ASM). This is an older design that didn&apos;t take into account ASM. Its successor will most likely support it. </p><h2 id="ripple-measurements-10">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>10% Load</strong></font></td><td  >10.1 mV</td><td  >10.0 mV</td><td  >10.8 mV</td><td  >8.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>20% Load</strong></font></td><td  >13.8 mV</td><td  >10.8 mV</td><td  >11.2 mV</td><td  >8.6 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>30% Load</strong></font></td><td  >16.4 mV</td><td  >11.5 mV</td><td  >12.1 mV</td><td  >9.1 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>40% Load</strong></font></td><td  >10.9 mV</td><td  >12.5 mV</td><td  >12.6 mV</td><td  >9.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>50% Load</strong></font></td><td  >10.7 mV</td><td  >14.1 mV</td><td  >14.2 mV</td><td  >9.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>60% Load</strong></font></td><td  >11.2 mV</td><td  >14.6 mV</td><td  >14.9 mV</td><td  >9.8 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>70% Load</strong></font></td><td  >11.9 mV</td><td  >15.5 mV</td><td  >15.5 mV</td><td  >10.3 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>80% Load</strong></font></td><td  >11.6 mV</td><td  >14.7 mV</td><td  >15.3 mV</td><td  >10.9 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>90% Load</strong></font></td><td  >13.4 mV</td><td  >16.7 mV</td><td  >16.3 mV</td><td  >13.3 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>100% Load</strong></font></td><td  >17.3 mV</td><td  >18.5 mV</td><td  >18.6 mV</td><td  >13.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>110% Load</strong></font></td><td  >18.5 mV</td><td  >19.2 mV</td><td  >17.8 mV</td><td  >13.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 1</strong></font></td><td  >13.3 mV</td><td  >17.8 mV</td><td  >15.1 mV</td><td  >10.6 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 2</strong></font></td><td  >17.3 mV</td><td  >14.1 mV</td><td  >13.9 mV</td><td  >11.7 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Y3M3aPxQBabNvaCyPP9JyC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/f44LPCKQaxJfnzQEFZ5M4D.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VqywEHUv5j8M5cDK43SB7D.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DhkyAGFEvfUvvXmnxevqAD.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Ripple suppression is excellent on all rails, especially at +12V which is the most important.</p><h2 id="ripple-at-full-load-10">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/oHNAfbu82NJTvRiXM4qSAL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GZjD7pL95B2SGZigKzy5aL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LC6hsKSEmqibNZGCz49ZfL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qaxhC8odj5vi5GJPe2C7kL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-9">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BCe6RRUmmufvfkgxrxpv2T.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kDjgtv4UTkJUgazdxb6v7T.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wJhpwhAMLp8eim2VbiP2CT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jpKZoeaMXXoSEXHDSao3GT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-10">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/srcQy3YgyhQDhGC43stUUX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SkLwUXAgKtLwtSMDMiHcaX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QEgt3oMvoNCMF9u96GBceX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CDWx4ESiu5ztML2TaCDoiX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-5">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Cmswqqq4CBKs2CzpVVN38k.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jFbeNbcTwsqf4Hs8d7efCk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/x7sFYe9uMb8WXPuumax6Hk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oVSk6E6riqJq9KJfwKZPNk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-8">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1461px;"><p class="vanilla-image-block" style="padding-top:34.77%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1461" height="508" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>This is the first Pre-Compliance measurement that we perform using our brand new Rigol RSA3015E-TG. It was high time to replace our old, but super-reliable, Rigol DSA815-TG. Five spurs exceed the corresponding limits in the 338-683 kHz range with the average detector. In QP mode, two spurs are close to the limit, but they don&apos;t exceed it. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-10">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/JJA2DJEC9aV99WgS37eRCn.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/JJA2DJEC9aV99WgS37eRCn.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Although it uses the same platform as the Seasonic Focus Plus Gold, our sample had a notable performance difference. The Seasonic unit shown in the charts uses the original Focus platform, while the NZXT C850 uses the newer version. Even the slightest change in parts can affect performance. </p><h2 id="noise-rating-10">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/Xkarrv8L7trF3fSnVCii53.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Xkarrv8L7trF3fSnVCii53.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The C850 has an edge here over the older Focus model, but it loses big time to the Corsair and XPG offerings. </p><h2 id="efficiency-rating-10">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/hxiNh78NwzSDefFGjYWQb7.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/hxiNh78NwzSDefFGjYWQb7.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The NZXT C Series provides satisfactory efficiency results, because it performs better than both Corsair offerings. The original Focus easily takes the lead, though. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>NZXT works closely with Seasonic, and this is a great advantage for this brand since it can use some of the best platforms that money can buy today. The C850 is identical to the Seasonic Focus GX-850, which is the newer version of the <a href="https://www.tomshardware.com/reviews/seasonic-focus-plus-gold-850-psu,5247.html" target="_blank">Seasonic SSR-850FX</a> that we evaluated a few years ago. </p><p>There are no significant parts changes with the only exception being the primary switching FETs and the bulk cap. The C850 uses a lower capacity bulk cap, but still, it manages to offer a quite long hold-up time. The differences in load regulation, efficiency, and hold-up time didn&apos;t allow the C850 to achieve the same overall performance score as Seasonic&apos;s offerings, and it also loses to the other good choices in this category, namely the <a href="https://www.tomshardware.com/reviews/corsair-rm850x-v2-psu,5568.html" target="_blank">Corsair RM850x</a> and the <a href="https://www.tomshardware.com/reviews/xpg-core-reactor-850w-power-supply-review" target="_blank">XPG Core Reactor 850</a>. The significant advantage that the C850 has over the older Seasonic Focus model with similar capacity (we haven&apos;t tested yet any of the newer revisions of the Focus units) is the lower overall noise output, which is achieved thanks to the less-aggressive fan speed profile.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/VKLhAAweDbwCtVi7YfHMeG.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/VKLhAAweDbwCtVi7YfHMeG.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Although you cannot call the C850 noisy under normal operating temperatures, at least, it cannot compete in this section with the Corsair RM and RMx offerings, and it also falls behind the XPG Core Reactor 850. Given the IR images that we took under non-optimal operating conditions and the efficiency levels of this platform, there is room for a more relaxed fan speed profile. Nonetheless, the ten-year warranty that NZXT offers on this product sets the limits, and Seasonic&apos;s engineers wanted to make sure that this PSU will outlive it, even under harsh conditions. Someone could argue here, though, that the Corsair models offer the same warranty with much more relaxed fan profiles.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Antec Signature Platinum 1300W Power Supply Review  ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/antec-signature-platinum-1300w-power-supply-review</link>
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                            <![CDATA[ If you need tons of power, the Antec Signature Platinum 1300 should be on top of your buying list. ]]>
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                                                                        <pubDate>Wed, 05 Aug 2020 22:00:02 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:27:55 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Antec Signature Platinum 1300W]]></media:description>                                                            <media:text><![CDATA[Antec Signature Platinum 1300W]]></media:text>
                                <media:title type="plain"><![CDATA[Antec Signature Platinum 1300W]]></media:title>
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                                <p>There are not many choices if you are after a high-capacity power supply, since the mining era is long gone, thankfully, so the need for powerful PSUs is diminished. Still, there are cases where more than 1000W of power is required (e.g., for video or other special purposes workstations), and in this category, Antec has a strong presence now with the Signature 1300 Platinum, which is also certified by <a href="https://www.cybenetics.com/index.php?option=database&params=1,0,19">Cybenetics</a>. Notable opponents of this unit are the mighty and super-expensive <a href="https://www.tomshardware.com/reviews/corsair-ax1600i-psu,5406.html">Corsair AX1600i</a> and <a href="https://www.tomshardware.com/reviews/evga-supernova-1600-t2-psu,5414.html">EVGA SuperNOVA 1600 T2</a>, which dominate the above 1000W category in our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best power supplies article</a>. In the same wattage, the Cooler Master V1300 Platinum is also an excellent choice, featuring a notably quieter operation compared to Antec&apos;s offering. </p><p>We have already evaluated the <a href="https://www.tomshardware.com/reviews/antec-signature-titanium-1000w-power-supply-review/6">Antec Signature Titanium 1000</a>, which scored very high in our tests and earned an editor&apos;s choice award. The strongest member of the Signature line is based on the same platform with the model above, offering notably higher capacity, which doesn&apos;t allow for 80 PLUS Titanium and Cybenetics ETA-A+ efficiency ratings, though. Still, the Signature 1300 achieves Platinum and ETA-A ratings, which are pretty tough to acquire, especially by PSUs with more than 1.2kW max power. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/G9fLsasCyT3qxAMmVxZY93.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/T7NdnMkXeekZRNFHwwmUG3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yEiNbMcUvUP8Q7od7kwDQ3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GBqxtZ7gYTkzvyF29RdZa3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M9bcDjfNZoVhyhRsKbUJh3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/284ar7PjpthadNBu5Q2Np3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6ax2LLx358JnbtkqBdCC44.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kR5aqerJXA4Km2k68EAXB4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8EzNAVjd5ELjvp7QzHWSJ4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The dimensions of the PSU are small, given the high capacity so that you won&apos;t have issues with any standard ATX chassis. A few years ago, it would be impossible to find such a strong power supply with less than 200mm depth, but thanks to the PSU downsizing trend, this is possible nowadays. The essential rest specifications include the fluid dynamic bearing fan, which measures 135mm across, and the ten-year warranty. Finally, this PSU also features the OC Link technology that we have seen in the Signature 1000 Titanium, allowing you to connect two PSUs which will work in tandem to power systems demanding more than 2.5kW of power! We don&apos;t believe that any user will need so much power; still, it is nice to have this option.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qMTe2trHWskphnKBzZczFC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bU8QKq5WvV4vfXWpYmGRkC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y7baBcqqqUS4Y4cRCiqN2D.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kfVu9nAWW4J326XwWngxKD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cqAvUS7nVDtCfQDrAQBaRE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wd4dTq2sdopdTXyK72RpgE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-11">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >      <p>Seasonic</p>    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>1300W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      <p>80 PLUS Platinum, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      <p>-</p>    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      <p>✓ (Fully)</p>    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      <p>135mm Fluid Dynamic Bearing Fan (HA13525H12F-Z)</p>    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✓ (selectable)</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>150 x 85 x 170mm</p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>2.12 kg (4.67 lb)</p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-11">Power Specifications</h2><div ><table><tbody><tr><td  ><strong>Rail</strong></td><td  > </td><td  ><strong>3.3V</strong></td><td  ><strong>5V</strong></td><td  ><strong>12V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>-12V</strong></td></tr><tr><td  ><strong>Max. Power</strong></td><td  ><strong>Amps</strong></td><td  >25</td><td  >25</td><td  >108</td><td  >3</td><td  >0.3</td></tr><tr><td  > </td><td  ><strong>Watts</strong></td><td  >125</td><td  >1296</td><td  >15</td><td  >3.6</td></tr><tr><td  ><strong>Total Max. Power (W)</strong></td><td  > </td><td  >1300</td><td  > </td><td  > </td><td  > </td><td  > </td></tr></tbody></table></div><h2 id="cables-amp-connectors-10">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Modular Cables</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (600mm)</th><td  >1</td><td  >1</td><td  >18-22AWG</td><td  >Yes</td></tr><tr><th  >4+4 pin EPS12V (650mm)</th><td  >2</td><td  >2</td><td  >18AWG</td><td  >Yes</td></tr><tr><th  >6+2 pin PCIe (670mm+70mm) </th><td  >6</td><td  >12</td><td  >18AWG</td><td  >Yes</td></tr><tr><th  >SATA (400mm+115mm+115mm+115mm)</th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (350mm+150mm+150mm+150mm)</th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (450mm+120mm+120mm)</th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (350mm+120mm)</th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >FDD Adapter (105mm)</th><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><th  >4-pin Molex to SATA 3.3V Adapter (150mm+150mm)</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  >OC Link Cable (460mm)</th><td  >1</td><td  >1</td><td  >24AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1400mm) -  C13 coupler</th><td  >1</td><td  >1</td><td  >14AWG</td><td  >-</td></tr></tbody></table></div><p>It is natural to find so many cables and connectors in such a high capacity power supply. So besides two EPS connectors, you will also get twelve PCIe, allowing you to install up to six high-end graphics cards. The number of peripheral connectors is increased, as well.</p><p>It is strange to see 18AWG gauges instead of thicker (16AWG) in a 1300W power supply. This would help in achieving lower voltage drops, and a bit higher efficiency levels, especially at increased loads, but on the other hand, the cables would be less flexible. The presence of in-cable caps is something that will let down several users because cable routing becomes tough. Finally, the ATX and EPS cables should be longer, given that this PSU is destined for huge chassis, but the AWG18 gauges set the limits in their length. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/i8xHHsUdK8HaovGRSbwxSj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rGHTBoYnysx6WMsvkzD2Z3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/A2Lbaa53c4hob6oo398FD8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hmy4MJC3AF6HPYmynyFmTA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NUrN7mZ8ZwU2x4VbqjSeHF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SQUvHbzqy7i5MCKJSUb9RJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BD4FQJdTPaGC46CxGR2eWN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5cxtzt4hn2Gwb7gwRXcPDE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fADuMJHGEx2qyaAPmkq4RE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JtnpwiKHYi9xSR8HeMPuYE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JHNYrSmCSynq67ZkrpVpfE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Kn8Ybgr3f4gqUMYqg7KAmE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ofxCzMxccUa9ZpDwj3exvE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PguVQGcR52pGpgwR8jrz2F.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4iwhCKriBBeqsux3KoFU8F.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3WWH7AGvoe5jKVXyG4T4FF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-11">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  >General Data</td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  >Primary Side</td></tr><tr><td  >Transient Filter</td><td  >6x Y caps, 3x X caps, 2x CM chokes, 1x MOV, 1x Discharger IC</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor (MF72 5D-20) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  >2x Vishay LVB2560 (600V, 25A @ 105°C)</td></tr><tr><td  >APFC MOSFETs</td><td  >2x Infineon IPP60R099C6 (650V, 24A @ 100°C, Rds(on): 0.099Ohm)</td></tr><tr><td  >APFC Boost Diode</td><td  >1x STMicroelectronics STPSC10H065D (650V, 10A @ 135°C)</td></tr><tr><td  >Hold-up Cap(s)</td><td  >1x Rubycon (400V, 820uF, 3,000h @ 105°C, MXK) & 1x Rubycon (400V, 470uF, 2,000h @ 105°C, MXH)</td></tr><tr><td  >Main Switchers</td><td  >4x Infineon IPP50R199CP (550V, 11A @ 100°C, Rds(on): 0.199Ohm)</td></tr><tr><td  ><p>IC Driver</p></td><td  ><p>2x Silicon Labs Si8230BD</p></td></tr><tr><td  >APFC Controller</td><td  >ON Semiconductor NPC1654</td></tr><tr><td  >Resonant Controller</td><td  >Champion CM6901T6X</td></tr><tr><td  >Topology</td><td  >Primary side: APFC, Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td  >Secondary Side</td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >8x Nexperia PSMN1R0-40YLD (40V, 198A @ 100°C, Rds(on): 1.93mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 6x Nexperia PSMN4R0-30YLD (30V, 67V @ 100°C, Rds(on): 6.6mOhm)<br>PWM Controllers: Anpec APW7159</td></tr><tr><td  >Filtering Capacitors</td><td  >Electrolytic: 4x Nippon Chemi-Con (105°C, W), 2x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 1x Nippon Chemi-Con (4-10,000h @ 105°C, KYB), 1x Nippon Chemi-Con (5-6,000h @ 105°C, KZH), 1x Nippon Chemi-Con (1-5,000h @ 105°C, KZE), 1x Rubycon (3-6,000h @ 105°C, YXG)<br> Polymer: 19x FPCAP, 14x NIC, 7 United Chemi-Con</td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7527V (OVP, UVP, OCP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA13525H12F-Z (135mm, 12V, 0.50A, Fluid Dynamic Bearing Fan)</td></tr><tr><td  >5VSB</td></tr><tr><td  >Rectifier</td><td  >1x STMicroelectronics STF6N65K3 FET (650V, 3A @ 100°C, 1.3Ohm)</td></tr><tr><td  >Standby PWM Controller</td><td  >Leadtrend LD7750R</td></tr><tr><td  >-12V</td><td  >-</td></tr><tr><td  >Buck Converter</td><td  >Lite-On LSP5523 (3A max output current )</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/NvdvL6vaPfu8bT3CHbsRKH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tK4jxGYzwuj2D9VSzAWgVH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FFwUw7RWCWFqcP5FHvaMfH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SA2bSAVeDTKNp95kM6XeqH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>This Antec unit uses the Seasonic Prime Platinum 1300W platform. The build quality is good, and the small PCB is overpopulated with components since this is a small power factory. The design is clean since no cables are used for power transfer purposes, and the heat sinks are compact, something that looks weird given the max power that this PSU can deliver.  </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DkbcCxkyqcEhEmScXKkS4T.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fEswzL4aUx6k6TVS2vG6CT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fKrhjbAcZkeHrCAaB9bQMT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RjXyJCqqs4nFNcqtPsctZT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j2gwW8RP2sK3PYt7Yg8sgT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4jFdaNAbumDftFic6w4YrT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter uses all necessary parts to deal with power spikes and incoming/outcoming EMI noise. The NTC thermistor has 5 Ohms (+-20%) max resistance, so it does an excellent job in suppressing the inrush currents that the large bulk caps can produce. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/6WCBtQFdMEYC6t4LbsGbpZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LAUsoUUEUPvPhoYZYVV8xZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The pair of bridge rectifiers can handle up to 50A of current. This is overkill, even for a 1.3kW PSU. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/XC8UWpGfykmcbEuMuz7dWg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RNam59Znta47df7ypWqWhg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YfMyqMBVNzJQtZYrdoUnsg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yrwKmqeV89ei88n267Tmyg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter uses two Infineon FETs and a single boost diode (<a href="https://www.st.com/content/ccc/resource/technical/document/datasheet/42/55/37/00/16/98/43/b3/DM00063471.pdf/files/DM00063471.pdf/jcr:content/translations/en.DM00063471.pdf">STPSC10H065D</a>). On Semiconductor provides the APFC controller, and its model number is <a href="https://www.onsemi.com/pub/Collateral/NCP1654-D.PDF">NPC1654</a>. Finally, the hold-up caps are two Rybycons, with 1290uF combined capacity, which is enough to allow for a longer than 17ms hold-up time. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mfdK7uRpj8befK24hb7K4o.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ommMz4VjCnbtCcVv5TXtBo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Mux8w3awGBTb4ZypH4vLKo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CcsMNu43hrmpW2bSoSqbTo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B6wQ2pJpB4aG3DzuDxYp.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/taX5YnNwwAg4QrfNZojp5U.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main switching FETs are four Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP50R199CP-DS-v02_00-en.pdf?fileId=db3a30432313ff5e0123850e86a865bc">IPP50R199CP</a> configured in a full-bridge topology. There is also an LLC resonant converter for increased efficiency. The resonant controller is the typical Champion <a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901T6.pdf">CM6901T6X</a>, which is used by the majority of high-end PSUs nowadays. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2jmnPnmCw7ME24wo8kNXh8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fpTtuk64iaXwkCHTcz6sp8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7CMMGX3k3Le66CA8To3LoB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Eight FETs, installed on the solder side of the main PCB, handle the +12V rail. A pair of VRMs generate the minor rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/tTAMBsHLVjLc6Ta7TyFANF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HkBCgdW7ZtSjTzoeayfdVF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HMEPeBAmpRPmMXyU6ooLeF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There aren&apos;t many electrolytic caps; Chemi-Con and Rubycon provide the ones that Seasonic used. The number of polymer caps is vast, and their suppliers are FPCAP, NIC, and Chemi-Con</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Zpkqd5N2cMYLApMckwaYLL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FRNvC9ddxUcEfgUG2qCaBM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sXjM6wa6B4VXXpYGytyKoM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The modular board uses bus bars, to transfer power to the sockets. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ND7WVkb5i2PNHK79AAQj6j.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xDKB9efDScyzmFgTaY9MLj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The supervisor IC, a Weltrend WT7527V, is installed on this board. On the left side, the small IC is an operational amplifier, and four optocouplers bridge the two separate parts of this PCB. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/64YfvKtqArpEpTMyJRfn9J.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kFDENL9tNZH8DVp3BHPDHJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iCXdsAL7JZP84h32ZCBcSJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The primary rectifier of the 5VSB rail is an <a href="https://www.st.com/resource/en/datasheet/stf6n65k3.pdf">STF6N65K3</a> FET, while Leadtrend provides the PWM controller. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aJEXtr3Cwa4ZixKa48FjjZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4wp7e7WAuqUpDmhHESuf3a.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C5HK3jFR8T8c2LhMKT5yJa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mVHiAFuTerJDMEKLq9jGXa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AjyM2RkUczQ8ktyj6YsJga.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zeSmU26q9rTrV26eknFEua.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>As expected, in such an expensive PSU, the soldering quality is good. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rw8omENg424h8FGNSzigYP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/D5mn2TCeyyRSKA8uP3NJhP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The cooling fan is by Hong Hua, and it uses a fluid dynamic bearing. It measures 135mm across, and it can draw up to 0.5A of current, so it is quite strong. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="759eb27d-ea1c-427f-8475-814d9e9615a1">            <a href="https://www.newegg.com/corsair-ax1600i-cp-9020087-na-1600w/p/N82E16817139226" data-model-name="Corsair AX1600i" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:66.84%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/DTGbbEzTEAfhzVCmf37YJA.jpeg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair AX1600i</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star half"></span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="90" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="07b65bfe-417e-44fc-bf85-a401a9e4d458">            <a href="https://www.newegg.com/evga-220-t2-1600-x1-1600w/p/N82E16817438041?Description=EVGA%20SuperNOVA%201600%20T2&cm_re=EVGA_SuperNOVA_1600_T2-_-17-438-041-_-Product&quicklink=true" data-model-name="EVGA SuperNOVA 1600 T2" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:81.60%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/hdr66d6uuxDYBHL67D5U3J.jpeg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">EVGA SuperNOVA 1600 T2</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star half"></span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="90" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="a4bf5727-7f58-4f3b-8b34-cb50f037e303">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https%3A%2F%2Fwww.newegg.com%2FProduct%2FProduct.aspx%3Fitem%3DN82E16817139233" data-model-name="Cooler Master V1300" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:65.73%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/UYHjNhabjQbXbTUtadn4oN.jpeg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Cooler Master V1300</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-11">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40W up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ATshx5hX4w9QCFETTxfd8Y.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QhvRptDizKQcVppwdDtvHY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DCR2t5YGeCRrsYADDZfvPY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xAbYyZV4jDxa8eBBQKxXWY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZkCJbtkuV4APrSu7SiNuaY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y9e4FrA6tf9VSq5n67UhhY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MFkHvsEZbNrv5ZGAYc8ynY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hp6eBwoANQzxtuRdytuxBZ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The load regulation is tight on all rails but 5VSB, where it doesn&apos;t play a significant role, from the moment the voltage in this rail is within spec. </p><h2 id="hold-up-time-11">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QATBxrdpBvWs7KMJheTSni.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qpQ2Pbd9oEZr8QiPvkto2j.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zL5Tn3hEh5ToMEcaGKYa7j.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EtCob2SiVXJNKKva6nerEj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5Zjztsu9kxa56jtfa24eMj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BYwuHeYrUPZ4ehCBKgh3Vj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xxBerwc9E4oGbtRN68zhcj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up reaches 21ms and the power ok signal is accurate.</p><h2 id="inrush-current-11">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/dhWdrWWxDAQiwMLU7oPiqA.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZNRjVkqag3BTHLayfaNDMC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current is low, with both voltage inputs. The NTC thermistor-relay combo does a fantastic job. </p><h2 id="10-110-load-tests-10">10-110% Load Tests</h2><p>These tests reveal the SP1300&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>8.804A</strong></td><td  ><strong>1.955A</strong></td><td  ><strong>1.964A</strong></td><td  ><strong>0.982A</strong></td><td  >129.982</td><td  >87.170%</td><td  >867</td><td  >30.4</td><td  > 40.86°C</td><td  >0.985</td></tr><tr><td  >12.311V</td><td  >5.113V</td><td  >3.362V</td><td  >5.089V</td><td  >149.114</td><td  > 45.01°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>18.613A</strong></td><td  ><strong>2.936A</strong></td><td  ><strong>2.947A</strong></td><td  ><strong>1.182A</strong></td><td  >260.008</td><td  >90.917%</td><td  >882</td><td  >30.8</td><td  > 41.41°C</td><td  >0.985</td></tr><tr><td  >12.309V</td><td  >5.110V</td><td  >3.359V</td><td  >5.075V</td><td  >285.983</td><td  > 46.11°C</td><td  >115.15V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>28.723A</strong></td><td  ><strong>3.427A</strong></td><td  ><strong>3.440A</strong></td><td  ><strong>1.383A</strong></td><td  >389.515</td><td  >91.844%</td><td  >965</td><td  >34.1</td><td  > 41.51°C</td><td  >0.991</td></tr><tr><td  >12.306V</td><td  >5.107V</td><td  >3.357V</td><td  >5.061V</td><td  >424.106</td><td  > 46.47°C</td><td  >115.15V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>38.877A</strong></td><td  ><strong>3.920A</strong></td><td  ><strong>3.934A</strong></td><td  ><strong>1.585A</strong></td><td  >519.511</td><td  >91.915%</td><td  >1386</td><td  >42.8</td><td  > 41.82°C</td><td  >0.994</td></tr><tr><td  >12.303V</td><td  >5.104V</td><td  >3.355V</td><td  >5.048V</td><td  >565.206</td><td  > 47.82°C</td><td  >115.14V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>48.709A</strong></td><td  ><strong>4.902A</strong></td><td  ><strong>4.924A</strong></td><td  ><strong>1.788A</strong></td><td  >649.632</td><td  >91.549%</td><td  >1814</td><td  >48.5</td><td  > 42.29°C</td><td  >0.996</td></tr><tr><td  >12.300V</td><td  >5.101V</td><td  >3.352V</td><td  >5.034V</td><td  >709.604</td><td  > 48.77°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>58.550A</strong></td><td  ><strong>5.886A</strong></td><td  ><strong>5.912A</strong></td><td  ><strong>1.992A</strong></td><td  >779.796</td><td  >90.895%</td><td  >2259</td><td  >53.6</td><td  > 42.85°C</td><td  >0.997</td></tr><tr><td  >12.297V</td><td  >5.098V</td><td  >3.349V</td><td  >5.020V</td><td  >857.911</td><td  > 49.81°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>7</strong></font></td><td  ><strong>68.384A</strong></td><td  ><strong>6.872A</strong></td><td  ><strong>6.903A</strong></td><td  ><strong>2.196A</strong></td><td  >909.892</td><td  >90.392%</td><td  >2315</td><td  >53.7</td><td  > 43.85°C</td><td  >0.998</td></tr><tr><td  >12.295V</td><td  >5.095V</td><td  >3.347V</td><td  >5.006V</td><td  >1006.608</td><td  > 51.32°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>8</strong></font></td><td  ><strong>78.231A</strong></td><td  ><strong>7.859A</strong></td><td  ><strong>7.894A</strong></td><td  ><strong>2.403A</strong></td><td  >1040.027</td><td  >89.765%</td><td  >2314</td><td  >53.7</td><td  > 43.92°C</td><td  >0.998</td></tr><tr><td  >12.292V</td><td  >5.092V</td><td  >3.344V</td><td  >4.992V</td><td  >1158.616</td><td  > 52.15°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>9</strong></font></td><td  ><strong>88.460A</strong></td><td  ><strong>8.354A</strong></td><td  ><strong>8.378A</strong></td><td  ><strong>2.407A</strong></td><td  >1169.763</td><td  >89.031%</td><td  >2311</td><td  >53.7</td><td  > 44.28°C</td><td  >0.998</td></tr><tr><td  >12.291V</td><td  >5.089V</td><td  >3.341V</td><td  >4.984V</td><td  >1313.890</td><td  > 53.17°C</td><td  >115.10V</td></tr><tr><td  ><font><strong>10</strong></font></td><td  ><strong>98.468A</strong></td><td  ><strong>8.850A</strong></td><td  ><strong>8.894A</strong></td><td  ><strong>3.024A</strong></td><td  >1299.777</td><td  >88.083%</td><td  >2313</td><td  >53.7</td><td  > 45.86°C</td><td  >0.998</td></tr><tr><td  >12.289V</td><td  >5.086V</td><td  >3.339V</td><td  >4.959V</td><td  >1475.626</td><td  > 55.19°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>11</strong></font></td><td  ><strong>109.069A</strong></td><td  ><strong>8.854A</strong></td><td  ><strong>8.897A</strong></td><td  ><strong>3.029A</strong></td><td  >1429.819</td><td  >86.989%</td><td  >2315</td><td  >53.7</td><td  > 46.89°C</td><td  >0.998</td></tr><tr><td  >12.287V</td><td  >5.083V</td><td  >3.337V</td><td  >4.950V</td><td  >1643.680</td><td  > 56.81°C</td><td  >115.08V</td></tr><tr><td  ><font><strong>CL1</strong></font></td><td  ><strong>0.100A</strong></td><td  ><strong>15.001A</strong></td><td  ><strong>14.997A</strong></td><td  ><strong>0.000A</strong></td><td  >128.081</td><td  >82.077%</td><td  >2290 </td><td  >53.7</td><td  > 42.80°C</td><td  >0.987</td></tr><tr><td  >12.318V</td><td  >5.104V</td><td  >3.353V</td><td  >5.103V</td><td  >156.049</td><td  > 49.31°C</td><td  >115.17V</td></tr><tr><td  ><font><strong>CL2</strong></font></td><td  ><strong>108.016A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>0.999A</strong></td><td  ><strong>1.000A</strong></td><td  >1340.532</td><td  >88.128%</td><td  >2307 </td><td  >53.7</td><td  > 46.07°C</td><td  >0.998</td></tr><tr><td  >12.286V</td><td  >5.092V</td><td  >3.345V</td><td  >5.013V</td><td  >1521.123</td><td  > 56.49°C</td><td  >115.09V</td></tr></tbody></table></div><p>The SP1300 doesn&apos;t have a problem under high operating temperatures, but most likely, you won&apos;t be able to tolerate the increased noise output, with its fan spinning at 2300RPM. The compact PCB doesn&apos;t allow for optimal airflow since it is overloaded with the parts required for >1300W output, so the fan has to work over hours. Still, given the platform&apos;s high efficiency, the fan speed profile could be more relaxed.</p><h2 id="20-80w-load-tests-11">20-80W Load Tests</h2><p>In the following tests, we measure the SP1300&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.204A</strong></td><td  ><strong>0.489A</strong></td><td  ><strong>0.489A</strong></td><td  ><strong>0.196A</strong></td><td  >19.977</td><td  >62.961%</td><td  >0</td><td  ><6.0</td><td  >0.851</td></tr><tr><td  >12.311V</td><td  >5.122V</td><td  >3.369V</td><td  >5.115V</td><td  >31.729</td><td  >115.14V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>2.410A</strong></td><td  ><strong>0.978A</strong></td><td  ><strong>0.980A</strong></td><td  ><strong>0.391A</strong></td><td  >39.970</td><td  >74.432%</td><td  >840</td><td  >29.3</td><td  >0.927</td></tr><tr><td  >12.311V</td><td  >5.117V</td><td  >3.365V</td><td  >5.109V</td><td  >53.700</td><td  >115.16V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>3.619A</strong></td><td  ><strong>1.467A</strong></td><td  ><strong>1.470A</strong></td><td  ><strong>0.588A</strong></td><td  >60.002</td><td  >79.651%</td><td  >843</td><td  >29.5</td><td  >0.952</td></tr><tr><td  >12.311V</td><td  >5.115V</td><td  >3.364V</td><td  >5.102V</td><td  >75.331</td><td  >115.16V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>4.822A</strong></td><td  ><strong>1.953A</strong></td><td  ><strong>1.962A</strong></td><td  ><strong>0.785A</strong></td><td  >79.955</td><td  >83.337%</td><td  >851</td><td  >29.8</td><td  >0.971</td></tr><tr><td  >12.312V</td><td  >5.114V</td><td  >3.363V</td><td  >5.096V</td><td  >95.942</td><td  >115.16V</td></tr></tbody></table></div><p>Even at light loads, but with more than 35 degrees Celsius ambient, the fan&apos;s noise is increased. </p><h2 id="2-or-10w-load-test-11">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec requires 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.952A</strong></td><td  ><strong>0.273A</strong></td><td  ><strong>0.273A</strong></td><td  ><strong>0.054A</strong></td><td  >26.619</td><td  >68.147%</td><td  >0</td><td  ><6.0</td><td  >0.887</td></tr><tr><td  >12.308V</td><td  >5.121V</td><td  >3.368V</td><td  >5.117V</td><td  >39.061</td><td  >115.19V</td></tr></tbody></table></div><p>Although it cannot reach the 70% threshold that the newest ATX spec (2.52) requires, it is still impressive to see a 1300W PSU achieving so high efficiency with 2% of its max-rated-capacity load.</p><h2 id="efficiency-4">Efficiency</h2><p>Next, we plotted a chart showing the SP1300&apos;s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DYHeGw9AbQTzMYwwfjth7o.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3eXBg68bi2cRKr2DUfBis.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gz8tBRzMYqTGUL3jLEgGW3.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7PVpQZmgcjtgQEMt8VRbv3.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hdMUCKCq4UynKULMPJpbU4.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The efficiency levels are satisfactory in all load ranges. </p><h2 id="5vsb-efficiency-11">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.512</td><td  >73.669%</td><td  >0.071</td></tr><tr><td  >5.118V</td><td  >0.695</td><td  >115.16V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.278</td><td  >78.405%</td><td  >0.155</td></tr><tr><td  >5.114V</td><td  >1.630</td><td  >115.16V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.809</td><td  >80.533%</td><td  >0.269</td></tr><tr><td  >5.107V</td><td  >3.488</td><td  >115.16V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.096</td><td  >80.646%</td><td  >0.362</td></tr><tr><td  >5.097V</td><td  >6.319</td><td  >115.16V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.626</td><td  >80.265%</td><td  >0.415</td></tr><tr><td  >5.084V</td><td  >9.501</td><td  >115.16V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>2.999A</strong></td><td  >15.143</td><td  >79.059%</td><td  >0.487</td></tr><tr><td  >5.049V</td><td  >19.154</td><td  >115.16V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/SDmThGH3KiCSJKsqVbNBBJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4EbXcgj9grDzx3GZQsQSMJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>It is nice to see an efficient 5VSB rail.</p><h2 id="power-consumption-in-idle-and-standby-11">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>Idle</strong></font></td><td  >12.305V</td><td  >5.123V</td><td  >3.369V</td><td  >5.121V</td><td  >11.445</td><td  >0.573</td></tr><tr><td  >115.2V</td></tr><tr><td  ><font><strong>Standby</strong></font></td><td  >0.057</td><td  >0.006</td></tr><tr><td  >115.2V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/EB5Swi3s3bbFauWr3ZXtSP.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bDaSmhkPDy3SKgxzVUVGSQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The phantom power levels are low, with both voltage inputs. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-11">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/6SUrQCGuaxZjSBzVwsqUgW.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/6SUrQCGuaxZjSBzVwsqUgW.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/YBFPGPdWDpUBiy5VLFmG5d.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/YBFPGPdWDpUBiy5VLFmG5d.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan profile is aggressive. This is expected, to a degree, at least, given the compact dimensions and the high power levels that this platform can deliver. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/KkfzXMicwYXVpQyAKVu6Ko.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/KkfzXMicwYXVpQyAKVu6Ko.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/joeqhHuEa8quDhUfRwUnAA.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/joeqhHuEa8quDhUfRwUnAA.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Up to 450W, the PSU&apos;s noise is kept low, but with higher loads (especially >820W) things change, dramatically. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-11">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >      <p><strong>Protection Features</strong></p>    </td><td  > </td></tr><tr><td  >      <p><strong>OCP</strong></p>    </td><td  >      <p>12V: 146A (135.19%), 12.24V<br>      5V: 30.2A (120.8%), 5.107V<br>      3.3V: 31.5A (126%), 3.351V<br>      5VSB: 3.8A (126.67%), 5.026V</p>    </td></tr><tr><td  >      <p><strong>OPP</strong></p>    </td><td  >      <p>1802.69W (138.67%)</p>    </td></tr><tr><td  >      <p><strong>OTP</strong></p>    </td><td  >      <p>✓ (151°C @ 12V Heat Sink)</p>    </td></tr><tr><td  >      <p><strong>SCP</strong></p>    </td><td  >      <p>12V: ✓<br>      5V: ✓<br>      3.3V: ✓<br>      5VSB: ✓<br>      -12V: ✓</p>    </td></tr><tr><td  >      <p><strong>PWR_OK</strong></p>    </td><td  >      <p>Proper Operation</p>    </td></tr><tr><td  >      <p><strong>NLO</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>SIP</strong></p>    </td><td  >      Surge: MOV Inrush: NTC Thermistor & Bypass Relay    </td></tr></tbody></table></div><p>This is a highly capable and powerful platform. Still, we would like to see within 130% OCP at +12V and OPP. There are no-load regulation or ripple issues at such high loads, but at high operating temperatures, things might change under the same load conditions. Moreover, there is no need, in such a high capacity PSU, to provide such a large overpower window. </p><h2 id="dc-power-sequencing-11">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zJw8fApk4S2YWSr5HVUYBa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dntB2gkJBTUyRv2CQaLnea.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7EKvmJ8y4sbQLQYb32Z8mb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail is lower than the other two in all cases, so there are no issues here. </p><h2 id="cross-load-tests-11">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-11">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/AQZo9EWFjP7Goi7Eu7o48A.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GBcTSx26uPCFZgLhcNFpqA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rtttnXL6MtnHRfx9LJ4dNB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-6">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/Crjw6FWug4TK36puMCtieG.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Crjw6FWug4TK36puMCtieG.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-6">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/6tAXNVma2735qhPffScijN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kCNYAgYRLFLVnYMXwBPrvN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kU9nh3VB7WX3EMJbRUVKfP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dUq7Qf7UPXnBzSntzBwE4Q.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-11">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YBjPxMMZwpPJieGvELZScX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4LFaWamvuWdwyv2jud5bmX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P5Dy4XD39LRGx34sDWVAwX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mzVCj7HGcKZhfmrk8FiCbY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sjFXBEVx6NgiaCF6YBJTiY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j2PVv5vMi8JeFeWQHHBasY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P4Vr2siV4w5M8MNN6eszyY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We didn&apos;t notice increased temperatures, despite the 650W load with the fan disconnected. The hottest part during these tests was the main transformer. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-11">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-11">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.305V</td><td  >12.210V</td><td  >0.77%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.110V</td><td  >5.026V</td><td  >1.64%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.359V</td><td  >3.215V</td><td  >4.29%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.074V</td><td  >5.029V</td><td  >0.89%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-11">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.303V</td><td  >12.212V</td><td  >0.74%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.111V</td><td  >5.024V</td><td  >1.70%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.359V</td><td  >3.217V</td><td  >4.23%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.074V</td><td  >5.042V</td><td  >0.63%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-11">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.302V</td><td  >12.221V</td><td  >0.66%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.111V</td><td  >5.026V</td><td  >1.66%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.359V</td><td  >3.226V</td><td  >3.96%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.074V</td><td  >5.037V</td><td  >0.73%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-11">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.294V</td><td  >12.239V</td><td  >0.45%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.102V</td><td  >5.012V</td><td  >1.76%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.352V</td><td  >3.201V</td><td  >4.50%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.033V</td><td  >4.982V</td><td  >1.01%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-11">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.292V</td><td  >12.236V</td><td  >0.46%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.103V</td><td  >5.013V</td><td  >1.76%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.352V</td><td  >3.201V</td><td  >4.50%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.033V</td><td  >4.996V</td><td  >0.74%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-11">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.290V</td><td  >12.232V</td><td  >0.47%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.103V</td><td  >5.012V</td><td  >1.78%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.352V</td><td  >3.203V</td><td  >4.45%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.033V</td><td  >4.995V</td><td  >0.76%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/bUGNMFDjNNy4o2JEKeTcqA.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KAdQMWMtRmBjpbLTT6vwyA.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iDEEX4fLPFzb9vFtQoN97B.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xhWRDJGxk48gvpdTYcnPDB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b4VDHhnuNuALL5j3oZnE4Q.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WWGrSKgXTxgAhgmhhmtdGQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GkaujvdXvM5sfhYc7TAXLQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YTq49DnZ2DHnPJHdWkd2SQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The SP1300 has an excellent transient response at +12V. The performance remains high at 5V and 5VSB, and the 3.3V rail manages to keep its voltage above 3.2V, in all tests. </p><h2 id="turn-on-transient-tests-11">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU&apos;s response in simpler transient load scenarios—during its power-on phase. Ideally, we don&apos;t want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/U4sqWKnAMJy8fiSjab4kiL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2Y2qweLVTfEZxZRo63hmDM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JMA6Jt7E5WfeSbtVvZjwYM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The rise time at 5VSB exceeds 20ms, and this is an issue according to the ATX spec, which requires the rise time to be within the 0.2-20ms range. </p><h2 id="power-supply-timing-tests-11">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >84ms</td><td  >318ms</td></tr><tr><th  ><strong>100%</strong></th><td  >262ms</td><td  >316ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode, which is recommended by the newest ATX spec (v2.52). Moreover, the power-on time is notably increased in the second test. </p><h2 id="ripple-measurements-11">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>10% Load</strong></font></td><td  >8.8 mV</td><td  >7.4 mV</td><td  >11.5 mV</td><td  >4.9 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>20% Load</strong></font></td><td  >11.7 mV</td><td  >7.2 mV</td><td  >12.8 mV</td><td  >5.1 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>30% Load</strong></font></td><td  >9.4 mV</td><td  >7.6 mV</td><td  >12.8 mV</td><td  >5.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>40% Load</strong></font></td><td  >7.2 mV</td><td  >7.6 mV</td><td  >13.4 mV</td><td  >6.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>50% Load</strong></font></td><td  >7.3 mV</td><td  >8.3 mV</td><td  >14.7 mV</td><td  >6.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>60% Load</strong></font></td><td  >8.6 mV</td><td  >8.6 mV</td><td  >15.2 mV</td><td  >7.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>70% Load</strong></font></td><td  >8.6 mV</td><td  >8.9 mV</td><td  >17.2 mV</td><td  >8.0 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>80% Load</strong></font></td><td  >9.1 mV</td><td  >10.7 mV</td><td  >18.2 mV</td><td  >8.9 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>90% Load</strong></font></td><td  >15.6 mV</td><td  >11.8 mV</td><td  >19.2 mV</td><td  >9.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>100% Load</strong></font></td><td  >27.0 mV</td><td  >13.6 mV</td><td  >20.4 mV</td><td  >12.1 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>110% Load</strong></font></td><td  >27.5 mV</td><td  >13.2 mV</td><td  >21.7 mV</td><td  >12.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 1</strong></font></td><td  >16.0 mV</td><td  >10.9 mV</td><td  >20.2 mV</td><td  >7.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 2</strong></font></td><td  >26.0 mV</td><td  >8.7 mV</td><td  >15.0 mV</td><td  >11.2 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Nox6eVaEGBAd7m45FoJdkY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ynzHumo8KpV6RYChS4SCrY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7S3R8Sv8vcwryeKpbVa2wY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cPYu5WUyrk2erVHZXJLX2Z.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ripple suppression is very good, especially if we take into account the PSU&apos;s max power. </p><h2 id="ripple-at-full-load-11">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GPVXUZr4AGNFKG4aMTzRMg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fV2nZmKvBte9JeaSRjzyRg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m2KUevFmWycMoC7tSWDnWg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pdPdpik3DEZaQFuutX9Wbg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-10">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jNENAKPTXnc8rAMeSaKMjj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DXY84QrH6JZ3kwbtTQDRpj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aW6nD4rtP4d6XnUbqSpgRk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NDhmtgJ8McMWKwMe2KofWk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-11">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GVEUnuVbr3WZpx6wLAitm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cTfBtNVrUkJW4VTrqEBxr.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kHts9DRrNJ5ZsKQgn2twx.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hHg2rprEqBysPQboKntz43.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-6">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/EdL2Yq3QVk69CwpisDx2r7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XvmXFgTisespXc7tTVQGw7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PWWwkhKddN55BCApyg3238.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/A6KLRfd9VYudfaCNyNRF78.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-9">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1254px;"><p class="vanilla-image-block" style="padding-top:35.17%;"><img id="" name="EMI.png" alt="" src="https://cdn.mos.cms.futurecdn.net/cG4gU7RXCQ46FBHv6cwBFH.png" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1254" height="441" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/cG4gU7RXCQ46FBHv6cwBFH.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Three spurs are exceeding the limits with the AVG EMI detector, but everything is fine with the QP EMI detector, which is more accurate. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-11">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/d9KPM3KLGhg7WqP4njNxjS.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/d9KPM3KLGhg7WqP4njNxjS.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance is high, but the Seasonic Prime Platinum 1200 scores notably higher. </p><h2 id="noise-rating-11">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/ARX2C38CDMY9iDXoTEPiPV.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ARX2C38CDMY9iDXoTEPiPV.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall noise output exceeds 45 dBA, because of the super-aggressive fan speed profile. </p><h2 id="efficiency-rating-11">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/q8BdK9pxNA7gJ2V84WSnUa.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/q8BdK9pxNA7gJ2V84WSnUa.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>This is a highly efficient platform, with almost 90% overall efficiency throughout its entire operating range.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>Usually, the Signature 1300 Platinum has a ten-dollar lower price tag than its 1000 Titanium sibling, and its MSRP is notably below the $300 mark. Nonetheless, because of the Covid-19 outbreak, the prices in all IT products have increased, so if you manage to find a Signature 1300, you will pay way more now. There are not many high-capacity PSUs offering this kind of wattage nowadays, mostly because there is no need for more than 1kW power in the majority of PC systems. Only if you want to build a special purpose workstation, might you need so much power.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/8cnjRvWMBneBg7zvB8seHh.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/8cnjRvWMBneBg7zvB8seHh.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>As we expected, the Signature 1000 Titanium performs better than the Signature 1300 Platinum, thanks to the notably lower max power. The lower the power levels, the easier it is to keep ripple low and achieve tight load regulation. Moreover, the thermal loads are lower, so you don&apos;t have to push the fan speed profile. Still, 300W more are a lot, especially if you plan to install several energy-hungry GPUs into your system and the 1803W that the SP1300 delivered before the triggering of the over power protection look impressive. </p><p>In terms of pure performance, the Seasonic Prime Platinum 1200 scores notably better, and the same goes for the <a href="https://www.tomshardware.com/reviews/corsair-hx1200-psu,5102.html">Corsair HX1200</a>. The SP1300&apos;s performance is on par with the Thermaltake Toughpower PF1 ARGB 1200W and the <a href="https://www.tomshardware.com/reviews/asus-rog-thor-1200w-psu,5984.html">Asus ROG Thor 1200</a>, and has the advantage of the OC Link technology, which allows two SP1300 units to operate in tandem, for systems requiring crazy amounts of power. The primary issue with the SP1300 is the high noise under increased loads and ambient temperatures. If you care about noise output besides wattage and you need more than 1.2kW of power, you should take a look at the <a href="https://www.tomshardware.com/reviews/cooler-master-v1300-platinum-power-supply,6115.html">Cooler Master V1300 Platinum</a>, which is also a solid choice. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ NZXT C Series 650W Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/nzxt-c650-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ The NZXT C650 power supply offers good performance and silent operation, at a fair price. ]]>
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                                                                        <pubDate>Wed, 03 Jun 2020 11:00:05 +0000</pubDate>                                                                                                                                <updated>Thu, 21 Aug 2025 12:43:24 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[NZXT]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[NZXT C650]]></media:description>                                                            <media:text><![CDATA[NZXT C650]]></media:text>
                                <media:title type="plain"><![CDATA[NZXT C650]]></media:title>
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                                <p>NZXT doesn&apos;t have a presence among our <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best power supplies</a>, but this could change soon if they continue releasing good products like the C series model with 550W max power. Now NZXT has a 650W version. Besides an interesting design, the C650 also achieves good performance with the popular Seasonic Focus Plus Gold platform. With the current price tag, $110, it is close to the competing offerings from Seasonic and Corsair (RM650x), delivering equally high-performance levels with the Focus Plus Gold with similar capacity and quiet operation. The <a href="https://www.tomshardware.com/reviews/corsair-rm650x-psu,4611.html" target="_blank">Corsair RM650x</a> still leads the race though in this category, along with the <a href="https://www.tomshardware.com/reviews/xpg-core-reactor-750w-power-supply-review">XPG Core Reactor 650</a>. </p><p>According to NZXT, its new C series models with 650W and 750W capacities can handle high-end GPUs like the <a href="https://www.tomshardware.com/reviews/nvidia-geforce-rtx-2080-ti-founders-edition,5805.html">Nvidia GeForce RTX 2080 Ti</a>. Even the energy-hungry <a href="https://www.tomshardware.com/reviews/amd-radeon-rx-vega-64,5173.html">Radeon Vega RX 64</a> won&apos;t be a problem. Nonetheless, you should take this statement with a grain of salt since some Vega 64/56 implementations have nasty power spikes, which can create problems even for stronger PSUs. This is one of the reasons that NZXT asked Seasonic to increase the 12V OCP and OPP triggering points in the C650 model: to make sure that it will be able to handle high power spikes without shutting down. It is a double-edged sword, though, since, with high OCP and OPP triggering points, you can damage the PSU if you apply much higher than its nominal capacity, loads for prolonged periods, or loads under high temperatures. That&apos;s why we recommend within 130% OCP and OPP triggering points in platforms that can cope with overloads. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/y5vCdL5C95qb8C9AXdzYW7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TPgTY4hiQsyYEkWiKZ2rd7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xTMByrnuFh42hUtFtMJEo7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/c95GoDZmrUCBbSnzrCAoy7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iyzyL99KMvWy3mFzYhSeA8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AoRjWiYBtL24pgzoT2Z6K8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sbE88YKFm79eGtnd6a2Nd8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cZ8d9f76WtWatwKfwHbgk8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fVUFnsC7ucHmxP4h62mnu8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The popular Seasonic Focus Plus Gold platform is inside NZXT&apos;s C line, so most of the features that the corresponding Seasonic model has are present in the C650 as well. Namely the fully modular cable design, the selectable semi-passive operation, and the ten-year warranty along with the 120mm FDB fan. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Sv7utLWh5hrHjJwkSvFJ6K.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sBRrpk6fT3uQfUkoCJkpDK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xJ3VpgfrvT4Zdvxm3nBzTK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/73pax6JdVvBfbZx6qqyeZK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JvzKinxXwjbMZS3rv2hEuK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PsMukwDYwHCQp8j9VZNzGL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-12">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >Seasonic    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>650W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      <p>80 PLUS Gold, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      <p>LAMBDA-A (20-25 dB[A])</p>    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      <p>✔ (Fully)</p>    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✘</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      <p>120mm Fluid Dynamic Bearing Fan (HA1225H12F-Z)</p>    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✔ (selectable)</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>150 x 85 x 150mm</p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>1.56 kg (3.44 lb)</p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-12">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >54</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  >100</td><td  >648</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  >650</td></tr></tbody></table></div><h2 id="cables-and-connectors-2">Cables and Connectors</h2><div ><table><thead><tr><th  ><strong>Description</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (610mm)</th><td  >1</td><td  >1</td><td  >18-20AWG</td><td  >Yes</td></tr><tr><th  >4+4 pin EPS12V (650mm)</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >Yes</td></tr><tr><th  >6+2 pin PCIe (680mm+80mm) </th><td  >2</td><td  >4</td><td  >18AWG</td><td  >Yes</td></tr><tr><th  >SATA (500mm+100mm+100mm+100mm)</th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (500+100mm+100mm)</th><td  >2</td><td  >6</td><td  >18AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1380mm) -  C13 coupler</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>The cables are long, but there is only one EPS connector, and this can be a problem if you want to power mainboards with increased energy demands for the CPU&apos;s VRMs. If you need two EPS connectors, you should take a look at the XPG Core Reactor 650 and the<a href="https://www.tomshardware.com/reviews/corsair-rm650-power-supply,6187.html"> Corsair RM650</a> models.  </p><p>Moreover, the distance between the peripheral connectors is too short at 100 mm. Finally, there are in-line caps on the ATX, EPS, and PCIe cables, which will make the cable routing and management processes harder. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cN7x6ZmsgBsUC8dykbbTKS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SriyEAKPVmpoGueC8UsSRS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r7VcBGSfKK2TodAXenA9WS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HNw3aTVpTrAQPJ7HbueXcS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Sa84XQQW6M7zwuowUGufgS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/E7XzaEjKYfVJT4TQ2WUYkS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AktZ2C8kkS2r4peQzSBjpS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/97U7JHfQgLNBpqWFAVoGuS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cCQ4v7qX7yc4YVq79o3sxS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y3K5yUoqYVdHcD4rQubj5T.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-12">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, allowing you to better understand the components we&apos;re about to discuss.</p><div ><table><tbody><tr><td  >General Data</td><td  > </td></tr><tr><td  ><font>Manufacturer (OEM)</font></td><td  >Seasonic</td></tr><tr><td  ><font>PCB Type</font></td><td  >Double Sided</td></tr><tr><td  >Primary Side</td><td  >-</td></tr><tr><td  ><font>Transient Filter</font></td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV, 1x Discharge IC</td></tr><tr><td  ><font>Inrush Protection</font></td><td  >NTC Thermistor (<a href="http://www.mantech.co.za/datasheets/products/MF72_AMPRON.pdf" target="_blank" rel="nofollow">MF72-5D15M</a>) & Relay</td></tr><tr><td  ><font>Bridge Rectifier(s)</font></td><td  >2x <a href="https://www.diodes.com/assets/Datasheets/ds30052.pdf" target="_blank" rel="nofollow">GBU1006</a> (600V, 10A @ 100°C)</td></tr><tr><td  ><font>APFC MOSFETs</font></td><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPA60R180P7S-DataSheet-v02_02-EN.pdf?fileId=5546d4625cc9456a015d560059430feb" target="_blank" rel="nofollow">IPA60R180P7S</a> (650V, 11A @ 100°C, 0.18Ohm)</td></tr><tr><td  ><font>APFC Boost Diode</font></td><td  >1x  STMicroelectronics <a href="https://www.st.com/resource/en/datasheet/stth8s06.pdf" rel="nofollow">STTH8S06</a> (600V, 8A @ 25°C)</td></tr><tr><td  ><font>Hold-up Cap(s)</font></td><td  >1x Hitachi (400V, 470uF, 2,000h @ 105°C, <a href="http://www.paullinebarger.net/DS/Hitachi/Hitachi [snap-in] HU Series.pdf" target="_blank" rel="nofollow">HU</a>)</td></tr><tr><td  ><font>Main Switchers</font></td><td  >4x  Great Power <a href="https://datasheetspdf.com/pdf-file/1178975/Greatpower/GPT10N50AD/1" rel="nofollow">GPT10N50AD</a> (500V, 9.7A, 0.7Ohm)</td></tr><tr><td  ><font> APFC Controller</font></td><td  >Champion <a href="http://www.datasheet-pdf.com/PDF/CM6500-Datasheet-Champion-609703" target="_blank" rel="nofollow">CM6500UNX</a></td></tr><tr><td  ><font>Resonant Controller</font></td><td  >Champion <a href="http://www.championmicro.com.tw/datasheet/Analog Device/CM6901T6.pdf" target="_blank" rel="nofollow">CM6901T6</a></td></tr><tr><td  ><font>Topology</font></td><td  >Primary        side:  Full-Bridge & LLC converter<br>        Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td  >Secondary Side</td><td  >-</td></tr><tr><td  ><font>+12V MOSFETs</font></td><td  >2x Nexperia <a href="https://assets.nexperia.com/documents/data-sheet/PSMN1R8-40YLC.pdf" target="_blank" rel="nofollow">PSMN1R8-40YLC</a> (40V, 100A @ 100°C, 3.25mOhm @ 150°C)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters</td></tr><tr><td  ><font>Filtering Capacitors</font></td><td  >Electrolytic: 2x Nippon        Chemi-Con (105°C, W), 6x Nippon        Chemi-Con (1-5,000h @ 105°C, <a href="http://www.chemi-con.com/upload/files/7/5/32389236352d6c56e8f45b.pdf" target="_blank" rel="nofollow">KZE</a>), 3x Nippon        Chemi-Con (4-10,000h @ 105°C, <a href="http://www.chemi-con.com/upload/files/5/1/74811667552d6c4d41a84c.pdf" target="_blank" rel="nofollow">KY</a>), 3x Rubycon (3-6,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_yxg.pdf" target="_blank" rel="nofollow">YXG</a>)<br>        Polymer: 8x Chemi-Con, 3x FPCAP, 6x NIC</td></tr><tr><td  >Supervisor IC</td><td  >Weltrend <a href="http://www.datalinker.com.hk/uploads/spec/WT7527V_T1_datasheet_v1.01.pdf" target="_blank" rel="nofollow">WT7527V</a> (OCP, OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA1225H12F-Z (120mm, 12V, 0.58A, 2200 RPM, Fluid Dynamic Fan)</td></tr><tr><td  >5VSB Circuit</td><td  >-</td></tr><tr><td  ><font>Rectifier</font></td><td  >1x SBR</td></tr><tr><td  ><font>Standby PWM Controller</font></td><td  >Excelliance MOS <a href="http://www.excelliancemos.com/download_prod_s.php?ds=70&file=2" target="_blank" rel="nofollow">EM8569</a></td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Sg9uzp58EXCP8ETtvZDXXX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kAGpS5cKhtBoYXEEsLCqkX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m5xh5VRXiRhjwgw5tH6vwX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q4kK7TYzj8gtJEp9HVW98Y.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>This is the Seasonic Focus Plus Gold platform, which is among the most popular in today&apos;s market since it offers good performance at a fair price. The build quality is high and Seasonic used good parts with all electrolytic caps on the secondary side provided by Japanese manufacturers. It would be nice, though, to see more KY caps and less KZE ones, which have a notably lower lifetime. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/eUaXS8r34xGDSSA2S3u8xH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8U2kRZcScSYRoj2bTVmv8J.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qr2QoQbfAM2T89NAtiWPMJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B2Jc89FF54S9UTsJJvEuXJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YXgfgfKgWH6pivMNdgaUhJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QMeUdfcD7sTzqkePaAMkqJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The EMI filter includes all necessary parts to filter incoming and outcoming EMI emissions. There is also an MOV to suppress voltage spikes coming from the network and an NTC/relay combo protect against large inrush currents. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wwpeqJXA7iWHnugntFYGGJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8q82mdvQVPgR3bHpxS4z4J.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The pair of bridge rectifiers is bolted on a dedicated heat sink.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MXeM78QWy855tew3ZhsTuW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SMfwpyauPbG8ruBZUk3oAX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eQUhkiSatCtHb9ReF7BYGX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GztFAHzvTi5dmRYdRhP9SX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter uses two Infineon FETs and a single STMicroelectronics boost diode. The bulk cap is by Hitachi, and its capacity is enough to offer a much longer than 17ms hold up time. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Vva5J8LAY6KHLxhQsCaJ63.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ojH8etvsT8nu8P24vQvnG3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mTisEnrrCApFtHNZ4i23S3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YXi5mLam3zHV3VGDpachv3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main switching FETs, four GPT10N50AD, are installed in a full-bridge topology which offers the best performance. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TVMj2J9H9JQBBMTnbERUMM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/modJUofWVmVWkcbouFB9XM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CceeEeRUFqnaq7osu3ahfM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4ZoJp3NFmp92jcc5v7V5sM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Two Nexperia FETs handle the 12V rail, and a couple of VRMs generate the minor rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fzGotDXCVejMj2jir5GfyW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/efz8NYw4hc2XynLvAsNc8X.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9rrJx9iFrjYGSYBZeoNmJX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Chemi-Con provides most electrolytic filtering caps. It would be nice if more KY caps were used, instead of the lower lifetime KZE ones. Besides electrolytics, a large number of polymer caps is also used for ripple filtering purposes. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pe3szrfYn93Tz7CN4A4Es4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qW4LLbgyYbHqqaiva3qAz4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yoEcqm2bJn29amevinta75.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Four polymer and three electrolytic caps are installed at the face of the modular panel. There is room for more polymer caps, but they aren&apos;t necessary because ripple suppression is already good. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/py4MsQMaFd3KuUX7RaakbL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2ma5vwihDnkG6RMEQxpKxL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SeDeFdGPbTC6ERF65qdWMM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KfhzXPr4sewa4ZnteUBQZM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PzRewkvBZkUU8or8cMPhnM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j8H2pRi6PmMSYAnxXTCAwM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QzYvzquMAcxSJk3sQFJD8N.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The soldering quality is good. There are lots of interesting parts on this side of the PCB, including the supervisor IC, the APFC and resonant controllers, the 12V FETs and several Schottky Barrier Diodes (SBRs). </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cCEirhaFo9ejbLbPPffdDh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zPLvXSxoCFeMzBEd97aYRh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YhxHRtWUr8j5FezN6tzvah.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The Hong Hua fan is the standard choice for many manufacturers nowadays since this brand offers good quality at reasonable prices. The C650 comes with a 120mm fan, which uses a fluid dynamic bearing so that it will last for long at normal operating conditions. </p><iframe src="https://content.jwplatform.com/players/7AgPc2Q8.html" id="7AgPc2Q8" title="Buy the Right SSD" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="fe49c3f3-2494-4521-9442-a6ee3e16f0cd">            <a href="https://www.newegg.com/xpg-core-reactor-650w/p/1HU-022B-00001?Description=adata%20650W&cm_re=adata_650W-_-1HU-022B-00001-_-Product&quicklink=true" data-model-name="XPG Core Reactor 650W" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:100.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/X48PvFU9ZKFvEWeexFPW8m.png" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">XPG Core Reactor</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="d93d062e-5ec8-42b9-94e1-54ea0e8b85d8">            <a href="https://www.newegg.com/corsair-rmx-series-rm650x-2018-cp-9020178-na-650w/p/N82E16817139232?Description=RM650X&cm_re=RM650X-_-17-139-232-_-Product&quicklink=true" data-model-name="Corsair RM650x" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/7BjN8QnfHpj5JfpnrDWFje.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM650x</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="0c637e96-f51e-4c9f-b6bb-6002db63cbda">            <a href="https://www.newegg.com/seasonic-focus-plus-650-gold-ssr-650fx-650w/p/N82E16817151186?Description=Seasonic%20Focus%20650&cm_re=Seasonic_Focus_650-_-17-151-186-_-Product&quicklink=true" data-model-name="Seasonic Focus GX-650" data-model-brand="" ><div 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<div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-12">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40W up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xcgLaWYczTsqfgcyQ2vtGh.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7X2vfPBPHRXxhdPPCqYeqe.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vbfVcUnZkQYzzkmfSKXB3f.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/grQEjHPKS3HAH7qd7c3KHf.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9fFhHXXVXSXmyMEa5rqYXf.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UbC2GEjQ4ZLH4GPn2rwWkf.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HpTejrD5nQ7d79fDbfpnxf.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/J4QTL9AgCSeRVPa7VoG3Mg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The load regulation is tight on all rails, with the only exception the 5VSB rail where load regulation is not so important, from the moment the rail is within the specified, by the ATX spec, voltage range. </p><h2 id="hold-up-time-12">Hold-Up Time</h2><p>Put simply, hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QnBiHKUPsatRNHcEiuvAv4.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9bkLUYBtXrKScmeYbmyND5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DfAwy66o2oNqQFjXtSysM5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FuhHgxRxANJR2Py9rQJXY5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dtyXyGcZYoXwm68qWGs3K6.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cegmMdKczBqFLHoxwx92T7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fjTq8uEZqnVBxtBNs97k88.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is much longer than 17ms, which is what the ATX spec requires. Moreover, the power OK signal is accurate and exceeds 16 ms. </p><h2 id="inrush-current-12">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/AGPqPKXXwh5TtPdWNiNCtG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BAFjstTUSFDZKDDYPjoeMH.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current is low with 115V and at normal levels with 230V input. </p><h2 id="10-110-load-tests-11">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>3.599A</strong></td><td  ><strong>1.987A</strong></td><td  ><strong>1.986A</strong></td><td  ><strong>0.982A</strong></td><td  >64.951</td><td  >84.810%</td><td  >0</td><td  ><6.0</td><td  > 45.12°C</td><td  >0.928</td></tr><tr><td  >12.044V</td><td  >5.035V</td><td  >3.324V</td><td  >5.091V</td><td  >76.584</td><td  > 40.31°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>8.230A</strong></td><td  ><strong>2.980A</strong></td><td  ><strong>2.980A</strong></td><td  ><strong>1.181A</strong></td><td  >129.999</td><td  >88.830%</td><td  >0</td><td  ><6.0</td><td  > 46.26°C</td><td  >0.957</td></tr><tr><td  >12.042V</td><td  >5.032V</td><td  >3.322V</td><td  >5.079V</td><td  >146.346</td><td  > 40.99°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>13.203A</strong></td><td  ><strong>3.481A</strong></td><td  ><strong>3.476A</strong></td><td  ><strong>1.381A</strong></td><td  >194.999</td><td  >89.930%</td><td  >0</td><td  ><6.0</td><td  > 47.72°C</td><td  >0.971</td></tr><tr><td  >12.039V</td><td  >5.029V</td><td  >3.321V</td><td  >5.068V</td><td  >216.834</td><td  > 41.68°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>18.180A</strong></td><td  ><strong>3.978A</strong></td><td  ><strong>3.978A</strong></td><td  ><strong>1.582A</strong></td><td  >259.999</td><td  >90.076%</td><td  >0</td><td  ><6.0</td><td  > 48.57°C</td><td  >0.979</td></tr><tr><td  >12.035V</td><td  >5.027V</td><td  >3.320V</td><td  >5.056V</td><td  >288.643</td><td  > 41.87°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>22.817A</strong></td><td  ><strong>4.974A</strong></td><td  ><strong>4.971A</strong></td><td  ><strong>1.784A</strong></td><td  >325.031</td><td  >89.870%</td><td  >560</td><td  >10.0</td><td  > 42.60°C</td><td  >0.984</td></tr><tr><td  >12.032V</td><td  >5.027V</td><td  >3.318V</td><td  >5.044V</td><td  >361.668</td><td  > 50.04°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>27.392A</strong></td><td  ><strong>5.972A</strong></td><td  ><strong>5.969A</strong></td><td  ><strong>1.987A</strong></td><td  >389.308</td><td  >89.505%</td><td  >572</td><td  >10.5</td><td  > 42.91°C</td><td  >0.987</td></tr><tr><td  >12.029V</td><td  >5.025V</td><td  >3.317V</td><td  >5.033V</td><td  >434.959</td><td  > 51.00°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>7</strong></font></td><td  ><strong>32.062A</strong></td><td  ><strong>6.971A</strong></td><td  ><strong>6.971A</strong></td><td  ><strong>2.191A</strong></td><td  >454.659</td><td  >88.798%</td><td  >811</td><td  >19.0</td><td  > 43.16°C</td><td  >0.988</td></tr><tr><td  >12.025V</td><td  >5.022V</td><td  >3.315V</td><td  >5.019V</td><td  >512.016</td><td  > 52.27°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>8</strong></font></td><td  ><strong>36.731A</strong></td><td  ><strong>7.971A</strong></td><td  ><strong>7.966A</strong></td><td  ><strong>2.396A</strong></td><td  >519.956</td><td  >88.135%</td><td  >1197</td><td  >31.4</td><td  > 43.75°C</td><td  >0.990</td></tr><tr><td  >12.021V</td><td  >5.021V</td><td  >3.313V</td><td  >5.008V</td><td  >589.951</td><td  > 53.69°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>9</strong></font></td><td  ><strong>41.803A</strong></td><td  ><strong>8.467A</strong></td><td  ><strong>8.453A</strong></td><td  ><strong>2.399A</strong></td><td  >584.878</td><td  >87.493%</td><td  >1540</td><td  >34.4</td><td  > 44.42°C</td><td  >0.991</td></tr><tr><td  >12.018V</td><td  >5.020V</td><td  >3.311V</td><td  >5.001V</td><td  >668.484</td><td  > 55.08°C</td><td  >115.13V</td></tr><tr><td  ><font><strong>10</strong></font></td><td  ><strong>46.612A</strong></td><td  ><strong>8.969A</strong></td><td  ><strong>8.974A</strong></td><td  ><strong>3.011A</strong></td><td  >649.704</td><td  >86.704%</td><td  >2076</td><td  >44.4</td><td  > 45.49°C</td><td  >0.991</td></tr><tr><td  >12.014V</td><td  >5.018V</td><td  >3.310V</td><td  >4.981V</td><td  >749.333</td><td  > 56.53°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>11</strong></font></td><td  ><strong>52.025A</strong></td><td  ><strong>8.973A</strong></td><td  ><strong>8.977A</strong></td><td  ><strong>3.016A</strong></td><td  >714.527</td><td  >85.940%</td><td  >2128</td><td  >45.4</td><td  > 46.66°C</td><td  >0.992</td></tr><tr><td  >12.010V</td><td  >5.016V</td><td  >3.308V</td><td  >4.974V</td><td  >831.422</td><td  > 58.32°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>CL1</strong></font></td><td  ><strong>0.099A</strong></td><td  ><strong>12.000A</strong></td><td  ><strong>11.999A</strong></td><td  ><strong>0.000A</strong></td><td  >101.353</td><td  >84.907%</td><td  >562 </td><td  >10.1</td><td  > 41.97°C</td><td  >0.951</td></tr><tr><td  >12.040V</td><td  >5.027V</td><td  >3.320V</td><td  >5.093V</td><td  >119.370</td><td  > 50.54°C</td><td  >115.16V</td></tr><tr><td  ><font><strong>CL2</strong></font></td><td  ><strong>53.997A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.002A</strong></td><td  ><strong>1.000A</strong></td><td  >662.036</td><td  >87.236%</td><td  >1940 </td><td  >43.2</td><td  > 45.90°C</td><td  >0.992</td></tr><tr><td  >12.013V</td><td  >5.017V</td><td  >3.312V</td><td  >5.035V</td><td  >758.902</td><td  > 56.39°C</td><td  >115.13V</td></tr></tbody></table></div><p>The PSU does not have any problem operating under high temperatures, and the fan profile only gets aggressive at full load. </p><h2 id="20-80w-load-tests-12">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.231A</strong></td><td  ><strong>0.496A</strong></td><td  ><strong>0.495A</strong></td><td  ><strong>0.196A</strong></td><td  >19.976</td><td  >70.587%</td><td  >0</td><td  ><6.0</td><td  >0.802</td></tr><tr><td  >12.047V</td><td  >5.037V</td><td  >3.323V</td><td  >5.115V</td><td  >28.300</td><td  >115.12V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>2.463A</strong></td><td  ><strong>0.993A</strong></td><td  ><strong>0.992A</strong></td><td  ><strong>0.391A</strong></td><td  >39.966</td><td  >80.684%</td><td  >0</td><td  ><6.0</td><td  >0.892</td></tr><tr><td  >12.047V</td><td  >5.037V</td><td  >3.323V</td><td  >5.108V</td><td  >49.534</td><td  >115.12V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>3.699A</strong></td><td  ><strong>1.488A</strong></td><td  ><strong>1.490A</strong></td><td  ><strong>0.588A</strong></td><td  >59.999</td><td  >84.702%</td><td  >0</td><td  ><6.0</td><td  >0.922</td></tr><tr><td  >12.045V</td><td  >5.036V</td><td  >3.323V</td><td  >5.101V</td><td  >70.835</td><td  >115.12V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>4.928A</strong></td><td  ><strong>1.986A</strong></td><td  ><strong>1.986A</strong></td><td  ><strong>0.785A</strong></td><td  >79.951</td><td  >86.680%</td><td  >0</td><td  ><6.0</td><td  >0.937</td></tr><tr><td  >12.044V</td><td  >5.035V</td><td  >3.323V</td><td  >5.094V</td><td  >92.237</td><td  >115.13V</td></tr></tbody></table></div><p>The efficiency levels are satisfactory, at light loads. </p><h2 id="2-or-10w-load-test-12">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.919A</strong></td><td  ><strong>0.205A</strong></td><td  ><strong>0.204A</strong></td><td  ><strong>0.051A</strong></td><td  >13.047</td><td  >61.251%</td><td  >0</td><td  ><6.0</td><td  >0.734</td></tr><tr><td  >12.050V</td><td  >5.041V</td><td  >3.323V</td><td  >5.120V</td><td  >21.301</td><td  >115.13V</td></tr></tbody></table></div><p>The PSU doesn&apos;t pass 70% efficiency with 2% load since the platform it uses is not compatible with the newest ATX spec (v. 2.52) </p><h2 id="efficiency-5">Efficiency</h2><p>Next, we plotted a chart showing the PSU’s efficiency at low loads, and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ix3HT8wbiT3E63aRFZGr6Z.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Wp4TL9YAX8SqFdLAMGjzJZ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qAWKswnHeZMTF8XQrQsxVZ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DTrkMyMdBcpnnrMW6hAQuZ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4HhW4j6fPFerJpktg45SEd.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>With normal loads, the NZXT unit almost at the bottom of the chart, so things don&apos;t look so nice. The newer CWT platforms win the best places, while in the next positions, we find The EVGA G3 and Cooler Master V650 models. </p><p>With light loads (20-80W) things, the C650 is close to the middle, with the four units above it registering notably higher efficiency levels, though.  Finally, this platform isn&apos;t tuned for increased efficiency at super light loads, so naturally, it cannot meet the competition with a 2% load. </p><h2 id="5vsb-efficiency-12">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.512</td><td  >73.882%</td><td  >0.107</td></tr><tr><td  >5.120V</td><td  >0.693</td><td  >115.15V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.279</td><td  >76.404%</td><td  >0.218</td></tr><tr><td  >5.117V</td><td  >1.674</td><td  >115.15V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.810</td><td  >77.603%</td><td  >0.329</td></tr><tr><td  >5.111V</td><td  >3.621</td><td  >115.15V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.100</td><td  >77.614%</td><td  >0.398</td></tr><tr><td  >5.101V</td><td  >6.571</td><td  >115.16V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.634</td><td  >77.424%</td><td  >0.434</td></tr><tr><td  >5.090V</td><td  >9.860</td><td  >115.16V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>2.999A</strong></td><td  >15.148</td><td  >76.079%</td><td  >0.479</td></tr><tr><td  >5.051V</td><td  >19.911</td><td  >115.15V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/g3qCScLgVfccspk3DPuQzT.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7geL4tyf7eUGTp67Rk7V5V.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail needs an efficiency boost. </p><h2 id="power-consumption-in-idle-and-standby-12">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>Idle</strong></font></td><td  >12.047V</td><td  >5.045V</td><td  >3.321V</td><td  >5.123V</td><td  >7.898</td><td  >0.453</td></tr><tr><td  >115.1V</td></tr><tr><td  ><font><strong>Standby</strong></font></td><td  > </td><td  > </td><td  > </td><td  > </td><td  >0.045</td><td  >0.007</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/igCxjpesuK4WXD49zb4EUd.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wCeUZVQ5TzubSZcrjXoHMh.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The vampire power levels are low with both voltage inputs. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-12">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/DhkQoiCVJkjknRavN4ahSn.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/DhkQoiCVJkjknRavN4ahSn.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.42%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/jMyswsJVEWUSJN6hFePds3.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="651" height="491" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/jMyswsJVEWUSJN6hFePds3.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan profile is not aggressive at all. Even in the worst-case scenario, the fan doesn&apos;t spin at its full speed. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/AEfioohCvkChV5pGsKEHQB.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/AEfioohCvkChV5pGsKEHQB.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/ZfYCkdWXXwRZyT3n3iFAkD.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ZfYCkdWXXwRZyT3n3iFAkD.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The passive operation doesn&apos;t seem to be highly dependent on the load of the minor rails since the max combined power at 5V and 3.3V is low (still enough for today&apos;s needs). The fan spins at very low RPM up to 400W load, and it takes more than 525W to make it enter the 30-35 dBA zone, for a short period. In general, the fan profile is highly relaxed. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><iframe src="https://content.jwplatform.com/players/7AgPc2Q8.html" id="7AgPc2Q8" title="Buy the Right SSD" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="protection-features-12">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >      <p><strong>Protection Features</strong></p>    </td><td  > </td></tr><tr><td  >      <p><strong>OCP</strong></p>    </td><td  >      <p>12V: 75.38A (139.59%), 12.006V<br>      5V: 27.2A (136%), 5.027V<br>      3.3V: 27.6A (138%), 3.317V<br>      5VSB: 6.1A (203.33%), 4.98V</p>    </td></tr><tr><td  >      <p><strong>OPP</strong></p>    </td><td  >      <p>918.42W (141.3%)</p>    </td></tr><tr><td  >      <p><strong>OTP</strong></p>    </td><td  >      <p>✔ (181°C @ 12V Heat Sink)</p>    </td></tr><tr><td  >      <p><strong>SCP</strong></p>    </td><td  >      <p>12V: ✔<br>      5V: ✔<br>      3.3V: ✔<br>      5VSB: ✔<br>      -12V: ✔</p>    </td></tr><tr><td  >      <p><strong>PWR_OK</strong></p>    </td><td  >      <p>Proper Operation</p>    </td></tr><tr><td  >      <p><strong>NLO</strong></p>    </td><td  >      <p>✔</p>    </td></tr><tr><td  >      <p><strong>SIP</strong></p>    </td><td  >      <p>Surge: MOV<br>      Inrush: NTC Thermistor & Bypass Relay</p>    </td></tr></tbody></table></div><p>The OCP triggering points are set high on all rails, and the same goes for OPP. We can understand why NZXT needs lots of headroom at 12V to cope with the high power spikes that some graphics cards can create, but there is no reason for such high OCP points on the minor rails. The 5V and 3.3V rails are lightly used in modern systems. Finally, the PSU might be able to deliver close to 920W without any problems under normal operating temperatures. Still, it will be highly stressed with such a high power output under increased temperatures. This is why we suggest OCP and OPP triggering points within the 130% range, given that the platform can handle it, of course. </p><h2 id="dc-power-sequencing-12">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. </p><p>Unfortunately, Intel doesn&apos;t mention why it is so important to always keep the 3.3V rail&apos;s voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DS2sa4mxu7c2aACsS8gbUR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bXZvk2N9Dj3GrT2cwo2i6S.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gZu2PxrL78iHaAZ9BtVLPS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail is lower than the other two in all tests we conducted, so there everything is fine here. </p><h2 id="cross-load-tests-12">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-12">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3Kx3GoUKhypXv6j9ZdfawX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eEudfJ9NdZ5SoBcAJfwjPY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kSCPj4FzwrSaxZYbfa2cBZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-7">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/xNpDGkUhBkQDgZwTU5hJLb.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/xNpDGkUhBkQDgZwTU5hJLb.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-7">Ripple Charts</h2><p>The lower the power supply&apos;s ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/EtmQ9wBtenxN2QJM6zcoTf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KtHwyr92x4mNRV4rmeNiJg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/V8638MbQ8cWycAajiNL4zg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pKKLVanxXDGQBoVTx8Lfdh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-12">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LCRBSKw7pCpnLmzKKKVtE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YmZPR3mLHtRDPZxuHS3A83.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VM2mfB5rb4NkYueTc2i634.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ecYzAHVEqfLEMSV7HwitU4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CKVgqsouDUhyzHitnv8PE5.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hrPvxASnTTmoN7kVS7koj5.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SWCm2ZsZxjRDmiC2hohuK6.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The temperatures are kept at low enough levels,  so we wouldn&apos;t expect reliability issues with the relaxed fan profile. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><iframe src="https://content.jwplatform.com/players/7AgPc2Q8.html" id="7AgPc2Q8" title="Buy the Right SSD" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="advanced-transient-response-tests-12">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8"><strong>click here</strong></a><strong>.</strong></p><p>In the real world, power supplies are always working with loads that change. It&apos;s of immense importance, then, for the PSU to keep its rails within the ATX specification&apos;s defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><em><strong>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </strong></em></p><h2 id="advanced-transient-response-at-20-x2013-20ms-12">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.042V</td><td  >11.880V</td><td  >1.35%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.037V</td><td  >4.912V</td><td  >2.48%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.322V</td><td  >3.160V</td><td  >4.88%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.081V</td><td  >5.038V</td><td  >0.85%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-12">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.041V</td><td  >11.878V</td><td  >1.35%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.037V</td><td  >4.911V</td><td  >2.50%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.322V</td><td  >3.162V</td><td  >4.82%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.081V</td><td  >5.044V</td><td  >0.73%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-12">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.042V</td><td  >11.915V</td><td  >1.05%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.037V</td><td  >4.922V</td><td  >2.28%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.322V</td><td  >3.167V</td><td  >4.67%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.081V</td><td  >5.032V</td><td  >0.96%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-12">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.033V</td><td  >11.911V</td><td  >1.01%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.032V</td><td  >4.905V</td><td  >2.52%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.317V</td><td  >3.149V</td><td  >5.06%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.049V</td><td  >5.000V</td><td  >0.97%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-12">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.034V</td><td  >11.900V</td><td  >1.11%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.032V</td><td  >4.904V</td><td  >2.54%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.318V</td><td  >3.151V</td><td  >5.03%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.049V</td><td  >4.994V</td><td  >1.09%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-12">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.034V</td><td  >11.901V</td><td  >1.11%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.032V</td><td  >4.903V</td><td  >2.56%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.318V</td><td  >3.143V</td><td  >5.27%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.049V</td><td  >5.010V</td><td  >0.77%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KespE2oaULmHRE6KNXZ7NY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Mpkd3Fc3GiDDXq2EjBTQaY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ADVMFxkPQhykRnZhifroiY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Wqi5Ey7oerAPpYTN4T4FoY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PzFMPzWeELyDLnRhzgJQsY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zxpJzfzqduJdcR9sTpkVwY.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P3fSaowVwEtVjKUCGDQ22Z.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wuBo594wXLREwQsGcWzx6Z.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient response is satisfactory on all rails but the 3.3V one, where it should be closer to 3%. </p><h2 id="turn-on-transient-tests-12">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU&apos;s response in simpler transient load scenarios—during its power-on phase. Ideally, we don&apos;t want to see any voltage overshoots or spikes, since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kPZiPTj3bAs6KJcHMhp9nS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5StgyHz5CwfBLxGRChtZsS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7vbvobjz7SKqWYAuLCX6xS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail is almost flawless, while the 12V slopes have some small waves, which are nothing to worry about.</p><h2 id="power-supply-timing-tests-12">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >82ms</td><td  >325ms</td></tr><tr><th  ><strong>50%</strong></th><td  >82ms</td><td  >325ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode recommended by the ATX newest spec. The platform that the C650 uses, though, wasn&apos;t designed with the new ATX spec in mind. We expect Seasonic to release a new one to meet the new requirements. </p><h2 id="ripple-measurements-12">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>10% Load</strong></font></td><td  >14.1 mV</td><td  >10.3 mV</td><td  >10.2 mV</td><td  >6.7 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>20% Load</strong></font></td><td  >19.2 mV</td><td  >10.8 mV</td><td  >11.1 mV</td><td  >7.1 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>30% Load</strong></font></td><td  >21.8 mV</td><td  >11.3 mV</td><td  >11.1 mV</td><td  >7.8 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>40% Load</strong></font></td><td  >23.9 mV</td><td  >12.2 mV</td><td  >11.9 mV</td><td  >7.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>50% Load</strong></font></td><td  >21.7 mV</td><td  >12.5 mV</td><td  >12.8 mV</td><td  >7.9 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>60% Load</strong></font></td><td  >15.2 mV</td><td  >13.1 mV</td><td  >12.6 mV</td><td  >8.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>70% Load</strong></font></td><td  >14.2 mV</td><td  >13.2 mV</td><td  >12.9 mV</td><td  >8.5 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>80% Load</strong></font></td><td  >15.1 mV</td><td  >14.7 mV</td><td  >14.2 mV</td><td  >10.1 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>90% Load</strong></font></td><td  >15.9 mV</td><td  >15.6 mV</td><td  >14.3 mV</td><td  >10.8 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>100% Load</strong></font></td><td  >19.9 mV</td><td  >17.1 mV</td><td  >15.5 mV</td><td  >11.2 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>110% Load</strong></font></td><td  >22.6 mV</td><td  >17.0 mV</td><td  >15.7 mV</td><td  >11.6 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 1</strong></font></td><td  >20.5 mV</td><td  >17.3 mV</td><td  >15.1 mV</td><td  >7.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 2</strong></font></td><td  >19.7 mV</td><td  >13.6 mV</td><td  >12.2 mV</td><td  >10.1 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mNfH46hohWDwvaB5ezfBt7.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/p4aDCeAz9J7Yyxih9DFAx7.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UYzsZeDiFqQF8kC5Q7nK38.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qwcX2bgHCyMcNYB5uNyW68.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ripple suppression is good, but given the inline caps we expected even better results here. Nonetheless, the C650 has the lowest ripple at 12V among than the other two Focus-based platforms (Asus Rog Strix 650 and Seasonic SSR-650FX). </p><h2 id="ripple-at-full-load-12">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uohS8AWGnMXa3Sh3tiYWhU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XYH6xLwqoKDmhBw264huoU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cN84aRbji2NkQNUyPzq5zU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WLWFqvrSnbDX9KPCPvJv6V.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-11">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wtW9wUyNN7yVCEaWvJD8XZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hHCvqUEErbSALez2n9ZucZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tjtsm9qzJvUueVTfCS8ghZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H6KvWLsqgMJtnpBwGa65nZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-12">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/U9oGgR9wph244jPhBL4qHd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Z8GNzj5GQWmMJMYCXFLvMd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hNGyH92eQpSPbRQ9An4JSd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4ehxSffDV8vPuGfRxKQpWd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-7">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/doXKmfvmXHtCeUdnnDUtxg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iyo2xFfQ8soHM5aH9Xtj4h.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6j2WifTS7sDGd5btkzZf8h.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oKUtk59QVLwhaMj2YCvmDh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-10">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1653px;"><p class="vanilla-image-block" style="padding-top:34.42%;"><img id="" name="EMI.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/8444vTAYj5A3gGHarEa8.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1653" height="569" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/8444vTAYj5A3gGHarEa8.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Three spurs are exceeding the limits with the average EMI detector, but everything is good with the QP EMI detector, which is way more accurate. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><iframe src="https://content.jwplatform.com/players/7AgPc2Q8.html" id="7AgPc2Q8" title="Buy the Right SSD" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="performance-rating-12">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/fpDNgBQ4WNfCB27sxuqHva.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/fpDNgBQ4WNfCB27sxuqHva.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance that the C650 achieves is close to the Seasonic Focus and Corsair RM models, but the RM650x, the XPG Reactor 650, and the EVGA 650 G3 are notably better. Nevertheless, the G3 has been already replaced by the inferior G5 line, so it won&apos;t be a threat anymore. </p><h2 id="noise-rating-12">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:651px;"><p class="vanilla-image-block" style="padding-top:75.27%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/XG9yadSgph6GpB5o2F9DAd.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="651" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/XG9yadSgph6GpB5o2F9DAd.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The C650 manages to remain quiet even under harsh conditions (like high loads and increased operating temperatures). Still, the king of this category remains the dead silent Corsair RM650x. </p><h2 id="efficiency-rating-12">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:654px;"><p class="vanilla-image-block" style="padding-top:74.92%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/XLNdNfHhG6GZNediEL96Nf.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="654" height="490" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/XLNdNfHhG6GZNediEL96Nf.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The C650 takes the lead here from its main opponent, the RM650x, but loses to almost all the other offerings in this category. With only exceptions, the first two units from EVGA and XPG, the differences are not so high. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><iframe src="https://content.jwplatform.com/players/7AgPc2Q8.html" id="7AgPc2Q8" title="Buy the Right SSD" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><p>NZXT used the Seasonic Focus platform, only this time, it left out the digital circuits of the E series to allow for a lower price. And that is what matters the most for the majority of people. Currently, the NZXT E650 is almost $45 more expensive than the C650, with the significant differences being the digital voltage, and temperature monitoring capabilities of the former. You can read more about this in our review of the <a href="https://www.tomshardware.com/reviews/nzxt-e-series-850w-psu,5802.html">E850</a>. If you want to keep things simple and save some bucks, the C650 is a better choice than the E650 since both are based on the same platform. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_top_front.jpg" alt="NZXT C650" src="https://cdn.mos.cms.futurecdn.net/xTMByrnuFh42hUtFtMJEo7.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/xTMByrnuFh42hUtFtMJEo7.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance that the C650 is pretty good, but it cannot beat the Corsair RM650x and the XPG Core Reactor with similar capacity, which uses CWT platforms. The EVGA SuperNOVA 650 G3 remains the best performer in this category. Still, the whole G3 line will be phased soon by the notably inferior G5 line so that EVGA won&apos;t be in the club anymore (in this category, at least). All in all, the NZXT C650 is a good choice if you want a reliable PSU with good performance and silent operation. Its major flaw is the single EPS connector, which restricts its usability with mainboards requiring more power in the CPU area. At the moment, there aren&apos;t many PSUs in this price range and Wattage offering two EPS connectors, with the XPG Core Reactor 650, <a href="https://www.tomshardware.com/reviews/corsair-rm650-power-supply,6187.html">Corsair RM650</a>, and the <a href="https://www.tomshardware.com/reviews/asus-rog-strix-650w-power-supply">Asus Rog Strix 650</a> being the best choices, should you need a pair of EPS connectors. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p><iframe src="https://content.jwplatform.com/players/7AgPc2Q8.html" id="7AgPc2Q8" title="Buy the Right SSD" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><iframe src="https://content.jwplatform.com/players/7AgPc2Q8.html" id="7AgPc2Q8" title="Buy the Right SSD" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe>
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                                                            <title><![CDATA[ Seasonic Connect 750W Power Supply Review: The Solution To Cable Management Problems ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/seasonic-connect-750w-power-supply</link>
                                                                            <description>
                            <![CDATA[ The Seasonic Connect is a highly interesting project since it allows for considerably easier cable management and, at the same time, offers high-performance levels. ]]>
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                                                                        <pubDate>Sat, 25 Apr 2020 11:30:09 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:32:36 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Seasonic]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[Seasonic CONNECT Comprise PRIME]]></media:description>                                                            <media:text><![CDATA[Seasonic CONNECT Comprise PRIME]]></media:text>
                                <media:title type="plain"><![CDATA[Seasonic CONNECT Comprise PRIME]]></media:title>
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                                <p>The Seasonic Connect is a unique product since it is the first desktop power supply to use backplane, which is not only a cable-hub, but also hosts the DC-DC converters that generate the minor rails. Thanks to the Connect module, installation is easy, and most important of all, the shorter cables increase airflow inside the chassis leading to lower operating temperatures. Currently, there are no similar offerings, not only from the competition but from Seasonic as well. This product is the first of its kind, and we are expecting more Connect models in the near future.</p><p><em>Editor&apos;s Note (4/26): Seasonic informed us that will look into the noise and EMI cons that we highlighted in the review. We will update if a solution is found.</em></p><p>It was high-time for a change in the PSU market, where things don&apos;t move so fast. Seasonic thought that it would be better, for cable management purposes, if it broke down the PSU into two parts: one is the main power supply generating +12V, -12V and 5VSB and the second part is a cable-hub backplane, which is mounted on the chassis through strong magnets and it is completely hidden behind the mainboard&apos;s tray. Those two parts are connected through a thick cable, which transfers the afore-mentioned rails to the Connect module. The latter passes through these three rails to the system, and it also includes two DC-DC converters, which generate the minor rails (5V and 3.3V). By moving the DC-DC converters to the Connect module, you increase efficiency and allow for a better airflow inside the PSU&apos;s main body. Now, what about the cooling of the DC-DC converters. Well, modern systems don&apos;t heavily utilize those two rails, so the thermal loads remain low. On top of that, Seasonic uses a heat sink that&apos;s large enough to do a pretty good job. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UpMCJgLVQXtoorxH6eR8M7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mkbgVoMHhrAFNhazvL5wT7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wY3aZGtCZD9TKQkkUpn9a7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ndCWb2CM2hLQ4zu8gewai7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Nq4pUzk67XrxEYVDGVcPs7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7uHfL27uuiBNhiowcV4zy7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TsHnefqR8U9QHxftTZ8AA8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mQUhSwGXqS9pgZgXS5oqG8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/u2prupQiiezQTuLe6ksDP8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>If you don&apos;t take into account the single cable that connects the PSU to the Connect module, you can state that this is a fully modular PSU with ultra-short cables, thanks to the Connect technology, which takes away the need for long cables. By shortening the cables, you have two significant advantages: lower voltage drops and higher efficiency. The problem is that you add a modular connection, but if you use a short enough main cable to link the PSU to the Connect module with thick wires, this is not a significant issue. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ph7VRLjaV3hkuYKHk97nuJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X4Up9bffGpT2U4hbyDpzyJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TccvEAfvu2e76eZcFrkm5K.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uzmqwgR9kLL3E9CcgyxKAK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We are a bit skeptical about the lack of cooling on the DC-DC converters that are installed into the Connect module, but those won&apos;t be stressed by the majority of modern systems. Moreover, if there were any reliability issues, Seasonic wouldn&apos;t provide a ten-year warranty to this product. Time will tell whether the lack of active cooling in the Connect will be an issue for some users that might load more than the typical minor rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/yVzuzhCkxnLkmUnJcta8jS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xvWSmv8jGjcTdpDESTxqwS.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qEB7Tsu5dKpmzHMXLSET7T.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yW9VtAotVjvMNW7AUZWpST.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VGBCzTW6cZkmaB57kbTveT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pGwgBeURiqXStghUt6fYpT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The installation of the Connect module is straightforward, as long as there is enough space behind the mainboard tray, and the case is large enough to accommodate it, which won&apos;t be a problem for the majority of midi tower cases. </p><p>With the provided magnets, you can quickly hook up the backplane in any place that allows for all cables to reach the corresponding sockets. It didn&apos;t take us long to install the PSU and its backplane into a Phanteks Evolv X case, which offers ample space, but it doesn&apos;t have much clearance behind the motherboard&apos;s tray. The backplane&apos;s height is 21mm, and the clearance in the Evolv X is close to that.</p><p>We had to remove both hinged metal cable covers that this case has and several built-in velcro straps to mount the Connect module. The glass panel on this side allows for a nice view of the Connect module.</p><h2 id="specifications-13">Specifications</h2><div ><table><tbody><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >Max. DC Output</td><td  >750W</td></tr><tr><td  >Efficiency</td><td  >80 PLUS Gold, ETA-A (88-91%) </td></tr><tr><td  >Noise</td><td  >LAMBDA-S+ (35-40 dB[A]) </td></tr><tr><td  >Modular</td><td  >✓ (With Seasonic Connect)</td></tr><tr><td  >Intel C6/C7 Power State Support</td><td  >✓</td></tr><tr><td  >Operating Temperature (Continuous Full Load)</td><td  >0 - 40°C</td></tr><tr><td  >Over Voltage Protection</td><td  >✓</td></tr><tr><td  >Under Voltage Protection</td><td  >✓</td></tr><tr><td  >Over Power Protection</td><td  >✓</td></tr><tr><td  >Over Current (+12V) Protection</td><td  >✓</td></tr><tr><td  >Over Temperature Protection</td><td  >✓</td></tr><tr><td  >Short Circuit Protection</td><td  >✓</td></tr><tr><td  >Surge Protection</td><td  >✓</td></tr><tr><td  >Inrush Current Protection</td><td  >✓</td></tr><tr><td  >Fan Failure Protection</td><td  >✗</td></tr><tr><td  >No Load Operation</td><td  >✓</td></tr><tr><td  >Cooling</td><td  >135mm Fluid Dynamic Bearing Fan (HA13525H12F-Z)</td></tr><tr><td  >Semi-Passive Operation</td><td  >✓ (selectable)</td></tr><tr><td  >Dimensions (W x H x D) </td><td  >150 x 85 x 140mm </td></tr><tr><td  >Weight</td><td  >1.61 kg (3.55 lb) </td></tr><tr><td  >Form Factor</td><td  >ATX12V v2.4, EPS 2.92</td></tr><tr><td  >Warranty</td><td  >10 Years</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/V8uDiYVxT3Nn823prhtUnX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eKybJDJiL8FNCGDsjNPQzX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/R7QPi5fXSGZ7aM2Ew7NVGY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kkVgYs3zmrmGqzwncv3vRY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tjfyLf26b5rWZURzFmg6ZY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/T9cSVS8s3eqqF5pnoGu7iY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="power-specifications-13">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >62</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  >100</td><td  >744</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">750</td></tr></tbody></table></div><h2 id="cables-amp-connectors-11">Cables & Connectors</h2><div ><table><tbody><tr><td  ><kbd><font size="4" color="#FFFFFF"><strong>Native Cables</strong></font></kbd></td><td  > </td><td  > </td><td  > </td><td  > </td></tr><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Caps</strong></td></tr><tr><th  ><strong>Main connector 20-pin and 10-pin sense (220mm)</strong></th><td  >1</td><td  >1</td><td  >16-24AWG</td><td  >No</td></tr><tr><td  ><kbd><font size="4" color="#FFFFFF"><strong>Modular Cables</strong></font></kbd></td><td  > </td><td  > </td><td  > </td><td  > </td></tr><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>Gauge</strong></td></tr><tr><th  ><strong>ATX connector 20+4 pin (210mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4+4 pin EPS12V (240mm)</strong></th><td  >2</td><td  >2</td><td  >16AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (280mm)</strong></th><td  >2</td><td  >2</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (320mm)</strong></th><td  >2</td><td  >2</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (300mm+70mm+70mm+70mm)</strong></th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (200mm+40mm)</strong></th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (120mm+110mm)</strong></th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4-pin Molex (450mm+120mm+120mm)</strong></th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex to SATA 3.3V Adapter (150mm+150mm)</th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1380mm) -  C13 coupler</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>The main fixed cable, which connects the PSU with the backplane, looks short at 220mm, but there is no need for a longer cable, even with large chassis. This cable could be modular as well, but Seasonic decided to make it modular for lower voltage drops since, through this cable, the PSU&apos;s entire output has to pass through, under full load scenarios. </p><p>The modular cables are short, but this is not a problem since the backplane is close to all parts that feeds with power. The number of connectors is satisfactory, and our only objection is the short distance between the 4-pin Molex connectors, which is an issue for many PSUs nowadays. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/r3WJxNENDPKYzNFUsiHeXh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oCGadyr7a9fSBnZb59jHeh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7UsWdEFi9T2uzyk4NuP9jh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4wXcF2b8jKGCPkmBaUtRrh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/w6Vyzy25mYihYvzSxWsXvh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XPFDbWiEFxNRdfpydsxMzh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SNoPLaFnPCra9nhBRgsy4i.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Btr4XDATJYrM7y95RBrg8i.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Sz2PTLapK6YLjiweSVCNDi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VbEtC6LWkirxUocVxcsxJi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7A9HwazcxitseRoBVaxxZi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-13">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong>allowing you to better understand the components we&apos;re about to discuss.</strong></p><div ><table><tbody><tr><td  ><kbd><span style="color: #ffffff; font-size: large;"><strong>General Data</strong></span></kbd></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><kbd><span style="color: #ffffff; font-size: large;"><strong>Primary Side</strong></span></kbd></td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV, 1x Discharge IC</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor (MF72 5D-20L) & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  ><div align="center">2x GBU1508 (800V, 15A @ 100°C)</div></td></tr><tr><td  >APFC MOSFETs</td><td  ><div align="center">2x Infineon IPA50R190CE (550V, 15.7A @ 100°C, 0.19Ohm)</div></td></tr><tr><td  >APFC Boost Diode</td><td  ><div align="center">1x STMicroelectronics STTH8S06D (600V, 8A @ 25°C)</div></td></tr><tr><td  >Hold-up Cap(s)</td><td  ><div align="center">1x Hitachi (400V, 820uF, 2,000h @ 105°C, HU)</div></td></tr><tr><td  >Main Switchers</td><td  ><div align="center">4x Great Power GPT10N50AD (500V, 9.7A, 0.7Ohm)</div></td></tr><tr><td  >APFC Controller</td><td  ><div align="center">Champion CM6500UNX</div></td></tr><tr><td  >Resonant Controller</td><td  >Champion CM6901T6X</td></tr><tr><td  >Topology</td><td  ><div align="center">Primary side: Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</div></td></tr><tr><td  ><kbd><span style="color: #ffffff; font-size: large;"><strong>Secondary Side</strong></span></kbd></td><td  >-</td></tr><tr><td  >+12V MOSFETs</td><td  >4x Nexperia PSMN2R6-40YS (40V, 100A @ 100°C, 5.3mOhm @ 175°C)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 6x Nexperia PSMN4R0-30YLD (30V, 67A @ 100°C, 6.6mOhm @ 150°C)<br> PWM Controllers: ANPEC APW7159C</td></tr><tr><td  >Filtering Capacitors</td><td  ><p>Electrolytic: 7x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 4x Nippon Chemi-Con (105°C, W), 2x Nippon Chemi-Con (1-5,000h @ 105°C, KZE)<br> Polymer: 28x FPCAP, 6x United Chemi-Con</p></td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7527V (OCP, OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA13525H12F-Z (135mm, 12V, 0.50A, 2,000rpm, Fluid Dynamic Bearing Fan)</td></tr><tr><td  ><kbd><span style="color: #ffffff; font-size: large;"><strong>5VSB Circuit</strong></span></kbd></td><td  >-</td></tr><tr><td  >Rectifier</td><td  >1x MCC MBR1045ULPS SBR (45V, 10A @ 90°C)</td></tr><tr><td  >Standby PWM Controller</td><td  >Excelliance MOS Corp EM8569</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zpPMrior3uq3nuCYFXbBii.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pp4GTTfQyokHn6fNcW5tqi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WFVLeRZS5zG6TuUemEsowi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/69onMibSo5Hf25opMR5f7j.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/He7StinCjryyR9nwhNDmCj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Seasonic mentions in the product&apos;s page that a model of its high-end Prime line, the SSR-750GD2, is combined with the Connect module. Nonetheless, this specific Prime model uses a design that is identical to <a href="https://www.tomshardware.com/reviews/seasonic-ssr-750fx-focus-plus-750-gold-psu,5206.html">Seasonic&apos;s Focus line</a>, with the significant difference being the use of a larger, 135mm, fan. The bulk cap is also larger. </p><p>On the primary side, we meet a full-bridge topology and an LLC resonant converter, for increased efficiency. The main PCB lacks a modular panel and the DC-DC converters that generate the minor rails, so there is lots of space among its components, which allows for increased airflow. The converters mentioned above are on the Connect module.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/hpZ5aPwxqnLyaeRWDNEEcG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iKtkvBqNfKUF6rKkFQ4NkG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/spBdyszpRdnqRArbNZQR6H.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZqmxdQntLrjwGvoKVSrhCH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ktRZQNEv5UHhoF6xV2yPJH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hznvMtFQACURJkTBdeJFSH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter has all the necessary components, but it doesn&apos;t perform so well, according to the results that we got from the EMC pre-compliance testing. For the inrush and surge protection, Seasonic used an NTC thermistor along with a bypass relay and an MOV. </p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="bridges.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/hSv8vfk36n5M523huUiMTU.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The pair of bridge rectifiers can handle up to 30 Amps of current, so it is quite powerful for a 750W power supply. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/gA7sQEytuN6YMseQxG6Nne.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jWr2L6dPXJpUczWojGSLte.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JT3ZuMvphrkQAE8Q72NJDf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6emroJtjv29kaHsRGDRuLf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter uses Infineon FETs and a high capacity bulk, which is provided by  Hitachi. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mTte765Z33NVXP2kXLESJo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BSStygMUQzRgLvf4BtzFRo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xmMaH6BMPStQbiVELCVaXo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Dr2FJCWDmvc5u5KsQXid9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main FETs are installed into a full-bridge topology, and as usual, an LLC resonant converter helps in lower the switching losses. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2eskruy6LNWw4PYf9Zn2on.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iaypoG2MqHMD3R8pA8hiEo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Four Nexperia FETs, installed on the solder side of the main PCB, handle the +12V rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/tWGjtNabGc52RY9TFUsXW7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UupqaXiENZpLmRAfLJ5o78.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Besides electrolytic caps, which are provided by Chemi-Con, there is also a high number of polymer caps.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FrLvz6REg3YMkEtu3WK4oH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DRdC5jkna8r7B2bDCoVr9J.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QoWVGrs9kFuJy57qfQZfdJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/f49wGNRfaqXgFeEzoaNJsJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/z6WamJ4kopXPy2Lw7VeKBK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The soldering quality is good enough. On this side of the PCB, you will also find the supervisor IC.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/S5uHPs9wzHVC3Yp6Po2XXT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YghuqDpeLYn83fx4d7GHjT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The cooling fan measures 135mm across and uses a fluid dynamic bearing.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YrWaGtDdwqq3KH6GJvGxVB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XvFwoMHWCXLUidJRJf4NcB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rLfG6SCAJsLZe3verjaGhB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FBzxNhvdUuqjUziJouuWoB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B9YdBSPrxPvDSihMtVszrB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UVBZehbqsZaNTc5ghq6JyB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FTouT8VAYUt23XPEqvXU6C.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We also took apart the Connect module. Its build quality is good, and there is a heat sink on top of the VRM&apos;s, which hosts a thermistor. The latter provides temperature data to the over-temperature protection circuit. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="43c07c6e-fc12-449d-9725-2a0e894c662a">            <a href="https://www.newegg.com/evga-supernova-750-g5-220-g5-0750-x1-750w/p/N82E16817438162" data-model-name="EVGA SuperNOVA 750 G5" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.25%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">EVGA SuperNOVA 750 G5</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star half"></span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="70" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="e9abc7d3-ad52-4c54-898e-4520de8f98aa">            <a href="https://www.newegg.com/corsair-rm-series-rm750-cp-9020195-na-750w/p/N82E16817139168" data-model-name="Corsair RM750" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.20%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/9rVtsEtWQGCKiKng9ny4be.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM750</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="14d36166-c2ba-4c77-b51a-3a561e248614">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https%3A%2F%2Fwww.newegg.com%2FProduct%2FProduct.aspx%3Fitem%3DN82E16817139233" data-model-name="RM750x" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/Cvh7Sj5RUu8U4E6YXhDhn7.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM750x V2</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-13">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40W up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HxjuNJAcgwmooHqRfgU3gc.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s2nAkY6iYXTGSnxCDqQZkc.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JPJiNSXoJVQyyg3iLvK73d.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zc72MQLJGoct7CXBgu9n7d.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/poDzf8jMHLMRhD6aUZjfBd.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eqMgvFeChoVHTe9GStwrEd.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jVJSbpWj34gisBPT8KVVJd.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/x9wYc2V3jPDof6SCcwypNd.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The load regulation is pretty tight on all rails. Compared to the Focus Plus Gold unit, it loses at +12V and 5VSB but wins on the minor rails. This is because of the Connect module, which might only be a link for +12V and 5VSB, but generates the minor rails, so the energy losses are lower. </p><h2 id="hold-up-time-13">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aZjX2WqZuMHEkshWNYbuyH.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jThZKoqdPvLdGiiLrBNW5J.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fdJNhMk4yRWinX8QK4jvAJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cT2ViYzqhrDVGvKYFfapSJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2u5ntC7sXSdg7qN32bGmXJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y2azmkPou7gzPpZNJpTPeJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/T3gJtqmApxorT7aWtuucjJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is much longer than 17ms, which is what the ATX spec requires, and the power ok signal is accurate.</p><h2 id="inrush-current-13">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UCbi5UDTWYf7Jti2YXsanQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xGjoK2bR3tN4QzuYG4tpsQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>With 115V input the inrush current is low, but this is not the case with 230V. </p><h2 id="10-110-load-tests-12">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>D°C/A°C (Watts)</strong></td><td  ><strong>Effi°Cien°Cy</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/A°C Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>4.424A</strong></td><td  ><strong>1.989A</strong></td><td  ><strong>1.982A</strong></td><td  ><strong>0.983A</strong></td><td  >74.957</td><td  >85.471%</td><td  >0</td><td  ><6.0</td><td  > 45.55°C</td><td  >0.968</td></tr><tr><td  >12.059V</td><td  >5.030V</td><td  >3.330V</td><td  >5.090V</td><td  >87.699</td><td  > 40.57°C</td><td  >115.14V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>9.880A</strong></td><td  ><strong>2.985A</strong></td><td  ><strong>2.974A</strong></td><td  ><strong>1.184A</strong></td><td  >150.026</td><td  >89.140%</td><td  >0</td><td  ><6.0</td><td  > 46.54°C</td><td  >0.981</td></tr><tr><td  >12.057V</td><td  >5.027V</td><td  >3.327V</td><td  >5.070V</td><td  >168.304</td><td  > 41.24°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>15.677A</strong></td><td  ><strong>3.484A</strong></td><td  ><strong>3.474A</strong></td><td  ><strong>1.385A</strong></td><td  >225.025</td><td  >90.141%</td><td  >582</td><td  >19.2</td><td  > 41.65°C</td><td  >0.987</td></tr><tr><td  >12.054V</td><td  >5.024V</td><td  >3.325V</td><td  >5.053V</td><td  >249.638</td><td  > 47.43°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>21.475A</strong></td><td  ><strong>3.984A</strong></td><td  ><strong>3.974A</strong></td><td  ><strong>1.589A</strong></td><td  >300.031</td><td  >90.068%</td><td  >698</td><td  >22.8</td><td  > 41.96°C</td><td  >0.988</td></tr><tr><td  >12.052V</td><td  >5.022V</td><td  >3.323V</td><td  >5.035V</td><td  >333.117</td><td  > 48.23°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>26.892A</strong></td><td  ><strong>4.984A</strong></td><td  ><strong>4.969A</strong></td><td  ><strong>1.794A</strong></td><td  >374.529</td><td  >89.751%</td><td  >872</td><td  >29.3</td><td  > 42.61°C</td><td  >0.988</td></tr><tr><td  >12.049V</td><td  >5.018V</td><td  >3.320V</td><td  >5.017V</td><td  >417.297</td><td  > 49.38°C</td><td  >115.10V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>32.350A</strong></td><td  ><strong>5.984A</strong></td><td  ><strong>5.970A</strong></td><td  ><strong>2.000A</strong></td><td  >449.457</td><td  >89.244%</td><td  >1086</td><td  >36.3</td><td  > 42.72°C</td><td  >0.988</td></tr><tr><td  >12.045V</td><td  >5.014V</td><td  >3.317V</td><td  >4.997V</td><td  >503.626</td><td  > 50.03°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>7</strong></font></td><td  ><strong>37.842A</strong></td><td  ><strong>6.983A</strong></td><td  ><strong>6.972A</strong></td><td  ><strong>2.210A</strong></td><td  >524.792</td><td  >88.532%</td><td  >1495</td><td  >44.4</td><td  > 43.14°C</td><td  >0.988</td></tr><tr><td  >12.042V</td><td  >5.011V</td><td  >3.314V</td><td  >4.978V</td><td  >592.774</td><td  > 51.27°C</td><td  >115.08V</td></tr><tr><td  ><font><strong>8</strong></font></td><td  ><strong>43.334A</strong></td><td  ><strong>7.991A</strong></td><td  ><strong>7.976A</strong></td><td  ><strong>2.421A</strong></td><td  >600.112</td><td  >87.773%</td><td  >1701</td><td  >46.9</td><td  > 43.72°C</td><td  >0.989</td></tr><tr><td  >12.039V</td><td  >5.007V</td><td  >3.310V</td><td  >4.958V</td><td  >683.712</td><td  > 52.62°C</td><td  >115.07V</td></tr><tr><td  ><font><strong>9</strong></font></td><td  ><strong>49.199A</strong></td><td  ><strong>8.494A</strong></td><td  ><strong>8.464A</strong></td><td  ><strong>2.428A</strong></td><td  >674.613</td><td  >87.075%</td><td  >1934</td><td  >50.7</td><td  > 45.01°C</td><td  >0.990</td></tr><tr><td  >12.035V</td><td  >5.004V</td><td  >3.308V</td><td  >4.943V</td><td  >774.747</td><td  > 54.67°C</td><td  >115.07V</td></tr><tr><td  ><font><strong>10</strong></font></td><td  ><strong>54.861A</strong></td><td  ><strong>8.997A</strong></td><td  ><strong>8.983A</strong></td><td  ><strong>3.054A</strong></td><td  >749.847</td><td  >86.308%</td><td  >1941</td><td  >51.1</td><td  > 45.21°C</td><td  >0.991</td></tr><tr><td  >12.033V</td><td  >5.002V</td><td  >3.306V</td><td  >4.913V</td><td  >868.799</td><td  > 55.62°C</td><td  >115.06V</td></tr><tr><td  ><font><strong>11</strong></font></td><td  ><strong>61.122A</strong></td><td  ><strong>8.999A</strong></td><td  ><strong>8.984A</strong></td><td  ><strong>3.063A</strong></td><td  >825.067</td><td  >85.553%</td><td  >1949</td><td  >51.5</td><td  > 46.50°C</td><td  >0.992</td></tr><tr><td  >12.031V</td><td  >5.001V</td><td  >3.306V</td><td  >4.898V</td><td  >964.397</td><td  > 57.39°C</td><td  >115.05V</td></tr><tr><td  ><font><strong>°CL1</strong></font></td><td  ><strong>0.116A</strong></td><td  ><strong>11.999A</strong></td><td  ><strong>12.000A</strong></td><td  ><strong>0.000A</strong></td><td  >101.052</td><td  >84.152%</td><td  >584 </td><td  >19.2</td><td  > 42.42°C</td><td  >0.977</td></tr><tr><td  >12.049V</td><td  >5.006V</td><td  >3.299V</td><td  >5.097V</td><td  >120.082</td><td  > 49.15°C</td><td  >115.12V</td></tr><tr><td  ><font><strong>°CL2</strong></font></td><td  ><strong>62.005A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.001A</strong></td><td  ><strong>1.000A</strong></td><td  >759.994</td><td  >86.960%</td><td  >1943 </td><td  >51.2</td><td  > 45.78°C</td><td  >0.991</td></tr><tr><td  >12.042V</td><td  >5.023V</td><td  >3.333V</td><td  >4.971V</td><td  >873.959</td><td  > 55.99°C</td><td  >115.04V</td></tr></tbody></table></div><p>With 30% load, the PSU achieves its peak efficiency, which is a little over 90%. With full load, efficiency takes a hit and cannot reach close to 87%, as the 80 PLUS Gold standard requires. Nonetheless, we conducted these tests at much higher operating temperatures, compared to 80 PLUS. Finally, the PF readings are not as high as we would like to see, especially at lower loads. </p><h2 id="20-80w-load-tests-13">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.231A</strong></td><td  ><strong>0.496A</strong></td><td  ><strong>0.494A</strong></td><td  ><strong>0.195A</strong></td><td  >19.992</td><td  >69.371%</td><td  >0</td><td  ><6.0</td><td  >0.860</td></tr><tr><td  >12.062V</td><td  >5.037V</td><td  >3.337V</td><td  >5.117V</td><td  >28.819</td><td  >115.14V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>2.461A</strong></td><td  ><strong>0.993A</strong></td><td  ><strong>0.989A</strong></td><td  ><strong>0.392A</strong></td><td  >39.980</td><td  >79.764%</td><td  >0</td><td  ><6.0</td><td  >0.935</td></tr><tr><td  >12.061V</td><td  >5.034V</td><td  >3.334V</td><td  >5.109V</td><td  >50.123</td><td  >115.14V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>3.694A</strong></td><td  ><strong>1.492A</strong></td><td  ><strong>1.486A</strong></td><td  ><strong>0.588A</strong></td><td  >60.008</td><td  >83.966%</td><td  >0</td><td  ><6.0</td><td  >0.958</td></tr><tr><td  >12.060V</td><td  >5.032V</td><td  >3.332V</td><td  >5.101V</td><td  >71.467</td><td  >115.14V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>4.922A</strong></td><td  ><strong>1.989A</strong></td><td  ><strong>1.980A</strong></td><td  ><strong>0.786A</strong></td><td  >79.957</td><td  >86.147%</td><td  >0</td><td  ><6.0</td><td  >0.970</td></tr><tr><td  >12.059V</td><td  >5.030V</td><td  >3.331V</td><td  >5.093V</td><td  >92.815</td><td  >115.14V</td></tr></tbody></table></div><p>We would like to see over 70% efficiency with 20W load, and above 80% with 40W. </p><h2 id="2-or-10w-load-test-13">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.080A</strong></td><td  ><strong>0.209A</strong></td><td  ><strong>0.211A</strong></td><td  ><strong>0.052A</strong></td><td  >15.043</td><td  >61.248%</td><td  >0</td><td  ><6.0</td><td  >0.824</td></tr><tr><td  >12.056V</td><td  >5.037V</td><td  >3.338V</td><td  >5.118V</td><td  >24.561</td><td  >115.15V</td></tr></tbody></table></div><p>With 2% of the max-rated-capacity load, the PSU&apos;s efficiency is quite low, barely exceeding 60%. In newer designs, even under such a light load, efficiency easily breaks the 70% mark. </p><h2 id="efficiency-6">Efficiency</h2><p>Next, we plotted a chart showing the PSU’s efficiency at low loads, and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KAjXjSz3sRCq995NGjY2Ec.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/t9mNQr2Uw8mAp3ijxowBJc.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KuiV7Qk8dL5pxWrd2RdXNc.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zPVmcphtamKHSE6jtcoSRc.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AkHN3sedvcHYtoppqniGUc.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>With normal and 2% loads, the efficiency levels are not that high, compared to the competition at least, while with light loads, the PSU&apos;s efficiency is satisfactory. </p><h2 id="5vsb-efficiency-13">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.512</td><td  >73.988%</td><td  >0.108</td></tr><tr><td  >5.121V</td><td  >0.692</td><td  >115.15V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.280</td><td  >76.236%</td><td  >0.223</td></tr><tr><td  >5.117V</td><td  >1.679</td><td  >115.15V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.811</td><td  >77.077%</td><td  >0.340</td></tr><tr><td  >5.110V</td><td  >3.647</td><td  >115.14V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.100</td><td  >76.669%</td><td  >0.413</td></tr><tr><td  >5.099V</td><td  >6.652</td><td  >115.14V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.633</td><td  >76.891%</td><td  >0.451</td></tr><tr><td  >5.088V</td><td  >9.927</td><td  >115.14V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>3.000A</strong></td><td  >15.137</td><td  >74.394%</td><td  >0.505</td></tr><tr><td  >5.045V</td><td  >20.347</td><td  >115.12V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uzTavwq4PDXqLGSduiFTpg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6KJyFZsXwfgBPCBt2ujEug.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail needs an efficiency boost, to effectively meet the competition. This can only be achieved through a new design, of course. </p><h2 id="power-consumption-in-idle-and-standby-13">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>Idle</strong></font></td><td  >12.056V</td><td  >5.037V</td><td  >3.338V</td><td  >5.121V</td><td  >9.867</td><td  >0.547</td></tr><tr><td  > </td><td  > </td><td  > </td><td  > </td><td  > </td><td  > </td><td  >115.1V</td></tr><tr><td  ><font><strong>Standby</strong></font></td><td  > </td><td  >0.043</td><td  >0.007</td></tr><tr><td  > </td><td  > </td><td  > </td><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/tRfHXu7ccMcqDiMioH3XDn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mjtTptDvWB24XuDA6TF7Hn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The vampire power levels are low, with both voltage inputs. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-13">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/zqGY7jGjEgNEMmjVbSKy44.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/zqGY7jGjEgNEMmjVbSKy44.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/upFNEPkuBvqhPmFtPy7aYA.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/upFNEPkuBvqhPmFtPy7aYA.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan profile is aggressive, especially under high operating temperatures and increased loads. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/mN5paKRr3amgouXgh8HAeE.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/mN5paKRr3amgouXgh8HAeE.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/shUXZpTSmS8wgy5dtU9vvJ.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/shUXZpTSmS8wgy5dtU9vvJ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile remains aggressive under normal operating temperatures. Given the ample space between components in this PSU and the satisfactory efficiency levels, there is no need for such high fan speeds. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-13">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  ><p><strong><span>Protection          Features</span></strong></p></td><td  > </td></tr><tr><td  ><p><span>OCP</span></p></td><td  ><p><span>12V: 87.8A (141.61%), 12.027V<br>          5V: 27.9A (139.5%), 4.972V<br>          3.3V: 27.6A (138%), 3.252V<br>          5VSB: 6.1A (203.33%</span>), 4.958V</p></td></tr><tr><td  ><p><span>OPP</span></p></td><td  ><p><span>1069.34W (141.63%) </span></p></td></tr><tr><td  ><p><span style=""Times New Roman"">OTP PSU / Connect Module</span></p></td><td  ><p><span style=""Times New Roman"">✓ (132°C @ 12V Heat Sink) <br> ✓ (155°C @ VRMs Heat Sink)</span></p></td></tr><tr><td  ><p><span>SCP</span></p></td><td  ><p><span>12V: ✓<br>          5V: ✓<br>          3.3V: ✓<br>          5VSB: ✓<br>          -12V: ✓ </span></p></td></tr><tr><td  ><p><span>PWR_OK</span></p></td><td  ><p><span> Proper Operation</span></p></td></tr><tr><td  ><p><span>NLO</span></p></td><td  ><p>✓</p></td></tr><tr><td  ><p><span>SIP</span></p></td><td  ><p><span>Surge: MOV<br>          Inrush: NTC Thermistor & Bypass Relay </span></p></td></tr></tbody></table></div><p>The OCP and OPP triggering points are set quite high. This might be a capable platform, but we would prefer to see within 130% thresholds. On the other hand, the over-temperature protection is configured correctly in both the power supply and the Connect module. </p><h2 id="dc-power-sequencing-13">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4tD6hjqr78o4Sr4TFtNwiU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rCFEVXggDpyZKfqdq6DyoU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iWKoVyds95SVy3EzfMNauU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail is always lower than the other two, so there is no problem here.</p><h2 id="cross-load-tests-13">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-13">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/yMcxsyzntDbAtRWTAvWDna.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VBrAe6EJTGdKVhJqwCipsa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KrRw8pFFB5G3cXWMuw6tya.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-8">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/vvHFDDPwWRSZTWGvAzCSyd.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/vvHFDDPwWRSZTWGvAzCSyd.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-8">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fNB2KpiXQc7GJLCpK5oEKi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DrZEoSi4bU7MVGFeg98eai.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jWJYxoVQL8r7TtgcXZvFgi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rcsCiDJkXs6RRCUPw4bFki.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-13">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/egqWsQ5dcJ8Zr8pxtKAzmb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AL6biSuvkHq9tYFe4gVDvb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gEfmZSSuDWST7WUx5DNp5c.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NFYieGRka4pjgkGrWEDHPc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/J6am6ZtTPLSvoZNvkpyyXc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8He272RWtRRLAXic7bSdec.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Vt5XAGJtuaXFs2Trvkswzc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4ykAR3hhFXhDtQDnm9Ez7d.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WQiNGiCckZssE7esyWWRRd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3pYK3pYVN6Sws9rKMzBSYd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nez8phzt2FcmpgzqayeRdd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The temperatures are kept at normal levels.</p><p>We wanted to see how the Connect module copes with the heat that the DC-DC converters generate, under very high loads, so we applied 100W combined on the minor rails for 30 minutes, and we took several IR images.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JSYZrNTjHBgaxQZjT4VHih.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6Nqg6q4WHrQRs7kRjxkKrh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6D7wDsPbzVbN9hEMozkqEi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/J3HM4vKmzqsZbcjABpDWMi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6KEzqhuZkQuKyEC39BHfUi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9h52R7exjrF7vZde3GH9bi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6pvR6PhdK796vW4Js96Cii.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tn8H47yJyymf6yJuFB6R5j.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dD946nWSmhdEJ4KCTDyHGj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We pushed the VRMs of the Connect module hard. Still, the temperatures at its internals were kept at low levels, proving that you won&apos;t have any overheating issues in any real-life usage scenarios. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-13">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-x2013-20ms-13">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.050V</td><td  >11.907V</td><td  >1.19%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.026V</td><td  >4.957V</td><td  >1.37%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.327V</td><td  >3.237V</td><td  >2.71%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.067V</td><td  >5.012V</td><td  >1.09%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-x2013-10ms-13">Advanced Transient Response at 20% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.055V</td><td  >11.928V</td><td  >1.05%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.026V</td><td  >4.953V</td><td  >1.45%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.327V</td><td  >3.238V</td><td  >2.68%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.068V</td><td  >5.009V</td><td  >1.16%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-13">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.055V</td><td  >11.942V</td><td  >0.94%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.027V</td><td  >4.958V</td><td  >1.37%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.327V</td><td  >3.241V</td><td  >2.58%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.069V</td><td  >5.029V</td><td  >0.79%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-20ms-13">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.042V</td><td  >11.938V</td><td  >0.86%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.017V</td><td  >4.943V</td><td  >1.47%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.320V</td><td  >3.227V</td><td  >2.80%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.014V</td><td  >4.963V</td><td  >1.02%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-x2013-10ms-13">Advanced Transient Response at 50% – 10ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.047V</td><td  >11.944V</td><td  >0.85%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.017V</td><td  >4.944V</td><td  >1.46%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.319V</td><td  >3.225V</td><td  >2.83%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.016V</td><td  >4.975V</td><td  >0.82%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-13">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.047V</td><td  >11.936V</td><td  >0.92%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >5.018V</td><td  >4.943V</td><td  >1.49%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.320V</td><td  >3.233V</td><td  >2.62%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.015V</td><td  >4.980V</td><td  >0.70%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cCUt2crdEY2UfcsvfAsvxF.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hHPFtHhnMy2dFFwTNKRo4G.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bSvVgfuC5V3Wy7XswrMi8G.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RvfA4kwsyXAsDxQhk2tbBG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9ZvRk3u7BfdXAeDLPrpKFG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Qs3kAAvbhrJxmmv9JYMPJG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/53VP9vVWW5Hy97CgEDAMMG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fycYnoAMJvyyNjxuP46dQG.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient response is good on all rails.</p><h2 id="turn-on-transient-tests-13">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/J23EXuoDtLbiXRZjiLdgYL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iFKUF8rgXkDRAPqiJgYKeL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gSXzTrmVExhPTHsAmrMajL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There is a small voltage overshoot at 5VSB and a voltage step at +12V, which is nothing to worry about. </p><h2 id="power-supply-timing-tests-13">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU&apos;s Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms, to be compatible with the Alternative Sleep Mode.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >78ms</td><td  >314ms</td></tr><tr><th  ><strong>50%</strong></th><td  >90ms</td><td  >314ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode, which is recommended by the ATX spec.</p><h2 id="ripple-measurements-13">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>10% Load</strong></font></td><td  >8.4 mV</td><td  >7.5 mV</td><td  >15.1 mV</td><td  >5.1 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>20% Load</strong></font></td><td  >12.2 mV</td><td  >7.6 mV</td><td  >15.7 mV</td><td  >5.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>30% Load</strong></font></td><td  >14.2 mV</td><td  >7.6 mV</td><td  >15.8 mV</td><td  >5.3 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>40% Load</strong></font></td><td  >15.4 mV</td><td  >7.6 mV</td><td  >15.5 mV</td><td  >5.6 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>50% Load</strong></font></td><td  >12.3 mV</td><td  >7.8 mV</td><td  >15.8 mV</td><td  >6.0 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>60% Load</strong></font></td><td  >11.0 mV</td><td  >8.2 mV</td><td  >17.0 mV</td><td  >6.0 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>70% Load</strong></font></td><td  >12.0 mV</td><td  >8.5 mV</td><td  >16.2 mV</td><td  >6.1 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>80% Load</strong></font></td><td  >12.7 mV</td><td  >9.2 mV</td><td  >17.0 mV</td><td  >8.8 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>90% Load</strong></font></td><td  >13.4 mV</td><td  >9.4 mV</td><td  >17.0 mV</td><td  >9.2 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>100% Load</strong></font></td><td  >20.8 mV</td><td  >10.1 mV</td><td  >18.0 mV</td><td  >9.5 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>110% Load</strong></font></td><td  >22.4 mV</td><td  >10.4 mV</td><td  >20.4 mV</td><td  >9.5 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 1</strong></font></td><td  >19.4 mV</td><td  >11.0 mV</td><td  >19.0 mV</td><td  >7.9 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 2</strong></font></td><td  >18.0 mV</td><td  >8.4 mV</td><td  >15.9 mV</td><td  >7.8 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Jq8HQbo9YX2v6ALt7izujV.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/w3R3BC3CEMGyFf6M2Y8m8W.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4rHzkfGowqVUcWAgEiGkUW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/473dykLtD7RL7SbstaoJYW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ripple suppression is good on all rails. Still, it cannot reach the amazing performance of the RM750x, which uses extra caps on its cables, though. </p><h2 id="ripple-at-full-load-13">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GuTTMyu9XuakjWexBXCvud.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/twBjnK7CbcpnuHcPsgLh4e.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uL5VNGssBNfWTEwmqGtBDe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5fo56sPX4Vdq5mD8TUgjHe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-12">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/haMRihZisFUWrzNdNJDDvj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yPPKUys4foRUYY4aUmuLzj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m3HWwiqFsuAHbuEmbecq5k.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GD8apmZJSXS9PjXFDBj8Bk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-13">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8WFenRikMFyMYPyC7hKKG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FWv4D2EngscvXc6smdRyL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zWVChYXoJWiBYhTnXuCcR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DgvJuGASEyn3zN9JDWBdX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-8">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mHB3oq35Bd5fRqpE4znZK6.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RJv8kTHtESCcxH5NkQmdR6.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vyAdmeNw27RkvD4BZW48W6.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WrAb7Ji64qruFmexukSdb6.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-11">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1354px;"><p class="vanilla-image-block" style="padding-top:35.16%;"><img id="" name="EMI.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/VUaCcyypmGKykm5LLnzz2e.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1354" height="476" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/VUaCcyypmGKykm5LLnzz2e.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>With the average EMI detector, we found eleven spurs that go over the limits, while with the much more QP detector, we measured four spikes, at 428, 432, 643, and 859 kHz. The EMI filter needs improvements. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-13">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="Seasonic CONNECT Comprise PRIME 750W Chart" src="https://cdn.mos.cms.futurecdn.net/5bkFHNdxY6Pbb5L6JJZXw9.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/5bkFHNdxY6Pbb5L6JJZXw9.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance is pretty high. With a little better ripple performance, the Seasonic offering would be much closer to the RM750x.</p><h2 id="noise-rating-13">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><a href="Seasonic CONNECT Comprise PRIME 750W Chart"><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/dcepoYLhdzUzXFUdnttyLC.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/dcepoYLhdzUzXFUdnttyLC.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure></a><p>The fan speed profile is aggressive, unfortunately, and this leads to noisy operation, especially under high loads and increased operating temperatures. </p><h2 id="efficiency-rating-13">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:633px;"><p class="vanilla-image-block" style="padding-top:80.73%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="Seasonic CONNECT Comprise PRIME 750W Chart" src="https://cdn.mos.cms.futurecdn.net/UaSDiPko4zQS4z5K7CmsMF.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="633" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/UaSDiPko4zQS4z5K7CmsMF.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall efficiency is satisfactory, but there is room for improvement in this section.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>Seasonic was brave enough not only to design a PSU that easily stands out from the crowd but to mass-produce it, as well. This product is the first of its kind, and we hope that Seasonic will release more Connect models, covering a broad capacity range. </p><p>With a chassis that has more than 20mm clearance behind the mainboard tray, the installation of the Connect PSU is straightforward, and the fact that you don&apos;t have to deal with long cables makes the cable routing and management processes trouble-free. Besides that, shorter cables can also lead to increased airflow, since they occupy less space into the chassis, so the block less the airflow.</p><p>Usually, new designs don&apos;t go along with high performance, but this is not the case with this product, which achieved a pretty high overall performance score. Moreover, it carries a fair price tag, given its features and the increased production cost, because of the Connect module. We also highly appreciated the fact that Seasonic took an extra step and made sure that there is an additional over-temperature protection circuit on the Connect module. </p><p>This shows that the design is mature, and its engineers took everything into account, and they didn&apos;t rush in releasing this product into the market. Finally, the lack of active cooling in the Connect module doesn&apos;t pose a problem, since we highly pushed with the full load that the minor rails can handle, for a prolonged period, and it didn&apos;t sweat. Finally, the build quality is impeccable in both the power supply and the backplane.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="Seasonic CONNECT Comprise PRIME 750W" src="https://cdn.mos.cms.futurecdn.net/adNNPwTH79iqNrS9UyjBDJ.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/adNNPwTH79iqNrS9UyjBDJ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The Seasonic Connect 750W currently costs about 20 dollars more than the Prime 750 Gold (SSR-750GD2), a price difference that looks low given that the package includes the Connect module. This is the first power supply of its kind, so there is no direct competition. Hopefully, we will see more PSUs of this type in the future, and it would be helpful as well, to work on making the connection between the power supply and the backplane modular without any significant efficiency losses.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Asus ROG Strix 750W Power Supply Review  ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/asus-rog-strix-750w-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ The strongest assets of the Asus ROG Strix 750W are the high performance and the silent operation, along with the good build quality. ]]>
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                                                                        <pubDate>Sun, 15 Mar 2020 12:00:43 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:30:38 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Asus ROG Strix 750W]]></media:description>                                                            <media:text><![CDATA[Asus ROG Strix 750W]]></media:text>
                                <media:title type="plain"><![CDATA[Asus ROG Strix 750W]]></media:title>
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                                <p>The Asus ROG Strix with 750W max power achieves high performance, and on top of that, it features dead silent operation (<a href="https://www.cybenetics.com/index.php?option=database2&params=1,0,66">Cybenetics LAMBDA-A</a>). Nevertheless, its price is stiff, with the competing offerings from Corsair (<a href="https://www.tomshardware.com/reviews/corsair-rm750x-v2-psu,5585.html">RM750x</a>), Seasonic (<a href="https://www.tomshardware.com/reviews/seasonic-ssr-750fx-focus-plus-750-gold-psu,5206.html">Focus GX-750</a>), and XPG (<a href="https://www.tomshardware.com/reviews/xpg-core-reactor-750w-power-supply-review">Core Reactor 750W</a>), costing notably less. The main difference between the Rog Strix units and the similar capacity Seasonic models are the larger heat sinks, which allow for lower fan speeds, dropping the noise output significantly. But are you willing to pay a price difference of around 35 dollars for this?</p><p>The ROG Strix power supply line consists of only two models, with 650W and 750W max power. Seasonic makes both and, to be more specific, they utilize the Focus Plus Gold platform, which the Seasonic GX-650 and GX-750 models also use. This is a highly popular platform, offering a high performance per buck ratio. Asus asked Seasonic for some hardware changes to make its models as quiet as possible. The significant difference is depicted on the beefier heat sinks, which allow for a lower airflow, consequently less noise output from the fan. The second, major, difference is the double ball-bearing fan, which is more suitable for operating under high operating temperatures, compared to fluid dynamic bearing fans, </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KLHp9aWyonhWqV4MrmA9Vh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ELSST5Cny23BXVV9CNgYgh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qHkGd9ZL68cqeCpLrLzu5i.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dCcoooAuoo4HkFfKYKHEQi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QMrm4uzLE2mJpdUcZJ59Aj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FqrGjpvYbavyzEpN7m5CQj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vJXCc2K4YdgFEHLmjvgpej.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/83S4m5zYaB3hU8wmZbNKpj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9nJJe4mF8jwjj7qEfydX7k.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ROG Strix 750 is fully modular and comes with two EPS and four PCIe connectors, so it will easily support a potent system. Besides an 80 PLUS Gold certification, it also bears efficiency and noise certifications by Cybenetics, ETA-A, and LAMBDA-A, respectively.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2jHYM2Q4An2WgNUe8sCbt7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LNVJswnGNz8JoY8VkXngE8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uRJp4AxoaonPVoxnx5AezH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H4MPvhwbGd6eJrQ9veHSVJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UHscrHhB4JRAWcZo4xdqjJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nbKaiz7JWbz7LHJHyNjuR8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sH3845e2F9v4TcqzsbB5j8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gvSyjZDwpk6GVh9dX8FJ69.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-14">Specifications</h2><div ><table><tbody><tr><td  >      <p>Manufacturer (OEM)</p>    </td><td  >      <p>Seasonic</p>    </td></tr><tr><td  >      <p>Max. DC Output</p>    </td><td  >      <p>750W</p>    </td></tr><tr><td  >      <p>Efficiency</p>    </td><td  >      <p>80 PLUS Gold, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p>Noise</p>    </td><td  >      <p>LAMBDA-A (20-25 dB[A])</p>    </td></tr><tr><td  >      <p>Modular</p>    </td><td  >      <p>✓ (Fully)</p>    </td></tr><tr><td  >      <p>Intel C6/C7 Power State Support</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Operating Temperature (Continuous Full Load)</p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p>Over Voltage Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Under Voltage Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Over Power Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Over Current (+12V) Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Over Temperature Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Short Circuit Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Surge Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Inrush Current Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Fan Failure Protection</p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p>No Load Operation</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Cooling</p>    </td><td  >      <p>140mm Double Ball-Bearing Fan (FB14025BH)</p>    </td></tr><tr><td  >      <p>Semi-Passive Operation</p>    </td><td  >      <p>✓ (selectable)</p>    </td></tr><tr><td  >      <p>Dimensions (W x H x D)</p>    </td><td  >      <p>150 x 85 x 160mm</p>    </td></tr><tr><td  >      <p>Weight</p>    </td><td  >      <p>1.83 kg (4.03 lb)</p>    </td></tr><tr><td  >      <p>Form Factor</p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p>Warranty</p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-14">Power Specifications</h2><div ><table><tbody><tr><td  ><strong>Rail</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5V</strong></td><td  ><strong>12V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>-12V</strong></td></tr><tr><td  ><strong>Max. Power</strong></td><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >62</td><td  >3</td></tr><tr><td  ><strong>Watts</strong></td><td  >100</td><td  >744</td><td  >15</td><td  >3.6</td></tr><tr><td  ><strong>Total Max. Power (W)</strong></td><td  >750</td></tr></tbody></table></div><h2 id="cables-amp-connectors-12">Cables & Connectors</h2><div ><table><tbody><tr><td  ><strong>Modular Cables</strong></td><td  > </td><td  > </td><td  > </td><td  > </td></tr><thead><tr><th  ><strong>Description</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tr><th  >ATX connector 20+4 pin (610mm)</th><td  >1</td><td  >1</td><td  >18-22AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (1000mm)</th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (680mm+80mm)</th><td  >2</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (450mm+115mm+115mm+115mm)</th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (410mm+150mm+150mm+150mm)</th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4 pin Molex (450mm+120mm+120mm)</th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1400mm) - C13 coupler (EU)</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr><tr><th  >AC Power Cord (1370mm) - C13 coupler (British)</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>There is a large number of connectors, including two EPS, which is the trend nowadays for most mid-capacity power supplies. The length of the EPS cables is impressive, at one meter. ROG made sure that there won&apos;t be a compatibility issue with the EPS cables of this unit, even with large full tower chassis. </p><p>The first SATA cable has enough distance between the connectors, while the second SATA cable has a smaller distance for drives installed nearby. Unfortunately, the 4-pin Molex connectors only have 120mm distance between them, while the ideal is 150mm. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aG32EvRL7jg6Cv3TcpcvkU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3FLg3h5YRCpj6QSmdq59yU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/k6yGVknZ9PaHG3HZqXtNLV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/d2KYJGjxziXiATkW9hdpfV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8v5fgVYoAB8hQPy5Q2mU4W.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DTsFKDACETQxhzaeueajCW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aPwp9rRTQPQP5a3cMDUzcW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/a9D7JT8aF7XnaLG8WUFfqW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-14">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  ><strong>General Data</strong></td><td  > </td></tr><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >PCB Type</td><td  >Double  Sided</td></tr><tr><td  ><strong>Primary Side</strong></td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV, 1x Discharge IC</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  >2x GBU1508 (800V, 15A @ 100°C)</td></tr><tr><td  >APFC MOSFETs</td><td  >2x Infineon IPP50R140CP (550V, 15A @ 100°C, 0.14Ohm)</td></tr><tr><td  >APFC Boost Diode</td><td  >1x STMicroelectronics STTH8S06 (600V, 8A @ 25°C)</td></tr><tr><td  >Hold-up Cap(s)</td><td  >1x Hitachi (400V, 560uF, 2,000h @ 105°C, HU)</td></tr><tr><td  >Main Switchers</td><td  >4x Champion GPT10N50ADG (500V, 9.7A, 0.7Ohm)</td></tr><tr><td  >APFC Controller</td><td  >Champion CM6500UNX</td></tr><tr><td  >Resonant Controller</td><td  >Champion CM6901T6</td></tr><tr><td  >Topology</td><td  >Primary side: Full-Bridge & LLC converter<br> Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td  ><strong>Secondary Side</strong></td><td  > </td></tr><tr><td  >+12V MOSFETs</td><td  >4x Nexperia PSMN2R6-40YS (40V, 100A @ 100°C, 3.7mOhm @ 100°C)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters:4x ON Semiconductor NTMFS4C028N (30V, 12.3A @ 80°C, 4.73mOhm)<br> PWM Controllers: ANPEC APW7159C</td></tr><tr><td  >Filtering Capacitors</td><td  ><p>Electrolytic: 3x Nippon Chemi-Con (105°C, W), 5x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 5x Nichicon (4-10,000h @ 105°C, HE)<br> Polymer: 27x FPCAP</p></td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7527V (OCP, OVP, UVP, SCP, PG</td></tr><tr><td  >Fan Model</td><td  >Everflow FB14025BH (135mm, 12V, 0.60A, Ball Bearing Fan)</td></tr><tr><td  ><strong>5VSB Circuit</strong></td><td  > </td></tr><tr><td  >Rectifier</td><td  >1x PFC P10V45SP (45V, 10A)</td></tr><tr><td  >Standby PWM Controller</td><td  >Excelliance MOS EM8569</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Ffr93JBrUiNAyxrKfgSfdZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MvoSfpHnuJHZZBqCayqEwZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TsYP5X7MiPVn9ZZsezYYca.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MtNTFSDGmkkdvNVWYacYta.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PCB is a bit larger than the Seasonic GX-750 unit in order to accommodate the large APFC and primary heat sinks, which help in relaxing the fan speed profile. Moreover, the smaller heat sink that hosts the primary FETs has pretty large fins to dissipate heat faster. Besides the larger heat sinks and the different fan, there are no other notable differences with the similar capacity Focus Plus model. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mYdBwkLrHS6nCPR34csZJk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5uEa93EQ4cxDZeP2qJDGYk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uiFyQbQwyuJxrdUYSFkWrk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zqTjLnV4CgYvoF3hcrS6Bm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fADVHBnmUeHFR2F2djH8Pm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XedJYEiF4XBPtUXdJH8Ghm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter has two stages and has all the necessary parts, including four Y and two X caps, a discharge IC, two CM chokes, and an MOV. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FGL6PhSsSSeLuD4Ti3tut7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/isCJsWpSerJRYCfPMfMK78.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The pair of bridge rectifiers can handle up to 30 Amps of current. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uC8JBHsfyWJXTTbWkJR8XG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iXLZmMwFKMQMQgpuxUqhoG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UmVYsFY3fEoiXRTBuZ6cDH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AinjYFmNUEGACeB8uJ3DWH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The APFC converter uses a pretty large bulk cap, which offers a longer than 17ms hold-up time. Right in front of the converter&apos;s FET and boost diode, we also find the NTC thermistor and relay combo, responsible for protection against large inrush currents. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Be6gCbJ5gheyFPcvi7eQkW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nHspzzsQa9iGoNGzL5PHGX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nwUGh6gdaX35FKmNzmWLaX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5NXWhaUyGku9QML2nqPdnX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ycrjVecAZzncfs7vCBi4JY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The primary switching FETs are provided by Champion and are arranged in a full-bridge topology. Typically, an LLC resonant converter is used to boost efficiency. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MVfKq5kUrP7Y8goSMxRqNe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/N2iG2xg5y93QnfF46jmxce.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/F4DSpm9vMXyCVkGn6pTHxe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The +12V FETs are installed on the solder side of the PCB. The pair of heat sinks above them is used to cool them down. Two DC-DC converters are also used to generate the minor rails.  </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8K3Jsexa5e7Kg8GWreQJsj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/x3GNDN7sy6inpgbJFMAh9k.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wU6V4ZPtzFinuiJVsxvBRk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The electrolytic filtering caps mostly belong to good Chemi-Con and Nichicon lines, with an increased lifetime. A large number of polymer caps are also used.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/gp44kkk8vwWjGEggy4wQ6U.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4Hyf5knHqVxkkEYJmtSaJU.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The standby PWM controller is an Excelliance MOS EM8569 IC. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vtUyjC2bgB4HuLMfG7uYo3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qRBonC79yJkaVGazHRG874.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VWcsoGxcA9KbqFavQGeFN4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Lots of polymer caps are installed at the face of the modular PCB. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YQEuKagt45E53sGmsTJdYD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JszwLxzuUhJgqLY6EA5h6E.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pJus6iXY3zvYBvbbxffJkE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q2cR7dRbwrVaPocvr2cU3F.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8THDjDWvy5Xtuz24nAjDUF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HaAABQcYkXv3eyD7QGgD3G.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ru779hi4sbtwthRJfJ23KG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C2GvBtQEXEWQ2qcbX3WDjG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The soldering quality is very good, and on this side of the PCB, we also find several key components, including the APFC and resonant controllers, along with several diodes, the +12V FETs, and the supervisor IC. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/eAqx97ve4UzATXnZPAbEWL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UcTLxihWkzzdutBuhBxZvL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Contrary to its competitors, the ROG unit uses a double ball-bearing fan. This fan produces more noise, under the same operating conditions, compared to the sleeve, riffle, and fluid dynamic bearing ones, but they can handle increased temperatures without sweating. This is not a case for FDB fans whose life significantly degrades once the operating temperatures exceed 40 degrees Celsius. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="7a39d2ca-7375-42e0-8e44-6fbb15eff216">            <a href="https://www.newegg.com/evga-supernova-750-g5-220-g5-0750-x1-750w/p/N82E16817438162" data-model-name="EVGA SuperNOVA 750 G5" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.25%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">EVGA SuperNOVA 750 G5</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="c047ad3d-138f-49d2-ae2c-85ee3b8d124f">            <a href="https://www.newegg.com/corsair-rm-series-rm750-cp-9020195-na-750w/p/N82E16817139168" data-model-name="Corsair RM750" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.20%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/9rVtsEtWQGCKiKng9ny4be.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM750</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="aa3a822c-9020-4684-91fa-e66238a28782">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https%3A%2F%2Fwww.newegg.com%2FProduct%2FProduct.aspx%3Fitem%3DN82E16817139233" data-model-name="RM750x" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/Cvh7Sj5RUu8U4E6YXhDhn7.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM750x V2</div>                                <div class="stars__reviews"><span itemprop="reviewRating" itemscope itemtype="http://schema.org/Rating" class="chunk rating"><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><span class="icon icon-star"> </span><meta itemprop="bestRating" content="100.0" /><meta itemprop="worstRating" content="0.0" /><meta itemprop="ratingValue" content="80" /></span></div>                </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-14">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40W up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wbSXLGbHYKvYsgWAxz5eSf.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZwnzeTNaKbkuvjpkEzyeaf.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Wfe6JkLtCJCZRBLznCurqf.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KZ4LXD9ZA4VUpBMnPbMUCg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dPdj7VTKbESZCxDrjHKXKg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2EfDzNKbmjErmcCTQrPGSg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3Vev8inuVaSEWD3yGH5QZg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cSNUFDBJwuyoDTnxFXzJgg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The load regulation is extra tight on all rails but 5VSB, where it is just satisfactory. </p><h2 id="hold-up-time-14">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/S3vBMWvf6yJuzpHtcHYgon.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CWdhb4j2ba4sUSSnHyDTwn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/37DC7ZvmQYcjQVAgBfo46o.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dUCw4qyNq6XNatW8Mn2PKo.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yhDmovtBZb6uEgAVfW8fWo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bat65skqNm6sewxsqGCHD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/APwfn5TETSfk4xYgAYj7R.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is close to 20ms and the power-ok signal is accurate. </p><h2 id="inrush-current-14">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/sFRpoVcvn7fsWqAHjhXke6.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WJBGEphDEty8uVEEjknDn6.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current is quite high with 230V, and at normal levels with 115V input. </p><h2 id="10-110-load-tests-13">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>4.414A</strong></td><td  ><strong>1.999A</strong></td><td  ><strong>1.986A</strong></td><td  ><strong>0.984A</strong></td><td  >74.953</td><td  >85.554%</td><td  >0</td><td  ><6.0</td><td  > 44.89°C</td><td  >0.925</td></tr><tr><td  >12.087V</td><td  >4.999V</td><td  >3.327V</td><td  >5.082V</td><td  >87.609</td><td  > 40.38°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>9.855A</strong></td><td  ><strong>3.000A</strong></td><td  ><strong>2.977A</strong></td><td  ><strong>1.184A</strong></td><td  >150.006</td><td  >89.178%</td><td  >0</td><td  ><6.0</td><td  > 45.67°C</td><td  >0.954</td></tr><tr><td  >12.087V</td><td  >4.996V</td><td  >3.325V</td><td  >5.069V</td><td  >168.210</td><td  > 40.68°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>15.632A</strong></td><td  ><strong>3.504A</strong></td><td  ><strong>3.475A</strong></td><td  ><strong>1.384A</strong></td><td  >225.008</td><td  >90.311%</td><td  >0</td><td  ><6.0</td><td  > 46.28°C</td><td  >0.969</td></tr><tr><td  >12.088V</td><td  >4.994V</td><td  >3.324V</td><td  >5.057V</td><td  >249.149</td><td  > 40.76°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>21.413A</strong></td><td  ><strong>4.004A</strong></td><td  ><strong>3.972A</strong></td><td  ><strong>1.586A</strong></td><td  >300.016</td><td  >90.252%</td><td  >478</td><td  >9.8</td><td  > 41.19°C</td><td  >0.977</td></tr><tr><td  >12.087V</td><td  >4.995V</td><td  >3.322V</td><td  >5.045V</td><td  >332.421</td><td  > 47.35°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>26.810A</strong></td><td  ><strong>5.007A</strong></td><td  ><strong>4.971A</strong></td><td  ><strong>1.788A</strong></td><td  >374.482</td><td  >90.004%</td><td  >820</td><td  >24.7</td><td  > 42.18°C</td><td  >0.981</td></tr><tr><td  >12.084V</td><td  >4.994V</td><td  >3.320V</td><td  >5.034V</td><td  >416.071</td><td  > 49.13°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>32.245A</strong></td><td  ><strong>6.011A</strong></td><td  ><strong>5.967A</strong></td><td  ><strong>1.992A</strong></td><td  >449.422</td><td  >89.591%</td><td  >829</td><td  >24.9</td><td  > 42.49°C</td><td  >0.983</td></tr><tr><td  >12.083V</td><td  >4.992V</td><td  >3.318V</td><td  >5.020V</td><td  >501.640</td><td  > 50.36°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>7</strong></font></td><td  ><strong>37.708A</strong></td><td  ><strong>7.017A</strong></td><td  ><strong>6.968A</strong></td><td  ><strong>2.197A</strong></td><td  >524.740</td><td  >89.120%</td><td  >840</td><td  >25.2</td><td  > 43.20°C</td><td  >0.986</td></tr><tr><td  >12.083V</td><td  >4.989V</td><td  >3.316V</td><td  >5.007V</td><td  >588.799</td><td  > 52.07°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>8</strong></font></td><td  ><strong>43.167A</strong></td><td  ><strong>8.003A</strong></td><td  ><strong>7.965A</strong></td><td  ><strong>2.404A</strong></td><td  >599.940</td><td  >88.555%</td><td  >857</td><td  >25.6</td><td  > 44.05°C</td><td  >0.987</td></tr><tr><td  >12.084V</td><td  >4.987V</td><td  >3.314V</td><td  >4.993V</td><td  >677.475</td><td  > 53.35°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>9</strong></font></td><td  ><strong>48.996A</strong></td><td  ><strong>8.526A</strong></td><td  ><strong>8.454A</strong></td><td  ><strong>2.408A</strong></td><td  >674.575</td><td  >87.881%</td><td  >1100</td><td  >32.7</td><td  > 44.37°C</td><td  >0.989</td></tr><tr><td  >12.084V</td><td  >4.985V</td><td  >3.312V</td><td  >4.986V</td><td  >767.603</td><td  > 54.62°C</td><td  >115.09V</td></tr><tr><td  ><font><strong>10</strong></font></td><td  ><strong>54.639A</strong></td><td  ><strong>9.030A</strong></td><td  ><strong>8.970A</strong></td><td  ><strong>3.023A</strong></td><td  >749.793</td><td  >87.071%</td><td  >1487</td><td  >40.4</td><td  > 45.55°C</td><td  >0.990</td></tr><tr><td  >12.081V</td><td  >4.984V</td><td  >3.310V</td><td  >4.963V</td><td  >861.130</td><td  > 56.59°C</td><td  >115.08V</td></tr><tr><td  ><font><strong>11</strong></font></td><td  ><strong>60.876A</strong></td><td  ><strong>9.032A</strong></td><td  ><strong>8.976A</strong></td><td  ><strong>3.027A</strong></td><td  >825.022</td><td  >86.257%</td><td  >1945</td><td  >47.1</td><td  > 46.84°C</td><td  >0.990</td></tr><tr><td  >12.079V</td><td  >4.982V</td><td  >3.309V</td><td  >4.956V</td><td  >956.474</td><td  > 58.64°C</td><td  >115.08V</td></tr><tr><td  ><font><strong>CL1</strong></font></td><td  ><strong>0.102A</strong></td><td  ><strong>12.000A</strong></td><td  ><strong>11.998A</strong></td><td  ><strong>0.000A</strong></td><td  >100.900</td><td  >84.017%</td><td  >605 </td><td  >16.1</td><td  > 42.54°C</td><td  >0.943</td></tr><tr><td  >12.100V</td><td  >4.987V</td><td  >3.319V</td><td  >5.086V</td><td  >120.095</td><td  > 50.10°C</td><td  >115.11V</td></tr><tr><td  ><font><strong>CL2</strong></font></td><td  ><strong>62.010A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  >762.286</td><td  >87.484%</td><td  >1553 </td><td  >41.3</td><td  > 45.01°C</td><td  >0.990</td></tr><tr><td  >12.078V</td><td  >4.993V</td><td  >3.317V</td><td  >5.020V</td><td  >871.341</td><td  > 55.78°C</td><td  >115.09V</td></tr></tbody></table></div><p>The power supply has high tolerance in increased operating temperatures, and the efficiency levels are satisfactory. Even at such high temperatures, the PSU meets the 80 PLUS Gold requirements.</p><h2 id="20-80w-load-tests-14">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.229A</strong></td><td  ><strong>0.499A</strong></td><td  ><strong>0.493A</strong></td><td  ><strong>0.196A</strong></td><td  >19.982</td><td  >69.437%</td><td  >0</td><td  ><6.0</td><td  >0.840</td></tr><tr><td  >12.074V</td><td  >5.008V</td><td  >3.333V</td><td  >5.108V</td><td  >28.777</td><td  >115.08V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>2.456A</strong></td><td  ><strong>0.999A</strong></td><td  ><strong>0.993A</strong></td><td  ><strong>0.392A</strong></td><td  >39.970</td><td  >79.867%</td><td  >0</td><td  ><6.0</td><td  >0.895</td></tr><tr><td  >12.080V</td><td  >5.001V</td><td  >3.329V</td><td  >5.101V</td><td  >50.046</td><td  >115.09V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>3.688A</strong></td><td  ><strong>1.499A</strong></td><td  ><strong>1.487A</strong></td><td  ><strong>0.589A</strong></td><td  >60.002</td><td  >84.053%</td><td  >0</td><td  ><6.0</td><td  >0.918</td></tr><tr><td  >12.081V</td><td  >5.001V</td><td  >3.329V</td><td  >5.094V</td><td  >71.386</td><td  >115.09V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>4.912A</strong></td><td  ><strong>2.000A</strong></td><td  ><strong>1.983A</strong></td><td  ><strong>0.786A</strong></td><td  >79.952</td><td  >86.472%</td><td  >0</td><td  ><6.0</td><td  >0.926</td></tr><tr><td  >12.084V</td><td  >4.999V</td><td  >3.328V</td><td  >5.087V</td><td  >92.460</td><td  >115.09V</td></tr></tbody></table></div><p>With 20% and 40% load, it would be nice to see higher than 70% and 80% efficiency levels, respectively.</p><h2 id="2-or-10w-load-test-14">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units, we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>1.079A</strong></td><td  ><strong>0.210A</strong></td><td  ><strong>0.210A</strong></td><td  ><strong>0.052A</strong></td><td  >15.036</td><td  >63.507%</td><td  >0</td><td  ><6.0</td><td  >0.818</td></tr><tr><td  >12.063V</td><td  >5.013V</td><td  >3.334V</td><td  >5.113V</td><td  >23.676</td><td  >115.08V</td></tr></tbody></table></div><p>The unit cannot pass the 70% mark, with 2% of its max-rated-load and this means that it doesn&apos;t meet the corresponding ATX requirement which will be in effect </p><h2 id="efficiency-7">Efficiency</h2><p>Next, we plotted a chart showing the PSU&apos;s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4gFJUK3ssHM5WHBqzbEL7D.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/R5CsJPCuWxQ3dXkoQUmfSD.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GZTiCpesiZnNkujafikaZD.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yiQvWzHKrRFSyT3accZvfD.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xjXwZycvx6Ncnvw5QU4MoD.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The overall efficiency at normal loads is satisfactory, although lower than what the majority of the competition achieves, while with light loads is high enough. The problem is with a 2% load, where the PSU cannot reach the 70% mark.</p><h2 id="5vsb-efficiency-14">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.511</td><td  >72.585%</td><td  >0.111</td></tr><tr><td  >5.112V</td><td  >0.704</td><td  >115.12V</td></tr><tr><td  ><font><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.278</td><td  >75.666%</td><td  >0.223</td></tr><tr><td  >5.109V</td><td  >1.689</td><td  >115.12V</td></tr><tr><td  ><font><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.807</td><td  >77.094%</td><td  >0.334</td></tr><tr><td  >5.103V</td><td  >3.641</td><td  >115.12V</td></tr><tr><td  ><font><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.093</td><td  >77.015%</td><td  >0.402</td></tr><tr><td  >5.093V</td><td  >6.613</td><td  >115.12V</td></tr><tr><td  ><font><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.622</td><td  >77.044%</td><td  >0.438</td></tr><tr><td  >5.081V</td><td  >9.893</td><td  >115.12V</td></tr><tr><td  ><font><strong>6</strong></font></td><td  ><strong>3.000A</strong></td><td  >15.126</td><td  >75.728%</td><td  >0.488</td></tr><tr><td  >5.042V</td><td  >19.974</td><td  >115.11V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RgYZg5ek8z9ocQ2pJFQFjH.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/c7dbCk2mJHLxhxE3TDp9qH.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB circuit needs an upgrade, for increased efficiency. </p><h2 id="power-consumption-in-idle-and-standby-14">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font><strong>Idle</strong></font></td><td  >12.046V</td><td  >5.017V</td><td  >3.333V</td><td  >5.118V</td><td  >8.985</td><td  >0.595</td></tr><tr><td  >115.1V</td></tr><tr><td  ><font><strong>Standby</strong></font></td><td  >0.057</td><td  >0.009</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xgMHaXr4V78FEyK6tUsqMM.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X6jRsYMwa8e2fZK9yhYCVM.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PSU consumes low energy levels at standby.</p><h2 id="fan-rpm-delta-temperature-and-output-noise-14">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/8JDRnoVQiTLL7v9W6pjUvP.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/8JDRnoVQiTLL7v9W6pjUvP.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:81.14%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/GHHfvAgxpHpS6jgpLfL6SS.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="631" height="512" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/GHHfvAgxpHpS6jgpLfL6SS.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan profile is highly relaxed, even at high operating temperatures that exceed 40 degrees Celsius. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/2BkkjX8NjzSTRD6kNs43yV.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/2BkkjX8NjzSTRD6kNs43yV.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/auyMWBFd7v55FQG5MtHcBY.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/auyMWBFd7v55FQG5MtHcBY.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The semi-passive operation doesn&apos;t last long, but the fan&apos;s speeds remain low in all cases, and so does the noise output.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-14">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >      <p><strong>Protection Features</strong></p>    </td><td  > </td></tr><tr><td  >      <p><strong>OCP</strong></p>    </td><td  >      <p>12V: 82.6A (133.23%), 12.059V<br>      5V: 27A (135%), 4.97V<br>      3.3V: 26.8A (134%), 3.305V<br>      5VSB: 6.1A (203.33%), 4.968V</p>    </td></tr><tr><td  >      <p><strong>OPP</strong></p>    </td><td  >      <p>870.02W (116%)</p>    </td></tr><tr><td  >      <p><strong>OTP</strong></p>    </td><td  >      <p>✓ (145°C @ 12V heat sink)</p>    </td></tr><tr><td  >      <p><strong>SCP</strong></p>    </td><td  >      <p>12V: ✓<br>      5V: ✓<br>      3.3V: ✓<br>      5VSB: ✓<br>      -12V: ✓</p>    </td></tr><tr><td  >      <p><strong>PWR_OK</strong></p>    </td><td  >      <p>Proper Operation</p>    </td></tr><tr><td  >      <p><strong>NLO</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>SIP</strong></p>    </td><td  >      <p>Surge: MOV<br>      Inrush: NTC Thermistor & Bypass Relay</p>    </td></tr></tbody></table></div><p>The OCP is set a little higher than the optimal level, which is 130%, but this is probably the case to retain compatibility with graphics cards that can cause high power spikes. The OCP at 5VSB is also pretty high, while the OPP is reasonably set. Finally, there is over-temperature protection, which works correctly, given the PSU&apos;s semi-passive mode.</p><h2 id="dc-power-sequencing-14">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/w38xekwPUu5eHxhB2yj9FC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZixTDs6owy8kBGDVMKiSRC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ErWZhYBQPAUwVgHxDSkEcC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are no issues here, with the 3.3V rail being lower than the other two in all cases. </p><h2 id="cross-load-tests-14">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-14">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TTJj2eZRrNBSdTmEUry5Ne.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aJW5ecA74aiQUwqj4XXQUe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sr5ZV4QPjmvEZu9og2q3de.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-9">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/KtzzCPvNcT7bqe3epnYFDh.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/KtzzCPvNcT7bqe3epnYFDh.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-9">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ggAZ9QQ3SMb4frv7z4sj2m.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZDWdfTjjS6XLm6eJTV8YAm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wGRxshvq32hRRvsAX5m9Qm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HWz5ux4zVw2ksN5fPs25Xm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-14">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YbzPWmqAFLpdym7gnEdB74.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/f85LHiTGPyXPzU5NqqNrJ4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZfzhgkG5gnUAaViSZnHZV4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VPiPr3jrBokv8RwQWTo6g4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/R5s2qA3fo9yGTAHzp9uYr4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The large heat sinks easily handle the thermal loads, and this is why the fan speed profile is so relaxed.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-14">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms">Advanced Transient Response at 20% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.085V</td><td  >11.998V</td><td  >0.72%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >4.996V</td><td  >4.903V</td><td  >1.86%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.325V</td><td  >3.195V</td><td  >3.91%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.069V</td><td  >5.013V</td><td  >1.10%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.085V</td><td  >11.958V</td><td  >1.05%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >4.996V</td><td  >4.884V</td><td  >2.24%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.325V</td><td  >3.169V</td><td  >4.69%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.069V</td><td  >5.018V</td><td  >1.01%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-14">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.085V</td><td  >11.975V</td><td  >0.91%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >4.996V</td><td  >4.885V</td><td  >2.22%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.325V</td><td  >3.165V</td><td  >4.81%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.069V</td><td  >5.019V</td><td  >0.99%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms">Advanced Transient Response at 50% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.078V</td><td  >12.003V</td><td  >0.62%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >4.991V</td><td  >4.892V</td><td  >1.98%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.319V</td><td  >3.182V</td><td  >4.13%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.035V</td><td  >4.977V</td><td  >1.15%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.077V</td><td  >11.952V</td><td  >1.04%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >4.991V</td><td  >4.875V</td><td  >2.32%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.319V</td><td  >3.157V</td><td  >4.88%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.035V</td><td  >5.000V</td><td  >0.70%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-14">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>12V</strong></font></td><td  >12.077V</td><td  >11.967V</td><td  >0.91%</td><td  >Pass</td></tr><tr><td  ><font><strong>5V</strong></font></td><td  >4.991V</td><td  >4.875V</td><td  >2.32%</td><td  >Pass</td></tr><tr><td  ><font><strong>3.3V</strong></font></td><td  >3.320V</td><td  >3.156V</td><td  >4.94%</td><td  >Pass</td></tr><tr><td  ><font><strong>5VSB</strong></font></td><td  >5.034V</td><td  >4.986V</td><td  >0.95%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RBxoM2zeJHcW22zH7nGmUJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FTsrrKfXFc42vfkEGWzLdJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gx7S6GBSbevo2w5eJjvXkJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gKxkvqNw7ApL2f864nY8sJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DuLAe9gfxVh2fWStvDRWyJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZfNgSbbwRerTnR8MBr277K.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/npTmzY6EuMzgRqxDaCsLEK.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yS9dxQ5th2bRzB5hbVUeLK.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient response of the +12V rail, which is the most important, is excellent, and the same goes for 5VSB. The 5V rail has satisfactory performance, while there is room for improvement at 3.3V, where the voltage level dropped below 3.2V, in all tests.</p><h2 id="turn-on-transient-tests-14">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HuQ3fW65ja25EBZavjWMjN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7a6HFiKt7gavxJub73jPsN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nxu9tH2jVpgw9ky8AE3X4P.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Typically for a Seasonic Focus-based platform, the +12V rail requires some time till it reaches the nominal voltage. There is nothing to worry about, though.</p><h2 id="power-supply-timing-tests-14">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU's Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >82ms</td><td  >318ms</td></tr><tr><th  ><strong>50%</strong></th><td  >100ms</td><td  >318ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode, which is a requirement by the newest ATX spec.</p><h2 id="ripple-measurements-14">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font><strong>10% Load</strong></font></td><td  >11.8 mV</td><td  >8.6 mV</td><td  >12.7 mV</td><td  >6.1 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>20% Load</strong></font></td><td  >15.4 mV</td><td  >9.6 mV</td><td  >14.7 mV</td><td  >6.2 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>30% Load</strong></font></td><td  >17.3 mV</td><td  >10.4 mV</td><td  >16.0 mV</td><td  >6.8 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>40% Load</strong></font></td><td  >19.5 mV</td><td  >11.6 mV</td><td  >18.2 mV</td><td  >7.5 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>50% Load</strong></font></td><td  >19.9 mV</td><td  >11.2 mV</td><td  >19.8 mV</td><td  >7.8 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>60% Load</strong></font></td><td  >16.9 mV</td><td  >11.1 mV</td><td  >22.0 mV</td><td  >9.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>70% Load</strong></font></td><td  >15.9 mV</td><td  >11.5 mV</td><td  >22.5 mV</td><td  >10.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>80% Load</strong></font></td><td  >16.5 mV</td><td  >11.5 mV</td><td  >17.5 mV</td><td  >11.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>90% Load</strong></font></td><td  >17.9 mV</td><td  >11.8 mV</td><td  >17.9 mV</td><td  >13.0 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>100% Load</strong></font></td><td  >29.1 mV</td><td  >12.8 mV</td><td  >20.3 mV</td><td  >14.2 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>110% Load</strong></font></td><td  >32.3 mV</td><td  >12.9 mV</td><td  >22.3 mV</td><td  >14.4 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 1</strong></font></td><td  >18.6 mV</td><td  >11.5 mV</td><td  >19.1 mV</td><td  >6.8 mV</td><td  >Pass</td></tr><tr><td  ><font><strong>Crossload 2</strong></font></td><td  >28.5 mV</td><td  >10.8 mV</td><td  >20.0 mV</td><td  >12.3 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/yXrne8WJoYf8hjViiZZWMQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M6AForhSEWNG6gAs7HfPTQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HTEzyeDqY9oNimuJBg8MZQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ujJNm6uqqzKxASUg8QmafQ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ripple at +12V with full load increases significantly, still it remains below 30mV. All in all, the ripple suppression is good on all rails, but nowhere close to the amazing levels that the Corsair RM750x model achieves, thanks to the good design and the in-cable caps.</p><h2 id="ripple-at-full-load-14">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qVBQw4EoDMEgTM2ukbK75Y.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iXZm9bM2DnRwomfmasfxCY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dTTPZbp6n4N9XwLnkhNNPY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KahvqnsoA2HFNYRzH4UJYY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-13">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5fUKpiMMMNkNGkFKpSwWwd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mYvD2kDqg63FLHNkZ6QY6e.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UVkm2QEYhWEp6qkGSxKzFe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oDpq2LNGPpuvabmusLksPe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-14">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/SShHoCBqjzoeqf4q8KWwMk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7itWe4VAvFR8KZmaQiBXZk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mrYRdwUw4wfySxeyHDB4ik.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gebKvXeUtgNojMPrUoP9rk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-9">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/v3mhrwDHe5rpFRWHBfuWS4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ANaB5FGAZeu75RwnLsXob4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gdQ6aFVqo5qgvoeataaWx4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DdFtkdPkJgfSGpPRUKbgK5.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-x2013-average-amp-quasi-peak-emi-detector-results-12">EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other nearby devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1360px;"><p class="vanilla-image-block" style="padding-top:34.78%;"><img id="" name="EMI1.png" alt="" src="https://cdn.mos.cms.futurecdn.net/n6wQ8jsHo3TDJofwwp6AQK.png" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1360" height="473" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/n6wQ8jsHo3TDJofwwp6AQK.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Two high spurs exceed the limits with the average and the QP detectors, at 342KHz and 581KHz, respectively.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-14">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.70%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/ERCKPCMYQT6rvXiCcbVghU.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="632" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ERCKPCMYQT6rvXiCcbVghU.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The performance is high, but the difference from the RM850x is noticeable.</p><h2 id="noise-rating-14">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:633px;"><p class="vanilla-image-block" style="padding-top:80.88%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/J4jYekkW57encRDysiug2Z.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="633" height="512" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/J4jYekkW57encRDysiug2Z.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall noise output is very low. We would be highly impressed if there wasn&apos;t the RM750x, which is one of the quietest 750W units that money can buy today. </p><h2 id="efficiency-rating-14">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:634px;"><p class="vanilla-image-block" style="padding-top:80.60%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/XmwXAg5uUVRSH3Uw7qeK7c.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="634" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/XmwXAg5uUVRSH3Uw7qeK7c.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall efficiency level is satisfactory, and higher than what the RM750x achieves. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>The Asus ROG Strix 750 might be based on the new Seasonic Focus Plus Gold platform, but it has several significant differences, with the most notable being the larger heat sinks, which allow for a much more relaxed fan speed profile, and the double ball-bearing fan, which has increased tolerance for high operating temperatures. Indeed, the massive heat sinks, along with the larger PCB required to host them, make a difference, and the ROG Strix 750 is among the most silent power supplies in this wattage category. Nevertheless, it cannot claim the title from the <a href="https://www.tomshardware.com/reviews/corsair-rm750x-v2-psu,5585.html">Corsair RM750x</a>, which scores a notably lower overall noise output level, achieving a LAMBDA-A+ rating in the <a href="https://www.cybenetics.com/index.php?option=database2&params=1,0,28">Cybenetics scale</a>. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/2VkL5Md9z5xh5Habui2NVf.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/2VkL5Md9z5xh5Habui2NVf.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The major disadvantage of the ROG Strix 750 is the stiff price. It costs notably more than the competing units, including the <a href="https://www.tomshardware.com/reviews/corsair-rm750x-v2-psu,5585.html">Corsair RM750x</a>, which achieves higher overall performance and features and even quieter operation, the <a href="https://www.tomshardware.com/reviews/seasonic-ssr-750fx-focus-plus-750-gold-psu,5206.html">Seasonic Focus GX-750</a>, and the <a href="https://www.tomshardware.com/reviews/fractal-design-ion-860p-power-supply,6239.html">Fractal Design ION+ 760P</a>. </p><p>If you don&apos;t mind paying more to get this power supply, you will be left highly satisfied by its performance and the silent operation. Moreover, it is the only PSU in this category offering a double ball-bearing fan, which is suitable for operation under harsh conditions (i.e., higher than 40 degrees Celsius operating temperatures). </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Seasonic's Connect PSU Is for Cable Management Nitpickers ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/news/seasonic-connect-power-supply</link>
                                                                            <description>
                            <![CDATA[ The Seasonic Connect power supply can help with keeping cable management tidy. ]]>
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                                                                        <pubDate>Wed, 04 Mar 2020 16:23:50 +0000</pubDate>                                                                                                                                <updated>Thu, 30 Jan 2025 13:05:50 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Niels Broekhuijsen ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/eTUfMQF7d3Bm8wJfMzzfhe.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Niels Broekhuijsen has written for Tom’s Hardware dating all the way back to the start of 2012. If there’s one thing Niels specializes in it’s high-end cooling systems, be it top-of-the-line air-cooling or custom liquid cooling – whatever he builds, it has to be cool, quiet, and classy. In free time, you’ll catch Niels working on his allotment, sorting out the toolshed, or tinkering with his homelab.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Seasonic]]></media:credit>
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                                <figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1000px;"><p class="vanilla-image-block" style="padding-top:56.30%;"><img id="" name="CONNECT-shine.gif" alt="" src="https://cdn.mos.cms.futurecdn.net/LkBiViAvGFpqQv6XCkQVzX.gif" mos="" align="middle" fullscreen="1" width="1000" height="563" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/LkBiViAvGFpqQv6XCkQVzX.gif' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Seasonic)</span></figcaption></figure><p>We come across a lot of weird hardware, but this one makes me want to coin the term WHOTW: Weird Hardware of the Week. The product in question is Seasonic&apos;s SSR-750FA Connect PSU, and though it&apos;s weird, it&apos;s an interesting concept. </p><p>The idea behind the Seasonic Connect PSU is to tidy up the cable management behind your <a href="https://www.tomshardware.com/reviews/best-motherboards,3984.html" target="_blank">motherboard </a>tray. It does this by taking the modular cable connectors that typically reside behind the power supply and instead placing them in the "Seasonic Connect" hub that gets placed as a spine behind the motherboard tray.</p><ul><li>Before you buy, check out our <a href="https://www.tomshardware.com/reviews/psu-buying-guide,2916.html" target="_blank">power supply buying guide</a></li><li>According to our testing, these are the <a href="https://www.tomshardware.com/reviews/best-psus,4229.html" target="_blank">best power supplies</a></li></ul><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1624px;"><p class="vanilla-image-block" style="padding-top:73.89%;"><img id="" name="connect-fan-grill.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/JLiM89cqCgEyCwEMWuhWQX.jpg" mos="" align="middle" fullscreen="1" width="1624" height="1200" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/JLiM89cqCgEyCwEMWuhWQX.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Seasonic)</span></figcaption></figure><p>The Seasonic Connect only exists as a 750W unit, but that&apos;s more than ample for most <a href="https://www.tomshardware.com/reviews/best-pc-builds,4390.html" target="_blank">PC builds</a> today. It comes with 80-Plus Gold certification and uses a huge 12V rail. </p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1624px;"><p class="vanilla-image-block" style="padding-top:73.89%;"><img id="" name="connect-accessories-labeled.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/kHrS5jowavuAfibtryjXUX.jpg" mos="" align="middle" fullscreen="1" width="1624" height="1200" attribution="" endorsement="" class="expandable"><a href='https://cdn.mos.cms.futurecdn.net/kHrS5jowavuAfibtryjXUX.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Seasonic)</span></figcaption></figure><p>Due to the two-device configuration, the power supply itself isn&apos;t very big, though you&apos;ll need quite a bit of space to house the Connect hub. It measures 330mm tall, 64mm wide and is a hefty 21mm thick, so be sure to triple-check that you have the space for this unit. In most cases, you won&apos;t be able to run thick cables over it anymore, but you likely won&apos;t need to either, given that all the chunky power connectors are on it. </p><p>Seasonic hasn&apos;t announced what the PSU will cost or when it will be available but said it comes with a 10-year warranty.</p>
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                                                            <title><![CDATA[ Thermaltake Toughpower Grand RGB 1050W Platinum Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/thermaltake-toughpower-grand-rgb-1050w-platinum-power-supply</link>
                                                                            <description>
                            <![CDATA[ The Toughpower Grand RGB 1050W is powerful and achieves high performance, thanks to its advanced platform. The fan profile could be better, though. ]]>
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                                                                        <pubDate>Sat, 14 Dec 2019 13:00:02 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:31:35 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Thermaltake]]></media:credit>
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                                <p>The Thermaltake Toughpower Grand RGB 1050W uses an advanced and reliable platform, provided by Channel Well Technology, which delivers high overall performance. The competition might be fierce in the 1000W zone, but this is not the case in the 1050W category, where only a handful of offerings are available, especially in the US market. If you don&apos;t mind 50W less and the lack of RGB lighting, the <a href="https://www.tomshardware.com/reviews/corsair-hx1000-psu,5214.html">Corsair HX1000</a> is a good alternative and there is also the similar capacity <a href="https://www.tomshardware.com/reviews/seasonic-prime-ultra-platinum-1000w-psu,5397.html">Seasonic Prime Ultra</a> offering with even higher performance.</p><p>If you are after a power supply featuring RGB lighting, you will soon find out that most of the major brands (e.g., Corsair, Seasonic, EVGA, etc.) don&apos;t have such offerings in their portfolios. Only Thermaltake seems to be a vivid supporter of RGB lighting in power supplies, having a great number of corresponding offerings in its line of products.</p><p>The Toughpower Grand RGB Platinum (and ETA-A in the Cybenetics efficiency scale), consists of three models with 850W, 1050W, and 1200W capacities. In this review, we will take a detailed look at the middle member of the line, which has enough power to support a potent system (with a glass side panel to show-off the PSU&apos;s RGB lighting, of course). Although not everyone likes RGB peripherals, many users do want a system that can offer a fancy lights show. What matters the most, though, especially when it comes to power supplies, is the build quality, besides the design and the parts that the manufacturer used. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/czRii36mfBq8TwtKSjN55C.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cZ59ZErBq4wXVDUUmhGF9C.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/p2rpP65FGWgfBi8XyxAtCC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bQoyV7u7DBG7ojtJEFvDFC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nqutENy7uqh2icjL9yspJC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6cmXfUfFkNo7vgUoGfgrQC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bBzEuC4LZqMN3NZREUaaVC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cds97wPoHWTnM4dzjJMPYC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/T5ATnhrjqDdu5wC2Sy3dbC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The Toughpower Grand RGB Platinum 1050W is fully modular, as are the other two members of the line. Its dimensions are compact since the chassis measures 16cm in length. Finally, the cooling fan uses a Hydro-Dynamic bearing, which will last for a prolonged period; if it didn&apos;t, Thermaltake wouldn&apos;t provide a ten-year warranty. Usually, the cooling fans are the first to go and this is why in applications where reliability comes first, the engineers try to push efficiency as high as possible to decrease the thermal loads and get rid of active cooling. This is not easy, though, for high-capacity power supplies.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MywsRxmNHxRsrmK6sbFSmR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/T7uGhFSD7PRiFfgsfWB4qR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JPz3Sv8sEkt2VD8iBETFtR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CpSW76LrFnmXtxaj6gpwvR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LHJCbVyETAsrxYP4UYfZyR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nob8xjujkdY2fCrX3P5w4S.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-15">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >      <p>CWT</p>    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>1050W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      80 PLUS Platinum, ETA-A (88-91%)     </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      <p>LAMBDA-S++ (30-35 dB[A]) </p>    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      <p>✓ (Fully)</p>    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      140mm Hydro Dynamic Bearing Fan (TT-1425/A1425L12S)    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✓ (selectable)</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>150 x 85 x 160mm </p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>1.95 kg (4.3 lb) </p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-15">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >22</td><td  >22</td><td  >83.33</td><td  >0.3</td><td  >0.5</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">120</td><td  >1000</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  >1050</td></tr></tbody></table></div><h2 id="cables-amp-connectors-13">Cables & Connectors</h2><div ><table><thead><tr><th  ><strong>Modular Cables</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  ><strong>In Cable Capacitors</strong></th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (600mm)</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (650mm)</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >No</td></tr><tr><th  >8 pin EPS12V (650mm)</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (500mm+150mm) </th><td  >4</td><td  >8</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  >SATA (500mm+150mm+150mm+150mm)</th><td  >3</td><td  >12</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (500mm+150mm+150mm+150mm)</th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >FDD Adapter (+100mm)</th><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1440mm) -  C13 coupler</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >-</td></tr></tbody></table></div><p>As expected from a 1050W power supply, there is a vast amount of cables and connectors provided. Besides a pair of EPS connectors, you will also have at your disposal eight PCIe and twelve SATA connectors along with four 4-pin Molex connectors. All cables are long and don&apos;t have in-cable caps which may provide better ripple suppression but also make harder the cable routing and management processes. Finally, the distance between the peripheral connectors is ideal, at 150mm. </p><p><br></p><p><br></p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zXGgwRyzardSafVcRAbJsH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aX4TYmQ4ZAwJZuE4cGuYvH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kZDbcgTAXY2i8Vi3fUbiyH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fyd6pTSLor4LxPwBLCD54J.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QdeZHKYTksGpwF3jS2GS7J.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QuYkJpCFNoZPgDyYA7fqAJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MfK32cMZrqtuVry5qxakDJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C5MNZXBjTSJhx4MTcNYKHJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oBZvat7ty5UF7hn38o7WLJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-15">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  ><strong>General Data</strong></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >CWT</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><strong>Primary Side</strong></td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  >2x GBJ2506P (600V, 25A @ 100°C)</td></tr><tr><td  >APFC MOSFETS</td><td  >2x ISC TK25A60X5 (600V, 25A @ 25°C, 0.14Ohm),1x Sync Power SPN5003 FET (for reduced no-load consumption)</td></tr><tr><td  >APFC Boost Diode</td><td  >2x CREE C3D06060A (600V, 6A @ 154°C)</td></tr><tr><td  >Hold-up Cap(s)</td><td  >2x Nippon Chemi-Con (420V, 680uF each or 1,360uF combined, 2,000h @ 105°C, KMZ)</td></tr><tr><td  >Main Switchers</td><td  >4x Alpha & Omega Semi AOTF29S50 (500V, 18A @ 100°C, 0.4Ohm @ 150°C)</td></tr><tr><td  >IC Driver</td><td  >2x Silicon Labs Si8233BD</td></tr><tr><td  >Digital Controllers</td><td  >2x Texas Instruments UCD3138A</td></tr><tr><td  >Topology</td><td  >Primary side: Semi-Digital, Interleaved PFC, Full-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td  ><strong>Secondary Side</strong></td><td  >-</td></tr><tr><td  >+12V MOSFETS</td><td  >8x Infineon BSC014N06NS (60V, 100A @ 100°C, 1.45mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 4x Infineon IPB06N03LA (25V, 50A @ 100°C, 5.9mOhm)</td></tr><tr><td  >Filtering Capacitors</td><td  >Electrolytics: 8x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 1x Rubycon (3-6,000 @ 105°C, YXG),4x Nichicon (2-5,000h @ 105°C, HD), 2x Nichicon (1,000h @ 105°C, VY), 1x Nichicon (1,000h @ 105°C, VZ) Polymers: 6x Elite, 23x Su'scon, 8x NIC</td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7502 ( OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >Thermaltake TT-1425 (Hong Sheng OEM, A1425L12S, 140mm, 12V, 0.30A, Hydrodynamic Bearing, RGB LED Lighting Fan)</td></tr><tr><td  ><strong>5VSB Circuit</strong></td><td  >-</td></tr><tr><td  >Rectifier</td><td  >IPS ISD04N65A & PS1045L SBR (45V, 10A)</td></tr><tr><td  >Standby PWM Controller</td><td  >On-Bright OB5282</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/f63DJi6yhWhZCu9AtTRjBa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mGEKmUFWvNsAumn2wcEGLa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cnpzhUoEvaXKVWK6YPwZRa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rgJVipgKZpyMk24jTob5Xa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The platform is provided by Channel Well Technology (CWT), and it is one of the most advanced in today&apos;s market since it uses a couple of MCUs to control the entire primary side and a part of the secondary side. It is a semi-digital design since the VRMs that generate the minor rails use an analog PWM controller. This is the same platform with the <a href="https://www.tomshardware.com/reviews/thermaltake-toughpower-irgb-plus-1200w-platinum-psu,5316-3.html">TPI-1200F2FDP</a>, which we evaluated quite some time ago. </p><p>Because of the small PCB, for such a powerful PSU, the upper area close to the modular PCB is cramped with components, with several electrolytic caps close to the +12V FETs, which can get very hot. The build quality is high, though, and CWT used good parts to offer increased reliability. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jk5nzJ6JyvUQHmonbjBNJh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bNfaNhb9rQvdK5EBFtPERh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hq43UxzgsYwRYNJ2SDNmWh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JdyicxazbwdFdNAe4V8Lch.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SXXsBkiChmTGkSEUeFcrhh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/saMzDEvQmj4un7tUdPmaoh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter is complete, and there is a MOV to protect against voltage spikes and surges. Moreover, the NTC thermistor that suppresses high inrush currents, is supported by a bypass relay. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xhrNJZ9FukFPEWAgTA5Sa7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bRKe4eiRckHYXSUtB6TRK9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are two bridge rectifiers, bolted on a dedicated heat sink.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/97CvUZAebKJhZn8wBVDUwF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ywnq43GkeFCYMdThNFdv4G.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/f8ZzWwnPLJqGnWMaFTMPAG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8NrVb35qFojzp8rEzCu3LG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NG6ALh5S6bqWtMuL5af5WG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XzSP3jbjTfr2wdZSG4fJdG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The PSU uses an interleaved PFC converter, which means that two APFC converters are operating in parallel with a phase difference between them. This minimizes input/output current ripple and lowers conduction losses, increasing efficiency, and doubling the effective switching frequency. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LCwoABp3V6njVipJh8owAR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Nb6jGs5uGg8GaYQkRT55JR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ov2L7AncY4eDbLorBR7KSR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3mvPZkbU7t5xUiia5UyMaR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LPSrZxTTqjhoLgbmtS2DiR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4QnLcyQhkmuX9FgMRvVrpR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P4XPVxRkrfF6osWnSaMguR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The four primary FETs are arranged in a full bridge topology and an LLC resonant converter is also utilized for increased efficiency. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/iSMQRgkYEHVmqViYVyjuAX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5f56i4Aby6mtqbYaqdoiFX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Wao6FshNjYr4zwwxEYhaPX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The +12V FETs are installed on a small daughter-board which is adjustment to the main transformer, in an effort to minimize energy losses. The +12V rail also powers a pair of VRMs, which generate the minor rails. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/nUmMyAcRq3VnkftjEhx7Qb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/99uRmF2RpmWvSmPbkJhAYb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Most of the electrolytic caps are of high quality, with only three of them belonging to Nichicon&apos;s mainstream lines. A large number of polymer caps is also used, with most of them provided by Taiwanese companies (Elite and Suscon) which have manufacturing facilities in China.  </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mk8jFXj56Sit5r4tQc7SAg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4qj9q82XjdyzU4hKTUneHg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qcswWdGQdGCVHG4ip6aYWg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>At the face of the modular PCB many polymer caps are used for ripple filtering.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uydxhxwWXkEfhkye9ZAAwk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C2En6wFR6suDAdov25sb6m.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/G7zmpGBjM8CMcVnPewZZJm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oYUvVQUrGgiQQR2aJaymUm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3JFoqHCBcBLN5PWH3im6gm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gvBPHmnTFJbqm9Jcivdhrm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kT2Ni8h3fDYjzvBji6gWxm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The soldering quality is good, something typical for CWT&apos;s implementations. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/hbVLqC77jE2xpJvTE8fan3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QM9Lx2vzmM9hijuXya5cu3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The cooling fan uses a Hydro-Dynamic bearing, which is similar to a Fluid Dynamic Bearing. It also has RGB lighting.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supply Units.</strong></a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="416889c7-e588-41e2-b3d8-270412904df3">            <a href="https://www.newegg.com/corsair-hx-series-hx1000-cp-9020139-na-1000w/p/N82E16817139204" data-model-name="Corsair HX1000" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/LwjZeoBoMFkbzLfKi4Ci2f.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair HX1000</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="32059a8d-897c-422f-9984-5e2d4fc50be2">            <a href="https://www.newegg.com/seasonic-prime-ultra-platinum-ssr-1000pd-1000w/p/N82E16817151200?cm_sp=SearchSuccess-_-INFOCARD-_-Seasonic+Prime+1000-_-17-151-200-_-3&Description=Seasonic+Prime+1000" data-model-name="Seasonic Prime Ultra Platinum 1000W " data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/8UpRMYhisssymNDWr3usT8.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Seasonic Prime Ultra Platinum 1000W </div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="9794f3a1-4172-45ce-b551-560fed7af1bb">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https%3A%2F%2Fwww.newegg.com%2FProduct%2FProduct.aspx%3Fitem%3DN82E16817139233" data-model-name="SilverStone ST1000-PT" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/JNtbmBbRAe9rFgJyTUFxTL.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">SilverStone ST1000-PT</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-15">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40W up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Biiizvcpfk9SGrFSxDEHmn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P4bUAHt7pqdX5ZMx9kHorn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pbYUWQH9HZbpUxQ9AcKWxn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NVHpDwuYb7hMuxnAfaAx2o.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cyDzSjx9aevgdKZPLFU96o.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oPMwEKPvRo7UJrjnJSTCBo.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/e6D5DNoEh6cMSBhwgqR2Fo.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZQ7G9uZMEo5ZLtnjkQeZKo.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The load regulation is tight on all rails. </p><h2 id="hold-up-time-15">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kHQNMdTRtDftiwK9sZnrMi.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zfDsraMy9p99XHVFpCgER8.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LvsFth4PbiDGsXnA5DXQ8C.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eqfkEZF77HARzJUHqJmw5F.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gNxJX3oeTStSnZTeZginZi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sKcRdLMJxoZMKVp5KHKkbi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/D4idJAyxcjziEypshcA5ei.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time exceeds 17ms and the power ok signal is accurate, so no problems here.</p><h2 id="inrush-current-15">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pvBVe6Ws33Bs2WrQjCGyz.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/p8XpdeQ7wPHBeTBm3QbSEK.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current readings are at normal levels, given the PSU&apos;s capacity. There are other similar capacity units, though, we notably lower inrush current readings. </p><h2 id="10-110-load-tests-14">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>6.922A</strong></td><td  ><strong>1.980A</strong></td><td  ><strong>1.996A</strong></td><td  ><strong>0.993A</strong></td><td  >105.043</td><td  >86.758%</td><td  >0</td><td  ><6.0</td><td  > 44.55°C</td><td  >0.952</td></tr><tr><td  >12.053V</td><td  >5.053V</td><td  >3.308V</td><td  >5.039V</td><td  >121.076</td><td  > 39.53°C</td><td  >115.14V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>14.831A</strong></td><td  ><strong>2.973A</strong></td><td  ><strong>2.996A</strong></td><td  ><strong>1.192A</strong></td><td  >209.542</td><td  >90.064%</td><td  >1378</td><td  >38.7</td><td  > 40.37°C</td><td  >0.988</td></tr><tr><td  >12.044V</td><td  >5.051V</td><td  >3.304V</td><td  >5.035V</td><td  >232.659</td><td  > 45.86°C</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>23.143A</strong></td><td  ><strong>3.469A</strong></td><td  ><strong>3.485A</strong></td><td  ><strong>1.393A</strong></td><td  >314.635</td><td  >91.676%</td><td  >0</td><td  ><6.0</td><td  > 47.10°C</td><td  >0.995</td></tr><tr><td  >12.039V</td><td  >5.047V</td><td  >3.301V</td><td  >5.028V</td><td  >343.203</td><td  > 41.24°C</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>31.462A</strong></td><td  ><strong>3.966A</strong></td><td  ><strong>4.003A</strong></td><td  ><strong>1.593A</strong></td><td  >419.857</td><td  >91.624%</td><td  >1376</td><td  >38.6</td><td  > 41.39°C</td><td  >0.997</td></tr><tr><td  >12.035V</td><td  >5.045V</td><td  >3.298V</td><td  >5.023V</td><td  >458.241</td><td  > 48.50°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>5</strong></font></td><td  ><strong>39.442A</strong></td><td  ><strong>4.962A</strong></td><td  ><strong>5.008A</strong></td><td  ><strong>1.794A</strong></td><td  >525.162</td><td  >91.776%</td><td  >1162</td><td  >34.0</td><td  > 42.00°C</td><td  >0.997</td></tr><tr><td  >12.034V</td><td  >5.041V</td><td  >3.295V</td><td  >5.018V</td><td  >572.220</td><td  > 49.83°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>6</strong></font></td><td  ><strong>47.376A</strong></td><td  ><strong>5.959A</strong></td><td  ><strong>6.019A</strong></td><td  ><strong>1.996A</strong></td><td  >629.721</td><td  >91.574%</td><td  >1185</td><td  >34.5</td><td  > 42.89°C</td><td  >0.997</td></tr><tr><td  >12.029V</td><td  >5.038V</td><td  >3.291V</td><td  >5.013V</td><td  >687.665</td><td  > 51.76°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>7</strong></font></td><td  ><strong>55.414A</strong></td><td  ><strong>6.955A</strong></td><td  ><strong>7.026A</strong></td><td  ><strong>2.197A</strong></td><td  >735.032</td><td  >90.848%</td><td  >1388</td><td  >38.8</td><td  > 43.08°C</td><td  >0.997</td></tr><tr><td  >12.017V</td><td  >5.035V</td><td  >3.288V</td><td  >5.008V</td><td  >809.081</td><td  > 52.23°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>8</strong></font></td><td  ><strong>63.441A</strong></td><td  ><strong>7.954A</strong></td><td  ><strong>8.038A</strong></td><td  ><strong>2.400A</strong></td><td  >840.292</td><td  >90.257%</td><td  >1389</td><td  >38.9</td><td  > 43.64°C</td><td  >0.998</td></tr><tr><td  >12.009V</td><td  >5.031V</td><td  >3.285V</td><td  >5.003V</td><td  >930.996</td><td  > 53.43°C</td><td  >115.11V</td></tr><tr><td  ><font color="#000000"><strong>9</strong></font></td><td  ><strong>71.854A</strong></td><td  ><strong>8.454A</strong></td><td  ><strong>8.530A</strong></td><td  ><strong>2.400A</strong></td><td  >945.211</td><td  >89.799%</td><td  >1394</td><td  >39.2</td><td  > 44.90°C</td><td  >0.998</td></tr><tr><td  >12.006V</td><td  >5.030V</td><td  >3.283V</td><td  >5.002V</td><td  >1052.580</td><td  > 55.84°C</td><td  >115.10V</td></tr><tr><td  ><font color="#000000"><strong>10</strong></font></td><td  ><strong>80.026A</strong></td><td  ><strong>8.957A</strong></td><td  ><strong>9.055A</strong></td><td  ><strong>3.008A</strong></td><td  >1050.046</td><td  >89.184%</td><td  >1397</td><td  >39.2</td><td  > 45.89°C</td><td  >0.998</td></tr><tr><td  >12.000V</td><td  >5.027V</td><td  >3.280V</td><td  >4.989V</td><td  >1177.396</td><td  > 57.80°C</td><td  >115.10V</td></tr><tr><td  ><font color="#000000"><strong>11</strong></font></td><td  ><strong>88.806A</strong></td><td  ><strong>8.958A</strong></td><td  ><strong>9.061A</strong></td><td  ><strong>3.009A</strong></td><td  >1154.869</td><td  >88.620%</td><td  >1398</td><td  >39.2</td><td  > 46.57°C</td><td  >0.998</td></tr><tr><td  >11.994V</td><td  >5.026V</td><td  >3.278V</td><td  >4.987V</td><td  >1303.175</td><td  > 58.90°C</td><td  >115.09V</td></tr><tr><td  ><font color="#000000"><strong>CL1</strong></font></td><td  ><strong>0.158A</strong></td><td  ><strong>14.006A</strong></td><td  ><strong>14.000A</strong></td><td  ><strong>0.000A</strong></td><td  >118.594</td><td  >81.352%</td><td  >1375 </td><td  >38.6</td><td  > 42.04°C</td><td  >0.901</td></tr><tr><td  >12.042V</td><td  >5.036V</td><td  >3.297V</td><td  >5.077V</td><td  >145.779</td><td  > 49.25°C</td><td  >115.14V</td></tr><tr><td  ><font color="#000000"><strong>CL2</strong></font></td><td  ><strong>83.358A</strong></td><td  ><strong>1.002A</strong></td><td  ><strong>1.002A</strong></td><td  ><strong>1.000A</strong></td><td  >1014.497</td><td  >89.861%</td><td  >1393 </td><td  >39.0</td><td  > 45.11°C</td><td  >0.998</td></tr><tr><td  >12.010V</td><td  >5.042V</td><td  >3.289V</td><td  >5.019V</td><td  >1128.965</td><td  > 57.03°C</td><td  >115.10V</td></tr></tbody></table></div><p>The PSU can easily deliver full power under high operating temperatures, and the performance of the APFC converter is excellent since even with light loads, it achieves power factor readings that are close to unity. On the other hand, the fan speed profile is a mess, since it pushes the fan to spin at high speeds without this being necessary. Moreover, the lowest fan speed is set at 1162 RPM, which is pretty high.</p><h2 id="20-80w-load-tests-15">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>1.210A</strong></td><td  ><strong>0.496A</strong></td><td  ><strong>0.486A</strong></td><td  ><strong>0.198A</strong></td><td  >19.716</td><td  >65.751%</td><td  >0</td><td  ><6.0</td><td  >0.724</td></tr><tr><td  >12.063V</td><td  >5.059V</td><td  >3.312V</td><td  >5.055V</td><td  >29.986</td><td  >115.14V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>2.471A</strong></td><td  ><strong>0.991A</strong></td><td  ><strong>0.998A</strong></td><td  ><strong>0.396A</strong></td><td  >40.126</td><td  >78.276%</td><td  >0</td><td  ><6.0</td><td  >0.809</td></tr><tr><td  >12.064V</td><td  >5.057V</td><td  >3.311V</td><td  >5.051V</td><td  >51.262</td><td  >115.14V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>3.667A</strong></td><td  ><strong>1.485A</strong></td><td  ><strong>1.480A</strong></td><td  ><strong>0.595A</strong></td><td  >59.638</td><td  >82.298%</td><td  >0</td><td  ><6.0</td><td  >0.847</td></tr><tr><td  >12.061V</td><td  >5.056V</td><td  >3.310V</td><td  >5.048V</td><td  >72.466</td><td  >115.14V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>4.930A</strong></td><td  ><strong>1.981A</strong></td><td  ><strong>1.995A</strong></td><td  ><strong>0.793A</strong></td><td  >80.054</td><td  >83.549%</td><td  >1373</td><td  >38.5</td><td  >0.869</td></tr><tr><td  >12.057V</td><td  >5.054V</td><td  >3.309V</td><td  >5.044V</td><td  >95.817</td><td  >115.14V</td></tr></tbody></table></div><p>During the fourth test the fan&apos;s noise exceeds 38 dB(A), something unacceptable given the applied conditions and the PSU&apos;s high efficiency levels. </p><h2 id="2-or-10w-load-test-15">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>1.564A</strong></td><td  ><strong>0.270A</strong></td><td  ><strong>0.272A</strong></td><td  ><strong>0.056A</strong></td><td  >21.418</td><td  >67.051%</td><td  >0</td><td  ><6.0</td><td  >0.741</td></tr><tr><td  >12.064V</td><td  >5.058V</td><td  >3.311V</td><td  >5.057V</td><td  >31.943</td><td  >115.14V</td></tr></tbody></table></div><p>The efficiency with 2% load exceeds 65%, so it is quite high, still is lower than 70%, though.</p><h2 id="efficiency-8">Efficiency</h2><p>Next, we plotted a chart showing the PSU’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ntnW7SboWzFT55HFPUCi9W.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PH8k6dRmrBN4pYHS8oHTEW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B3SGkMFmeu7LhVvsaBTaLW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wkrfetz7Sm23NGc99p7FSW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SXQqVRztwrvRSmkKs36AWW.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The efficiency levels are satisfactory in all load ranges: super-light, light and normal. </p><h2 id="5vsb-efficiency-15">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.500</td><td  >75.415%</td><td  >0.051</td></tr><tr><td  >4.992V</td><td  >0.663</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.247</td><td  >77.550%</td><td  >0.119</td></tr><tr><td  >4.987V</td><td  >1.608</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.740</td><td  >78.286%</td><td  >0.229</td></tr><tr><td  >4.981V</td><td  >3.500</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >4.973</td><td  >77.377%</td><td  >0.337</td></tr><tr><td  >4.973V</td><td  >6.427</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.446</td><td  >77.305%</td><td  >0.404</td></tr><tr><td  >4.963V</td><td  >9.632</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>6</strong></font></td><td  ><strong>3.001A</strong></td><td  >14.803</td><td  >76.731%</td><td  >0.489</td></tr><tr><td  >4.933V</td><td  >19.292</td><td  >115.12V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RDQUkHy56kgBHfXeT9u5JE.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M5ktdBwkPq3EyNSM3EJ2ba.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>This is not the best 5VSB circuit that we have seen from CWT when it comes to efficiency, but you cannot call it bad, either.</p><h2 id="power-consumption-in-idle-and-standby-15">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>Idle</strong></font></td><td  >12.075V</td><td  >5.054V</td><td  >3.309V</td><td  >5.054V</td><td  >6.328</td><td  >0.381</td></tr><tr><td  >115.2V</td></tr><tr><td  ><font color="#000000"><strong>Standby</strong></font></td><td  >0.042</td><td  >0.003</td></tr><tr><td  >115.2V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FxiuHcasu8v3QdsHFzGkQJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JbPHGb66SbWG389RpFP5zd.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The vampire power is low with both voltage inputs. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-15">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/UxF96VFfrPkXWKxSJU6KdM.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/UxF96VFfrPkXWKxSJU6KdM.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:81.14%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/eS5j9SwgrSvbXtvbj8nNbQ.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="631" height="512" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/eS5j9SwgrSvbXtvbj8nNbQ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan profile is a complete mess. Thermaltake along with CWT should fix it as  soon as possible. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/mhpc624qZgw8zSbdUuBw3V.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/mhpc624qZgw8zSbdUuBw3V.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/nsiTQQ93TjbAQ32UmYiVMX.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/nsiTQQ93TjbAQ32UmYiVMX.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Even under normal operating temperatures, the fan profile continues to trouble us. The fan spins at very high speeds at light and moderate loads, without an obvious reason. The transition between passive and active fan operation should be smoother. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-15">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  ><strong>Protection  Features</strong></td><td  > </td></tr><tr><td  ><p align="center" style="text-align:center"><strong>OCP</strong></p></td><td  >12V: 101.6A (121.91%), 12.001V5V: 24.6A (111.82%), 5.020V3.3V: 26.5A (120.45%), 3.268V5VSB: 5.2A (173.33%), 4.890V</td></tr><tr><td  ><p align="center" style="text-align:center"><strong>OPP</strong></p></td><td  >1300.35W (123.84%) </td></tr><tr><td  ><p align="center" style="text-align:center"><strong>OTP</strong></p></td><td  >✗ (>200°C @ 12V heat sink) </td></tr><tr><td  ><p align="center" style="text-align:center"><strong>SCP</strong></p></td><td  ><p align="center" style="text-align:center">12V: ✓<br>        5V: ✓<br>        3.3V: ✓<br>        5VSB: ✓<br>        -12V: ✓ </p></td></tr><tr><td  ><p align="center" style="text-align:center"><strong>PWR_OK</strong></p></td><td  >Proper Operation</td></tr><tr><td  ><p align="center" style="text-align:center"><strong>NLO</strong></p></td><td  >✓</td></tr><tr><td  ><p align="center" style="text-align:center"><strong>SIP</strong></p></td><td  >Surge: MOV  Inrush: NTC Thermistor & Bypass Relay </td></tr></tbody></table></div><p>The OCP and OPP triggering points are properly set and kudos to CWT (and Thermaltake) for this. There is a major issue though, although we heated the PSU up to 200 degrees Celsius, it didn&apos;t shut down. This means that the over-temperature protection is not present or it is badly configured at a very high level. In any case, we didn&apos;t raise the temperature further, because we could have caused permanent damage to the power supply. </p><h2 id="dc-power-sequencing-15">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5jkXKS8QDdREvLev7zkQjn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s2ojsXjNmTw2CDWFtr5Vnn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ELqLXfndXGwxDSbypNdKqn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail is always at a lower level compared to the other two, so the ATX specification&apos;s corresponding requirement is met. </p><h2 id="cross-load-tests-15">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-15">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/e7SoFFs5h4Lwq8TXUB3uy7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FW772FEN4Y7baELTifya48.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oxy4d9vuopY5HpTbSAAG78.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-10">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/DiT9F98y3dnAn9ZW4yeMSA.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/DiT9F98y3dnAn9ZW4yeMSA.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-10">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/CurWpBiTGgrEHLP77pywBF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HciEwNZ64aCgczskmikMFF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pSzyEPsnt8TxpriLVAeoHF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GvYvwdosfJs3XmjjP2mzKF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-15">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/gWgVaCzmSphUqxyUQXRrZN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/A7Ze3uct58NsGFd6VeSndN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ePTgocadvp2waZZhpLKHhN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DQfsPeofMnsqwUGYAuErkN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AitkkdYGcd4qcaGNciV6pN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Despite the high load (525W) for a ten-minute period, the internal temperatures are kept at normal levels. The only issue that we spotted is the increased temperature of the electrolytic caps which are sandwiched between the modular PCB and the board that holds the +12V FETs.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-15">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8"><strong>click here</strong></a><strong>.</strong></p><p>In the real world, power supplies are always working with loads that change. It&apos;s of immense importance, then, for the PSU to keep its rails within the ATX specification&apos;s defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><em><strong>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </strong></em></p><h2 id="advanced-transient-response-at-20-200ms-2">Advanced Transient Response at 20% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.033V</td><td  >11.935V</td><td  >0.81%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.047V</td><td  >4.990V</td><td  >1.13%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.307V</td><td  >3.201V</td><td  >3.21%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.032V</td><td  >4.993V</td><td  >0.78%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-2">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.032V</td><td  >11.902V</td><td  >1.08%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.047V</td><td  >4.980V</td><td  >1.33%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.307V</td><td  >3.187V</td><td  >3.63%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.032V</td><td  >4.983V</td><td  >0.97%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-15">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.033V</td><td  >11.914V</td><td  >0.99%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.046V</td><td  >4.976V</td><td  >1.39%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.307V</td><td  >3.189V</td><td  >3.57%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.032V</td><td  >4.980V</td><td  >1.03%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-2">Advanced Transient Response at 50% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.027V</td><td  >11.935V</td><td  >0.76%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.036V</td><td  >4.977V</td><td  >1.17%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.300V</td><td  >3.187V</td><td  >3.42%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.015V</td><td  >4.973V</td><td  >0.84%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-2">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.022V</td><td  >11.905V</td><td  >0.97%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.037V</td><td  >4.968V</td><td  >1.37%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.301V</td><td  >3.172V</td><td  >3.91%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.015V</td><td  >4.959V</td><td  >1.12%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-15">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.023V</td><td  >11.911V</td><td  >0.93%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.037V</td><td  >4.971V</td><td  >1.31%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.301V</td><td  >3.170V</td><td  >3.97%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.015V</td><td  >4.972V</td><td  >0.86%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/R9dkRjQvwtxKiUhWunPAD5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bG3vNJFccbNYiEh3GJjqK5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RPoJ3BGDbbXg3JGQryNKP5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8r5rx2TEtampByagqejeT5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WUe9iLWSqwp6kggmLvGiW5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n8VimD95LyY4xjg8jfh2b5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/haER8qvWmabu6VyuxikKg5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZswJuiaPPNw4duDaSsskn5.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient response is tight at +12V and the same applies to the 5V and 5VSB rails. We cannot state the same for the 3.3V rail, though, where the voltage drops are notable. </p><h2 id="turn-on-transient-tests-15">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Q9xUXvssyPvxFdJRgFq4Si.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eJ3czgq7gdzfhBpGf5ujUi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dS3MCL9dSMjSuQN86cBcWi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Comments on Turn-On tests.</p><h2 id="power-supply-timing-tests-15">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU's Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >90ms</td><td  >278ms</td></tr><tr><th  ><strong>50%</strong></th><td  >94ms</td><td  >282ms</td></tr></tbody></table></div><p>The PWR_OK delay is our of the 100-150ms region, so the PSU does not support the alternative sleep mode, which will be a requirement by the ATX v2.52 from 2020.</p><h2 id="ripple-measurements-15">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>10% Load</strong></font></td><td  >9.0 mV</td><td  >6.8 mV</td><td  >10.2 mV</td><td  >3.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>20% Load</strong></font></td><td  >9.9 mV</td><td  >6.5 mV</td><td  >9.6 mV</td><td  >3.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>30% Load</strong></font></td><td  >9.8 mV</td><td  >6.5 mV</td><td  >8.3 mV</td><td  >4.0 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>40% Load</strong></font></td><td  >10.6 mV</td><td  >7.0 mV</td><td  >8.5 mV</td><td  >4.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>50% Load</strong></font></td><td  >12.9 mV</td><td  >7.8 mV</td><td  >10.3 mV</td><td  >5.3 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>60% Load</strong></font></td><td  >12.0 mV</td><td  >7.5 mV</td><td  >8.9 mV</td><td  >5.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>70% Load</strong></font></td><td  >12.8 mV</td><td  >9.7 mV</td><td  >13.1 mV</td><td  >7.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>80% Load</strong></font></td><td  >14.9 mV</td><td  >10.9 mV</td><td  >15.2 mV</td><td  >8.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>90% Load</strong></font></td><td  >15.8 mV</td><td  >10.7 mV</td><td  >17.7 mV</td><td  >8.3 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>100% Load</strong></font></td><td  >22.2 mV</td><td  >10.4 mV</td><td  >11.4 mV</td><td  >8.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>110% Load</strong></font></td><td  >26.5 mV</td><td  >10.7 mV</td><td  >11.8 mV</td><td  >8.6 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 1</strong></font></td><td  >10.9 mV</td><td  >7.7 mV</td><td  >12.3 mV</td><td  >3.9 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 2</strong></font></td><td  >21.7 mV</td><td  >9.1 mV</td><td  >14.0 mV</td><td  >7.5 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BNiuyuf2LiNMKFGGa6xKcC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fYp5PihYYPWnag5nsv3QgC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/96GsYYCG5gYNSMXKWB7mjC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jp8o8B87jwT4zF2gmPWqnC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ripple suppression is very good.</p><h2 id="ripple-at-full-load-15">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9xmLQZqEd4v6zADNkHRmbA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rZrMDYwHEgGwrJwu9KXTiA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nsTTviVkMP9dWs6N9dMqpA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5Dt98HKGatDy27HbcyMRtA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-14">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/PafCGRrs327W8gKrbr5ybN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HdnWafU7jQuLCM9a584seN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BXvC9W3FcHFQcQpGdZ9ahN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Pjzpey8sRNttUt7LtBtpkN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-15">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YaeD5iCaGhZbGvx3N5Jz9V.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BMkwLxTyBThBTkizNu4VCV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9BnW6VXPsHohDDapBce4FV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b4PFAXS6sDPkF2GvNtrjJV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-10">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/6K5F5Tm4HvYNJDogDQKDna.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X3ureJ28Gahi4pT47YUxua.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QCxHMX9aBqU7Hgh8Dosc2b.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gLkn7cdSnW3yXFpHKLpx5b.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1476px;"><p class="vanilla-image-block" style="padding-top:34.28%;"><img id="" name="EMI.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/5JYKuwyP4xm4kZA8CAuh53.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1476" height="506" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/5JYKuwyP4xm4kZA8CAuh53.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Some spurs go over the limit with the AVG detector, at higher frequencies. Usually the low frequencies are the noisy ones, but in this PSU it is the other way around.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-15">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/ikXY5jeTNM4No8XbGtUdVG.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ikXY5jeTNM4No8XbGtUdVG.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance is high, but not high enough to threaten the Seasonic Prime Platinum platform, which holds the reigns in this category. Nonetheless, the Thermaltake unit takes the lead from the Corsair HX1000, mostly thanks to its tighter load regulation.</p><h2 id="noise-rating-15">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/XXNdoBCDLGTdtvqSWtAduj.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/XXNdoBCDLGTdtvqSWtAduj.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>You cannot call this unit super noisy, but the badly tuned fan speed profile will be a problem even at light and moderate loads since the fan suddenly start to spin at high speeds without this being necessary. </p><h2 id="efficiency-rating-15">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:633px;"><p class="vanilla-image-block" style="padding-top:80.73%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/QAu8UFi6v2PThFpxtTvKHQ.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="633" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/QAu8UFi6v2PThFpxtTvKHQ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The efficiency is a little lower than some of the competing units, but not by a large margin.  </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>The Thermaltake TPG-1050F1FAP might not be a match for the formidable Seasonic Prime Ultra Platinum 1000W, but still, it achieves high performance in all areas. On top of that, it has 50W more power and many RGB lighting modes. It uses a modern CWT platform, which boasts a high build quality and good components along with a Hydro-Dynamic bearing fan. Finally, the ten-year warranty shows Thermaltake&apos;s faith in this platform.</p><p>For users that want RGB power supplies, Thermaltake offers a wide range of suitable products that have good performance and reliability in addition to their snazzy aesthetics. It is helpful for users to have alternative options to the typical high-end Corsair, Seasonic, and EVGA platforms that dominate today&apos;s market. </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/UhnANkiusb744SwoLxW3RU.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/UhnANkiusb744SwoLxW3RU.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Although the Thermaltake Grand RGB Platinum 1050W has to face intense competition, it achieves higher overall performance than the <a href="https://www.tomshardware.com/reviews/corsair-hx1000-psu,5214.html" target="_blank">Corsair HX1000</a>, but it loses to the mighty <a href="https://www.tomshardware.com/reviews/seasonic-prime-ultra-platinum-1000w-psu,5397.html">Seasonic Prime Ultra Platinum</a> with similar capacity. If Thermaltake manages to fix the weird fan profile and implement proper over-temperature protection, this product will be even better.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Thermaltake Toughpower Grand RGB 850W Platinum Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/thermaltake-toughpower-grand-rgb-850w-platinum-power-supply</link>
                                                                            <description>
                            <![CDATA[ The Toughpower Grand RGB 850W achieves high performance and has lots of RGB lighting modes, to choose from. ]]>
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                                                                        <pubDate>Wed, 11 Dec 2019 12:52:35 +0000</pubDate>                                                                                                                                <updated>Wed, 05 Feb 2025 14:18:57 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Thermaltake]]></media:credit>
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                                <p>Like its large brothers with 1050 and 1200W capacities, the Thermaltake Toughpower Grand RGB 850W Platinum offers high performance and features lots of RGB lighting modes. All in all, it is a good power supply equipped with a reliable and modern platform, provided by Channel Well Technology. If you don&apos;t care so much about the RGB lighting, you can also take a look at the <a href="https://www.tomshardware.com/reviews/corsair-hx850-psu,5257.html">Corsair HX850</a> and the <a href="https://seasonic.com/focus-plus-platinum#">Seasonic Focus Plus Platinum</a> with a similar capacity.</p><p>Thermaltake&apos;s Toughpower Grand RGB line consists of three models, which have high capacities, so they mostly address potent systems and users that don&apos;t have a problem spending a little more to get a high-quality power supply, which features RGB lighting. In PSUs, typically, the focus should be provided in spending every cent to improve the build quality and not on aesthetics. However, still, some users want even their PSU to look nice, or else there wouldn&apos;t be a whole market with such products.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UzXhKiYZfkqG9r9inSAd88.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aQz5hAdPDKwPLuzCw8ZgG8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YoGsjxn576ZxG8YxBgUao8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y6En6vnkjwh8uCZwMEvRw8.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m4KrfXNbX6qhYRmBQxmVV9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SAf7qGopWpBsUjYLdXT9c9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6PCkcX7CuRCqdQdM3UKgm9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PMtwU4TAmBKo69RNKrYrz9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zyzBS8fKL5RoYgyYR3m3AA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The Toughpower Grand RGB 850W Platinum has small dimensions, and it is fully modular. The external design easily stands out from the crowd, and besides the RGB lighting, the ten-year warranty is a strong marketing point for this product. Thermaltake also states that the PSU uses 100% Japanese capacitors. Still, we will have to take it apart and check on the model number of those parts, to figure if they belong to high-end or mainstream lines, with the latter not being so far away, in performance terms, to the corresponding Taiwanese and Chinese caps from Teapo and Elite.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QfKuS6L5QjCEMo3b36exBL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m3S677BYjoDg3Gfc3tLiNL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/U54KqraaGSfkmm6MBcJ7hL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M5bCzUJ4RqNnCTRSVS6o7M.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WgC6NxgzHmvS8p692XjLrN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-16">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >      <p>CWT</p>    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>850W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      <p>80 PLUS Platinum, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      <p>LAMBDA-S++ (30-35 dB[A])</p>    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      <p>✓ (Fully)</p>    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      <p>140mm Hydro Dynamic Bearing Fan (TT-1425/A1425L12S)</p>    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✓ (selectable)</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>150 x 85 x 160mm</p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>2.01 kg (4.43 lb)</p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-16">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >70.83</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  >100</td><td  >850</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  >850</td></tr></tbody></table></div><h2 id="cables-and-connectors-3">Cables and Connectors</h2><div ><table><tbody><tr><td  ><strong>Modular Cables</strong></td><td  > </td><td  > </td><td  > </td><td  > </td></tr><thead><tr><th  ><strong>Description</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tr><th  >ATX connector 20+4 pin (600mm)</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >No</td></tr><tr><th  >4+4 pin EPS12V (650mm)</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >No</td></tr><tr><th  >8 pin EPS12V (650mm)</th><td  >1</td><td  >1</td><td  >16AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (500mm+150mm)</th><td  >3</td><td  >6</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  >SATA (500mm+150mm+150mm+150mm)</th><td  >3</td><td  >12</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4-pin Molex (500mm+150mm+150mm+150mm)</th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  >FDD Adapter (+100mm)</th><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1440mm) - C13 coupler</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>There are more than enough cables and connectors to allow the PSU to deliver its full power effortlessly without notable voltage drops. Moreover, all the cables are long enough, and the distance between the peripheral connectors is ideal at 150mm. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ASq3pZxfQR9SKA7rL23t7X.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iDmVoYpUAPuLUYkf6FCCDX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3vm7X5V6D4cExidnFmZ4JX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/U9TiCuNwTAmTXbcbddXrMX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xWQX8a4HHBXKDeUGvGBjRX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WdZnEYjkPh323UDJv89FXX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vVr38twNjTbVqMscvX6VbX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5HVZZUt6aUvdJXiQT7UygX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7PiSXakGLZzy79ACkEXfqX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-16">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  ><strong>General Data</strong></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >CWT</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><strong>Primary Side</strong></td><td  >-</td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  >2x LVB2560 (600V, 25A @ 105°C)</td></tr><tr><td  >APFC MOSFETS</td><td  >2x Vishay SiHF22N60E (650V, 13A @ 100°C, 0.18Ohm),1x Sync Power SPN5003 FET (for reduced no-load consumption)</td></tr><tr><td  >APFC Boost Diodes</td><td  >2x StMicroelectronics STTH8S06D (600V, 8A)</td></tr><tr><td  >Hold-up Cap(s)</td><td  >2x Nippon Chemi-Con (400V, 680uF each or 1,360uF combined, 2,000h @ 105°C, KMR)</td></tr><tr><td  >Main Switchers</td><td  >4x Oriental Semiconductor OSG55R160FZ (550V, 14.5A @ 100°C, 0.16Ohm)</td></tr><tr><td  ><p>IC Driver</p></td><td  ><p>2x Silicon Labs Si8233BD</p></td></tr><tr><td  >Digital Controllers</td><td  >2x Texas Instruments UCD3138A</td></tr><tr><td  >Topology</td><td  >Primary side: Semi-Digital, Interleaved PFC, Full-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td  ><strong>Secondary Side</strong></td><td  >-</td></tr><tr><td  >+12V MOSFETS</td><td  >8x Infineon BSC016N06NS (60V, 100A @ 100°C, 1.6mOhm)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters: 4x UBIQ Semiconductor QM3006D (30V, 57A @ 100°C, 5.5mOhm)</td></tr><tr><td  >Filtering Capacitors</td><td  >Electrolytics: 8x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 1x Nippon Chemi-Con (1-5,000h @ 105°C, KZE), 4x Nichicon (2-4,000h @ 105°C, HD) Polymers: 23x Su'scon, 5x Elite, 8x NIC</td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7502 ( OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >Thermaltake TT-1425 (Hong Sheng OEM, A1425L12S, 140mm, 12V, 0.30A, Hydrodynamic Bearing, RGB LED Lighting Fan)</td></tr><tr><td  ><strong>5VSB Circuit</strong></td><td  >-</td></tr><tr><td  >Rectifier</td><td  >IPS ISD04N65A & PS1045L SBR (45V, 10A)</td></tr><tr><td  >Standby PWM Controller</td><td  >On-Bright OB5282</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ptZBEsCfppeerqJTj6M2nf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/L6vGSWCumGTCdLfL4tgytf.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RYGy8fPpb8rW9mFd3nNU6g.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PZ4e4xVCmd7KGAsY2qFFDg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The platform is the same used in the stronger members of the line, with different parts, though, since the max power of the PSU is lower. On the primary side, we find an interleaved APFC stage with a pair of APFC converters operating in parallel, with a phase difference among them. After the bulk caps of the APFC converters are four primary switching FETs, arranged in a full-bridge topology. An LLC resonant converter is used to boost efficiency. </p><p>On the secondary side, a synchronous rectification scheme is used, and a pair of VRMs regulate the minor rails. The design is semi-digital since the entire primary side, along with a part of the secondary, is controlled by MCUs. Only the VRMs and the 5VSB circuit are analog controlled. </p><p>The heatsinks are small, especially on the secondary side, where the +12V FETs are cooled down by small heat sinks, which are installed on the vertical board that hosts the FETs mentioned above. The build quality is good, and most of the Japanese electrolytic caps used on the secondary side belong to mid and high-level lines and not mainstream ones. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/VgyD4e5qWWkSrdwPpSngvm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YW3mS9cCS5JSybszcswzAn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xkuRPg8xR6oU9afpUUQXcn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LpAfkBRCp9qG6uMGYmjH2o.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YU4xdz8RvJZKWfKnmHm9Go.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EpxZPSK3Qw5CMJnC9Zyx.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The EMI filter has all the necessary components to keep the conducted EMI emissions (from both directions) low. There is also a MOV to protect from voltage surges, while an NTC thermistor, along with a bypass relay lower the inrush currents. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/tMe7XSP6uPD868MLcCPkDJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DNvoSgy76SvsxKDPPBfuLJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are two bridge rectifiers, installed in parallel to lower energy losses. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9xKDmiPCWMiABuNCqiJxJA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4TYnYyLrce5xeu7UbdQxTA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/d3Ap764qoQaYLxMn34o7aA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eRqTEG7G9d5cFknExs4WhA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fu2e2Z37b3sdH5AhmjP39B.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zdj6BsnZDDnN7McQhbywbB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The interleaved APFC uses an increased number of parts, including two chokes. The bulk caps are of high quality and have enough capacity to provide a longer than 17ms hold-up time. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/b9c6uFjacJKf7vDtYjn9cb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/StAHr8NHtdcGtF8uEaKdsb.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/v3urYh4vrLpxnQFnBiFNBc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Fe2oi6fay6NZuJUGN54sGc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yQ6B3LHt463dbbEE8XuWWc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/crv5p4B5jePXc7zwcTscjc.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CopnHwmdA6R7AbDJJEBC2d.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The primary switching FETs are configured in a full-bridge topology, and an LLC resonant converter restricts the energy losses. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Fj9tBRXRYAKbYgAm8xXwSk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NP8QFrbpXBNAJ7YJXZobqk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The board that hosts the +12V FETs are closely installed to the main transformer and is connected to the latter through a pair of thick cables. </p><figure class="van-image-figure " data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="caps.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/vuK7RjPCrBJ6K63VUPcPM8.jpg" mos="" align="middle" fullscreen="" width="2000" height="1125" attribution="" endorsement="" class=""></p></div></div><figcaption itemprop="caption description" class=""><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Most electrolytic caps belong to Chemi-Con&apos;s good KY line. We only found a single KZE cap and four Nichicons, with a high enough lifetime. Besides electrolytic caps, a large number of polymers is also used for ripple filtering. The majority of polymer caps belong to Taiwanese and Chinese brands. This is not a reliability problem, though, since this type of caps can withstand high operating temperatures without issues. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/iL9KhuCRuY9YsgpgYfJetC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DuWXJ9HLcdf5CRUdorex8D.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WuLQjcLe9eQ9HV2jijcJKD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The face of the modular board is covered by polymer caps. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LcPCBJxSMC7J6KJBUNkzgL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gGXJvrtnokCyXmc5k9E3AM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Kh6xxyXWELgnk7o8npGrXM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uiN2LpGrkaUxtbMnBUaMiM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8iDPF5sGuhjsoVBbCm9dvM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jXbZALZFJJf4B3gKvWmpBN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6TUhhVbTM2qhwX4WbeEpWN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The soldering quality is good and all component leads have been carefully trimmed. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FFVsT5qm7CZNGXBV6uhxUR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5PUDuxEHrcDz87STeUTPfR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The cooling fan uses a hydrodynamic bearing, so it will have a long and trouble-free lifetime, as long as you keep the operating temperatures at normal levels. If you plan to use the PSU in harsh environments, a double-ball bearing fan will be more suitable but will also make more noise. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supply Units.</strong></a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="9260f836-0c1e-46fe-b741-45ba1cacb28d">            <a 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data-id="cc64c9cc-5cea-446c-ad60-84202190408f">            <a href="https://www.newegg.com/evga-supernova-850-g3-220-g3-0850-x1-850w/p/N82E16817438092?Description=EVGA%20850%20G3&cm_re=EVGA_850_G3-_-17-438-092-_-Product" data-model-name="EVGA 850 G3" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/esYiHFdVVxrnLVHNKREEBR.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">EVGA 850 G3</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-16">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GgdMpi6UfZSyo55nnFzxog.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pqYQU5qHTdeCGqj2FkvEsg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CYNvHq3Ad4RZQoDrZi84vg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AHve4CP66DfnFXCQ7jiLxg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VSDxev2EB6MUbGPpevPvC4.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/K5fPLEWMC7jzgzKi3UTKK4.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PgjfHbBur5Nk5eraYX539h.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Aqtsg5dJ5hoTBaEwFcoYBh.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The load regulation is tight on all rails. </p><h2 id="hold-up-time-16">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MZk7WTRVHLiLZGy3WJFbq.png" alt="" /><figcaption><small role="credit">Toms' Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XVfYxgdRbByVxCwP7nQiu.png" alt="" /><figcaption><small role="credit">Toms' Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zAdJaKo2pEf7bJfVgvDvD9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kv4WcgjTWpCPJZYbhouDM9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eL3Ppzb4hHvg7TBkqqdjU9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UW53e27sLpEMZidrN3tUv9.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FC8qbUfAiXQNjb5pSD285A.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is longer than 17ms, while the power-ok signal is accurate. </p><h2 id="inrush-current-16">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/EJP85vBe7AnbTmQaaXJfpD.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UwziYS5MXP6q8BYEYhFJuD.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current is low, with both voltage inputs. </p><h2 id="10-110-load-tests-15">10-110% Load Tests</h2><p>These tests reveal the TPG-0850F1FAP&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>5.275A</strong></td><td  ><strong>1.980A</strong></td><td  ><strong>1.972A</strong></td><td  ><strong>0.992A</strong></td><td  >84.971</td><td  >87.683%</td><td  >0</td><td  ><6.0</td><td  > 45.25°C</td><td  >0.971</td></tr><tr><td  >12.038V</td><td  >5.053V</td><td  >3.279V</td><td  >5.040V</td><td  >96.907</td><td  > 40.07°C</td><td  >115.15V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>11.518A</strong></td><td  ><strong>2.974A</strong></td><td  ><strong>2.973A</strong></td><td  ><strong>1.192A</strong></td><td  >169.464</td><td  >91.016%</td><td  >0</td><td  ><6.0</td><td  > 46.22°C</td><td  >0.991</td></tr><tr><td  >12.038V</td><td  >5.049V</td><td  >3.294V</td><td  >5.035V</td><td  >186.191</td><td  > 40.21°C</td><td  >115.15V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>18.169A</strong></td><td  ><strong>3.472A</strong></td><td  ><strong>3.475A</strong></td><td  ><strong>1.393A</strong></td><td  >254.615</td><td  >92.107%</td><td  >0</td><td  ><6.0</td><td  > 47.29°C</td><td  >0.995</td></tr><tr><td  >12.031V</td><td  >5.045V</td><td  >3.310V</td><td  >5.028V</td><td  >276.433</td><td  > 41.01°C</td><td  >115.15V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>24.815A</strong></td><td  ><strong>3.969A</strong></td><td  ><strong>3.990A</strong></td><td  ><strong>1.593A</strong></td><td  >339.834</td><td  >91.741%</td><td  >1392</td><td  >39.0</td><td  > 41.98°C</td><td  >0.997</td></tr><tr><td  >12.034V</td><td  >5.041V</td><td  >3.309V</td><td  >5.022V</td><td  >370.429</td><td  > 48.86°C</td><td  >115.15V</td></tr><tr><td  ><font color="#000000"><strong>5</strong></font></td><td  ><strong>31.138A</strong></td><td  ><strong>4.966A</strong></td><td  ><strong>4.976A</strong></td><td  ><strong>1.794A</strong></td><td  >425.124</td><td  >91.926%</td><td  >792</td><td  >21.7</td><td  > 42.01°C</td><td  >0.997</td></tr><tr><td  >12.033V</td><td  >5.038V</td><td  >3.300V</td><td  >5.017V</td><td  >462.461</td><td  > 49.49°C</td><td  >115.17V</td></tr><tr><td  ><font color="#000000"><strong>6</strong></font></td><td  ><strong>37.403A</strong></td><td  ><strong>5.957A</strong></td><td  ><strong>5.987A</strong></td><td  ><strong>1.996A</strong></td><td  >509.640</td><td  >91.669%</td><td  >836</td><td  >23.5</td><td  > 42.26°C</td><td  >0.997</td></tr><tr><td  >12.027V</td><td  >5.035V</td><td  >3.307V</td><td  >5.011V</td><td  >555.954</td><td  > 50.29°C</td><td  >115.17V</td></tr><tr><td  ><font color="#000000"><strong>7</strong></font></td><td  ><strong>43.719A</strong></td><td  ><strong>6.961A</strong></td><td  ><strong>7.009A</strong></td><td  ><strong>2.199A</strong></td><td  >594.971</td><td  >90.952%</td><td  >1388</td><td  >38.8</td><td  > 43.28°C</td><td  >0.997</td></tr><tr><td  >12.028V</td><td  >5.030V</td><td  >3.296V</td><td  >5.004V</td><td  >654.157</td><td  > 51.78°C</td><td  >115.16V</td></tr><tr><td  ><font color="#000000"><strong>8</strong></font></td><td  ><strong>50.038A</strong></td><td  ><strong>7.960A</strong></td><td  ><strong>8.016A</strong></td><td  ><strong>2.401A</strong></td><td  >680.321</td><td  >90.178%</td><td  >1394</td><td  >39.2</td><td  > 43.89°C</td><td  >0.998</td></tr><tr><td  >12.029V</td><td  >5.026V</td><td  >3.294V</td><td  >4.999V</td><td  >754.420</td><td  > 52.78°C</td><td  >115.17V</td></tr><tr><td  ><font color="#000000"><strong>9</strong></font></td><td  ><strong>56.785A</strong></td><td  ><strong>8.463A</strong></td><td  ><strong>8.507A</strong></td><td  ><strong>2.402A</strong></td><td  >765.243</td><td  >89.699%</td><td  >1396</td><td  >39.2</td><td  > 44.54°C</td><td  >0.998</td></tr><tr><td  >12.023V</td><td  >5.023V</td><td  >3.292V</td><td  >4.997V</td><td  >853.127</td><td  > 53.89°C</td><td  >115.19V</td></tr><tr><td  ><font color="#000000"><strong>10</strong></font></td><td  ><strong>63.293A</strong></td><td  ><strong>8.968A</strong></td><td  ><strong>9.028A</strong></td><td  ><strong>3.011A</strong></td><td  >850.056</td><td  >89.166%</td><td  >1401</td><td  >39.2</td><td  > 45.57°C</td><td  >0.998</td></tr><tr><td  >12.013V</td><td  >5.019V</td><td  >3.290V</td><td  >4.983V</td><td  >953.337</td><td  > 55.88°C</td><td  >115.18V</td></tr><tr><td  ><font color="#000000"><strong>11</strong></font></td><td  ><strong>70.417A</strong></td><td  ><strong>8.976A</strong></td><td  ><strong>9.032A</strong></td><td  ><strong>3.013A</strong></td><td  >934.871</td><td  >88.669%</td><td  >1403</td><td  >39.3</td><td  > 46.63°C</td><td  >0.998</td></tr><tr><td  >12.002V</td><td  >5.016V</td><td  >3.288V</td><td  >4.980V</td><td  >1054.334</td><td  > 57.74°C</td><td  >115.19V</td></tr><tr><td  ><font color="#000000"><strong>CL1</strong></font></td><td  ><strong>0.157A</strong></td><td  ><strong>12.001A</strong></td><td  ><strong>12.002A</strong></td><td  ><strong>0.000A</strong></td><td  >102.112</td><td  >83.317%</td><td  >1374 </td><td  >38.5</td><td  > 41.84°C</td><td  >0.831</td></tr><tr><td  >12.031V</td><td  >5.043V</td><td  >3.308V</td><td  >5.061V</td><td  >122.558</td><td  > 49.73°C</td><td  >115.19V</td></tr><tr><td  ><font color="#000000"><strong>CL2</strong></font></td><td  ><strong>70.841A</strong></td><td  ><strong>1.004A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  >865.073</td><td  >89.591%</td><td  >1401 </td><td  >39.2</td><td  > 45.28°C</td><td  >0.998</td></tr><tr><td  >12.023V</td><td  >5.025V</td><td  >3.294V</td><td  >5.014V</td><td  >965.580</td><td  > 55.39°C</td><td  >115.18V</td></tr></tbody></table></div><p>With 40% load the fan spins at high speeds, to remove the excess heat from the internals, while with 50% load it drops to much lower speeds. This is not an optimal fan speed profile and we would highly prefer the fan to engage sooner, rather than latter and at such high speeds. </p><p>Thanks to the digitally controlled PFC the PF readings are high, even at lower loads. Moreover, the PSU meets the 80 PLUS Platinum requirements with 20% and 100% load levels, and it is very close with 50%. Under lower operating temperatures you should expect even higher efficiency levels. </p><h2 id="20-80w-load-tests-16">20-80W Load Tests</h2><p>In the following tests, we measure the TPG-0850F1FAP&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>1.202A</strong></td><td  ><strong>0.495A</strong></td><td  ><strong>0.483A</strong></td><td  ><strong>0.198A</strong></td><td  >19.592</td><td  >68.289%</td><td  >0</td><td  ><6.0</td><td  >0.720</td></tr><tr><td  >12.053V</td><td  >5.058V</td><td  >3.312V</td><td  >5.056V</td><td  >28.690</td><td  >115.15V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>2.463A</strong></td><td  ><strong>0.989A</strong></td><td  ><strong>0.996A</strong></td><td  ><strong>0.396A</strong></td><td  >39.989</td><td  >79.457%</td><td  >0</td><td  ><6.0</td><td  >0.789</td></tr><tr><td  >12.054V</td><td  >5.056V</td><td  >3.312V</td><td  >5.053V</td><td  >50.328</td><td  >115.15V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>3.674A</strong></td><td  ><strong>1.484A</strong></td><td  ><strong>1.449A</strong></td><td  ><strong>0.594A</strong></td><td  >59.520</td><td  >84.671%</td><td  >0</td><td  ><6.0</td><td  >0.813</td></tr><tr><td  >12.039V</td><td  >5.055V</td><td  >3.304V</td><td  >5.049V</td><td  >70.296</td><td  >115.16V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>4.953A</strong></td><td  ><strong>1.980A</strong></td><td  ><strong>1.912A</strong></td><td  ><strong>0.793A</strong></td><td  >79.916</td><td  >86.895%</td><td  >0</td><td  ><6.0</td><td  >0.827</td></tr><tr><td  >12.039V</td><td  >5.053V</td><td  >3.285V</td><td  >5.044V</td><td  >91.968</td><td  >115.17V</td></tr></tbody></table></div><p>The fan doesn&apos;t engage at all, at light loads. It would be nice to see higher than 70% efficiency with 20W load, and over 80% with 40W. </p><h2 id="2-or-10w-load-test-16">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>1.202A</strong></td><td  ><strong>0.495A</strong></td><td  ><strong>0.483A</strong></td><td  ><strong>0.198A</strong></td><td  >19.592</td><td  >68.289%</td><td  >0</td><td  ><6.0</td><td  >0.720</td></tr><tr><td  >12.053V</td><td  >5.058V</td><td  >3.312V</td><td  >5.056V</td><td  >28.690</td><td  >115.15V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>2.463A</strong></td><td  ><strong>0.989A</strong></td><td  ><strong>0.996A</strong></td><td  ><strong>0.396A</strong></td><td  >39.989</td><td  >79.457%</td><td  >0</td><td  ><6.0</td><td  >0.789</td></tr><tr><td  >12.054V</td><td  >5.056V</td><td  >3.312V</td><td  >5.053V</td><td  >50.328</td><td  >115.15V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>3.674A</strong></td><td  ><strong>1.484A</strong></td><td  ><strong>1.449A</strong></td><td  ><strong>0.594A</strong></td><td  >59.520</td><td  >84.671%</td><td  >0</td><td  ><6.0</td><td  >0.813</td></tr><tr><td  >12.039V</td><td  >5.055V</td><td  >3.304V</td><td  >5.049V</td><td  >70.296</td><td  >115.16V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>4.953A</strong></td><td  ><strong>1.980A</strong></td><td  ><strong>1.912A</strong></td><td  ><strong>0.793A</strong></td><td  >79.916</td><td  >86.895%</td><td  >0</td><td  ><6.0</td><td  >0.827</td></tr><tr><td  >12.039V</td><td  >5.053V</td><td  >3.285V</td><td  >5.044V</td><td  >91.968</td><td  >115.17V</td></tr></tbody></table></div><p>With 2%, of the PSU&apos;s max-rated-capacity we measure well over 60% efficiency. Still the ATX spec will require for more than 70%, from July 2020. </p><h2 id="efficiency-9">Efficiency</h2><p>Next, we plotted a chart showing the TPG-0850F1FAP’s efficiency at low loads, and loads from 10 to 110% of its maximum rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aGYrdD5NtnXFZJ22DER6yJ.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pHme5iWaRyHyMi7zpbAV2K.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sZNKLZQzBRbsYSJb24Vu5K.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bNceo6V4EhsrRg4NtdDt8K.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NZPm2V9ekMy5LXxJgKGpBK.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The unit fares well against the similar spec competition, in all load levels (super light, light and normal). </p><h2 id="5vsb-efficiency-16">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.502</td><td  >75.831%</td><td  >0.053</td></tr><tr><td  >5.016V</td><td  >0.662</td><td  >115.16V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.254</td><td  >77.743%</td><td  >0.124</td></tr><tr><td  >5.013V</td><td  >1.613</td><td  >115.16V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.755</td><td  >78.356%</td><td  >0.238</td></tr><tr><td  >5.008V</td><td  >3.516</td><td  >115.16V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.000</td><td  >77.375%</td><td  >0.349</td></tr><tr><td  >4.999V</td><td  >6.462</td><td  >115.16V</td></tr><tr><td  ><font color="#000000"><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.486</td><td  >77.319%</td><td  >0.415</td></tr><tr><td  >4.989V</td><td  >9.682</td><td  >115.16V</td></tr><tr><td  ><font color="#000000"><strong>6</strong></font></td><td  ><strong>3.001A</strong></td><td  >14.880</td><td  >76.899%</td><td  >0.492</td></tr><tr><td  >4.959V</td><td  >19.350</td><td  >115.16V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ZRfENGw3KZADjXnZ8tZR7N.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KLBpRXNutAnRvU7XzyiwHN.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>We have seen better 5VSB circuits from CWT. This is a high-end platform, so we expected one of CWT&apos;s "good" 5VSB regulator circuits to be utilized. </p><h2 id="power-consumption-in-idle-and-standby-16">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>Idle</strong></font></td><td  >12.072V</td><td  >5.060V</td><td  >3.312V</td><td  >5.061V</td><td  >8.366</td><td  >0.429</td></tr><tr><td  >115.2V</td></tr><tr><td  ><font color="#000000"><strong>Standby</strong></font></td><td  >0.038</td><td  >0.003</td></tr><tr><td  >115.2V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RYxAWfJxpp7arDZcnsDavQ.png" alt="" /><figcaption><small role="credit">Future</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LFLHRaPjSKLr4dhHgKu63R.png" alt="" /><figcaption><small role="credit">Future</small></figcaption></figure></figure><p>The vampire power levels stay low, with both 115V and 230V input. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-16">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/LC8Z7hgGo6ARh89kcjEzLT.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/LC8Z7hgGo6ARh89kcjEzLT.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:81.14%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/J2XUhyiCTNQLyKiegL5uTV.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="631" height="512" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/J2XUhyiCTNQLyKiegL5uTV.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan speed profile registers a peak with a 340W load, at 42 degrees Celsius, and it drops at lower speeds with up to 510W load. With higher loads and with the ambient temperature exceeding 43 degrees Celsius, the fan spins at full speed, with the noise output being close to 40 dB(A).</p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/KnuyagWTVCSmACMZ7uk59Z.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/KnuyagWTVCSmACMZ7uk59Z.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/VeZkfbNcVQkgQf98bz2SCb.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/VeZkfbNcVQkgQf98bz2SCb.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Future)</span></figcaption></figure><p>The fan speed profile is not optimal, even at normal operating temperatures. There is no need for the fan to spin at full speed, right after the end of its passive mode. It is way better for the passive mode to last less time and engage the fan at lower speeds afterward.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-16">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  >      <p><strong>Protection Features</strong></p>    </td><td  > </td></tr><tr><td  >      <p><strong>OCP</strong></p>    </td><td  >      12V: 84.8A (119.72%), 12.023V      5V: 30.1A (150.5%), 5.037V      3.3V: 31.5A (157.5%), 3.324V      5VSB: 5.3A (176.67%), 4.914V    </td></tr><tr><td  >      <p><strong>OPP</strong></p>    </td><td  >      <p>1090.01W (128.24%)</p>    </td></tr><tr><td  >      <p><strong>OTP</strong></p>    </td><td  >      ✗ (>200°C & +12V Heat Sink)</td></tr><tr><td  >      <p><strong>SCP</strong></p>    </td><td  >      <p>12V: ✓<br>      5V: ✓<br>      3.3V: ✓<br>      5VSB: ✓<br>      -12V: ✓</p>    </td></tr><tr><td  >      <p><strong>PWR_OK</strong></p>    </td><td  >      <p>Proper operation</p>    </td></tr><tr><td  >      <p><strong>NLO</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>SIP</strong></p>    </td><td  >      Surge: MOV      Inrush: NTC Thermistor & Bypass Relay    </td></tr></tbody></table></div><p>The OCP triggering point at +12V is at a reasonable level, but this is not the case for the minor rails where the respective thresholds are set too high. There is no reason for such high OCPs on the minor rails, from the moment today&apos;s systems only lightly use them. Finally, the OPP is adequately configured, within 130% of the PSU&apos;s max-rated-capacity.</p><p>Unfortunately, we were unable to make the PSU shut down during our over-temperature test, so it is safe to assume that either there is no OTP or it is just set too high, so practically it is useless.</p><h2 id="dc-power-sequencing-16">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zk8cD3KXk5CQ872knQB9NY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mDrpvKbazNZ4EQesREDtYY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PE6tmoTcQGYvDBJ2XwX6fY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail is always lower than the other two. </p><h2 id="cross-load-tests-16">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-16">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ttQ9n3ZG2gAYMbcgFjCf8d.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/W9Xve4Zdvr5wNDHKtYwHEd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ga5bNmPLoWW5akEkHUnuGd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-11">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/XYx5tdYKbz9GUBkVcr7eCg.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/XYx5tdYKbz9GUBkVcr7eCg.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-11">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/CrFkTzicEkAHZCZsktVHzk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WfqjascmCgHxKnM5nd8exm.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VUAqsPPoqsfooYNXCTS7Mn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RLDfac8HvT7pXZB2ZtgTTn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-16">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/tycgNuAVu8mf8EXDHxro3B.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jYeHbv4zUARLf7Mk3WjHBB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EtGTCnJxrUTubpZmwN2hJB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KMDsT34vPXFxpbxmQN9VRB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Q7ePyxDpiTxzLivTVervXB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DPKyJcGQTJTTBhC5orSsfB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gNHCiKNCXeWeK8WvA7KXmB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The VRMs get quite hot, and the same applies to the board that hosts the +12V FETs. The latter also increases the operating temperatures of the electrolytic caps, which are installed between the +12V board and the one hosting the modular sockets. CWT used good enough caps (Nichicon HD) in the area. Still, we would prefer to see Chemi-Con&apos;s KY line used instead, in such a hot area. This is why CWT had to use a more aggressive fan speed profile, especially at high operating temperatures.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-16">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms-3">Advanced Transient Response at 20% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.033V</td><td  >11.935V</td><td  >0.81%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.047V</td><td  >4.990V</td><td  >1.13%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.307V</td><td  >3.201V</td><td  >3.21%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.032V</td><td  >4.993V</td><td  >0.78%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-3">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.032V</td><td  >11.902V</td><td  >1.08%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.047V</td><td  >4.980V</td><td  >1.33%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.307V</td><td  >3.187V</td><td  >3.63%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.032V</td><td  >4.983V</td><td  >0.97%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-16">Advanced Transient Response at 20% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.078V</td><td  >11.962V</td><td  >0.96%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.931V</td><td  >4.790V</td><td  >2.86%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.309V</td><td  ><strong>3.100V</strong></td><td  >6.32%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.906V</td><td  >4.806V</td><td  >2.04%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-3">Advanced Transient Response at 50% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.027V</td><td  >11.935V</td><td  >0.76%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.036V</td><td  >4.977V</td><td  >1.17%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.300V</td><td  >3.187V</td><td  >3.42%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.015V</td><td  >4.973V</td><td  >0.84%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-3">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.022V</td><td  >11.905V</td><td  >0.97%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.037V</td><td  >4.968V</td><td  >1.37%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.301V</td><td  >3.172V</td><td  >3.91%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.015V</td><td  >4.959V</td><td  >1.12%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-16">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.023V</td><td  >11.911V</td><td  >0.93%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.037V</td><td  >4.971V</td><td  >1.31%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.301V</td><td  >3.170V</td><td  >3.97%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.015V</td><td  >4.972V</td><td  >0.86%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/z9XU3UmyGyymFvBiAkVytA.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HqC9ECpt8c2qUwxLvmpwEB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ux9gWpV5UZ6NJ3zwSabmKB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2rEdVeAaKUhX9hnURiRxNB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bt2yguJMm5LUhRXBCp88SB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uRYNooQCJMWu2PLzpCm3fB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UQ8hhDbqeg6t3LhydKQUvB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HHqrxkTQmbbk4wevMm84zB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient response at +12V is tight, and this is what matters the most in contemporary systems. We are also fully satisfied by the performance of the 5V and 5VSB rails, while the 3.3V rail might not have high deviations. Still, its voltage drops below 3.2V and in one test it fails to keep it above 3.14V. </p><h2 id="turn-on-transient-tests-16">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/dqXnQu9yV4S956oMe5opXG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JYJ3SotZiDxYfuJ9xcsarG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3LCJy4ns7RfapCFGuiZpvG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Almost flawless performance here. We only notice a minor spike at 5VSB. </p><h2 id="power-supply-timing-tests-16">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU's Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms.</p><div ><table><caption>PSU Timings Table</caption><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >84ms</td><td  >282ms</td></tr><tr><th  ><strong>50%</strong></th><td  >88ms</td><td  >284ms</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so the PSU does not support the alternative sleep mode, which will be a requirement by the ATX v2.52 from 2020.</p><h2 id="ripple-measurements-16">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU&apos;s DC rails. This phenomenon significantly decreases the capacitors&apos; lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap&apos;s useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>10% Load</strong></font></td><td  >9.7 mV</td><td  >6.8 mV</td><td  >25.8 mV</td><td  >9.3 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>20% Load</strong></font></td><td  >9.7 mV</td><td  >4.9 mV</td><td  >13.1 mV</td><td  >8.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>30% Load</strong></font></td><td  >9.4 mV</td><td  >4.1 mV</td><td  >12.1 mV</td><td  >8.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>40% Load</strong></font></td><td  >11.1 mV</td><td  >5.0 mV</td><td  >12.1 mV</td><td  >8.9 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>50% Load</strong></font></td><td  >14.7 mV</td><td  >5.6 mV</td><td  >14.0 mV</td><td  >9.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>60% Load</strong></font></td><td  >16.6 mV</td><td  >5.8 mV</td><td  >14.8 mV</td><td  >9.9 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>70% Load</strong></font></td><td  >15.8 mV</td><td  >5.8 mV</td><td  >15.3 mV</td><td  >8.8 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>80% Load</strong></font></td><td  >17.7 mV</td><td  >6.4 mV</td><td  >16.6 mV</td><td  >9.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>90% Load</strong></font></td><td  >18.4 mV</td><td  >7.0 mV</td><td  >16.6 mV</td><td  >9.3 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>100% Load</strong></font></td><td  >25.4 mV</td><td  >7.5 mV</td><td  >18.8 mV</td><td  >11.0 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>110% Load</strong></font></td><td  >26.5 mV</td><td  >7.3 mV</td><td  >20.1 mV</td><td  >11.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 1</strong></font></td><td  >11.4 mV</td><td  >5.4 mV</td><td  >18.6 mV</td><td  >9.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 2</strong></font></td><td  >24.7 mV</td><td  >6.8 mV</td><td  >15.6 mV</td><td  >10.8 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/qyAiVN3csE7XEuGdAjF6oN.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UQSS8DRsFDeQ3SVUq9MNyN.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wk7kUmQhdxMDDAFh76VKCP.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Q4b4JSaY63dFbNfiz57zEP.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ripple suppression is good on all rails. </p><h2 id="ripple-at-full-load-16">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cXJZ6tsqipvmeGJVn9CmBV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3xbKDtzkrRqdzZygzz5NMV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7AKzJt7fKr53SCNoiKkKSV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3PZtceexwtjEAtTXaqv4ZV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-15">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/P58BNwps6uTnu5TQLAkgAa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vwb5KQcF2CYxnDRUW4kvEa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kFqLnEE73wkhPFnNArdVKa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FVUZWGCi2KHLnUEhqvJLPa.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-16">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3SQKu2u5zi4LFRRVncCaLe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3Ciu3Mi3FCFb4J6NFzraQe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/U7bGSq85ErTTLDb4L4GYUe.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tUfCuRaa5fPMGxvc9M2Bde.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-11">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Bz8nxdV87uFR4GeUUm5gPi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cymiVoy5XyEgoggziNSxUi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wSPDDzBV2MHUW4TdtLLCai.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8zMx5WnDWV8WkT6i4Dq6fi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results-2">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1461px;"><p class="vanilla-image-block" style="padding-top:34.77%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1461" height="508" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>Comments on EMC.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-16">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/VQbPRW94nPnjjjGBQaNvNF.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/VQbPRW94nPnjjjGBQaNvNF.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The Thermaltake unit achieves top performance, taking the lead from the corresponding Seasonic and Corsair offerings. It only loses to the much more expensive FSP HPT850M unit.</p><h2 id="noise-rating-16">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:633px;"><p class="vanilla-image-block" style="padding-top:80.88%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/vyPaDXyf8sEeC498MhweS5.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="633" height="512" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/vyPaDXyf8sEeC498MhweS5.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan profile could be much more relaxed, given the unit&apos;s high efficiency levels. </p><h2 id="efficiency-rating-16">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/75DDLFHdvFf2bQXMsV4PjC.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/75DDLFHdvFf2bQXMsV4PjC.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall efficiency is pretty high. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>The Toughpower Grand RGB 850W Platinum is another good power supply from Thermaltake. Besides 80 PLUS Platinum efficiency, it also achieves ETA-A and LAMBDA-S++ efficiency and noise ratings, in the <a href="https://www.cybenetics.com/index.php?option=database&manfID=56&volts=1">Cybenetics scale</a>. While its overall noise output is not high, it could be even quieter still if the fan didn&apos;t spin, for short intervals thankfully, at full speed under light loads, once the passive operation ends. With a better fan speed profile, the TPG-0850F1FAP would be closer to its close competitors, the <a href="https://www.tomshardware.com/reviews/seasonic-focus-plus-platinum-750-psu,5556.html">Seasonic Focus Plus Platinum</a> with similar capacity and the <a href="https://www.tomshardware.com/reviews/corsair-hx850-psu,5257.html">Corsair HX850</a>.</p><p>Channel Well Technology, the original manufacturer of this power supply, used a semi-digital platform with good build quality and components that will last through time. The majority of electrolytic capacitors belong to good Japanese lines, and the cooling fan uses a hydrodynamic bearing, so it will easily live through the ten-year warranty if you don&apos;t expose it to very high operating temperatures (>40 degrees Celsius) frequently and for prolonged periods.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_top_rear.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/ZdKttchqBNJAeKsbzyN93W.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ZdKttchqBNJAeKsbzyN93W.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The TPG-0850F1FAP scores high performance in almost all areas but the transient response at 3.3V, where it failed in one of our tests. This rail is not significant since it is only lightly used in today&apos;s systems, but still, it has to meet the ATX spec&apos;s requirements and keep its voltage in control in any case. Another issue is the absent, or not properly configured, over-temperature protection. Thermaltake should look in this and take action the sooner the possible since OTP is among the most crucial protection features in PSUs.</p><p>The TPG-0850F1FAP scores higher in overall performance than its Seasonic and Corsair rivals and has RGB lighting. It is not as quiet, though, and this is something that Thermaltake should improve in a future version of this product, along with the over-temperature protection.</p><p><br></p><p><br></p><p><br></p><p><br></p><p><br></p><p><br></p><p><br></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Phanteks AMP Series 550W Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/phanteks-amp-series-550w-power-supply-review</link>
                                                                            <description>
                            <![CDATA[ The Phanteks AMP model with 550W achieves high performance and has a fairly quiet operation. ]]>
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                                                                        <pubDate>Tue, 26 Nov 2019 19:44:22 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:30:49 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <p>The Phanteks Amps model with 550W capacity achieves high enough performance, and it is dead silent, thanks to its increased efficiency, over the previous Seasonic Focus Plus platform, and non-aggressive fan profile. It uses the new Focus Plus Gold platform, so besides higher efficiency, its protection features are also enhanced, especially the inrush current protection. The most notable competitors are the <a href="https://www.tomshardware.com/reviews/corsair-rm550x-power-supply,4484.html">Corsair RM550x</a>, the EVGA 550 G3, which soon enough won&apos;t be available, and of course, the similar capacity <a href="https://www.tomshardware.com/reviews/seasonic-ssr-750fx-focus-plus-750-gold-psu,5206.html">Seasonic Focus Plus Gold (GX-550)</a> unit.</p><p>Phanteks cooperated again with Seasonic, and the outcome was the Amp series, which includes three models, with capacities ranging from 550W to 750W. All are based on the newest version of Seasonic&apos;s Focus Plus Gold platform, so we expect good performance and increase reliability, even under harsh conditions.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/VPLYgDVBfD7M6hKoh8bnhV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bxwmY94KpqgBQ3JXiUAapV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jXGgDGD5LcSZNBJjsLNgyV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Phh49Z7nnyYyhRcQhFETCW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/agvsqqCyaoqKv6Ar75qvMW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gRXmFLCexvLZVzHPpxZYaW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TbBcCJz6rhZGkihamjfNjW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zBmVvspsTmhstzdMtg9qsW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wYtRNB4DzBbssi8HJ8M54X.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>All Amps models, including the smallest model, come with two EPS connectors. Back in the day, most power supplies with less than 750W capacity only had one EPS, but the times change fast, so most brands chose to increase that number. It probably is an overkill for a 550W unit to have two EPS connectors since each of them can deliver up to 336W, and there are also two PCIe 6+2 pin connectors that can deliver up to 150W each. Still, it will make it future-proof and compatible with the majority of high-end mainboards that need extra juice for the CPU. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BqGVCUf9Va9qQrVRcg2Dwh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hbFaNVri6bgycvfP6zxG6i.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/R6B6RSyfzxiEBwdvt4ASDi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zbBDDP2o6LXw3VHq7BGwNi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4kiLLVUHiHbPtmstdLFHai.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/A5eT3fa3aYkG6yvUJNtLmi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9jEV4UAcafcCy6ZcC6Afvi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-17">Specifications</h2><div ><table><tbody><tr><td  >      <p>Manufacturer (OEM)</p>    </td><td  >      <p>Seasonic</p>    </td></tr><tr><td  >      <p>Max. DC Output</p>    </td><td  >      <p>550W</p>    </td></tr><tr><td  >      <p>Efficiency</p>    </td><td  >      <p>80 PLUS Gold, ETA-A (88-91%)</p>    </td></tr><tr><td  >      <p>Noise</p>    </td><td  >      LAMBDA-A++ (<15 dB[A])    </td></tr><tr><td  >      <p>Modular</p>    </td><td  >      ✓ (Fully)    </td></tr><tr><td  >      <p>Intel C6/C7 Power State Support</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Operating Temperature (Continuous Full Load)</p>    </td><td  >      <p>0 - 50°C</p>    </td></tr><tr><td  >      <p>Over Voltage Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Under Voltage Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Over Power Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Over Current (+12V) Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Over Temperature Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Short Circuit Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Surge Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Inrush Current Protection</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Fan Failure Protection</p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p>No Load Operation</p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p>Cooling</p>    </td><td  >      120mm Fluid Dynamic Bearing Fan (HA1225H12F-Z)    </td></tr><tr><td  >      <p>Semi-Passive Operation</p>    </td><td  >      <p>✓ (selectable)</p>    </td></tr><tr><td  >      <p>Dimensions (W x H x D)</p>    </td><td  >      <p>150 x 85 x 140mm</p>    </td></tr><tr><td  >      <p>Weight</p>    </td><td  >      <p>1.49 kg (3.28 lb)</p>    </td></tr><tr><td  >      <p>Form Factor</p>    </td><td  >      <p>ATX12V v2.4, EPS 2.92</p>    </td></tr><tr><td  >      <p>Warranty</p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><h2 id="power-specifications-17">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >45</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  >100</td><td  >550</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  >550</td></tr></tbody></table></div><h2 id="cables-and-connectors-4">Cables and Connectors</h2><div ><table><thead><tr><th  ><strong>Modular Cables</strong></th><th  ><strong>Cable Count</strong></th><th  ><strong>Connector Count (Total)</strong></th><th  ><strong>Gauge</strong></th><th  >In Cable Capacitors</th></tr></thead><tbody><tr><th  >ATX connector 20+4 pin (610mm)</th><td  >1</td><td  >1</td><td  >18-22AWG</td><td  >Yes</td></tr><tr><th  >4+4 pin EPS12V (650mm)</th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >6+2 pin PCIe (750mm)</th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (420mm+150mm+150mm+150mm)</th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  >SATA (300mm+150mm)</th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4 pin Molex (450mm+120mm+120mm)</th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  >4 pin Molex to SATA 3.3V Adapter (150mm+150mm)</th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  >AC Power Cord (1370mm) - C13 coupler</th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>All cables have sufficient length, and plenty of connectors are provided for the wattage of this unit. Our only complaint is the small distance between the 4-pin Molex connectors, which should be 160mm, at least. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FxjH3AUE9r4ZJmzm6jp993.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nfpjPn89mtfbudQzqSMfE3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4tkU2N7v7SDHHDQAa3eAJ3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ievLt7VrY8Duo6NMrpr4c3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/D5WL6ksuyGtbog8KWvUHh3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EJ9gMHpdSzFaUUvgmSUin3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nzvSnStFfys8htfq85onu3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hTHX54Gw64xSfQKBs77A94.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-17">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><tbody><tr><td  ><strong>General Data</strong></td><td  >-</td></tr><tr><td  >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td  >PCB Type</td><td  >Double Sided</td></tr><tr><td  ><strong>Primary Side</strong></td></tr><tr><td  >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV, 1x Discharge IC</td></tr><tr><td  >Inrush Protection</td><td  >NTC Thermistor & Relay</td></tr><tr><td  >Bridge Rectifier(s)</td><td  >2x GBU1006 (600V, 10A @ 100°C)</td></tr><tr><td  >APFC MOSFETS</td><td  >2x Champion GPT13N50D (500V, 13A, 0.49Ohm)      </td></tr><tr><td  >APFC Boost Diode</td><td  >1x NXP BYC8-600(600V, 8A @ 109°C)</td></tr><tr><td  >Hold-up Cap(s)</td><td  >1x Hitachi (400V, 390uF, 2,000h @ 105°C, HU)</td></tr><tr><td  >Main Switchers</td><td  >4x Champion GPT10N50AD (500V, 9.7A, 0.7Ohm)</td></tr><tr><td  > APFC Controller</td><td  >Champion CM6500UNX</td></tr><tr><td  >Resonant Controllers</td><td  >Champion CM6901T6</td></tr><tr><td  >Topology</td><td  >Primary side: Full-Bridge & LLC converter<br>      Secondary side: Synchronous Rectification & DC-DC converters     </td></tr><tr><td  ><strong>Secondary Side</strong></td></tr><tr><td  >+12V MOSFETS</td><td  >2x Nexperia PSMN2R6-40YS(40V, 100A @ 100°C, 5.3mOhm @ 175°C)</td></tr><tr><td  >5V & 3.3V</td><td  >DC-DC Converters</td></tr><tr><td  >Filtering Capacitors</td><td  >Electrolytics: 6x Nippon        Chemi-Con (4-10,000h @ 105°C, KY), 3x Nippon        Chemi-Con (1-5,000h @ 105°C, KZE), 2x Nichicon (2-5,000h @ 105°C, HD), 3x Nichicon (4-10,000h @ 105°C, HE)<br>        Polymers: 9x FPCAP, 2x NIC, 4x United Chemi-Con</td></tr><tr><td  >Supervisor IC</td><td  >Weltrend WT7527V (OCP, OVP, UVP, SCP, PG)</td></tr><tr><td  >Fan Model</td><td  >Hong Hua HA1225H12F-Z (120mm, 12V, 0.58A, Fluid Dynamic Bearing Fan)</td></tr><tr><td  ><strong>5VSB Circuit</strong></td></tr><tr><td  >Rectifier</td><td  >1xPFC P10V45SP SBR (45V, 10A)      </td></tr><tr><td  >Standby PWM Controller</td><td  >Excelliance MOS EM8569</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/PBWe7t5PXbviPCZ6C8hh7Q.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MSqrToWGsvWEqXgKhM83jQ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ty3uavoikYFj5EwNSj9HRR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/apCnjygUW4tTkwssTbif6S.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>All AMP models are based on the second, and more recent, version of the Seasonic Focus Plus Gold line. </p><p>The design is clean, and the small PCB is not densely populated. Hence the airflow is unobstructed. Moreover, the build quality is excellent, and the parts that Seasonic uses are of high quality as well. That&apos;s why the company is confident enough to provide such an extended warranty. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/22kcovgjxh9jmjjnrRxouV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XKk6xBmKqnGaeQWLhXqHNW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dJRD5GoLFWo2XNKXCCgKjW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/afSHMgiuPxVQ9zVjRC2iNX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EFUdmKeUNTfLUaw7V3zYdX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NTfXeewxGv6sRY68sSEByX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient filter has two stages, as in the majority of PSUs, and it includes all necessary components. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/bGwgVHAM5mcJdFboFFcaRB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6J2vaNE58hgYbtPPMSdTsB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Both bridge rectifiers are bolted onto a small, dedicated, heat sink. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ztYKQBp9NMqjqaVyXNBbHV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bwg4DN4AcHUgCBGZHP37WV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RqP8WqLGBcPqF9BFrJYeaV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mSucu7dBFaBNM5VuA9yknV.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Right in front of the APFC&apos;s converters FETs and boost diode, there is the NTC thermistor, responsible for protection against large inrush currents, and its bypass relay. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5X9zBdmhNyT6oc5Tryfibn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PAhuUtoVrMCHax3RNgRyjn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DPWBzi4pwNhWS9gMiQL7rn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C6YB2JJmaRLVTtMjRTVKyn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are four primary switching FETs, arranged into a full-bridge topology. It is rare to see a low-mid capacity PSU featuring this topology, which is mostly used in >1kW PSUs. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9yQSGvqLJqpDdmWCnBqaDJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XemZ4nLpGbk2xcjACGUJNJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KyFrFvLPcNHnq6XccKr7jJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/p6CCth3UT7dfsN33VKRysJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The FETs that regulated the +12V rail are installed on the solder side of the PCB. The two heat sinks above them assist in their cooling. </p><p>The minor rails are generated through two Voltage Regulator Modules (VRMs).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fWsfNJyfNtgfiT26ezcuXh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wedGdgMkLuGDZa5kSWEiAi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2JvwbRe5vy3ewUZVcxv5Ti.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Besides electrolytic caps, with the majority of them having a pretty long lifetime, many polymer caps are also used for filtering purposes.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/a85iWsCaPG9t8cJ9p6Tjd.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pNNDrTFtyU7TNkVSbeeHs.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4YkucjXtYqLY5JyisCgTB3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>At the front of the modular board we find four polymer caps and three large electrolytic ones. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5NH9KKufD9bMF4ezQG7U6C.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4hD5afHNvHfigjQSG8c9GC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zMZZ43UkzXf56ihU8NcKbC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gQJ3Hc5WNmzLtCESzubVmC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The soldering quality is good.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/owTZawB9VRWACRhmTSxqWH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CRbgCWUxvziA9tBKGzLYzH.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Hong Hua provides reliable fans at reasonable prices, and this is why many OEMs prefer its products nowadays, including Seasonic of course. This specific model uses a fluid dynamic bearing, which offers a long lifetime. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="607f09d1-4752-4fd6-a101-4d28e73a5b72">            <a href="https://www.newegg.com/seasonic-focus-plus-550-gold-ssr-550fx-550w/p/N82E16817151189?Description=Seasonic%20Focus%20Plus%20Gold%20550W&cm_re=Seasonic_Focus_Plus_Gold_550W-_-17-151-189-_-Product" data-model-name="Seasonic Focus GX-550" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/pHAEeZojtkCvpznGJFaoei.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Seasonic Focus GX-550</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="16f307d8-96c0-4100-bd1b-3f386e3fd350">            <a href="https://www.newegg.com/corsair-rmx-series-rm550x-cp-9020177-na-550w/p/N82E16817139231?Description=Corsair%20RM550x&cm_re=Corsair_RM550x-_-17-139-231-_-Product" data-model-name="Corsair RM750" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/j4vX5Hm3C4QhSUATQNpv4o.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM550x</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="8bd20ede-0edb-4014-98dd-92ab8bde6f8e">            <a href="https://www.newegg.com/fractal-design-ion-fd-psu-ionp-560p-bk-560w/p/N82E16817580021" data-model-name="Fractal Design Ion+ 560P" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/Qiuq5V7WBG96Pax8Dayt9F.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Fractal Design Ion+ 560P</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-17">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40W up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/bpDGuzsycQzFkuNzQEpvSn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yVA2XEx255wWDiXfvRfvWn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/23N5xdb9rwBBgKx48w78bn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9doaptJXuoh7BiCkRKytin.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KujZCokJvyKeRS7nHoKQpn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/guzcJqcc7CE42Woj9WmKtn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hE9sE628Quwo6hSVJKLTyn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WvKF4J6Ug3SasiZNVzMu5o.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The load regulation is tight on all rails. </p><h2 id="hold-up-time-17">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mV7m5TcxQhKfXRQAsAENk9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iuwuGUuHii4jBbvFCx8Uq9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y43Npyqoc3RATM8PDeirv9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Vgy4rVfhS8Ny6wqmskVrz9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gr7Zk7UWfBwUMTzPvffKGA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MNBgbZYWeRQMUGw6xaQxmA.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FbrMdKGZkMuke4ExAA3p8B.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time exceeds 17ms, and the power ok signal is accurate, but lower than 16ms as the ATX spec requires. </p><h2 id="inrush-current-17">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uyayBCXnh4KBWNwVrnBBNH.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5xaCwnTBiL23Mznmz9FmSH.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush currents are at normal levels. </p><h2 id="10-110-load-tests-16">10-110% Load Tests</h2><p>These tests reveal the PSU&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>2.722A</strong></td><td  ><strong>2.003A</strong></td><td  ><strong>1.989A</strong></td><td  ><strong>0.982A</strong></td><td  >54.538</td><td  >83.328%</td><td  >0</td><td  ><6.0</td><td  > 45.81°C</td><td  >0.917</td></tr><tr><td  >12.097V</td><td  >4.997V</td><td  >3.319V</td><td  >5.092V</td><td  >65.450</td><td  > 40.54°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>6.492A</strong></td><td  ><strong>3.004A</strong></td><td  ><strong>2.986A</strong></td><td  ><strong>1.181A</strong></td><td  >109.449</td><td  >88.172%</td><td  >0</td><td  ><6.0</td><td  > 46.94°C</td><td  >0.954</td></tr><tr><td  >12.098V</td><td  >4.994V</td><td  >3.317V</td><td  >5.083V</td><td  >124.131</td><td  > 40.85°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>10.656A</strong></td><td  ><strong>3.506A</strong></td><td  ><strong>3.469A</strong></td><td  ><strong>1.380A</strong></td><td  >164.941</td><td  >89.534%</td><td  >0</td><td  ><6.0</td><td  > 47.62°C</td><td  >0.969</td></tr><tr><td  >12.100V</td><td  >4.992V</td><td  >3.315V</td><td  >5.074V</td><td  >184.221</td><td  > 41.15°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>14.753A</strong></td><td  ><strong>4.009A</strong></td><td  ><strong>3.984A</strong></td><td  ><strong>1.580A</strong></td><td  >219.755</td><td  >89.694%</td><td  >0</td><td  ><6.0</td><td  > 48.64°C</td><td  >0.978</td></tr><tr><td  >12.102V</td><td  >4.991V</td><td  >3.314V</td><td  >5.065V</td><td  >245.004</td><td  > 41.89°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>5</strong></font></td><td  ><strong>18.519A</strong></td><td  ><strong>5.011A</strong></td><td  ><strong>4.982A</strong></td><td  ><strong>1.781A</strong></td><td  >274.649</td><td  >89.573%</td><td  >560</td><td  >8.5</td><td  > 42.67°C</td><td  >0.983</td></tr><tr><td  >12.103V</td><td  >4.991V</td><td  >3.312V</td><td  >5.055V</td><td  >306.619</td><td  > 49.88°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>6</strong></font></td><td  ><strong>22.286A</strong></td><td  ><strong>6.016A</strong></td><td  ><strong>5.982A</strong></td><td  ><strong>1.983A</strong></td><td  >329.566</td><td  >89.190%</td><td  >571</td><td  >8.5</td><td  > 43.11°C</td><td  >0.984</td></tr><tr><td  >12.104V</td><td  >4.989V</td><td  >3.310V</td><td  >5.044V</td><td  >369.509</td><td  > 50.90°C</td><td  >115.11V</td></tr><tr><td  ><font color="#000000"><strong>7</strong></font></td><td  ><strong>26.087A</strong></td><td  ><strong>7.019A</strong></td><td  ><strong>6.982A</strong></td><td  ><strong>2.185A</strong></td><td  >384.866</td><td  >88.719%</td><td  >685</td><td  >11.0</td><td  > 43.38°C</td><td  >0.986</td></tr><tr><td  >12.104V</td><td  >4.987V</td><td  >3.309V</td><td  >5.035V</td><td  >433.804</td><td  > 51.57°C</td><td  >115.11V</td></tr><tr><td  ><font color="#000000"><strong>8</strong></font></td><td  ><strong>29.886A</strong></td><td  ><strong>8.027A</strong></td><td  ><strong>7.984A</strong></td><td  ><strong>2.389A</strong></td><td  >440.169</td><td  >88.067%</td><td  >1003</td><td  >20.8</td><td  > 43.90°C</td><td  >0.988</td></tr><tr><td  >12.104V</td><td  >4.986V</td><td  >3.307V</td><td  >5.024V</td><td  >499.812</td><td  > 52.76°C</td><td  >115.11V</td></tr><tr><td  ><font color="#000000"><strong>9</strong></font></td><td  ><strong>34.057A</strong></td><td  ><strong>8.529A</strong></td><td  ><strong>8.473A</strong></td><td  ><strong>2.392A</strong></td><td  >494.683</td><td  >87.488%</td><td  >1340</td><td  >30.2</td><td  > 45.17°C</td><td  >0.989</td></tr><tr><td  >12.102V</td><td  >4.985V</td><td  >3.305V</td><td  >5.019V</td><td  >565.431</td><td  > 54.61°C</td><td  >115.11V</td></tr><tr><td  ><font color="#000000"><strong>10</strong></font></td><td  ><strong>38.033A</strong></td><td  ><strong>9.033A</strong></td><td  ><strong>8.990A</strong></td><td  ><strong>3.000A</strong></td><td  >549.884</td><td  >86.702%</td><td  >1753</td><td  >33.2</td><td  > 45.31°C</td><td  >0.989</td></tr><tr><td  >12.099V</td><td  >4.984V</td><td  >3.304V</td><td  >5.000V</td><td  >634.222</td><td  > 56.05°C</td><td  >115.11V</td></tr><tr><td  ><font color="#000000"><strong>11</strong></font></td><td  ><strong>42.601A</strong></td><td  ><strong>9.033A</strong></td><td  ><strong>8.991A</strong></td><td  ><strong>3.003A</strong></td><td  >605.107</td><td  >85.968%</td><td  >2098</td><td  >41.1</td><td  > 46.57°C</td><td  >0.990</td></tr><tr><td  >12.098V</td><td  >4.984V</td><td  >3.303V</td><td  >4.996V</td><td  >703.877</td><td  > 58.17°C</td><td  >115.11V</td></tr><tr><td  ><font color="#000000"><strong>CL1</strong></font></td><td  ><strong>0.142A</strong></td><td  ><strong>12.002A</strong></td><td  ><strong>12.001A</strong></td><td  ><strong>0.000A</strong></td><td  >101.248</td><td  >85.136%</td><td  >0 </td><td  ><6.0</td><td  > 49.34°C</td><td  >0.952</td></tr><tr><td  >12.107V</td><td  >4.984V</td><td  >3.309V</td><td  >5.100V</td><td  >118.925</td><td  > 42.48°C</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>CL2</strong></font></td><td  ><strong>45.005A</strong></td><td  ><strong>1.002A</strong></td><td  ><strong>0.999A</strong></td><td  ><strong>1.000A</strong></td><td  >557.839</td><td  >87.464%</td><td  >1609 </td><td  >33.1</td><td  > 45.54°C</td><td  >0.989</td></tr><tr><td  >12.098V</td><td  >4.994V</td><td  >3.311V</td><td  >5.057V</td><td  >637.796</td><td  > 55.97°C</td><td  >115.11V</td></tr></tbody></table></div><p>Up to the 40% load test, the PSU operates in passive mode, despite the high ambient temperatures. Afterward, the fan kicks in at low speeds. It needs more than full load at almost 47 degrees Celsius, to force the fan spin at full speed, where the noise output exceeds 40 dB(A).</p><h2 id="20-80w-load-tests-17">20-80W Load Tests</h2><p>In the following tests, we measure the PSU&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>1.202A</strong></td><td  ><strong>0.502A</strong></td><td  ><strong>0.483A</strong></td><td  ><strong>0.196A</strong></td><td  >19.657</td><td  >71.621%</td><td  >0</td><td  ><6.0</td><td  >0.787</td></tr><tr><td  >12.094V</td><td  >5.005V</td><td  >3.324V</td><td  >5.114V</td><td  >27.446</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>2.461A</strong></td><td  ><strong>1.002A</strong></td><td  ><strong>0.995A</strong></td><td  ><strong>0.392A</strong></td><td  >40.077</td><td  >81.248%</td><td  >0</td><td  ><6.0</td><td  >0.887</td></tr><tr><td  >12.094V</td><td  >4.999V</td><td  >3.320V</td><td  >5.108V</td><td  >49.327</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>3.651A</strong></td><td  ><strong>1.500A</strong></td><td  ><strong>1.476A</strong></td><td  ><strong>0.588A</strong></td><td  >59.555</td><td  >84.771%</td><td  >0</td><td  ><6.0</td><td  >0.921</td></tr><tr><td  >12.095V</td><td  >4.998V</td><td  >3.319V</td><td  >5.102V</td><td  >70.254</td><td  >115.12V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>4.906A</strong></td><td  ><strong>2.004A</strong></td><td  ><strong>1.989A</strong></td><td  ><strong>0.785A</strong></td><td  >79.951</td><td  >86.833%</td><td  >0</td><td  ><6.0</td><td  >0.940</td></tr><tr><td  >12.095V</td><td  >4.997V</td><td  >3.318V</td><td  >5.095V</td><td  >92.074</td><td  >115.12V</td></tr></tbody></table></div><p>The fan doesn&apos;t need to spin at such light loads, even at higher than 35 degrees Celsius ambient temperatures. </p><h2 id="2-or-10w-load-test-17">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>0.774A</strong></td><td  ><strong>0.203A</strong></td><td  ><strong>0.201A</strong></td><td  ><strong>0.050A</strong></td><td  >11.290</td><td  >59.362%</td><td  >0</td><td  ><6.0</td><td  >0.681</td></tr><tr><td  >12.078V</td><td  >5.011V</td><td  >3.326V</td><td  >5.119V</td><td  >19.019</td><td  >115.13V</td></tr></tbody></table></div><p>The efficiency with 2% load is low. </p><h2 id="efficiency-10">Efficiency</h2><p>Next, we plotted a chart showing the PSU’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mcTvi2RZJ32TGxCMMa5DoS.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jGLumzD8JNSjgby4CbLp2T.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KszgkjptkbFYfoq56Bb8JT.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CSWRMJ7aTdyaVuEKT8tAXT.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bTaDGrPtHLLjL9ziWZj5mT.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The efficiency levels could be higher in all segments (super light, light, and normal loads). </p><h2 id="5vsb-efficiency-17">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>1</strong></font></td><td  ><strong>0.100A</strong></td><td  >0.513</td><td  >74.026%</td><td  >0.109</td></tr><tr><td  >5.120V</td><td  >0.693</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>2</strong></font></td><td  ><strong>0.250A</strong></td><td  >1.280</td><td  >76.555%</td><td  >0.220</td></tr><tr><td  >5.116V</td><td  >1.672</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>3</strong></font></td><td  ><strong>0.550A</strong></td><td  >2.811</td><td  >77.588%</td><td  >0.330</td></tr><tr><td  >5.110V</td><td  >3.623</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>4</strong></font></td><td  ><strong>1.000A</strong></td><td  >5.100</td><td  >77.461%</td><td  >0.397</td></tr><tr><td  >5.099V</td><td  >6.584</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>5</strong></font></td><td  ><strong>1.500A</strong></td><td  >7.634</td><td  >77.906%</td><td  >0.432</td></tr><tr><td  >5.088V</td><td  >9.799</td><td  >115.13V</td></tr><tr><td  ><font color="#000000"><strong>6</strong></font></td><td  ><strong>3.000A</strong></td><td  >15.140</td><td  >76.023%</td><td  >0.482</td></tr><tr><td  >5.046V</td><td  >19.915</td><td  >115.13V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LZFvh4GPBJWKJMRPnKzkHa.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zSBs9dxWpiQ48ggdwyxwTa.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail&apos;s efficiency levels cannot meet the competition. </p><h2 id="power-consumption-in-idle-and-standby-17">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><font color="#000000"><strong>Idle</strong></font></td><td  >12.070V</td><td  >5.017V</td><td  >3.327V</td><td  >5.122V</td><td  >7.525</td><td  >0.515</td></tr><tr><td  >115.1V</td></tr><tr><td  ><font color="#000000"><strong>Standby</strong></font></td><td  >0.044</td><td  >0.007</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fmfmdo9LwdJq8FfvCmhGJe.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mCECgeeCxyiCWTG6p5VYce.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The energy that the PSU consumes in standby mode is low, with both voltage inputs.</p><h2 id="fan-rpm-delta-temperature-and-output-noise-17">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="Result 23 -36_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/HmboKgRTSCqcPQAUEHedjh.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/HmboKgRTSCqcPQAUEHedjh.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="Result 24 -37_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/GZCHJYyBTLjJV5RpdW7Nvk.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/GZCHJYyBTLjJV5RpdW7Nvk.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan profile at high operating temperatures is not aggressive since it takes more than full load at close to 47 degrees Celsius to make the fan spin at its full speed. </p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/wG9C8pnB5spKHmutLxy6zA.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/wG9C8pnB5spKHmutLxy6zA.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/AKTtZ5rZzmXzwn7HNd5pMF.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/AKTtZ5rZzmXzwn7HNd5pMF.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The passive operation lasts long, and up to around 360W loads, the PSU is dead silent. With higher than 440W loads, at +12V, the fan&apos;s noise enters the 35-40 dB(A) range. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-17">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  ><p align="center" style="text-align:center"><strong><span style="font-size:13.5pt;font-family:"Courier New";color:white">Protection        Features</span></strong></p></td><td  > </td></tr><tr><td  ><p align="center" style="text-align:center"><strong>OCP</strong></p></td><td  ><p align="center" style="text-align:center"><span style=""Times New Roman"">12V: 63.4A (140.89%), 12.079V<br>5V: 27.1A (135.5%), 4.967V<br>3.3V: 28.1A (140.5%), 3.295V<br>5VSB: 6A (200%</span>), 4.972V</p></td></tr><tr><td  ><p align="center" style="text-align:center"><strong>OPP</strong></p></td><td  ><p align="center" style="text-align:center"><span style=""Times New Roman"">774.1W (140.75%)</span></p></td></tr><tr><td  ><p align="center" style="text-align:center"><strong>OTP</strong></p></td><td  ><p align="center" style="text-align:center"><span style=""Times New Roman"">✓ (152°C @ 12V Heat Sink)</span></p></td></tr><tr><td  ><p align="center" style="text-align:center"><strong>SCP</strong></p></td><td  ><p align="center" style="text-align:center">12V: ✓<br>        5V: ✓<br>        3.3V: ✓<br>        5VSB: ✓<br>        -12V: ✓ </p></td></tr><tr><td  ><p align="center" style="text-align:center"><strong>PWR_OK</strong></p></td><td  ><p align="center" style="text-align:center"><span style=""Times New Roman""> Accurate but lower than 16ms</span></p></td></tr><tr><td  ><p align="center" style="text-align:center"><strong>NLO</strong></p></td><td  ><p align="center" style="text-align:center">✓</p></td></tr><tr><td  ><p align="center" style="text-align:center"><strong>SIP</strong></p></td><td  ><p align="center" style="text-align:center">Surge: MOV<br>        Inrush: NTC Thermistor & Bypass Relay </p></td></tr></tbody></table></div><p>Because of the low nominal capacity, the OCP triggering points are set higher than 130%. From the moment it doesn&apos;t cause any ripple issues, this isn&apos;t a concern for us.  The same goes for OPP, which is set a bit higher than 140%. </p><h2 id="dc-power-sequencing-17">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TvQ3SfGoJpoLWTjXWnM3bT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M72NVrciwX8XU9QNdXX6gT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/x2TRFuCyZ8MNcLYrELRGsT.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are no problems in these tests, since the 3.3V rail is always lower than the other two.</p><h2 id="cross-load-tests-17">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-17">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UEUfiWvrHjrnuojBcgdbrk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KWeudoHNqxBQrrq6BYkewk.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BfpPAFtde7BwW7tfAyEt2m.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-12">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_efficiency.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/vmcMPKPczqji6pNBJF7nn.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/vmcMPKPczqji6pNBJF7nn.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><h2 id="ripple-charts-12">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/mZ8tdwv6DSKw2Qe9ggKNmC.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GESx4QpV684SqzEFpYtWAD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XGe7a6n9ZAfAR8zzCZjnXD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eZhgb9c8jNY9ABeFBBCNmD.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-17">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ZTp73Lf4jAfNSdNjhW4STN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LUtHQvAr9BXeL5zTNniJrN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EskaXmrt7sjd7wiRmNVk6P.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XHURsR8ri8dKTBKpczvJJP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EmQyLUW4JEzM8qtDdevmRP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>No parts get overheated with a 50% load for ten minutes. This allows for a relaxed fan profile, as is the case in this power supply. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-17">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms-4">Advanced Transient Response at 20% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.100V</td><td  >11.995V</td><td  >0.87%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >4.997V</td><td  >4.878V</td><td  >2.38%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.316V</td><td  >3.153V</td><td  >4.92%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.066V</td><td  >5.007V</td><td  >1.16%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-4">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.099V</td><td  >11.941V</td><td  >1.31%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >4.995V</td><td  >4.849V</td><td  >2.92%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.316V</td><td  >3.119V</td><td  >5.94%</td><td  >Fail</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.066V</td><td  >5.025V</td><td  >0.81%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-17">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.098V</td><td  >11.972V</td><td  >1.04%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >4.996V</td><td  >4.852V</td><td  >2.88%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.316V</td><td  >3.119V</td><td  >5.94%</td><td  >Fail</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.067V</td><td  >5.018V</td><td  >0.97%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-4">Advanced Transient Response at 50% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.095V</td><td  >11.998V</td><td  >0.80%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >4.991V</td><td  >4.866V</td><td  >2.50%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.311V</td><td  >3.141V</td><td  >5.13%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.029V</td><td  >4.970V</td><td  >1.17%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-4">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.095V</td><td  >11.935V</td><td  >1.32%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >4.991V</td><td  >4.839V</td><td  >3.05%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.311V</td><td  >3.106V</td><td  >6.19%</td><td  >Fail</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.030V</td><td  >4.982V</td><td  >0.95%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-17">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >12.092V</td><td  >11.943V</td><td  >1.23%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >4.992V</td><td  >4.841V</td><td  >3.02%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.312V</td><td  >3.108V</td><td  >6.16%</td><td  >Fail</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.030V</td><td  >4.985V</td><td  >0.89%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MarXJdz7baGw6gPocR7K8e.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SgDboH9KrXPgZ9EbmmGkHe.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qiBe7oUgB9eiz3PG27CwMe.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pMQRbw8PnZHHQd8bzjMmQe.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bV2ySVEDML73reebAtrKUe.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KrAN269kPCBS2puZjHJPge.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ELZaYTPmjmNEpJeLG2w9ye.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jPwtPccSBBF78eFrA2C2Bf.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient response at +12V, which is the most crucial rail, is good. The voltage deviations are high on the minor rails, though, especially at 3.3V. </p><h2 id="turn-on-transient-tests-17">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BKgmTAvdUm9NaDGHgkgRPn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KJBmKV9hcssoEFdwH6LyTn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xB32W6jgfcMpVLQnRDGBYn.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The voltage at +12V takes some time to reach the nominal value. This won&apos;t create any problems, though. </p><h2 id="power-supply-timing-tests-17">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU's Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms.</p><div ><table><tbody><tr><td  ><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></td><td  ></td><td  ></td></tr><thead><tr><th  ><strong>Load</strong></th><th  ><strong>T1</strong></th><th  ><strong>T3</strong></th></tr></thead><tr><th  >20%</th><td  >78</td><td  >316</td></tr><tr><th  >100%</th><td  >88</td><td  >316</td></tr></tbody></table></div><p>The PWR_OK delay is out of the 100-150ms region, so according to the ATX spec, the PSU does not meet the requirements of the alternative sleep mode.</p><h2 id="ripple-measurements-17">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU&apos;s DC rails. This phenomenon significantly decreases the capacitors&apos; lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap&apos;s useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>10% Load</strong></font></td><td  >12.0 mV</td><td  >10.3 mV</td><td  >6.8 mV</td><td  >5.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>20% Load</strong></font></td><td  >16.9 mV</td><td  >12.9 mV</td><td  >8.6 mV</td><td  >5.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>30% Load</strong></font></td><td  >20.0 mV</td><td  >12.9 mV</td><td  >9.6 mV</td><td  >5.9 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>40% Load</strong></font></td><td  >22.5 mV</td><td  >12.9 mV</td><td  >10.1 mV</td><td  >5.9 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>50% Load</strong></font></td><td  >24.4 mV</td><td  >14.2 mV</td><td  >10.5 mV</td><td  >6.3 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>60% Load</strong></font></td><td  >25.9 mV</td><td  >15.2 mV</td><td  >11.0 mV</td><td  >7.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>70% Load</strong></font></td><td  >27.6 mV</td><td  >16.8 mV</td><td  >11.0 mV</td><td  >6.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>80% Load</strong></font></td><td  >28.7 mV</td><td  >17.7 mV</td><td  >13.7 mV</td><td  >8.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>90% Load</strong></font></td><td  >29.6 mV</td><td  >21.1 mV</td><td  >14.3 mV</td><td  >9.1 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>100% Load</strong></font></td><td  >31.1 mV</td><td  >24.3 mV</td><td  >15.5 mV</td><td  >8.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>110% Load</strong></font></td><td  >33.3 mV</td><td  >24.8 mV</td><td  >16.4 mV</td><td  >9.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 1</strong></font></td><td  >16.0 mV</td><td  >17.7 mV</td><td  >11.8 mV</td><td  >5.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 2</strong></font></td><td  >30.6 mV</td><td  >16.3 mV</td><td  >13.9 mV</td><td  >7.6 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/EaTRiMWHoQYa6ZsmrFFEm9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fdT3Fhzcypkvm3fsTzrgq9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8Z8zZUGkg7pPNSDj2tXRt9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HXdwvypSoru2joqbE62Mw9.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The lack of in-cable capacitors doesn&apos;t allow for flawless ripple suppression. Nonetheless, the PSU achieves satisfactory performance in this section.</p><h2 id="ripple-at-full-load-17">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/VP3Y4iisZrEkhDsWqZ4a9F.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/T6V7ANz3xSWsRzoK3c6aEF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iCgoUs5hiPLKQGuW9abiRF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NaYL5AZSf5wcLhpoX282iF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-16">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/txR6yvdK6mi6z2YFLULdpL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9WPwQxWCLLgbLWkHFetjtL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Rqdh2q4BesLcrJ4QNcMhwL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/G8QXi2obcjbamBXbgPmZzL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-17">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9twejimfpGsHcLWfZbXpuR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RMb25NJtQ8ZNDpH85gKzyR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uDKGZYir3b4acGeXFEt75S.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/w2Lj8qTv4KeVaRuqEsNw9S.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-12">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/bvzXMPaJ3LWNgaJooDLZeX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HAhZ7FsJK4t7JdSfUfE4xX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uERzvfdx7UQQWL4g4xStAY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WfAviK7y3i8BL5FwMCbwSY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results-3">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1744px;"><p class="vanilla-image-block" style="padding-top:35.32%;"><img id="" name="Screenshot 2019-11-13 at 10.03.20 AM.png" alt="" src="https://cdn.mos.cms.futurecdn.net/YTDFyDbyc5348aiDzjXjp4.png" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1744" height="616" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/YTDFyDbyc5348aiDzjXjp4.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>There are no high spurs, that exceed the corresponding limits. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-17">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/NSNe4YLX5uMyt3mWxwxJuK.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/NSNe4YLX5uMyt3mWxwxJuK.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>As expected, the overall performance is similar to the Seasonic Focus Plus Gold unit. The <a href="https://www.tomshardware.com/reviews/corsair-rm550x-power-supply,4484.html">Corsair RM550x</a> and the, soon EOL, EVGA 550 G3 score higher, though, mostly because of their better ripple suppression.</p><h2 id="noise-rating-17">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="Result 35 -36_Average_Noise_Output-small.png" alt="" src="https://cdn.mos.cms.futurecdn.net/hYJqewFousJTh72FtkrG7P.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/hYJqewFousJTh72FtkrG7P.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>This is a very quiet power supply, even quieter than the Corsair RM550x. </p><h2 id="efficiency-rating-17">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:633px;"><p class="vanilla-image-block" style="padding-top:80.73%;"><img id="" name="Result 36 -37_Average_Efficiency-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/RZxEBt7YKTUV4pA7Mm8VsR.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="633" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/RZxEBt7YKTUV4pA7Mm8VsR.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>As you can see in the chart above, the Phanteks unit that uses the new version of Seasonic&apos;s Focus platform achieves notably higher efficiency than the Focus model that is based on the previous platform. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>Phanteks, with Seasonic&apos;s help, managed to deliver a worth-looking product in the 550W PSU category. Its price is fair and although it has to face fierce competition in this category, e.g., the <a href="https://www.tomshardware.com/reviews/corsair-rm550x-power-supply,4484.html">Corsair RM550x</a> and the similar capacity Seasonic Focus Plus Gold unit, the PH-P550G scores first in the noise output section managing to take the lead from its Corsair rival, which so far dominated our charts. So if you are after a dead-silent power supply, the PH-P550G easily fits the bill.</p><p>The PH-P550G uses the new Seasonic Focus Plus Gold platform, which achieves lower overall noise output and also has increased efficiency, compared to its predecessor. The build quality of the PH-P550G is also high, and this is why the provided warranty is extra-long, at ten years. Besides good electrolytic capacitors and quality FETs, Seasonic also used a Fluid Dynamic Bearing (FDB) fan, provided by Hong Hua, which is supported by a semi-passive operation. The passive mode can be deactivated, thankfully, in case you don&apos;t want heat building-up at the PSU&apos;s internals, till the fan starts to spin.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/37HLJgNuunRzZhGeNXYKj8.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/37HLJgNuunRzZhGeNXYKj8.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>In the Phanteks PH-550G, another worthy product has been added to the mid-capacity category. If you are after a 550W unit, strongly consider the PH-550G, especially if you find it at a lower price than its sibling, the Seasonic Focus Plus Gold 550W, which unfortunately we haven&apos;t evaluated yet. Its primary rival is the <a href="https://www.tomshardware.com/reviews/corsair-rm550x-power-supply,4484.html">Corsair RM550x</a>, which achieves higher overall performance, mostly thanks to its better ripple suppression, and has about the same, super-low, overall noise output. The EVGA 550 G3 is also a competitor of this Phanteks unit, but it won&apos;t stay in production for long since it will be replaced by the G5 line, which doesn&apos;t achieve the same high-performance levels as the G3 models.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ EVGA SuperNOVA 750 G5 Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/evga-supernova-750-g5-power-supply,6344.html</link>
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                            <![CDATA[ The SuperNOVA 750 G5 is fully modular, compact, and promises for high performance. Will it be able to meet the popular Corsair and Seasonic offerings though? ]]>
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                                                                        <pubDate>Thu, 14 Nov 2019 23:29:47 +0000</pubDate>                                                                                                                                <updated>Wed, 05 Feb 2025 14:23:19 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <h2 id="specifications-and-part-analysis">Specifications and Part Analysis</h2><p>The SuperNOVA 750 G5 achieves a decent overall performance score, which however is lower than its main competitors, the <a href="https://www.tomshardware.com/reviews/corsair-rm750x-v2-psu,5585.html">Corsair RM750x</a> and the <a href="https://www.tomshardware.com/reviews/seasonic-ssr-750fx-focus-plus-750-gold-psu,5206.html">Seasonic Focus Plus Gold 750W</a>. Unfortunately, FSP, the manufacturer of EVGA&apos;s new G5 line, didn&apos;t pay much attention to the fan speed profile, so the 750 G5 is noisy. Moreover, its vampire power exceeds 0.25W with 230V input, so it fails to meet even the lowest Cybenetics efficiency standard (<a href="https://cybenetics.com/index.php?option=eta_9-51-40">ETA-S</a>). The SuperNova 750 G5 definitely fails to make our list of the <a href="https://www.tomshardware.com/reviews/best-psus,4229.html">best power supplies</a>. </p><p>EVGA&apos;s high numbered G, P, and T lines (G2, G3, P2, and T2) exclusively used Super Flower&apos;s Leadex platforms, which are among the best in today&apos;s market. Nonetheless, recent U.S. tariffs affected manufacturers with production lines in China, so EVGA had to turn to another OEM for the new G5 line, which will replace the G3 models. Probably this is the best time to grab a G3 PSU, even a G2 if you manage to find any before they vanish from the stores. At publication time, Newegg was still <a href="https://www.newegg.com/evga-supernova-750-g3-220-g3-0750-x1-750w/p/N82E16817438093">selling the G3</a> in the U.S. for $109 while the G5 was priced $30 lower.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/VHrsQE8rhuiUiUjfikX2Y6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BHFq7yZFoRfP2rEMbf9FvX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TkMtLZxyGQXfvzCnvm4Yoi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mR9goK4vL9oYyRXMvkntX7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EyngrhJ5NE5mosTLRfGvDZ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aDwVKFXDxN286uYGSajQBd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/58knfrQ6v824c2MGr4Q4JY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xvec5CVs9hHKmLcReuw6G8.jpg" alt="" /></figure></figure><p>The G5 line is based on an FSP platform, that uses an Active Clamp Reset Forward topology. Briefly this is a budget platform able to deliver long hold-up times even with small bulk caps and high efficiency levels. Still its performance cannot see eye-to-eye half-bridge and full-bridge topologies equipped with LLC resonant converters.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/A4ESCqX9SnDWgTzbwkvYki.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y9DqQR5DZJyjNA2xx2j74h.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PLwGeM5TVxUaPgbrFFb5ED.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LVPcXaR7x5rxaDAVQhNv2Q.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AuXL6x3o2GvgcP3f5zxeRQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/983Aao6wSrk7N8iD3CCuAA.jpg" alt="" /></figure></figure><h2 id="specifications-18">Specifications</h2><div ><table><tbody><tr><th  ><strong>Manufacturer (OEM)</strong></th><td  >FSP</td></tr><tr><th  ><strong>Max. DC Output</strong></th><td  ><span class="spelle">750W</span></td></tr><tr><th  ><strong>Efficiency</strong></th><td  >80 PLUS Gold *</td></tr><tr><th  ><strong>Noise</strong></th><td  >LAMBDA-S+ ( 35-40 dB[A]) *</td></tr><tr><th  ><strong>Modular</strong></th><td  >✓ (Fully)</td></tr><tr><th  ><strong>Intel C6/C7 Power State Support</strong></th><td  >✓</td></tr><tr><th  ><strong>Operating Temperature (Continuous Full Load)</strong></th><td  >0 - 50°C</td></tr><tr><th  ><strong>Over Voltage Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Under Voltage Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Power Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Current (+12V) Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Temperature Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Short Circuit Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Surge Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Inrush Current Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Fan Failure Protection</strong></th><td  >✗</td></tr><tr><th  ><strong>No Load Operation</strong></th><td  >✓</td></tr><tr><th  ><strong>Cooling</strong></th><td  >135mm Fluid Dynamic Bearing Fan (MGA13512HF-A25)</td></tr><tr><th  ><strong>Semi-Passive Operation</strong></th><td  >✓ (Selectable)</td></tr><tr><th  ><strong>Dimensions (</strong><span class="spelle"><strong>W x H x D</strong></span><strong>)</strong></th><td  >150 x 85 x 150mm</td></tr><tr><th  ><strong>Weight</strong></th><td  >1.63 kg (3.59 <span class="spelle">lb</span>)</td></tr><tr><th  ><strong>Form Factor</strong></th><td  >ATX12V v2.4, EPS 2.92</td></tr><tr><th  ><strong>Warranty</strong></th><td  >10 Years</td></tr></tbody></table></div><p>* Not certified yet by Cybenetics. According to our measurements the PSU falls into this noise category. There is no efficiency (ETA) classification, because of the high vampire power which puts it off Cybenetics' charts.</p><h2 id="power-specifications-18">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >24</td><td  >24</td><td  >62.5</td><td  >3</td><td  >0.5</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">120</td><td  >750</td><td  >15</td><td  >6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">750</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/frEEzeKZpoQsjmRaWKDJjF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/a7zVGoVsWV7HcArWSvxQxK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DoK9sVLaM3B88wficdUYz7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/a5SVoTviLKeN3rwpvyqtcF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qhy9vpMeSXkZ6aP7qDuCs5.jpg" alt="" /></figure></figure><h2 id="cables-amp-connectors-14">Cables & Connectors</h2><div ><table><thead><tr><th  colspan="5"><strong>Modular Cables</strong></th></tr></thead><tbody><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><th  ><strong>ATX connector 20+4 pin (600mm)</strong></th><td  >1</td><td  >1</td><td  >18-22AWG</td><td  >No</td></tr><tr><th  ><strong>4+4 pin EPS12V (700mm)</strong></th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (700mm) </strong></th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (700mm+150mm)</strong></th><td  >2</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (550mm+100mm+100mm)</strong></th><td  >3</td><td  >9</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4-pin Molex (550mm+100mm+100mm+100mm)</strong></th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>FDD Adapter (100mm)</strong></th><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><th  ><strong>AC Power Cord (1420mm) - C13 coupler</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p><span>Plenty of cables and connectors are provided with the 750 G3. It would be nice if the EPS and PCIe connectors used thicker, 16AWG gauges, but this is not a super strong PSU, so we will let this slide. What we cannot let go, though, is the small distance between the peripheral connectors. With only 100mm you will probably fall into compatibility problems with larger chassis. This is why we recommend at least 150mm gap between the SATA and the 4-pin Molex connectors. Finally, the absence of in-cable caps is good news, since it creates a trouble-free cable routing and management processes.</span></p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kbehSsahnqsse65jTjUwHc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dBwVyJFAaGY2pAjtUE9RLC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sVBdTyScQkYha5VASg6Gfj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/buFme6WjBCTUFYXJGbETqB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iobdAGeTJaSehNqJr9FP2g.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3WiZSd59WgsiV4T9MQEYyX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4eMLukKCxVHnaHGiYhXEQ5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XrgcQwjE2F4ay2TMSdwYXF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aseTbUQWbFC4JeZ4gCNUsD.jpg" alt="" /></figure></figure><h2 id="component-analysis-18">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong><span>allowing you to better understand the components we're about to discuss.</span></strong></p><div ><table><thead><tr><th  colspan="2"><strong>General Data</strong></th></tr></thead><tbody><tr><th  >Manufacturer (OEM)</th><td  >FSP</td></tr><tr><th  >PCB Type</th><td  >Double Sided</td></tr><thead><tr><th  colspan="2"><strong>Primary Side</strong></th></tr></thead><tr><th  >Transient Filter</th><td  >4x Y caps, 2x X caps, 3x CM chokes, 1x MOV</td></tr><tr><th  >Inrush Protection</th><td  >NTC Thermistor & Relay</td></tr><tr><th  >Bridge Rectifier(s)</th><td  >1x HY <a href="https://html.alldatasheet.com/html-pdf/940746/HY/GBJ2506/24/1/GBJ2506.html">GBJ2506P</a> (600V, 25A @ 100°C)</td></tr><tr><th  >APFC MOSFETS</th><td  >2x ROHM <a href="https://d1d2qsbl8m0m72.cloudfront.net/en/products/databook/datasheet/discrete/transistor/mosfet/r6020knx.pdf">R6020KNX</a> (600V, 20A, 0.196Ohm)</td></tr><tr><th  >APFC Boost Diode</th><td  >1x ROHM <a href="https://www.rohm.co.jp/datasheet/SCS306AM/scs306am-e">SCS306AM</a> (650V, 6A @ 120°C)</td></tr><tr><th  >Hold-up Cap(s)</th><td  >1x Rubycon (450V, 390uF, 3,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_MXG.pdf">MXG</a>)</td></tr><tr><th  >Main Switchers</th><td  >1x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPA80R310CE-DS-v02_01-EN.pdf?fileId=5546d46249be182c0149c78875be1e45">IPA80R310CE</a> (800V, 10.6A @ 100°C, 0.31Ohm)</td></tr><tr><th  >Reset Switch</th><td  >1x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPX80R1K4CE-DS-v02_02-EN.pdf?fileId=db3a304340155f3d01402f3b471926eb">IPD80R1K4CE</a> (800V, 2.3A @ 100°C, 1.4Ohm)</td></tr><tr><th  >APFC/Switching Controller</th><td  >FSP 6600 IC</td></tr><tr><th  >Topology</th><td  >Primary side: Active Clamp Reset Forward  Secondary side: Synchronous Rectification & DC-DC converters</td></tr><thead><tr><th  colspan="2"><strong>Secondary Side</strong></th></tr></thead><tr><th  >+12V MOSFETS</th><td  >4x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP029N06N-DS-v02_06-EN.pdf?fileId=db3a3043345a30bc013465bff03f62ec">IPP029N06N</a> (60V, 100A @ 100°C, 2.9mOhm)</td></tr><tr><th  >5V & 3.3V</th><td  >DC-DC Converters:4x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC042N03LS-DS-v02_01-en.pdf?fileId=db3a304319c6f18c0119e17c202f5ff7">BSC042N03LS</a> (30V, 59A @ 100°C, 4.2mOhm) PWM Controllers: ANPEC <a href="http://www.anpec.com.tw/ashx_prod_file.ashx?prod_id=717&file_path=20131210180212790.pdf&original_name=APW7159A.pdf">APW7159C</a></td></tr><tr><th  >Filtering Capacitors</th><td  >Electrolytics: 2x Nippon Chemi-Con (1-5,000 @ 105°C, <a href="http://www.chemi-con.com/upload/files/7/5/32389236352d6c56e8f45b.pdf">KZE</a>), 2x Rubycon (3-6,000 @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_yxg.pdf">YXG</a>), 1x Rubycon (4-10,000 @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_YXF.pdf">YXF</a>) Polymers: 15x United Chemi-Con</td></tr><tr><th  >Supervisor IC</th><td  >Weltrend <a href="https://datasheetspdf.com/pdf-file/623995/Weltrend/WT7527/1">WT7527</a> (OCP, OVP, UVP, SCP, PG)</td></tr><tr><th  >Fan Model</th><td  >Protechnic Electric MGA13512HF-A25 (135mm, 12V, 0.28A, Fluid Dynamic Bearing Fan)</td></tr><thead><tr><th  colspan="2"><strong>5VSB Circuit</strong></th></tr></thead><tr><th  >Rectifier</th><td  >1x CET <a href="http://web2.cet-mos.com/PDF/CET-MOS/TO-220-263-N/CET_CEP02N7G(F).PDF">CEF02N7G</a> FET (700V, 1.3A @ 100°C, 6.75Ohm)</td></tr><tr><th  >Standby PWM Controller</th><td  >FSP 6601 IC</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LPM3ogKyg8RJb32qknYQBR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2U2goPirEjeT6QCwfwTYYR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/u8bcSMFvU4uGLzX9h4Dfu3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M6TaqawJa9GfuPcpAFdkyP.jpg" alt="" /></figure></figure><p>On the primary side, an ACRF (Active Clamp Reset Forward) topology is used with a single FET being the main switcher, while another FET plays the role of the reset switch. On the secondary side, a synchronous rectification scheme is used by the +12V rail, and the minor rails are generated through a pair of DC-DC converters. All heatsinks are small, and there is a strange bridge connecting the APFC and the primary heat sinks, which is mostly for aesthetics rather than doing something of importance (e.g., balancing the operating temperatures of those heat sinks). Finally, the overall design is clear, so the airflow is increased, and on the secondary side, there aren't many electrolytic caps; on the contrary, FSP used many polymer caps to filter ripple.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/XXytSR3SDy6MPCuuN3yp66.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2KVre4punBdyutAAj5pbnK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BdeuRAsnRCciP6do4aqWP9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P5BxJD7nxvGVJbM9Wv5FZk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zLGfTnRmhFNXeMk6q4K9xT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8nXhWeALVTEir62qXRNsXU.jpg" alt="" /></figure></figure><p><span>The transient filter has all the necessary parts. There is also inrush current protection through an NTC thermistor, which is supported by a bypass relay.</span></p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TGmknk5ZjiQASJZ55NstyU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6FpEG7gwJJCWH3ddtR939F.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/92UGd4YGfrZbHegGfXjB2n.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AX8V8QhrZN82GFGbhMRYnd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FLXNA7U8Jc8RvFArWgCJLE.jpg" alt="" /></figure></figure><p>Only 390uF are enough for the bulk cap of a PSU that utilizes an ACRF topology, to offer a much longer than the required (17ms) by the ATX spec, hold-up time.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/K5ZepHbDsvT2qQXs7MPDMf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/g7A66gKKb8bYabMPnaehtZ.jpg" alt="" /></figure></figure><p>The photos above show the main switching and reset FETs of the ACRF topology.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7RZhVAwLe4tuwhxgyX7P5k.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UfGCqgu7GsutdDqqQspTrf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gZuQcP3zwJ72zWtWojah8V.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GWVdT6WsmD39FLcQCiR8FG.jpg" alt="" /></figure></figure><p>The +12V FETs are installed onto a small heat sink. Moreover, both VRMs are located on a small vertical board.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/46NxKBhE2te2868TkHxFYJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bUQVr9pV2ttPMeSumxVG7N.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ggNBRqP96jWkJfGXhshihV.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JvzXfbhv42JtbkJcCYQVM9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2hntMLvTs8ZM6TeUWSBtNi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ES3hNGtkJXvVxdGYD47KY3.jpg" alt="" /></figure></figure><p>The main PCB hosts a small number of electrolytic caps, along with several polymer ones. Many polymer caps are on the modular PCB.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/J3SSfZrEiGY6XrhEAJm6G3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nZcT6BfWbo2rKMq6vyEi8V.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ACnAimcxsA7iakiTbjEniQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cqjuyDGm7U6HpN9aFAPee5.jpg" alt="" /></figure></figure><p>This is the board that hosts the supervisor IC along with a number of operational amplifiers (op-amps), is depicted in the photos above. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xcSqqp48ahgJqiWZ3AwHn3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ceUdfjnCqETB34PW2vN3Lc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oEJ3SRGDJk8eBmRC73hDU9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SyLLN8w93X7ZUKipuDFJJ3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2fPutgWeiTqx9WbFFdNdE9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pUiDm8Eye9Fde5jViR6eAJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ici9LyuUFuyiWSPhcUX3zH.jpg" alt="" /></figure></figure><p>The soldering quality is good and the same goes for the build quality.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MFi9d26c28oedRq2j3wbFe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NvcHrzh3F4ntQeR62qNx5g.jpg" alt="" /></figure></figure><p>The fan is of good quality, but its speed profile is aggressive.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="load-regulation-hold-up-time-inrush-current-efficiency-and-noise">Load Regulation, Hold-Up Time, Inrush Current, Efficiency and Noise</h2><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="98fc87fd-1c2d-4817-906d-6f3943718663">            <a 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  </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-18">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FgC3YQ5RXzcJftAHneFt2G.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MEY3Vs5aKWTMASBBYYb8NB.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9SYpbT6nNh7s7PgF2Rwmtd.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tsWydAfLq9SmAchRYLYYyX.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DjDTZjYTC8vDqcBwSEjsvE.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GZDYeE8SXx2JLtpabHS7Lj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rREaUPoPuLj5NpENkha6Ti.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jYseg6cXUA2VDoR8MwK7De.png" alt="" /></figure></figure><p>The load regulation is tight on all rails. Unfortunately, we don't have data for the 750 G3 to make comparisons.</p><h2 id="hold-up-time-18">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KgrJp5RUTse8cnzjeT5P8f.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Fpki7C2zeTziLHxnmUvtq9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7oTheqezPktyPRWYziuA2Y.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SNfGptMN9f6e6is4Frf4Hj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZQMgVtCaJiAB6enqUDdwyH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s8jhxxKhF4ATuoXux6AdmT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yBEaoxmTPZqHBHx8ykN473.jpg" alt="" /></figure></figure><p>The hold-up time is long and the power ok signal is accurate.</p><h2 id="inrush-current-18">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/sY3QjuPPJK8JkHqnbfg3xA.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NR8caVGfUvzh9cw7uZpGh6.png" alt="" /></figure></figure><p>The inrush current is low with both voltage inputs.</p><h2 id="10-110-load-tests-17">10-110% Load Tests</h2><p>These tests reveal the G5’s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>Temps (In/Out)</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>4.384A</strong></td><td  ><strong>2.026A</strong></td><td  ><strong>1.993A</strong></td><td  ><strong>1.018A</strong></td><td  >74.581</td><td  rowspan="2">84.032%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >45.19°C</td><td  >0.966</td></tr><tr><td  >12.085V</td><td  >4.936V</td><td  >3.311V</td><td  >4.913V</td><td  >88.753</td><td  >40.29°C</td><td  >115.15V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>9.812A</strong></td><td  ><strong>3.042A</strong></td><td  ><strong>2.990A</strong></td><td  ><strong>1.223A</strong></td><td  >149.434</td><td  rowspan="2">88.737%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >46.38°C</td><td  >0.988</td></tr><tr><td  >12.080V</td><td  >4.934V</td><td  >3.309V</td><td  >4.908V</td><td  >168.401</td><td  >41.08°C</td><td  >115.15V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>15.648A</strong></td><td  ><strong>3.548A</strong></td><td  ><strong>3.477A</strong></td><td  ><strong>1.429A</strong></td><td  >224.971</td><td  rowspan="2">90.185%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >47.09°C</td><td  >0.993</td></tr><tr><td  >12.076V</td><td  >4.933V</td><td  >3.307V</td><td  >4.902V</td><td  >249.455</td><td  >41.49°C</td><td  >115.15V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>21.418A</strong></td><td  ><strong>4.060A</strong></td><td  ><strong>3.993A</strong></td><td  ><strong>1.636A</strong></td><td  >299.743</td><td  rowspan="2">90.356%</td><td  rowspan="2">1379</td><td  rowspan="2">37.5</td><td  >41.78°C</td><td  >0.997</td></tr><tr><td  >12.071V</td><td  >4.927V</td><td  >3.306V</td><td  >4.892V</td><td  >331.737</td><td  >48.33°C</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>26.864A</strong></td><td  ><strong>5.080A</strong></td><td  ><strong>4.994A</strong></td><td  ><strong>1.843A</strong></td><td  >374.686</td><td  rowspan="2">90.407%</td><td  rowspan="2">1481</td><td  rowspan="2">40.2</td><td  >42.03°C</td><td  >0.999</td></tr><tr><td  >12.067V</td><td  >4.924V</td><td  >3.304V</td><td  >4.886V</td><td  >414.442</td><td  >49.27°C</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>32.315A</strong></td><td  ><strong>6.097A</strong></td><td  ><strong>5.997A</strong></td><td  ><strong>2.049A</strong></td><td  >449.630</td><td  rowspan="2">90.102%</td><td  rowspan="2">1670</td><td  rowspan="2">42.6</td><td  >42.88°C</td><td  >0.999</td></tr><tr><td  >12.063V</td><td  >4.922V</td><td  >3.302V</td><td  >4.881V</td><td  >499.025</td><td  >50.75°C</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>7</strong></th><td  ><strong>37.800A</strong></td><td  ><strong>7.117A</strong></td><td  ><strong>7.001A</strong></td><td  ><strong>2.257A</strong></td><td  >524.955</td><td  rowspan="2">89.649%</td><td  rowspan="2">1773</td><td  rowspan="2">46.1</td><td  >43.23°C</td><td  >0.999</td></tr><tr><td  >12.059V</td><td  >4.920V</td><td  >3.300V</td><td  >4.876V</td><td  >585.570</td><td  >51.67°C</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>8</strong></th><td  ><strong>43.294A</strong></td><td  ><strong>8.137A</strong></td><td  ><strong>8.008A</strong></td><td  ><strong>2.465A</strong></td><td  >600.283</td><td  rowspan="2">89.053%</td><td  rowspan="2">1882</td><td  rowspan="2">46.2</td><td  >43.80°C</td><td  >0.999</td></tr><tr><td  >12.054V</td><td  >4.917V</td><td  >3.297V</td><td  >4.870V</td><td  >674.074</td><td  >52.45°C</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>9</strong></th><td  ><strong>49.150A</strong></td><td  ><strong>8.648A</strong></td><td  ><strong>8.496A</strong></td><td  ><strong>2.464A</strong></td><td  >674.816</td><td  rowspan="2">88.359%</td><td  rowspan="2">1930</td><td  rowspan="2">47.9</td><td  >44.66°C</td><td  >0.999</td></tr><tr><td  >12.051V</td><td  >4.915V</td><td  >3.296V</td><td  >4.871V</td><td  >763.723</td><td  >53.67°C</td><td  >115.17V</td></tr><tr><th  rowspan="2"><strong>10</strong></th><td  ><strong>54.808A</strong></td><td  ><strong>9.159A</strong></td><td  ><strong>9.017A</strong></td><td  ><strong>3.095A</strong></td><td  >750.044</td><td  rowspan="2">87.460%</td><td  rowspan="2">1935</td><td  rowspan="2">48.8</td><td  >45.89°C</td><td  >0.999</td></tr><tr><td  >12.048V</td><td  >4.914V</td><td  >3.294V</td><td  >4.849V</td><td  >857.587</td><td  >55.14°C</td><td  >115.18V</td></tr><tr><th  rowspan="2"><strong>11</strong></th><td  ><strong>61.074A</strong></td><td  ><strong>9.161A</strong></td><td  ><strong>9.020A</strong></td><td  ><strong>3.095A</strong></td><td  >825.282</td><td  rowspan="2">86.681%</td><td  rowspan="2">1937</td><td  rowspan="2">48.9</td><td  >46.67°C</td><td  >0.999</td></tr><tr><td  >12.044V</td><td  >4.913V</td><td  >3.292V</td><td  >4.848V</td><td  >952.094</td><td  >56.52°C</td><td  >115.17V</td></tr><tr><th  rowspan="2"><strong>CL1</strong></th><td  ><strong>0.155A</strong></td><td  ><strong>14.001A</strong></td><td  ><strong>14.001A</strong></td><td  ><strong>0.000A</strong></td><td  >117.073</td><td  rowspan="2">80.557%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >49.25°C</td><td  >0.984</td></tr><tr><td  >12.082V</td><td  >4.933V</td><td  >3.295V</td><td  >5.004V</td><td  >145.329</td><td  >41.76°C</td><td  >115.17V</td></tr><tr><th  rowspan="2"><strong>CL2</strong></th><td  ><strong>62.528A</strong></td><td  ><strong>1.004A</strong></td><td  ><strong>1.001A</strong></td><td  ><strong>1.000A</strong></td><td  >766.544</td><td  rowspan="2">87.976%</td><td  rowspan="2">1935</td><td  rowspan="2">48.8</td><td  >45.96°C</td><td  >0.999</td></tr><tr><td  >12.049V</td><td  >4.923V</td><td  >3.299V</td><td  >4.899V</td><td  >871.306</td><td  >55.53°C</td><td  >115.17V</td></tr></tbody></table></div><p>What makes an impression here is that during the CL1 test, the fan stops to spin, because of the low load, although the operating temperature is close to 42 degrees Celsius. Normally, the fan should spin at low RPM, to cool down the PSU's internals.</p><p>The 750 G5 easily meets the corresponding 80 PLUS Gold requirements, even at high ambient temperatures.</p><h2 id="20-80w-load-tests-18">20-80W Load Tests</h2><p>In the following tests, we measure the G5's efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.203A</strong></td><td  ><strong>0.508A</strong></td><td  ><strong>0.480A</strong></td><td  ><strong>0.203A</strong></td><td  >19.641</td><td  rowspan="2">67.551%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.881</td></tr><tr><td  >12.088V</td><td  >4.937V</td><td  >3.313V</td><td  >4.934V</td><td  >29.076</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>2.463A</strong></td><td  ><strong>1.012A</strong></td><td  ><strong>0.996A</strong></td><td  ><strong>0.406A</strong></td><td  >40.065</td><td  rowspan="2">78.287%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.935</td></tr><tr><td  >12.087V</td><td  >4.936V</td><td  >3.312V</td><td  >4.929V</td><td  >51.177</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>3.651A</strong></td><td  ><strong>1.520A</strong></td><td  ><strong>1.479A</strong></td><td  ><strong>0.609A</strong></td><td  >59.520</td><td  rowspan="2">82.740%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.955</td></tr><tr><td  >12.085V</td><td  >4.935V</td><td  >3.311V</td><td  >4.925V</td><td  >71.936</td><td  >115.15V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>4.908A</strong></td><td  ><strong>2.027A</strong></td><td  ><strong>1.992A</strong></td><td  ><strong>0.813A</strong></td><td  >79.911</td><td  rowspan="2">84.868%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.969</td></tr><tr><td  >12.085V</td><td  >4.935V</td><td  >3.311V</td><td  >4.920V</td><td  >94.159</td><td  >115.15V</td></tr></tbody></table></div><p>The efficiency with light loads is low.</p><h2 id="2-or-10w-load-test-18">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.069A</strong></td><td  ><strong>0.245A</strong></td><td  ><strong>0.243A</strong></td><td  ><strong>0.051A</strong></td><td  >15.187</td><td  rowspan="2">62.635%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.687</td></tr><tr><td  >12.087V</td><td  >4.932V</td><td  >3.313V</td><td  >4.933V</td><td  >24.247</td><td  >115.16V</td></tr></tbody></table></div><p>EVGA states that this unit is compatible with the ATX v2.52 specification, however from July 2020 the same spec will ask for at least 70% efficiency under such light load levels. </p><h2 id="efficiency-11">Efficiency</h2><p>Next, we plotted a chart showing the G5’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/F8SZs3T28z2T6rcFf8GBQV.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/psPweoG88LkMDsnFhn5edi.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SgTbov5Sq4m6xgEb4riXSg.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cLG3Xe533e7SoHEFMKgNyP.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JzFFB3PqEftsMv7dEo6WD8.png" alt="" /></figure></figure><p>With normal loads the unit's efficiency is satisfactory, but this is not the case with light and super-light loads.</p><h2 id="5vsb-efficiency-18">5VSB Efficiency</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.512</td><td  rowspan="2">67.546%</td><td  >0.074</td></tr><tr><td  >5.123V</td><td  >0.758</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.279</td><td  rowspan="2">76.040%</td><td  >0.153</td></tr><tr><td  >5.118V</td><td  >1.682</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.809</td><td  rowspan="2">78.093%</td><td  >0.273</td></tr><tr><td  >5.107V</td><td  >3.597</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >5.093</td><td  rowspan="2">77.260%</td><td  >0.376</td></tr><tr><td  >5.092V</td><td  >6.592</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.615</td><td  rowspan="2">78.887%</td><td  >0.429</td></tr><tr><td  >5.076V</td><td  >9.653</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >15.077</td><td  rowspan="2">76.580%</td><td  >0.503</td></tr><tr><td  >5.026V</td><td  >19.688</td><td  >115.13V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5iZ6dqGrgGqwvMveFrwXGZ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M4KdVyrLJoucoqNzQVv9i9.png" alt="" /></figure></figure><p>The 5VSB is has low efficiency, especially with 230V input.</p><h2 id="power-consumption-in-idle-and-standby-18">Power Consumption In Idle And Standby</h2><div ><table><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">12.087V</td><td  rowspan="2">4.928V</td><td  rowspan="2">3.313V</td><td  rowspan="2">4.929V</td><th  rowspan="2">8.148</th><td  >0.458</td></tr><tr><td  >115.2V</td></tr><tr><td  colspan="5" rowspan="2"><strong>Standby</strong></td><td  rowspan="2">0.172</td><td  >0.017</td></tr><tr><td  >115.2V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TuicqFXu7FmeawsY225Zee.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vS6cqpexkn7JJnEhTNpUn7.png" alt="" /></figure></figure><p>The vampire power exceeds 0.25W and this is why the 750 G5 cannot meet the requirements even of the lowest Cybenetics efficiency rating. It is a shame to see such high energy consumption at standby, in a modern PSU.</p><h2 id="fan-rpm-delta-temperature-and-output-noise-18">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The fan profile is super aggressive when the power supply is pushed hard, under high temperatures.</p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The passive operation lasts for quite long, but afterward, the fan quickly increases its speed, and with higher than 525W loads, the noise output exceeds 40 dB(A).</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="protection-features-18">Protection Features</h2><p><strong>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</strong></p><div ><table><tbody><tr><td  colspan="2"><strong>Protection Features</strong></td></tr><tr><td  ><strong>OCP</strong></td><td  >12V: 75.2A (120.32%), 12.036V 5V: 27A (112.5%), 4.931V 3.3V: 29A (120.83%), 3.291V 5VSB: 6.2A (206.67%), 4.911V</td></tr><tr><td  ><strong>OPP</strong></td><td  >1013.95W (135.19%)</td></tr><tr><td  ><strong>OTP</strong></td><td  >✓ (170°C @ 12V heat sink)</td></tr><tr><td  ><strong>SCP</strong></td><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><td  ><strong>PWR_OK</strong></td><td  >Proper Operation</td></tr><tr><td  ><strong>NLO</strong></td><td  >✓</td></tr><tr><td  ><strong>SIP</strong></td><td  >Surge: MOV Inrush: NTC Thermistor & Bypass Relay</td></tr></tbody></table></div><p>The OCP triggering points at +12V, 5V and 3.3V are reasonable set. The 5VSB rail's OCP is configured high, but there are no issues even at 6.2A. Finally, the over power protection is a bit higher than we would like to see; still, the platform looks to handle this fine.</p><h2 id="dc-power-sequencing-18">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pLhHuMoKY5z4ry69TGwh5S.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MrNBSGGbKicsATUerMDb56.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zt4MCuiHvekQgr82NXQ9CS.jpg" alt="" /></figure></figure><p>No problems here.</p><h2 id="cross-load-tests-18">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-18">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aRYH7jWMks7n4fshPs4joJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rvZ4YejWwUFXi5XQi6FZmc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KEqBNPtHqe4kQJx9DothFX.jpg" alt="" /></figure></figure><h2 id="efficiency-chart-13">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><h2 id="ripple-charts-13">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/PQkTaw9S6r5xropegsra4g.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aXwmbHpimcBryZPUfe4wES.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XD2xNCGUYW2CAtiM7KzXma.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vfppLXdtXJ3U7xHif2wUeS.jpg" alt="" /></figure></figure><h2 id="infrared-images-18">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Kz2cqStxdwKCKoKYxK5Duk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/h8t5N8F95PuyqrVAWdUVpH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X3nDJunAe5nMGNjcpF9QuN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KSBkEr9Fs4LKpG5FBFKVin.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DmgXV296WB8k3BB3q9SoaN.jpg" alt="" /></figure></figure><p>The temperatures at the internals are at normal levels, given the applied conditions, so we see no reason to use such an aggressive fan profile. Most likely FSP's engineers wanted to make sure that the PSU will outlive its extended warranty.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="advanced-transient-response-tests-18">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms-5">Advanced Transient Response at 20% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.078V</td><td  >11.949V</td><td  >1.07%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.927V</td><td  >4.809V</td><td  >2.39%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.309V</td><td  >3.141V</td><td  >5.08%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.902V</td><td  >4.857V</td><td  >0.92%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-5">Advanced Transient Response at 20% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.079V</td><td  >11.904V</td><td  >1.45%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.931V</td><td  >4.791V</td><td  >2.84%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.309V</td><td  ><strong>3.108V</strong></td><td  >6.07%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.907V</td><td  >4.836V</td><td  >1.45%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-18">Advanced Transient Response at 20% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.078V</td><td  >11.962V</td><td  >0.96%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.931V</td><td  >4.790V</td><td  >2.86%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.309V</td><td  ><strong>3.100V</strong></td><td  >6.32%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.906V</td><td  >4.806V</td><td  >2.04%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-5">Advanced Transient Response at 50% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.065V</td><td  >11.937V</td><td  >1.06%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.923V</td><td  >4.806V</td><td  >2.38%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.304V</td><td  ><strong>3.138V</strong></td><td  >5.02%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.887V</td><td  >4.836V</td><td  >1.04%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-5">Advanced Transient Response at 50% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.065V</td><td  >11.873V</td><td  >1.59%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.923V</td><td  >4.782V</td><td  >2.86%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.304V</td><td  ><strong>3.104V</strong></td><td  >6.05%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.886V</td><td  >4.788V</td><td  >2.01%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-18">Advanced Transient Response at 50% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.065V</td><td  >11.942V</td><td  >1.02%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.923V</td><td  >4.786V</td><td  >2.78%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.304V</td><td  ><strong>3.098V</strong></td><td  >6.23%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.884V</td><td  >4.786V</td><td  >2.01%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/59v5SMP6XR3CbQxnFoLMoQ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/v63Vayu5Gn8dr5x79WWc65.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/okpDtPkyuxLZ9wWDNpvoqE.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MEydqSjzGEC9eynRQQSvzc.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y9YtvNApbu55m5QBYPG7c3.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/azTAE7StzWBCMwtFwR9WyP.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4msaMqDqHSkyZdLF72PKEW.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WDi6VajJ8TjP2xLjFZRMT8.png" alt="" /></figure></figure><p>The 3.3V rail's performance is disappointing. The +12V rail should also stay within 1% in all tests.</p><h2 id="turn-on-transient-tests-18">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HB9tukzgcQSVxAdrYegreM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y8gx8x2VbvdgGiTzeohMri.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7Jj2UvuDJYDc9PVD7ipnXS.jpg" alt="" /></figure></figure><p>A small voltage overshoot at 5VSB, which is nothing to worry about.</p><h2 id="power-supply-timing-tests-18">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU's Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms.</p><div ><table><thead><tr><th  colspan="3"><strong>T1 (Power-on time) & T3 (PWR_OK delay)</strong></th></tr></thead><tbody><tr><th  ><strong>Load</strong></th><td  ><strong>T1</strong></td><td  ><strong>T3</strong></td></tr><tr><th  ><strong>20%</strong></th><td  >60ms</td><td  >294ms</td></tr><tr><th  ><strong>50%</strong></th><td  >68ms</td><td  >294ms</td></tr></tbody></table></div><p>The PWR_OK delay is our of the 100-150ms region, so the PSU does not support the alternative sleep mode, which will be a requirement by the ATX v2.52 from 2020.</p><h2 id="ripple-measurements-18">Ripple Measurements</h2><p>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><thead><tr><th  ><strong>Test</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>10% Load</strong></th><td  >12.4 mV</td><td  >5.6 mV</td><td  >12.0 mV</td><td  >7.1 mV</td><td  >Pass</td></tr><tr><th  ><strong>20% Load</strong></th><td  >10.0 mV</td><td  >6.0 mV</td><td  >12.2 mV</td><td  >7.1 mV</td><td  >Pass</td></tr><tr><th  ><strong>30% Load</strong></th><td  >10.4 mV</td><td  >6.8 mV</td><td  >12.9 mV</td><td  >7.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>40% Load</strong></th><td  >13.7 mV</td><td  >7.1 mV</td><td  >14.1 mV</td><td  >8.1 mV</td><td  >Pass</td></tr><tr><th  ><strong>50% Load</strong></th><td  >14.4 mV</td><td  >6.6 mV</td><td  >15.8 mV</td><td  >8.4 mV</td><td  >Pass</td></tr><tr><th  ><strong>60% Load</strong></th><td  >15.7 mV</td><td  >6.9 mV</td><td  >16.8 mV</td><td  >8.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>70% Load</strong></th><td  >18.0 mV</td><td  >7.9 mV</td><td  >19.4 mV</td><td  >9.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>80% Load</strong></th><td  >18.3 mV</td><td  >8.8 mV</td><td  >22.2 mV</td><td  >9.9 mV</td><td  >Pass</td></tr><tr><th  ><strong>90% Load</strong></th><td  >21.5 mV</td><td  >9.8 mV</td><td  >25.3 mV</td><td  >10.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>100% Load</strong></th><td  >25.4 mV</td><td  >13.8 mV</td><td  >35.2 mV</td><td  >18.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>110% Load</strong></th><td  >27.1 mV</td><td  >15.0 mV</td><td  >42.2 mV</td><td  >21.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 1</strong></th><td  >8.0 mV</td><td  >7.5 mV</td><td  >16.8 mV</td><td  >9.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 2</strong></th><td  >24.8 mV</td><td  >11.7 mV</td><td  >27.8 mV</td><td  >14.6 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3CpuZhXwCJ2VpWaGLXe5Vc.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QHKFkTMFxyCvG2MXJQkBi9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8zE5zYBCRqsJ6MGiEXYsJj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8q9VMRizqKh49Wr6hN9nqP.png" alt="" /></figure></figure><p>The ripple suppression is good on all rails but the 3.3V, where there is a large increase in the 100% and 110% load tests.</p><h2 id="ripple-at-full-load-18">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/N2Wxsf3ZiLSNk9Aib3vrC3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3RjwXiMicVgfYCiKLg4K7e.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CjSXRTmNDT4ENvXvy236tJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FxzZpsA2abkhu8tXJdp5g5.jpg" alt="" /></figure></figure><h2 id="ripple-at-110-load-17">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/272vDkZHJ7kfUkfKSaKTwD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZxqTkSEdcjfoB7bGbJfWgA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4CFgaaMiQXfmY7jsJuzxhL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wqS33gHmJtv9gWiFgPCfuJ.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-1-18">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4aPHuZinFoTrnWxhvpsam9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wrmMG6S2sDjn7hPpDcSUvS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eKQytn3hWBRavnBteZuRkf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hkHcksbyfJtnV6X3VgPb4T.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-2-13">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TeYkVshPZ3tw7BPMtYQpHX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8AmnWdkqyHNZWHjyt3ihBL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hDYx72igdfiP6UAY3EZ533.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vthFJf6SNwG4wzV8kyPUpM.jpg" alt="" /></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results-4">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1461px;"><p class="vanilla-image-block" style="padding-top:34.77%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1461" height="508" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>No spurs exceed the limits.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="performance-rating-18">Performance Rating</h2><p><a href="http://media.bestofmicro.com/D/W/850676/gallery/Result-34-32_Relative_Performance_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The overall performance is high, but not high enough to meet the <a href="https://www.tomshardware.com/reviews/corsair-rm750x-v2-psu,5585.html">Corsair RM750x</a> and the Super Flower Leadex III eye-to-eye.</p><h2 id="noise-rating-18">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/E/1/850681/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>This is a noisy power supply, so if you cannot stand loud PC parts, better stay away from it.</p><h2 id="efficiency-rating-18">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:633px;"><p class="vanilla-image-block" style="padding-top:80.73%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="633" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The overall efficiency is satisfactory.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="bottom-line-3">Bottom Line</h2><p>Unfortunately, we didn't have the chance to test the 750 G3 so that I couldn't make any comparison between this unit and the 750 G5. Nonetheless, I included in the comparison charts the Super Flower SF-750F14HG which uses the Leadex III platform (the 750 G3 is based on the Leadex II design), so you can have an idea on the performance difference between the 750 G3 and G5 models.</p><p>I don't approve the use of an ACRF topology (you will find more details on this topology by following <a href="https://www.tomshardware.com/reviews/be-quiet-pure-power-9-600w-power-supply,4516-3.html">this link</a>) in this category, from the moment the competition uses superior designs featuring half-bridge (Corsair <a href="https://www.tomshardware.com/reviews/corsair-rm750x-v2-psu,5585.html">RM750x</a> and <a href="https://www.tomshardware.com/reviews/corsair-rm750-power-supply,6172.html">RM750</a>) and full-bridge topologies <a href="https://www.tomshardware.com/reviews/seasonic-ssr-750fx-focus-plus-750-gold-psu,5206.html">(Seasonic Focus Plus Gold</a>). This topology is only suitable for budget PSUs, since it requires fewer components of lower cost and it lowers the capacity requirements of the bulk cap, which is among the most expensive parts in a power supply. The 750 G5 uses quality components, and its build quality is high, but its design doesn't allow it to effectively meet the competition in the 750W category. The transient response is one of the most important factors in a PSU's performance since it depicts its operation under real-life conditions where the loads are dynamic and not static. In such scenarios, the G5 cannot keep the +12V deviations within 1%, and the 3.3V rail's transient response is terrible. So although the 750 G5 has tight load regulation and good enough ripple suppression along with a long hold-up time, still it cannot meet the overall performance of any of the aforementioned models.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p><span>Super Flower's Leadex II platform, used in the all G3 models, is still a great performer but because of tariff considerations, that line is on the way out. If you want a high-performance PSU, you should try to get one of the G3 models that are still available in the stores. Till the G3 stock clears out, there is no point in preferring a G5 unit. Even when all G3s are gone, there are better options than the G5 (e.g., the Corsair RMx and Seasonic Focus Plus Gold models). Hopefully, EVGA will push FSP to use a different platform in an upcoming G line, or even better Super Flower will move some of its production out of China, and we will see again a Leadex-based G line.</span></p><p><em>Image Credits: Tom's Hardware</em></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><p><strong><em>Disclaimer:</em></strong><em> Aris Mpitziopoulos is Tom's Hardware's PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em>, and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom's Hardware. Neither Tom's Hardware nor its parent company, Future</em><span class="st"> PLC</span><em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Fractal Design Ion SFX Gold 650W Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/fractal-design-ion-sfx-gold-650w</link>
                                                                            <description>
                            <![CDATA[ Fractal Design's Ion SFX model with 650W max power offers high performance, highly flexible modular cables and compact dimensions at a reasonable price. ]]>
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                                                                        <pubDate>Wed, 23 Oct 2019 14:00:41 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:31:15 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <p>The Ion SFX 650G is an excellent SFX power supply, able to match the quality of the  <a href="https://www.tomshardware.com/reviews/corsair-sf600-power-supply,4537.html">Corsair SF60</a>0, which still leads the 600W SFX category with Cybenetics ETA-A and 80 PLUS Gold efficiency certifications. The added benefits of the Ion model over the similar capacity Corsair SFX model are the larger fan, which is driven by a rather aggressive speed profile though, the ten-year warranty, the highly flexible modular cables, and the ATX-to-SFX adapter bracket which is missing in the SF600 Gold unit&apos;s bundle. Besides Corsair&apos;s offering, worthy opponents of the Ion 650G are the <a href="https://www.tomshardware.com/reviews/evga-supernova-650-gm-sfx,5935.html">EVGA 650 GM</a> and the <a href="https://www.tomshardware.com/reviews/seasonic-focus-sgx-650w-sfx-l-psu,6045.html">Seasonic Focus SGX 650W</a>, which uses the same platform as the Ion unit.</p><p>Fractal Design made a strong come back with the <a href="https://www.tomshardware.com/reviews/fractal-design-ion-860p-power-supply,6239.html">Ion+ power supplies</a>, and it wants to expand to the SFX market as well, given the release of two SFX Ion models. Fractal&apos;s new SFX PSUs come in two flavors, with 500W and 650W capacities, and utilize a Seasonic platform.</p><p>Like the Ion+, the Ion SFX Gold units are fully modular and are also equipped with highly flexible cables, which Fractal calls UltraFlex. According to Fractal Design, those cables consist of ultra-high stand count wires and use special insulation that can bend and twist effortlessly, making the installation and cable-rooting processes a breeze.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rtMXAgVweRdWuK6rHtwA8W.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ykJWy5VQkTdG6ob7FS4nHW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oyyfVNJnXCzX6WAT8ZKkQW.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PazryrGPWYvAumRTj2bPLX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8qyGuXEXe6673VXnnxnRqX.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qDXUP64JxcSRPyfHvqSx9Y.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/w8ptu3655U2Q4itRasKjvY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tFkCfWhCDqEZGmNw78tX6Z.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/A6XARcfBwgHgcFUUDJZKXZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>It is not so common to see a ten-year warranty in an SFX power supply. So far, only Seasonic was brave enough to provide it, but since those Fractal Design PSUs are based on the same platform, they are covered by the same warranty period.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/nzxBGmBNeWfa3KqaruPRxg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DBGESc6GubptmDeDBrAQSh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DJfSNhQB2AhPtrUYrgyuch.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JUM58tPBDxP5yfshDdSWoh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mWbjv9wM6x3HUYcEPhwLvh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pRnzNdP5zarU9DtT5fCw5i.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="specifications-19">Specifications</h2><div ><table><tbody><tr><td  >      <p><strong>Manufacturer (OEM)</strong></p>    </td><td  >      <p>Seasonic</p>    </td></tr><tr><td  >      <p><strong>Max. DC Output</strong></p>    </td><td  >      <p>650W</p>    </td></tr><tr><td  >      <p><strong>Efficiency</strong></p>    </td><td  >      80 PLUS Gold, * ETA-A (88-91%)    </td></tr><tr><td  >      <p><strong>Noise</strong></p>    </td><td  >      * LAMBDA-S+ (35-40 dB[A])    </td></tr><tr><td  >      <p><strong>Modular</strong></p>    </td><td  >      ✓ (Fully)    </td></tr><tr><td  >      <p><strong>Intel C6/C7 Power State Support</strong></p>    </td><td  >      ✓    </td></tr><tr><td  >      <p><strong>Operating Temperature (Continuous Full Load)</strong></p>    </td><td  >0 - 40°C    </td></tr><tr><td  ><strong>Maximum 80% load</strong></td><td  >50°C</td></tr><tr><td  >      <p><strong>Over Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Under Voltage Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Power Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Current (+12V) Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Over Temperature Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Short Circuit Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Surge Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Inrush Current Protection</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Fan Failure Protection</strong></p>    </td><td  >      <p>✗</p>    </td></tr><tr><td  >      <p><strong>No Load Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Cooling</strong></p>    </td><td  >      <p>140mm FDB  Fan (S1201512HB)</p>    </td></tr><tr><td  >      <p><strong>Semi-Passive Operation</strong></p>    </td><td  >      <p>✓</p>    </td></tr><tr><td  >      <p><strong>Dimensions (W x H x D)</strong></p>    </td><td  >      <p>125 x 65 x 125mm</p>    </td></tr><tr><td  >      <p><strong>Weight</strong></p>    </td><td  >      <p>1.15 kg (2.54 lb)</p>    </td></tr><tr><td  >      <p><strong>Form Factor</strong></p>    </td><td  >      <p>SFX, EPS 2.92</p>    </td></tr><tr><td  >      <p><strong>Warranty</strong></p>    </td><td  >      <p>10 Years</p>    </td></tr></tbody></table></div><p>* Not certified yet by Cybenetics. According to our measurements, the PSU falls into those efficiency and noise categories. </p><h2 id="power-specifications-19">Power Specifications</h2><div ><table><tbody><tr><td class="firstcol " ><strong>Rail</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5V</strong></td><td  ><strong>12V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>-12V</strong></td></tr><tr><td class="firstcol " >Max. Power - Amps</td><td  >20</td><td  >20</td><td  >54</td><td  >3</td><td  >0.3</td></tr><tr><td class="firstcol " >Max. Power - Watts</td><td  >100</td><td  >648</td><td  >15</td><td  >3.6</td><td  >-</td></tr><tr><td class="firstcol " >Total Max. Power (W)</td><td  >650</td><td  >650</td><td  >650</td><td  >650</td><td  >650</td></tr></tbody></table></div><h2 id="cables-and-connectors-5">Cables and Connectors</h2><div ><table><tbody><tr><td class="firstcol " ><strong>Modular Cables</strong></td><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><td class="firstcol " >ATX connector 20+4 pin (350mm)</td><td  >1</td><td  >1</td><td  >18-22AWG</td><td  >No</td></tr><tr><td class="firstcol " >4+4 pin EPS12V (400mm)</td><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><td class="firstcol " >6+2 pin PCIe (400mm+100mm)</td><td  >2</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><td class="firstcol " >SATA (310mm+200mm+200mm+100mm)</td><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><td class="firstcol " >4-pin Molex (310mm+200mm)</td><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><td class="firstcol " >AC Power Cord (1380mm) -  C13 coupler</td><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>Since this is an SFX unit that will be installed into a compact chassis, there is no need for long cables. Long cables can create trouble in small enclosures. Despite the short overall cable length the distance between the peripheral connectors is long, to help users avoid compatibility problems during the cable routing and management processes.</p><p>There is only a single EPS connector, which usually is the case for the majority of SFX PSUs. Only the F<a href="https://www.tomshardware.com/reviews/fsp-dagger-pro-650w-power-supply,6218.html">SP Dagger Pro 650W</a> comes with two EPS, which are on the same cable and use 18AWG gauges, so you cannot fully utilize them. If you need two proper EPS connectors from an SFX power supply, the best option right now is the <a href="https://www.tomshardware.com/reviews/corsair-sf750-psu,5979.html">Corsair SF750</a>.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wqxtSYFcSyGdGp6WUZkAs3.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YKbsXffHEjZ9iHZtUzUGM4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qreYjtr5g9cMTsq7mFJ9T4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UNixxrVgwSGxn3cYbcHqY4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ednuz6SAwXCLnbSGtKwse4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RvmMrAxbzfad6ECW4Dd7n4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/odMW8ox7YKMjN9VhW2WKs4.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="component-analysis-19">Component Analysis</h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, <strong>allowing you to better understand the components we&apos;re about to discuss.</strong></p><div ><table><tbody><tr><td class="firstcol " ><strong>General Data</strong></td><td  >-</td></tr><tr><td class="firstcol " >Manufacturer (OEM)</td><td  >Seasonic</td></tr><tr><td class="firstcol " >PCB Type</td><td  >Double Sided</td></tr><tr><td class="firstcol " ><strong>Primary Side</strong></td><td  >-</td></tr><tr><td class="firstcol " >Transient Filter</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td></tr><tr><td class="firstcol " >Inrush Protection</td><td  >NTC Thermistor & Relay</td></tr><tr><td class="firstcol " >Bridge Rectifier(s)</td><td  >1x</td></tr><tr><td class="firstcol " >APFC MOSFETS</td><td  >2x Champion GPT18N50D (500V, 18A, 0.27Ohm)</td></tr><tr><td class="firstcol " >APFC Boost Diode</td><td  >1x STTH8S06(600V, 8A)</td></tr><tr><td class="firstcol " >Hold-up Cap(s)</td><td  >1x Nichicon (400V, 470uF, 2,000h @ 105°C, GG)</td></tr><tr><td class="firstcol " >Main Switchers</td><td  >2x Infineon IPP50R190CE (550V, 15.7A @ 100°C, 0.19Ohm)</td></tr><tr><td class="firstcol " >APFC Controller</td><td  >Champion CM6500UNX</td></tr><tr><td class="firstcol " >Resonant Controllers</td><td  >Champion CM6901T6</td></tr><tr><td class="firstcol " >Topology</td><td  >Primary side: Half-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><tr><td class="firstcol " ><strong>Secondary Side</strong></td><td  >-</td></tr><tr><td class="firstcol " >+12V MOSFETS</td><td  >4x Nexperia PSMN1R8-40YLC(40V, 100A @ 100°C, 3.25mOhm @ 150°C)</td></tr><tr><td class="firstcol " >5V & 3.3V</td><td  >DC-DC Converters</td></tr><tr><td class="firstcol " >Filtering Capacitors</td><td  >Electrolytics: 9x Nippon Chemi-Con (4-10,000h @ 105°C, KY), 3x Nippon Chemi-Con (105°C, W), 1x Nichicon (4-10,000h @ 105°C, HE) Polymers: 4x United Chemi-Con, 20x FPCAP</td></tr><tr><td class="firstcol " >Supervisor IC</td><td  >Weltrend (OCP, OVP, UVP, SCP, PG)</td></tr><tr><td class="firstcol " >Fan Model</td><td  >Globe Fan S1201512HB (120mm, 12V, 0.45A, Fluid Dynamic Bearing Fan)</td></tr><tr><td class="firstcol " ><strong>5VSB Circuit</strong></td><td  >-</td></tr><tr><td class="firstcol " >Rectifier</td><td  >1x MCC SBR (45V, 10A @ 90°C)</td></tr><tr><td class="firstcol " >Standby PWM Controller</td><td  >Excelliance MOS Corp EM8569</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UsbzNYfmtLi9gHmpehsf6F.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zsGPSHGAskAeQDXQuU8eKF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nakkYDgpMn32vXkKdicYbF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TfjLdc3XiM4nbLeKB68XzF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>As we already mentioned, this unit uses the same platform with the <a href="https://www.tomshardware.com/reviews/seasonic-focus-sgx-650w-sfx-l-psu,6045.html">Seasonic Focus SGX 650W</a>, which we reviewed a while ago. This is a new Seasonic design featuring a half-bridge topology on the primary side, which is enhanced by an LLC resonant converter for restricted switching losses. On the secondary side, a synchronous rectification scheme is utilized for the +12V rail, while a couple of DC-DC converters generates the minor rails.</p><p>The quality of the parts is top-notch. All filtering caps are provided by Japanese manufacturers  Chemi-Con, Nichicon, and FPCAP), and besides electrolytic caps, a large number of polymers is also used. Lastly, the cooling fan measures 120mm; it is provided by Globe Fan and uses a fluid dynamic bearing with a long lifetime.</p><p><br></p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/dG9JyAz7YfRYb6Yj72DpgP.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vaUNcoXpxnt9WXWdb2KGFQ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/98kDRT4n7QSyxorQZfdYWQ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/y63pahSiaeZ6qJvvuRyhoQ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tVhpccQ7Rm89xbM7FzNF7R.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RdzCGcVcH4FgfFkm5Lk6NR.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Although the transient filter is complete, from components, still we measured some high EMI peaks at low frequencies.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/guFC5Hc9WdGoUUr5owsDjY.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nC4hcQg8HpNXTiSocTW2EZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eFvMNATuaS8UXdGpPtaCPZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oCzCt5PyFPSHXuoy7QxHnZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4Qp9wEj5Br9fdqj2xgDXwZ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The single bridge rectifier is bolted on a heat sink. Afterward, we meet the APFC converter, which uses two Champion FETs and a single boost diode. The bulk cap is by Nichicon and has enough capacity to provide a pretty long hold-up time. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FgRFM5qDweaLY732Bcxrnh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xzKBBu9qoodsmFbebcxRwh.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tNTNZgHZbLUXFwyup7QhYi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fwzjfytM2XVEiWKFqrMRhi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The main switching FETs are two Infineon IPP50R190CE.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FgjdGUQsknoCPnConQREo6.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FqNL3qJcPPeC9qJQ3wMA67.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4vcDmGPK3VE3XUgYjAqyH7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hv5dZK9CtFc6w26MMWWZS7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/namGKi8kfQo6iuWGkeuYZ7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The +12V FETs, four Nexperia PSMN1R8-40YLC, are installed on the solder-side of the PCB. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HTmg6HRD7EKBiL42yEGZjE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/akc8TsybDqtt2cCGup7ErE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WxnjiBQso5ZNRcTsDBMn6F.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>Several polymer caps are at the front of the modular PCB, providing an extra ripple filtering layer. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/nafunnZetQiUeR8DhgbAWL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SaWNkcxP5iYJfdQSNJFtqL.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/f6654A9DepQxbM2T98yo9M.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8FEkZD2PMtr4jThzvRTsKM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mULHHoNiwh3AUPdGUUk3WM.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The soldering quality is good, with all joints having the proper amount of solder, and there are no long component leads. </p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/RDz6EqhBEpCoWbcDgu823Q.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/x43oiCdSR84X8YrYAdxHCQ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>It is tough to install a 120mm diameter fan in such a compact chassis, but it helps the most in keeping the noise output low, while at the same time, it offers adequate airflow. Unfortunately, in this PSU, the fan profile is aggressive, so the overall noise output is quite high. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="0740bc0c-465a-42db-9956-e8286759d1e0">            <a href="https://www.newegg.com/evga-supernova-650-gm-123-gm-0650-y1-650w/p/N82E16817438149" data-model-name="EVGA SuperNOVA 650 GM" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/FdrJfshtzMZuHjjBNJmF6e.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">EVGA SuperNOVA 650 GM</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="91bed711-29e1-4da4-9bd1-4cd3c167868d">            <a href="https://www.newegg.com/seasonic-focus-sgx-ssr-650sgx-650w/p/N82E16817151224?Description=Seasonic%20SFX&cm_re=Seasonic_SFX-_-17-151-224-_-Product" data-model-name="Seasonic FOCUS SGX-650" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/7F3mVoStoDikAiBBAJDPsn.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Seasonic FOCUS SGX-650</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="0b46bca5-51d9-4311-857f-e49e249b030f">            <a href="https://www.newegg.com/corsair-sf-series-sf600-600w/p/N82E16817139155?Description=Corsair%20SF600&cm_re=Corsair_SF600-_-17-139-155-_-Product" data-model-name="Corsair SF600 Gold" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/x8jzHSVy4CPNdsTRHhZtMA.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">CORSAIR SF Series 600W</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-19">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails&apos; voltage values recorded between a range of 40W up to the PSU&apos;s maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/diHDb3ER8heuC7xr8FvePg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jg39QXC7739JWhUfhwFkSg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZgQvnjtP8MfBschzj7QTVg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YnsbgJ9DsdoSH6N3LyBGZg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rjGNKmKbJN8aD9PSt7v6cg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KMKmS5ZVHETi79hbHycteg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/spwGDf8bwHJXvkwqWBLBig.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nPYmEWhDHXiruZmhq5Cjmg.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The load regulation is tight on all rails. </p><h2 id="hold-up-time-19">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/umeoBw7EbtEaXZum9qG8fn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xC4E3SJXD7QemfyrAtdpon.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NZg3tPpWi4kxABpGAnjDun.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xqSR3qPudRuMR2KcobNA6o.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eYEfsHzsB8pdwS4vJYzeMo.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uNUKxz4dD4rnmhDNCU894.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r7PUTmXPHR7c5UTLXWE2X.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The hold-up time is much longer than the required (17ms), and the power ok signal is accurate. </p><h2 id="inrush-current-19">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/u5vdcyDmyLED7ftLFQGRe6.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xwMo3Yi3u27bsEABmnRoi6.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The inrush current is high, with 230V input. </p><h2 id="10-110-load-tests-18">10-110% Load Tests</h2><p>These tests reveal the Ion&apos;s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>Temps (In/Out)</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  >1</td><td  >3.634A</td><td  >1.971A</td><td  >1.972A</td><td  >0.977A</td><td  >64.936</td><td  >84.89%</td><td  >876</td><td  >20</td><td  >40.09 C</td><td  >0.927</td></tr><tr><td  >.</td><td  >11.920V</td><td  >5.077V</td><td  >3.351V</td><td  >5.121V</td><td  >76.491</td><td  >.</td><td  >.</td><td  >.</td><td  >44.57 C</td><td  >115.12V</td></tr><tr><td  >2</td><td  >8.268A</td><td  >2.959A</td><td  >2.961A</td><td  >1.174A</td><td  >129.453</td><td  >88.31%</td><td  >896</td><td  >20.8</td><td  >40.43 C</td><td  >0.952</td></tr><tr><td  >.</td><td  >11.918V</td><td  >5.071V</td><td  >3.346V</td><td  >5.113V</td><td  >146.59</td><td  >.</td><td  >.</td><td  >.</td><td  >45.25 C</td><td  >115.12V</td></tr><tr><td  >3</td><td  >13.306A</td><td  >3.454A</td><td  >3.441A</td><td  >1.371A</td><td  >194.553</td><td  >89.18%</td><td  >907</td><td  >21.5</td><td  >41.06 C</td><td  >0.966</td></tr><tr><td  >.</td><td  >11.915V</td><td  >5.069V</td><td  >3.343V</td><td  >5.105V</td><td  >218.164</td><td  >.</td><td  >.</td><td  >.</td><td  >46.20 C</td><td  >115.12V</td></tr><tr><td  >4</td><td  >18.341A</td><td  >3.949A</td><td  >3.951A</td><td  >1.570A</td><td  >259.748</td><td  >89.51%</td><td  >1048</td><td  >26.4</td><td  >41.22 C</td><td  >0.973</td></tr><tr><td  >.</td><td  >11.915V</td><td  >5.068V</td><td  >3.341V</td><td  >5.097V</td><td  >290.196</td><td  >.</td><td  >.</td><td  >.</td><td  >47.03 C</td><td  >115.12V</td></tr><tr><td  >5</td><td  >23.048A</td><td  >4.937A</td><td  >4.940A</td><td  >1.769A</td><td  >325.093</td><td  >89.05%</td><td  >1551</td><td  >37.1</td><td  >42.81 C</td><td  >0.979</td></tr><tr><td  >.</td><td  >11.913V</td><td  >5.067V</td><td  >3.341V</td><td  >5.089V</td><td  >365.052</td><td  >.</td><td  >.</td><td  >.</td><td  >49.14 C</td><td  >115.12V</td></tr><tr><td  >6</td><td  >27.691A</td><td  >5.926A</td><td  >5.931A</td><td  >1.969A</td><td  >389.594</td><td  >88.72%</td><td  >1704</td><td  >40.5</td><td  >42.92 C</td><td  >0.981</td></tr><tr><td  >.</td><td  >11.909V</td><td  >5.065V</td><td  >3.339V</td><td  >5.080V</td><td  >439.149</td><td  >.</td><td  >.</td><td  >.</td><td  >50.01 C</td><td  >115.12V</td></tr><tr><td  >7</td><td  >32.398A</td><td  >6.913A</td><td  >6.923A</td><td  >2.169A</td><td  >454.888</td><td  >88.14%</td><td  >1980</td><td  >43.6</td><td  >43.56 C</td><td  >0.982</td></tr><tr><td  >.</td><td  >11.907V</td><td  >5.065V</td><td  >3.338V</td><td  >5.072V</td><td  >516.089</td><td  >.</td><td  >.</td><td  >.</td><td  >51.24 C</td><td  >115.12V</td></tr><tr><td  >8</td><td  >37.106A</td><td  >7.902A</td><td  >7.912A</td><td  >2.371A</td><td  >520.206</td><td  >87.47%</td><td  >2044</td><td  >45.8</td><td  >44.19 C</td><td  >0.984</td></tr><tr><td  >.</td><td  >11.906V</td><td  >5.064V</td><td  >3.337V</td><td  >5.063V</td><td  >594.759</td><td  >.</td><td  >.</td><td  >.</td><td  >52.45 C</td><td  >115.12V</td></tr><tr><td  >9</td><td  >42.213A</td><td  >8.397A</td><td  >8.394A</td><td  >2.373A</td><td  >585.108</td><td  >86.94%</td><td  >2049</td><td  >45.9</td><td  >44.27 C</td><td  >0.986</td></tr><tr><td  >.</td><td  >11.906V</td><td  >5.063V</td><td  >3.336V</td><td  >5.058V</td><td  >673.021</td><td  >.</td><td  >.</td><td  >.</td><td  >53.19 C</td><td  >115.11V</td></tr><tr><td  >10</td><td  >47.058A</td><td  >8.891A</td><td  >8.906A</td><td  >2.975A</td><td  >649.946</td><td  >86.19%</td><td  >2056</td><td  >46.2</td><td  >45.71 C</td><td  >0.988</td></tr><tr><td  >.</td><td  >11.905V</td><td  >5.063V</td><td  >3.335V</td><td  >5.043V</td><td  >754.113</td><td  >.</td><td  >.</td><td  >.</td><td  >54.90 C</td><td  >115.12V</td></tr><tr><td  >11</td><td  >52.503A</td><td  >8.891A</td><td  >8.904A</td><td  >2.978A</td><td  >714.774</td><td  >85.47%</td><td  >2055</td><td  >46.2</td><td  >46.54 C</td><td  >0.99</td></tr><tr><td  >.</td><td  >11.905V</td><td  >5.063V</td><td  >3.336V</td><td  >5.039V</td><td  >836.325</td><td  >.</td><td  >.</td><td  >.</td><td  >56.25 C</td><td  >115.11V</td></tr><tr><td  >CL1</td><td  >0.148A</td><td  >12.003A</td><td  >12.000A</td><td  >0.000A</td><td  >102.687</td><td  >83.00%</td><td  >1457</td><td  >35.5</td><td  >42.96 C</td><td  >0.946</td></tr><tr><td  >.</td><td  >11.927V</td><td  >5.066V</td><td  >3.343V</td><td  >5.125V</td><td  >123.727</td><td  >.</td><td  >.</td><td  >.</td><td  >49.60 C</td><td  >115.13V</td></tr><tr><td  >CL2</td><td  >54.021A</td><td  >1.003A</td><td  >1.001A</td><td  >1.000A</td><td  >656.529</td><td  >86.85%</td><td  >2058</td><td  >46.2</td><td  >45.51 C</td><td  >0.988</td></tr><tr><td  >.</td><td  >11.903V</td><td  >5.073V</td><td  >3.343V</td><td  >5.082V</td><td  >755.914</td><td  >.</td><td  >.</td><td  >.</td><td  >54.84 C</td><td  >115.12V</td></tr></tbody></table></div><p>Up to the 40% load test, the fan spins at average speeds, given the load and temperature conditions, but afterward, its speed skyrockets, affecting notably the noise output. </p><p>The APFC converter needs a slight tuning since the power factor readings are not that high even under high loads. </p><h2 id="20-80w-load-tests-19">20-80W Load Tests</h2><p>In the following tests, we measure the Ion&apos;s efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><th  ><strong>1</strong></th><td  >1.222A</td><td  >0.493A</td><td  >0.476A</td><td  >0.195A</td><td  >19.665</td><td  >72.83%</td><td  >0</td><td  > less than 6.0</td><td  >0.815</td></tr><tr><th  >.</th><td  >11.917V</td><td  >5.082V</td><td  >3.354V</td><td  >5.136V</td><td  >27.001</td><td  >.</td><td  >.</td><td  >.</td><td  >115.13V</td></tr><tr><th  ><strong>2</strong></th><td  >2.496A</td><td  >0.983A</td><td  >0.985A</td><td  >0.390A</td><td  >40.042</td><td  >81.89%</td><td  >0</td><td  > less than 6.0</td><td  >0.896</td></tr><tr><th  >.</th><td  >11.917V</td><td  >5.080V</td><td  >3.352V</td><td  >5.132V</td><td  >48.898</td><td  >.</td><td  >.</td><td  >.</td><td  >115.13V</td></tr><tr><th  ><strong>3</strong></th><td  >3.705A</td><td  >1.478A</td><td  >1.461A</td><td  >0.585A</td><td  >59.553</td><td  >85.55%</td><td  >0</td><td  > less than 6.0</td><td  >0.921</td></tr><tr><th  >.</th><td  >11.918V</td><td  >5.077V</td><td  >3.350V</td><td  >5.127V</td><td  >69.609</td><td  >.</td><td  >.</td><td  >.</td><td  >115.13V</td></tr><tr><th  ><strong>4</strong></th><td  >4.979A</td><td  >1.970A</td><td  >1.970A</td><td  >0.781A</td><td  >79.942</td><td  >86.77%</td><td  >0</td><td  > less than 6.0</td><td  >0.932</td></tr><tr><th  >.</th><td  >11.919V</td><td  >5.076V</td><td  >3.349V</td><td  >5.123V</td><td  >92.131</td><td  >.</td><td  >.</td><td  >.</td><td  >115.13V</td></tr></tbody></table></div><p>Under light loads there is no need for the PSU&apos;s fan to spin.</p><h2 id="2-or-10w-load-test-19">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>Fan Speed (RPM)</strong></td><td  ><strong>PSU Noise (dB[A])</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><th  >1</th><td  >0.932A</td><td  >0.205A</td><td  >0.203A</td><td  >0.051A</td><td  >13.069</td><td  >65.62%</td><td  >0</td><td  >less than 6.0</td><td  >0.743</td></tr><tr><th  >.</th><td  >11.899V</td><td  >5.070V</td><td  >3.343V</td><td  >5.135V</td><td  >19.917</td><td  >.</td><td  >.</td><td  >.</td><td  >115.13V</td></tr></tbody></table></div><h2 id="efficiency-12">Efficiency</h2><p>The efficiency with light loads exceeds 65%, so it is quite high. Nonetheless, the ATX spec will require higher than 70% in 2020. </p><p>Next, we plotted a chart showing the Ion’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zXx77iDXYHhJ94uw9FeR8U.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q6P8TqTkaqTov5uMmtncBU.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/a3uzCNhbca2RS9sq7gHGFU.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nnSb4VPRobLhFtNjiNQZKU.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nkzTWMUJrUEaNmb8nKEYLn.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The efficiency with normal loads is low, compared to the competing offerings. With light and super-light loads, the Ion model takes its revenge, though.  </p><h2 id="5vsb-efficiency-19">5VSB Efficiency</h2><div ><table><tbody><tr><td  ><strong>Test #</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>DC/AC (Watts)</strong></td><td  ><strong>Efficiency</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><th  >1</th><td  >0.100A</td><td  >0.514</td><td  >73.64%</td><td  >0.11</td></tr><tr><th  >.</th><td  >5.135V</td><td  >0.698</td><td  >.</td><td  >115.12V</td></tr><tr><th  >2</th><td  >0.250A</td><td  >1.284</td><td  >76.25%</td><td  >0.223</td></tr><tr><th  >.</th><td  >5.133V</td><td  >1.684</td><td  >.</td><td  >115.12V</td></tr><tr><th  >3</th><td  >0.550A</td><td  >2.821</td><td  >77.18%</td><td  >0.338</td></tr><tr><th  >.</th><td  >5.128V</td><td  >3.655</td><td  >.</td><td  >115.12V</td></tr><tr><th  >4</th><td  >1.000A</td><td  >5.122</td><td  >77.28%</td><td  >0.407</td></tr><tr><th  >.</th><td  >5.122V</td><td  >6.628</td><td  >.</td><td  >115.12V</td></tr><tr><th  >5</th><td  >1.500A</td><td  >7.672</td><td  >77.06%</td><td  >0.442</td></tr><tr><th  >.</th><td  >5.114V</td><td  >9.956</td><td  >.</td><td  >115.12V</td></tr><tr><th  >6</th><td  >3.000A</td><td  >15.265</td><td  >75.99%</td><td  >0.487</td></tr><tr><th  >.</th><td  >5.088V</td><td  >20.088</td><td  >.</td><td  >115.12V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xeYPpSg84DUoRkCyAsXpSi.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9W4apHVJAK7zgdjaB6PGXi.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 5VSB rail has low efficiency. </p><h2 id="power-consumption-in-idle-and-standby-19">Power Consumption In Idle And Standby</h2><div ><table><tbody><tr><td  ><strong>Mode</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  >5VSB</td><td  ><strong>Watts</strong></td><td  ><strong>PF/AC Volts</strong></td></tr><tr><td  ><strong>Idle</strong></td><td  >11.899V</td><td  >5.074V</td><td  >3.347V</td><td  >5.139V</td><td  >5.915</td><td  >0.456</td></tr><tr><td  >.</td><td  >.</td><td  >.</td><td  >.</td><td  >.</td><td  >.</td><td  >115.1V</td></tr><tr><td  ><strong>Standby</strong></td><td  >.</td><td  >.</td><td  >.</td><td  >.</td><td  >.</td><td  >0.007</td></tr><tr><td  >.</td><td  >.</td><td  >.</td><td  >.</td><td  >.</td><td  >.</td><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KbgFcVo2P3CiJnWH5xFREk.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yaTPMEcVa6kU2LAHHN3uHk.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The vampire is low, something that helps the 5VSB rail&apos;s efficiency under light load. </p><h2 id="fan-rpm-delta-temperature-and-output-noise-19">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="Result 23 -32_Fan_RPM_Delta_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/gAS9o5WfzpbRCPyXGBSrXh.png" mos="https://cdn.mos.cms.futurecdn.net/jV3rLySy8P8WEjxn6usdaG.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/gAS9o5WfzpbRCPyXGBSrXh.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="Result 24 -33_Fan_RPM_Noise_Graph.png" alt="" src="https://cdn.mos.cms.futurecdn.net/8xqDnRYeQWhEJKW4EKx5a6.png" mos="https://cdn.mos.cms.futurecdn.net/BnXWMNH4sATpJKGM5D9gVA.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/8xqDnRYeQWhEJKW4EKx5a6.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The fan profile gets aggressive, under high operating temperatures.</p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/6xffqMCtjKoynCfnvXBPUL.jpg" mos="https://cdn.mos.cms.futurecdn.net/ExE369iCLPAwizJgTMmeTU.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/6xffqMCtjKoynCfnvXBPUL.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="CL_fan_RPM.JPG" alt="" src="https://cdn.mos.cms.futurecdn.net/QfraTe7mX8ENkbtuwW2QhS.jpg" mos="https://cdn.mos.cms.futurecdn.net/aWRLi4BGdiMWausuvcFmPG.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/QfraTe7mX8ENkbtuwW2QhS.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>Even under normal operating temperatures, the fan profile gets aggressive with higher than 340W loads. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="protection-features-19">Protection Features</h2><p>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</p><div ><table><tbody><tr><td  colspan="2"><strong>Protection Features</strong></td></tr><tr><td  ><strong>OCP</strong></td><td  >12V: 75.2A (120.32%), 12.036V 5V: 27A (112.5%), 4.931V 3.3V: 29A (120.83%), 3.291V 5VSB: 6.2A (206.67%), 4.911V</td></tr><tr><td  ><strong>OPP</strong></td><td  >1013.95W (135.19%)</td></tr><tr><td  ><strong>OTP</strong></td><td  >✓ (170°C @ 12V heat sink)</td></tr><tr><td  ><strong>SCP</strong></td><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><td  ><strong>PWR_OK</strong></td><td  >Proper Operation</td></tr><tr><td  ><strong>NLO</strong></td><td  >✓</td></tr><tr><td  ><strong>SIP</strong></td><td  >Surge: MOV Inrush: NTC Thermistor & Bypass Relay</td></tr></tbody></table></div><p>The overcurrent protection&apos;s triggering points are set quite high at +12V, 5V, and 5VSB. Overpower protection is also set high. Normally it should be within 130%.</p><h2 id="dc-power-sequencing-19">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ku47djGRbAVp6SyTrxKrUg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ETjeYeRX7h7bTA6gLTLmYg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KJcng3dNr3K428Ainh5ecg.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The 3.3V rail&apos;s voltage level is always lower than the other two.</p><h2 id="cross-load-tests-19">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-19">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fLWuhVkWbvCSysFngoCwbJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mAywLg2k2Hfj3DkxdN3mnJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/znHDsshLDyKkeX4QFW6grJ.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="efficiency-chart-14">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" mos="https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/FTvreyxL2Sf7WaGMZG8kFe.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><h2 id="ripple-charts-14">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JdHGNXvkeE2CdrX8qcBb6E.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pXV6JXLFou4adda7ALFmBE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tuUkMkdP3aD3gRiGJqh5GE.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kroW4BsL7t7y3UX64uj7ME.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="infrared-images-19">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zgvUtQShzzTtz9kk2hm7ci.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/73Ay2vdLHsXzsswT4gmLki.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B2E7hUQhUvuawS29wrRZsi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JUUfrgWqethM3gq7Szdbzi.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uK5n8aySfESqRDFkGkYX7j.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NXybd8GgSLLwR3GFqqJfDj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JXKk49fgxDJbEXAXA2MsJj.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The temperatures are low, so the fan profile could be less aggressive. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="advanced-transient-response-tests-19">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html#p8">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms-6">Advanced Transient Response at 20% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >11.915V</td><td  >11.772V</td><td  >1.20%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.069V</td><td  >4.994V</td><td  >1.48%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.343V</td><td  >3.246V</td><td  >2.90%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.111V</td><td  >5.069V</td><td  >0.82%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-6">Advanced Transient Response at 20% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >11.915V</td><td  >11.717V</td><td  >1.66%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.072V</td><td  >4.981V</td><td  >1.79%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.345V</td><td  >3.227V</td><td  >3.53%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.111V</td><td  >5.071V</td><td  >0.78%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-19">Advanced Transient Response at 20% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >11.916V</td><td  >11.711V</td><td  >1.72%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.072V</td><td  >4.980V</td><td  >1.81%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.346V</td><td  >3.227V</td><td  >3.56%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.112V</td><td  >5.080V</td><td  >0.63%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-6">Advanced Transient Response at 50% – 200ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >11.909V</td><td  >11.832V</td><td  >0.65%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.068V</td><td  >4.994V</td><td  >1.46%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.341V</td><td  >3.241V</td><td  >2.99%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.088V</td><td  >5.046V</td><td  >0.83%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-6">Advanced Transient Response at 50% – 20ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >11.909V</td><td  >11.790V</td><td  >1.00%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.068V</td><td  >4.964V</td><td  >2.05%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.342V</td><td  >3.219V</td><td  >3.68%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.088V</td><td  >5.055V</td><td  >0.65%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-19">Advanced Transient Response at 50% – 1ms</h2><div ><table><tbody><tr><th  ><strong>Voltage</strong></th><td  ><strong>Before</strong></td><td  ><strong>After</strong></td><td  ><strong>Change</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>12V</strong></font></td><td  >11.909V</td><td  >11.812V</td><td  >0.81%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5V</strong></font></td><td  >5.068V</td><td  >4.977V</td><td  >1.80%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>3.3V</strong></font></td><td  >3.341V</td><td  >3.217V</td><td  >3.71%</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>5VSB</strong></font></td><td  >5.088V</td><td  >5.058V</td><td  >0.59%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9XVVaGsgDrXXnZvSFtHxtB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ERttES92NmWmPocGvtFPyB.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4QHCnfJV8EZDXgRKzyJZ7C.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/56rK4a83jWtzyr5FqKsqBC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/efzRf5tApfFTERYj9u8WHC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/K5vRvCKaKnGUyZ9tMpNFMC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QzJXFoH4gXDqHRTAuJbdQC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FeEBwWJdzEaZx48xhQ6TWC.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The transient response is very good, especially for the standards of the SFX category.</p><h2 id="turn-on-transient-tests-19">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU&apos;s response in simpler transient load scenarios—during its power-on phase. Ideally, we don&apos;t want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DoQgXcmt9doj6hoQPx6kQN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Yuhg2ktJM4HtSJ8TvUXJWN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dDcb9EcHLNMHWXUEudU4aN.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>There are no significant spikes and/or voltage overshoots in these tests. </p><h2 id="power-supply-timing-tests-19">Power Supply Timing Tests</h2><p>There are several signals generated by the power supply, which need to be within specified, by the ATX spec, ranges. If they are not, there can be compatibility issues with other system parts, especially mainboards. From year 2020, the PSU's Power-on time (T1) has to be lower than 150ms and the PWR_OK delay (T3) from 100 to 150ms.</p><div ><table><tbody><tr><td  ><strong>Load</strong></td><td  ><strong>T1 (Power-on time) </strong></td><td  ><strong>T3 (PWR_OK delay)</strong></td></tr><tr><th  >20%</th><td  >82</td><td  >306</td></tr><tr><th  >50%</th><td  >82</td><td  >308</td></tr></tbody></table></div><p>The Power-on time is less than 100ms, but the PWR_OK delay is our of the 100-150ms region, so the PSU does not support the alternative sleep mode, which will be a requirement by the ATX v2.52 from 2020.</p><h2 id="ripple-measurements-19">Ripple Measurements</h2><p>Ripple represenst the AC fluctuations (periodic) and noise (random) found in the PSU&apos;s DC rails. This phenomenon significantly decreases the capacitors&apos; lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap&apos;s useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><tbody><tr><td  ><strong>Test</strong></td><td  ><strong>12V</strong></td><td  ><strong>5V</strong></td><td  ><strong>3.3V</strong></td><td  ><strong>5VSB</strong></td><td  ><strong>Pass/Fail</strong></td></tr><tr><td  ><font color="#000000"><strong>10% Load</strong></font></td><td  >18.3 mV</td><td  >8.8 mV</td><td  >10.3 mV</td><td  >6.4 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>20% Load</strong></font></td><td  >17.8 mV</td><td  >10.8 mV</td><td  >13.3 mV</td><td  >7.3 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>30% Load</strong></font></td><td  >16.0 mV</td><td  >11.5 mV</td><td  >14.9 mV</td><td  >8.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>40% Load</strong></font></td><td  >16.0 mV</td><td  >12.1 mV</td><td  >15.4 mV</td><td  >8.8 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>50% Load</strong></font></td><td  >16.9 mV</td><td  >11.9 mV</td><td  >15.6 mV</td><td  >9.5 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>60% Load</strong></font></td><td  >17.5 mV</td><td  >12.7 mV</td><td  >16.3 mV</td><td  >9.9 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>70% Load</strong></font></td><td  >17.9 mV</td><td  >13.3 mV</td><td  >16.9 mV</td><td  >11.2 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>80% Load</strong></font></td><td  >18.3 mV</td><td  >13.6 mV</td><td  >18.4 mV</td><td  >11.3 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>90% Load</strong></font></td><td  >17.4 mV</td><td  >14.1 mV</td><td  >17.8 mV</td><td  >11.7 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>100% Load</strong></font></td><td  >26.5 mV</td><td  >15.0 mV</td><td  >17.7 mV</td><td  >13.8 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>110% Load</strong></font></td><td  >27.4 mV</td><td  >14.8 mV</td><td  >18.1 mV</td><td  >14.6 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 1</strong></font></td><td  >24.7 mV</td><td  >12.2 mV</td><td  >15.1 mV</td><td  >7.6 mV</td><td  >Pass</td></tr><tr><td  ><font color="#000000"><strong>Crossload 2</strong></font></td><td  >26.1 mV</td><td  >13.0 mV</td><td  >16.1 mV</td><td  >13.0 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/hP5kmMYQB6QEFbn9vASvFj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zUWqx9uxhFF4tJfXxZwDLj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Xgg8mGxF2QskMnZ7iSJwPj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zFeuA6tAThDDaduZshGPTj.png" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><p>The ripple suppression is excellent, for the standards of this category, on all voltage rails. </p><h2 id="ripple-at-full-load-19">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YGQHKRHqF3S3kHhvhnn5B7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QG3sCDnkECQDnzecjQD4G7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m5x7UC7zpNoMSHjuBshJN7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/g8qPear8NERNkuinz8jMW7.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-110-load-18">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MpKatqqb8xDvKVMoTTbCcB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sJLt7tQWt5BvdUw2MAfagB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/E9gPXsm7LTQAPTWKKawZmB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XvgyXq55Es9wwTBuZQvwqB.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-1-19">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ufHengzjajpgsMkRfC9QzF.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r4ppNpN6jSSU8JZqKC6M5G.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DvGQVmmTdPEuqdtEyhQX9G.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NNxka7RX4eHpqwyVQ5CvCG.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="ripple-at-cross-load-2-14">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/R3KF3cHiEwhjzrfP92mckK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZkWXcvhFUhF6mQwHMWcZpK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cKhn4saxrYYMu6WuCUGatK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9dBmDBM7dv8vuc7SaYmfxK.jpg" alt="" /><figcaption><small role="credit">Tom's Hardware</small></figcaption></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results-5">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1177px;"><p class="vanilla-image-block" style="padding-top:34.83%;"><img id="" name="EMI.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/AW2jKNFLuLkkQ2L9iD2uDS.jpg" mos="https://cdn.mos.cms.futurecdn.net/pdbeQapvhQwrTy5faTF4JJ.jpg" align="" fullscreen="1" width="1177" height="410" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/AW2jKNFLuLkkQ2L9iD2uDS.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>There are some nasty EMI peaks at low frequencies (150, 154, and 158 kHz), which exceed the corresponding limits.</p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><h2 id="performance-rating-19">Performance Rating</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="Result 34 -34_Relative_Performance-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/PvGLgQiyfTiBiF27C3qSff.png" mos="https://cdn.mos.cms.futurecdn.net/fs4QzdWvavFnDGL6AaZ63G.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/PvGLgQiyfTiBiF27C3qSff.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall performance is very high, meeting the SF600&apos;s levels. </p><h2 id="noise-rating-19">Noise Rating</h2><p>The graph below depicts the cooling fan&apos;s average noise over the PSU&apos;s operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="Result 36 -36_Average_Noise_Output-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/mrwpboE877pAn2kT73Meai.png" mos="https://cdn.mos.cms.futurecdn.net/nT7b3egDqkdPUb5EHj5ZwF.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/mrwpboE877pAn2kT73Meai.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall noise exceeds 35 dB(A), so you cannot call this PSU a silent one. </p><h2 id="efficiency-rating-19">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/E/0/850680/gallery/Result-36-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="Result 37 -37_Average_Efficiency-small.png" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/jNjF2hoCdwqQBJpz6J6hnk.png" mos="https://cdn.mos.cms.futurecdn.net/J62QUSxws5pHkmQtRrrcpP.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/jNjF2hoCdwqQBJpz6J6hnk.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>The overall efficiency is notably lower compared to Corsair and EVGA&apos;s competing offerings. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p>Fractal Design managed to impress me again, this time with its new Ion SFX models. Its people selected one of the best SFX platforms available in the market today, which is provided by Seasonic, and the outcome is excellent since the overall performance of the Ion SFX 650G matches that of the <a href="https://www.tomshardware.com/reviews/corsair-sf600-power-supply,4537.html">Corsair SF600 Gold</a>, which, to date, was the top SFX PSU offering with ETA-A and 80 PLUS Gold certifications. The advantages of the Ion SFX 650G over its Corsair adversary are the larger, 120mm fan that it comes with along with the highly flexible modular cables, which indeed make a difference during the cable routing and installation processes. Moreover, in its bundle, you will find an SFX-to-ATX adapter bracket, which is missing from the plain Corsair SF600 model (but is present in the more expensive SF600 Platinum).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="psu_quarter.jpg" alt="" src="https://cdn.mos.cms.futurecdn.net/3q3FZAj9XF9qw5UfJB6r4H.jpg" mos="https://cdn.mos.cms.futurecdn.net/7WbGqecsJF9a8w3ew5AFK5.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/3q3FZAj9XF9qw5UfJB6r4H.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware)</span></figcaption></figure><p>With an MSRP of $110 (and $90 for the Ion SFX 500G), the Ion SFX 650G is slightly less expensive than the Corsair SF600, and the <a href="https://www.tomshardware.com/reviews/seasonic-focus-sgx-650w-sfx-l-psu,6045.html">Seasonic Focus SGX-650</a>, while it has the same price as the <a href="https://www.tomshardware.com/reviews/evga-supernova-650-gm-sfx,5935.html">EVGA 650 GM</a>. Along with the Seasonic SFX unit, the Ion SFX models are the only PSUs in this category that are covered by a ten-year warranty, which is a good indication of this platform&apos;s expected reliability through time. Now that the competition managed to reach the performance levels of Corsair&apos;s older SF models, I am eager to see some competition in the high-end SFX market segment where the SF750 dominates and why not, another passive unit that will be able to meet SilverStone&apos;s excellent passive <a href="https://www.tomshardware.com/news/silverstone-nightjar-nj450-sxl-ces,38030.html" rel="nofollow">Nightjar NJ450-SXL</a> model, eye-to-eye. </p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></p><p><strong>MORE: </strong><a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></p><p><em><strong>Disclaimer:</strong></em><em> Aris Mpitziopoulos is Tom&apos;s Hardware&apos;s PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em>, and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom&apos;s Hardware. Neither Tom&apos;s Hardware nor its parent company, Future</em> PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Fractal Design ION+ 560P Power Supply Review: As Quiet As It Gets ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/fractal-design-ion-560p-power-supply-review,6279.html</link>
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                            <![CDATA[ The Fractal Design Ion+ 560P is dead silent and achieves good performance in all areas. If 560W covers your needs, this should be near the top of your shopping list. ]]>
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                                                                        <pubDate>Sun, 01 Sep 2019 13:00:00 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:30:43 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                                                                                                                                                                                                    <media:description><![CDATA[Fractal Design ION+ 560P]]></media:description>                                                            <media:text><![CDATA[Fractal Design ION+ 560P]]></media:text>
                                <media:title type="plain"><![CDATA[Fractal Design ION+ 560P]]></media:title>
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                                <h2 id="specifications-and-part-analysis-2">Specifications and Part Analysis</h2><p>The Fractal Design Ion+ 560P has good performance, silent operation, and high efficiency. Its price is a bit lower than the corresponding Seasonic Focus Plus Platinum model, but the latter achieves better performance. The Ion+ 560P is one of the quietest PSUs that we have evaluated so far since its overall noise output is lower than 12 dB(A)!</p><p>Fractal Design made a strong re-entry in the PSU market with the Ion+ line, which consists of four models with capacities ranging from 860W to 560W. We have already evaluated two models (<a href="https://www.tomshardware.com/reviews/fractal-design-ion-860p-power-supply,6239.html">860P</a> and 660P), and so we wanted to take a look at the smallest member as well, the Ion+ 560P. Given the high efficiency that the majority of modern GPUs feature, a power supply with more than 500W max power will not have a problem supporting a potent, single-GPU system. There is no need to invest in a stronger PSU, unless you want to use a Threadripper AMD CPU or you want to overclock your CPU and GPU highly. Under overclocked conditions, you better get the strongest PSU you can afford since you cannot predict the power consumption of CPUs and GPUs under those conditions.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/akW7mTStzmUxNsKTJjGSXh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xoorSrZLZHkTVDdkX2YtLF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/htwCyL2wQE5uJavFp7523i.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AfMjhMsaXSVNiSL3Asbv9F.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/i3XqMZS6gc9yf9yid9Hcze.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ywGKBP5Rfr72SLm2KKyvNE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H5DCvpRKGszApB57NLq7gP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/c3J4G7MfqB7YWenQxThh4R.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FKaKiaGy8LwyyaXbQZLNgm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dzXG8fUmJnVp3ZCk36oxXj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6nd7Cnnfe6RbXZ9DtagCkD.jpg" alt="" /></figure></figure><p>The table below shows the MSRP of each Ion+ model in all major regions.</p><div ><table><thead><tr><th  ><strong>Product</strong></th><th  ><strong>USD</strong></th><th  ><strong>GBP</strong></th><th  ><strong>EURO</strong></th><th  ><strong>SEK</strong></th><th  ><strong>RMB</strong></th><th  ><strong>YEN</strong></th></tr></thead><tbody><tr><th  ><strong>Ion+ 560P</strong></th><td  >99.99</td><td  >94.99</td><td  >106,99</td><td  >1149</td><td  >799</td><td  >11900</td></tr><tr><th  ><strong>Ion+ 660P</strong></th><td  >109.99</td><td  >104.99</td><td  >117,99</td><td  >1269</td><td  >899</td><td  >13400</td></tr><tr><th  ><strong>Ion+ 760P</strong></th><td  >119.99</td><td  >114.99</td><td  >129,99</td><td  >1389</td><td  >969</td><td  >14900</td></tr><tr><th  ><strong>Ion+ 860P</strong></th><td  >129.99</td><td  >124.99</td><td  >139,99</td><td  >1509</td><td  >1049</td><td  >16400</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9RyGxNnEjDcUNSph4w66GB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qmuh4HrocPnvSVfcA6oPNj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PMeKXzGzPUsvgzzEEpyLiA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8M9eCq7JtArQRYHmisoE8j.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/a4oyi9xsFCaGEi2sRa9P9b.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6pYXjVxbNmWgK9BTxShsmb.jpg" alt="" /></figure></figure><h2 id="specifications-20">Specifications</h2><div ><table><tbody><tr><th  ><strong>Manufacturer (OEM)</strong></th><td  >High Power</td></tr><tr><th  ><strong>Max. DC Output</strong></th><td  ><span class="spelle">560W</span></td></tr><tr><th  ><strong>Efficiency</strong></th><td  >80 PLUS Platinum, ETA-A (88-91%)</td></tr><tr><th  ><strong>Noise</strong></th><td  >LAMBDA-A++ (<15 dB[A])</td></tr><tr><th  ><strong>Modular</strong></th><td  >✓ (Fully)</td></tr><tr><th  ><strong>Intel C6/C7 Power State Support</strong></th><td  >✓</td></tr><tr><th  ><strong>Operating Temperature (Continuous Full Load)</strong></th><td  >0 - 50°C</td></tr><tr><th  ><strong>Over Voltage Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Under Voltage Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Power Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Current (+12V) Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Temperature Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Short Circuit Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Surge Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Inrush Current Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Fan Failure Protection</strong></th><td  >✗</td></tr><tr><th  ><strong>No Load Operation</strong></th><td  >✓</td></tr><tr><th  ><strong>Cooling</strong></th><td  >140mm Fluid Dynamic Bearing Fan (DYNAMIC X2 GP-14)</td></tr><tr><th  ><strong>Semi-Passive Operation</strong></th><td  >✓ (Selectable)</td></tr><tr><th  ><strong>Dimensions (</strong><span class="spelle"><strong>W x H x D</strong></span><strong>)</strong></th><td  >150 x 85 x 150mm</td></tr><tr><th  ><strong>Weight</strong></th><td  >1.61 kg (3.55 <span class="spelle">lb</span>)</td></tr><tr><th  ><strong>Form Factor</strong></th><td  >ATX12V v2.4, EPS 2.92</td></tr><tr><th  ><strong>Warranty</strong></th><td  >10 Years</td></tr></tbody></table></div><h2 id="power-specifications-20">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >46.6</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">110</td><td  >560</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">560</td></tr></tbody></table></div><h2 id="cables-and-connectors-6">Cables and Connectors</h2><div ><table><thead><tr><th  colspan="5"><strong>Modular Cables</strong></th></tr></thead><tbody><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><th  ><strong>ATX connector 20+4 pin (600mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4+4 pin EPS12V (700mm)</strong></th><td  >1</td><td  >1</td><td  >16AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (550mm+120mm) </strong></th><td  >2</td><td  >4</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (650mm+120mm)</strong></th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (400mm+120mm+120mm+120mm)</strong></th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4 pin Molex (400mm+120mm+120mm+120mm)</strong></th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>AC Power Cord (1400mm) - C13 coupler</strong></th><td  >1</td><td  >1</td><td  >16AWG</td><td  >-</td></tr></tbody></table></div><p>There is no point for a pair of EPS connectors with "only" 560W max power since each of those can deliver up to 336W. The number of PCIe and peripheral connectors is adequate, but the distance between the latter should be longer, at 150mm at least. Finally, all cables are highly flexible, and this helps during the cable routing and management processes.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Wd2RAHuTWSzAaVMLroyH8M.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oDfbbHpHANULqZGnvbY5Cj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M2MhMXvFyHWEWHWoQbe3rD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AKtZrcHeqcbS3DX8XSdZQY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/U2bwu4FRtFrsUgXitmdKNP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KmXLk5pD2Evy9CSGU8Pvp9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vXotucivvyKhhB2tvCCEg8.jpg" alt="" /></figure></figure><h2 id="component-analysis-20">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, allowing you to understand better the components we're about to discuss.</p><div ><table><thead><tr><th  colspan="2"><strong>General Data</strong></th></tr></thead><tbody><tr><th  >Manufacturer (OEM)</th><td  >High Power</td></tr><tr><th  >PCB Type</th><td  >Double Sided</td></tr><thead><tr><th  colspan="2"><strong>Primary Side</strong></th></tr></thead><tr><th  >Transient Filter</th><td  >4x Y caps, 2x X caps, 3x CM chokes, 1x MOV,1x Discharge IC</td></tr><tr><th  >Inrush Protection</th><td  >NTC Thermistor & Relay</td></tr><tr><th  >Bridge Rectifier(s)</th><td  >2x <a href="https://www.datasheet.live/index.php?title=Special:PdfViewer&url=https://pdf.datasheet.live/datasheets-1/lite-on_semiconductor/GBU1506.pdf">GBU1506</a> (600V, 15A @ 100°C)</td></tr><tr><th  >APFC MOSFETS</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPA60R180P7S-DS-v02_01-EN.pdf?fileId=5546d4625cc9456a015d560059430feb">IPA60R180P7S</a> (650V, 11A @ 100°C, 0.180Ohm)</td></tr><tr><th  >APFC Boost Diode</th><td  >1x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IDH06G65C5-DS-v02_02-en.pdf?fileId=db3a304339dcf4b1013a0353dadb5970">IDH06G65C5</a> (650V, 6A @ 145°C)</td></tr><tr><th  >Hold-up Cap(s)</th><td  >2x Rubycon (400V, 330uF each or 660uF combined, 2,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_MXH.pdf">MXH</a>)</td></tr><tr><th  >Main Switchers</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPA60R180P7S-DS-v02_01-EN.pdf?fileId=5546d4625cc9456a015d560059430feb">IPA60R180P7S</a> (650V, 11A @ 100°C, 0.180Ohm)</td></tr><tr><th  >APFC Controller</th><td  >Infineon <a href="https://www.infineon.com/dgdl/Infineon-ICE3PCS01-DS-v03_00-EN.pdf?fileId=db3a304329a0f6ee0129a67ae8c02b46">ICE3PCS01G</a></td></tr><tr><th  >Resonant Controllers</th><td  >Champion <a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901.pdf">CM6901X</a></td></tr><tr><th  >Topology</th><td  >Primary side: Half-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><thead><tr><th  colspan="2"><strong>Secondary Side</strong></th></tr></thead><tr><th  >+12V MOSFETS</th><td  >6x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC027N04LSG-DS-v01_04-en.pdf?fileId=db3a30431689f4420116c4323646080c">BSC027N04LS</a> (40V, 88A @ 100°C, 2.7mOhm)</td></tr><tr><th  >5V & 3.3V</th><td  >DC-DC Converters: 8x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC0906NS-DS-v02_05-en.pdf?fileId=db3a30433072cd8f0130986c816b2f8c">BSC0906NS</a> (30V, 40A @ 100°C, 4.5mOhm) PWM Controllers: ANPEC <a href="http://www.anpec.com.tw/ashx_prod_file.ashx?prod_id=717&file_path=20131210180212790.pdf&original_name=APW7159A.pdf">APW7159C</a></td></tr><tr><th  >Filtering Capacitors</th><td  >Electrolytics: 4x Nippon Chemi-Con (4-10,000h @ 105°C, <a href="http://www.chemi-con.com/upload/files/5/1/74811667552d6c4d41a84c.pdf">KY</a>), 5x Rubycon (3-6,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_yxg.pdf">YXG</a>), 1x Rubycon (6-10,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_zlh.pdf">ZLH</a>) Polymers: 31x FPCAP, 6x NIC</td></tr><tr><th  >Supervisor IC</th><td  >SITI <a href="http://silicon-touch.com/product/spec/Power/PS224.pdf">PS224</a> (OCP, OVP, UVP, SCP, PG)</td></tr><tr><th  >Micro Controller</th><td  >STC <a href="http://www.stcmicro.com/STC/STC15W401AS.html">15W408AS</a></td></tr><tr><th  >Fan Model</th><td  >Fractal Design DYNAMIC X2 GP-14 (140mm, 3-12V, 0.30A, 1400rpm, Fluid Dynamic Bearing Fan )</td></tr><tr><th  >Fan Power Transistor</th><td  >STi <a href="https://www.st.com/resource/en/datasheet/2sd882.pdf">2SD882</a> (NPN)</td></tr><thead><tr><th  colspan="2"><strong>5VSB Circuit</strong></th></tr></thead><tr><th  >Rectifier</th><td  >1x PFC <a href="http://www.pfc-device.com/upload/productfs681501121555120268.pdf">P10V45SP</a> SBR (45V, 10A) & 2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC0906NS-DS-v02_05-en.pdf?fileId=db3a30433072cd8f0130986c816b2f8c">BSC0906NS</a> FET (30V, 40A @ 100°C, 4.5mΩ)</td></tr><tr><th  >Standby PWM Controller</th><td  >Excelliance MOS Corp <a href="http://www.excelliancemos.com/download_prod_s.php?ds=70&file=2">EM8569</a></td></tr><thead><tr><th  colspan="2"><strong>-12V Circuit</strong></th></tr></thead><tr><th  >Rectifier</th><td  >KEC <a href="https://www.datasheet.live/index.php?title=Special:PdfViewer&url=https://pdf.datasheet.live/datasheets-1/kec/KIA7912PI.pdf">KIA7912PI</a> (-12V, 1A)</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/65Zr48Mfs3C5jor5fZpzN4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DjprT86Jj6FFdf8mUUyiVc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7dDCBWb8JQPCP2CaYb77Gj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EDSKzgbjqhTcvKRRe9WWNK.jpg" alt="" /></figure></figure><p>The original manufacturer of the Ion+ 560P is High Power. The platform looks nice since the design is clean and the airflow is unobstructed. On the primary side, a half-bridge topology and an LLC resonant converter are used, for high efficiency. On the secondary side, six FETs regulate the +12V rail, and a couple of DC-DC converters handle the minor rails.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MRqvEKreXbYRYdSpHCVRCR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X7Xmwt9adWjNhxbD9ccfNA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/76Ek7ktj2dHQ8v4d6aWWPi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4X7iS24W6AdQB8Nm76BKHG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YGaQgfBgmePsvrxUPRJafA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/quaWy6PSZ7fkV5s5bcnZSE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zny43VmuDqtBNcBknE8g7m.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n4VC8yft4YRVWR6ngx9w2E.jpg" alt="" /></figure></figure><p>The transient filter is complete. It includes an MOV, and there is inrush current protection in the form of an NTC thermistor. A bypass relay supports the latter.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/36eN4DB2dgv35B9XdsWLwK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/khUejjJYqPDdikKSLc7mzn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pvMrH3AYS9fMYvN8KanmHm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Drvd6z2AAzoue9hd4eZMjd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fD9UyCwxLFiM3gJu6NEZHe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RNZPp9j25vsXCEU869Rcni.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zjfCjcdCV3JCirzjiLTwDS.jpg" alt="" /></figure></figure><p>In the APFC converter, the bulk caps have enough capacity to offer a longer than 17ms hold-up time. They have a 105C temperature rating, but the maximum voltage that they can handle is very close to the APFC's DC bus voltage (385VDC).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BfZvEDGzHqGgrTrT5GjJwF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zh7i2vMxf79Tvr3wWWXkDj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2c2Lx3mpSLJ6NvEAx4drca.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tsL2fVZMqatyz4QAzhSirm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rwPBjZjtB4smktznDLHovC.jpg" alt="" /></figure></figure><p>The electrolytic caps are of high quality, and besides them, a large number of polymer caps handle ripple filtering.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rizpLkJ6JW3mHdbhw8T3oW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Qcwx4TnnC2xsK4r6CQKQuY.jpg" alt="" /></figure></figure><p>The voltage regulation modules that generate the minor (5V and 3.3V) rails.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/6K9Aqv6WGJ7A9sx3cZrU3C.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8shzyNGi4oYRpjE4DJZUag.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jWLZ9qVHxdq6vAeqL4256G.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/S4h2pFrNVdQ4T8H2Xq6hth.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6FFLaGwh5S6mywL2uRFu9V.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/o3GoDNgXtQ6eRDW2Fo6hdk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nxw7sxJrw8JgZRQuVRYhEe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/py3ZG3yk8uaNmcUK7riNFk.jpg" alt="" /></figure></figure><p>The soldering quality looks good.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2JxUnC8Kd9vao2qGsoieHH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Zj7kpMEntUBP6PU537FEb9.jpg" alt="" /></figure></figure><p>The cooling fan uses a fluid dynamic bearing and measures 140mm across, so even though it doesn't spin at high speeds, still it can offer the required airflow. Its startup voltage is very low, at 3V, meaning that it can spin at very low speeds under light loads.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="load-regulation-hold-up-time-inrush-current-efficiency-and-noise-2">Load Regulation, Hold-Up Time, Inrush Current, Efficiency and Noise</h2><p><strong>To learn more about our PSU tests and methodology, please check out <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="66d3307e-4437-458e-9e26-17baa28cc91d">            <a href="https://www.newegg.com/fractal-design-ion-fd-psu-ionp-560p-bk-560w/p/N82E16817580021" data-model-name="Fractal Design ION+ 560P" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.25%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/9MZxQqy9EYRgkXkjNbE2FW.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Fractal Design ION+ 560P</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="d6f56567-251e-4268-8aa2-751dae0d6188">            <div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:71.69%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/FFXKcyMg3ATm8sMEnTLGXT.jpg" alt=""></p></div>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">SeaSonic FOCUS Gold 550 W</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="e24222f6-cf07-4388-98e4-02b2626c91d4">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=http://www.newegg.com/Product/Product.aspx?Item=N82E16817139144" data-model-name="RM550x" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/9RpGusYLxjwG6mkMtdy9Tm.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM550x</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-20">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/x6BKCTBNGEUWvRBuJwaTZ6.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dETzt9DJeZyUHLX3hmKXmb.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bav6ksDG5n5vwBA6bwC4tG.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KNHCd87Fr9bTxB5tiLJhV7.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AXE6qKFqm7DFQkR5iewhei.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oYego6Z5aLvA4D26B45PKC.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/crJrkYsG27arS9TLAyVeKZ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/84i3x9xAtazHaf86JDiPmg.png" alt="" /></figure></figure><p>The load regulation at +12V is within 1%, but still the Ion+ 560P is away from the Seasonic competition. The SSR-550PX achieves better load regulation on the other rails, as well.</p><h2 id="hold-up-time-20">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/FjNahMUrawNCAJ8WQrXEn7.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7ib3VB6WigWhPGADnPJUCB.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/T4qLBcmDHzUngVJ9ZXQm6.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xbZ36mfq5rR4JtHWBrENSh.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X6XD3KaZH9aeEFKKEkKUZ3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SJsLggYP9RtqAh9HuyLRxi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/N8t36tz2Haj5d6JzGuV4Cc.jpg" alt="" /></figure></figure><p>The hold-up time exceeds 21ms and the power ok signal is accurate.</p><h2 id="inrush-current-20">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/WtmsyKQKwGbaQ9gijYoE9G.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DEwhieXnRCy3GDrAAmSiSj.png" alt="" /></figure></figure><p>The inrush current with 115V is low, while with 230V is on the high side.</p><h2 id="10-110-load-tests-19">10-110% Load Tests</h2><p>These tests reveal the Ion+ 560P’s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>Temps (In/Out)</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>2.877A</strong></td><td  ><strong>1.993A</strong></td><td  ><strong>2.003A</strong></td><td  ><strong>1.004A</strong></td><td  >56.165</td><td  rowspan="2">85.753%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >45.13°C</td><td  >0.945</td></tr><tr><td  >12.016V</td><td  >5.015V</td><td  >3.295V</td><td  >4.980V</td><td  >65.496</td><td  >40.30°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>6.745A</strong></td><td  ><strong>2.995A</strong></td><td  ><strong>2.999A</strong></td><td  ><strong>1.207A</strong></td><td  >111.872</td><td  rowspan="2">90.454%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >45.76°C</td><td  >0.976</td></tr><tr><td  >12.004V</td><td  >5.011V</td><td  >3.300V</td><td  >4.971V</td><td  >123.679</td><td  >40.53°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>10.986A</strong></td><td  ><strong>3.494A</strong></td><td  ><strong>3.489A</strong></td><td  ><strong>1.411A</strong></td><td  >167.772</td><td  rowspan="2">91.642%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >46.87°C</td><td  >0.987</td></tr><tr><td  >11.994V</td><td  >5.009V</td><td  >3.297V</td><td  >4.962V</td><td  >183.074</td><td  >41.32°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>15.235A</strong></td><td  ><strong>3.997A</strong></td><td  ><strong>4.007A</strong></td><td  ><strong>1.616A</strong></td><td  >223.792</td><td  rowspan="2">91.971%</td><td  rowspan="2">390</td><td  rowspan="2">7.0</td><td  >41.82°C</td><td  >0.992</td></tr><tr><td  >11.984V</td><td  >5.007V</td><td  >3.294V</td><td  >4.953V</td><td  >243.330</td><td  >48.06°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>19.161A</strong></td><td  ><strong>4.999A</strong></td><td  ><strong>5.019A</strong></td><td  ><strong>1.821A</strong></td><td  >279.902</td><td  rowspan="2">91.871%</td><td  rowspan="2">393</td><td  rowspan="2">7.1</td><td  >42.05°C</td><td  >0.996</td></tr><tr><td  >11.972V</td><td  >5.002V</td><td  >3.288V</td><td  >4.942V</td><td  >304.670</td><td  >49.24°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>23.089A</strong></td><td  ><strong>6.006A</strong></td><td  ><strong>6.033A</strong></td><td  ><strong>2.028A</strong></td><td  >335.988</td><td  rowspan="2">91.241%</td><td  rowspan="2">431</td><td  rowspan="2">7.7</td><td  >42.92°C</td><td  >0.996</td></tr><tr><td  >11.961V</td><td  >4.998V</td><td  >3.282V</td><td  >4.932V</td><td  >368.242</td><td  >50.86°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>7</strong></th><td  ><strong>26.998A</strong></td><td  ><strong>7.011A</strong></td><td  ><strong>7.033A</strong></td><td  ><strong>2.236A</strong></td><td  >391.739</td><td  rowspan="2">90.784%</td><td  rowspan="2">626</td><td  rowspan="2">13.5</td><td  >43.07°C</td><td  >0.996</td></tr><tr><td  >11.950V</td><td  >4.993V</td><td  >3.285V</td><td  >4.921V</td><td  >431.505</td><td  >51.53°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>8</strong></th><td  ><strong>30.976A</strong></td><td  ><strong>8.022A</strong></td><td  ><strong>8.053A</strong></td><td  ><strong>2.445A</strong></td><td  >448.241</td><td  rowspan="2">90.265%</td><td  rowspan="2">730</td><td  rowspan="2">18.4</td><td  >43.46°C</td><td  >0.996</td></tr><tr><td  >11.939V</td><td  >4.988V</td><td  >3.278V</td><td  >4.911V</td><td  >496.582</td><td  >52.52°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>9</strong></th><td  ><strong>35.294A</strong></td><td  ><strong>8.519A</strong></td><td  ><strong>8.550A</strong></td><td  ><strong>2.443A</strong></td><td  >503.548</td><td  rowspan="2">89.817%</td><td  rowspan="2">882</td><td  rowspan="2">21.4</td><td  >44.08°C</td><td  >0.997</td></tr><tr><td  >11.929V</td><td  >4.991V</td><td  >3.275V</td><td  >4.915V</td><td  >560.638</td><td  >53.46°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>10</strong></th><td  ><strong>39.459A</strong></td><td  ><strong>9.026A</strong></td><td  ><strong>9.086A</strong></td><td  ><strong>3.071A</strong></td><td  >559.961</td><td  rowspan="2">89.210%</td><td  rowspan="2">1034</td><td  rowspan="2">28.6</td><td  >45.34°C</td><td  >0.997</td></tr><tr><td  >11.917V</td><td  >4.988V</td><td  >3.269V</td><td  >4.886V</td><td  >627.688</td><td  >55.10°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>11</strong></th><td  ><strong>44.193A</strong></td><td  ><strong>9.028A</strong></td><td  ><strong>9.085A</strong></td><td  ><strong>3.072A</strong></td><td  >615.988</td><td  rowspan="2">88.748%</td><td  rowspan="2">1036</td><td  rowspan="2">28.7</td><td  >46.98°C</td><td  >0.997</td></tr><tr><td  >11.908V</td><td  >4.988V</td><td  >3.269V</td><td  >4.885V</td><td  >694.089</td><td  >57.41°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>CL1</strong></th><td  ><strong>0.146A</strong></td><td  ><strong>13.004A</strong></td><td  ><strong>12.999A</strong></td><td  ><strong>0.000A</strong></td><td  >109.406</td><td  rowspan="2">84.229%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >49.71°C</td><td  >0.976</td></tr><tr><td  >11.986V</td><td  >5.003V</td><td  >3.277V</td><td  >5.046V</td><td  >129.891</td><td  >42.65°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>CL2</strong></th><td  ><strong>46.682A</strong></td><td  ><strong>1.003A</strong></td><td  ><strong>1.003A</strong></td><td  ><strong>1.000A</strong></td><td  >570.317</td><td  rowspan="2">90.160%</td><td  rowspan="2">1027</td><td  rowspan="2">28.4</td><td  >45.02°C</td><td  >0.997</td></tr><tr><td  >11.933V</td><td  >4.997V</td><td  >3.284V</td><td  >4.955V</td><td  >632.558</td><td  >55.20°C</td><td  >115.11V</td></tr></tbody></table></div><p>Despite the very low fan speeds, the PSU doesn't have a problem delivering full power (and even more), under high operating temperatures. The APFC's converter is good, as well.</p><h2 id="20-80w-load-tests-20">20-80W Load Tests</h2><p>In the following tests, we measure the Ion+ 560P's efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.204A</strong></td><td  ><strong>0.498A</strong></td><td  ><strong>0.485A</strong></td><td  ><strong>0.200A</strong></td><td  >19.647</td><td  rowspan="2">53.326%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.890</td></tr><tr><td  >12.079V</td><td  >5.019V</td><td  >3.303V</td><td  >5.012V</td><td  >36.843</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>2.475A</strong></td><td  ><strong>0.999A</strong></td><td  ><strong>0.998A</strong></td><td  ><strong>0.400A</strong></td><td  >40.049</td><td  rowspan="2">82.187%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.918</td></tr><tr><td  >12.017V</td><td  >5.013V</td><td  >3.307V</td><td  >4.999V</td><td  >48.729</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>3.675A</strong></td><td  ><strong>1.499A</strong></td><td  ><strong>1.485A</strong></td><td  ><strong>0.602A</strong></td><td  >59.567</td><td  rowspan="2">86.536%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.948</td></tr><tr><td  >12.016V</td><td  >5.007V</td><td  >3.300V</td><td  >4.987V</td><td  >68.835</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>4.942A</strong></td><td  ><strong>1.996A</strong></td><td  ><strong>1.999A</strong></td><td  ><strong>0.803A</strong></td><td  >79.965</td><td  rowspan="2">88.906%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.961</td></tr><tr><td  >12.011V</td><td  >5.011V</td><td  >3.303V</td><td  >4.984V</td><td  >89.943</td><td  >115.12V</td></tr></tbody></table></div><p>With 20W load the efficiency is very low. It should be over 70%.</p><h2 id="2-or-10w-load-test-20">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.779A</strong></td><td  ><strong>0.218A</strong></td><td  ><strong>0.217A</strong></td><td  ><strong>0.049A</strong></td><td  >11.471</td><td  rowspan="2">48.216%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.804</td></tr><tr><td  >12.085V</td><td  >5.020V</td><td  >3.305V</td><td  >5.018V</td><td  >23.791</td><td  >115.12V</td></tr></tbody></table></div><p>The efficiency with 2% of the max-rated-capacity load is super low. It should be higher than 70%, to meet the upcoming ATX spec's corresponding requirement.</p><h2 id="efficiency-13">Efficiency</h2><p>Next, we plotted a chart showing the Ion+ 560P’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint, besides lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kPZNVCZy7v2nQzTDcUTEkb.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BM9EGeyDBWGGCzDf5JgdUM.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/smnSEoBUDYyxCJrgW2rcqj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2kbaqv7RWq9TLpp8H8ZGFM.png" alt="" /></figure></figure><p>With normal loads, the efficiency levels are high, but this is not the case with light loads.</p><h2 id="5vsb-efficiency-20">5VSB Efficiency</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.512</td><td  rowspan="2">68.176%</td><td  >0.099</td></tr><tr><td  >5.113V</td><td  >0.751</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.277</td><td  rowspan="2">74.461%</td><td  >0.199</td></tr><tr><td  >5.106V</td><td  >1.715</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.801</td><td  rowspan="2">76.384%</td><td  >0.317</td></tr><tr><td  >5.092V</td><td  >3.667</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >5.072</td><td  rowspan="2">77.035%</td><td  >0.397</td></tr><tr><td  >5.072V</td><td  >6.584</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.573</td><td  rowspan="2">77.347%</td><td  >0.438</td></tr><tr><td  >5.048V</td><td  >9.791</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >14.915</td><td  rowspan="2">76.578%</td><td  >0.485</td></tr><tr><td  >4.971V</td><td  >19.477</td><td  >115.11V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Ju69mmHuy42TGwN3ybNhqE.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/f66vhzTkNA2voW8GSZTwkR.png" alt="" /></figure></figure><p>The 5VSB rail needs modifications, to achieve higher efficiency levels.</p><h2 id="power-consumption-in-idle-and-standby-20">Power Consumption In Idle And Standby</h2><div ><table><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">12.111V</td><td  rowspan="2">5.030V</td><td  rowspan="2">3.307V</td><td  rowspan="2">5.029V</td><td  rowspan="2">5.573</td><td  >0.420</td></tr><tr><td  >115.1V</td></tr><tr><th  colspan="5" rowspan="2"><strong>Standby</strong></th><td  rowspan="2">0.106</td><td  >0.013</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/quPzeifH89qXGpoAWXDNwe.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zia2PR9rVFThGKviwwHaKm.png" alt="" /></figure></figure><h2 id="fan-rpm-delta-temperature-and-output-noise-20">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 36 to 45 degrees Celsius (96.8 to 113 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/93LXspw5VfrSwZBdeU45Qa.png" mos="https://cdn.mos.cms.futurecdn.net/93LXspw5VfrSwZBdeU45Qa.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/93LXspw5VfrSwZBdeU45Qa.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/nGsHWNFjXJbzFWEKrJ2Wt5.png" mos="https://cdn.mos.cms.futurecdn.net/nGsHWNFjXJbzFWEKrJ2Wt5.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/nGsHWNFjXJbzFWEKrJ2Wt5.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The cooling fan's speed profile is super relaxed.</p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/tDScBJdPjRBaY6Cmj5EbVV.jpg" mos="https://cdn.mos.cms.futurecdn.net/tDScBJdPjRBaY6Cmj5EbVV.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/tDScBJdPjRBaY6Cmj5EbVV.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/9DFarEpC35onp5DipqmeQ8.jpg" mos="https://cdn.mos.cms.futurecdn.net/9DFarEpC35onp5DipqmeQ8.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/9DFarEpC35onp5DipqmeQ8.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>Although the passive operation doesn't last long, still the Ion+ 560P is dead silent since its cooling fan spins at very low RPM in all cases.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="protection-features-dc-power-sequencing-cross-load-tests-and-infrared-images">Protection Features, DC Power Sequencing, Cross-Load Tests and Infrared Images</h2><h2 id="protection-features-20">Protection Features</h2><p><strong>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</strong></p><div ><table><tbody><tr><td  colspan="2"><strong>Protection Features</strong></td></tr><tr><td  ><strong>OCP</strong></td><td  >12V: 62.6A (134.33%), 11.9V 5V: 29.6A (148%), 4.982V 3.3V: 29.6A (148%), 3.242V 5VSB: 5.1A (170%), 4.852V</td></tr><tr><td  ><strong>OPP</strong></td><td  >764.5W (136.52%)</td></tr><tr><td  ><strong>OTP</strong></td><td  >✓ (126°C @ 12V heat sink)</td></tr><tr><td  ><strong>SCP</strong></td><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><td  ><strong>PWR_OK</strong></td><td  >Proper Operation</td></tr><tr><td  ><strong>NLO</strong></td><td  >✓</td></tr><tr><td  ><strong>SIP</strong></td><td  >Surge: MOV Inrush: NTC Thermistor & Bypass Relay</td></tr></tbody></table></div><p>There is no point for such high OCP triggering points on the minor rails, especially in a 560W PSU. The over power protection is also out of the 130% range that we suggest, but given this unit's low capacity, this might be beneficial for power spikes. In any case, though, you shouldn't exceed the unit's nominal capacity for prolonged periods.</p><h2 id="dc-power-sequencing-20">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/F6C2K4Sqe8EreGoHDDLJCo.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wdBTXFk6q4VSKvWXFohV6G.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PDkYee5fUTko8xbsghXaaG.jpg" alt="" /></figure></figure><p>No problems here, since the 3.3V rail is always at a lower voltage level, compared to the other two.</p><h2 id="cross-load-tests-20">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-20">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/26NGkGvYu6yRGcBp3ndJjA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qNzuWMLQD5eFqczBpdQeCR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UfJwkBukWwYWdjPpv4hJRm.jpg" alt="" /></figure></figure><h2 id="efficiency-chart-15">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/sDKaFXDgF7tDNTLUausyL3.jpg" mos="https://cdn.mos.cms.futurecdn.net/sDKaFXDgF7tDNTLUausyL3.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/sDKaFXDgF7tDNTLUausyL3.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>For a large enough region, of the PSU's operating range, efficiency is higher than 92%. This platform is optimized for high efficiency under higher loads and this is clearly depicted in the graph above, where even with full load the PSU is within the 90-92% region. High Power should improve the efficiency levels with lower than 40W loads.</p><h2 id="ripple-charts-15">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jf8kAS6wcjWmTgcjYbwBoi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zk32fWgSFhmwjMPB4RwzCE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eK6GWC9kVtmfUsHwecXCBL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/owRBUN8khZWXEWf5cCgZjj.jpg" alt="" /></figure></figure><h2 id="infrared-images-20">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YSnvJoNQmtTfCimCxCCfri.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SkLxdrcvgWV37KVk8mvLT6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Wt7A8pssigiydU5s8pMmnm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6KCJMbrD6FUdzmCd6WwCV8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HCsxTukB3pKexuqCesB3uC.jpg" alt="" /></figure></figure><p>As usual, the hottest spot is on the DC-DC converters. In general the PSU's internal temperatures stay low, thanks to the efficient platform.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="transient-response-tests-ripple-measurements-and-emc-pre-compliance-testing">Transient Response Tests, Ripple Measurements and EMC Pre-Compliance Testing</h2><h2 id="advanced-transient-response-tests-20">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms-7">Advanced Transient Response at 20% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.000V</td><td  >11.875V</td><td  >1.04%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.007V</td><td  >4.931V</td><td  >1.52%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.299V</td><td  >3.170V</td><td  >3.91%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.967V</td><td  >4.902V</td><td  >1.31%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-7">Advanced Transient Response at 20% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.001V</td><td  >11.803V</td><td  >1.65%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.009V</td><td  >4.930V</td><td  >1.58%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.299V</td><td  >3.187V</td><td  >3.39%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.969V</td><td  >4.892V</td><td  >1.55%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-20">Advanced Transient Response at 20% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.001V</td><td  >11.738V</td><td  >2.19%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.009V</td><td  >4.917V</td><td  >1.84%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.299V</td><td  >3.177V</td><td  >3.70%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.969V</td><td  >4.886V</td><td  >1.67%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-7">Advanced Transient Response at 50% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.970V</td><td  >11.867V</td><td  >0.86%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.000V</td><td  >4.923V</td><td  >1.54%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.287V</td><td  >3.160V</td><td  >3.86%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.941V</td><td  >4.876V</td><td  >1.32%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-7">Advanced Transient Response at 50% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.970V</td><td  >11.811V</td><td  >1.33%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.000V</td><td  >4.921V</td><td  >1.58%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.288V</td><td  >3.165V</td><td  >3.74%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.942V</td><td  >4.899V</td><td  >0.87%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-20">Advanced Transient Response at 50% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.970V</td><td  >11.763V</td><td  >1.73%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.000V</td><td  >4.911V</td><td  >1.78%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.288V</td><td  >3.192V</td><td  >2.92%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.942V</td><td  >4.883V</td><td  >1.19%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3kXcYt2CVDVzi8kwyfaQNm.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n4f3gzEdQ42SgDqUJa5vVB.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QwbUvPMvHQprBJArxzyrf4.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AQQnDzwcJTMxWMnZCJBM8Q.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nErBxVJntyeCyqecKoWKtE.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6zo7RcjhnG94oJdSHXQMWZ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8uy5JCzJ2KUmnW59CQcFiQ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MpD5JFjzMtYqf9oQsrqT4H.png" alt="" /></figure></figure><p>The transient response is not that good, especially at +12V where we would like to see readings within 1% and ideally close to 0.5%.</p><h2 id="turn-on-transient-tests-20">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/iSy5S5DBRxPSBwrcNFi9RZ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j8tQyFoxq2iQkKhbCuGnRW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CCo9JtNyPcvdHekRx9ATE.jpg" alt="" /></figure></figure><p>All three slopes are pretty smooth.</p><h2 id="ripple-measurements-20">Ripple Measurements</h2><p><span>Ripple represent the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10-degree Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</span></p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><thead><tr><th  ><strong>Test</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>10% Load</strong></th><td  >15.9 mV</td><td  >8.4 mV</td><td  >10.6 mV</td><td  >11.4 mV</td><td  >Pass</td></tr><tr><th  ><strong>20% Load</strong></th><td  >10.9 mV</td><td  >8.8 mV</td><td  >11.4 mV</td><td  >12.0 mV</td><td  >Pass</td></tr><tr><th  ><strong>30% Load</strong></th><td  >11.0 mV</td><td  >9.7 mV</td><td  >12.0 mV</td><td  >12.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>40% Load</strong></th><td  >12.7 mV</td><td  >10.8 mV</td><td  >12.4 mV</td><td  >13.3 mV</td><td  >Pass</td></tr><tr><th  ><strong>50% Load</strong></th><td  >13.0 mV</td><td  >11.0 mV</td><td  >12.8 mV</td><td  >13.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>60% Load</strong></th><td  >14.0 mV</td><td  >12.5 mV</td><td  >14.5 mV</td><td  >15.4 mV</td><td  >Pass</td></tr><tr><th  ><strong>70% Load</strong></th><td  >15.3 mV</td><td  >12.2 mV</td><td  >13.6 mV</td><td  >15.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>80% Load</strong></th><td  >14.5 mV</td><td  >12.3 mV</td><td  >14.8 mV</td><td  >14.9 mV</td><td  >Pass</td></tr><tr><th  ><strong>90% Load</strong></th><td  >15.5 mV</td><td  >16.3 mV</td><td  >14.8 mV</td><td  >18.9 mV</td><td  >Pass</td></tr><tr><th  ><strong>100% Load</strong></th><td  >21.0 mV</td><td  >13.4 mV</td><td  >14.8 mV</td><td  >15.5 mV</td><td  >Pass</td></tr><tr><th  ><strong>110% Load</strong></th><td  >20.7 mV</td><td  >14.2 mV</td><td  >15.6 mV</td><td  >16.0 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 1</strong></th><td  >15.8 mV</td><td  >10.9 mV</td><td  >13.3 mV</td><td  >12.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 2</strong></th><td  >20.4 mV</td><td  >12.7 mV</td><td  >14.2 mV</td><td  >25.6 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/XYSn5WAkj9b6A49UxWnGYk.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WZ2hQLUMdsBRQFSobFJqcM.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tjwzQ9hJAWQfH3vqUzKNp9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pJxZda9cH3gPJHEbpnASkb.png" alt="" /></figure></figure><p>The ripple suppression is good on all rails.</p><h2 id="ripple-at-full-load-20">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/HWm5MjLDVUzyKJUsZ6Xy7U.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NRS6xLpEaXeXiRkUBFxJ3G.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9vhroVsAihNFUwoUCGXZye.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZCkUrgFcFySyaE8i5HdXyi.jpg" alt="" /></figure></figure><h2 id="ripple-at-110-load-19">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fEYWXfHDm7WNxgS8gN3s9N.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FBHdPWRKGXUdGPo27XkSM8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bbzXHfyCXdQjBnVFdKENH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KW9K6kSAVT54GLyZgFWxPK.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-1-20">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/duV8e6BpuPP6TuKR5skoii.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bb6aXiNLdejTMR23cLtuqR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Kce2iWLF6Uhu9vccCVNrnk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7oem7qHAiGbTiXNfuvaQsB.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-2-15">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BAjsdTdwSSfKLqqcSMVV3B.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cu753APqbKMuawann2VBoR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UuKhZYj3j4WQLDqaXJriPA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Gc2zEf9cJwsbi5gi4AfaTR.jpg" alt="" /></figure></figure><h2 id="emc-pre-compliance-testing-average-and-peak-emi-detector-results">EMC Pre-Compliance Testing – Average and Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1469px;"><p class="vanilla-image-block" style="padding-top:34.72%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/isPSKRLaLDgGvpA7VpJ2B.jpg" mos="https://cdn.mos.cms.futurecdn.net/isPSKRLaLDgGvpA7VpJ2B.jpg" align="" fullscreen="1" width="1469" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/isPSKRLaLDgGvpA7VpJ2B.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The conducted EMI emissions are low, throughout the entire frequency range (150KHz to 30MHz).</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="performance-noise-and-efficiency">Performance, Noise and Efficiency</h2><h2 id="performance-rating-20">Performance Rating</h2><p><a href="http://media.bestofmicro.com/2/N/848975/gallery/Result-34-32_Relative_Performance_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/Jrcvmu6daHi2f5upVPYW24.png" mos="https://cdn.mos.cms.futurecdn.net/Jrcvmu6daHi2f5upVPYW24.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Jrcvmu6daHi2f5upVPYW24.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The overall performance is good, but not high enough to threaten the Seasonic Focus Plus Platinum model with similar capacity. Even the Corsair RM550x with a lower efficiency rating achieves a higher score.</p><h2 id="noise-rating-20">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/X/W/848804/gallery/Result-37-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/N2BUofA4PimBRvXd7aHV4T.png" mos="https://cdn.mos.cms.futurecdn.net/N2BUofA4PimBRvXd7aHV4T.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/N2BUofA4PimBRvXd7aHV4T.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>This is one of the quietest PSUs that we have ever tested.</p><h2 id="efficiency-rating-20">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/X/U/848802/gallery/Result-38-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:633px;"><p class="vanilla-image-block" style="padding-top:80.73%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/82mHvqXGo9nVdUX8ExSXxX.png" mos="https://cdn.mos.cms.futurecdn.net/82mHvqXGo9nVdUX8ExSXxX.png" align="" fullscreen="1" width="633" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/82mHvqXGo9nVdUX8ExSXxX.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The overall efficiency is pretty high, yet the Seasonic SSR-550PX takes the lead, again.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="bottom-line-4">Bottom Line</h2><p><span>The power supply market is tough, and a handful of brands dominate the field, using platforms that are usually made by Seasonic, Super Flower, or CWT. So it is nice to see something new and promising in the Ion+ line, which results from a collaboration between Fractal Design and High Power. , Since Fractal Design doesn't have the experience that the dominant brands have, it is natural for some things to pass under its radar. For example in all Ion+ units, the efficiency levels with 2% of the max-rated-capacity are super low and the newest ATX spec will require better performance in 2020 (>70% efficiency with 10W, for PSUs with less than 500W max power, or 2% of the max-rated-capacity for >500W PSUs).</span></p><p>Another problem that needs addressing is the high OCP triggering point on the minor rails. Moreover, the 5VSB rail is not so efficient, and this is a shame for a modern PSU, especially if we take into account that there are many efficiency standards that ask for high efficiency from this rail (CEC, Cybenetics ETA, etc.) Finally, the cables are highly flexible, long enough, and the amount of connectors is satisfactory, but the distance between the peripheral connectors is small at only 120mm. Ideally, it should be 150mm.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/9MZxQqy9EYRgkXkjNbE2FW.jpg" mos="https://cdn.mos.cms.futurecdn.net/9MZxQqy9EYRgkXkjNbE2FW.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/9MZxQqy9EYRgkXkjNbE2FW.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p><span>The smallest member of the Ion+ family with 560W capacity has a fair price and offers dead silent operations, even under high loads and increased operating temperatures. Its overall performance is good but not high enough to threaten the popular Seasonic Focus Plus Platinum with 550W max power (we haven't reviewed this model, although we have data for it. You can see our </span><a href="https://www.tomshardware.com/reviews/seasonic-ssr-650px-psu,5786.html"><span>review of the SSR-650PX</span></a><span>). The only area in which the Ion+ 560P manages to take the lead from the Seasonic SSR-550PX is in noise output, where it is slightly quieter. Finally, the warranty period is the same on both models, at ten-years. So if noise is your main concern, the Ion+ might be worth considering but its competitor is better overall. </span></p><p><em>Image Credits: Tom's Hardware</em></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><p><strong><em>Disclaimer:</em></strong><em> Aris Mpitziopoulos is Tom's Hardware's PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em>, and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom's Hardware. Neither Tom's Hardware nor its parent company, Future</em><span class="st"> PLC</span><em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Fractal Design ION+ 660P Power Supply Review: Compact And Silent ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/fractal-design-ion-660p-power-supply-review,6266.html</link>
                                                                            <description>
                            <![CDATA[ The Fractal Design Ion+ 660P is a mid-capacity power supply featuring good performance and silent operation. ]]>
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                                                                        <pubDate>Wed, 28 Aug 2019 12:00:00 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:32:20 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <h2 id="specifications-and-part-analysis-3">Specifications and Part Analysis</h2><p>The Fractal Design Ion+ 660P achieves good performance and dead silent operation. Its low noise output under all conditions is among its significant advantages over the popular Seasonic Focus Plus Platinum. The latter performs better, but it has 25.35 dB(A) overall noise output, while the Ion+ 660P stays much lower at 13.74 dB(A). With a street price of $109.99 (£104.99 in the UK), the Ion+ 660P is about the same price <strong><span>as its main competitor and offers a quieter experience but a bit less performance.</span></strong></p><p>We have already evaluated <a href="https://www.tomshardware.com/reviews/fractal-design-ion-860p-power-supply,6239.html">Fractal Design's 860W Ion+ model</a>, which performed quite well and managed to keep its noise output low, even under harsh conditions (increased loads and operating temperatures). Next on our list is the 660 W model, which has enough capacity to power a strong single-GPU system. Like its big brother, the Ion+ 660P promises for good performance and dead silent operation. Lately, more and more users seek quiet components, and manufacturers have to comply if they want to remain in the game.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JsDbCqu5NnJKiFgZxmA44T.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xsKCe9j2MKr26mNJK4tygT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iPLAXzq6MDVe48bzaMBwfn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZyWbPkfvsVJppzZuEvq455.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HUVCtMiEXoMqNFHve2359Q.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/i3NFqQqpcwvp64ze5qJHLc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s3NoVxk5DE2AhFSdWLeGFP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fLAs33M3uZVBeU8mB7MWUY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZcoDTcdMZMd3n3Qc6cBZS6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GXDZXgbfbKDLGgguouv8Go.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DBZoKxwykAGwXQ3QXKKh7B.jpg" alt="" /></figure></figure><p>The table below shows the MSRP of each Ion+ model in all major regions.</p><div ><table><thead><tr><th  ><strong>Product</strong></th><th  ><strong>USD</strong></th><th  ><strong>GBP</strong></th><th  ><strong>EURO</strong></th><th  ><strong>SEK</strong></th><th  ><strong>RMB</strong></th><th  ><strong>YEN</strong></th></tr></thead><tbody><tr><th  ><strong>Ion+ 560P</strong></th><td  >99.99</td><td  >94.99</td><td  >106,99</td><td  >1149</td><td  >799</td><td  >11900</td></tr><tr><th  ><strong>Ion+ 660P</strong></th><td  >109.99</td><td  >104.99</td><td  >117,99</td><td  >1269</td><td  >899</td><td  >13400</td></tr><tr><th  ><strong>Ion+ 760P</strong></th><td  >119.99</td><td  >114.99</td><td  >129,99</td><td  >1389</td><td  >969</td><td  >14900</td></tr><tr><th  ><strong>Ion+ 860P</strong></th><td  >129.99</td><td  >124.99</td><td  >139,99</td><td  >1509</td><td  >1049</td><td  >16400</td></tr></tbody></table></div><h2 id="specifications-21">Specifications</h2><div ><table><tbody><tr><th  ><strong>Manufacturer (OEM)</strong></th><td  >High Power</td></tr><tr><th  ><strong>Max. DC Output</strong></th><td  >660W</td></tr><tr><th  ><strong>Efficiency</strong></th><td  >80 PLUS Platinum, ETA-A (88-91%) *</td></tr><tr><th  ><strong>Noise</strong></th><td  >LAMBDA-A++ (<15 dB[A]) *</td></tr><tr><th  ><strong>Modular</strong></th><td  >✓ (Fully)</td></tr><tr><th  ><strong>Intel C6/C7 Power State Support</strong></th><td  >✓</td></tr><tr><th  ><strong>Operating Temperature (Continuous Full Load)</strong></th><td  >0 - 50°C</td></tr><tr><th  ><strong>Over Voltage Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Under Voltage Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Power Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Current (+12V) Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Temperature Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Short Circuit Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Surge Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Inrush Current Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Fan Failure Protection</strong></th><td  >✗</td></tr><tr><th  ><strong>No Load Operation</strong></th><td  >✓</td></tr><tr><th  ><strong>Cooling</strong></th><td  >140mm Fluid Dynamic Bearing Fan (DYNAMIC X2 GP-14)</td></tr><tr><th  ><strong>Semi-Passive Operation</strong></th><td  >✓ (Selectable)</td></tr><tr><th  ><strong>Dimensions (</strong><span class="spelle"><strong>W x H x D</strong></span><strong>)</strong></th><td  >150 x 85 x 150mm</td></tr><tr><th  ><strong>Weight</strong></th><td  >1.65 kg (3.64 lb)</td></tr><tr><th  ><strong>Form Factor</strong></th><td  >ATX12V v2.4, EPS 2.92</td></tr><tr><th  ><strong>Warranty</strong></th><td  >10 Years</td></tr></tbody></table></div><p>* Not certified yet by Cybenetics. According to our measurements the PSU falls into these efficiency and noise categories.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Xb7BC6VraPN4T9h8qCgG5P.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4i7tVTVvuRkDASzZVAawpA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NXWBAYEnLgrSEwUsTLQEoT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jLuUzDeRstFn6NxhrTftaW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NQFwWt8vFSz8BQCZRFcSPi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2bAeoaKnJ8CrwZXzdU7fkP.jpg" alt="" /></figure></figure><h2 id="power-specifications-21">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >55</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">110</td><td  >660</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">660</td></tr></tbody></table></div><h2 id="cables-and-connectors-7">Cables and Connectors</h2><div ><table><thead><tr><th  colspan="5"><strong>Modular Cables</strong></th></tr></thead><tbody><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><th  ><strong>ATX connector 20+4 pin (600mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4+4 pin EPS12V (700mm)</strong></th><td  >1</td><td  >1</td><td  >16AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (550mm+120mm) </strong></th><td  >2</td><td  >4</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (650mm+120mm)</strong></th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (400mm+120mm+120mm+120mm)</strong></th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4 pin Molex (400mm+120mm+120mm+120mm)</strong></th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>AC Power Cord (1400mm) - C13 coupler</strong></th><td  >1</td><td  >1</td><td  >16AWG</td><td  >-</td></tr></tbody></table></div><p>The cables are indeed highly flexible, as Fractal Design states and pretty long. Our only objection here is the small distance between the peripheral connectors, at 120mm. Normally it should be 150mm, at least, but most manufacturers try to restrict the cost by chopping down the distance between those connectors.</p><p>The 560W and 660W models come with a single EPS connector, while the other two members of the Ion+ line with 760W and 860W max power have a couple of these connectors.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8ntTxEjaVDvwTMMDonavk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Wd2RAHuTWSzAaVMLroyH8M.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oDfbbHpHANULqZGnvbY5Cj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M2MhMXvFyHWEWHWoQbe3rD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KmXLk5pD2Evy9CSGU8Pvp9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AKtZrcHeqcbS3DX8XSdZQY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/U2bwu4FRtFrsUgXitmdKNP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vXotucivvyKhhB2tvCCEg8.jpg" alt="" /></figure></figure><h2 id="component-analysis-21">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, allowing you to understand better the components we're about to discuss.</p><div ><table><thead><tr><th  colspan="2"><strong>General Data</strong></th></tr></thead><tbody><tr><th  >Manufacturer (OEM)</th><td  >High Power</td></tr><tr><th  >PCB Type</th><td  >Double Sided</td></tr><thead><tr><th  colspan="2"><strong>Primary Side</strong></th></tr></thead><tr><th  >Transient Filter</th><td  >4x Y caps, 2x X caps, 3x CM chokes, 1x MOV,1x Discharge IC</td></tr><tr><th  >Inrush Protection</th><td  >NTC Thermistor & Relay</td></tr><tr><th  >Bridge Rectifier(s)</th><td  >2x <a href="https://www.datasheet.live/index.php?title=Special:PdfViewer&url=https://pdf.datasheet.live/datasheets-1/lite-on_semiconductor/GBU1506.pdf">GBU1506</a> (600V, 15A @ 100°C)</td></tr><tr><th  >APFC MOSFETS</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPA60R120P7-DS-v01_00-EN.pdf?fileId=5546d4625b10283a015b1a4c2ab65f51">IPA60R120P7</a> (650V, 16A @ 100°C, 0.120Ohm)</td></tr><tr><th  >APFC Boost Diode</th><td  >1x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IDH06G65C5-DS-v02_02-en.pdf?fileId=db3a304339dcf4b1013a0353dadb5970">IDH06G65C5</a> (650V, 6A @ 145°C)</td></tr><tr><th  >Hold-up Cap(s)</th><td  >2x Rubycon (400V, 390uF each or 780uF combined, 2,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_MXH.pdf">MXH</a>)</td></tr><tr><th  >Main Switchers</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPA60R120P7-DS-v01_00-EN.pdf?fileId=5546d4625b10283a015b1a4c2ab65f51">IPA60R120P7</a> (650V, 16A @ 100°C, 0.120Ohm)</td></tr><tr><th  >APFC Controller</th><td  >Infineon <a href="https://www.infineon.com/dgdl/Infineon-ICE3PCS01-DS-v03_00-EN.pdf?fileId=db3a304329a0f6ee0129a67ae8c02b46">ICE3PCS01G</a></td></tr><tr><th  >Resonant Controllers</th><td  >Champion <a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901.pdf">CM6901X</a></td></tr><tr><th  >Topology</th><td  >Primary side: Half-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><thead><tr><th  colspan="2"><strong>Secondary Side</strong></th></tr></thead><tr><th  >+12V MOSFETS</th><td  >6x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC027N04LSG-DS-v01_04-en.pdf?fileId=db3a30431689f4420116c4323646080c">BSC027N04LS</a> (40V, 88A @ 100°C, 2.7mOhm)</td></tr><tr><th  >5V & 3.3V</th><td  >DC-DC Converters:8x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC0906NS-DS-v02_05-en.pdf?fileId=db3a30433072cd8f0130986c816b2f8c">BSC0906NS</a> (30V, 40A @ 100°C, 4.5mOhm) PWM Controllers: ANPEC <a href="http://www.anpec.com.tw/ashx_prod_file.ashx?prod_id=717&file_path=20131210180212790.pdf&original_name=APW7159A.pdf">APW7159C</a></td></tr><tr><th  >Filtering Capacitors</th><td  >Electrolytics: 4x Nippon Chemi-Con (4-10,000h @ 105°C, <a href="http://www.chemi-con.com/upload/files/5/1/74811667552d6c4d41a84c.pdf">KY</a>), 5x Rubycon (3-6,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_yxg.pdf">YXG</a>), 1x Rubycon (6-10,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_zlh.pdf">ZLH</a>) Polymers: 31x FPCAP, 6x NIC</td></tr><tr><th  >Supervisor IC</th><td  >SITI <a href="http://silicon-touch.com/product/spec/Power/PS224.pdf">PS224</a> (OCP, OVP, UVP, SCP, PG)</td></tr><tr><th  >Micro Controller</th><td  >STC <a href="http://www.stcmicro.com/STC/STC15W401AS.html">15W408AS</a></td></tr><tr><th  >Fan Model</th><td  >Fractal Design DYNAMIC X2 GP-14 (140mm, 3-12V, 0.30A, 1400rpm, Fluid Dynamic Bearing Fan )</td></tr><tr><th  >Fan Power Transistor</th><td  >STi <a href="https://www.st.com/resource/en/datasheet/2sd882.pdf">2SD882</a> (NPN)</td></tr><thead><tr><th  colspan="2"><strong>5VSB Circuit</strong></th></tr></thead><tr><th  >Rectifier</th><td  >1x PFC <a href="http://www.pfc-device.com/upload/productfs681501121555120268.pdf">P10V45SP</a> SBR (45V, 10A) & 2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC0906NS-DS-v02_05-en.pdf?fileId=db3a30433072cd8f0130986c816b2f8c">BSC0906NS</a> (30V, 40A @ 100°C, 4.5mΩ)</td></tr><tr><th  >Standby PWM Controller</th><td  >Excelliance MOS Corp <a href="http://www.excelliancemos.com/download_prod_s.php?ds=70&file=2">EM8569</a></td></tr><thead><tr><th  colspan="2"><strong>-12V Circuit</strong></th></tr></thead><tr><th  >Rectifier</th><td  >KEC KIA7912PI (-12V, 1A)</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/s2mDWUwWK4yqWNQXfbaDLk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HmRBD7kL7vvAZHYsuQyd5c.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tf8oxFizGevLsg5Kg2JCRU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/U3ajagssfgjkchqFSrtcAm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MRgkEBHqsicFUUNGAa6Z8i.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RQ6b8qo5ZkhbYVhEkQBB7D.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JSnX2z7iJxJELGE6JjJBrB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QvvcMQpj67iPPk7WBuUkT8.jpg" alt="" /></figure></figure><p>This is a well-built platform, provided by High Power. The design is clean, without any wires blocking the airflow. Moreover, the clearance between the parts is enough for the air to move freely among them and help in heat dissipation.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/oRdPxkJCwNaiYGSYKDPjjY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6NU5UzWRc5dRKWfhFdv3ZM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ugWzTv9VeEe483oJiP53BB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mZDdr7HhzuXH64rJn6yhW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/t9FrJhktP6RkgVbgDRCLCZ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Kb8282YVqYE2tWuDCVgbxP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VLobYGFquuc8JQqdkDBD85.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cLgdYLBKbM56Vk72JFLfwP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bRSShUbQEBU2qsdEsG8e9P.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b3xUs59thL6ASAK4WW8fKQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4RE2Lu5Ni4JscYsXt6JiG4.jpg" alt="" /></figure></figure><p>The transient filter is complete, and the pair of bridge rectifiers is bolted on a heat sink.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TuoS7RxCjZyDJCiHco8eXU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7Fi2DM5X28wjMc2bFTXbw4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eZMNqs4qAaNALjt5hqZYGc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NNfzJG7ygNKXmV4SbdTT5R.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/d6bet8jCDa4Usnwxdjfr8T.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xmqiAEYZ3FZW2myJeEZqSh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CP5cnzGKKZvyesKce6CcMC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/USZTygDqXX9XLMETbHGkD7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LdQfjm2UVpemqr2xF7QfsM.jpg" alt="" /></figure></figure><p>On the secondary side, a pair of small heat sinks assist in cooling down the +12V FETs, which are installed on the solder side of the PCB.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/gGPPN2sLheXqY32TMk6Qjh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/shUd7bWNbKv37S4GwGsAEh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yjeMyKGiYp2jrRQAQw6kfG.jpg" alt="" /></figure></figure><p>A great number of polymer caps is installed on the modular side of the PCB. Several quality electrolytic caps, installed on the main PCB, also handle ripple filtering.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TFFACqFrVQ5tQFDuJNyJjY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6K9Aqv6WGJ7A9sx3cZrU3C.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8shzyNGi4oYRpjE4DJZUag.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4RqwDybocMDP9vuRvcP5AY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FRqnsGGDBNPNyfxdYCMGkE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xoYsxLrrvFc8HKha8qN4RX.jpg" alt="" /></figure></figure><p>The soldering quality is pretty good.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/g4pbXefEGZcfU48HAii4u6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gbH4gGZRJmD3sqdQMQJDHH.jpg" alt="" /></figure></figure><p>The cooling fan measures 140mm across and uses a fluid dynamic bearing.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="load-regulation-hold-up-time-inrush-current-efficiency-and-noise-3">Load Regulation, Hold-Up Time, Inrush Current, Efficiency and Noise</h2><p><strong>To learn more about our PSU tests and methodology, please check out <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="386be6e5-db46-4bff-a6c0-adfacf4cf884">            <a href="https://www.newegg.com/fractal-design-ion-fd-psu-ionp-660p-bk-660w/p/N82E16817580022" data-model-name="Fractal Design ION+ 660P" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.25%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/uVNuL5zDNLzC2tqmq2m267.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Fractal Design ION+ 660P</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="ceb62772-35e0-407a-bea6-187a86141bb5">            <a href="https://www.newegg.com/corsair-rm-series-rm650-cp-9020194-na-650w/p/N82E16817139101" data-model-name="Corsair RM650" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.23%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/v8RNqqfQhxXLR4dsdyk92K.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM650</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="1c1a0d86-d613-47cf-9b25-7927f0e6059b">            <a href="http://www.tkqlhce.com/click-8900246-12920453?sid=tomshardware-&url=https://www.newegg.com/Product/Product.aspx?Item=1HU-0095-00055" data-model-name="FSP Hydro PTM 650W" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/CNRrUaz9zduqCgppA8Vn6Q.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">FSP Hydro PTM 650W</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-21">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MyVJxPSsWznBjzcbrPX6ke.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7esYLFgLXvCMs4WARvBao.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/h5FyFBLKuAEaxXiqCh7YFA.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vh3WGVAHdfzprdfT24x8dj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EhqnJW5WVhQEX2vKCqpNUA.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9eKsyBZ3MDMwSBZY75FNj4.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nT4SpMFW8ifznHWZifKqwe.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6QMsBCnyFg7HJXoJSQFQRZ.png" alt="" /></figure></figure><p>The load regulation at +12V is not so tight. On the 5V and 5VSB it is satisfactory, while at 3.3V we would like it to be within 1%.</p><h2 id="hold-up-time-21">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/WqEQihW8MXeNNAyJu5hPzL.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/irz6ctxAXgoaQ2aeyVtNEo.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3ox3JbWnSQrpYJG2mCG9CU.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pJLPKQDavzLJHP8ptMdP66.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/u872fTrACm7V66QtixXn6A.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CDvf7Riy4jm9tgcBfM2txV.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2NREEz5f5HSQXAHpvEAWGj.jpg" alt="" /></figure></figure><p>The hold-up time is quite long, but the power ok signal's hold-up time is a little lower than 16ms, which is the period that the ATX spec requires.</p><h2 id="inrush-current-21">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/iWu8X7zjewehCQrKipbvo5.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rLn8tg9jBeQ7RNhiQrUMzJ.png" alt="" /></figure></figure><p>Low inrush currents with both voltage inputs.</p><h2 id="10-110-load-tests-20">10-110% Load Tests</h2><p>These tests reveal the Ion+ 660P’s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>Temps (In/Out)</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>3.675A</strong></td><td  ><strong>1.990A</strong></td><td  ><strong>1.991A</strong></td><td  ><strong>1.000A</strong></td><td  >65.746</td><td  rowspan="2">86.875%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >44.25°C</td><td  >0.963</td></tr><tr><td  >12.011V</td><td  >5.029V</td><td  >3.314V</td><td  >5.001V</td><td  >75.679</td><td  >39.45°C</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>8.414A</strong></td><td  ><strong>2.983A</strong></td><td  ><strong>2.993A</strong></td><td  ><strong>1.201A</strong></td><td  >131.860</td><td  rowspan="2">90.910%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >46.03°C</td><td  >0.987</td></tr><tr><td  >11.998V</td><td  >5.032V</td><td  >3.306V</td><td  >4.999V</td><td  >145.044</td><td  >40.61°C</td><td  >115.22V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>13.498A</strong></td><td  ><strong>3.485A</strong></td><td  ><strong>3.481A</strong></td><td  ><strong>1.403A</strong></td><td  >197.787</td><td  rowspan="2">91.994%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >47.79°C</td><td  >0.994</td></tr><tr><td  >11.985V</td><td  >5.027V</td><td  >3.302V</td><td  >4.989V</td><td  >215.001</td><td  >41.56°C</td><td  >115.17V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>18.587A</strong></td><td  ><strong>3.983A</strong></td><td  ><strong>4.001A</strong></td><td  ><strong>1.608A</strong></td><td  >263.788</td><td  rowspan="2">92.030%</td><td  rowspan="2">384</td><td  rowspan="2">6.8</td><td  >41.84°C</td><td  >0.994</td></tr><tr><td  >11.975V</td><td  >5.024V</td><td  >3.298V</td><td  >4.977V</td><td  >286.634</td><td  >48.41°C</td><td  >115.15V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>23.356A</strong></td><td  ><strong>4.985A</strong></td><td  ><strong>4.995A</strong></td><td  ><strong>1.813A</strong></td><td  >329.912</td><td  rowspan="2">91.850%</td><td  rowspan="2">387</td><td  rowspan="2">6.9</td><td  >42.17°C</td><td  >0.996</td></tr><tr><td  >11.963V</td><td  >5.017V</td><td  >3.302V</td><td  >4.965V</td><td  >359.186</td><td  >49.62°C</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>28.140A</strong></td><td  ><strong>5.989A</strong></td><td  ><strong>6.010A</strong></td><td  ><strong>2.020A</strong></td><td  >396.029</td><td  rowspan="2">91.233%</td><td  rowspan="2">425</td><td  rowspan="2">7.4</td><td  >42.54°C</td><td  >0.997</td></tr><tr><td  >11.948V</td><td  >5.011V</td><td  >3.294V</td><td  >4.953V</td><td  >434.087</td><td  >50.40°C</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>7</strong></th><td  ><strong>32.934A</strong></td><td  ><strong>6.998A</strong></td><td  ><strong>7.030A</strong></td><td  ><strong>2.228A</strong></td><td  >462.153</td><td  rowspan="2">90.666%</td><td  rowspan="2">722</td><td  rowspan="2">18.4</td><td  >43.07°C</td><td  >0.998</td></tr><tr><td  >11.934V</td><td  >5.003V</td><td  >3.286V</td><td  >4.940V</td><td  >509.732</td><td  >51.21°C</td><td  >115.15V</td></tr><tr><th  rowspan="2"><strong>8</strong></th><td  ><strong>37.746A</strong></td><td  ><strong>7.995A</strong></td><td  ><strong>8.030A</strong></td><td  ><strong>2.431A</strong></td><td  >528.277</td><td  rowspan="2">90.044%</td><td  rowspan="2">822</td><td  rowspan="2">21.4</td><td  >43.74°C</td><td  >0.998</td></tr><tr><td  >11.918V</td><td  >5.005V</td><td  >3.288V</td><td  >4.937V</td><td  >586.689</td><td  >52.66°C</td><td  >115.15V</td></tr><tr><th  rowspan="2"><strong>9</strong></th><td  ><strong>42.963A</strong></td><td  ><strong>8.503A</strong></td><td  ><strong>8.527A</strong></td><td  ><strong>2.433A</strong></td><td  >593.996</td><td  rowspan="2">89.485%</td><td  rowspan="2">977</td><td  rowspan="2">26.7</td><td  >44.40°C</td><td  >0.998</td></tr><tr><td  >11.905V</td><td  >5.000V</td><td  >3.284V</td><td  >4.934V</td><td  >663.796</td><td  >53.77°C</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>10</strong></th><td  ><strong>47.963A</strong></td><td  ><strong>9.017A</strong></td><td  ><strong>9.064A</strong></td><td  ><strong>3.061A</strong></td><td  >660.013</td><td  rowspan="2">88.773%</td><td  rowspan="2">1119</td><td  rowspan="2">30.8</td><td  >45.80°C</td><td  >0.998</td></tr><tr><td  >11.890V</td><td  >4.993V</td><td  >3.277V</td><td  >4.903V</td><td  >743.487</td><td  >55.59°C</td><td  >115.15V</td></tr><tr><th  rowspan="2"><strong>11</strong></th><td  ><strong>53.581A</strong></td><td  ><strong>9.022A</strong></td><td  ><strong>9.070A</strong></td><td  ><strong>3.063A</strong></td><td  >726.058</td><td  rowspan="2">88.066%</td><td  rowspan="2">1122</td><td  rowspan="2">31.0</td><td  >46.62°C</td><td  >0.998</td></tr><tr><td  >11.876V</td><td  >4.990V</td><td  >3.275V</td><td  >4.899V</td><td  >824.451</td><td  >57.46°C</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>CL1</strong></th><td  ><strong>0.154A</strong></td><td  ><strong>13.002A</strong></td><td  ><strong>13.000A</strong></td><td  ><strong>0.000A</strong></td><td  >109.741</td><td  rowspan="2">84.213%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >49.74°C</td><td  >0.984</td></tr><tr><td  >11.973V</td><td  >5.016V</td><td  >3.283V</td><td  >5.058V</td><td  >130.313</td><td  >42.25°C</td><td  >115.21V</td></tr><tr><th  rowspan="2"><strong>CL2</strong></th><td  ><strong>55.038A</strong></td><td  ><strong>1.003A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  >668.412</td><td  rowspan="2">89.434%</td><td  rowspan="2">1118</td><td  rowspan="2">30.8</td><td  >45.38°C</td><td  >0.998</td></tr><tr><td  >11.903V</td><td  >5.005V</td><td  >3.300V</td><td  >4.975V</td><td  >747.378</td><td  >55.12°C</td><td  >115.20V</td></tr></tbody></table></div><p>The unit can easily handle high operating temperatures, without increasing its fan speed. Another thing that makes an impression is the fan's low startup voltage, which allows for very slow rotation speeds.</p><h2 id="20-80w-load-tests-21">20-80W Load Tests</h2><p>In the following tests, we measure the Ion+ 660P's efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.205A</strong></td><td  ><strong>0.498A</strong></td><td  ><strong>0.482A</strong></td><td  ><strong>0.199A</strong></td><td  >19.649</td><td  rowspan="2">50.174%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.906</td></tr><tr><td  >12.068V</td><td  >5.036V</td><td  >3.312V</td><td  >5.034V</td><td  >39.162</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>2.475A</strong></td><td  ><strong>0.996A</strong></td><td  ><strong>0.994A</strong></td><td  ><strong>0.399A</strong></td><td  >40.043</td><td  rowspan="2">81.859%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.934</td></tr><tr><td  >12.014V</td><td  >5.029V</td><td  >3.316V</td><td  >5.021V</td><td  >48.917</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>3.673A</strong></td><td  ><strong>1.491A</strong></td><td  ><strong>1.478A</strong></td><td  ><strong>0.598A</strong></td><td  >59.526</td><td  rowspan="2">86.109%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.959</td></tr><tr><td  >12.015V</td><td  >5.033V</td><td  >3.308V</td><td  >5.019V</td><td  >69.129</td><td  >115.16V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>4.942A</strong></td><td  ><strong>1.990A</strong></td><td  ><strong>1.992A</strong></td><td  ><strong>0.799A</strong></td><td  >79.951</td><td  rowspan="2">88.710%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.972</td></tr><tr><td  >12.009V</td><td  >5.027V</td><td  >3.312V</td><td  >5.006V</td><td  >90.126</td><td  >115.16V</td></tr></tbody></table></div><p>The efficiency with 20W load is very low.Strangely enough even the Ion+ 860P performed better at this load level.</p><h2 id="2-or-10w-load-test-21">2% or 10W Load Test</h2><p>Intel plans on raising the ante at efficiency levels under ultra-light loads. So from July 2020, the ATX spec will require 70% and higher efficiency with 115V input. The applied load is only 10W for PSUs with 500W and lower capacities, while for stronger units we dial 2% of their max-rated-capacity.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.924A</strong></td><td  ><strong>0.223A</strong></td><td  ><strong>0.220A</strong></td><td  ><strong>0.050A</strong></td><td  >13.267</td><td  rowspan="2">42.959%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.871</td></tr><tr><td  >12.078V</td><td  >5.038V</td><td  >3.324V</td><td  >5.039V</td><td  >30.883</td><td  >115.17V</td></tr></tbody></table></div><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/E2uteNAZnVLaxHUsZqu4RG.png" mos="https://cdn.mos.cms.futurecdn.net/E2uteNAZnVLaxHUsZqu4RG.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/E2uteNAZnVLaxHUsZqu4RG.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The efficiency with 2% load is bottom low. Normally it should be higher than 60%, at least. Again the Ion+ 860P achieved higher efficiency, almost 50%, in this test.</p><h2 id="efficiency-14">Efficiency</h2><p>Next, we plotted a chart showing the Ion+ 660P’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/CPAj7EcNkbjCViEU6VLezV.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/f7wBVJixtAoZTDih7ysKVE.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zuDy88PwS5TwmY5apsgTzj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oycXC2Z4KjpvkKZbfH3FgP.png" alt="" /></figure></figure><p>The efficiency with normal loads is good, but this is not the case with light loads.</p><h2 id="5vsb-efficiency-21">5VSB Efficiency</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.511</td><td  rowspan="2">68.775%</td><td  >0.104</td></tr><tr><td  >5.112V</td><td  >0.743</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.276</td><td  rowspan="2">74.839%</td><td  >0.205</td></tr><tr><td  >5.106V</td><td  >1.705</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.801</td><td  rowspan="2">76.719%</td><td  >0.319</td></tr><tr><td  >5.093V</td><td  >3.651</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >5.074</td><td  rowspan="2">77.525%</td><td  >0.392</td></tr><tr><td  >5.073V</td><td  >6.545</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.578</td><td  rowspan="2">77.739%</td><td  >0.431</td></tr><tr><td  >5.051V</td><td  >9.748</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >14.940</td><td  rowspan="2">77.026%</td><td  >0.482</td></tr><tr><td  >4.980V</td><td  >19.396</td><td  >115.13V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9BLFHiyamWxW8V34Akgz7R.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XLhmB6rd8WXjY4BqUS5hci.png" alt="" /></figure></figure><p>The 5VSB rail isn't so efficient. Please do note that in the charts above we average the readings of the #1, #2, #4 and #6 tests, to retain compatibility with previous results.</p><h2 id="power-consumption-in-idle-and-standby-21">Power Consumption In Idle And Standby</h2><div ><table><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">12.097V</td><td  rowspan="2">5.049V</td><td  rowspan="2">3.314V</td><td  rowspan="2">5.049V</td><td  rowspan="2">6.060</td><td  >0.446</td></tr><tr><td  >115.1V</td></tr><tr><th  colspan="5" rowspan="2"><strong>Standby</strong></th><td  rowspan="2">0.103</td><td  >0.015</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/WPxhMbWQdpaQZHeSXsmCua.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zMLGosYaMSfYTxYcuiebQa.png" alt="" /></figure></figure><h2 id="fan-rpm-delta-temperature-and-output-noise-21">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 36 to 45 degrees Celsius (96.8 to 113 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/VXMCw7JY9DZumsVeNbu3bX.png" mos="https://cdn.mos.cms.futurecdn.net/VXMCw7JY9DZumsVeNbu3bX.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/VXMCw7JY9DZumsVeNbu3bX.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:81.14%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/T9LmZpWZJAT9SDQNFfSDRA.png" mos="https://cdn.mos.cms.futurecdn.net/T9LmZpWZJAT9SDQNFfSDRA.png" align="" fullscreen="1" width="631" height="512" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/T9LmZpWZJAT9SDQNFfSDRA.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The fan profile is highly relaxed, with the maximum fan speed barely exceeding 1100 RPM.</p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/UfiAfREGBHnWSQQWJzUvwa.jpg" mos="https://cdn.mos.cms.futurecdn.net/UfiAfREGBHnWSQQWJzUvwa.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/UfiAfREGBHnWSQQWJzUvwa.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/UYFVCAkdcorMg7Tbbb9FZR.jpg" mos="https://cdn.mos.cms.futurecdn.net/UYFVCAkdcorMg7Tbbb9FZR.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/UYFVCAkdcorMg7Tbbb9FZR.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>This is a very quiet power supply. Under normal operating conditions, the noise will never exceed 25 dB(A).</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="protection-features-dc-power-sequencing-cross-load-tests-and-infrared-images-2">Protection Features, DC Power Sequencing, Cross-Load Tests and Infrared Images</h2><h2 id="protection-features-21">Protection Features</h2><p><strong>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</strong></p><div ><table><tbody><tr><td  colspan="2"><strong>Protection Features</strong></td></tr><tr><td  ><strong>OCP</strong></td><td  >12V: 74.2A (134.91%), 11.875V 5V: 29.2A (146%), 5.003V 3.3V: 30.6A (153%), 3.259V 5VSB: 5.1A (170%), 4.875V</td></tr><tr><td  ><strong>OPP</strong></td><td  >903.7W (136.92%)</td></tr><tr><td  ><strong>OTP</strong></td><td  >✓ (142°C @ 12V heat sink)</td></tr><tr><td  ><strong>SCP</strong></td><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><td  ><strong>PWR_OK</strong></td><td  >Accurate but lower than 16ms</td></tr><tr><td  ><strong>NLO</strong></td><td  >✓</td></tr><tr><td  ><strong>SIP</strong></td><td  >Surge: MOV Inrush: NTC Thermistor & Bypass Relay</td></tr></tbody></table></div><p>The OCP triggering points on the minor rails should be lower, close to 130%. There is no point for so high amperage on those rails, which are only lightly used nowadays. Moreover, there are no proper heat sinks on the DC-DC converters that generate the 5V and 3.3V rails, so such high loads can create problems.</p><p>The power ok signal is accurate, but lower than 16ms which is what the ATX spec requires. This can be easily fixed though, since the hold-up time is quite long at almost 20ms.</p><h2 id="dc-power-sequencing-21">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/prqoUnyj9pCJ9XtVqeDaEh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jKt6JMJQtsdvFh266wQGya.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FB4sZGoj4PsYNToFB8FNQB.jpg" alt="" /></figure></figure><p>No problems here since the 3.3V rail's voltage is lower in all tests.</p><h2 id="cross-load-tests-21">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-21">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/P85zrw9Pdvw8fyLTyhEecR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2NTfiwLfGP2G9fKE8kU4K.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9fzEFrkX6fefrMx8gXjxCZ.jpg" alt="" /></figure></figure><h2 id="efficiency-chart-16">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/RtB4n8v4sVGas9AXsFXaWW.jpg" mos="https://cdn.mos.cms.futurecdn.net/RtB4n8v4sVGas9AXsFXaWW.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/RtB4n8v4sVGas9AXsFXaWW.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The highest efficiency region is with 160W to 360W load at +12V, with the combined load on the minor rails staying below 35W.</p><h2 id="ripple-charts-16">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rWhtNgK8d7sBoef28DMJV7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vtJriBb4iGGRYiWktJS7xW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/22j8t8Vt9QrmoSrqRU7uB5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ss55YNJBNCQAa9pDcqyxhZ.jpg" alt="" /></figure></figure><h2 id="infrared-images-21">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/4o2RTaKGengADtwZfoco5Y.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gujnqB4jrkxJF4MX8E8VFP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nFeGunMueUwHvrEK8eDfgL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LDjzoer7mmaFFxh7jqnK76.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8HWi6HshhNX2Lxcr9ni96b.jpg" alt="" /></figure></figure><p>The hottest part is the DC-DC converters. We apply a high load on those rails during these tests, to check their behavior since in the majority of cases the manufacturers don't use beefy heat sink in these regulators.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="transient-response-tests-ripple-measurements-and-emc-pre-compliance-testing-2">Transient Response Tests, Ripple Measurements and EMC Pre-Compliance Testing</h2><h2 id="advanced-transient-response-tests-21">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms-8">Advanced Transient Response at 20% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.011V</td><td  >11.893V</td><td  >0.98%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.027V</td><td  >4.958V</td><td  >1.37%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.303V</td><td  >3.218V</td><td  >2.57%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.994V</td><td  >4.950V</td><td  >0.88%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-8">Advanced Transient Response at 20% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.009V</td><td  >11.836V</td><td  >1.44%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.019V</td><td  >4.918V</td><td  >2.01%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.304V</td><td  >3.212V</td><td  >2.78%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.986V</td><td  >4.887V</td><td  >1.99%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-21">Advanced Transient Response at 20% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.009V</td><td  >11.744V</td><td  >2.21%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.020V</td><td  >4.966V</td><td  >1.08%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.304V</td><td  >3.166V</td><td  >4.18%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.987V</td><td  >4.924V</td><td  >1.26%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-8">Advanced Transient Response at 50% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.971V</td><td  >11.875V</td><td  >0.80%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.022V</td><td  >4.954V</td><td  >1.35%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.297V</td><td  >3.206V</td><td  >2.76%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.973V</td><td  >4.929V</td><td  >0.88%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-8">Advanced Transient Response at 50% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.971V</td><td  >11.834V</td><td  >1.14%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.013V</td><td  >4.960V</td><td  >1.06%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.299V</td><td  >3.144V</td><td  >4.70%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.964V</td><td  >4.908V</td><td  >1.13%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-21">Advanced Transient Response at 50% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.970V</td><td  >11.834V</td><td  >1.14%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.014V</td><td  >4.938V</td><td  >1.52%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.299V</td><td  >3.195V</td><td  >3.15%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >4.964V</td><td  >4.891V</td><td  >1.47%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jh74aA7jK3rmNEyuRLJHVg.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s6jqTpVFQDb4w4oBbHqwCU.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kGUzSRGePnHmAk2YdYKYE3.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8Mj8WSYLuJzbis9w8xJnzQ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sxPNykXofEn8FU76jXcX6U.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UN7P5KmkGdVXGbt5u8LfVn.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jRXGvzDsQUCf8cbeMdxrXL.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CRcFD4HAuScDH7LiMNR9NJ.png" alt="" /></figure></figure><p>The transient response is satisfactory on all rails, especially the minor ones.</p><h2 id="turn-on-transient-tests-21">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/U92itj78qjLpWx7wa5MSc4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C4tWukLVm8VfHHZkW2TTrN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b8kPy4m23g39U2rFtWTEJW.jpg" alt="" /></figure></figure><p>The results of these tests are very good.</p><h2 id="ripple-measurements-21">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10 degrees Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><thead><tr><th  ><strong>Test</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>10% Load</strong></th><td  >12.7 mV</td><td  >3.9 mV</td><td  >10.9 mV</td><td  >6.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>20% Load</strong></th><td  >8.0 mV</td><td  >4.1 mV</td><td  >10.7 mV</td><td  >6.9 mV</td><td  >Pass</td></tr><tr><th  ><strong>30% Load</strong></th><td  >7.9 mV</td><td  >6.0 mV</td><td  >14.7 mV</td><td  >10.0 mV</td><td  >Pass</td></tr><tr><th  ><strong>40% Load</strong></th><td  >8.3 mV</td><td  >5.3 mV</td><td  >11.8 mV</td><td  >7.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>50% Load</strong></th><td  >8.5 mV</td><td  >5.7 mV</td><td  >11.7 mV</td><td  >7.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>60% Load</strong></th><td  >8.8 mV</td><td  >6.7 mV</td><td  >13.1 mV</td><td  >8.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>70% Load</strong></th><td  >9.4 mV</td><td  >6.2 mV</td><td  >13.2 mV</td><td  >8.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>80% Load</strong></th><td  >10.2 mV</td><td  >7.1 mV</td><td  >15.2 mV</td><td  >9.4 mV</td><td  >Pass</td></tr><tr><th  ><strong>90% Load</strong></th><td  >10.8 mV</td><td  >7.4 mV</td><td  >14.8 mV</td><td  >10.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>100% Load</strong></th><td  >16.3 mV</td><td  >8.7 mV</td><td  >15.5 mV</td><td  >11.0 mV</td><td  >Pass</td></tr><tr><th  ><strong>110% Load</strong></th><td  >17.8 mV</td><td  >8.9 mV</td><td  >15.3 mV</td><td  >10.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 1</strong></th><td  >11.0 mV</td><td  >5.2 mV</td><td  >16.0 mV</td><td  >7.4 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 2</strong></th><td  >16.2 mV</td><td  >7.5 mV</td><td  >12.4 mV</td><td  >10.0 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2DgdpuKK4fuYfBdjWyC6od.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CAMMzRj6hgJhVCAQJrPkfS.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KY29CcnQz83r3GbPJ58qQC.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b2kUQMtpRCDzcNNfRZfDQb.png" alt="" /></figure></figure><p>Ripple suppression is very good on all rails.</p><h2 id="ripple-at-full-load-21">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/64tBUsyeXtegajx8n8Hcvm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DLRqydQRgp2kQ2rut2iX5M.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eLHic9xW5am5yyrcCY3ye8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aaYxKEcN3Rmi8HbfKpESrj.jpg" alt="" /></figure></figure><h2 id="ripple-at-110-load-20">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aHCQ7KAapbZsuqBPvpa5X4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QFGXLvenkh7xQuWuwSahCH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YBaV4Grb7xuS2Jr5cDNQMi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZojJorSTDPvFXzHVqAPqTU.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-1-21">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/hrMiAz8kSpwcrmNqpmVpoY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QQT7Cz4K2f6UvCMSazZbqQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/V4ypEjTVjPLTtrCeae6xUR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/goi5BurtgDtRUTNLTG3geM.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-2-16">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vXyu3yQ7H5S7PETvZAv3fg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JJZiPfEtaUZ3o3PZhHVN26.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QHmQAPQumXkb2Za6biuRrc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YdrYv9y49z5btaxpq3p6LK.jpg" alt="" /></figure></figure><h2 id="emc-pre-compliance-testing-average-and-peak-emi-detector-results-2">EMC Pre-Compliance Testing – Average and Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1458px;"><p class="vanilla-image-block" style="padding-top:34.84%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/98D5efnEyDnNK8hGkSJemU.jpg" mos="https://cdn.mos.cms.futurecdn.net/98D5efnEyDnNK8hGkSJemU.jpg" align="" fullscreen="1" width="1458" height="508" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/98D5efnEyDnNK8hGkSJemU.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The conducted EMI emissions are in control.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="performance-noise-and-efficiency-2">Performance, Noise and Efficiency</h2><h2 id="performance-rating-21">Performance Rating</h2><p><a href="http://media.bestofmicro.com/X/D/847489/gallery/Result-34-32_Relative_Performance_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.70%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/WC8r9HvdowZmwSFJ5EvD6U.png" mos="https://cdn.mos.cms.futurecdn.net/WC8r9HvdowZmwSFJ5EvD6U.png" align="" fullscreen="1" width="632" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/WC8r9HvdowZmwSFJ5EvD6U.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The performance levels aren't up to the Seasonic Focus Plus Platinum unit's levels, which is the main competitor of the Ion+ model.</p><h2 id="noise-rating-21">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/X/H/847493/gallery/Result-37-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:633px;"><p class="vanilla-image-block" style="padding-top:80.88%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/86PfRCBuzRwpNzDMchzvdQ.png" mos="https://cdn.mos.cms.futurecdn.net/86PfRCBuzRwpNzDMchzvdQ.png" align="" fullscreen="1" width="633" height="512" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/86PfRCBuzRwpNzDMchzvdQ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p><strong><span>This is a dead silent PSU. In this section, it clearly has an edge over the Platinum Seasonic Focus Plus model.</span></strong></p><h2 id="efficiency-rating-21">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/X/I/847494/gallery/Result-38-38_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:634px;"><p class="vanilla-image-block" style="padding-top:80.60%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/jP7k7wByR8psHE8DmUcJnU.png" mos="https://cdn.mos.cms.futurecdn.net/jP7k7wByR8psHE8DmUcJnU.png" align="" fullscreen="1" width="634" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/jP7k7wByR8psHE8DmUcJnU.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The overall efficiency is a little lower than the competing offerings.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="bottom-line-5">Bottom Line</h2><p><span>So far, I have tested two members of Fractal Design’s Ion+ line, and I plan to take a look at another one soon enough. High Power, the original manufacturer of all Ion+ models, did a very good job; these power supplies feature good build quality and thanks to the quality parts, they will easily outlive the ten-year warranty period.</span></p><p><span>With a little more tuning, the overall performance could reach the levels of the similar capacity Seasonic Focus Plus Platinum, which is the primary opponent of the Ion+ 660P. Nonetheless, what the ION+ loses in pure performance numbers, it manages to turn the tide when it comes to noise output. With only 13.74 dB(A) overall noise output, the 660W Ion+ unit meets the requirements of Cybenetics LAMBDA-A++ level, so it is among the quietest PSUs in the 600-700W category. Fractal Design focused on silent operation, and the combination of a high-efficiency platform along with a low speed, 140mm, FDB fan brings the desired result.</span></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/uVNuL5zDNLzC2tqmq2m267.jpg" mos="https://cdn.mos.cms.futurecdn.net/uVNuL5zDNLzC2tqmq2m267.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/uVNuL5zDNLzC2tqmq2m267.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p><span>One of the significant downsides of this product is the low bottom efficiency with 2% load. Intel states that the power consumption at idle can be very low in modern systems, thanks to new power-saving technologies, so it requires high efficiency even under super-light loads (10W or 2% of the PSU's max-rated-capacity for units with >500W max power). Another downside is the low efficiency at 5VSB, a rail that is often overlooked although several regulations (</span><span>CEC</span><span>, ErP Lot 3 2014, and ErP Lot 6 2010/2013) ask for high-efficiency levels at 5VSB.</span></p><p><span>Despite its flaws, if you want one of the quietest mid-capacity PSUs, the Ion+ 660P is the right choice, and it has a fair price. If Fractal Design cooperates closely with High Power and manages to fix the efficiency issues mentioned above, without notably increasing the production cost, it could beat the competition on performance as well as noise. </span></p><p><em>Image Credits: Tom's Hardware</em></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><br/><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><br/><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><p><strong><em>Disclaimer:</em></strong><em> Aris Mpitziopoulos is Tom's Hardware's PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em>, and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies </em></a> apart from his role on Tom's Hardware. Neither Tom's Hardware nor its parent company, Future PLC<em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Corsair RM650 Power Supply Review: Silent and Efficient ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/corsair-rm650-power-supply,6187.html</link>
                                                                            <description>
                            <![CDATA[ A solid, mid-capacity choice, the Corsair RM650 power supply has good performance and quiet operation, even under stressful conditions. ]]>
                                                                                                            </description>
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                                                                        <pubDate>Sat, 20 Jul 2019 13:00:00 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:32:44 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <h2 id="specifications-and-part-analysis-4">Specifications and Part Analysis</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1280px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="" alt="Corsair RM650 Power Supply. (Credit: Tom's Hardware)" src="https://cdn.mos.cms.futurecdn.net/kmDCQzbYj7MSeDeCEaC38Q.jpg" mos="https://cdn.mos.cms.futurecdn.net/kmDCQzbYj7MSeDeCEaC38Q.jpg" align="" fullscreen="1" width="1280" height="720" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/kmDCQzbYj7MSeDeCEaC38Q.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Corsair RM650 Power Supply. ( </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware))</span></figcaption></figure><p>The Corsair RM650 has high performance in almost all areas and it is dead silent. Its only major downside seems to be the small price difference with the RM650x, which has better capacitors and a higher quality fan. Nonetheless, the RM650 scores higher efficiency under super-light loads and it also supports Windows 10's Modern Standby mode. If the price difference with the RM650x is close to 20 dollars (16 pounds) then the RM650 is a good deal, but with only 10 dollars (8  pounds) difference it will be a tough sale.</p><p>We have reviewed both the Corsair <a href="https://www.tomshardware.com/reviews/corsair-rm850-power-supply,6127.html">RM850</a> and RM750 so far, and we found them to be excellent. The time has come to take a detailed look at the smallest member of the line, the RM650, which as the model number implies, has 650W max power. The Corsair RM650 is a fully modular power supply, able to support a potent system thanks to the two EPS and four PCIe connectors that is equipped with.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/SKAxgcatvkDauMsKdkhV3N.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KRd8FjYa8NA9mp6MR85nR5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EADqGYnNTwMD7yw6e9n23P.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kFaT54sLrpZGjut52oznmL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9dMaUoLY8kLUEGR5n23VLX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FXax3aSvb3S2uqbDJ99stB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CGTzr4SNFBcdJH2i8itGKY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/N6fkPNWYQXajBsKpB7LCPX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SnBeuB3UffkgkMaBubzxcM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aeQC5xHjFx5jFdXEvkV6KP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EFvb2wWy6BD3V2iiZgDkme.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fBJS79bYDKqDjkXDSp55xV.jpg" alt="" /></figure></figure><p>The significant differences with the slightly more expensive <a href="https://www.tomshardware.com/reviews/corsair-rm650x-psu,4611.html">RM650x</a> come down to the cooling fan and the capacitors. The RM650 uses a 140mm Hong Hua fan and Chinese Elite caps, while the RM650x is only equipped with Japanese caps and the high-quality NR135L fan. Nonetheless, there are some areas where the RM650 takes the lead because it uses an updated platform. Its efficiency under super-light loads is high, and it also supports Windows 10's new Modern Standby mode, which allows the PC to boot reliably within a five seconds period.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ekirPVy7ACVobHtJFindJD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8pHkVHejpCeMotKY5MmNST.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BA7ihx9qujex2PdPJzH4Ha.jpg" alt="" /></figure></figure><h2 id="specifications-22">Specifications</h2><div ><table><tbody><tr><th  >Manufacturer (OEM)</th><td  ><span class="spelle">CWT</span></td></tr><tr><th  >Max. DC Output</th><td  ><span class="spelle">650W</span></td></tr><tr><th  >Efficiency</th><td  >80 PLUS Gold, ETA-A (88-91%)</td></tr><tr><th  >Noise</th><td  >LAMBDA-A+ (15-20 dB[A])</td></tr><tr><th  >Modular</th><td  >✓ (Fully)</td></tr><tr><th  >Intel C6/C7 Power State Support</th><td  >✓</td></tr><tr><th  >Operating Temperature (Continuous Full Load)</th><td  >0 - 50°C</td></tr><tr><th  >Over Voltage Protection</th><td  >✓</td></tr><tr><th  >Under Voltage Protection</th><td  >✓</td></tr><tr><th  >Over Power Protection</th><td  >✓</td></tr><tr><th  >Over Current (+12V) Protection</th><td  >✓</td></tr><tr><th  >Over Temperature Protection</th><td  >✓</td></tr><tr><th  >Short Circuit Protection</th><td  >✓</td></tr><tr><th  >Surge Protection</th><td  >✓</td></tr><tr><th  >Inrush Current Protection</th><td  >✓</td></tr><tr><th  >Fan Failure Protection</th><td  >✗</td></tr><tr><th  >No Load Operation</th><td  >✓</td></tr><tr><th  >Cooling</th><td  >140mm Rifle Bearing Fan (HA1425M12F-Z)</td></tr><tr><th  >Semi-Passive Operation</th><td  >✓</td></tr><tr><th  >Dimensions (<span class="spelle">W x H x D</span>)</th><td  >152 x 87 x 162mm</td></tr><tr><th  >Weight</th><td  >1.55 kg (3.42 <span class="spelle">lb</span>)</td></tr><tr><th  >Form Factor</th><td  >ATX12V v2.4, EPS 2.92</td></tr><tr><th  >Warranty</th><td  >10 Years</td></tr></tbody></table></div><h2 id="power-specifications-22">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >54</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">130</td><td  >648</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">650</td></tr></tbody></table></div><h2 id="cables-amp-connectors-15">Cables & Connectors</h2><div ><table><thead><tr><th  colspan="5"><strong>Modular Cables</strong></th></tr></thead><tbody><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><th  ><strong>ATX connector 20+4 pin (610mm)</strong></th><td  >1</td><td  >1</td><td  >18-20AWG</td><td  >No</td></tr><tr><th  ><strong>4+4 pin EPS12V (650mm)</strong></th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (600mm+150mm) </strong></th><td  >2</td><td  >4</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (500mm+100mm+100mm)</strong></th><td  >2</td><td  >6</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4-pin Molex (450mm+100mm+100mm+100mm)</strong></th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>AC Power Cord (1420mm) - C13 coupler</strong></th><td  >1</td><td  >1</td><td  >16AWG</td><td  >-</td></tr></tbody></table></div><p>It is nice to see a pair of EPS connectors in a 650W power supply. The number of PCIe is adequate for this wattage category, and the same goes for the SATA and 4-Pin Molex connectors. The problem with the peripheral connectors is the short distance between them. Ideally, it should be 150mm.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/trooZNqbajjaarABfHoV58.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qUjF2W2pYDYMef3Rbif437.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BWXcm8qA2VaBZkeryNii8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JnMRFsLuDZ4zPhZYEkabfU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kCBXLeLvyndFrdZH6CTQ2W.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/drW5dGjX38XsfsGoYZqGnV.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/c3vcYFDEFkYcG4K7C7eSJE.jpg" alt="" /></figure></figure><h2 id="component-analysis-22">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, allowing you to understand better the components we're about to discuss.</p><div ><table><thead><tr><th  colspan="3"><strong>General Data</strong></th></tr></thead><tbody><tr><th  ></th><td  >Corsair RM650 (2019)</td><td  >Corsair RM650x</td></tr><tr><th  >Manufacturer (OEM)</th><td  >CWT</td><td  >CWT</td></tr><tr><th  >PCB Type</th><td  >Double Sided</td><td  >Double Sided</td></tr><thead><tr><th  colspan="3"><strong>Primary Side</strong></th></tr></thead><tr><th  >Transient Filter</th><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td></tr><tr><th  >Inrush Protection</th><td  >NTC Thermistor & Relay</td><td  >NTC Thermistor</td></tr><tr><th  >Bridge Rectifier(s)</th><td  >2x <a href="https://www.diodes.com/assets/Datasheets/ds21227.pdf">GBU806</a> (600V, 8A @ 100°C)</td><td  ><span class="msonormal0">1x </span><a href="http://www.realhardtechx.com/index_archivos/GBU1500x-1.pdf">GBU1506</a><span class="msonormal0"> (600V, 15A @ 100°C) </span></td></tr><tr><th  >APFC MOSFETS</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPX60R190P6-DS-v02_01-en.pdf?fileId=db3a30433f2e70c5013f37c80e24240f">IPA60R190P6</a> (650V, 12.7A @ 100°C, 0.19Ohm)</td><td  ><span class="msonormal0">1x Infineon </span><a href="http://www.infineon.com/dgdl/Infineon-IPX60R125P6-DS-v02_00-en.pdf?fileId=5546d461464245d301468b0fade666af">IPW60R125P6</a><span class="msonormal0"> (650V, 19A @ 100°C, 0.125 Ohm) </span></td></tr><tr><th  >APFC Boost Diode</th><td  >1x Power Integrations <a href="https://www.power.com/sites/default/files/product-docs/qspeed/qh08tz600.pdf">QH08TZ600</a> (600V, 8A @ 95°C)</td><td  ><span class="msonormal0">1x Vishay </span><a href="http://www.vishay.com/docs/93049/8s2th06i.pdf">8S2TH061</a><span class="msonormal0"> (600V, 8A @ 120°C) </span></td></tr><tr><th  >Hold-up Cap(s)</th><td  >2x Su'scon (400V, 330uF & 270uF each or 600uF combined, 2,000h @ 105°C, <a href="http://www.su-scon.com.tw/Templates/att/LZ.pdf?lng=en">LZ</a>)</td><td  ><span class="msonormal0">1x Nippon Chemi-Con (400V, 680uF, 2000h @ 105°C, </span><a href="http://www.chemi-con.com/upload/files/3/1/185414045951fbc15009aa9.pdf">KMR</a><span class="msonormal0">) </span></td></tr><tr><th  >Main Switchers</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPX60R190P6-DS-v02_01-en.pdf?fileId=db3a30433f2e70c5013f37c80e24240f">IPA60R190P6</a> (650V, 12.7A @ 100°C, 0.19Ohm)</td><td  ><span class="msonormal0">2x Toshiba TK18A60V</span><span class="msonormal0">(600V, 18A, 0.19 Ohm) </span></td></tr><tr><th  >APFC Controller</th><td  >Champion <a href="http://www.datasheet-pdf.com/PDF/CM6500-Datasheet-Champion-609703">CM6500UNX</a> & CM03X Green PFC Controller</td><td  ><span class="msonormal0">Infineon </span><a href="http://www.infineon.com/dgdl/ProductDatasheetICE3PCS01_v2%200_2col.pdf?folderId=db3a304412b407950112b408e8c90004&fileId=db3a304329a0f6ee0129a67ae8c02b46">ICE3PCS01G</a><span class="msonormal0"> - CM03X </span></td></tr><tr><th  >Resonant Controllers</th><td  >Champion <a href="http://en.kediman.com/attaches/2017/04/916-wi0e4n.pdf">CU6901V</a></td><td  ><a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901.pdf">Infineon ICE2HS01G</a></td></tr><tr><th  >Topology</th><td  >Primary side: Half-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td><td  >Primary side: Half-Bridge & LLC Resonant Converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><thead><tr><th  colspan="3"><strong>Secondary Side</strong></th></tr></thead><tr><th  >+12V MOSFETS</th><td  >4x International Rectifier <a href="https://www.infineon.com/dgdl/irfh7004pbf.pdf?fileId=5546d462533600a40153561ea3e51ed2">IRFH7004PBF</a> (40V, 100A @ 25°C, 1.4mOhm)</td><td  ><span class="msonormal0">4x Sinopower </span><a href="http://www.sinopowersemi.com/ashx_prod_file.ashx?file_path=20140128100300510.pdf&original_name=SM4021NAKP.pdf">SM4021NAKP </a><span class="msonormal0">(40V, 100A @ 100°C, 2.7 mOhm @ VGS=6V) </span></td></tr><tr><th  >5V & 3.3V</th><td  >DC-DC Converters: 2x UBIQ <a href="http://pdf1.alldatasheet.com/datasheet-pdf/view/1119195/UPI/QM3054M6.html">QM3054M6</a> (30V, 61A @ 100°C, 4.8mOhm) & 2x UBIQ <a href="https://datasheetspdf.com/pdf-file/1318503/UBIQ/QN3107M6N/1">QN3107M6N</a> (30V, 70A @ 100°C, 2.6mOhm) PWM Controllers: uPI SEMI <a href="https://pdf1.alldatasheet.com/datasheet-pdf/view/1113455/UPI/UP3861P.html">uP3861P</a></td><td  ><span class="msonormal0">DC-DC Converters: 2x QM3006D & 4x QM3004D FETs</span><span class="msonormal0">PWM Controller: </span><a href="http://www.anpec.com.tw/ashx_prod_file.ashx?prod_id=717&file_path=20131210180212790.pdf&original_name=APW7159A.pdf">APW7159</a></td></tr><tr><th  >Filtering Capacitors</th><td  >Electrolytics: 7x Elite (2-5,000h @ 105°C, <a href="http://www.paullinebarger.net/DS/Elite/Elite%20%5Bradial%20thru-hole%5D%20EK%20Series.pdf">EK</a>), 1x Elite (4-10,000h @ 105°C, <a href="http://www.paullinebarger.net/DS/Elite/Elite%20%5Bradial%20thru-hole%5D%20EY%20Series.pdf">EY</a>), 1x Elite (2,000h @ 105°C, <a href="http://www.paullinebarger.net/DS/Elite/Elite%20%5Bradial%20thru-hole%5D%20PF%20Series.pdf">PF</a>), 2x Su'scon (2-5,000h @ 105°C, <a href="http://macsoni-tech.com/userfiles/file/Suscon/Su-Scon-2015-Catalog.pdf">MF</a>), 3x Su'scon (4-10,000h @ 105°C, <a href="http://www.su-scon.com.tw/Templates/att/HG.pdf?lng=en">HG</a>) Polymers: Suncon, Elite, NIC</td><td  >Electrolytics: Chemi-Con (105°C, KZE & KZH series) Polymers: Nippon Chemi-Con</td></tr><tr><th  >Supervisor IC</th><td  >Weltrend <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-22.html">WT7502</a> (OVP, UVP, SCP, PG) & <a href="http://www.unisonic.com.tw/datasheet/LM393.pdf">LM393G</a></td><td  ><a href="http://www.techpowerup.com/articles/overclocking/psu/160/9">Weltrend WT7502</a></td></tr><tr><th  >Fan Controller</th><td  >Microchip <a href="http://ww1.microchip.com/downloads/en/DeviceDoc/40001607D.pdf">PIC16F1503</a></td><td  >-</td></tr><tr><th  >Fan Model</th><td  >Hong Hua HA1425M12F-Z (140mm, 12V, 0.36A, Rifle Bearing Fan)</td><td  ><span class="msonormal0">NR135L (12 V, 0.22 A, Rifle Bearing) </span></td></tr><thead><tr><th  colspan="3"><strong>5VSB Circuit</strong></th></tr></thead><tr><th  >Rectifier</th><td  >1x Unisonic Technologies <a href="http://www.unisonic.com.tw/datasheet/4N65.pdf">4N65L</a> (650V, 4A @ 25°C, 2.5Ohm)</td><td  ><a href="http://www.pfcdevice.com/upload/PFR20V45CTV40.pdf">PFR20V45CT</a><span class="msonormal0"> (45V, 20A, VF: 0.42V max @ 125°C) </span></td></tr><tr><th  >Standby PWM Controller</th><td  >On - Bright <a href="https://datasheet.lcsc.com/szlcsc/On-Bright-Elec-OB5282CPA_C131099.pdf">OB5282</a></td><td  ><span class="msonormal0">On-Bright </span><a href="http://archive.espec.ws/files/OB5269CP%20OB5269CPA.pdf">OB5269</a></td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/txfbRKcTsJWhULJArx36E7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZKypkkuumwwmxQzXTK2gvc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qAzEfGxwhdUnjzzNDvoL9X.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GgMFa2vqRNotiiwojxkVVn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oi94qDh7ic8R3bkLPWADSo.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HHTSvBFdCYMvdfB6pfyRCP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/r49PZTDaDBwVTWuzypzXs5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hmYQeWZPckXXc5LSxU9BBC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/amzipr4BSxASEthrC57oeW.jpg" alt="" /></figure></figure><p>The RM650 uses an upgraded platform, provided by the same manufacturer (CWT) that made the RM650x. There several essential differences between those two platforms, as you can see in the table above. The areas where the RM650x wins are the higher quality Japanese caps and the NR135L fan. On the other hand, the RM650 uses a new resonant controller, allowing for higher efficiency under light loads, and it is equipped with an electromagnetic relay which enhances its inrush current protection. On top of that, it uses a micro-controller in the fan control circuit so Corsair can easily tune the fan's speed and provide the ideal fan speed profile.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/snr3McJjqGqMEf6n44LYxQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/i3YVWG5AamQGVHWbETsSmY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/78jB2XhYA8kRaX6tkdNTmP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qEEzpYnY7We7756B2yU4nn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Q57KkworPcC9mKDMLkRX3N.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DJucJ4JcmyQor4JvUy6CP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vCPPgt34i93jajK5WXLUxG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BHBbzBVnnGuo4URrvKta6o.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H8SYt2Nosg8GC4WiBS4Pwi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ue6Wdafu87WSH2dUuvxBA3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CknCveXadjQPB2zJCPMf7U.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qAJpuenVa6sH2ppeMGFJJm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gBqJyXW2YZEw9fXxdCMDLe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CUPMCyU3AaAGWDVP6rW28.jpg" alt="" /></figure></figure><p>We should note here that Elite caps, which are widely used in the RM650, might be manufactured in China, but Elite is a brand of Chinsan. The latter is a Taiwanese company, with factories in China, and provides products to several high-end brands including two well-known ones. This means that Elite caps are of good quality and you shouldn't be afraid, in any case, of their Chinese origin. Sure there are enough Chinese factories with low production standards, and when it comes to capacitors, this can lead to terrible results. Nevertheless, Elite products have been proven reliable so far, and this is why most brands prefer them when it is too expensive to use Japanese caps.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uAzk263Z6tMe2uBpK7H26Q.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4pYA2xGNNhsMR9Q3WpTGED.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SUknMP6N9anz9UrfEdWLbL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xtnjUxkUSX8mCtgsTrYYrN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oSdFAt9Lu9Y4ouvgwRRSej.jpg" alt="" /></figure></figure><p>The soldering quality is good, as expected from CWT.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="load-regulation-hold-up-time-inrush-current-efficiency-and-noise-4">Load Regulation, Hold-Up Time, Inrush Current, Efficiency and Noise</h2><p><strong>To learn more about our PSU tests and methodology, please check out <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="31e1c0dd-b768-44be-80f1-3237dd5b9811">            <a href="https://www.newegg.com/corsair-rm-series-rm750-cp-9020195-na-750w/p/N82E16817139168" data-model-name="Corsair RM750" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.20%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/9rVtsEtWQGCKiKng9ny4be.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM750</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="8e8f2e4d-f5ef-493a-b5e4-4777b8f71323">            <a href="https://www.newegg.com/corsair-rm-series-rm650-cp-9020194-na-650w/p/N82E16817139101" data-model-name="Corsair RM650" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.23%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/v8RNqqfQhxXLR4dsdyk92K.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair RM650</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="d78ff32e-57a6-482c-bb84-17c2e624cec3">            <a href="http://www.tkqlhce.com/click-8900246-12920453?sid=tomshardware-&url=https://www.newegg.com/Product/Product.aspx?Item=1HU-0095-00055" data-model-name="FSP Hydro PTM 650W" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/CNRrUaz9zduqCgppA8Vn6Q.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">FSP Hydro PTM 650W</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-22">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/X8d4KgZicmRekPcz5hUUPN.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/L6LtGQKKyFLXDawmzkgj78.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9zRHRVRLjhpW8g6iAUPLa5.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nU6JKu8EpJWzTdqkecYAQK.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/75Xj3qnfJoSW6gVJpEykbP.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9xFCWmGuj76BXmc7NH2HaZ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/R6kkgANgdYpxik4G7kXXzL.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hGZn8ko3XDtsmB5DjekngD.png" alt="" /></figure></figure><p>The load regulation is tight, on all rails.</p><h2 id="hold-up-time-22">Hold-Up Time</h2><p>Put simply; hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/yVpJ4nSETdVHgBLitLgCQ3.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/x9DL8yqLKy93d55EZh6odk.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/myGb9n3ZH6DMCtvnTNJ7FQ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pjoSRi4rB6NY2a2EU8xWwN.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SxxcJZHhZVUtdDAoHuRE6j.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/c2rdLYKod4NemgfGGT2cqe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qBZpWLVryoLmCoVeJQ4TCF.jpg" alt="" /></figure></figure><p>The hold-up time is longer than 17ms, which is what the ATX spec requires, and the power ok signal is accurate.</p><h2 id="inrush-current-22">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/faGtZZK7JHeH7obDG842vK.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EwSubq74MLHDku6Zkri4NJ.png" alt="" /></figure></figure><p>Low inrush currents, with both voltage inputs.</p><h2 id="10-110-load-tests-21">10-110% Load Tests</h2><p>These tests reveal the RM650’s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>Temps (In/Out)</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>3.580A</strong></td><td  ><strong>1.978A</strong></td><td  ><strong>2.002A</strong></td><td  ><strong>0.994A</strong></td><td  >64.872</td><td  rowspan="2">86.502%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >43.05°C</td><td  >0.970</td></tr><tr><td  >12.090V</td><td  >5.052V</td><td  >3.295V</td><td  >5.030V</td><td  >74.995</td><td  >39.45°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>8.118A</strong></td><td  ><strong>2.970A</strong></td><td  ><strong>3.007A</strong></td><td  ><strong>1.194A</strong></td><td  >129.339</td><td  rowspan="2">89.823%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >44.02°C</td><td  >0.988</td></tr><tr><td  >12.126V</td><td  >5.050V</td><td  >3.293V</td><td  >5.025V</td><td  >143.993</td><td  >40.15°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>13.090A</strong></td><td  ><strong>3.468A</strong></td><td  ><strong>3.495A</strong></td><td  ><strong>1.395A</strong></td><td  >194.446</td><td  rowspan="2">91.487%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >45.01°C</td><td  >0.992</td></tr><tr><td  >12.104V</td><td  >5.048V</td><td  >3.290V</td><td  >5.018V</td><td  >212.539</td><td  >40.83°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>18.073A</strong></td><td  ><strong>3.965A</strong></td><td  ><strong>4.012A</strong></td><td  ><strong>1.597A</strong></td><td  >259.659</td><td  rowspan="2">91.412%</td><td  rowspan="2">788</td><td  rowspan="2">16.2</td><td  >41.49°C</td><td  >0.994</td></tr><tr><td  >12.088V</td><td  >5.044V</td><td  >3.288V</td><td  >5.010V</td><td  >284.052</td><td  >46.21°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>22.724A</strong></td><td  ><strong>4.958A</strong></td><td  ><strong>5.022A</strong></td><td  ><strong>1.799A</strong></td><td  >324.935</td><td  rowspan="2">91.137%</td><td  rowspan="2">789</td><td  rowspan="2">16.3</td><td  >42.30°C</td><td  >0.995</td></tr><tr><td  >12.077V</td><td  >5.042V</td><td  >3.285V</td><td  >5.004V</td><td  >356.534</td><td  >47.62°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>27.320A</strong></td><td  ><strong>5.953A</strong></td><td  ><strong>6.028A</strong></td><td  ><strong>2.001A</strong></td><td  >389.445</td><td  rowspan="2">90.702%</td><td  rowspan="2">790</td><td  rowspan="2">16.3</td><td  >42.63°C</td><td  >0.994</td></tr><tr><td  >12.066V</td><td  >5.040V</td><td  >3.284V</td><td  >4.999V</td><td  >429.366</td><td  >48.98°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>7</strong></th><td  ><strong>31.988A</strong></td><td  ><strong>6.948A</strong></td><td  ><strong>7.036A</strong></td><td  ><strong>2.203A</strong></td><td  >454.759</td><td  rowspan="2">90.109%</td><td  rowspan="2">791</td><td  rowspan="2">16.3</td><td  >43.49°C</td><td  >0.994</td></tr><tr><td  >12.056V</td><td  >5.038V</td><td  >3.284V</td><td  >4.994V</td><td  >504.674</td><td  >50.59°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>8</strong></th><td  ><strong>36.658A</strong></td><td  ><strong>7.944A</strong></td><td  ><strong>8.044A</strong></td><td  ><strong>2.406A</strong></td><td  >520.055</td><td  rowspan="2">89.421%</td><td  rowspan="2">990</td><td  rowspan="2">24.0</td><td  >43.86°C</td><td  >0.995</td></tr><tr><td  >12.048V</td><td  >5.036V</td><td  >3.281V</td><td  >4.988V</td><td  >581.583</td><td  >51.86°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>9</strong></th><td  ><strong>41.727A</strong></td><td  ><strong>8.443A</strong></td><td  ><strong>8.535A</strong></td><td  ><strong>2.407A</strong></td><td  >584.977</td><td  rowspan="2">88.778%</td><td  rowspan="2">1192</td><td  rowspan="2">30.1</td><td  >44.80°C</td><td  >0.995</td></tr><tr><td  >12.042V</td><td  >5.034V</td><td  >3.280V</td><td  >4.987V</td><td  >658.920</td><td  >53.51°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>10</strong></th><td  ><strong>46.532A</strong></td><td  ><strong>8.945A</strong></td><td  ><strong>9.058A</strong></td><td  ><strong>3.020A</strong></td><td  >649.813</td><td  rowspan="2">88.038%</td><td  rowspan="2">1401</td><td  rowspan="2">34.7</td><td  >45.46°C</td><td  >0.996</td></tr><tr><td  >12.037V</td><td  >5.032V</td><td  >3.278V</td><td  >4.968V</td><td  >738.102</td><td  >55.15°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>11</strong></th><td  ><strong>51.933A</strong></td><td  ><strong>8.947A</strong></td><td  ><strong>9.065A</strong></td><td  ><strong>3.021A</strong></td><td  >714.621</td><td  rowspan="2">87.334%</td><td  rowspan="2">1597</td><td  rowspan="2">38.5</td><td  >46.55°C</td><td  >0.996</td></tr><tr><td  >12.033V</td><td  >5.030V</td><td  >3.277V</td><td  >4.966V</td><td  >818.266</td><td  >57.36°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>CL1</strong></th><td  ><strong>0.138A</strong></td><td  ><strong>16.004A</strong></td><td  ><strong>15.999A</strong></td><td  ><strong>0.000A</strong></td><td  >134.825</td><td  rowspan="2">84.188%</td><td  rowspan="2">822</td><td  rowspan="2">17.5</td><td  >42.64°C</td><td  >0.989</td></tr><tr><td  >12.119V</td><td  >5.036V</td><td  >3.285V</td><td  >5.077V</td><td  >160.148</td><td  >47.98°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>CL2</strong></th><td  ><strong>54.006A</strong></td><td  ><strong>1.001A</strong></td><td  ><strong>0.999A</strong></td><td  ><strong>1.000A</strong></td><td  >663.825</td><td  rowspan="2">88.597%</td><td  rowspan="2">1364</td><td  rowspan="2">33.9</td><td  >45.64°C</td><td  >0.996</td></tr><tr><td  >12.045V</td><td  >5.035V</td><td  >3.278V</td><td  >5.007V</td><td  >749.267</td><td  >55.47°C</td><td  >115.09V</td></tr></tbody></table></div><p>The unit's passive operation lasts up to the third test, with close to 41°C ambient. We have to increase the load at 110% and crank up the heat inside the hot box, at higher than 46°C, to force the fan to operate at its full speed.</p><h2 id="20-80w-load-tests-22">20-80W Load Tests</h2><p>In the following tests, we measure the RM650's efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle with power-saving features turned on.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.196A</strong></td><td  ><strong>0.495A</strong></td><td  ><strong>0.486A</strong></td><td  ><strong>0.198A</strong></td><td  >19.548</td><td  rowspan="2">79.850%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.836</td></tr><tr><td  >12.082V</td><td  >5.050V</td><td  >3.292V</td><td  >5.046V</td><td  >24.481</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>2.455A</strong></td><td  ><strong>0.989A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>0.397A</strong></td><td  >39.958</td><td  rowspan="2">84.472%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.939</td></tr><tr><td  >12.083V</td><td  >5.052V</td><td  >3.296V</td><td  >5.043V</td><td  >47.303</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>3.645A</strong></td><td  ><strong>1.484A</strong></td><td  ><strong>1.485A</strong></td><td  ><strong>0.596A</strong></td><td  >59.460</td><td  rowspan="2">86.345%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.966</td></tr><tr><td  >12.089V</td><td  >5.052V</td><td  >3.296V</td><td  >5.039V</td><td  >68.863</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>4.895A</strong></td><td  ><strong>1.980A</strong></td><td  ><strong>2.000A</strong></td><td  ><strong>0.795A</strong></td><td  >79.841</td><td  rowspan="2">87.433%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.977</td></tr><tr><td  >12.103V</td><td  >5.052V</td><td  >3.295V</td><td  >5.035V</td><td  >91.317</td><td  >115.12V</td></tr></tbody></table></div><p>The efficiency levels under light loads are extremely high.</p><h2 id="efficiency-15">Efficiency</h2><p>Next, we plotted a chart showing the RM650’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy goes wasted, leading to a reduced carbon footprint, besides lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LEVoV8qzw3Z3hDqMyhTPUd.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FqLRwVQBLat8N2s2CCeVPM.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TFAKxposwVUzPJfXwgQK5J.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iDgSfd9EUFdTpsisyb7X65.png" alt="" /></figure></figure><p>The RM650 is efficient under both light and normal loads.</p><h2 id="5vsb-efficiency-22">5VSB Efficiency</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.505</td><td  rowspan="2">75.826%</td><td  >0.065</td></tr><tr><td  >5.055V</td><td  >0.666</td><td  >115.07V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.263</td><td  rowspan="2">78.011%</td><td  >0.145</td></tr><tr><td  >5.051V</td><td  >1.619</td><td  >115.07V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.774</td><td  rowspan="2">78.762%</td><td  >0.256</td></tr><tr><td  >5.044V</td><td  >3.522</td><td  >115.07V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >5.032</td><td  rowspan="2">77.955%</td><td  >0.344</td></tr><tr><td  >5.032V</td><td  >6.455</td><td  >115.07V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.529</td><td  rowspan="2">77.771%</td><td  >0.393</td></tr><tr><td  >5.019V</td><td  >9.681</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >14.943</td><td  rowspan="2">77.109%</td><td  >0.456</td></tr><tr><td  >4.982V</td><td  >19.379</td><td  >115.08V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LZa4YBSuGQt7Gx9XUUeYX9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9VLLXKEuZa9zrwxnxi6yM5.png" alt="" /></figure></figure><p>The 5VSB rail is strong and efficient enough to meet the competition.</p><h2 id="power-consumption-in-idle-and-standby-22">Power Consumption In Idle And Standby</h2><div ><table><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">12.067V</td><td  rowspan="2">5.047V</td><td  rowspan="2">3.293V</td><td  rowspan="2">5.045V</td><td  rowspan="2">0.611</td><td  >0.099</td></tr><tr><td  >115.1V</td></tr><tr><th  colspan="5" rowspan="2"><strong>Standby</strong></th><td  rowspan="2">0.036</td><td  >0.004</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MBVQMAXH6jX5JVey5LvEkT.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AAxARE6d9yUdd67KtTnWXX.png" alt="" /></figure></figure><h2 id="fan-rpm-delta-temperature-and-output-noise-22">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/zBMnmn9QYoSiYNpW3PLdr.png" mos="https://cdn.mos.cms.futurecdn.net/zBMnmn9QYoSiYNpW3PLdr.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/zBMnmn9QYoSiYNpW3PLdr.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p><br/></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/hhm94JvKRBSCxN38FwWTQC.png" mos="https://cdn.mos.cms.futurecdn.net/hhm94JvKRBSCxN38FwWTQC.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/hhm94JvKRBSCxN38FwWTQC.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p><br/>The fan profile is relaxed and the semi-passive operation offers minimized noise output at loads up to around 200W, even at high ambient temperatures. As you will see in the graph below, the fan's passive operation won't last long only if you apply high loads on the minor rails.</p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/ZPv9ZaTHGcH6kGPKWAEVHA.jpg" mos="https://cdn.mos.cms.futurecdn.net/ZPv9ZaTHGcH6kGPKWAEVHA.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ZPv9ZaTHGcH6kGPKWAEVHA.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/EAS7kCoiwgaCX4ABbPgm2N.jpg" mos="https://cdn.mos.cms.futurecdn.net/EAS7kCoiwgaCX4ABbPgm2N.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/EAS7kCoiwgaCX4ABbPgm2N.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>We are used to seeing ultra short semi-passive operation periods at CWT platforms, under high loads on the minor rails. Apparently the DC-DC converters that generate the 5V and 3.3V rails heavily rely on airflow, because they lack the necessary heat sinks.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="protection-features-dc-power-sequencing-cross-load-tests-and-infrared-images-3">Protection Features, DC Power Sequencing, Cross-Load Tests and Infrared Images</h2><h2 id="protection-features-22">Protection Features</h2><p><strong>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</strong></p><div ><table><thead><tr><th  colspan="2"><strong>Protection Features</strong></th></tr></thead><tbody><tr><th  >OCP</th><td  >12V: 68.8A (127.41%), 12.021V 5V: 29.3A (146.5%), 5.023V 3.3V: 29.6A (148%), 3.283V 5VSB: 5.1A (170%), 4.920V</td></tr><tr><th  >OPP</th><td  >841.3W (129.43%)</td></tr><tr><th  >OTP</th><td  >✓ (157°C @ secondary side)</td></tr><tr><th  >SCP</th><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><th  >PWR_OK</th><td  >Proper Operation</td></tr><tr><th  >NLO</th><td  >✓</td></tr><tr><th  >SIP</th><td  >Surge: MOV Inrush: NTC Thermistor & Bypass Relay</td></tr></tbody></table></div><p>The <a href="https://www.tomshardware.com/reviews/ocp-overcurrent-protection-power-supply-definition-psu,6241.html">OCP</a> triggering points on the minor rails are super high, and the same goes for the 5VSB rail. In no case though, the load regulations is affected, and this is the case as well, for ripple suppression.</p><p>The <a href="https://www.tomshardware.com/reviews/ocp-overcurrent-protection-power-supply-definition-psu,6242.html">Over Power Protection (OPP)</a> is appropriately set, within 130% of the PSU's capacity. Finally, there is Over Temperature Protection, and the power ok signal is accurate (and longer than 16ms).</p><h2 id="dc-power-sequencing-22">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aJxZnhawKUYszf29pYFbeW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QHdAtNanqbwqqdBfV8AANH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/48wtFfnHGMMtMnWDNw4XfP.jpg" alt="" /></figure></figure><p>The 3.3V rail is the last to start, so its voltage is always lower than the other two.</p><h2 id="cross-load-tests-22">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-22">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wNmdP5AKEijUZEjd2p297j.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QUB2yfJvPmK5NpGmC6BWv8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bDKCWawN7cw37Dvt8VuRFE.jpg" alt="" /></figure></figure><h2 id="efficiency-chart-17">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/XADDxyHmER4TLXdJtN97mJ.jpg" mos="https://cdn.mos.cms.futurecdn.net/XADDxyHmER4TLXdJtN97mJ.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/XADDxyHmER4TLXdJtN97mJ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The 90-92% efficiency region is quite large. It would be nice, to see even a small region, with higher than 92% efficiency. </p><h2 id="ripple-charts-17">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will also be applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8JR2Fzw44xpwSF9dqD2qA5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Swgm4RJmSJzc2ffH2GmyMM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uVUemXNRYEr3s8aK5jq7a8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/g5AMnbqmmLZ3LimrWEJ7XB.jpg" alt="" /></figure></figure><h2 id="infrared-images-22">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/iX6kQzASkHXwUy8FPkoNkd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RAFqxwovVgZHkMrJBjJod.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4SEkWGmxsMKCC9gnGiqBWn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QgmnRSG9Lrf3CMpocckRc6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ckjBmsi2zLUUKP4jQVXP5n.jpg" alt="" /></figure></figure><p>As we expected, the hottest parts are on the DC-DC converter's board, which we stressed enough with 10 Amperes of load on each of the 5V and 3.3V rails.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="transient-response-tests-ripple-measurements-and-emc-pre-compliance-testing-3">Transient Response Tests, Ripple Measurements and EMC Pre-Compliance Testing</h2><h2 id="advanced-transient-response-tests-22">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology, we also choose to apply a worst case scenario with no additional capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms-9">Advanced Transient Response at 20% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.108V</td><td  >11.969V</td><td  >1.15%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.043V</td><td  >5.002V</td><td  >0.81%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.297V</td><td  >3.230V</td><td  >2.03%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.022V</td><td  >4.992V</td><td  >0.60%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-9">Advanced Transient Response at 20% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.109V</td><td  >11.883V</td><td  >1.87%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.043V</td><td  >4.949V</td><td  >1.86%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.295V</td><td  ><strong>3.117V</strong></td><td  >5.40%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.022V</td><td  >4.947V</td><td  >1.49%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-22">Advanced Transient Response at 20% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.109V</td><td  >11.890V</td><td  >1.81%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.043V</td><td  >4.965V</td><td  >1.55%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.295V</td><td  ><strong>3.106V</strong></td><td  >5.74%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.021V</td><td  >4.952V</td><td  >1.37%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-9">Advanced Transient Response at 50% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.060V</td><td  >11.938V</td><td  >1.01%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.033V</td><td  >4.9095V</td><td  >2.45%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.291V</td><td  >3.162V</td><td  >3.92%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.002V</td><td  >4.8731V</td><td  >2.58%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-9">Advanced Transient Response at 50% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.061V</td><td  >11.929V</td><td  >1.09%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.034V</td><td  >4.928V</td><td  >2.11%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.290V</td><td  ><strong>3.104V</strong></td><td  >5.65%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.002V</td><td  >4.949V</td><td  >1.06%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-22">Advanced Transient Response at 50% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.062V</td><td  >11.931V</td><td  >1.09%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.034V</td><td  >4.925V</td><td  >2.17%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.289V</td><td  ><strong>3.107V</strong></td><td  >5.53%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.002V</td><td  >4.928V</td><td  >1.48%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/F5VnDmeEmn3sbauzeUFSkC.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6H5pU7GQJoagqhcstBoRV9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yoDtf2JCmc9kq5xwFrZm5A.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bGtXCDr33P9RJaTc5oPnne.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3p3PMCZ7GLF8ZqPYQWPCB3.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LFvXk2i4H7n7LcHab2aX9F.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9numHYcpmP8xLL5ksiyvCK.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eqm2dNSSoUZbfELYeAzpPf.png" alt="" /></figure></figure><p>The voltage drops on the +12V rail are notably higher than the ones of the RM650x model. The same applies to the other rails, as well. We would like to see better performance in these tests, which are the closest ones to real life conditions.</p><h2 id="turn-on-transient-tests-22">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/gMFQLonyo4cr7QwwosUy2c.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cokgfvirq7irtDakXGkzzQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/g4XQbtBBJRNU9A5ndUT25e.jpg" alt="" /></figure></figure><p>There are no notable spikes and voltage overshoots, so everything is fine here.</p><h2 id="ripple-measurements-22">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10 degrees Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><thead><tr><th  ><strong>Test</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>10% Load</strong></th><td  >15.9 mV</td><td  >6.9 mV</td><td  >9.3 mV</td><td  >8.0 mV</td><td  >Pass</td></tr><tr><th  ><strong>20% Load</strong></th><td  >6.3 mV</td><td  >7.0 mV</td><td  >9.6 mV</td><td  >7.9 mV</td><td  >Pass</td></tr><tr><th  ><strong>30% Load</strong></th><td  >10.7 mV</td><td  >7.7 mV</td><td  >9.7 mV</td><td  >7.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>40% Load</strong></th><td  >9.5 mV</td><td  >8.0 mV</td><td  >10.5 mV</td><td  >7.5 mV</td><td  >Pass</td></tr><tr><th  ><strong>50% Load</strong></th><td  >8.8 mV</td><td  >8.9 mV</td><td  >12.4 mV</td><td  >7.5 mV</td><td  >Pass</td></tr><tr><th  ><strong>60% Load</strong></th><td  >10.3 mV</td><td  >9.2 mV</td><td  >10.6 mV</td><td  >8.0 mV</td><td  >Pass</td></tr><tr><th  ><strong>70% Load</strong></th><td  >11.9 mV</td><td  >10.0 mV</td><td  >11.7 mV</td><td  >8.1 mV</td><td  >Pass</td></tr><tr><th  ><strong>80% Load</strong></th><td  >12.0 mV</td><td  >10.5 mV</td><td  >12.3 mV</td><td  >8.3 mV</td><td  >Pass</td></tr><tr><th  ><strong>90% Load</strong></th><td  >12.5 mV</td><td  >11.4 mV</td><td  >15.1 mV</td><td  >8.5 mV</td><td  >Pass</td></tr><tr><th  ><strong>100% Load</strong></th><td  >18.8 mV</td><td  >12.0 mV</td><td  >15.7 mV</td><td  >9.5 mV</td><td  >Pass</td></tr><tr><th  ><strong>110% Load</strong></th><td  >19.3 mV</td><td  >12.5 mV</td><td  >15.4 mV</td><td  >9.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 1</strong></th><td  >20.9 mV</td><td  >9.9 mV</td><td  >14.3 mV</td><td  >8.5 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 2</strong></th><td  >17.7 mV</td><td  >10.4 mV</td><td  >13.0 mV</td><td  >8.3 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/McgYDCJiatjXE2eCVwJ55V.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/guL7L6Ufh9uHcJrz29gVsb.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rEyr5oTspJpgZPnDWbapbj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8YRt2htF2GKUcLHbJPzFja.png" alt="" /></figure></figure><p>The ripple suppression is great on all rails. With extra caps on the modular cables, the RM650 would easily reach the awesome ripple suppression of the RM650x model, but those caps make the cables bulky, and this is why the majority of users don't like them.</p><h2 id="ripple-at-full-load-22">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UPcHm2AHSdP7UMwiawVfa7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ewQhA7wao4sv4NDcebsfZb.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WG8DPcrLRH2qpUCVdK7MpJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JgDe2Kspe3XRAr6xNbJTKL.jpg" alt="" /></figure></figure><h2 id="ripple-at-110-load-21">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JkMwYeDz4EBvvk9cdzr3Jk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TakBnB9Gais74BhTG3zoig.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YNRpNrunMwGFKMhDCt9mWb.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qFQvVuUN7Hs6grxab4rZFn.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-1-22">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cGXKb34Cxenc6mt9c7yvKm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TF5kmXz5UcFoa5EZfGLiYG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GrQ2s8R3xwW2UddieBqYwX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5LSrQkQ4nzHpvqzdsaFPym.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-2-17">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BgHnp5h98TWSBpr94rndTL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XV6cgssG6DemaXxi4hMss8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/E73S6jjcsQzzXAEQbSTX56.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4A5d3vsBampbGFEhyk6pGm.jpg" alt="" /></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results-6">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1510px;"><p class="vanilla-image-block" style="padding-top:35.36%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/xATixAiVv6cHzskQV2PYza.png" mos="https://cdn.mos.cms.futurecdn.net/xATixAiVv6cHzskQV2PYza.png" align="" fullscreen="1" width="1510" height="534" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/xATixAiVv6cHzskQV2PYza.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>We notice some EMI spikes, but none of them goes higher than the respective limits.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="performance-noise-and-efficiency-3">Performance, Noise and Efficiency</h2><h2 id="performance-rating-22">Performance Rating</h2><p><a href="http://media.bestofmicro.com/X/1/843589/gallery/Result-34-34_Relative_Performance_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="" alt="Click For More Results" src="https://cdn.mos.cms.futurecdn.net/AkmtQRuSv6dW8gaYjf73z5.png" mos="https://cdn.mos.cms.futurecdn.net/AkmtQRuSv6dW8gaYjf73z5.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/AkmtQRuSv6dW8gaYjf73z5.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click For More Results </span></figcaption></figure><p>The RM650 takes the lead from the similar capacity Seasonic Focus Plus Gold unit. The RM650x scores higher.</p><h2 id="noise-rating-22">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/X/5/843593/gallery/Result-35-36_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="" alt="Click For More Results" src="https://cdn.mos.cms.futurecdn.net/BybWvra4Sb5nnM8nL9ZZCe.png" mos="https://cdn.mos.cms.futurecdn.net/BybWvra4Sb5nnM8nL9ZZCe.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/BybWvra4Sb5nnM8nL9ZZCe.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click For More Results </span></figcaption></figure><p>Corsair has the two quietest units in the 650W category.</p><h2 id="efficiency-rating-22">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/X/6/843594/gallery/Result-36-37_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="" alt="Click For More Results" src="https://cdn.mos.cms.futurecdn.net/AuswhFZQirP74J3bdH3U2j.png" mos="https://cdn.mos.cms.futurecdn.net/AuswhFZQirP74J3bdH3U2j.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/AuswhFZQirP74J3bdH3U2j.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click For More Results </span></figcaption></figure><p>The Corsair RM650 exceeds the performance of its two major opponents, here. </p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="bottom-line-6">Bottom Line</h2><p>The RM650 is dead silent and offers high overall performance, which still is 2% away from the slightly more expensive RM650x. The major differences with the latter are the less expensive bulk and filtering capacitors and the Hong Hua fan, instead of the proven NR135L which is used in all RMx units. I don't mind so much the Chinese-made caps since nowadays most caps are made in China, even some models from Japanese brands. Moreover, Corsair provides the same long warranty in both the RM and RMx units, showing its faith in the parts that CWT used. When it comes to the cooling fan, I am a huge fan of the NR135L because it has proven its worth so far, while there are several <strong><span>complaints </span></strong>about Hong Hua fans, mostly about ticking noises under low speeds.</p><p>It might lack the Japanese branded caps, the NR135L fan and it also doesn't use any extra caps on its modular cables, which is a blessing for most users though, but there are some areas where it is better than the RM650x which belongs to a higher line. For starters its efficiency is higher, especially under light loads, and it supports the new Modern Standby mode that Windows 10 introduced. This means that with the proper mainboard installed, the RM650 can wake up the system within a five second period. This new standby mode support is listed in the upcoming Intel ATX spec and most likely the RMx models will also get an update to support it. The same update should also provide higher efficiency under super light loads, in the RMx units.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1510px;"><p class="vanilla-image-block" style="padding-top:56.23%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/v8RNqqfQhxXLR4dsdyk92K.jpg" mos="https://cdn.mos.cms.futurecdn.net/v8RNqqfQhxXLR4dsdyk92K.jpg" align="" fullscreen="1" width="1510" height="849" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/v8RNqqfQhxXLR4dsdyk92K.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The major problem of the RM650 is the small price difference with the RM650x, which offers higher overall performance and it also manages to achieve an even lower overall noise output. Currently there is only a ten-dollar (around £8) gap between those two products and it will probably affect the sales of the RM650.</p><p>With a higher price difference, the RM650 would look much more appealing, For those of you that would like to check on a different brand, there is also the similar capacity Seasonic Focus Plus Gold which offers good performance and compact dimensions. Nonetheless, Seasonic's offering is not as quiet as the RM650, but you cannot call it noisy either with an overall noise output close to 25 dB(A).</p><p><em>Image Credits: Tom's Hardware</em></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><p><strong><em>Disclaimer:</em></strong><em> Aris Mpitziopoulos is Tom's Hardware's PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em>, and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom's Hardware. Neither Tom's Hardware nor its parent company, Future</em><span class="st"> PLC</span><em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Cooler Master V850 Platinum Power Supply Review ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/cooler-master-v850-platinum-power-supply,6119.html</link>
                                                                            <description>
                            <![CDATA[ The Cooler Master V850 Platinum has high build quality and quiet operation. Are there better options though, with the same amount? ]]>
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                                                                        <pubDate>Sun, 14 Jul 2019 13:00:00 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:32:28 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <h2 id="specifications-and-part-analysis-5">Specifications and Part Analysis</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1280px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="" alt="Cooler Master V850 Platinum Power Supply." src="https://cdn.mos.cms.futurecdn.net/Xd4MfVUNp6qavJx45ysJnf.jpg" mos="https://cdn.mos.cms.futurecdn.net/Xd4MfVUNp6qavJx45ysJnf.jpg" align="" fullscreen="1" width="1280" height="720" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Xd4MfVUNp6qavJx45ysJnf.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Cooler Master V850 Platinum Power Supply.  </span></figcaption></figure><p>The Cooler Master V850 Platinum power supply performs well enough, and its build quality is top-notch. The major downside is the high price tag, <strong>$199 (£153)</strong>, which makes it more expensive than better performing units with some of them having a quieter operation. For instance, the similar capacity Seasonic Prime Ultra Platinum is better in all areas but noise output, since its overall noise output is 12 dB(A) higher than Cooler Master's offering. Another strong opponent of the V850 Platinum is the Corsair HX850 which has a much lower price tag, yet it offers better performance and is quieter by almost 5 dB(A) overall. Things look tough for the V850 Platinum, given its strong competitors. Cooler Master should proceed on lowering its price, by at least 30-40 bucks (23 to 31 pounds), if it wants to boost its performance per dollar/pound ratio.</p><p>Cooler Master's new V Platinum line consists of three members with capacities ranging from 850 to 1300W. We have already evaluated the strongest member of the line, so we decided to take a look at the smallest as well, since its lower capacity and price make it more interesting to the majority of users.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/yRJW6JYGYZAUHcYp8hckx3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UxmuGe4f4mQ97vCsRRmh27.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KKBwEv7ePchvCbjR2BJ2xN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cVochdqs2zYFW5mUBmBBiJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/okrersrSq7w3gzLntuh6nX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cToKnauLxRBVdfLEQZo2BZ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MQ2M7ayaJREh9tgvENepeS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CxBkt7JyKAXKNudCVoEEzA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QKtbbbDu4YhTF7JVAN8svM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P2nZepcDF4SaL6veDeE98V.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Aiiqh2Lb8U6qiztqpJCB84.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pmRvdVErQv5yzk5cx2hxjk.jpg" alt="" /></figure></figure><p>The Cooler Master V850 Platinum is based on an older Delta platform, which we've last seen several years ago, in the Antec HCP-850. This is a highly capable design, but it counts many years in production so naturally, it will have a hard time facing fierce competition. In the efficiency section, the V850 meets the requirements of the 80 PLUS Platinum and Cybenetics ETA-A standards, while its noise output is kept low. All cables are modular, the cooling fan uses double ball-bearings which will easily cope with high operating temperatures and the provided warranty is long at ten-years.</p><h2 id="specifications-23">Specifications</h2><div ><table><tbody><tr><th  ><strong>Manufacturer (OEM)</strong></th><td  >Delta Electronics</td></tr><tr><th  ><strong>Max. DC Output</strong></th><td  ><span class="spelle">850W</span></td></tr><tr><th  ><strong>Efficiency</strong></th><td  >80 PLUS Platinum, *ETA-A (88-91%)</td></tr><tr><th  ><strong>Noise</strong></th><td  >*LAMBDA-A- (25-30 dB[A])</td></tr><tr><th  ><strong>Modular</strong></th><td  >✓ (Fully)</td></tr><tr><th  ><strong>Intel C6/C7 Power State Support</strong></th><td  >✓</td></tr><tr><th  ><strong>Operating Temperature (Continuous Full Load)</strong></th><td  >0 - 50°C</td></tr><tr><th  ><strong>Over Voltage Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Under Voltage Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Power Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Current (+12V) Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Over Temperature Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Short Circuit Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Surge Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Inrush Current Protection</strong></th><td  >✓</td></tr><tr><th  ><strong>Fan Failure Protection</strong></th><td  >✗</td></tr><tr><th  ><strong>No Load Operation</strong></th><td  >✓</td></tr><tr><th  ><strong>Cooling</strong></th><td  >135mm Double Ball Bearing Fan (AFB1312M)</td></tr><tr><th  ><strong>Semi-Passive Operation</strong></th><td  >✓ (Selectable)</td></tr><tr><th  ><strong>Dimensions (</strong><span class="spelle"><strong>W x H x D</strong></span><strong>)</strong></th><td  >152 x 87 x 192mm</td></tr><tr><th  ><strong>Weight</strong></th><td  >2.13 kg (4.7 <span class="spelle">lb</span>)</td></tr><tr><th  ><strong>Form Factor</strong></th><td  >ATX12V v2.4, EPS 2.92</td></tr><tr><th  ><strong>Warranty</strong></th><td  >10 Years</td></tr></tbody></table></div><p>* The V850 Platinum is not certified by Cybenetics, yet. The provided ratings are based on our own measurements.</p><h2 id="power-specifications-23">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V1</strong></th><th  ><strong>12V2</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >25</td><td  >25</td><td  >35.2</td><td  >35.2</td><td  >3</td><td  >0.5</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">130</td><td  colspan="2">844</td><td  >15</td><td  >6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="6">850</td></tr></tbody></table></div><h2 id="cables-amp-connectors-16">Cables & Connectors</h2><div ><table><thead><tr><th  colspan="5"><strong>Modular Cables</strong></th></tr></thead><tbody><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><th  ><strong>ATX connector 20+4 pin (650mm)</strong></th><td  >1</td><td  >1</td><td  >18-22AWG</td><td  >No</td></tr><tr><th  ><strong>8 pin EPS12V (750mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4+4 pin EPS12V (680mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (650mm+120mm) </strong></th><td  >3</td><td  >6</td><td  >16-18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (560mm+120mm+120mm+120mm)</strong></th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (520mm+120mm+120mm+120mm)</strong></th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4-pin Molex (500mm+120mm+120mm+120mm)</strong></th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>FDD Adapter (+120mm)</strong></th><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><th  ><strong>AC Power Cord (1360mm) - C13 coupler</strong></th><td  >1</td><td  >1</td><td  >17AWG</td><td  >-</td></tr></tbody></table></div><p>This is a fully modular power supply, and it is equipped with lots of cables, as you can see in the table above. All cables are long, but the distance between the peripheral connectors should be 150mm, instead of only 120mm. Finally, there are no in-line caps, and only the PCIe cables use thicker 16AWG gauges, up to the first connector.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/kpYARBBnQaQNtvPWTNK2VE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xreapQEnKEU4QouNSvVhgL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Lzwck4zNdx3jFJC8wmsVmH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/P9HTXo8pqbWHhzUsUg8SSL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cUJkY47Z5PfSaQUqYMbRcE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4sAQ9qRTePDvPCw8Cw8nrR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WJd5WXJMkjG7uhnY3e4Pm8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8fW7SNpHuAF4jZga8kGT9E.jpg" alt="" /></figure></figure><h2 id="power-distribution">Power Distribution</h2><div ><table><thead><tr><th  colspan="2"><strong>Power Distribution</strong></th></tr></thead><tbody><tr><th  >12V1</th><td  >ATX, PCIe, Peripheral</td></tr><tr><th  >12V2</th><td  >CPU</td></tr></tbody></table></div><h2 id="component-analysis-23">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, allowing you to better understand the components we're about to discuss.</p><div ><table><thead><tr><th  colspan="2"><strong>General Data</strong></th></tr></thead><tbody><tr><th  >Manufacturer (OEM)</th><td  >Delta Electronics</td></tr><tr><th  >PCB Type</th><td  >Single Sided</td></tr><thead><tr><th  colspan="2"><strong>Primary Side</strong></th></tr></thead><tr><th  >Transient Filter</th><td  >6x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td></tr><tr><th  >Inrush Protection</th><td  >NTC Thermistor & Relay</td></tr><tr><th  >Bridge Rectifier(s)</th><td  >2x Vishay <a href="https://www.vishay.com/docs/88646/gsib25xx.pdf">GSIB2560</a> (600V, 25A @ 98°C)</td></tr><tr><th  >APFC MOSFETS</th><td  >3x Alpha & Omega <a href="https://pdf1.alldatasheet.com/datasheet-pdf/view/484119/AOSMD/AOTF27S60.html">AOTF27S60</a> (600V, 17A @ 100°C, 0.44Ohm @ 150°C)</td></tr><tr><th  >APFC Boost Diode</th><td  >1x CREE <a href="https://www.wolfspeed.com/media/downloads/843/C3D08060A.pdf">C3D08060A</a> (600V, 8A @ 152°C)</td></tr><tr><th  >Hold-up Cap(s)</th><td  >2x Rubycon (450V, 470uF, 2000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_mxh.pdf">MXH</a>)</td></tr><tr><th  >Main Switchers</th><td  >4x <a href="https://www.mouser.com/ds/2/389/stb25nm60nd-955461.pdf">STF25NM60ND</a> (600V, 13A @ 100°C, 0.16Ohm)</td></tr><tr><th  >APFC Controller</th><td  >Champion <a href="https://www.hardwaresecrets.com/datasheets/CM6502S.pdf">CM6802SNX</a> & CM03X Green PFC Controller</td></tr><tr><th  >Resonant Controllers</th><td  >Champion <a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901.pdf">CM6901X</a></td></tr><tr><th  >Topology</th><td  >Primary side: Full-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><thead><tr><th  colspan="2"><strong>Secondary Side</strong></th></tr></thead><tr><th  >+12V MOSFETS</th><td  >Unknown number of FETs</td></tr><tr><th  >5V & 3.3V</th><td  >DC-DC Converters:3x Infineon <a href="https://www.infineon.com/dgdl/Infineon-BSC0904NSI-DS-v02_03-en.pdf?fileId=db3a30432f29829e012f3073397339ef">BSC0904NSI</a> (30V, 49A @ 100°C, 3.7mOhm), 1x Infineon <a href="https://www.infineon.com/dgdl/BSC052N03LS_Rev%202.1.pdf?folderId=db3a304313b8b5a60113cee8763b02d7&fileId=db3a30432c64a60d012cbc1084350363">BSC052N03LS</a> (30V, 36A @ 100°C, 5.2mOhm)</td></tr><tr><th  >Filtering Capacitors</th><td  >Electrolytics: 11x Rubycon (6-10,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_zlh.pdf">ZLH</a>), 2x Nippon Chemi-con (1-5,000h @ 105°C, <a href="http://www.chemi-con.com/upload/files/7/5/32389236352d6c56e8f45b.pdf">KZE</a>), 10x Nippon Chemi-con (5-6,000h @ 105°C, <a href="https://www.semicon.gr/images/products/1394046153-KZH%20%20%20SERIES%20%20NIPPON%20CHEMICON.pdf">KZH</a>) Polymers: Nichicon, Nippon Chemi-con, NIC</td></tr><tr><th  >Supervisor IC</th><td  >Texas Instruments <a href="http://www.ti.com/lit/ds/slvs313b/slvs313b.pdf">DWA103N-A</a> (OCP, OVP, UVP, SCP, PG)</td></tr><tr><th  >Fan Model</th><td  >Delta AFB1312M (135mm, 12V, 0.38A, Double Ball Bearing Fan)</td></tr><thead><tr><th  colspan="2"><strong>5VSB Circuit</strong></th></tr></thead><tr><th  >Rectifier</th><td  >1x STMicroelectronics <a href="https://gr.mouser.com/datasheet/2/389/stps20l60c-956600.pdf">STPS20L60CT</a> SBR (60V, 20A @ 140°C)</td></tr><tr><th  >Standby PWM Controller</th><td  >Power Integrations <a href="https://gr.mouser.com/datasheet/2/328/tinyswitch-iii_family_datasheet-1512318.pdf">TNY280PG</a></td></tr></tbody></table></div><p>All new V Platinum power supplies are made by Delta Electronics, which is the largest PSU manufacturer and one of the best. The platform might count several years in production, but it uses all contemporary tricks including a full-bridge topology along with an LLC resonant converter on the primary side, for restricted energy loses.</p><p>The main transformer uses a unique design that allows it to be extra small. On top of that, the board that hosts the +12V FETs is directly attached to the main transformer, to increase efficiency and minimize EMI noise. The +12V rail is mostly filtered by polymer caps, which are much more tolerant to high operating temperatures than electrolytic ones. Finally, the build quality is excellent; something expected given that Delta is well known for its top-notch production lines and the strict quality control.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/2Ejm4yBqX6zH9YPsWD3yoY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mRH8LaSAuShatzhHT74BL9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pw3QC2f7uDArbyoTPqFiJE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BjUHAbYQoLaxeDzPC7Kp5f.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9NHJBFrAPbNKBYmZzoQzgf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dRfRi6ryALAFzb3LaXk3hY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/45kurKzBLFStXj7S5ewG8L.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZoaiBr2hHH567R5QeQZGKT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5x4wcbP583M34KpxBaFyyD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VY2PxaxmBApVzfozcmjuF6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TCjH95e3czePC4nNjNQvsM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cJw3LcBMNV5E7ruABVGdpH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mGX6yn7FXYFkHNDHpfMrW5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VyT79AGKMMs2yteq7b7d3f.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hvc2ADgh8GWX9x8LSAPNVU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/44DL2DE3mqp7r7BMruU2aU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3epskwkwNYwa2AeAADkdb8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZFarDrk6cRXLTWmM3AUrpg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GxYAn4an7HrE84ThBG7Ut3.jpg" alt="" /></figure></figure><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="load-regulation-hold-up-time-inrush-current-efficiency-and-noise-5">Load Regulation, Hold-Up Time, Inrush Current, Efficiency and Noise</h2><p><strong>To learn more about our PSU tests and methodology, please check out <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a></strong> </p>        <div class="featured_product_block featured_block_hero" data-id="2a648cd9-30cc-4e8d-a07b-fc31d89e0004">            <a href="http://www.amazon.com/gp/product/http://www.amazon.com/gp/product/B07NQTTGZW?tag=hawk-future-20&ascsubtag=tomshardware-deal&ascsubtag=%site%%transactionId%-gclid-%gclid%-Fallback" data-model-name="Cooler Master V850 Platinum" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.23%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/ShPFNDLP5tFz8ezukSPrwU.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Cooler Master V850 Platinum</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="751cba53-24b9-4e4a-b398-4d7e47813b05">            <a href="http://www.tkqlhce.com/click-8900246-12920453?sid=tomshardware-&url=https://www.newegg.com/Product/Product.aspx?Item=N82E16817139158" data-model-name="AX850" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/8tXc2GkDcjonRQDFwPeBAT.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair AX850</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="dbefe912-a432-469e-821f-45d5d197b6c2">            <div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/UguhfWCnPawsZVzGfxqnFo.jpg" alt=""></p></div>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Thermaltake Toughpower Grand RGB 850W Gold</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-23">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply, because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QERbMwmKK5JGjL7wxtns57.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AcvEegowi4Gaq4PxUDJbSW.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hhqg3XPHk6cUEAZURZtVg3.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/w5cf7NczakciNMVcLmLKmV.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SCAkjtSEuZLrQuzUBy27nX.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Lv3Ugz5vVHEDKmMLhD8wVA.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YaRooTVnSLxXnYsvhUfAX9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AmwyeQRSV5TnDDkbgatncj.png" alt="" /></figure></figure><p>The load regulation is tight enough on all rails but the 5VSB one, where the deviation is close to 3.6%.</p><h2 id="hold-up-time-23">Hold-Up Time</h2><p>Put simply, hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wA2zMnw73Y8jYAgd46hBpL.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/k6mBCxx25P9hs3Myi5kpNV.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7UHdJiAuw7StyxDwNnN2RY.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7UmT2jwSmLqnZV8NHeRsdi.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EiY65d5ZHbFT8kR2QHGWqk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kaQFk3XgQHbiuPHPqZPddm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/N6nmyo26HtSNBtLyja48jA.jpg" alt="" /></figure></figure><p>The hold-up time is longer than 20ms, but to our surprise the power ok signal is inaccurate. This is unacceptable of course.</p><h2 id="inrush-current-23">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zAfV6Qz4QyofVSrVjcEXBS.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MycQ2DkaeQTrpXBCHsFU5R.png" alt="" /></figure></figure><p>The inrush current is at normal levels with 115V and pretty high with 230V.</p><h2 id="10-110-load-tests-22">10-110% Load Tests</h2><p>These tests reveal the V850’s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>Temps (In/Out)</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>5.168A</strong></td><td  ><strong>1.989A</strong></td><td  ><strong>1.980A</strong></td><td  ><strong>0.984A</strong></td><td  >84.905</td><td  rowspan="2">85.178%</td><td  rowspan="2">629</td><td  rowspan="2">14.1</td><td  >39.26°C</td><td  >0.942</td></tr><tr><td  >12.251V</td><td  >5.025V</td><td  >3.331V</td><td  >5.084V</td><td  >99.680</td><td  >43.40°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>11.315A</strong></td><td  ><strong>2.987A</strong></td><td  ><strong>2.974A</strong></td><td  ><strong>1.184A</strong></td><td  >169.410</td><td  rowspan="2">89.610%</td><td  rowspan="2">621</td><td  rowspan="2">13.8</td><td  >40.21°C</td><td  >0.960</td></tr><tr><td  >12.241V</td><td  >5.022V</td><td  >3.329V</td><td  >5.069V</td><td  >189.052</td><td  >44.67°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>17.864A</strong></td><td  ><strong>3.487A</strong></td><td  ><strong>3.458A</strong></td><td  ><strong>1.385A</strong></td><td  >254.504</td><td  rowspan="2">91.093%</td><td  rowspan="2">629</td><td  rowspan="2">14.1</td><td  >41.31°C</td><td  >0.966</td></tr><tr><td  >12.231V</td><td  >5.020V</td><td  >3.327V</td><td  >5.054V</td><td  >279.389</td><td  >46.12°C</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>24.423A</strong></td><td  ><strong>3.987A</strong></td><td  ><strong>3.969A</strong></td><td  ><strong>1.588A</strong></td><td  >339.704</td><td  rowspan="2">91.573%</td><td  rowspan="2">629</td><td  rowspan="2">14.1</td><td  >41.90°C</td><td  >0.973</td></tr><tr><td  >12.222V</td><td  >5.018V</td><td  >3.325V</td><td  >5.039V</td><td  >370.965</td><td  >47.34°C</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>30.669A</strong></td><td  ><strong>4.987A</strong></td><td  ><strong>4.966A</strong></td><td  ><strong>1.792A</strong></td><td  >425.016</td><td  rowspan="2">91.596%</td><td  rowspan="2">629</td><td  rowspan="2">14.1</td><td  >42.45°C</td><td  >0.978</td></tr><tr><td  >12.211V</td><td  >5.016V</td><td  >3.322V</td><td  >5.025V</td><td  >464.010</td><td  >48.81°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>36.859A</strong></td><td  ><strong>5.985A</strong></td><td  ><strong>5.963A</strong></td><td  ><strong>1.996A</strong></td><td  >509.509</td><td  rowspan="2">91.329%</td><td  rowspan="2">767</td><td  rowspan="2">19.8</td><td  >42.92°C</td><td  >0.982</td></tr><tr><td  >12.201V</td><td  >5.012V</td><td  >3.319V</td><td  >5.012V</td><td  >557.886</td><td  >49.95°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>7</strong></th><td  ><strong>43.091A</strong></td><td  ><strong>6.989A</strong></td><td  ><strong>6.965A</strong></td><td  ><strong>2.202A</strong></td><td  >594.822</td><td  rowspan="2">90.452%</td><td  rowspan="2">1206</td><td  rowspan="2">32.5</td><td  >43.41°C</td><td  >0.986</td></tr><tr><td  >12.200V</td><td  >5.009V</td><td  >3.317V</td><td  >4.996V</td><td  >657.612</td><td  >51.34°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>8</strong></th><td  ><strong>49.368A</strong></td><td  ><strong>7.992A</strong></td><td  ><strong>7.965A</strong></td><td  ><strong>2.410A</strong></td><td  >680.151</td><td  rowspan="2">90.093%</td><td  rowspan="2">1397</td><td  rowspan="2">35.8</td><td  >43.73°C</td><td  >0.988</td></tr><tr><td  >12.189V</td><td  >5.006V</td><td  >3.314V</td><td  >4.980V</td><td  >754.944</td><td  >52.48°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>9</strong></th><td  ><strong>56.040A</strong></td><td  ><strong>8.495A</strong></td><td  ><strong>8.454A</strong></td><td  ><strong>2.413A</strong></td><td  >765.069</td><td  rowspan="2">89.726%</td><td  rowspan="2">1662</td><td  rowspan="2">40.3</td><td  >44.63°C</td><td  >0.989</td></tr><tr><td  >12.180V</td><td  >5.003V</td><td  >3.312V</td><td  >4.974V</td><td  >852.669</td><td  >54.29°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>10</strong></th><td  ><strong>62.463A</strong></td><td  ><strong>9.000A</strong></td><td  ><strong>8.972A</strong></td><td  ><strong>3.037A</strong></td><td  >849.887</td><td  rowspan="2">89.119%</td><td  rowspan="2">2181</td><td  rowspan="2">47.0</td><td  >45.95°C</td><td  >0.991</td></tr><tr><td  >12.170V</td><td  >5.001V</td><td  >3.310V</td><td  >4.941V</td><td  >953.650</td><td  >55.96°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>11</strong></th><td  ><strong>69.487A</strong></td><td  ><strong>9.002A</strong></td><td  ><strong>8.978A</strong></td><td  ><strong>3.041A</strong></td><td  >934.675</td><td  rowspan="2">88.617%</td><td  rowspan="2">2188</td><td  rowspan="2">47.2</td><td  >46.74°C</td><td  >0.991</td></tr><tr><td  >12.160V</td><td  >5.000V</td><td  >3.308V</td><td  >4.934V</td><td  >1054.737</td><td  >57.42°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>CL1</strong></th><td  ><strong>0.144A</strong></td><td  ><strong>16.003A</strong></td><td  ><strong>15.997A</strong></td><td  ><strong>0.000A</strong></td><td  >134.984</td><td  rowspan="2">82.963%</td><td  rowspan="2">629</td><td  rowspan="2">14.1</td><td  >42.55°C</td><td  >0.959</td></tr><tr><td  >12.235V</td><td  >5.004V</td><td  >3.322V</td><td  >5.109V</td><td  >162.704</td><td  >48.79°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>CL2</strong></th><td  ><strong>70.338A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>1.000A</strong></td><td  >869.730</td><td  rowspan="2">89.536%</td><td  rowspan="2">2182</td><td  rowspan="2">47.1</td><td  >45.28°C</td><td  >0.991</td></tr><tr><td  >12.175V</td><td  >5.015V</td><td  >3.316V</td><td  >5.034V</td><td  >971.376</td><td  >55.55°C</td><td  >115.10V</td></tr></tbody></table></div><p>Under high temperatures and with 20% and 50% load, the PSU doesn't reach the efficiency numbers that the 80 PLUS Platinum standard requires. Under full load, it manages to go over 89%, though.</p><p>Besides the loud fan noise, we didn't encounter any problem stressing the unit with full and even more power, under high operating temperatures. The V850 power supply is resilient to harsh conditions.</p><h2 id="20-80w-load-tests-23">20-80W Load Tests</h2><p>In the following tests, we measure the V850's efficiency at loads significantly lower than 10% of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle, with power-saving features turned on.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.178A</strong></td><td  ><strong>0.497A</strong></td><td  ><strong>0.480A</strong></td><td  ><strong>0.195A</strong></td><td  >19.533</td><td  rowspan="2">65.341%</td><td  rowspan="2">630</td><td  rowspan="2">14.2</td><td  >0.826</td></tr><tr><td  >12.259V</td><td  >5.019V</td><td  >3.330V</td><td  >5.124V</td><td  >29.894</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>2.421A</strong></td><td  ><strong>0.994A</strong></td><td  ><strong>0.991A</strong></td><td  ><strong>0.391A</strong></td><td  >39.968</td><td  rowspan="2">77.202%</td><td  rowspan="2">629</td><td  rowspan="2">14.1</td><td  >0.895</td></tr><tr><td  >12.256V</td><td  >5.025V</td><td  >3.332V</td><td  >5.114V</td><td  >51.771</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>3.594A</strong></td><td  ><strong>1.492A</strong></td><td  ><strong>1.468A</strong></td><td  ><strong>0.588A</strong></td><td  >59.431</td><td  rowspan="2">81.818%</td><td  rowspan="2">629</td><td  rowspan="2">14.1</td><td  >0.931</td></tr><tr><td  >12.253V</td><td  >5.027V</td><td  >3.332V</td><td  >5.104V</td><td  >72.638</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>4.839A</strong></td><td  ><strong>1.990A</strong></td><td  ><strong>1.979A</strong></td><td  ><strong>0.785A</strong></td><td  >79.873</td><td  rowspan="2">84.833%</td><td  rowspan="2">629</td><td  rowspan="2">14.1</td><td  >0.940</td></tr><tr><td  >12.251V</td><td  >5.025V</td><td  >3.331V</td><td  >5.093V</td><td  >94.153</td><td  >115.12V</td></tr></tbody></table></div><p>We would like to see higher than 70% efficiency with 20W load, and above 80% with 40W.</p><h2 id="efficiency-16">Efficiency</h2><p>Next, we plotted a chart showing the V850’s efficiency at low loads, and loads from 10 to 110% of its maximum-rated capacity. The higher a PSU’s efficiency the less energy goes wasted leading to a reduced carbon footprint, besides lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GcUCDSxJBZaU5Q325HRBx7.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aweHQGZyfZP6nzwksiY2Va.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MaBp67NGhUM2ey3B3CiToE.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ewDd2222axNv8dANTKFQch.png" alt="" /></figure></figure><p>The Cooler Master V850 Platinum achieves low efficiency numbers in both our normal and light load tests. Especially in the latter, the differences are notable with the units that we used for comparison purposes.</p><h2 id="5vsb-efficiency-23">5VSB Efficiency</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.513</td><td  rowspan="2">79.782%</td><td  >0.042</td></tr><tr><td  >5.131V</td><td  >0.643</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.281</td><td  rowspan="2">82.326%</td><td  >0.097</td></tr><tr><td  >5.125V</td><td  >1.556</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.812</td><td  rowspan="2">83.048%</td><td  >0.193</td></tr><tr><td  >5.112V</td><td  >3.386</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >5.093</td><td  rowspan="2">83.192%</td><td  >0.295</td></tr><tr><td  >5.092V</td><td  >6.122</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.607</td><td  rowspan="2">82.309%</td><td  >0.368</td></tr><tr><td  >5.071V</td><td  >9.242</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >15.034</td><td  rowspan="2">78.985%</td><td  >0.470</td></tr><tr><td  >5.012V</td><td  >19.034</td><td  >115.11V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ofWYNbhxYzDjTasAZF8wCc.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UeucboWpFADTXZUCzgJ6fc.png" alt="" /></figure></figure><p>As it was the case with the V1300, the 5VSB rail is highly efficient. Clearly the 5VSB circuit is identical in those two models.</p><h2 id="power-consumption-in-idle-and-standby-23">Power Consumption In Idle And Standby</h2><div ><table><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">12.261V</td><td  rowspan="2">5.023V</td><td  rowspan="2">3.334V</td><td  rowspan="2">5.135V</td><td  rowspan="2">9.594</td><td  >0.513</td></tr><tr><td  >115.1V</td></tr><tr><th  colspan="5" rowspan="2"><strong>Standby</strong></th><td  rowspan="2">0.039</td><td  >0.003</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/dTXDtRSj9Vd8JGiF248kG7.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mD4n5H36DsJBQBcfMbZ5ae.png" alt="" /></figure></figure><h2 id="fan-rpm-delta-temperature-and-output-noise-23">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/Qb3MR93FPkmod6qMnNFkN5.png" mos="https://cdn.mos.cms.futurecdn.net/Qb3MR93FPkmod6qMnNFkN5.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Qb3MR93FPkmod6qMnNFkN5.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/eoMDmMXVbtdGcTy3oiAsuk.png" mos="https://cdn.mos.cms.futurecdn.net/eoMDmMXVbtdGcTy3oiAsuk.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/eoMDmMXVbtdGcTy3oiAsuk.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The fan speed profile could be a bit smoother, under high operating temperatures. With 510W load the 767 RPM while with 85W more it increases its speed to 1206 RPM, outputting 12.7 dB(A) more.</p><p>The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/HbL9RFxNSZussZ3kXm5V56.jpg" mos="https://cdn.mos.cms.futurecdn.net/HbL9RFxNSZussZ3kXm5V56.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/HbL9RFxNSZussZ3kXm5V56.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/X2py3DMpQ7QBoCmXKp7hqn.jpg" mos="https://cdn.mos.cms.futurecdn.net/X2py3DMpQ7QBoCmXKp7hqn.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/X2py3DMpQ7QBoCmXKp7hqn.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>With normal ambient temperatures and up to 500W loads, the power supply's noise stays below 20 dB(A), which is equivalent to the noise of a broadcast/recording studio. With more than 650W it enters the 30-35 dB(A) region (quiet suburban, night time).</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="protection-features-dc-power-sequencing-cross-load-tests-and-infrared-images-4">Protection Features, DC Power Sequencing, Cross-Load Tests and Infrared Images</h2><h2 id="protection-features-23">Protection Features</h2><p><strong>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features</strong>.</p><div ><table><tbody><tr><td  colspan="2"><strong>Protection Features</strong></td></tr><tr><td  ><strong>OCP</strong></td><td  >12V1: >40.9A (>116.19%), <12.18V 12V2: >40.9A (>116.19%), <12.18V 5V: 34.8A (139.2%), 4.954V 3.3V: 34.1A (136.4%), 3.311V 5VSB: 6.7A (223.33%), 4.845V</td></tr><tr><td  ><strong>OPP</strong></td><td  >1347.18W (158.49%)</td></tr><tr><td  ><strong>OTP</strong></td><td  >✓ (155.8°C @ 12V Heat Sink)</td></tr><tr><td  ><strong>SCP</strong></td><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><td  ><strong>PWR_OK</strong></td><td  >Non Accurate</td></tr><tr><td  ><strong>NLO</strong></td><td  >✓</td></tr><tr><td  ><strong>SIP</strong></td><td  >Surge: MOV Inrush: NTC Thermistor & Bypass Relay</td></tr></tbody></table></div><p>The <a href="https://www.tomshardware.com/reviews/ocp-overcurrent-protection-power-supply-definition-psu,6241.html">Over Current Protection (OCP)</a> thresholds on the +12V rails exceed the capabilities of the Fast Auto electronic load that we use in these tests. We will acquire an additional Fast Auto though, to deal with stronger PSUs.</p><p>The minor rails have higher than the required, OCP triggering points but this doesn't seem to create any problems. Lastly, the 5VSB circuit is robust since it can deliver 6.7A before its protection kicks in.</p><p>The <a href="https://www.tomshardware.com/reviews/ocp-overcurrent-protection-power-supply-definition-psu,6242.html">Over Power Protection (OPP)</a> should be lower to protect the unit adequately. The ideal OPP triggering point is close to 130% of the unit's max-rated-capacity. Finally, the power ok signal is inaccurate, and this is a great shame for a high-end PSU.</p><h2 id="dc-power-sequencing-23">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/pMGV66et8aFu2KTmFDbzVh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/v92t2HwgKkbwi5jeSvmNwC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4MqfD3c4WvGKgvWxhfjxB7.jpg" alt="" /></figure></figure><p>The 3.3V rail is always lower than the other two rails.</p><h2 id="cross-load-tests-23">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-23">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jqZH4UPunQUMK287yZUQGY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VcgZpvQvpE3ipim5ctkJDc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PgHgPnsEQcPPsT6oKmA2Ak.jpg" alt="" /></figure></figure><h2 id="efficiency-chart-18">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:916px;"><p class="vanilla-image-block" style="padding-top:69.10%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/5irr2rTCKzyLHvLvTND38e.jpg" mos="https://cdn.mos.cms.futurecdn.net/5irr2rTCKzyLHvLvTND38e.jpg" align="" fullscreen="1" width="916" height="633" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/5irr2rTCKzyLHvLvTND38e.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The region, where efficiency exceeds 92%, is pretty small. For the majority of its operational range, the V850 delivers 90-92% efficiency.</p><h2 id="ripple-charts-18">Ripple Charts</h2><p>The lower the power supply's ripple, the more stable the system will be and less stress will be also applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7wJvgDFpwdZQLkhfLM6R5W.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QAqCWP8XRhrzoE3ZXuBKwm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zUYHZfZCZbp3fo36bewjem.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4zN4v7JvWfVtkNkTDTeK5e.jpg" alt="" /></figure></figure><h2 id="infrared-images-23">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/eKmEXAhU3B3KcDe8YgTR99.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/e2kBj6e58CfZGs735cqPBA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FAv3VqpfVcp7RPGkQraneY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aVri6kD9YfpYjdCAsUrUkG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hBvq5KfrgoHcGma52SGXUT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y3WdWXBWgFCxgUHWFsRFM8.jpg" alt="" /></figure></figure><p>The temperatures of the PSU's internals are at normal levels, given the conditions.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="transient-response-tests-ripple-measurements-and-emc-pre-compliance-testing-4">Transient Response Tests, Ripple Measurements and EMC Pre-Compliance Testing</h2><h2 id="advanced-transient-response-tests-23">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology we also choose to apply a worst case scenario with no extra capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms-10">Advanced Transient Response at 20% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.242V</td><td  >12.146V</td><td  >0.78%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.022V</td><td  >4.890V</td><td  >2.63%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.329V</td><td  ><strong>3.130V</strong></td><td  >5.98%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.067V</td><td  >4.999V</td><td  >1.34%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-10">Advanced Transient Response at 20% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.241V</td><td  >12.114V</td><td  >1.04%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.021V</td><td  >4.865V</td><td  >3.11%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.329V</td><td  ><strong>3.091V</strong></td><td  >7.15%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.067V</td><td  >4.989V</td><td  >1.54%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-23">Advanced Transient Response at 20% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.241V</td><td  >12.132V</td><td  >0.89%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.021V</td><td  >4.861V</td><td  >3.19%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.328V</td><td  ><strong>3.091V</strong></td><td  >7.12%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.068V</td><td  >5.014V</td><td  >1.07%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-10">Advanced Transient Response at 50% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.211V</td><td  >12.117V</td><td  >0.77%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.015V</td><td  >4.876V</td><td  >2.77%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.322V</td><td  ><strong>3.112V</strong></td><td  >6.32%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.025V</td><td  >4.959V</td><td  >1.31%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-10">Advanced Transient Response at 50% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.211V</td><td  >12.092V</td><td  >0.97%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.014V</td><td  >4.849V</td><td  >3.29%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.322V</td><td  ><strong>3.074V</strong></td><td  >7.47%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.025V</td><td  >4.956V</td><td  >1.37%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-23">Advanced Transient Response at 50% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.211V</td><td  >12.082V</td><td  >1.06%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.014V</td><td  >4.850V</td><td  >3.27%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.322V</td><td  ><strong>3.075V</strong></td><td  >7.44%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.025V</td><td  >4.964V</td><td  >1.21%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/PB5RWHkhVY3amMEQ4Jfoub.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VpCdaqXjXVAXupsxstQpaN.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hf7GKzojs7f7P7rntTsiwY.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DQF9ubbkit8VZEMpMmfkk4.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7etPHQPvJWAnw9Bga6yEAD.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ge3UjLbxy4bFAMYB6GfefN.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b84foEZ6UfQ45jdu9rXxEc.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sXZH9urvnEsQVbiZPByAnJ.png" alt="" /></figure></figure><p>The +12V rail, the most significant of all, performs well. This is not the case though for the minor rails and especially for the 3.3V rail, which fails in all of our tests. The V1300 also had a problem here, in the minor rails, so Cooler Master should ask Delta to improve the DC-DC converters that generate 5V and 3.3V.</p><h2 id="turn-on-transient-tests-23">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GXV56arFJNSCHtsrDrgiUG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DgU7gnozuGNQrQrU2GmRSA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hhP2KCmG3Z7YS9BRUm3U8Y.jpg" alt="" /></figure></figure><p>Only a small voltage overshoot at 5VSB, which is nothing to worry about.</p><h2 id="ripple-measurements-23">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10 degrees Celsius increase can cut into a cap's useful life by 50%. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><thead><tr><th  ><strong>Test</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>10% Load</strong></th><td  >12.5 mV</td><td  >15.0 mV</td><td  >15.7 mV</td><td  >12.5 mV</td><td  >Pass</td></tr><tr><th  ><strong>20% Load</strong></th><td  >13.0 mV</td><td  >15.9 mV</td><td  >15.1 mV</td><td  >12.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>30% Load</strong></th><td  >16.1 mV</td><td  >16.3 mV</td><td  >16.5 mV</td><td  >13.3 mV</td><td  >Pass</td></tr><tr><th  ><strong>40% Load</strong></th><td  >18.4 mV</td><td  >16.6 mV</td><td  >17.7 mV</td><td  >13.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>50% Load</strong></th><td  >19.0 mV</td><td  >18.6 mV</td><td  >18.0 mV</td><td  >13.5 mV</td><td  >Pass</td></tr><tr><th  ><strong>60% Load</strong></th><td  >20.2 mV</td><td  >17.8 mV</td><td  >17.9 mV</td><td  >15.0 mV</td><td  >Pass</td></tr><tr><th  ><strong>70% Load</strong></th><td  >17.3 mV</td><td  >20.1 mV</td><td  >19.2 mV</td><td  >15.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>80% Load</strong></th><td  >19.9 mV</td><td  >19.9 mV</td><td  >19.6 mV</td><td  >17.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>90% Load</strong></th><td  >20.9 mV</td><td  >23.0 mV</td><td  >21.0 mV</td><td  >16.9 mV</td><td  >Pass</td></tr><tr><th  ><strong>100% Load</strong></th><td  >25.3 mV</td><td  >23.4 mV</td><td  >22.3 mV</td><td  >18.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>110% Load</strong></th><td  >26.9 mV</td><td  >24.1 mV</td><td  >24.3 mV</td><td  >19.5 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 1</strong></th><td  >14.4 mV</td><td  >20.7 mV</td><td  >21.9 mV</td><td  >13.9 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 2</strong></th><td  >25.5 mV</td><td  >23.3 mV</td><td  >19.1 mV</td><td  >17.6 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/S7WkccRMvRBnzoo2jhGHXj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gqwA9ExD3N6eCCqd4R9sdW.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jPqZJtKoSdfbxAX8A8Fcjc.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hjpGYAsRVUqbnHCpZbPGVo.png" alt="" /></figure></figure><p>The ripple suppression is decent, but not even close to the results of other high-end units with similar price tags. Delta's platforms used to be an example to follow when it comes to ripple suppression, but clearly this is not the case anymore because the competition has been vastly improved.</p><h2 id="ripple-at-full-load-23">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3DwwhRnG4kbZCoeUPKDFsB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4zgrfSNAMKJqemTnygUX5S.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eoJX9xz84HDkYtGLD2hSB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KM2DRGcZ3JRpRPwc3rfdwF.jpg" alt="" /></figure></figure><h2 id="ripple-at-110-load-22">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/7gS3Ce3pkRXpntwGyYDc7W.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/omPcD2EhCYj28eHaCvW44V.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ejM6iTAHHduyT78wnpz4fk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4FoWshyhxdhWFVfkJp6Ann.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-1-23">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fxEWRdeTgVx77kVUZUsxg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cJtGHBWyTWZQhdhqBygAaK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oQVFRanW3VavhC6A2DUiMK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8kTJCcr5pDuP4dU7xzCoZZ.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-2-18">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/9JEcd8KnVjTAc8jqFNKPtg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ogKXeXonPFoRHWR4SzBgG6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tNVcH3KZZYGaMiAnchpsYP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5an7MjGSyLRPbu3eS4imBk.jpg" alt="" /></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results-7">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1610px;"><p class="vanilla-image-block" style="padding-top:34.22%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/rLiQcS5iAyDeTawb6x4uUh.jpg" mos="https://cdn.mos.cms.futurecdn.net/rLiQcS5iAyDeTawb6x4uUh.jpg" align="" fullscreen="1" width="1610" height="551" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/rLiQcS5iAyDeTawb6x4uUh.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The conducted EMI emissions are kept low. The corresponding filter does a good job.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="performance-noise-and-efficiency-4">Performance, Noise and Efficiency</h2><h2 id="performance-rating-23">Performance Rating</h2><p><a href="http://media.bestofmicro.com/R/T/836921/gallery/Result-34-34_Relative_Performance_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/FNr7pWzmpYkCU6ty8DuFDL.png" mos="https://cdn.mos.cms.futurecdn.net/FNr7pWzmpYkCU6ty8DuFDL.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/FNr7pWzmpYkCU6ty8DuFDL.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The overall performance is low, even compared with more affordable power supplies like the Seasonic Focus Platinum 850W, which is currently sold for less than $140 (£108)</p><h2 id="noise-rating-23">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/R/U/836922/gallery/Result-35-36_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/d7PW8Rpu4B27aUdnuP3GzJ.png" mos="https://cdn.mos.cms.futurecdn.net/d7PW8Rpu4B27aUdnuP3GzJ.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/d7PW8Rpu4B27aUdnuP3GzJ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The V850 Platinum features a quiet overall operation if you keep the operating temperatures below 30-32 degrees Celsius.</p><h2 id="efficiency-rating-23">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/R/V/836923/gallery/Result-36-37_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/iKmjDuspKeLimcVenfddad.png" mos="https://cdn.mos.cms.futurecdn.net/iKmjDuspKeLimcVenfddad.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/iKmjDuspKeLimcVenfddad.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The majority of similar capacity power supplies with Cybenetics ETA-A and 80 PLUS Platinum certifications perform better here. The V850 manages to take the lead though, from the Corsair HX850.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="bottom-line-7">Bottom Line</h2><p>Delta is one of the best power supply manufacturers and definitely among the largest ones, but it had withdrawn from the desktop PSU market for quite some time now, so Cooler Master's decision to cooperate with this OEM and use a platform which counts several years in production, isn't one of its boldest moves. The last time that I saw this platform was almost five years ago, in an Antec HCP-850 which by the standards of that period was a really good product. Nonetheless, the scenery has dramatically changed and the competition has moved forward with a fast pace, so Delta's older designs cannot keep up, especially if they are offered at so high price levels. The Cooler Master V850 might have top build quality but it also has a high price tag, which inevitably affects its price per buck/pound performance.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1510px;"><p class="vanilla-image-block" style="padding-top:56.23%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/ShPFNDLP5tFz8ezukSPrwU.jpg" mos="https://cdn.mos.cms.futurecdn.net/ShPFNDLP5tFz8ezukSPrwU.jpg" align="" fullscreen="1" width="1510" height="849" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ShPFNDLP5tFz8ezukSPrwU.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>With much less money, you can get a Seasonic Focus Platinum 850W, which has similar noise output levels, higher efficiency, and better overall performance. If you don't want to go with the Seasonic offering, there is the Corsair <a href="https://www.tomshardware.com/reviews/corsair-hx850-psu,5257.html">HX850</a>, which is more affordable, quieter and also achieves higher overall performance. At the time of the review, even the mighty Corsair <a href="https://www.tomshardware.com/reviews/corsair-ax850-psu,5986.html">AX850</a>, which earned an editors choice and totally blows the V850 out of the water in every section, costs the same. Cooler Master should either drop the V850 Platinum's price, or it should proceed with modifications in order to improve its performance, especially in transient response where the power supply has to cope with fast-changing loads in all of its rails. Modifying this platform won't be a viable option though since it will take time and money, so the only option left is to drop the price by at least 50 bucks (£39). With the current pricing scheme, none of the fresh V series Platinum units stand a chance against the competition and this is a shame since they are built like tanks, so they will easily outlive their long warranty, even under tough operating conditions.</p><p><em>Image Credits: Tom's Hardware</em></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><p><strong><em>Disclaimer:</em></strong><em> Aris Mpitziopoulos is Tom's Hardware's PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em> and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom's Hardware. Neither Tom's Hardware nor its parent company, Future</em><span class="st"> PLC</span><em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Seasonic Focus SGX 500W SFX-L Power Supply Review: Top Performance In A Small Package ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/seasonic-focus-sgx-500w-sfx-l-power-supply,6095.html</link>
                                                                            <description>
                            <![CDATA[ The Seasonic Focus SGX units  bring a fresh air in the SFX-L market thanks to their high performance per buck ratios. ]]>
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                                                                        <pubDate>Sun, 09 Jun 2019 14:05:00 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:32:43 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <h2 id="specifications-and-part-analysis-6">Specifications and Part Analysis</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1280px;"><p class="vanilla-image-block" style="padding-top:56.48%;"><img id="" name="" alt="Seasonic Focus SGX 500W SFX-L Power Supply (Credit: Tom's Hardware)" src="https://cdn.mos.cms.futurecdn.net/NyxRA8Ss6P3bmmWPrCHHWY.jpg" mos="https://cdn.mos.cms.futurecdn.net/NyxRA8Ss6P3bmmWPrCHHWY.jpg" align="" fullscreen="1" width="1280" height="723" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/NyxRA8Ss6P3bmmWPrCHHWY.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Seasonic Focus SGX 500W SFX-L Power Supply ( </span><span class="credit" itemprop="copyrightHolder">(Image credit: Tom's Hardware))</span></figcaption></figure><p>The Seasonic Focus SGX with 500W capacity achieves top performance and manages to keep its output noise low. Even under tough operating temperatures (>40 degrees Celsius), its fan profile won't go crazy, as long as you don't exceed 50% of the max-rated-output. The main competitors of the SSR-500SGX, in the SFX-L category, are the similar capacity be quiet! <a href="https://www.tomshardware.com/reviews/be-quiet-sfx-l-power-600w-psu,5294.html">model</a> and the SilverStone <a href="https://www.tomshardware.com/reviews/silverstone-sx500-lg-power-supply,4136.html">SX500-LG</a>, with both PSUs achieving much lower overall performance than Seasonic's offering. There are also some SFX competitors, with the Corsair <a href="https://www.tomshardware.com/reviews/corsair-sf450-power-supply,4512.html">SF450</a> being the main one, although it has 50W less.</p><p>We recently evaluated the strongest member of Seasonic's SGX line, with <a href="https://www.tomshardware.com/reviews/seasonic-focus-sgx-650w-sfx-l-psu,6045.html">650W</a> capacity, which managed to make a very good impression on us. In this review, we will deal with the second strongest member of the line, with 500W capacity, which will either replace the 450W model (SSR-450SGX) or will just fill the 200W gap that currently exists between the 650W and 450W units. Since the 50W difference is insignificant, it would be better if the SSR-450SGX was replaced by the 500W model.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ywbmRK5w2WRuerxTrHv4aK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/v5Sn36qzGFM57vLuVLVzwR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kffLss6XSjEe9T4pivvbgK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pCGTkDVoQSGpeDGREr3um3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qaDjUnnfH5rSnagcSDsQSc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/atydNgu55yTq7SRdWawiie.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vSRDu66MbF7Y45USCz2JQU.jpg" alt="" /></figure></figure><p>The small packaging doesn't feature any fancy graphics and at its front side you won't even find a photo of the product. You will do find though a mention to the ten-year warranty, which currently is the longest provided in the SFX and SFX-L categories. Such a long warranty shows Seasonic's faith in this platform.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BJLdeH8WgZs3WnYZLnNHU5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YbkvZbxubfqcEganTmuuND.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dLgN4d2cwNsedYW9GVwFs7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EWj73VjZfWBg4m9VEoFwtb.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rLZ5uykSr7JD3CrqrwjTZP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wvR2WZDHzfKBSXMArWH4re.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DJgieZJRkLBLfstSdQvaAe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Z7cFDh7gwAbGRncgdoEq3J.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mkTm5HxuSKA6utvSYxnCX8.jpg" alt="" /></figure></figure><p>The external design looks nice and the punched fan grille isn't so restrictive (for the airflow). The PSU's finish is good and fairly scratch resistant. On the PSU's back, the modular panel includes eight sockets. Two of them are for the ATX cable and the rest correspond to the EPS, PCIe, SATA and peripheral cables and connectors.</p><h2 id="specifications-24">Specifications</h2><div ><table><tbody><tr><th  >Manufacturer (OEM)</th><td  ><span class="spelle">Seasonic</span></td></tr><tr><th  >Max. DC Output</th><td  ><span class="spelle">500W</span></td></tr><tr><th  >Efficiency</th><td  >80 PLUS Gold, ETA-A (88-91%)</td></tr><tr><th  >Noise</th><td  >LAMBDA-S++ (30-35 dB[A])</td></tr><tr><th  >Modular</th><td  >✓ (Fully)</td></tr><tr><th  >Intel C6/C7 Power State Support</th><td  >✓</td></tr><tr><th  >Operating Temperature (Continuous Full Load)</th><td  >0 - 50°C</td></tr><tr><th  >Over Voltage Protection</th><td  >✓</td></tr><tr><th  >Under Voltage Protection</th><td  >✓</td></tr><tr><th  >Over Power Protection</th><td  >✓</td></tr><tr><th  >Over Current (+12V) Protection</th><td  >✓</td></tr><tr><th  >Over Temperature Protection</th><td  >✓</td></tr><tr><th  >Short Circuit Protection</th><td  >✓</td></tr><tr><th  >Surge Protection</th><td  >✓</td></tr><tr><th  >Inrush Current Protection</th><td  >✓</td></tr><tr><th  >Fan Failure Protection</th><td  >✗</td></tr><tr><th  >No Load Operation</th><td  >✓</td></tr><tr><th  >Cooling</th><td  >120mm Fluid Dynamic Bearing Fan (S1201512HB)</td></tr><tr><th  >Semi-Passive Operation</th><td  >✓</td></tr><tr><th  >Dimensions (<span class="spelle">W x H x D</span>)</th><td  >128 x 66 x 128mm</td></tr><tr><th  >Weight</th><td  >1.11 kg (2.45 <span class="spelle">lb</span>)</td></tr><tr><th  >Form Factor</th><td  >SFX-L, EPS 2.92</td></tr><tr><th  >Warranty</th><td  >10 Years</td></tr></tbody></table></div><h2 id="power-specifications-24">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >41</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">100</td><td  >492</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">500</td></tr></tbody></table></div><h2 id="cables-and-connectors-8">Cables and Connectors</h2><div ><table><thead><tr><th  colspan="5"><strong>Modular Cables</strong></th></tr></thead><tbody><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><th  ><strong>ATX connector 20+4 pin (360mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4+4 pin EPS12V (400mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (400mm+100mm) </strong></th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (300mm+200mm+100mm)</strong></th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4-pin Molex (300mm+200mm+200mm)</strong></th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>AC Power Cord (1370mm) - C13 coupler</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>There is a single EPS connector, as is the case in the 650W model, while the number of PCIe connectors is enough to cover the unit's 500W capacity. This is not the case though for the SATA connectors which are only three. There should be an additional SATA cable, increasing the number of the corresponding connectors to six. There are still two sockets left vacant, with all provided cables connected, one for an extra peripheral cable and one for an extra PCIe or EPS cable.</p><p>The cables are short since the SSR-500SGX is destined for small cases. Nonetheless, the distance between the peripheral connectors is long enough in order to avoid any compatibility issues. Finally, there are no in-cable caps, which are a nightmare for the majority of users because they make the cables bulky.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xpFymmdQbMJWMnFqS57o8a.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RyRrLRubcUBNYtWx6bmxMB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nU7LnmDPVxfHA3hceijUBK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4DdyXPeR8pQznvRhX8LnuS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VNYhi4tPxUi3iCTFLERJ5b.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EHoeNMnJRcpf6ZwhMiD8dm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JqBQRPofvkjM2hP6D5GC7V.jpg" alt="" /></figure></figure><h2 id="component-analysis-24">Component Analysis </h2><p>We strongly encourage you to have a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, allowing you to better understand the components we're about to discuss.</p><div ><table><thead><tr><th  colspan="2"><strong>General Data</strong></th></tr></thead><tbody><tr><th  >Manufacturer (OEM)</th><td  >Seasonic</td></tr><tr><th  >PCB Type</th><td  >Double Sided</td></tr><thead><tr><th  colspan="2"><strong>Primary Side</strong></th></tr></thead><tr><th  >Transient Filter</th><td  >4x Y caps, 3x X caps, 2x CM chokes, 1x MOV</td></tr><tr><th  >Inrush Protection</th><td  >NTC Thermistor & Relay</td></tr><tr><th  >Bridge Rectifier(s)</th><td  >1x</td></tr><tr><th  >APFC MOSFETS</th><td  >2x Champion <a href="http://www.kediman.com/attaches/2016/08/834-ChRIgT.pdf">GPT18N50D</a> (500V, 18A @ 150°C, 0.27Ohm)</td></tr><tr><th  >APFC Boost Diode</th><td  >1x STMicroelectronics <a href="https://gr.mouser.com/datasheet/2/389/stth8s06-956936.pdf">STTH8S06D</a> (600V, 8A @ 150°C)</td></tr><tr><th  >Hold-up Cap(s)</th><td  >1x Nichicon (400V, 390uF, 3000h @ 105°C, <a href="http://www.nichicon.co.jp/english/products/pdfs/e-gn.pdf">GN</a>)</td></tr><tr><th  >Main Switchers</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP50R250CP-DS-v02_00-en.pdf?fileId=db3a30432313ff5e01238524b91c65ce">IPP50R250CP</a> (550V, 9A @ 100°C, 0.25Ohm)</td></tr><tr><th  >Combo APFC/PWM Controller</th><td  >Champion <a href="http://www.champion-micro.com/datasheet/PFC%20Design%20Algorithms.pdf">CM6500UN</a></td></tr><tr><th  >Resonant Controllers</th><td  >Champion <a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901T6.pdf">CM6901T6X</a></td></tr><tr><th  >Topology</th><td  >Primary side: Half-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><thead><tr><th  colspan="2"><strong>Secondary Side</strong></th></tr></thead><tr><th  >+12V MOSFETS</th><td  >2x Nexperia <a href="https://assets.nexperia.com/documents/data-sheet/PSMN1R0-40YLD.pdf">PSMN1R0-40YLD</a> (40V, 198A @ 100°C, 0.93mOhm)</td></tr><tr><th  >5V & 3.3V</th><td  >2x DC-DC Converters</td></tr><tr><th  >Filtering Capacitors</th><td  >Electrolytics: 3x Nippon Chemi-Con (105°C, W), 4x Nippon Chemi-Con (4-10,000 @ 105°C, <a href="http://www.chemi-con.com/upload/files/5/1/74811667552d6c4d41a84c.pdf">KY</a>), 2x Nichicon (4-10,000 @ 105°C, <a href="http://www.nichicon.co.jp/english/products/pdfs/e-he.pdf">HE</a>), 1x Rubycon (105°C) Polymers: 13x FPCAP, 4x Nippon Chemi-Con</td></tr><tr><th  >Supervisor IC</th><td  >Weltrend <a href="http://www.datalinker.com.hk/uploads/spec/WT7527V_T1_datasheet_v1.01.pdf">WT7527V</a> (OCP, OVP, UVP, SCP, PG)</td></tr><tr><th  >Fan Model</th><td  >Globe Fan S1201512HB (120mm, 12V, 0.45A, Fluid Dynamic Bearing Fan)</td></tr><thead><tr><th  colspan="2"><strong>5VSB Circuit</strong></th></tr></thead><tr><th  >Rectifier</th><td  >1x <a href="https://www.mouser.com/ds/2/258/MBR1045ULPS(TO-277B)-269088.pdf">MBR1045ULPS</a> SBR (45V, 10A @ 90°C)</td></tr><tr><th  >Standby PWM Controller</th><td  >Excelliance <a href="http://www.excelliancemos.com/download_prod_s.php?ds=70&file=2">EM8569C</a></td></tr></tbody></table></div><p>The same platform from the SSR-650SGX is used, with some changes in parts. To be more specific, the 500W unit uses different main switching FETs and a small number of +12V FETs, while the bulk cap is smaller as well.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/orZJqqzSxngp62KbReiWV6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QCv8p4bBgAtng646YotVKY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RZENPHZr3HFScXGDnP5SAb.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TEE5mTrxDgXDipLzGdnd8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B3zr9yxqhqKbGxtPPiSsYQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4NxRM96ZjJqK8i6BsLooSd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uDWh2NrajTtjGFbTzQqYzm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qd8A7ZQbKU2woKAUd8SX8i.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZaFRSwqUPaytvXnAj24KHE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QAYk3tpRuLMDPmgACTVmRm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xifLULe4cTcbqXANMpvAkn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dAiCmp2G8TxRUEU4K98MHB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/x85vt3arzPMckGQjF2jLJJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8Tf3dCYDxaf8DS83D54RUM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kG9pV5GVFnxrR5vWC3Wj6o.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oh7XZp75Ve6We9fWkkbCZh.jpg" alt="" /></figure></figure><p>On the secondary side, we measured the same amount of electrolytic and polymer caps (with the SSR-650SGX model), so we expect top-notch ripple suppression performance. The cooling fan is also the same, but apparently a more relaxed fan speed profile is used, since it will have to cope with lower thermal loads.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xaSq6Mr4XuomrcDqJ6xEfb.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M4U8qCr9WSvrvxnegymAsd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CiGB2bBo7xzkKPN68ZWLfk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DknkBsGekjCfb3PvU3zvb8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xN6r5DgRCni6YxcE8kvcpK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2gmkMH3x36UNHAKaHqk4gi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n9gJKdzUJFM2xLjkGk6bL8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Jxh4FLnXesuQhdsqVFqKPe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/N4Q26j7xEdq4vKJG9xAfma.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nHekcu7skxHWgK7wRJhMGV.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HD944kuL7mT8UrAu6U6JRE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jWx5bjbxmPMAXuBfo4fpy3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PphYnG53SdRTuZHk96bHxU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XSaXPZcwexjuSeFCjgweNF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Eo9ipL7W5ufoynnxmfGCJc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2XnpQ6MbgPZXYGFVNGfXbC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VXZkgvj8QxAk2jbNd9zdAG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ULg3tW3j6GaRKz9PZ6Vm55.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3fYBJpE9rrLbebxBgotbsL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fQuD3bAMnX8njpEZdK4PPC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gTdWNTQxTiSDxch3mZBsn8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ngzkrnp4cGqutbAmf4KLpg.jpg" alt="" /></figure></figure><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><iframe src="https://content.jwplatform.com/players/SzkW6ASo.html" id="SzkW6ASo" title="Buy the Right Graphics Card" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="load-regulation-hold-up-time-inrush-current-efficiency-and-noise-6">Load Regulation, Hold-Up Time, Inrush Current, Efficiency and Noise</h2><p><strong>To learn more about our PSU tests and methodology, please check out <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="93123e86-c38e-4b71-9213-e57c85c41cad">            <a href="https://www.amazon.com/CORSAIR-Platinum-Certified-Modular-Supply/dp/B07M63H81H?tag=hawk-future-20&ascsubtag=tomshardware&ascsubtag=%site%%transactionId%-gclid-%gclid%-Fallback" data-model-name="SF750" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/CUwZjvWe89cgKmxqZaihy8.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair SF750</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="e2fcd3bd-a25f-49ae-b103-f4fda2e79b57">            <a href="https://www.amazon.com/Corsair-Platinum-Certified-Modular-Supply/dp/B07F84FJ1G?tag=hawk-future-20&ascsubtag=tomshardware&ascsubtag=%site%%transactionId%-gclid-%gclid%-Fallback" data-model-name="SF600 Platinum" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/MJpMkconZNM4SU89TjnLSd.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair SF600 Platinum</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="9225f4c0-e502-4f9e-a64d-8d3e89bc4076">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=http://www.newegg.com/Product/Product.aspx?Item=9SIA6ZP3X94603" data-model-name="Corsair SF600" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/5JsJJRkdFgdkPUYSpdvDEi.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair SF600</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-24">Primary Rails and 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply, because it facilitates constant voltage levels despite varying loads. Tight load regulation also, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/djTr8WBfhJRxMeB946qAJa.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gtHQSKgHe6hnTVoPpjmPfG.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9Q9BZqzfXhC7ZqqMCZSh7h.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oaiTGwuWt7HAX3i6CddkDY.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/77siM3KaLQYNah9osBfsFM.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9xEYrUZowvAmLGQPanRQyn.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gwqYVTMP6buoR8WrK3FUrh.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/esx2ytRMML7VXU6JgSpPrj.png" alt="" /></figure></figure><p>The load regulation is extra tight on all rails, providing an example to follow to all competing models.</p><h2 id="hold-up-time-24">Hold-Up Time</h2><p>Put simply, hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zgmLk59KtcwwkU7Sd6CULj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MjYD3MoqTrQHSSGtGUWkVH.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rbwTcJAuJK3yQBkhSV43Mh.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/p2PJ8uNDHawWMDyvU4tng3.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Dm6He9gRpo8HB6VjQezkUS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gKEaFpJhBd6uwnCQ8YQtBX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/efQkBGFuWrTQqKvUwiisMj.jpg" alt="" /></figure></figure><p>The hold time is long and the power ok signal is accurate. There is nothing more to ask here.</p><h2 id="inrush-current-24">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/BSDAMMAxw8HEMrCHGrppYW.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jZfotFuXdPerNL57uor6XA.png" alt="" /></figure></figure><p>The registered inrush currents are at normal levels.</p><h2 id="10-110-load-tests-23">10-110% Load Tests</h2><p>These tests reveal the SSR-500SGX’s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>Temps (In/Out)</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>2.333A</strong></td><td  ><strong>2.000A</strong></td><td  ><strong>1.984A</strong></td><td  ><strong>0.975A</strong></td><td  >49.518</td><td  rowspan="2">83.324%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >43.89°C</td><td  >0.934</td></tr><tr><td  >11.973V</td><td  >4.999V</td><td  >3.320V</td><td  >5.128V</td><td  >59.428</td><td  >39.40°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>5.739A</strong></td><td  ><strong>3.002A</strong></td><td  ><strong>2.980A</strong></td><td  ><strong>1.172A</strong></td><td  >99.611</td><td  rowspan="2">88.256%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >44.38°C</td><td  >0.972</td></tr><tr><td  >11.975V</td><td  >4.996V</td><td  >3.318V</td><td  >5.119V</td><td  >112.866</td><td  >39.75°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>9.480A</strong></td><td  ><strong>3.503A</strong></td><td  ><strong>3.465A</strong></td><td  ><strong>1.370A</strong></td><td  >149.523</td><td  rowspan="2">89.764%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >45.16°C</td><td  >0.981</td></tr><tr><td  >11.976V</td><td  >4.995V</td><td  >3.317V</td><td  >5.110V</td><td  >166.574</td><td  >40.07°C</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>13.223A</strong></td><td  ><strong>4.004A</strong></td><td  ><strong>3.980A</strong></td><td  ><strong>1.568A</strong></td><td  >199.550</td><td  rowspan="2">89.821%</td><td  rowspan="2">939</td><td  rowspan="2">19.8</td><td  >40.60°C</td><td  >0.985</td></tr><tr><td  >11.976V</td><td  >4.994V</td><td  >3.316V</td><td  >5.101V</td><td  >222.163</td><td  >45.94°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>16.630A</strong></td><td  ><strong>5.007A</strong></td><td  ><strong>4.976A</strong></td><td  ><strong>1.768A</strong></td><td  >249.682</td><td  rowspan="2">89.851%</td><td  rowspan="2">1014</td><td  rowspan="2">23.2</td><td  >41.18°C</td><td  >0.988</td></tr><tr><td  >11.977V</td><td  >4.994V</td><td  >3.315V</td><td  >5.093V</td><td  >277.886</td><td  >46.78°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>20.034A</strong></td><td  ><strong>6.007A</strong></td><td  ><strong>5.973A</strong></td><td  ><strong>1.967A</strong></td><td  >299.761</td><td  rowspan="2">89.414%</td><td  rowspan="2">1338</td><td  rowspan="2">33.2</td><td  >41.95°C</td><td  >0.987</td></tr><tr><td  >11.978V</td><td  >4.993V</td><td  >3.315V</td><td  >5.084V</td><td  >335.249</td><td  >47.87°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>7</strong></th><td  ><strong>23.441A</strong></td><td  ><strong>7.010A</strong></td><td  ><strong>6.969A</strong></td><td  ><strong>2.168A</strong></td><td  >349.889</td><td  rowspan="2">88.914%</td><td  rowspan="2">1489</td><td  rowspan="2">36.7</td><td  >42.31°C</td><td  >0.988</td></tr><tr><td  >11.979V</td><td  >4.992V</td><td  >3.314V</td><td  >5.074V</td><td  >393.514</td><td  >48.36°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>8</strong></th><td  ><strong>26.851A</strong></td><td  ><strong>8.016A</strong></td><td  ><strong>7.966A</strong></td><td  ><strong>2.370A</strong></td><td  >400.017</td><td  rowspan="2">88.317%</td><td  rowspan="2">1797</td><td  rowspan="2">41.5</td><td  >42.71°C</td><td  >0.989</td></tr><tr><td  >11.978V</td><td  >4.990V</td><td  >3.313V</td><td  >5.065V</td><td  >452.931</td><td  >48.86°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>9</strong></th><td  ><strong>30.657A</strong></td><td  ><strong>8.523A</strong></td><td  ><strong>8.452A</strong></td><td  ><strong>2.373A</strong></td><td  >449.759</td><td  rowspan="2">87.826%</td><td  rowspan="2">2028</td><td  rowspan="2">44.1</td><td  >43.11°C</td><td  >0.990</td></tr><tr><td  >11.979V</td><td  >4.989V</td><td  >3.312V</td><td  >5.059V</td><td  >512.105</td><td  >49.77°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>10</strong></th><td  ><strong>34.231A</strong></td><td  ><strong>9.024A</strong></td><td  ><strong>8.971A</strong></td><td  ><strong>2.975A</strong></td><td  >499.788</td><td  rowspan="2">87.232%</td><td  rowspan="2">2082</td><td  rowspan="2">44.1</td><td  >44.26°C</td><td  >0.991</td></tr><tr><td  >11.980V</td><td  >4.987V</td><td  >3.310V</td><td  >5.043V</td><td  >572.942</td><td  >51.03°C</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>11</strong></th><td  ><strong>38.404A</strong></td><td  ><strong>9.027A</strong></td><td  ><strong>8.971A</strong></td><td  ><strong>2.978A</strong></td><td  >549.815</td><td  rowspan="2">86.720%</td><td  rowspan="2">2084</td><td  rowspan="2">44.1</td><td  >46.09°C</td><td  >0.992</td></tr><tr><td  >11.981V</td><td  >4.986V</td><td  >3.309V</td><td  >5.038V</td><td  >634.013</td><td  >53.27°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>CL1</strong></th><td  ><strong>0.140A</strong></td><td  ><strong>12.000A</strong></td><td  ><strong>11.998A</strong></td><td  ><strong>0.000A</strong></td><td  >101.367</td><td  rowspan="2">83.622%</td><td  rowspan="2">1245</td><td  rowspan="2">31.4</td><td  >41.74°C</td><td  >0.973</td></tr><tr><td  >11.977V</td><td  >4.995V</td><td  >3.313V</td><td  >5.124V</td><td  >121.220</td><td  >46.13°C</td><td  >115.18V</td></tr><tr><th  rowspan="2"><strong>CL2</strong></th><td  ><strong>41.008A</strong></td><td  ><strong>1.004A</strong></td><td  ><strong>0.997A</strong></td><td  ><strong>1.000A</strong></td><td  >504.765</td><td  rowspan="2">88.169%</td><td  rowspan="2">2089</td><td  rowspan="2">44.1</td><td  >44.76°C</td><td  >0.991</td></tr><tr><td  >11.982V</td><td  >4.992V</td><td  >3.317V</td><td  >5.088V</td><td  >572.496</td><td  >51.15°C</td><td  >115.10V</td></tr></tbody></table></div><p>The unit meets the 80 PLUS Gold requirements with 20% and 100% of the max-rated load, while it is a little lower than the required 90% at full load. Nonetheless, we conduct our tests at much higher ambient temperatures than the 80 PLUS organization, so it is normal to measure lower efficiency levels.</p><h2 id="20-80w-load-tests-24">20-80W Load Tests</h2><p>In the following tests, we measure the SSR-500SGX's efficiency at loads significantly lower than 10 percent of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle, with power-saving features turned on.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.194A</strong></td><td  ><strong>0.499A</strong></td><td  ><strong>0.477A</strong></td><td  ><strong>0.194A</strong></td><td  >19.373</td><td  rowspan="2">73.341%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.816</td></tr><tr><td  >11.967V</td><td  >5.008V</td><td  >3.326V</td><td  >5.146V</td><td  >26.415</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>2.466A</strong></td><td  ><strong>0.997A</strong></td><td  ><strong>0.989A</strong></td><td  ><strong>0.389A</strong></td><td  >39.796</td><td  rowspan="2">82.532%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.919</td></tr><tr><td  >11.971V</td><td  >5.004V</td><td  >3.324V</td><td  >5.140V</td><td  >48.219</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>3.668A</strong></td><td  ><strong>1.499A</strong></td><td  ><strong>1.471A</strong></td><td  ><strong>0.584A</strong></td><td  >59.298</td><td  rowspan="2">86.131%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.949</td></tr><tr><td  >11.973V</td><td  >5.001V</td><td  >3.321V</td><td  >5.135V</td><td  >68.846</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>4.936A</strong></td><td  ><strong>2.000A</strong></td><td  ><strong>1.987A</strong></td><td  ><strong>0.780A</strong></td><td  >79.698</td><td  rowspan="2">87.354%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.962</td></tr><tr><td  >11.974V</td><td  >4.999V</td><td  >3.320V</td><td  >5.129V</td><td  >91.236</td><td  >115.08V</td></tr></tbody></table></div><p>In all four light-load tests, the cooling fan is not engaged, so the PSU's operation is inaudible.</p><h2 id="efficiency-17">Efficiency</h2><p>Next, we plotted a chart showing the SSR-500SGX’s efficiency at low loads, and loads from 10 to 110 percent of its maximum-rated capacity. The higher a PSU’s efficiency the less energy goes wasted leading to a reduced carbon footprint, besides lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LFHTebhdWCb6KXr6nXuZyL.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/a8pommuJVShTdnr33KJHhX.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ii7PDm4S2ZFyFcCqRPtmQB.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j4CWhzvDC3pAwb7KvJDJmQ.png" alt="" /></figure></figure><p>The SSR-500SGX achieves satisfactory efficiency levels under both normal and light loads.</p><h2 id="5vsb-efficiency-24">5VSB Efficiency</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.515</td><td  rowspan="2">73.994%</td><td  >0.109</td></tr><tr><td  >5.151V</td><td  >0.696</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.287</td><td  rowspan="2">76.380%</td><td  >0.222</td></tr><tr><td  >5.148V</td><td  >1.685</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.829</td><td  rowspan="2">77.528%</td><td  >0.335</td></tr><tr><td  >5.143V</td><td  >3.649</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >5.136</td><td  rowspan="2">77.560%</td><td  >0.403</td></tr><tr><td  >5.136V</td><td  >6.622</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.692</td><td  rowspan="2">77.799%</td><td  >0.437</td></tr><tr><td  >5.127V</td><td  >9.887</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >15.290</td><td  rowspan="2">76.032%</td><td  >0.481</td></tr><tr><td  >5.096V</td><td  >20.110</td><td  >115.08V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/78qcHrFCN2RwSFZFbDYYXJ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jbf6NecEDZ3YcjyvbX2Xj3.png" alt="" /></figure></figure><p>The 5VSB rail should be more efficient.</p><h2 id="power-consumption-in-idle-and-standby-24">Power Consumption In Idle and Standby</h2><div ><table><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">11.967V</td><td  rowspan="2">5.009V</td><td  rowspan="2">3.326V</td><td  rowspan="2">5.152V</td><td  rowspan="2">5.097</td><td  >0.459</td></tr><tr><td  >115.1V</td></tr><tr><th  colspan="5" rowspan="2"><strong>Standby</strong></th><td  rowspan="2">0.045</td><td  >0.008</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Vyfs8KC7cLyextuUUGSEwR.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/d4qTJWVSPuqq5QyMeSCeVL.png" alt="" /></figure></figure><h2 id="fan-rpm-delta-temperature-and-output-noise-24">Fan RPM, Delta Temperature, and Output Noise</h2><p>All results are obtained between an ambient temperature of 36 degrees Celsius (96.8 degrees Fahrenheit) to 46 degrees Celsius (114.8 degrees Fahrenheit).   </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/zqPC3z3AQHjbUBL5fbfEEF.png" mos="https://cdn.mos.cms.futurecdn.net/zqPC3z3AQHjbUBL5fbfEEF.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/zqPC3z3AQHjbUBL5fbfEEF.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p><br/></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/JfE6vTuw3eiFgSB3akxvUo.png" mos="https://cdn.mos.cms.futurecdn.net/JfE6vTuw3eiFgSB3akxvUo.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/JfE6vTuw3eiFgSB3akxvUo.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The fan profile could be less aggressive under high operating temperatures. In our tests, the PSU's fan spins at higher than 2000 RPM, with more than 450W load at at >43°C temperatures.</p><p>The following results were obtained at 30 degrees Celsius (86 degrees Fahrenheit) to 32 degrees Celsius (89.6 degrees Fahrenheit) ambient temperature.   </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:924px;"><p class="vanilla-image-block" style="padding-top:69.16%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/aFN5SqrBVkr7rtfWpxjGn3.jpg" mos="https://cdn.mos.cms.futurecdn.net/aFN5SqrBVkr7rtfWpxjGn3.jpg" align="" fullscreen="1" width="924" height="639" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/aFN5SqrBVkr7rtfWpxjGn3.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:924px;"><p class="vanilla-image-block" style="padding-top:69.16%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/E8L5YcJCY6SEq8X7DoDUkQ.jpg" mos="https://cdn.mos.cms.futurecdn.net/E8L5YcJCY6SEq8X7DoDUkQ.jpg" align="" fullscreen="1" width="924" height="639" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/E8L5YcJCY6SEq8X7DoDUkQ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The passive operation lasts up to 150W on the +12V rail even with full, combined, load on the minor rails. The unit enters the 40-45 dB(A) range (comparative noise example: library, bird calls) with close to 400W loads. Given the high enough efficiency levels, the fan profile should be more relaxed under high loads.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="protection-features-dc-power-sequencing-cross-load-tests-and-infrared-images-5">Protection Features, DC Power Sequencing, Cross-Load Tests and Infrared Images</h2><h2 id="protection-features-24">Protection Features</h2><p><strong>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</strong></p><div ><table><tbody><tr><td  colspan="2"><strong>Protection Features</strong></td></tr><tr><td  ><strong>OCP</strong></td><td  >12V: 50.8A (123.9%), 11.976V 5V: 27.9A (139.5%), 4.988V 3.3V: 25.6A (128%), 3.311V 5VSB: 6.2A (206.67%), 5.037V</td></tr><tr><td  ><strong>OPP</strong></td><td  >620.3W (124.06%)</td></tr><tr><td  ><strong>OTP</strong></td><td  >✓ (168°C @ 12V Heat Sink)</td></tr><tr><td  ><strong>SCP</strong></td><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><td  ><strong>PWR_OK</strong></td><td  >Proper Operation</td></tr><tr><td  ><strong>NLO</strong></td><td  >✓</td></tr><tr><td  ><strong>SIP</strong></td><td  >Surge: MOV Inrush: NTC Thermistor & Bypass Relay</td></tr></tbody></table></div><p>The <a href="https://www.tomshardware.com/reviews/ocp-overcurrent-protection-power-supply-definition-psu,6241.html">over current protection (OCP)</a> at +12V and 3.3V is properly set, but it is a little higher than the optimal (130%) at 5V. The 5VSB's triggering point is too high, but this doesn't create any load regulation problems. Finally, the <a href="https://www.tomshardware.com/reviews/ocp-overcurrent-protection-power-supply-definition-psu,6242.html">over power protection (OPP)</a> triggers at 620.3W, effectively protecting the PSU under all operating conditions.</p><p>There is over temperature protection which is set at a high level in order to avoid any problems with the semi-passive operation.</p><p><strong>DC Power Sequencing</strong></p><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/iDe3kTZYzFVUCbRtNQtiv7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oGGFWwVHEjzrESH6Gc9ZFP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/si95T7Xofr3BQyC6nPUGu3.jpg" alt="" /></figure></figure><p>The 3.3V rail is always lower than the other two rails, so no problems here.</p><p><strong>Cross Load Tests</strong></p><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30 degrees Celsius (86 degrees Fahrenheit) and 32 degrees Celsius (89.6 degrees Fahrenheit).</p><h2 id="load-regulation-charts-24">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/8h9AxD6wMNZq2vjeSYeaV8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/t6azjSm7pVqyBDuk56KkpB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9KsaTcSck6NPLMsW2tAD7f.jpg" alt="" /></figure></figure><h2 id="efficiency-chart-19">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:924px;"><p class="vanilla-image-block" style="padding-top:69.16%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/zTzHbkETV7H455efPE3DSS.jpg" mos="https://cdn.mos.cms.futurecdn.net/zTzHbkETV7H455efPE3DSS.jpg" align="" fullscreen="1" width="924" height="639" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/zTzHbkETV7H455efPE3DSS.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>We would like to see a region, even a small one, with higher than 92% efficiency.</p><h2 id="ripple-charts-19">Ripple Charts</h2><p>The lower the power supply's ripple the more stable the system will be and less stress will be also applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Ek9ab3r4tHmMPHSqvtXveC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nRzMGQDdiHCRMzKtnUNme9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GPZiY4Pt8ZLw4WCj92uqKA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H9hBzhdC5AjwF8HpK5err5.jpg" alt="" /></figure></figure><h2 id="infrared-images-24">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zWZF8SXFpMj6AQfJPDUNGY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gVBxhK8DUHJUMNLAMxzdPB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QomKHpaUcygvvxNZpKEfP6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2NrnWsXhvsfpUw7wbjtBej.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pEEmf2nDJ7J4dxJ8HoPPTn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cH8nxFctSpuKb9CddUMSrK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zc3G9iEF9YGNB3GuQeDxVC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mT5FN6xGTuLgKSYwqRsN8G.jpg" alt="" /></figure></figure><p>The highest temperature that our IR camera recorded is 88.4 degrees Celsius, which is not so low but not very high either. The area right in front of the DC-DC converters, looks to be the hottest one.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="transient-response-tests-ripple-measurements-and-emc-pre-compliance-testing-5">Transient Response Tests, Ripple Measurements and EMC Pre-Compliance Testing</h2><h2 id="advanced-transient-response-tests-24">Advanced Transient Response Tests</h2><p><strong>For details about our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong><em>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology we also choose to apply a worst case scenario with no extra capacitance on the rails. </em></strong></p><h2 id="advanced-transient-response-at-20-200ms-11">Advanced Transient Response at 20% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.972V</td><td  >11.802V</td><td  >1.42%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.996V</td><td  >4.914V</td><td  >1.64%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.317V</td><td  >3.174V</td><td  >4.31%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.118V</td><td  >5.072V</td><td  >0.90%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-20ms-11">Advanced Transient Response at 20% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.973V</td><td  >11.777V</td><td  >1.64%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.996V</td><td  >4.897V</td><td  >1.98%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.318V</td><td  >3.145V</td><td  >5.21%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.118V</td><td  >5.071V</td><td  >0.92%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-1ms-24">Advanced Transient Response at 20% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.972V</td><td  >11.798V</td><td  >1.45%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.996V</td><td  >4.893V</td><td  >2.06%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.318V</td><td  >3.150V</td><td  >5.06%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.118V</td><td  >5.075V</td><td  >0.84%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-200ms-11">Advanced Transient Response at 50% – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.971V</td><td  >11.856V</td><td  >0.96%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.992V</td><td  >4.907V</td><td  >1.70%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.315V</td><td  >3.165V</td><td  >4.52%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.092V</td><td  >5.042V</td><td  >0.98%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-20ms-11">Advanced Transient Response at 50% – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.972V</td><td  >11.800V</td><td  >1.44%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.992V</td><td  >4.889V</td><td  >2.06%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.315V</td><td  ><strong>3.135V</strong></td><td  >5.43%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.092V</td><td  >5.044V</td><td  >0.94%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-1ms-24">Advanced Transient Response at 50% – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.972V</td><td  >11.802V</td><td  >1.42%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.992V</td><td  >4.886V</td><td  >2.12%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.315V</td><td  >3.140V</td><td  >5.28%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.092V</td><td  >5.044V</td><td  >0.94%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Kn9RYmjiV6jtLhh4cpwgBh.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BnwZjxjTZdtCjnWBuwFRiP.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FZfioMv5V865fYE8VDDrEi.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vgZZ4fWAF7DDUr3gxDjjBc.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TYyhEZ8ovz5NHrsJxXECvL.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FxrU2x9hivFS9En9pPRBcA.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yQH22bkyUiq6KDL9N36qsW.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xBRD64zqaQPdHLLzmvRGNT.png" alt="" /></figure></figure><p>The performance of all rails but the 3.3V one is good. We would like to see lower deviations at 3.3V, ideally lower than 3%, without the caps that the ATX spec requires.</p><h2 id="turn-on-transient-tests-24">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ambniiWAmHmMwu9D6gEiM7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RuVVgnESK6JnPycppnUEgP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/nBY6fofKosQ5KvuhPw8tDg.jpg" alt="" /></figure></figure><p>The 5VSB rail has a smooth slope, while the +12V rail features a small wave, which is nothing to worry about though.</p><h2 id="ripple-measurements-24">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10 degrees Celsius increase can cut into a cap's useful life by 50 percent. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><thead><tr><th  ><strong>Test</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>10% Load</strong></th><td  >11.8 mV</td><td  >9.2 mV</td><td  >14.2 mV</td><td  >9.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>20% Load</strong></th><td  >13.5 mV</td><td  >10.8 mV</td><td  >15.1 mV</td><td  >10.1 mV</td><td  >Pass</td></tr><tr><th  ><strong>30% Load</strong></th><td  >12.5 mV</td><td  >11.9 mV</td><td  >15.7 mV</td><td  >10.4 mV</td><td  >Pass</td></tr><tr><th  ><strong>40% Load</strong></th><td  >12.6 mV</td><td  >12.8 mV</td><td  >16.0 mV</td><td  >10.4 mV</td><td  >Pass</td></tr><tr><th  ><strong>50% Load</strong></th><td  >13.4 mV</td><td  >14.7 mV</td><td  >16.8 mV</td><td  >10.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>60% Load</strong></th><td  >14.8 mV</td><td  >16.5 mV</td><td  >17.8 mV</td><td  >11.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>70% Load</strong></th><td  >15.7 mV</td><td  >17.7 mV</td><td  >19.1 mV</td><td  >11.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>80% Load</strong></th><td  >17.1 mV</td><td  >20.8 mV</td><td  >21.6 mV</td><td  >12.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>90% Load</strong></th><td  >17.8 mV</td><td  >22.7 mV</td><td  >23.4 mV</td><td  >12.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>100% Load</strong></th><td  >26.3 mV</td><td  >23.7 mV</td><td  >23.9 mV</td><td  >14.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>110% Load</strong></th><td  >27.4 mV</td><td  >24.7 mV</td><td  >24.8 mV</td><td  >15.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 1</strong></th><td  >22.0 mV</td><td  >21.9 mV</td><td  >23.2 mV</td><td  >10.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 2</strong></th><td  >24.8 mV</td><td  >14.5 mV</td><td  >17.7 mV</td><td  >13.4 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/zsVGasjAqMekqfQmoesGya.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VGVT3Y3S7kaQ9ue6r9uEYG.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YsfXM44qfJwSndpDaziLC6.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MXP8HK4vCefEZGgJ6GzjNX.png" alt="" /></figure></figure><p>The ripple suppression is very good on all rails, despite the lack of in-line caps in the unit's modular cables.</p><h2 id="ripple-at-full-load-24">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/hAbWhpGFSRk7JwR4FLVhFS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TTYRgNWFQWzXrxJxYbqEk5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m6Mfffo982chpg5YjYoxHi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/38bt6fvm2sTd7qsitaxDC7.jpg" alt="" /></figure></figure><h2 id="ripple-at-110-load-23">Ripple At 110% Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/CRNnuRx8HGKUh7FLpxd4oe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NbDKSEryJTg5ybFgnJoskf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cU8WwztBEmMN7wWSxsmb4P.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2DdgTrc4iS8VbdP9AuisbR.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-1-24">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/VXSYMvfYfQ7neXboU9MHqJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/322aefhwqCrGebtAkeEspR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3E4djoQ68DR7j5jaLc7RBd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cgioBgmY8BStXdLubWwZGW.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-2-19">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/a53fhYSMNW8MKTHTfPMRqQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fso2g2VDKjW87N2WDjFiHN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sVN4iVTY6fLZEjDbeC8U2K.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jRzB4vPUoy7cjicwJrQN2k.jpg" alt="" /></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results-8">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1510px;"><p class="vanilla-image-block" style="padding-top:34.57%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/RNTfhCP8ouc5Ai3h3w6T2Y.png" mos="https://cdn.mos.cms.futurecdn.net/RNTfhCP8ouc5Ai3h3w6T2Y.png" align="" fullscreen="1" width="1510" height="522" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/RNTfhCP8ouc5Ai3h3w6T2Y.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>There is a high spur at close to 150KHz, which goes above the corresponding limit with the average EMI detector. In the rest frequency range, the conducted EMI emissions stay low.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="performance-noise-and-efficiency-5">Performance, Noise and Efficiency</h2><h2 id="performance-rating-24">Performance Rating</h2><p><a href="http://media.bestofmicro.com/S/X/834369/gallery/Result-34-34_Relative_Performance_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:718px;"><p class="vanilla-image-block" style="padding-top:71.03%;"><img id="" name="" alt="Click For More Results" src="https://cdn.mos.cms.futurecdn.net/S9Pu6AfHQYc7R5Qxzn5qVQ.png" mos="https://cdn.mos.cms.futurecdn.net/S9Pu6AfHQYc7R5Qxzn5qVQ.png" align="" fullscreen="1" width="718" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/S9Pu6AfHQYc7R5Qxzn5qVQ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click For More Results </span></figcaption></figure><p>The overall performance is high, taking the lead from the SSR-650SGX.</p><h2 id="noise-rating-24">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30 degrees Celsius and 32 degrees Celsius (86 to 89.6 degrees Fahrenheit).</p><p><a href="http://media.bestofmicro.com/T/0/834372/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:628px;"><p class="vanilla-image-block" style="padding-top:81.37%;"><img id="" name="" alt="Click For More Results" src="https://cdn.mos.cms.futurecdn.net/3dDT2aVSXW6DxqujUETdBT.png" mos="https://cdn.mos.cms.futurecdn.net/3dDT2aVSXW6DxqujUETdBT.png" align="" fullscreen="1" width="628" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/3dDT2aVSXW6DxqujUETdBT.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click For More Results </span></figcaption></figure><p>It would be ideal if the overall noise output remained below 30 dB(A).</p><h2 id="efficiency-rating-24">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees Celsius.</p><p><a href="http://media.bestofmicro.com/T/1/834373/gallery/Result-36-36_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:706px;"><p class="vanilla-image-block" style="padding-top:72.38%;"><img id="" name="" alt="Click For More Results" src="https://cdn.mos.cms.futurecdn.net/F2NAjiYttqKhYUQavvrJaF.png" mos="https://cdn.mos.cms.futurecdn.net/F2NAjiYttqKhYUQavvrJaF.png" align="" fullscreen="1" width="706" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/F2NAjiYttqKhYUQavvrJaF.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click For More Results </span></figcaption></figure><p>This is an efficient platform but the smaller, in both dimensions and capacity, Corsair SF450 achieves better performance here.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="bottom-line-8">Bottom Line</h2><p>Seasonic's new small form factor units manage to offer good performance without breaking the bank. This is what the majority of users want, a balance between performance and cost, since only a small portion of them is willing to pay a large amount for getting the highest possible performance. Seasonic could easily do 80 PLUS Titanium or Cybenetics ETA-A+, but it chose to use a less exotic design in order to keep the production cost under control, and achieve low price tags, making those products highly appealing to more people. It would be nice though, if the company made a Prime small form factor power supply, which could go head to head with the Corsair <a href="https://www.tomshardware.com/reviews/corsair-sf750-psu,5979.html">SF750</a>.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1510px;"><p class="vanilla-image-block" style="padding-top:56.23%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/dW4AWsysD9oazsz2wujaWf.jpg" mos="https://cdn.mos.cms.futurecdn.net/dW4AWsysD9oazsz2wujaWf.jpg" align="" fullscreen="1" width="1510" height="849" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/dW4AWsysD9oazsz2wujaWf.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The Seasonic SSR-500SGX achieves high overall performance, thanks to its super-tight load regulation and the good ripple suppression. The transient response is also quite good at +12V, 5V and 5VSB, while there is room for improvement at 3.3V. In addition, the hold-up time is very long at 23.5ms and the power ok signal is accurate. </p><p>Under normal operating temperatures (28-32 degrees Celsius), the passive operation lasts up to 150-200W loads and it takes more than 390W of load, to enter the noisy 40-45 dB(A) region. The fan speed profile could be much more relaxed, but Seasonic's engineers wanted to remain on the safe side given that this product is covered by a hefty ten-year warranty. I would prefer a shorter warranty (e.g. five years) and quieter operation, though.</p><p>The 500W Seasonic SFX-L offering has many good points but not everything about it is perfect. I would like to see more SATA connectors since three are way too few, even for a small form factor unit. Since there are modular sockets available, Seasonic should include an additional SATA cable in the box, as it does with the SSR-650SGX. Another thing that I noticed is the not-so-efficient 5VSB rail. Obviously a previous generation 5VSB circuit was used in this fresh platform, to keep the price tag as low as possible, but I wouldn't mind spending a few bucks (or pounds) more to get higher efficiency.</p><p><em>Image Credits: Tom's Hardware</em></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><p><strong><em>Disclaimer:</em></strong><em> Aris Mpitziopoulos is Tom's Hardware's power supply reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em>, and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom's Hardware. Neither Tom's Hardware nor its parent company, Future</em><span class="st"> PLC</span><em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Seasonic Reveals a 1600W Power Supply ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/news/seasonic-prime-1600w-computex-2019,39536.html</link>
                                                                            <description>
                            <![CDATA[ Seasonic entered the high-wattage club at Computex 2019 with a fully-modular 1600W unit with 80 PLUS Titanium and Cybenetics ETA-A+ efficiency certifications. ]]>
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                                                                        <pubDate>Thu, 30 May 2019 17:25:00 +0000</pubDate>                                                                                                                                <updated>Wed, 05 Feb 2025 14:56:43 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1510px;"><p class="vanilla-image-block" style="padding-top:66.62%;"><img id="" name="" alt="Photo Source: Tom's Hardware" src="https://cdn.mos.cms.futurecdn.net/B3qc4ENPXY82u3W9vd45Za.jpg" mos="https://cdn.mos.cms.futurecdn.net/B3qc4ENPXY82u3W9vd45Za.jpg" align="" fullscreen="1" width="1510" height="1006" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/B3qc4ENPXY82u3W9vd45Za.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Photo Source: Tom's Hardware </span></figcaption></figure><p>Seasonic entered the high-wattage club at Computex 2019 with a fully-modular 1600W unit with 80 PLUS Titanium and Cybenetics ETA-A+ efficiency certifications. The company brought several other power supplies to the show, too, as well as a case guaranteed to appeal to "Star Wars" fans.</p><p>Seasonic didn't have a power supply offering with more than 1300W capacity before now. That will change once the TX-1600 hits the market. According to Seasonic, the unit's performance levels will be extra high and the reliability will be also increased, thanks to the quality components which include a 135mm FDB fan and a mix of electrolytic and polymer Japanese caps. The TX-1600 will also be backed by a 12-year warranty. We're anxiously waiting to have it on our test bench.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1510px;"><p class="vanilla-image-block" style="padding-top:66.62%;"><img id="" name="" alt="Photo Source: Tom's Hardware" src="https://cdn.mos.cms.futurecdn.net/eD6CgVU4hbTtnrmo65brRN.jpg" mos="https://cdn.mos.cms.futurecdn.net/eD6CgVU4hbTtnrmo65brRN.jpg" align="" fullscreen="1" width="1510" height="1006" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/eD6CgVU4hbTtnrmo65brRN.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Photo Source: Tom's Hardware </span></figcaption></figure><p>Besides the 1600W beast, Seasonic also revealed the strongest up-to-date fully-passive power supply, the TX-700 with 700W max power.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1510px;"><p class="vanilla-image-block" style="padding-top:66.62%;"><img id="" name="" alt="Photo Source: Tom's Hardware" src="https://cdn.mos.cms.futurecdn.net/kRGDWSfPPgybH8Be3GsoGN.jpg" mos="https://cdn.mos.cms.futurecdn.net/kRGDWSfPPgybH8Be3GsoGN.jpg" align="" fullscreen="1" width="1510" height="1006" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/kRGDWSfPPgybH8Be3GsoGN.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Photo Source: Tom's Hardware </span></figcaption></figure><p>We also noticed a new SFX-L unit with 800W max power. If we hadn't seen the <a href="https://www.tomshardware.com/news/silverstone-powerfull-psus-computex19,39502.html">SilverStone</a> SFX-L unit with 1000W capacity, we would be impressed. Still, we won't be able to reach any conclusions until we check the performance of both units for ourselves.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1510px;"><p class="vanilla-image-block" style="padding-top:66.62%;"><img id="" name="" alt="Photo Source: Tom's Hardware" src="https://cdn.mos.cms.futurecdn.net/JyCuwc4rSt25T7LkPhGEwm.jpg" mos="https://cdn.mos.cms.futurecdn.net/JyCuwc4rSt25T7LkPhGEwm.jpg" align="" fullscreen="1" width="1510" height="1006" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/JyCuwc4rSt25T7LkPhGEwm.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Photo Source: Tom's Hardware </span></figcaption></figure><p>And here's the modded case, dubbed Quasar, that Seasonic had in its booth to appeal for "Star Wars" fans.</p>
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                                                            <title><![CDATA[ Seasonic Focus SGX 650W SFX-L PSU Review: Reliable Power, Tiny Form Factor ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/seasonic-focus-sgx-650w-sfx-l-psu,6045.html</link>
                                                                            <description>
                            <![CDATA[ Small and powerful, the Seasonic SSR-650SGX achieves good performance and backs it up with a long warranty and plenty of features. ]]>
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                                                                        <pubDate>Sat, 13 Apr 2019 13:00:00 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:27:33 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <h2 id="specifications-and-part-analysis-7">Specifications and Part Analysis</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1280px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/NH7rJ696HR5TwxgjVdcM7a.jpg" mos="https://cdn.mos.cms.futurecdn.net/NH7rJ696HR5TwxgjVdcM7a.jpg" align="" fullscreen="1" width="1280" height="720" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/NH7rJ696HR5TwxgjVdcM7a.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The Seasonic Focus SGX 650W offers high overall performance and quiet operation at light and medium loads, of up to 340W. The competition in the small form factor SFX-L category hasn't been heated up yet and we are still waiting for Super Flower to release its highly anticipating small factor platform. Nevertheless, there are still some worthy opponents which belong to the smaller, in dimensions, SFX category with the Corsair <a href="https://www.tomshardware.com/reviews/corsair-sf600-power-supply,4537.html">SF600</a> having identical performance with the SSR-650SGX but plenty of noise output with high loads on the minor rails. If you are out for an SFX-L unit with 650W capacity and a fair price <strong><span>($122 / £139)</span></strong>, the SSR-650SGX should be among the top places in your list. Another strong advantage of this product is the ten-year warranty, which is the longest in this category.</p><p>Seasonic has finally entered the small form factor PSU market with its new SGX line, which currently consists of two models with 500W and 650W capacities. Both of them follow the SFX-L form factor and target users that need a good power supply but don't want to spend a fortune to get it. Usually the smaller a PSU the higher its price, so to be more competitive, Seasonic didn't equip the SGX with exotic features, like ETA-A+ or 80 PLUS Titanium/Platinum efficiency, which would significantly affect the production cost.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5rshkJrGfJBtNd5NGnPETF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aGGY8PSYq68avUDpNbB3mA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ax74JZpq6sVzposNDFBcXA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/e6aYg9VvyCJP7XyWTBVxbG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KaHvTzYzyd27FPQzyRjWmC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jx3a9ReAWgcxvqG2LiMmDP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qRW4VvAVHMrSqoe8fSFf4K.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3hLE8roRnzPPYjB9csCQfh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Zxvy5XBEh4BvYLLyStRzSH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KjAuzWZp7WF3CYSN4NwreG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Fyn9hLn2S5xFW2AioZp77f.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hMJZ7SmACvcbnZujC9QfBW.jpg" alt="" /></figure></figure><p>In this review we will take a look at the SSR-650SGX which is the strongest of the line with 650W max power, as its model number implies. This is a fully modular unit with a single +12V rail and a 120mm Fluid Dynamic Bearing fan. The impressive fact in this product is the ten-year warranty. Currently no other SFX-L or SFX unit is covered by such a long warranty, with Corsair's and EVGA's high-end SFX offerings being at seven-years. Personally I am not a fan of huge warranty periods since on the long run they can create problems not only to the brands that offer them but to the consumers as well, in case the RMA cost gets increased (hence this cost will have to be moved to the consumers somehow). Nonetheless, known brands like Seasonic, Corsair and EVGA wouldn't offer such long warranties, if they weren't extra sure that their products can outlive them.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/EfTRRM5Xqdm2P5ayuamNSE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hLS9hpg2EoVCgopGWB5M6D.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TsxYFVZMjFWodHLZ3VqbHG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7SgAN6tsebzkxstC2CVPdW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/smBUuuTTaADtfAgb4QY6BZ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ydRuDe7o46HrbBn6jjKzNS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DQLcGZkCzoHSEnoJ4XYVe7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pNvt78nimPxAijR2dBAwj7.jpg" alt="" /></figure></figure><h2 id="specifications-25">Specifications</h2><div ><table><tbody><tr><th  >Manufacturer (OEM)</th><td  ><span class="spelle">Seasonic</span></td></tr><tr><th  >Max. DC Output</th><td  ><span class="spelle">650W</span></td></tr><tr><th  >Efficiency</th><td  >80 PLUS Gold, ETA-A (88-91%)</td></tr><tr><th  >Noise</th><td  >LAMBDA-S+ (35-40 dB[A])</td></tr><tr><th  >Modular</th><td  >✓ (Fully)</td></tr><tr><th  >Intel C6/C7 Power State Support</th><td  >✓</td></tr><tr><th  >Operating Temperature (Continuous Full Load)</th><td  >0 - 50°C</td></tr><tr><th  >Over Voltage Protection</th><td  >✓</td></tr><tr><th  >Under Voltage Protection</th><td  >✓</td></tr><tr><th  >Over Power Protection</th><td  >✓</td></tr><tr><th  >Over Current (+12V) Protection</th><td  >✓</td></tr><tr><th  >Over Temperature Protection</th><td  >✓</td></tr><tr><th  >Short Circuit Protection</th><td  >✓</td></tr><tr><th  >Surge Protection</th><td  >✓</td></tr><tr><th  >Inrush Current Protection</th><td  >✓</td></tr><tr><th  >Fan Failure Protection</th><td  >✗</td></tr><tr><th  >No Load Operation</th><td  >✓</td></tr><tr><th  >Cooling</th><td  >120mm Fluid Dynamic Bearing Fan (S1201512HB)</td></tr><tr><th  >Semi-Passive Operation</th><td  >✓</td></tr><tr><th  >Dimensions (<span class="spelle">W x H x D</span>)</th><td  >128 x 66 x 128mm</td></tr><tr><th  >Weight</th><td  >1.15 kg (2.54 <span class="spelle">lb</span>)</td></tr><tr><th  >Form Factor</th><td  >SFX-L, EPS 2.92</td></tr><tr><th  >Warranty</th><td  >10 Years</td></tr></tbody></table></div><h2 id="power-specifications-25">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >20</td><td  >20</td><td  >54</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">100</td><td  >648</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">650</td></tr></tbody></table></div><h2 id="cables-amp-connectors-17">Cables & Connectors</h2><div ><table><thead><tr><th  colspan="5"><strong>Modular Cables</strong></th></tr></thead><tbody><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><th  ><strong>ATX connector 20+4 pin (360mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4+4 pin EPS12V (400mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (400mm+100mm) </strong></th><td  >2</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (300mm+200mm+100mm)</strong></th><td  >2</td><td  >6</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4 pin Molex (300mm+200mm+200mm)</strong></th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>AC Power Cord (1370mm) - C13 coupler</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>This is a fully modular power supply. The number of PCIe connectors is adequate, given the 650W capacity, but the single EPS can create compatibility problems with some high-end mainboards. Ideally there should be two EPS connectors.</p><p>All cables are short since this unit is destined for a small chassis, but the distance between the peripheral connectors is large enough to cover all usage scenarios. Finally, it is nice to see clean, from in-line caps, cables since those caps make them bulky, hence cable rooting/management tasks become harder.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DL8m79AcN4uZtFRPMHpVxX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B22j5uJcv3ofRhwSG3zWxV.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AnvpZeYAgsc2BLtMAc2sYY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/saQK8rhA4QiDPWSN8oxqT7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SNqmUyM8XDB7cFCiCZV5bS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NcdMB9GRmt7ShYVrkBCADK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/utpGcvxNHYCgFZVRRhvrdL.jpg" alt="" /></figure></figure><h2 id="component-analysis-25">Component Analysis </h2><p>We strongly encourage you to a look at our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193.html">PSUs 101 article</a>, which provides valuable information about PSUs and their operation, allowing you to better understand the components we're about to discuss.</p><div ><table><thead><tr><th  colspan="2"><strong>General Data</strong></th></tr></thead><tbody><tr><th  >Manufacturer (OEM)</th><td  >Seasonic</td></tr><tr><th  >PCB Type</th><td  >Double Sided</td></tr><thead><tr><th  colspan="2"><strong>Primary Side</strong></th></tr></thead><tr><th  >Transient Filter</th><td  >4x Y caps, 2x X caps, 2x CM chokes, 1x MOV</td></tr><tr><th  >Inrush Protection</th><td  >NTC Thermistor & Relay</td></tr><tr><th  >Bridge Rectifier(s)</th><td  >1x</td></tr><tr><th  >APFC MOSFETS</th><td  >2x Champion <a href="https://datasheet4u.com/datasheet-pdf-file/1178985/Greatpower/GPT18N50D/1">GPT18N50D</a> (500V, 18A @ 150°C, 0.27Ohm)</td></tr><tr><th  >APFC Boost Diode</th><td  >1x STMicroelectronics <a href="https://gr.mouser.com/datasheet/2/389/stth8s06-956936.pdf">STTH8S06D</a> (600V, 8A @ 150°C)</td></tr><tr><th  >Hold-up Cap(s)</th><td  >1x Nichicon (400V, 470uF, 2000h @ 105°C, CE, <a href="http://www.nichicon.co.jp/english/products/pdfs/e-gg.pdf">GG</a>)</td></tr><tr><th  >Main Switchers</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP50R190CE-DS-v02_02-EN.pdf?fileId=5546d4624f205c9a014f5fd4fb6b7b68">IPP50R190CE</a> (550V, 15.7A @ 100°C, 0.19Ohm)</td></tr><tr><th  >Combo APFC/PWM Controller</th><td  >Champion <a href="http://www.champion-micro.com/datasheet/PFC%20Design%20Algorithms.pdf">CM6500UN</a></td></tr><tr><th  >Resonant Controllers</th><td  >Champion <a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901.pdf">CM6901T6X</a></td></tr><tr><th  >Topology</th><td  >Primary side: Half-Bridge & LLC converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><thead><tr><th  colspan="2"><strong>Secondary Side</strong></th></tr></thead><tr><th  >+12V MOSFETS</th><td  >4x Nexperia <a href="https://www.nexperia.com/products/mosfets/power-mosfets/PSMN1R8-40YLC.html">PSMN1R8-40YLC</a> (40V, 100A @ 25°C, 1.8mOhm)</td></tr><tr><th  >5V & 3.3V</th><td  >2x DC-DC converters</td></tr><tr><th  >Filtering Capacitors</th><td  >Electrolytics: 1x Rubycon (3000h - 6000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_yxg.pdf">YXG</a>),1x Nichicon (2200uF, 16V @ 105°C), 9x Nippon Chemi-Con (105°C, W) Polymers: 13x FPCAP, 4x Nippon Chemi-Con</td></tr><tr><th  >Supervisor IC</th><td  >Weltrend <a href="http://www.datalinker.com.hk/uploads/spec/WT7527V_T1_datasheet_v1.01.pdf">WT7527V</a> (OVP, UVP, OCP, SCP, PG)</td></tr><tr><th  >Fan Model</th><td  >Globe Fan S1201512HB (120mm, 12V, 0.45A, Fluid Dynamic Bearing Fan)</td></tr><thead><tr><th  colspan="2"><strong>5VSB Circuit</strong></th></tr></thead><tr><th  >Standby PWM Controller</th><td  >Excelliance <a href="https://www.datasheet4u.com/datasheet-pdf/ExcellianceMOS/EM8569/pdf.php?id=1112112">EM8569C</a></td></tr><tr><th  >Rectifier</th><td  >MBR1045ULPS (45V, 10A @ 90°C)</td></tr></tbody></table></div><p>This is a new Seasonic platform featuring a half-bridge topology on the primary side which is enhanced by an LLC resonant converter, for restricted switching losses. On the secondary side, a synchronous rectification scheme is utilized for the +12V rail, while the minor rails are generated by a couple of DC-DC converters. The latter are hosted in the same PCB.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/S5NSpVnd9WAnxZfBGPY5Lm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jd5Xx7YbXNSzrexhyZVJYZ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2q8brRwvkiFppJENJn97b6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SqfWAdJcc2SGQNuCLDJTMg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ANUrDyYNYdoD55iF3WudGR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BBa6PvXGyg5FaATRbkkozJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oL36HEVkSKG8SwDvDtiAM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Qz3aMNttUvz74qkmcgicH7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MAzamnvSfcBsAWfEgiFB7P.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zz7Jvg6ht2uXS2BJFH7rpi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9VJbgnwyWnZhefvEAweEze.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n2vcnuP5sFHjNyUxiUHsie.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GWqF6RVi6mbwsAvATuDPEQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JC3E2HKCRvQkPbx4EWwB6S.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zv7Y8RA6TzCjEHN6AH8jWK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PCnJKi22AeqojzXBeHkiYD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ArMse2HZNtxwjAazKZPo5h.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oZm45FMWM8MTtNNgNrWDSG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Pu5kqgWx8bpChhwGxju7mP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/37UFHyVKf2uynBtQhLqyEL.jpg" alt="" /></figure></figure><p>The quality of the parts that Seasonic uses is top-notch. All filtering caps are provided by Japanese manufacturers (Rubycon, Chemi-Con, Nichicon and FPCAP) and besides electrolytic caps, a large number of polymers is also used. Lastly, the cooling fan measures 120mm; it is provided by Globe fan and uses a fluid dynamic bearing which has a long lifetime.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/y2cZrtepCXSdZqM9soBfYR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dXcxfRxL977wn94ZktTgzJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TuEKE5eV7WZAekGGmoGSDV.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/v6DwBYKjoVhnpLLeuBUUGR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xgc3CgdaXF3Ch9RtwwyoVF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AVX9r5pQEWGwfTqonHcXMQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PieNkp7Yp9ERkJXJKwfwQm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PpP2BCbmtrjftUsjSRxWAg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WDp9jWcMpYqWySmVQe76Lo.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2d2TwMwLZqEegvkAiAm73a.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/obHbE4PnAKuPpHc42nKUyP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oBw7ziRfu9EShNKop2L7Ri.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Feqht2x6uASVNycAQa6WLm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uSExno9q5h4UwSei24RLrk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qEyaWthNTHYNo366W5zv8W.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XhKMZH7JKvSzzuZ6Kn35ai.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CppPM39QnUYKJwF5FLvjcA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/N3a7BKGvhGJy6WzfypUqyi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ADjgwCZtjkRye4bnYSHr5J.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PGVNXwQa8eYvifKzAG7QGQ.jpg" alt="" /></figure></figure><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="load-regulation-hold-up-time-inrush-current-efficiency-and-noise-7">Load Regulation, Hold-Up Time, Inrush Current, Efficiency and Noise</h2><p><strong>To learn more about our PSU tests and methodology, please check out <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="fb71f1b7-355d-459b-8b74-34d74d1739a5">            <a href="http://www.amazon.com/gp/product/B07JVQQK69?tag=hawk-future-20&ascsubtag=tomshardware&ascsubtag=%site%%transactionId%-gclid-%gclid%-Fallback" data-model-name="SGX-650" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:56.25%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/GcSVCzAuUZHdWEosr3TvML.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Seasonic SGX-650</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="8f1ba678-1d24-4c9e-9fbe-ec51ac45444e">            <a href="https://www.amazon.com/CORSAIR-Platinum-Certified-Modular-Supply/dp/B07M63H81H?tag=hawk-future-20&ascsubtag=tomshardware&ascsubtag=%site%%transactionId%-gclid-%gclid%-Fallback" data-model-name="SF750" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/CUwZjvWe89cgKmxqZaihy8.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair SF750</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="dcc94080-6b4a-42fd-8067-829f84939585">            <a href="https://www.amazon.com/Corsair-Platinum-Certified-Modular-Supply/dp/B07F84FJ1G?tag=hawk-future-20&ascsubtag=tomshardware&ascsubtag=%site%%transactionId%-gclid-%gclid%-Fallback" data-model-name="SF600 Platinum" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/MJpMkconZNM4SU89TjnLSd.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair SF600 Platinum</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-25">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads. Tight load regulation, among other factors, improves the system’s stability, especially under overclocked conditions and, at the same time, it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/bGokvQmD692g5EHiwwcWzV.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YMyuCoonq7xWYUKukwKop9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Q78Th88Xfobmyp6Do9D38R.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LLSVtgVHDKPWHBwBjzHdrG.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AW4GtzNLs3c4j2P7tjj9xm.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zjvwSKwbWzEkJCUHJNzKSg.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JZzjKCaVfYqVLD9fgMUh3X.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kvBHGNVixNHceLJfviEpeP.png" alt="" /></figure></figure><p>The load regulation is super tight on all rails, showing this platform's potential.</p><h2 id="hold-up-time-25">Hold-Up Time</h2><p>Put simply, hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/AxBiHBRxoHPUoszfWBziET.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tnUULZNBiE77xVsx8N8osH.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pXT2Bu73fLvx9XuU2yHG2X.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2w2MBDa9vGm2YxVvdUQEib.png" alt="" /></figure></figure><p>It is good to see a longer than 17ms hold-up time in such a small, in dimensions, platform. The cherry on top is the power ok signal, which is accurate.</p><h2 id="inrush-current-25">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/6rCq6rDWhvExkKz4tAHnB9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/a7yoy9vctnfKuQ6biuCmJQ.png" alt="" /></figure></figure><p>The inrush currents are kept low.</p><h2 id="10-110-load-tests-24">10-110% Load Tests</h2><p>These tests reveal the SSR-650SGX’s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>Temps (In/Out)</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>3.619A</strong></td><td  ><strong>2.004A</strong></td><td  ><strong>1.990A</strong></td><td  ><strong>0.978A</strong></td><td  >64.819</td><td  rowspan="2">84.899%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >43.77°C</td><td  >0.960</td></tr><tr><td  >11.944V</td><td  >4.992V</td><td  >3.312V</td><td  >5.112V</td><td  >76.348</td><td  >39.04°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>8.243A</strong></td><td  ><strong>3.007A</strong></td><td  ><strong>2.989A</strong></td><td  ><strong>1.176A</strong></td><td  >129.342</td><td  rowspan="2">88.998%</td><td  rowspan="2">932</td><td  rowspan="2">19.7</td><td  >39.53°C</td><td  >0.978</td></tr><tr><td  >11.943V</td><td  >4.989V</td><td  >3.310V</td><td  >5.103V</td><td  >145.332</td><td  >44.61°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>13.271A</strong></td><td  ><strong>3.510A</strong></td><td  ><strong>3.475A</strong></td><td  ><strong>1.374A</strong></td><td  >194.470</td><td  rowspan="2">89.648%</td><td  rowspan="2">939</td><td  rowspan="2">19.8</td><td  >40.02°C</td><td  >0.984</td></tr><tr><td  >11.941V</td><td  >4.987V</td><td  >3.309V</td><td  >5.094V</td><td  >216.925</td><td  >45.78°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>18.296A</strong></td><td  ><strong>4.012A</strong></td><td  ><strong>3.990A</strong></td><td  ><strong>1.573A</strong></td><td  >259.673</td><td  rowspan="2">89.863%</td><td  rowspan="2">1000</td><td  rowspan="2">23.9</td><td  >40.64°C</td><td  >0.987</td></tr><tr><td  >11.941V</td><td  >4.986V</td><td  >3.308V</td><td  >5.085V</td><td  >288.966</td><td  >47.23°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>22.988A</strong></td><td  ><strong>5.016A</strong></td><td  ><strong>4.986A</strong></td><td  ><strong>1.774A</strong></td><td  >324.974</td><td  rowspan="2">89.544%</td><td  rowspan="2">1337</td><td  rowspan="2">33.2</td><td  >41.35°C</td><td  >0.989</td></tr><tr><td  >11.940V</td><td  >4.985V</td><td  >3.307V</td><td  >5.076V</td><td  >362.923</td><td  >48.68°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>27.614A</strong></td><td  ><strong>6.020A</strong></td><td  ><strong>5.989A</strong></td><td  ><strong>1.974A</strong></td><td  >389.487</td><td  rowspan="2">89.087%</td><td  rowspan="2">1604</td><td  rowspan="2">40.0</td><td  >41.57°C</td><td  >0.989</td></tr><tr><td  >11.939V</td><td  >4.984V</td><td  >3.306V</td><td  >5.066V</td><td  >437.199</td><td  >49.83°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>7</strong></th><td  ><strong>32.310A</strong></td><td  ><strong>7.023A</strong></td><td  ><strong>6.986A</strong></td><td  ><strong>2.176A</strong></td><td  >454.816</td><td  rowspan="2">88.442%</td><td  rowspan="2">1854</td><td  rowspan="2">40.8</td><td  >42.41°C</td><td  >0.989</td></tr><tr><td  >11.938V</td><td  >4.984V</td><td  >3.306V</td><td  >5.056V</td><td  >514.251</td><td  >51.10°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>8</strong></th><td  ><strong>37.001A</strong></td><td  ><strong>8.029A</strong></td><td  ><strong>7.987A</strong></td><td  ><strong>2.379A</strong></td><td  >520.128</td><td  rowspan="2">87.713%</td><td  rowspan="2">2084</td><td  rowspan="2">44.1</td><td  >42.74°C</td><td  >0.991</td></tr><tr><td  >11.938V</td><td  >4.983V</td><td  >3.305V</td><td  >5.046V</td><td  >592.987</td><td  >52.26°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>9</strong></th><td  ><strong>42.096A</strong></td><td  ><strong>8.534A</strong></td><td  ><strong>8.475A</strong></td><td  ><strong>2.381A</strong></td><td  >585.051</td><td  rowspan="2">87.005%</td><td  rowspan="2">2087</td><td  rowspan="2">44.1</td><td  >43.54°C</td><td  >0.992</td></tr><tr><td  >11.938V</td><td  >4.981V</td><td  >3.304V</td><td  >5.040V</td><td  >672.430</td><td  >53.71°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>10</strong></th><td  ><strong>46.925A</strong></td><td  ><strong>9.039A</strong></td><td  ><strong>8.992A</strong></td><td  ><strong>2.987A</strong></td><td  >649.891</td><td  rowspan="2">86.013%</td><td  rowspan="2">2093</td><td  rowspan="2">44.2</td><td  >44.57°C</td><td  >0.992</td></tr><tr><td  >11.938V</td><td  >4.979V</td><td  >3.302V</td><td  >5.023V</td><td  >755.570</td><td  >55.41°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>11</strong></th><td  ><strong>52.359A</strong></td><td  ><strong>9.043A</strong></td><td  ><strong>8.995A</strong></td><td  ><strong>2.991A</strong></td><td  >714.713</td><td  rowspan="2">85.193%</td><td  rowspan="2">2096</td><td  rowspan="2">44.2</td><td  >46.18°C</td><td  >0.993</td></tr><tr><td  >11.937V</td><td  >4.977V</td><td  >3.301V</td><td  >5.016V</td><td  >838.932</td><td  >57.53°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>CL1</strong></th><td  ><strong>0.145A</strong></td><td  ><strong>12.000A</strong></td><td  ><strong>11.997A</strong></td><td  ><strong>0.000A</strong></td><td  >101.263</td><td  rowspan="2">83.226%</td><td  rowspan="2">1339</td><td  rowspan="2">33.2</td><td  >41.55°C</td><td  >0.974</td></tr><tr><td  >11.946V</td><td  >4.990V</td><td  >3.305V</td><td  >5.112V</td><td  >121.673</td><td  >48.47°C</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>CL2</strong></th><td  ><strong>54.015A</strong></td><td  ><strong>1.002A</strong></td><td  ><strong>0.999A</strong></td><td  ><strong>1.000A</strong></td><td  >658.197</td><td  rowspan="2">86.754%</td><td  rowspan="2">2094</td><td  rowspan="2">44.2</td><td  >44.32°C</td><td  >0.992</td></tr><tr><td  >11.938V</td><td  >4.983V</td><td  >3.310V</td><td  >5.067V</td><td  >758.692</td><td  >55.17°C</td><td  >115.13V</td></tr></tbody></table></div><p>Up to the 40% load test the PSU's noise remains low, despite of the high ambient temperatures. With higher loads the fan has to operate at high speeds to cope with the thermal loads.</p><p>At high temperatures, the unit's efficiency meets the 80 PLUS Gold requirements only during the 20% load test. On the 50% test it is less than 0.5% away from the target, while at full load it is about 1% away. We should note though that the 80 PLUS organization conducts its efficiency measurements at much lower ambient (23°C ±5°C), so it is natural to get higher readings.</p><h2 id="20-80w-load-tests-25">20-80W Load Tests</h2><p>In the following tests, we measure the SSR-650SGX's efficiency at loads significantly lower than 10 percent of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle, with power-saving features turned on.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.210A</strong></td><td  ><strong>0.500A</strong></td><td  ><strong>0.481A</strong></td><td  ><strong>0.195A</strong></td><td  >19.546</td><td  rowspan="2">71.154%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.857</td></tr><tr><td  >11.942V</td><td  >4.999V</td><td  >3.318V</td><td  >5.131V</td><td  >27.470</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>2.483A</strong></td><td  ><strong>1.002A</strong></td><td  ><strong>0.993A</strong></td><td  ><strong>0.390A</strong></td><td  >39.952</td><td  rowspan="2">81.254%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.932</td></tr><tr><td  >11.942V</td><td  >4.997V</td><td  >3.317V</td><td  >5.125V</td><td  >49.169</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>3.688A</strong></td><td  ><strong>1.503A</strong></td><td  ><strong>1.476A</strong></td><td  ><strong>0.586A</strong></td><td  >59.442</td><td  rowspan="2">85.068%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.958</td></tr><tr><td  >11.943V</td><td  >4.993V</td><td  >3.314V</td><td  >5.120V</td><td  >69.876</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>4.961A</strong></td><td  ><strong>2.004A</strong></td><td  ><strong>1.991A</strong></td><td  ><strong>0.782A</strong></td><td  >79.850</td><td  rowspan="2">87.123%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.963</td></tr><tr><td  >11.944V</td><td  >4.991V</td><td  >3.312V</td><td  >5.114V</td><td  >91.652</td><td  >115.12V</td></tr></tbody></table></div><p>The PSU operates at passive mode in these tests.</p><h2 id="efficiency-18">Efficiency</h2><p>Next, we plotted a chart showing the SSR-650SGX’s efficiency at low loads, and loads from 10 to 110 percent of its maximum-rated capacity. The higher a PSU’s efficiency the less energy goes wasted leading to a reduced carbon footprint, besides lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/XujGEnxzR6WwGpmNLQvhmF.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jz2FPAPKD9uJ6FXc9ipZFj.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qm4nN3kocKpB5zZbduswz5.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Z2Vpb3Css74rsH5Pi5bumh.png" alt="" /></figure></figure><p>The overall efficiency with normal loads should be a little higher, while with light loads the SSR-650SGX performs well.</p><h2 id="5vsb-efficiency-25">5VSB Efficiency</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.514</td><td  rowspan="2">73.851%</td><td  >0.110</td></tr><tr><td  >5.134V</td><td  >0.696</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.283</td><td  rowspan="2">76.233%</td><td  >0.224</td></tr><tr><td  >5.131V</td><td  >1.683</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.820</td><td  rowspan="2">77.387%</td><td  >0.337</td></tr><tr><td  >5.126V</td><td  >3.644</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >5.120</td><td  rowspan="2">77.365%</td><td  >0.405</td></tr><tr><td  >5.119V</td><td  >6.618</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.667</td><td  rowspan="2">77.711%</td><td  >0.439</td></tr><tr><td  >5.111V</td><td  >9.866</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >15.235</td><td  rowspan="2">75.940%</td><td  >0.482</td></tr><tr><td  >5.078V</td><td  >20.062</td><td  >115.11V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YHuiiYDxjdvEykWvzFeN9V.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AVdLTDbA68in8ZUyTwMzqS.png" alt="" /></figure></figure><p>The 5VSB rail has room for improvement, when it comes to efficiency.</p><h2 id="power-consumption-in-idle-and-standby-25">Power Consumption In Idle And Standby</h2><div ><table><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">11.934V</td><td  rowspan="2">4.998V</td><td  rowspan="2">3.317V</td><td  rowspan="2">5.135V</td><td  rowspan="2">6.741</td><td  >0.493</td></tr><tr><td  >115.1V</td></tr><tr><th  colspan="5" rowspan="2"><strong>Standby</strong></th><td  rowspan="2">0.046</td><td  >0.007</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Efsz2aoRrvEYAx34TcTSSb.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mUxrds45XXArQnPoy4vU5M.png" alt="" /></figure></figure><h2 id="fan-rpm-delta-temperature-and-output-noise-25">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 36°C (96.8°F) to 46°C (114.8°F).   </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/XPES52T6523c77DCJnMFLQ.png" mos="https://cdn.mos.cms.futurecdn.net/XPES52T6523c77DCJnMFLQ.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/XPES52T6523c77DCJnMFLQ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/uXwdbTEs3hE7J9vH2YLSnG.png" mos="https://cdn.mos.cms.futurecdn.net/uXwdbTEs3hE7J9vH2YLSnG.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/uXwdbTEs3hE7J9vH2YLSnG.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The fan profile could be a bit smoother under higher loads. Nonetheless, Seasonic wanted to stay on the safe side given that this is a compact and over-populated platform, which has to outlive the extra-long 10-year warranty.</p><p>The following results were obtained at 30°C (86°F) to 32°C (89.6°F) ambient temperature.   </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:924px;"><p class="vanilla-image-block" style="padding-top:69.16%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/o6rCjoSMt5GoKhC2ceJR4A.jpg" mos="https://cdn.mos.cms.futurecdn.net/o6rCjoSMt5GoKhC2ceJR4A.jpg" align="" fullscreen="1" width="924" height="639" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/o6rCjoSMt5GoKhC2ceJR4A.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:924px;"><p class="vanilla-image-block" style="padding-top:69.16%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/Z7RiVuLGdrNHJgQjnGrMaF.jpg" mos="https://cdn.mos.cms.futurecdn.net/Z7RiVuLGdrNHJgQjnGrMaF.jpg" align="" fullscreen="1" width="924" height="639" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/Z7RiVuLGdrNHJgQjnGrMaF.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The semi-passive mode doesn't last long. At up to 340W of load, the noise output remains low (below 30 dB[A]) while with higher than 430W loads the noise is within the 40-45 dB(A) range. As we already stated, the fan profile could be more balanced/relaxed under higher loads.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="protection-features-dc-power-sequencing-cross-load-tests-and-infrared-images-6">Protection Features, DC Power Sequencing, Cross-Load Tests and Infrared Images</h2><h2 id="protection-features-25">Protection Features</h2><p><strong>Check out our <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-21.html">PSUs 101</a> article to learn more about PSU protection features.</strong></p><div ><table><tbody><tr><td  colspan="2"><strong>Protection Features</strong></td></tr><tr><td  ><strong>OCP</strong></td><td  >12V: 67.4A (124.81%), 11.924V 5V: 27.9A (139.5%), 5.003V 3.3V: 26.2A (131%), 3.318V 5VSB: 6.4A (213.33%), 5.018V</td></tr><tr><td  ><strong>OPP</strong></td><td  >824.5W (126.85%)</td></tr><tr><td  ><strong>OTP</strong></td><td  >✓ (172°C @ 12V Heat Sink)</td></tr><tr><td  ><strong>SCP</strong></td><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><td  ><strong>PWR_OK</strong></td><td  >Proper Operation</td></tr><tr><td  ><strong>NLO</strong></td><td  >✓</td></tr><tr><td  ><strong>SIP</strong></td><td  >Surge: MOV Inrush: NTC Thermistor & Bypass Relay</td></tr></tbody></table></div><p>The OCP triggering points at +12V and 3.3V rails are properly set. At 5V, the OCP's threshold is higher than required, while at 5VSB, it is just crazy high. Nonetheless, we didn't notice any large voltage drops or excess ripple. All the rest protection features are present and work well.</p><h2 id="dc-power-sequencing-24">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it is so important to always keep the 3.3V rail's voltage lower, than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/PcWgifkPppALfXcGuAocP3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LwoThxv2aFpaR8goUySDbH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DPYyr8escNiV9babDUbb7F.jpg" alt="" /></figure></figure><p>The PSU passes these tests with success, since the 3.3V rail is always lower than the rest two.</p><h2 id="cross-load-tests-24">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30°C (86°F) and 32°C (89.6°F).</p><h2 id="load-regulation-charts-25">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/DEetu78eEgBB7zejzM5i7A.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/59ALgg94nCWo8TCnv23p4Q.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/F5WeLRn3NTPsJqifibbWh9.jpg" alt="" /></figure></figure><h2 id="efficiency-chart-20">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:924px;"><p class="vanilla-image-block" style="padding-top:69.16%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/9pPkZ6n94jZo5xBEPMeV9f.jpg" mos="https://cdn.mos.cms.futurecdn.net/9pPkZ6n94jZo5xBEPMeV9f.jpg" align="" fullscreen="1" width="924" height="639" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/9pPkZ6n94jZo5xBEPMeV9f.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p><strong><span>The Seasonic Focus SGX 650W has its best efficiency with loads, ranging from 150W to around 380W load at +12V, with the load on the minor rails staying below 65W.</span></strong></p><h2 id="ripple-charts-20">Ripple Charts</h2><p>The lower the power supply's ripple the more stable the system will be and less stress will be also applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jXNt7VtMA2ortbFcuFr4HW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vnYiMhXHufHm4h7zmKg2z.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zo83wQGW25z4g8fyGxoxzm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6jMcZ7wA9n93hAooPJWkv8.jpg" alt="" /></figure></figure><h2 id="infrared-images-25">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ihukhcM4cGWMhUuivia5Hj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vzBHDkVi83aSRPFT8u7jR6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YH62ctSSWc389xnekNsCuA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9aS8E8pNccF5LYt46enPCd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/djfnhaK6Dz7h6mVzgDGhBF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oNXjrZ2QhZtBXsXRoiih83.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FuHTGQ2CB9D5ecKvF2YiiD.jpg" alt="" /></figure></figure><p>The temperatures at the internals stay at low enough levels, even in the DC-DC converters which usually are the hottest parts inside a power supply, under increased loads on the minor rails.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="transient-response-tests-ripple-measurements-and-emc-pre-compliance-testing-6">Transient Response Tests, Ripple Measurements and EMC Pre-Compliance Testing</h2><h2 id="advanced-transient-response-tests-25">Advanced Transient Response Tests</h2><p><strong>For details on our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><em><strong>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology we choose to apply the worst case scenario with no extra capacitance on the rails. </strong></em></p><h2 id="advanced-transient-response-at-20-percent-200ms">Advanced Transient Response at 20 Percent – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.929V</td><td  >11.783V</td><td  >1.22%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.989V</td><td  >4.854V</td><td  >2.71%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.309V</td><td  >3.173V</td><td  >4.11%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.104V</td><td  >5.063V</td><td  >0.80%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-percent-20ms">Advanced Transient Response at 20 Percent – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.937V</td><td  >11.739V</td><td  >1.66%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.990V</td><td  >4.828V</td><td  >3.25%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.310V</td><td  >3.145V</td><td  >4.98%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.104V</td><td  >5.057V</td><td  >0.92%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-percent-1ms">Advanced Transient Response at 20 Percent – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.941V</td><td  >11.756V</td><td  >1.55%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.992V</td><td  >4.809V</td><td  >3.67%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.311V</td><td  >3.145V</td><td  >5.01%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.104V</td><td  >5.072V</td><td  >0.63%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-percent-200ms">Advanced Transient Response at 50 Percent – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.928V</td><td  >11.773V</td><td  >1.30%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.990V</td><td  >4.848V</td><td  >2.85%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.308V</td><td  >3.163V</td><td  >4.38%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.078V</td><td  >5.029V</td><td  >0.96%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-percent-20ms">Advanced Transient Response at 50 Percent – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.933V</td><td  >11.739V</td><td  >1.63%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.991V</td><td  >4.824V</td><td  >3.35%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.309V</td><td  ><strong>3.137V</strong></td><td  >5.20%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.078V</td><td  >5.029V</td><td  >0.96%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-percent-1ms">Advanced Transient Response at 50 Percent – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >11.935V</td><td  >11.740V</td><td  >1.63%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.992V</td><td  >4.821V</td><td  >3.43%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.309V</td><td  ><strong>3.136V</strong></td><td  >5.23%</td><td  ><strong>Fail</strong></td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.078V</td><td  >5.041V</td><td  >0.73%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/fzsjM5Qze86o3NtospomSh.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s6AMaxuEXXzYajT2WerZaX.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GQRomgCkTRVpeDpHSPQ8Vn.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vsJB2PGna3uC3LeKm9VeZn.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CPGcruffDkKrdNUpHXTpvf.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3ckyqoHWM5fHw8vYhLkwUA.png" alt="" /></figure></figure><p>The +12V rail has good transient response, for the standards of this category, and the 5VSB rail also performs well. The 5V rail's transient performance can be further improved while the 3.3V rail clearly needs more capacitance or an improved design, to restrict its deviations.</p><h2 id="turn-on-transient-tests-25">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YhCTauEHBA2R77eKrt7CRT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LXXEhH2QSkjZspsH4nbA69.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BMkzfohWTV8yXwrL93SCbZ.jpg" alt="" /></figure></figure><p>There is a tiny spike at 5VSB, which is barely noticeable. In the other two tests we notice a voltage step along with a small spike, after the rail settles down, which are nothing to worry about.</p><h2 id="ripple-measurements-25">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' lifespan because it causes them to run hotter. A 10°C increase can cut into a cap's useful life by 50 percent. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><thead><tr><th  ><strong>Test</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>10% Load</strong></th><td  >12.4 mV</td><td  >9.9 mV</td><td  >12.7 mV</td><td  >10.3 mV</td><td  >Pass</td></tr><tr><th  ><strong>20% Load</strong></th><td  >13.6 mV</td><td  >11.4 mV</td><td  >13.1 mV</td><td  >10.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>30% Load</strong></th><td  >14.1 mV</td><td  >12.8 mV</td><td  >14.5 mV</td><td  >11.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>40% Load</strong></th><td  >15.2 mV</td><td  >13.9 mV</td><td  >15.1 mV</td><td  >12.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>50% Load</strong></th><td  >16.9 mV</td><td  >15.9 mV</td><td  >15.6 mV</td><td  >12.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>60% Load</strong></th><td  >18.5 mV</td><td  >17.1 mV</td><td  >16.9 mV</td><td  >14.1 mV</td><td  >Pass</td></tr><tr><th  ><strong>70% Load</strong></th><td  >20.8 mV</td><td  >18.7 mV</td><td  >17.6 mV</td><td  >16.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>80% Load</strong></th><td  >21.8 mV</td><td  >20.6 mV</td><td  >18.8 mV</td><td  >18.3 mV</td><td  >Pass</td></tr><tr><th  ><strong>90% Load</strong></th><td  >23.4 mV</td><td  >22.0 mV</td><td  >19.6 mV</td><td  >19.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>100% Load</strong></th><td  >24.8 mV</td><td  >23.3 mV</td><td  >21.4 mV</td><td  >18.9 mV</td><td  >Pass</td></tr><tr><th  ><strong>110% Load</strong></th><td  >36.8 mV</td><td  >23.6 mV</td><td  >21.3 mV</td><td  >23.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 1</strong></th><td  >16.5 mV</td><td  >19.3 mV</td><td  >18.7 mV</td><td  >10.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 2</strong></th><td  >23.3 mV</td><td  >15.1 mV</td><td  >15.9 mV</td><td  >18.5 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/p5GMTKujhccBpRv3A2K6LK.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UMcE8iwUNqfPEkvxV9AzxA.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3kAjhC6zapQCai5sgae4L6.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cQXDGF6fd3M8Up4cQvKCkD.png" alt="" /></figure></figure><p>The ripple suppression is good on all rails, without using cables with extra filtering (in-line) caps which most users hate since they are difficult to work with.</p><h2 id="ripple-at-full-load-25">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/ibPVVzG284QbBaFZrCKXka.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aTqCYqXAXZBF6mJNCx8tAP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4N2diPqSYAeV6ZLocnMoTE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HYtzdXngnjKZ4gM4QaWWGR.jpg" alt="" /></figure></figure><h2 id="ripple-at-110-percent-load">Ripple At 110-Percent Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xT9Y5xTVF9NEZHoPqFbsMa.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2tpzgnjXqW9i94AsYs35NH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/N6RTuDJYZc6iYTqCATxGKQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cF2qZMzr2MSppV8MgT6sQR.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-1-25">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/P284X2Gye8778vvUy6RJwf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/R5GXeFtMwoVc9vKUa3FFo9.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X74ffzt4Ej6XrJgXAGCN2S.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9pWDNJDVmvtMc5uWnseVPV.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-2-20">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/bLDz7CbfsuZyTyFkPSijqj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MeG29kPH9GoubeF5STgzBK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/sSfGLH5sR8MiSDDV5wmMq.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Rb5cbTUDFAkAGj35arkSJS.jpg" alt="" /></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results-9">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, and it can cause problems in other close-by devices if too high. For example, it can be the cause of increased static noise in your headphones or/and speakers.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1627px;"><p class="vanilla-image-block" style="padding-top:35.22%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/BDYhzpmr3BcJKvq3NFgSwL.jpg" mos="https://cdn.mos.cms.futurecdn.net/BDYhzpmr3BcJKvq3NFgSwL.jpg" align="" fullscreen="1" width="1627" height="573" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/BDYhzpmr3BcJKvq3NFgSwL.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The conducted EMI emissions stay below the corresponding limits.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="performance-noise-and-efficiency-6">Performance, Noise and Efficiency</h2><h2 id="performance-rating-25">Performance Rating</h2><p><a href="http://media.bestofmicro.com/V/R/831879/gallery/Result-34-34_Relative_Performance_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:718px;"><p class="vanilla-image-block" style="padding-top:71.03%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/UYBvC76k7vfyha4ABAmYk7.png" mos="https://cdn.mos.cms.futurecdn.net/UYBvC76k7vfyha4ABAmYk7.png" align="" fullscreen="1" width="718" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/UYBvC76k7vfyha4ABAmYk7.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>As expected, considering the test results that we gathered, the Seasonic SFX-L unit achieves a high overall performance score. The Corsair SF600 is a bit higher, but the difference is not that large.</p><h2 id="noise-rating-25">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30°C and 32°C (86°F to 89.6°F).</p><p><a href="http://media.bestofmicro.com/V/U/831882/gallery/Result-35-35_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:628px;"><p class="vanilla-image-block" style="padding-top:81.37%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/YFzbkwT6s3wxtbxBWNaKPQ.png" mos="https://cdn.mos.cms.futurecdn.net/YFzbkwT6s3wxtbxBWNaKPQ.png" align="" fullscreen="1" width="628" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/YFzbkwT6s3wxtbxBWNaKPQ.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>Mostly because of the aggressive fan profile at high loads, the SSR-650SGX fails to achieve a below 35 dB(A) overall noise output.</p><h2 id="efficiency-rating-25">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30°C.</p><p><a href="http://media.bestofmicro.com/V/V/831883/gallery/Result-36-36_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:706px;"><p class="vanilla-image-block" style="padding-top:72.38%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/nzssmcEQt22myb7qGUypHC.png" mos="https://cdn.mos.cms.futurecdn.net/nzssmcEQt22myb7qGUypHC.png" align="" fullscreen="1" width="706" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/nzssmcEQt22myb7qGUypHC.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>This is an efficient platform, easily meeting the basic requirements (>88% overall efficiency) of the ETA-A certification.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="bottom-line-9">Bottom Line</h2><p>If you are looking for a small form factor PSU, you will immediately notice that the offerings are limited compared to the large number of normal sized ATX models. The majority of SFX and SFX-L models available in the market today have high performance and relatively quiet operation.</p><p>It is very difficult though to achieve high wattage and dead silent operation, while keeping the platform's footprint small. The higher the power density (aka <span class="st">the amount of power per unit volume) the tougher it is to keep operating temperatures at normal levels and, to make matters worse, the small diameter fans used in those units need to rotate at high speeds, to keep things cool. Given all of the above, you can understand the time, resources and effort required to release a good SFX or SFX-L platform.<br/></span></p><p>The Seasonic Focus SGX 650W has a competitive price and it achieves a pretty high overall performance score. If the 5VSB rail had higher efficiency and the transient response on the minor rails was tighter, I would be fully satisfied. Its platform has good build quality and given the ten-year warranty that Seasonic provides (the longest among all SFX and SFX-L offerings) it should be very reliable as well. The number of provided connectors is satisfactory for normal use, but still I would like to see a second EPS connector for more demanding systems.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:2000px;"><p class="vanilla-image-block" style="padding-top:56.25%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/GcSVCzAuUZHdWEosr3TvML.jpg" mos="https://cdn.mos.cms.futurecdn.net/GcSVCzAuUZHdWEosr3TvML.jpg" align="" fullscreen="1" width="2000" height="1125" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/GcSVCzAuUZHdWEosr3TvML.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>With the provided SFX-to-ATX adapter bracket you can mount this PSU to a normal ATX chassis but keep in mind that the short cables will set the limits there. It would be nice if Seasonic sold another version of this model, which besides the aforementioned adapter would be also equipped with longer cables. That way, users that want to use it with a larger chassis <span>be limited by the short cables</span>. On top of that, the short cable version could come without the ATX adapter, so its price tag could be set lower.</p><p>The Seasonic Focus SGX 650W is a good choice for users wanting a compact, powerful and reliable power supply. Its major opponent is the Corsair SF600 which is even smaller since it is an SFX unit, but has 50W less and can be noisy if you manage to stress its minor rails (which are lightly used in modern systems).</p><p><em>Photo Credits: Tom's Hardware</em></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><p><strong><em>Disclaimer:</em></strong><em> Aris Mpitziopoulos is Tom's Hardware's PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em>, and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom's Hardware. Neither Tom's Hardware nor its parent company, Future</em><span class="st"> PLC</span><em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Asus ROG Thor 1200W PSU Review: Asus Brings a Screen to the PSU Party ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/asus-rog-thor-1200w-psu,5984.html</link>
                                                                            <description>
                            <![CDATA[ The ROG Thor 1200W is Asus' new top PSU, made in collaboration with Seasonic. It features high performance and silent operation. ]]>
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                                                                        <pubDate>Sat, 23 Feb 2019 02:00:00 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:27:33 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                <h2 id="specifications-and-part-analysis-8">Specifications and Part Analysis</h2><p>The ROG Thor 1200W achieves good performance in all areas and besides that, it is the quietest PSU in its wattage category achieving an impressive LAMBDA-A+ (15-20 dB[A] overall noise output) certification in the Cybenetics scale.</p><p>Asus teamed up with Seasonic for its latest high-end PSU line, and the results are very promising. The embedded OLED screen provides real-time power draw data and there is also addressable RGB lighting and Aura Sync compatibility, for those who want their power supply to look fancy. The price that Asus asks for it is high but fair, given the product's features. The main competitors of Asus' high-end offering are the similar capacity Seasonic Prime Platinum and the Corsair AX1200i. The latter, despite its age, is still a worthy adversary.</p><p>Asus makes several different types of components, so it makes sense for the company to enter the PSU market. But since the cost of developing a PSU from the scratch is huge, the company decided to team up with Seasonic and modify its Prime and Focus platforms, for the Rog Thor 1200W and 850W models respectively. Here we'll be taking a good look at the strongest Thor unit, which looks to be a heavily modified Seasonic Prime Platinum model. We'll investigate not just the internals, but take a close look at the external design as well. The Thor units have nice aesthetics, addressable RGB lighting, and an impressive OLED screen. The latter really sets this unit apart from the competition, although it only provides power draw data and not DC wattage information.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QSomKb8Ev7G5xVYy7kX7Rg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7tzfW9vTvbaLukKSHFdUd8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cvj4Me7A8B4YVAjzfsS9Gg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tYVm8SGqQGxjYbpUeA49tY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3T9WAB937Z4xksLb42KRzi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VwAFHvTHQEYgxkkkKzK4zG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GVyU6NPzWd4EJvKzRrdwmK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eGptmNm8FSrqxeRWC2TXVE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s2KhtDnXjVPWTY67qVse7n.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rScyBArjjjs44CSucRPc28.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tCYXf4xdbkF56dy3RnaSha.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ttDwi4fayfuTzkXmywVJ6R.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZzKqQawfCc73Ce9249JQuR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FaKoSCodDKMSyA7BDdH3SS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6MfK3chDyGasoPYzz5iNmU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dT637hSKsT8DAw37dina9Y.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Jge3URMHhcmRF599h6XxZS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Y7Z4UxQTN8rMahsrzcuiRg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fBEFynVuXv8gJp9iogr5Yh.jpg" alt="" /></figure></figure><h2 id="specifications-26">Specifications</h2><div ><table><tbody><tr><td  ><strong>Manufacturer (OEM)</strong></td><td  ><span class="spelle">Seasonic</span></td></tr><tr><td  ><strong>Max. DC Output</strong></td><td  ><span class="spelle">1200W</span></td></tr><tr><td  ><strong>Efficiency</strong></td><td  >80 PLUS Platinum, ETA-A (88-91%)</td></tr><tr><td  ><strong>Noise</strong></td><td  >LAMBDA-A+ (15-20 dB[A])</td></tr><tr><td  ><strong>Modular</strong></td><td  >✓ (Fully)</td></tr><tr><td  ><strong>Intel C6/C7 Power State Support</strong></td><td  >✓</td></tr><tr><td  ><strong>Operating Temperature (Continuous Full Load)</strong></td><td  >0 - 50°C</td></tr><tr><td  ><strong>Over Voltage Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Under Voltage Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Over Power Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Over Current (+12V) Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Over Temperature Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Short Circuit Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Surge Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Inrush Current Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Fan Failure Protection</strong></td><td  >✗</td></tr><tr><td  ><strong>No Load Operation</strong></td><td  >✓</td></tr><tr><td  ><strong>Cooling</strong></td><td  >135mm Double Ball Bearing Fan (PLA13525B12M)</td></tr><tr><td  ><strong>Semi-Passive Operation</strong></td><td  >✓ (selectable)</td></tr><tr><td  ><strong>Dimensions (<span class="spelle">W x H x D</span>) </strong></td><td  >152 x 88 x 192mm</td></tr><tr><td  ><strong>Weight</strong></td><td  >2.37 kg (5.22 <span class="spelle">lb</span>)</td></tr><tr><td  ><strong>Form Factor</strong></td><td  >ATX12V v2.4, EPS 2.92</td></tr><tr><td  ><strong>Warranty</strong></td><td  >10 Years</td></tr></tbody></table></div><h2 id="power-specifications-26">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Max. Power</strong></th><td  ><strong>Amps</strong></td><td  >25</td><td  >25</td><td  >100</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">125</td><td  >1200</td><td  >15</td><td  >3.6</td></tr><tr><th  colspan="2"><strong>Total Max. Power (W)</strong></th><td  colspan="5">1200</td></tr></tbody></table></div><h2 id="cables-amp-connectors-18">Cables & Connectors</h2><div ><table><thead><tr><th  colspan="5"><strong>Modular Cables</strong></th></tr></thead><tbody><tr><th  ><strong>Description</strong></th><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><th  ><strong>ATX connector 20+4 pin (610mm)</strong></th><td  >1</td><td  >1</td><td  >18-20AWG</td><td  >No</td></tr><tr><th  ><strong>4+4 pin EPS12V (650mm)</strong></th><td  >2</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (680mm)</strong></th><td  >4</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>6+2 pin PCIe (680mm+70mm) </strong></th><td  >2</td><td  >4</td><td  >18AWG</td><td  >Yes</td></tr><tr><th  ><strong>SATA (350mm+150mm+150mm+150mm)</strong></th><td  >1</td><td  >4</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>SATA (400mm+115mm+115mm+115mm)</strong></th><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4-pin Molex to 2x SATA (150mm)</strong></th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4-pin Molex (350mm+120mm)</strong></th><td  >1</td><td  >2</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>4-pin Molex (450mm+120mm+120mm)</strong></th><td  >1</td><td  >3</td><td  >18AWG</td><td  >No</td></tr><tr><th  ><strong>FDD Adapter (+105mm)</strong></th><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><th  ><strong>RGB Cable (800mm)</strong></th><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><th  ><strong>RGB Sync Cable (800mm)</strong></th><td  >1</td><td  >1</td><td  >24AWG</td><td  >No</td></tr><tr><th  ><strong>AC Power Cord Type (1380mm)</strong></th><td  >1</td><td  >1</td><td  >18AWG</td><td  >-</td></tr></tbody></table></div><p>The amount of provided cables and connectors here is impressive! Besides two EPS connectors, the unit also has eight PCIe cables with four them being installed on dedicated cables. Moreover, you will find twelve SATA and a pair of SATA 3.3-compatible connectors, supporting the Power Disable function. In the latter the 3.3V rail is absent from the SATA connectors, since it doesn't exist on the four-pin Molex connector responsible for feeding them with power.</p><p>The only problems that we find here are the short distances between the peripheral connectors and the use of 18AWG gauges in the ATX, EPS and PCIe cables. Normally, in large-capacity units like this one, 16AWG gauges should be used for lower voltage drops under high loads.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aaVAZwhSaM5iAAfSneNYjN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oiLeBpzViQJ5qFfDNVcJFH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YDwjxpRo2WBYXUvYkanP74.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/odSpLXdgmiTENsjkgTHjpk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fDdN8YZvicC4a4Fmaq2Tx4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YNqdaTgVj3MTw5wcWWHijW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/M5pdZ4EtZNAwwcrveTgj6e.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jETFsMZpgvrW8aF4cwc75Q.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Sjd33LydQdJF8QGbyU4mN4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7LkjeiRkMxdkG6kPGpKTgY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ApwfKwcTTJDVRt8FfaYECA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/b63mptSjMqi7kND43dM294.jpg" alt="" /></figure></figure><h2 id="component-analysis-26">Component Analysis </h2><div ><table><thead><tr><th  colspan="2"><strong>General Data</strong></th></tr></thead><tbody><tr><th  >Manufacturer (OEM)</th><td  >Seasonic</td></tr><tr><th  >Platform Model</th><td  >Prime Ultra Platinum</td></tr><thead><tr><th  colspan="2"><strong>Primary Side</strong></th></tr></thead><tr><th  >Transient Filter</th><td  >6x Y caps, 4x X caps, 2x CM chokes, 1x MOV</td></tr><tr><th  >Inrush Protection</th><td  >NTC Thermistor & Relay</td></tr><tr><th  >Bridge Rectifier(s)</th><td  >2x Vishay <a href="http://www.vishay.com/docs/89393/lvb2560.pdf">LVB2560</a> (600V, 25A @ 105°C)</td></tr><tr><th  >APFC MOSFETS</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP60R099CP-DS-v02_02-en.pdf?fileId=db3a304412b407950112b42e3e6b4987">IPP60R099CP</a> (650V, 19A @ 100°C, 0.099 Ohm)</td></tr><tr><th  >APFC Boost Diode</th><td  >1x STMicroelectronics <a href="https://www.st.com/resource/en/datasheet/stpsc10h065.pdf">STPSC10H065D</a> (650V, 10A @ 135°C)</td></tr><tr><th  >Hold-up Cap(s)</th><td  >Hitachi (400V, 1x 820uF & 1x 470uF, 2000h @ 105°C, <a href="http://www.hitachi-chem.co.jp/english/products/sds/files/e_ridohu.pdf">HU</a>)</td></tr><tr><th  >Main Switchers</th><td  >4x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP50R199CP-DS-v02_00-en.pdf?fileId=db3a30432313ff5e0123850e86a865bc">IPP50R199CP</a> (550V, 11A @ 100°C, 0.199 Ohm)</td></tr><tr><th  >Drivers For Main Switchers</th><td  >2x Silicon Labs <a href="http://www.mouser.com/ds/2/368/silicon%20laboratories_23x-550702.pdf">Si8230BD</a></td></tr><tr><th  >APFC Controller</th><td  >ON Semiconductor <a href="http://www.onsemi.com/pub_link/Collateral/NCP1654-D.PDF">NPC1654</a></td></tr><tr><th  >Current Sensor IC</th><td  >Allegro ACS725T</td></tr><tr><th  >Switching Controller</th><td  >Champion <a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901.pdf">CM6901</a></td></tr><tr><th  >Topology</th><td  >Primary side: Full-Bridge & LLC Resonant Converter Secondary side: Synchronous Rectification & DC-DC converters</td></tr><thead><tr><th  colspan="2"><strong>Secondary Side</strong></th></tr></thead><tr><th  >+12V MOSFETS</th><td  >8x Vishay <a href="https://www.vishay.com/docs/64430/sir638dp.pdf">SiR638DP</a> (40V, 100A @ 70°C, 0.88mOhm)</td></tr><tr><th  >5V & 3.3V</th><td  >DC-DC Converters: 6x Infineon <a href="http://www.infineon.com/dgdl/Infineon-BSC0906NS-DS-v02_05-en.pdf?fileId=db3a30433072cd8f0130986c816b2f8c">BSC0906NS</a> PWM Controller: <a href="http://www.anpec.com.tw/ashx_prod_file.ashx?prod_id=717&file_path=20131210180212790.pdf&original_name=APW7159A.pdf">APW7159</a></td></tr><tr><th  >Filtering Capacitors</th><td  >Electrolytics: Chemi-Con (105°C, W), Chemi-Con (4,000-10,000h @ 105°C, <a href="http://www.chemi-con.com/upload/files/7/5/32389236352d6c56e8f45b.pdf">KY</a>, <a href="http://www.mouser.com/catalog/specsheets/UCC_KYBDatasheet.pdf">KYB</a><span class="spelle">), Rubycon</span> (6,000-10,000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_zlh.pdf">ZLH</a>), 1x <span class="spelle">Rubycon</span> (5VSB circuit, 105°C, YXD) Polymers: FPCAP, Nippon Chemi-Con</td></tr><tr><th  >Micro Controller</th><td  >Microchip <a href="http://ww1.microchip.com/downloads/en/DeviceDoc/Microchip%208bit%20mcu%20AVR%20ATmega8A%20data%20sheet%2040001974A.pdf">ATmega8A</a></td></tr><tr><th  >Flash Memory</th><td  >Microchip <a href="http://ww1.microchip.com/downloads/en/DeviceDoc/20005262D.pdf">SST26VF016B</a></td></tr><tr><th  >Supervisor IC</th><td  ><span class="spelle">Weltrend </span><a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-22.html">WT7527V</a> (OVP, UVP, OCP, SCP, PG ) & <a href="https://www.diodes.com/assets/Datasheets/AS393_A.pdf">AS393M</a></td></tr><tr><th  >Fan Model</th><td  >Power Logic <a href="http://www.powerlogic.tw/images/pdf/power_axial_fan_2012_06_05_75843.pdf">PLA13525B12M</a> (135mm, 12V, 0.40A, 2000 RPM, 111.1 CFM, 41.6 dB[A], Double Ball Bearing)</td></tr><thead><tr><th  colspan="2"><strong>5VSB Circuit</strong></th></tr></thead><tr><th  >Buck Converter</th><td  >Leadtrend <a href="http://www.leadtrend.com.tw/archive/doc/product/sheets/LD7750R-DS-00.pdf">LD7750R</a></td></tr><tr><th  >Rectifiers</th><td  ><span class="msonormal0">STMicroelectronics </span><a href="http://www.st.com/content/ccc/resource/technical/document/datasheet/1b/53/fa/4b/4f/25/45/69/CD00297329.pdf/files/CD00297329.pdf/jcr:content/translations/en.CD00297329.pdf">STU6N65K3</a> (650V, 3A @ 100°C, 1.3Ohm)</td></tr><thead><tr><th  colspan="2"><strong>-12V Circuit</strong></th></tr></thead><tr><th  >Buck Converter</th><td  >Lite-On <a href="http://www.liteon-semi.com/upfiles/tecfile01411109741.pdf">LSP5523</a> (3A max output current )</td></tr></tbody></table></div><p>Asus asked Seasonic for a number of modifications on the Prime Platinum platform, with the most important being the installation of a micro-controller, which aside from providing a digital interface is also responsible for the circuit that provides the power draw data. All heatsinks have been replaced with larger ones for this Asus model, in order to allow for decreased airflow leading to reduced acoustic noise.</p><p>The majority of PSU manufacturers try to reduce the size of the heatsinks in order to save money, something that demands more-aggressive fan speed profiles. But Asus chose a different route, making the Rog Thor 1200W one of the quietest units in this category.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/E3f2mNCkiR5KiFrfrzgf4E.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uM2rrQo3dWQG43fJkNdC2Q.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UAf4jcWLnpgTvFyWZmeQSB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rk4pQTNaBKKjRNrPaiWYbL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hsYrzjLYMNjuvoRNM6jvaj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QfRTKYCfvoutEhyBQ4Mtt3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/h2fVx8BfUXtSnUXsRNPHZL.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7sFsWGooFXCMFd2Kp4wuzH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Ch2UcHqJApfUtMWaok5bAN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/yoeaMJ5woGnAgwQoQwRkcA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HFcS6CodeRhqnZ8LETRGdE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VYS9kEtdrKk3RaAza2eYeb.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cV2GS2uVCMGnxfn6SmzzSN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jazQMjtBdGfrdH6VEPxxVY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4GgBUKU8p42CDPxRVmvui4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tcuwFDjanFBhGxtfJFhddG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/saz9Rdm9Eo944HkqKCrodH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wwpSRPKT7jV598MMSaWQW8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JVTJ5uawA3HZyTDCaLGQ25.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VNQCArXBLPE6JA9BHcReJ4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gLxRBBygwcKcNkQMmQxCNS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/99cc4qZmMiKz5Sdi3KBGkW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Gnw28JjLENVfGGNz6FaZL5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rUqybcgw7pnBw2Zr9XToeK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iFCmaYJgJFnDswQ4uocBmj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AtweLc5WqQworK5CBAK6HZ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dhaRQVJdqztpfeCmjcvKbZ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GPvrTDBEsHfPTgJJ5eBDKn.jpg" alt="" /></figure></figure><p>All components used in this platform are of high quality, and what particularly makes a good impression is the ball-bearing fan, which is much more heat-tolerant compared to FDB fans. FDB fans generally feature a quieter operation, and this is what makes this unit unique. Even with a noisier DBB fan, the Thor manages to achieve very low overall noise output.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/o4m7qXkAyQZbnh6Ee49zWS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H6GMtfbfKC4kYBcM2HSFjW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rXjWVyjuLroPJzFF7V346T.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZUHvWPafuTqqhczab98aMg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SmkZSR7CyrkXqpdxTj3iGX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UtZaW6NH8fFx7mcZHASe7f.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/q9SuGxqaBA3atTs8z4Ss2S.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3tGKUoxzTjzyUtAFQdyb77.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aQDyZ9aoG7ANLYrCo3MD6S.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xotozLBQALAZrYDHwU3GAE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NsH7R2nU4Ddb9YboGNzaV5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iEAMV7XmpEwKY8PygeiCzk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UGDvpmDUWCKBkTD8PDXyGE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AzRxdThmYBfNnVjWo6QHHD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/GNiosrjQnhVpkW9EKPGR4Z.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/onnAgqRfdR2DypzidDYziK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jXdXAQPzo7gEoB92bhaaB7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oKw2xTiULpET3QNb6tzUgP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/USfgRKJNHRNiPHvbX2puKC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EedVCiCHj8WDWXbUqWJ5zf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SbCXiYghXBjTLtnSi7KtfM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EzoD2nyUZE8YaEstFPLae3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/buLL8jW5J3rsbvVuRcdE5Y.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wBPaLTCPR9r9Qz987d5msX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cMYt7n9DdwaHmWkKFbksWB.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FAVBNd6a6uYLNF4bjRNKQN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZaSpg7CMhAXi9unqmohTBg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ffiaY3HFoNcnFW2gpbMnkH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rGSMCk3fBHDMXANJZayaZf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/k7oMzHeaGxvN75c2nz83U3.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/t2sVnC74FKcPXuq7tJzRdX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/iLiZ7RkA6jexKmncPa2Nqn.jpg" alt="" /></figure></figure><p><br/><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><br/><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><br/><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><iframe src="https://content.jwplatform.com/players/7AgPc2Q8.html" id="7AgPc2Q8" title="Buy the Right SSD" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="load-regulation-hold-up-time-inrush-current-efficiency-and-noise-8">Load Regulation, Hold-Up Time, Inrush Current, Efficiency and Noise</h2><p><strong>To learn more about our PSU tests and methodology, please check out <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">How We Test Power Supply Units.</a> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="e3b48473-b6a8-4d08-8abf-d831a7a1ad65">            <a href="http://www.amazon.com/gp/product/B07JZHLC4M?tag=hawk-future-20&ascsubtag=tomshardware&ascsubtag=%site%%transactionId%-gclid-%gclid%-Fallback" data-model-name="ROG Thor 1200W" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/DW7FZ2fj3rj3YjGRi3oBnB.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Asus ROG Thor 1200W</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="58b11f4a-5f94-40ba-800c-ac27837a7f2e">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https://www.newegg.com/Product/Product.aspx?Item=9SIA3AR59A5212" data-model-name="Seasonic SSR-1200PD" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:86.54%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/vRJ2777KafYFE74T4VW2vU.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Seasonic SSR-1200PD</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="c4c76f2b-ec40-4d8f-9c7f-f6d1e0c9116f">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https://www.newegg.com/Product/Product.aspx?Item=9SIA8EF6JY1892" data-model-name="Thermaltake TPG-1200F1FAP" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/LCPMm3j7Fp5FG25nPXm9Lh.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Thermaltake TPG-1200F1FAP</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-26">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply, because it facilitates constant voltage levels despite varying loads. Tight load regulation, among other things, improves the system’s stability, especially under overclocked conditions, and at the same time it applies less stress to the DC-DC converters that many system components utilize.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/aotirJhgU6XdAktX7nqB6U.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KkFbbpXd4wp9vP4uxXJcdV.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/U2vqQMjgw3F7KTYhvkZj2g.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vNXV2aCvM6wSknxs2HphXi.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/B3nw5QUSTfJvfwj4HuBhdk.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7xyvfPZXX8JSN96cbXzvRG.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aeFCyJxVTjTqbpxuCjrM6C.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Hn2LvBAkjLpmk9jjpDqqPL.png" alt="" /></figure></figure><p>Load regulation is pretty tight on all rails but 5VSB. However, the Seasonic Prime Platinum 1200W (which is built on the same platform) achieves better performance.</p><h2 id="hold-up-time-26">Hold-Up Time</h2><p>Put simply, hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/MstUgmBiYCzvCQc97Wqo6m.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ocnDwUgiGhDLNd7iGfkKrA.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mjGy5TjetTL3q9FncEUm4Z.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/V7qJdbntZ2mja7HdoYniL.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/C4WicC7HLn9PvDaKsEZUhn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gg4MCLC7Cv4XKxyvtv9cTe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rLKosenVs57YV7cMrgmrdY.jpg" alt="" /></figure></figure><p>The hold-up time is much longer than 17ms and the power-ok signal is accurate.</p><h2 id="inrush-current-26">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum instantaneous input current drawn by an electrical device when it is first turned on. A large-enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current right as the PSU is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/feYNq4HJCXX98DhbhzNKBG.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6BMzqqqAM8B7mzb9zSbBfQ.png" alt="" /></figure></figure><p>The registered inrush currents are at normal levels, given the 1200W max power and the capacity of the bulk caps.</p><h2 id="10-110-load-tests-25">10-110% Load Tests</h2><p>These tests reveal the unit’s load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under tough operating conditions.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>Temps (In/Out)</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>8.069A</strong></td><td  ><strong>1.997A</strong></td><td  ><strong>1.980A</strong></td><td  ><strong>0.979A</strong></td><td  >119.989</td><td  rowspan="2">84.836%</td><td  rowspan="2">574</td><td  rowspan="2">11.4</td><td  >40.28°C</td><td  >0.983</td></tr><tr><td  >12.195V</td><td  >5.005V</td><td  >3.330V</td><td  >5.106V</td><td  >(*146) 141.436</td><td  >46.61°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>17.127A</strong></td><td  ><strong>3.000A</strong></td><td  ><strong>2.971A</strong></td><td  ><strong>1.178A</strong></td><td  >239.688</td><td  rowspan="2">89.464%</td><td  rowspan="2">577</td><td  rowspan="2">11.5</td><td  >40.89°C</td><td  >0.985</td></tr><tr><td  >12.191V</td><td  >5.001V</td><td  >3.329V</td><td  >5.093V</td><td  >(*268) 267.916</td><td  >47.67°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>26.518A</strong></td><td  ><strong>3.501A</strong></td><td  ><strong>3.454A</strong></td><td  ><strong>1.378A</strong></td><td  >359.196</td><td  rowspan="2">90.923%</td><td  rowspan="2">580</td><td  rowspan="2">11.6</td><td  >41.23°C</td><td  >0.990</td></tr><tr><td  >12.188V</td><td  >4.998V</td><td  >3.328V</td><td  >5.081V</td><td  >(*393) 395.053</td><td  >48.93°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>35.982A</strong></td><td  ><strong>4.003A</strong></td><td  ><strong>3.967A</strong></td><td  ><strong>1.579A</strong></td><td  >479.632</td><td  rowspan="2">91.352%</td><td  rowspan="2">584</td><td  rowspan="2">11.8</td><td  >41.86°C</td><td  >0.994</td></tr><tr><td  >12.185V</td><td  >4.995V</td><td  >3.326V</td><td  >5.068V</td><td  >(*525) 525.037</td><td  >50.25°C</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>45.090A</strong></td><td  ><strong>5.009A</strong></td><td  ><strong>4.961A</strong></td><td  ><strong>1.781A</strong></td><td  >599.789</td><td  rowspan="2">91.266%</td><td  rowspan="2">618</td><td  rowspan="2">13.0</td><td  >42.23°C</td><td  >0.996</td></tr><tr><td  >12.182V</td><td  >4.992V</td><td  >3.325V</td><td  >5.054V</td><td  >(*658) 657.191</td><td  >51.83°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>54.203A</strong></td><td  ><strong>6.014A</strong></td><td  ><strong>5.957A</strong></td><td  ><strong>1.984A</strong></td><td  >719.939</td><td  rowspan="2">90.921%</td><td  rowspan="2">687</td><td  rowspan="2">15.8</td><td  >42.71°C</td><td  >0.997</td></tr><tr><td  >12.179V</td><td  >4.989V</td><td  >3.323V</td><td  >5.041V</td><td  >(*792) 791.827</td><td  >53.18°C</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>7</strong></th><td  ><strong>63.285A</strong></td><td  ><strong>7.020A</strong></td><td  ><strong>6.953A</strong></td><td  ><strong>2.188A</strong></td><td  >839.657</td><td  rowspan="2">90.382%</td><td  rowspan="2">766</td><td  rowspan="2">18.9</td><td  >43.49°C</td><td  >0.997</td></tr><tr><td  >12.176V</td><td  >4.986V</td><td  >3.322V</td><td  >5.027V</td><td  >(*926) 929.006</td><td  >54.64°C</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>8</strong></th><td  ><strong>72.436A</strong></td><td  ><strong>8.030A</strong></td><td  ><strong>7.950A</strong></td><td  ><strong>2.394A</strong></td><td  >960.163</td><td  rowspan="2">89.669%</td><td  rowspan="2">851</td><td  rowspan="2">22.0</td><td  >43.76°C</td><td  >0.998</td></tr><tr><td  >12.173V</td><td  >4.982V</td><td  >3.320V</td><td  >5.013V</td><td  >(*1062) 1070.791</td><td  >55.78°C</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>9</strong></th><td  ><strong>81.923A</strong></td><td  ><strong>8.536A</strong></td><td  ><strong>8.434A</strong></td><td  ><strong>2.398A</strong></td><td  >1079.498</td><td  rowspan="2">88.924%</td><td  rowspan="2">953</td><td  rowspan="2">25.3</td><td  >44.94°C</td><td  >0.998</td></tr><tr><td  >12.170V</td><td  >4.979V</td><td  >3.319V</td><td  >5.005V</td><td  >(*1198) 1213.953</td><td  >57.51°C</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>10</strong></th><td  ><strong>91.264A</strong></td><td  ><strong>9.044A</strong></td><td  ><strong>8.952A</strong></td><td  ><strong>3.012A</strong></td><td  >1199.945</td><td  rowspan="2">88.028%</td><td  rowspan="2">1423</td><td  rowspan="2">37.9</td><td  >45.69°C</td><td  >0.998</td></tr><tr><td  >12.165V</td><td  >4.977V</td><td  >3.318V</td><td  >4.981V</td><td  >(*1340) 1363.136</td><td  >59.24°C</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>11</strong></th><td  ><strong>101.168A</strong></td><td  ><strong>9.048A</strong></td><td  ><strong>8.952A</strong></td><td  ><strong>3.017A</strong></td><td  >1320.008</td><td  rowspan="2">87.128%</td><td  rowspan="2">1799</td><td  rowspan="2">44.5</td><td  >46.74°C</td><td  >0.998</td></tr><tr><td  >12.161V</td><td  >4.974V</td><td  >3.317V</td><td  >4.974V</td><td  >(*1481) 1515.023</td><td  >60.84°C</td><td  >115.14V</td></tr><tr><th  rowspan="2"><strong>CL1</strong></th><td  ><strong>0.149A</strong></td><td  ><strong>15.001A</strong></td><td  ><strong>14.999A</strong></td><td  ><strong>0.000A</strong></td><td  >126.603</td><td  rowspan="2">82.327%</td><td  rowspan="2">769</td><td  rowspan="2">18.9</td><td  >42.80°C</td><td  >0.989</td></tr><tr><td  >12.198V</td><td  >4.997V</td><td  >3.322V</td><td  >5.111V</td><td  >(*157) 153.780</td><td  >51.98°C</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>CL2</strong></th><td  ><strong>100.020A</strong></td><td  ><strong>1.002A</strong></td><td  ><strong>0.997A</strong></td><td  ><strong>1.000A</strong></td><td  >1229.983</td><td  rowspan="2">88.265%</td><td  rowspan="2">1476</td><td  rowspan="2">39.3</td><td  >45.23°C</td><td  >0.998</td></tr><tr><td  >12.164V</td><td  >4.981V</td><td  >3.322V</td><td  >5.037V</td><td  >(*1372) 1393.505</td><td  >58.68°C</td><td  >115.14V</td></tr></tbody></table></div><p><em>*Readings acquired by the PSU’s OLED screen.</em></p><p>As you can see in the table above and more specifically in the DC/AC Watts column, the readings that the unit's OLED screen provide are highly accurate from test #2 to #6. In the rest of the tests the deviations are not that large. This is impressive, given that we compare the readings of a high-end (and expensive) power analyzer with the ones from a significantly lower-cost circuit provide. Calculating the AC Watts (aka power draw) is a much more complex process compared to the DC Watts calculation.</p><p>The fan profile is very relaxed, even under extra tough conditions like the ones that we apply during our tests. The PSU's output noise only exceeds 40 dB(A) during the overload test with 110% of its max-rated-capacity load at 47°C ambient.</p><p>Under high operating temperatures the PSU is not able to meet any of the three 80 PLUS Platinum requirements at 20%, 50% and full load scenarios. This probably won't be the case at the low temperatures (23°C +-5°C) typically applied during testing.</p><h2 id="20-80w-load-tests-26">20-80W Load Tests</h2><p>In the following tests, we measure the PSU's efficiency at loads significantly lower than 10 percent of its maximum capacity (the lowest load the 80 PLUS standard measures). This is important for representing when a PC is idle, with power-saving features turned on.</p><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed (RPM)</strong></th><th  ><strong>PSU Noise (dB[A])</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.184A</strong></td><td  ><strong>0.498A</strong></td><td  ><strong>0.477A</strong></td><td  ><strong>0.195A</strong></td><td  >19.521</td><td  rowspan="2">59.899%</td><td  rowspan="2">0</td><td  rowspan="2"><6.0</td><td  >0.862</td></tr><tr><td  >12.192V</td><td  >5.011V</td><td  >3.335V</td><td  >5.131V</td><td  >(*34) 32.590</td><td  >115.13V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>2.432A</strong></td><td  ><strong>0.999A</strong></td><td  ><strong>0.987A</strong></td><td  ><strong>0.390A</strong></td><td  >39.938</td><td  rowspan="2">72.958%</td><td  rowspan="2">570</td><td  rowspan="2">11.2</td><td  >0.937</td></tr><tr><td  >12.191V</td><td  >5.007V</td><td  >3.332V</td><td  >5.125V</td><td  >(*56) 54.741</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>3.611A</strong></td><td  ><strong>1.498A</strong></td><td  ><strong>1.469A</strong></td><td  ><strong>0.586A</strong></td><td  >59.410</td><td  rowspan="2">77.914%</td><td  rowspan="2">570</td><td  rowspan="2">11.2</td><td  >0.956</td></tr><tr><td  >12.190V</td><td  >5.006V</td><td  >3.331V</td><td  >5.119V</td><td  >(*76) 76.251</td><td  >115.12V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>4.854A</strong></td><td  ><strong>1.998A</strong></td><td  ><strong>1.979A</strong></td><td  ><strong>0.782A</strong></td><td  >79.786</td><td  rowspan="2">81.647%</td><td  rowspan="2">572</td><td  rowspan="2">11.3</td><td  >0.975</td></tr><tr><td  >12.195V</td><td  >5.005V</td><td  >3.331V</td><td  >5.113V</td><td  >(*99) 97.721</td><td  >115.12V</td></tr></tbody></table></div><p><em>*Readings acquired by the PSU’s OLED screen.</em></p><p>The OLED screen is spot on in test three, while in the rest of tests it's still close to the real readings.</p><p>We would like to see higher efficiency levels in these tests, especially with 20W load.</p><h2 id="efficiency-19">Efficiency</h2><p>Next, we plotted a chart showing the unit’s efficiency at low loads and loads from 10 to 110 percent of its maximum-rated capacity. The higher a PSU’s efficiency, the less energy is wasted, leading to a reduced carbon footprint and lower electricity bills.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/gT2t6JymqBArcjUvXmNFxN.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/c4HnC3B4jHmzqwn6TiGVDf.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TQWYqLaVgkrKYEPdPR5YYU.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eFthss3xYgLvo3tY6MMWcW.png" alt="" /></figure></figure><p>Compared to the original platform, the Asus offering is not as efficient. As expected, the additional circuits draw more power, so the efficiency difference with the Prime Platinum is notable, especially under light loads.</p><h2 id="5vsb-efficiency-26">5VSB Efficiency</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.514</td><td  rowspan="2">73.429%</td><td  >0.074</td></tr><tr><td  >5.138V</td><td  >0.700</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.284</td><td  rowspan="2">78.340%</td><td  >0.159</td></tr><tr><td  >5.135V</td><td  >1.639</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.821</td><td  rowspan="2">80.577%</td><td  >0.277</td></tr><tr><td  >5.128V</td><td  >3.501</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >5.119</td><td  rowspan="2">80.741%</td><td  >0.371</td></tr><tr><td  >5.118V</td><td  >6.340</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.663</td><td  rowspan="2">80.979%</td><td  >0.424</td></tr><tr><td  >5.107V</td><td  >9.463</td><td  >115.11V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >15.225</td><td  rowspan="2">79.963%</td><td  >0.493</td></tr><tr><td  >5.075V</td><td  >19.040</td><td  >115.11V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TCxHaaVpCJWrzCecTdbQNJ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/krKi27wpW26GppbHevKqSm.png" alt="" /></figure></figure><p>The 5VSB rail might not have very tight load regulation, but its efficiency levels are satisfactory.</p><h2 id="power-consumption-in-idle-and-standby-26">Power Consumption In Idle And Standby</h2><div ><table><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">12.178V</td><td  rowspan="2">5.018V</td><td  rowspan="2">3.340V</td><td  rowspan="2">5.143V</td><td  rowspan="2">13.805</td><td  >0.631</td></tr><tr><td  >115.1V</td></tr><tr><th  colspan="5" rowspan="2"><strong>Standby</strong></th><td  rowspan="2">0.057</td><td  >0.006</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/3afUZePA39VTxagUHDuT5A.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/2JhNdZyh7e74a46ZuPf6D7.png" alt="" /></figure></figure><h2 id="fan-rpm-delta-temperature-and-output-noise-26">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results here are obtained between an ambient temperature of 37°C (98.6°F) to 47°C (116.6°F).   </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/vGJ2hWjtGxLdjMa39UrhhY.png" mos="https://cdn.mos.cms.futurecdn.net/vGJ2hWjtGxLdjMa39UrhhY.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/vGJ2hWjtGxLdjMa39UrhhY.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/4crsJK5f54BZHa3gLf3d78.png" mos="https://cdn.mos.cms.futurecdn.net/4crsJK5f54BZHa3gLf3d78.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/4crsJK5f54BZHa3gLf3d78.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The fan's passive operation doesn't last long under high operating temperatures, but the fan profile is not aggressive.</p><p>The following results are obtained at 30°C (86°F) to 32°C (89.6°F) ambient temperature.   </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:924px;"><p class="vanilla-image-block" style="padding-top:69.16%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/QMyDE4mrUU3Pw5ycenYChB.jpg" mos="https://cdn.mos.cms.futurecdn.net/QMyDE4mrUU3Pw5ycenYChB.jpg" align="" fullscreen="1" width="924" height="639" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/QMyDE4mrUU3Pw5ycenYChB.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:924px;"><p class="vanilla-image-block" style="padding-top:69.16%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/ddZGsN9rbxyUB8WsDMMVei.jpg" mos="https://cdn.mos.cms.futurecdn.net/ddZGsN9rbxyUB8WsDMMVei.jpg" align="" fullscreen="1" width="924" height="639" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ddZGsN9rbxyUB8WsDMMVei.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The passive operation lasts up to 200W load, with the PSU's fan profile being highly relaxed after that load level. More than 1000W of power output is necessary to make the fan spin at higher than 800 RPM.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="protection-features-dc-power-sequencing-cross-load-tests-and-infrared-images-7">Protection Features, DC Power Sequencing, Cross-Load Tests and Infrared Images</h2><h2 id="protection-features-26">Protection Features</h2><div ><table><tbody><tr><td  colspan="2"><strong>Protection Features</strong></td></tr><tr><td  ><strong>OCP</strong></td><td  >12V: 142A (142%), 12.147V 5V: 35.6A (142.4%), 4.994V 3.3V: 30.7A (122.8%), 3.323V 5VSB: 3.8A (126.67%), 5.051V</td></tr><tr><td  ><strong>OPP</strong></td><td  >1719.7W (143.31%)</td></tr><tr><td  ><strong>OTP</strong></td><td  >✓ (178°C @ 12V Heat Sink)</td></tr><tr><td  ><strong>SCP</strong></td><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><td  ><strong>PWR_OK</strong></td><td  >Proper Operation</td></tr><tr><td  ><strong>NLO</strong></td><td  >✓</td></tr><tr><td  ><strong>SIP</strong></td><td  >Surge: MOV Inrush: NTC Thermistor & Bypass Relay</td></tr></tbody></table></div><p>The OPP is set higher than 130 percent, allowing the PSU to deliver almost 1720W before it shuts it down. Given that it is destined for enthusiast users who most likely will use it along with highly overclocked systems, this OPP setting makes sense.  It should cope well with power spikes coming from various components, especially GPUs and CPUs.</p><h2 id="dc-power-sequencing-25">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times. Unfortunately, Intel doesn't mention why it's so important to always keep the 3.3V rail's voltage lower than the levels of the other two outputs.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/GcPC7KEFNyd5HqBfsDoQ3j.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/X8NFMV4UZAVWNBC2UGdzn4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dSg4nRyiJenqjVorWnMTtU.jpg" alt="" /></figure></figure><p>There are no problems here since the 3.3V rail's voltage is always lower than the other two rails. We would like to see smoother waveforms, though, at +12V.</p><h2 id="cross-load-tests-25">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30°C (86°F) and 32°C (89.6°F).</p><h2 id="load-regulation-charts-26">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/rUBvKcu68dr5qQNDMHHSqF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xiDPfc2xfSuGqaoETpQTF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/poTurmsAAyssSPYK9VByA5.jpg" alt="" /></figure></figure><h2 id="efficiency-chart-21">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:924px;"><p class="vanilla-image-block" style="padding-top:69.16%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/KuydjkDBmg2QDNQiYvNaWE.jpg" mos="https://cdn.mos.cms.futurecdn.net/KuydjkDBmg2QDNQiYvNaWE.jpg" align="" fullscreen="1" width="924" height="639" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/KuydjkDBmg2QDNQiYvNaWE.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>Normally in very high-end power supplies we see a region where efficiency surpasses 92%, but as you can see this is not the case here.</p><h2 id="ripple-charts-21">Ripple Charts</h2><p>The lower the power supply's ripple the more stable the system will be and less stress will be also applied to its components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/JMYRbMQygMq9tbT7Td2sdT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DFeLsXvAd2DQLEogV3j7vd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Chriz4s3Ew6hUkDve3MfuM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zND3tkBzv2JSpHpsTEaaid.jpg" alt="" /></figure></figure><h2 id="infrared-images-26">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/wdKptPt24BXC6MTSDAWr56.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cnsz8pgqwzzQwKijKgnK9o.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/spWZG5ywKVjR8BQoRYtU8U.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RKsTXzEDJtXV24YtYZ7AgK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QNK2Fv9xwYJt8MKJmK63FG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QhvSFd6BWAUdVqaZSmnsX8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HxTUZ3AiJZdq3KwpkyDVSg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Cx3RPQWhowntbQB9GWBH7A.jpg" alt="" /></figure></figure><p>The temperatures are kept low in general here. However, there are some sensitive parts (capacitors) in the secondary side that get quite hot because they are installed close to circuits that generate increased thermal loads. For example, a polymer cap near the main transformer operates at 75 degrees C under the applied conditions. And although those caps are more tolerant to heat than electrolytic ones, such high temperatures are not ideal. A large electrolytic cap close to the modular board also gets fairly hot, at 61 degrees C. This is why the semi-passive operation doesn't last long even under normal ambient temperatures.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="transient-response-tests-ripple-measurements-and-emc-pre-compliance-testing-7">Transient Response Tests, Ripple Measurements and EMC Pre-Compliance Testing</h2><h2 id="advanced-transient-response-tests-26">Advanced Transient Response Tests</h2><p><strong>For details on our transient response testing, please<span class="apple-converted-space"> </span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html">click here</a>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><h2 id="advanced-transient-response-at-20-percent-200ms-2">Advanced Transient Response at 20 Percent – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.194V</td><td  >12.057V</td><td  >1.12%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.001V</td><td  >4.942V</td><td  >1.18%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.328V</td><td  >3.212V</td><td  >3.49%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.091V</td><td  >5.039V</td><td  >1.02%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-percent-20ms-2">Advanced Transient Response at 20 Percent – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.187V</td><td  >11.993V</td><td  >1.59%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.002V</td><td  >4.932V</td><td  >1.40%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.329V</td><td  >3.188V</td><td  >4.24%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.093V</td><td  >5.043V</td><td  >0.98%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-percent-1ms-2">Advanced Transient Response at 20 Percent – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.191V</td><td  >11.993V</td><td  >1.62%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.001V</td><td  >4.929V</td><td  >1.44%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.329V</td><td  >3.191V</td><td  >4.15%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.093V</td><td  >5.036V</td><td  >1.12%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-percent-200ms-2">Advanced Transient Response at 50 Percent – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.179V</td><td  >12.134V</td><td  >0.37%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.993V</td><td  >4.930V</td><td  >1.26%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.325V</td><td  >3.201V</td><td  >3.73%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.055V</td><td  >4.999V</td><td  >1.11%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-percent-20ms-2">Advanced Transient Response at 50 Percent – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.176V</td><td  >12.104V</td><td  >0.59%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.994V</td><td  >4.920V</td><td  >1.48%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.326V</td><td  >3.178V</td><td  >4.45%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.056V</td><td  >4.998V</td><td  >1.15%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-percent-1ms-2">Advanced Transient Response at 50 Percent – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.178V</td><td  >12.109V</td><td  >0.57%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >4.993V</td><td  >4.918V</td><td  >1.50%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.326V</td><td  >3.178V</td><td  >4.45%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.056V</td><td  >5.001V</td><td  >1.09%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/jw4xhqS5sJoKrKoDLGHwTb.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3CZH74aGXnGeTMWZbySjSo.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XNdGiXsEmNvCcVoP2PZSt7.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/T4QhNXDGmLCD2po55VZEKC.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8hA72eYzvtx7h5P7RPe4Y3.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XyjQxQDcadC35gvvjnZEom.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/trR9vzs2vdS5zKLiTYNff9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xmZvp4VgZKvXSYQfYBuuqf.png" alt="" /></figure></figure><p>During the 20 percent load test, the PSU operates in PWM mode. Hence the voltage drops once we apply the transient load are increased. This is not the case with 50 percent load where the unit operates in FM mode. The overall performance is decent, though definitely not the best. With the added caps that the ATX spec requires, the transient response is vastly improved, especially on the minor rails.</p><h2 id="turn-on-transient-tests-26">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes, since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/H9GdC6Fx95t3yJ4fEPxXMK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9wo4mjnDZpDi7bQgo6rPzG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bBvKUbtWTRUohBTnu543Ej.jpg" alt="" /></figure></figure><p>We notice some tiny spikes here, but they're nothing to worry about.</p><h2 id="ripple-measurements-26">Ripple Measurements</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' life span because it causes them to run hotter. A 10 degree C increase can cut into a cap's useful life by 50 percent. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><p>The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).</p><div ><table><thead><tr><th  ><strong>Test</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>10% Load</strong></th><td  >13.8 mV</td><td  >6.5 mV</td><td  >14.2 mV</td><td  >10.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>20% Load</strong></th><td  >13.6 mV</td><td  >7.0 mV</td><td  >14.7 mV</td><td  >10.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>30% Load</strong></th><td  >7.5 mV</td><td  >6.6 mV</td><td  >14.6 mV</td><td  >10.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>40% Load</strong></th><td  >7.7 mV</td><td  >7.3 mV</td><td  >15.9 mV</td><td  >11.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>50% Load</strong></th><td  >8.2 mV</td><td  >7.7 mV</td><td  >15.8 mV</td><td  >12.7 mV</td><td  >Pass</td></tr><tr><th  ><strong>60% Load</strong></th><td  >9.3 mV</td><td  >7.4 mV</td><td  >15.7 mV</td><td  >15.0 mV</td><td  >Pass</td></tr><tr><th  ><strong>70% Load</strong></th><td  >10.2 mV</td><td  >8.4 mV</td><td  >16.4 mV</td><td  >16.1 mV</td><td  >Pass</td></tr><tr><th  ><strong>80% Load</strong></th><td  >11.1 mV</td><td  >8.1 mV</td><td  >18.4 mV</td><td  >16.8 mV</td><td  >Pass</td></tr><tr><th  ><strong>90% Load</strong></th><td  >11.7 mV</td><td  >8.5 mV</td><td  >19.7 mV</td><td  >19.4 mV</td><td  >Pass</td></tr><tr><th  ><strong>100% Load</strong></th><td  >19.2 mV</td><td  >10.9 mV</td><td  >21.8 mV</td><td  >23.6 mV</td><td  >Pass</td></tr><tr><th  ><strong>110% Load</strong></th><td  >24.1 mV</td><td  >12.5 mV</td><td  >22.3 mV</td><td  >25.9 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 1</strong></th><td  >17.6 mV</td><td  >10.3 mV</td><td  >21.4 mV</td><td  >13.2 mV</td><td  >Pass</td></tr><tr><th  ><strong>Crossload 2</strong></th><td  >19.7 mV</td><td  >8.5 mV</td><td  >15.4 mV</td><td  >22.0 mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/o3RyZQZMteHXTHQaNjysr4.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qzfmaAdRrGWGhcsQ8zetzn.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9ezc3VeAupB4fY9k6dGWvA.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wJVBS4JEnAq5a6mUaiWw.png" alt="" /></figure></figure><p>The ripple suppression is good overall here. At 3.3V and 5VSB we measure over 20mV under full load. That's not the best performance, but far from mediocre.</p><h2 id="ripple-at-full-load-26">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/SJsg8iJ6NmutbzNGaap52S.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/h3SbcCpSLSTxeCrHniBFj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zk44cPQKtkqjj4GgmdRiMD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zQfLAYtUKrApBPKBJz4PFg.jpg" alt="" /></figure></figure><h2 id="ripple-at-110-percent-load-2">Ripple At 110-Percent Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KuKuYa4oDcs3KbMzCfiopF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rxbVVQB4Jhv2yhkBtP7Rri.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/dfTfrfdiRyCmXEz3qWRmoR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DeFkk8XTL8xPyc8CJiPx4M.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-1-26">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/uttzp7RSWUfbpNRAzZGSiJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HG2Sc9MdFvZeeW6pGj2Q5P.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MSuXGana774fZmk3uzGpg8.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kddTSNFxdQxYJgvDkkuEzT.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-2-21">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/sFchcNJXw6btKGTRHtXvHJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XVBPY3Fpiggiu9tgmHcfwK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mi5A3j5zNG2gDgDpsZsEtV.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/acHrWbgXmDGzxTMieyUmpA.jpg" alt="" /></figure></figure><h2 id="emc-pre-compliance-testing-average-amp-peak-emi-detector-results-10">EMC Pre-Compliance Testing – Average & Peak EMI Detector Results</h2><p>Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other close-by devices.</p><p>Electromagnetic Interference (EMI) stands for the electromagnetic energy a device emits, whichcan cause problems in other close-by devices if too high.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1819px;"><p class="vanilla-image-block" style="padding-top:41.01%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/9ntKAVpdXEpxRNetHFunUJ.jpg" mos="https://cdn.mos.cms.futurecdn.net/9ntKAVpdXEpxRNetHFunUJ.jpg" align="" fullscreen="1" width="1819" height="746" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/9ntKAVpdXEpxRNetHFunUJ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>We see some high EMI spikes here, with one exceeding the respective limit.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1819px;"><p class="vanilla-image-block" style="padding-top:41.01%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/jUV9LP2XMiNUi8gdr6UgTZ.jpg" mos="https://cdn.mos.cms.futurecdn.net/jUV9LP2XMiNUi8gdr6UgTZ.jpg" align="" fullscreen="1" width="1819" height="746" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/jUV9LP2XMiNUi8gdr6UgTZ.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>Things look better with the Peak EMI detector.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="performance-noise-and-efficiency-7">Performance, Noise and Efficiency</h2><h2 id="performance-rating-26">Performance Rating</h2><p><a href="http://media.bestofmicro.com/D/5/823433/gallery/Result-34-34_Relative_Performance_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.82%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/7TtN5CBPhBsic5UQRXo7J8.png" mos="https://cdn.mos.cms.futurecdn.net/7TtN5CBPhBsic5UQRXo7J8.png" align="" fullscreen="1" width="631" height="510" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/7TtN5CBPhBsic5UQRXo7J8.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The ROG Thor performs well here. But the competition is strong, achieving even higher overall performance scores.</p><h2 id="noise-rating-26">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range, with an ambient temperature between 30°C and 32°C (86°F to 89.6°F).</p><p><a href="http://media.bestofmicro.com/D/3/823431/gallery/Result-35-36_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/cttcCxFdKyw4X6iDfMQSER.png" mos="https://cdn.mos.cms.futurecdn.net/cttcCxFdKyw4X6iDfMQSER.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/cttcCxFdKyw4X6iDfMQSER.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>Here is where the ROG Thor leaves the competition behind. Although in the performance chart the differences are not notable, with the ROG Thor not managing to take the lead, in this chart it is quite the opposite. Asus' high-end offering is the quietest unit that money can buy in the 1200W category. Most competing products aren't even close.</p><h2 id="efficiency-rating-26">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30 degrees C.</p><p><a href="http://media.bestofmicro.com/D/6/823434/gallery/Result-36-37_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/i6EsuWAHL3SYyXMjTKBtu.png" mos="https://cdn.mos.cms.futurecdn.net/i6EsuWAHL3SYyXMjTKBtu.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/i6EsuWAHL3SYyXMjTKBtu.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>The extra circuits and parts (including the OLED screen) that the ROG Thor uses, require more power, and this inevitably affects the overall efficiency score.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="bottom-line-10">Bottom Line</h2><p>The overall performance of the ROG Thor might be not on par with the Seasonic SSR-1200PD, and its registered efficiency levels are definitely not among the best in this category. But the ROG Thor 1200W has a very strong weapon in its arsenal: dead silent operation. With a LAMBDA-A+ certification by Cybenetics, this unit is the quietest 1200W PSU that money can get you today. Making such a strong PSU so quiet is no easy feat. Asus had to ask for several modifications in the original Seasonic Prime Platinum platform, including larger heat sinks, which lower air flow demands.</p><p>Another interesting fact: The cooling fan uses double ball-bearings, which are noisier compared to fluid dynamic bearings. This means that with a FDB fan, the Thor unit would be even quieter! Nonetheless, DBB fans cope better under tough operating conditions, so they are preferred in PSUs destined for enthusiast users. With such a high over power protection triggering point, the Thor 1200W clearly shows that it is ready to feed heavily overclocked systems with power, like those used by professional overclockers to <a href="https://www.tomshardware.com/reviews/splave-overclocking-world_record,5958.html">break world records</a>.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1024px;"><p class="vanilla-image-block" style="padding-top:75.00%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/DW7FZ2fj3rj3YjGRi3oBnB.jpg" mos="https://cdn.mos.cms.futurecdn.net/DW7FZ2fj3rj3YjGRi3oBnB.jpg" align="" fullscreen="1" width="1024" height="768" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/DW7FZ2fj3rj3YjGRi3oBnB.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>All that said, there are several things here that I would like to see improved. For starters, higher efficiency especially under light loads, and 16AWG gauges on the ATX, EPS and PCIe cables. Given the huge amounts of power that this unit can deliver, the 18AWG gauges are not ideal. With thicker wires, the voltage drops will be lower, providing a small efficiency boost under high loads as well. Moreover, it would be great if the highly accurate OLED screen also provided output power information, aside from the power that the unit draws from the socket. This way users could be informed about the unit's real-time efficiency, which I find the most important information.</p><p>This collaboration between Asus and Seasonic resulted in an impressive outcome. The PSU market is very tough to break into successfully, and even huge and experienced brands like Asus need proper guidance in order to produce noteworthy products. I am confident that Asus will remain on this path and I expect much more, including a strong competitor to the <a href="https://www.tomshardware.com/reviews/corsair-ax1600i-psu,5406.html">Corsair AX1600i</a>, which still dominates my performance charts. Toppling the likes of  Corsair and EVGA at the ultra-high-capacity level will be no easy task. But Asus has the resources, and this initial offering proves the company is on the right track.</p><p><em>Want to comment on this story? <a href="https://forums.tomshardware.com/threads/asus-rog-thor-1200w-psu-review-asus-brings-a-screen-to-the-psu-party.3452979/">Let us know what you think in the Tom's Hardware Forums</a>.</em></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><p><strong><em>Disclaimer:</em></strong><em> Aris Mpitziopoulos is Tom's Hardware's PSU reviewer. He is also the Chief Testing Engineer of </em><a href="https://www.cybenetics.com/index.php"><em>Cybenetics</em></a><em>, and developed the </em><a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"><em>Cybenetics certification methodologies</em></a><em> apart from his role on Tom's Hardware. Neither Tom's Hardware nor its parent company, Future</em><span class="st"> PLC</span><em>, are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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                                                            <title><![CDATA[ Corsair AX1000 PSU Review: Titanium-Class Efficiency, at a Premium Price ]]></title>
                                                                                                                                                                                                <link>https://www.tomshardware.com/reviews/corsair-ax1000-80-plus-titanium,5966.html</link>
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                            <![CDATA[ Corsair and Seasonic teamed up to create the latest high-end AX power supply family. The AX1000 isn't a digital platform, but it still serves up exceptional performance. ]]>
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                                                                        <pubDate>Tue, 29 Jan 2019 02:00:00 +0000</pubDate>                                                                                                                                <updated>Thu, 26 Mar 2026 15:27:24 +0000</updated>
                                                                                                                                            <category><![CDATA[Power Supplies]]></category>
                                                    <category><![CDATA[PC Components]]></category>
                                                                                                                    <dc:creator><![CDATA[ Aris Mpitziopoulos ]]></dc:creator>                                                                                    <dc:source><![CDATA[ https://cdn.mos.cms.futurecdn.net/u82sXgmb6Gti6jidWQzWoQ.jpg ]]></dc:source>
                                                                <dc:description><![CDATA[ &lt;p&gt;Aris started his journey in the computer-land in the mid-80s through a home computer, Atari 1040 STF. He also had the chance to play with Intel&#039;s 8088 and 8086 PCs back in these days, but they didn&#039;t leave a good impression on him, so he continued for quite a long with home computers! He wrote his first article for a Greek site in 2000; it was about modifying a graphics card for faster speeds. He took a break for a while to complete his second degree and Ph.D., and he started writing articles again in 2009. He is currently the PSU editor at Tom&#039;s Hardware and TechPowerUp, where he also writes about networking stuff, and he has two YT channels with the name Hardware Busters in the title. When he is not writing code or articles, he is watching movies with his wife, his son, and his three cats, or he is out cycling.&lt;/p&gt; ]]></dc:description>
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                                                            <media:credit><![CDATA[Corsair]]></media:credit>
                                                                                                                                                                                                                                    <media:description><![CDATA[Corsair AX1000]]></media:description>                                                            <media:text><![CDATA[Corsair AX1000]]></media:text>
                                <media:title type="plain"><![CDATA[Corsair AX1000]]></media:title>
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                                <h2 id="features-and-specifications">Features and Specifications</h2><p>Corsair's AX1000, along with the 80 PLUS Platinum- and Titanium-rated Seasonic Prime models, are currently the best 1kW PSUs that money can buy. The recently refreshed AX family consists of high-performance 1000W and 850W models, which are ideal for enthusiasts with power-hungry hardware they want to overclock. Both PSUs are based on the amazing <a href="https://www.tomshardware.com/reviews/seasonic-prime-ultra-titanium-1000w-psu,5510.html">Seasonic Prime Titanium platform</a>. And although this is an analog design, it still sets an example for digital platforms to follow.</p><p>The AX1000 is not an inexpensive power supply; it mostly caters to builders who view their PSU purchase as an investment. Shouldn't we all think that way, though? After all, your PSU is the heart of your PC.</p><p>At least for the time being, there is no 1000W model in the AXi family. The AX1000 plays alone, followed by the lower-rated HX1000 and HX1000i in Corsair's portfolio.</p><p>On the other hand, the AX850 looks similar to the AX860i. It lacks a digital interface, but offers a better efficiency classification, partially justifying a higher price.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Lhe3zCgehYco85zfWf3Vdc.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/RkfFXQdLoYeGFbgmSR7gr7.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/BNDUdBpo3iW38PvNkdwCe5.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/D6C75BQQjtKt5oakWvbMyN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/oU2UmkQCGWZHNVX8ar9Qkd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uuTTG6mNQZy6cu9bFDW9SK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/F3V8V5geRtNHfpremZrCYW.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pWVyKaXtFFPyuqLx6VWSSG.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/H5Pnv8NvMHGDQXrKXNUbci.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hFHtoJ3beWizLvbukieXVE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SkiwWS3BbVQkhAKi9Cqs4K.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aTA4h4DY5CVF5HqngRDAGQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fu95ag4Na4URxxC4kucVek.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/8fU9BthumKXtJLwmpA2hcT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n2PuEVrNMMeyU9bSMAdCic.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/G9M6GKjEjijc9NrZyNDyiT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KTb9jRm8iLEDmfKfjpWHqa.jpg" alt="" /></figure></figure><h2 id="specifications-27">Specifications</h2><div ><table><tbody><tr><td  ><strong>Manufacturer (OEM)</strong></td><td  ><span class="spelle">Seasonic</span></td></tr><tr><td  ><strong>Max. DC Output</strong></td><td  ><span class="spelle">1000W</span></td></tr><tr><td  ><strong>Efficiency</strong></td><td  >80 PLUS Titanium, ETA-A+ (91-94%)</td></tr><tr><td  ><strong>Noise</strong></td><td  >LAMBDA-A (20-25 dB[A])</td></tr><tr><td  ><strong>Modular</strong></td><td  >✓ (Fully)</td></tr><tr><td  ><strong>Intel C6/C7 Power State Support</strong></td><td  >✓</td></tr><tr><td  ><strong>Operating Temperature (Continuous Full Load)</strong></td><td  >0 - 50°C</td></tr><tr><td  ><strong>Over-Voltage Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Under-Voltage Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Over-Power Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Over-Current (+12V) Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Over-Temperature Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Short Circuit Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Surge Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Inrush Current Protection</strong></td><td  >✓</td></tr><tr><td  ><strong>Fan Failure Protection</strong></td><td  >✗</td></tr><tr><td  ><strong>No Load Operation</strong></td><td  >✓</td></tr><tr><td  ><strong>Cooling</strong></td><td  >135mm fluid dynamic bearing fan (HA13525M12F-Z)</td></tr><tr><td  ><strong>Semi-Passive Operation</strong></td><td  >✓ (selectable)</td></tr><tr><td  ><strong>Dimensions (</strong><span class="spelle"><strong>W x H x D</strong></span><strong>)</strong></td><td  >152 x 87 x 172mm</td></tr><tr><td  ><strong>Weight</strong></td><td  >2.06 kg (4.54 <span class="spelle">lb</span>)</td></tr><tr><td  ><strong>Form Factor</strong></td><td  >ATX12V v2.4, EPS 2.92</td></tr><tr><td  ><strong>Warranty</strong></td><td  >10 years</td></tr></tbody></table></div><h2 id="power-specifications-27">Power Specifications</h2><div ><table><thead><tr><th  colspan="2"><strong>Rail</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5V</strong></th><th  ><strong>12V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>-12V</strong></th></tr></thead><tbody><tr><td  rowspan="2"><strong>Max. Power</strong></td><td  ><strong>Amps</strong></td><td  >25</td><td  >25</td><td  >83</td><td  >3</td><td  >0.3</td></tr><tr><td  ><strong>Watts</strong></td><td  colspan="2">125</td><td  >996</td><td  >15</td><td  >3.6</td></tr><tr><td  colspan="2"><strong>Total Max. Power (W)</strong></td><td  colspan="5">1000</td></tr></tbody></table></div><h2 id="cables-amp-connectors-19">Cables & Connectors</h2><div ><table><thead><tr><th  colspan="5"><strong>Modular Cables</strong></th></tr></thead><tbody><tr><td  ><strong>Description</strong></td><td  ><strong>Cable Count</strong></td><td  ><strong>Connector Count (Total)</strong></td><td  ><strong>Gauge</strong></td><td  ><strong>In Cable Capacitors</strong></td></tr><tr><td  ><strong>ATX connector 20+4 pin (610mm)</strong></td><td  >1</td><td  >1</td><td  >16-20AWG</td><td  >Yes</td></tr><tr><td  ><strong>4+4 pin EPS12V (650mm)</strong></td><td  >2</td><td  >2</td><td  >18AWG</td><td  >Yes</td></tr><tr><td  ><strong>6+2 pin PCIe (670mm+100mm) </strong></td><td  >4</td><td  >8</td><td  >16-18AWG</td><td  >Yes</td></tr><tr><td  ><strong>SATA (460mm+110mm+110mm+110mm)</strong></td><td  >4</td><td  >16</td><td  >18AWG</td><td  >No</td></tr><tr><td  ><strong>Four-pin Molex (450mm+100mm+100mm+100mm)</strong></td><td  >2</td><td  >8</td><td  >18AWG</td><td  >No</td></tr><tr><td  ><strong>FDD Adapter (110mm)</strong></td><td  >1</td><td  >1</td><td  >22AWG</td><td  >No</td></tr><tr><td  ><strong>AC Power Cord (1400mm)</strong></td><td  >1</td><td  >1</td><td  >14AWG</td><td  >-</td></tr></tbody></table></div><p>This is a fully modular PSU with fairly long cables. With that said, we'd expect the distance between peripheral connectors (especially the four-pin Molex ones) to be greater. Moreover, the EPS connectors should utilize thicker wires for lower voltage drops under high loads.</p><p>The number of SATA connectors is amazingly high, and it is nice to get so many four-pin Molex connectors as well. There's even a bundled Berg adapter for enthusiasts who still need a FDD connector.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vnkE8v8MTXTyQ3dLk2kzoN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3nNFskfCfvi3SfPnRSqAb.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cXDspq7jn2Jw7WcjFFLYyC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/TTqLXWoAnRo9BhA76b6z6W.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/A6Dog5sAxBbeMeYzsxNu9H.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rLJRUjyr3AJs3mwtCZByBf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ScrqNVNvs7mSrsiXif6sFk.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ksbKjczRzT5eG6EifNvNVo.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9dt89tddStpTLWmDCrDdnF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/kVT4bmwR9gg97UTtRwZ2oY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hKHhf3PQovcq4CzmmwCghD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Xai2AP957kjMTibDi2kVQc.jpg" alt="" /></figure></figure><h2 id="component-analysis-27">Component Analysis </h2><div ><table><thead><tr><th  colspan="2"><strong>General Data</strong></th></tr></thead><tbody><tr><th  >Manufacturer (OEM)</th><td  >Seasonic</td></tr><tr><th  >Platform Model</th><td  >Prime</td></tr><thead><tr><th  colspan="2"><strong>Primary Side</strong></th></tr></thead><tr><th  >Transient Filter</th><td  >6x Y caps, 3x X caps, 2x CM chokes, 1x MOV</td></tr><tr><th  >Inrush Protection</th><td  >NTC thermistor & relay</td></tr><tr><th  >Bridge Rectifier(s)</th><td  >2x Vishay <a href="http://www.vishay.com/docs/89393/lvb2560.pdf">LVB2560</a> (600V, 25A @ 105°C)</td></tr><tr><th  >APFC MOSFETs</th><td  >2x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP60R099C7-DS-v02_00-EN.pdf?fileId=5546d4624cb7f111014d481216877004">IPP60C7099</a> (650V, 14A @ 100°C, 0.099Ω)</td></tr><tr><th  >APFC Boost Diode</th><td  >1x <a href="http://www.st.com/content/ccc/resource/technical/document/datasheet/42/55/37/00/16/98/43/b3/DM00063471.pdf/files/DM00063471.pdf/jcr:content/translations/en.DM00063471.pdf">STPSC10H065D</a> (600V, 10A @ 135°C)</td></tr><tr><th  >Hold-up Cap(s)</th><td  >1x Hitachi (400V, 470uF, 2000h @ 105°C, <a href="http://www.hitachi-chem.co.jp/english/products/sds/files/e_ridohu.pdf">HU</a>) 1x Hitachi (400V, 820uF, 2000h @ 105°C, <a href="http://www.hitachi-chem.co.jp/english/products/sds/files/e_ridohu.pdf">HU</a>)</td></tr><tr><th  >Main Switchers</th><td  >4x Infineon <a href="https://www.infineon.com/dgdl/Infineon-IPP50R140CP-DS-v02_00-en.pdf?fileId=db3a30432313ff5e0123850733ed65ab">IPP50R140CP</a> (550V, 15A @ 100°C, 0.14Ω)</td></tr><tr><th  >Drivers For Main Switchers</th><td  >2x Silicon Labs <a href="http://www.mouser.com/ds/2/368/silicon%20laboratories_23x-550702.pdf">Si8230BD</a></td></tr><tr><th  >APFC Controller</th><td  >ON Semiconductor <a href="http://www.onsemi.com/pub_link/Collateral/NCP1654-D.PDF">NPC1654</a></td></tr><tr><th  >Switching Controller</th><td  >Champion <a href="http://www.championmicro.com.tw/datasheet/Analog%20Device/CM6901.pdf">CM6901</a></td></tr><tr><th  >Topology</th><td  >Primary side: Full-bridge & LLC resonant converter Secondary side: Synchronous rectification & DC-DC converters</td></tr><thead><tr><th  colspan="2"><strong>Secondary Side</strong></th></tr></thead><tr><th  >+12V MOSFETs</th><td  >6x Nexperia <a href="https://assets.nexperia.com/documents/data-sheet/PSMN1R0-40YLD.pdf">PSMN1R0-40YLD</a> (40V, 280A @ 25°C, 1.4 mΩ)</td></tr><tr><th  >5V & 3.3V</th><td  >DC-DC Converters: 6x Infineon <a href="http://www.infineon.com/dgdl/Infineon-BSC0906NS-DS-v02_05-en.pdf?fileId=db3a30433072cd8f0130986c816b2f8c">BSC0906NS</a> PWM Controller: <a href="http://www.anpec.com.tw/ashx_prod_file.ashx?prod_id=717&file_path=20131210180212790.pdf&original_name=APW7159A.pdf">APW7159</a></td></tr><tr><th  >Filtering Capacitors</th><td  >Electrolytics: Nippon Chemi-Con (105°C, W, <a href="http://www.chemi-con.com/upload/files/7/5/32389236352d6c56e8f45b.pdf">KZE</a>, <a href="http://www.mouser.com/catalog/specsheets/UCC_KYBDatasheet.pdf">KYB</a>), Nippon Chemi-Con (4000-10,000h @ 105°C, <a href="http://www.chemi-con.com/upload/files/7/5/32389236352d6c56e8f45b.pdf">KY</a>), Rubycon (3-6000h @ 105°C, <a href="http://www.rubycon.co.jp/en/catalog/e_pdfs/aluminum/e_yxg.pdf">YXG</a>), Nichicon (5000-6000h @ 105°C, <a href="http://www.nichicon.co.jp/english/products/pdf/e-hv.pdf">HV</a>) Polymers: FPCAP, Nippon Chemi-Con</td></tr><tr><th  >Supervisor IC</th><td  >Weltrend <a href="https://www.tomshardware.com/reviews/power-supplies-101,4193-22.html">WT7527V</a> (OVP, UVP, OCP, SCP, PG ) & <a href="https://www.diodes.com/assets/Datasheets/AS393_A.pdf">AS393M</a></td></tr><tr><th  >Fan Model</th><td  >Hong Hua HA13525M12F-Z (135mm, 12V, 0.36A, 1800 RPM, fluid dynamic bearing)</td></tr><thead><tr><th  colspan="2"><strong>5VSB Circuit</strong></th></tr></thead><tr><th  >Buck Converter</th><td  >Leadtrend <a href="http://www.leadtrend.com.tw/archive/doc/product/sheets/LD7750R-DS-00.pdf">LD7750R</a></td></tr><tr><th  >Rectifiers</th><td  >STMicroelectronics <a href="http://www.st.com/content/ccc/resource/technical/document/datasheet/1b/53/fa/4b/4f/25/45/69/CD00297329.pdf/files/CD00297329.pdf/jcr:content/translations/en.CD00297329.pdf">STU6N65K3</a> (650V, 3A @ 100°C, 1.3Ω) Infineon <a href="http://www.infineon.com/dgdl/Infineon-BSC0906NS-DS-v02_05-en.pdf?fileId=db3a30433072cd8f0130986c816b2f8c">BSC0906NS</a> (30V, 40A @ 100°C, 4.5 mΩ)</td></tr><thead><tr><th  colspan="2"><strong>-12V Circuit</strong></th></tr></thead><tr><th  >Buck Converter</th><td  >Lite-On <a href="http://www.liteon-semi.com/upfiles/tecfile01411109741.pdf">LSP5523</a> (3A max output current )</td></tr></tbody></table></div><p>The AX1000's platform is the same one used in Seasonic's top-notch Seasonic Prime Titanium (and Platinum) models. It is built using high-quality components from companies like Vishay, Infineon, and Nexperia. In addition to its Japanese electrolytic caps, the secondary side also features a number of polymer capacitors from FPCAP and Chemi-Con.</p><p>A fluid dynamic bearing-based cooling fan serves up a longer useful life than lower-cost alternatives. And even though the -12V rail goes unutilized these days, we're still glad to see a proper rectifier used for it instead of a plain diode.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Ric6xaVzBtV6wS78rjTJC6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KzY9A4KAR6vtTcxiA7eXGC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JVDa4TvcQWHyhh42L6jfPn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/j6oZsbKtpRsGSSGGdMQyKS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CQRhMiKDZMaCqKbhPN86Xf.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rb4dF5yM7GtbYqvWDzKPnK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ffzSvjv4G8hoxkSYrBCPim.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fhcALKpLqHWaczwmKat8mF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/42hrTDfQgz2m6iqq463wQX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WEzBor8nAZjuu6GsdUAcFD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ydZiKaGFpwvZYpTojC7Rph.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pxbgZneU2C63a9TZJJzzmj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zm26vXvLyXErvefSBWmmFg.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JuhMqPQD8JwmiaQi38NjCU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/wwvFGo7bK2sjn9jZNHjijM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/MD6Fj2ej42bnYHhUAr6q86.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/5L8pQotggX6uPpMKJKawCC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/qbJVLxNtarWXBhmxbfn6nA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WcqFvwNGYACafaTTZtNRfC.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6ZDm3yMRRnaEdYrYHDTv6n.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/YCVD4Ap2oAWhKQugCkw7x.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/s5wGAt43zWa6vcvXCbKFGP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/LGznnWwm9Bfh5GQXKpvGZS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VC2ZPoJnQjoionvgnTqWGK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Rswsm4Du3erbnr3L24MsBo.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/DUn8hvNfQP3gSDY3jF4xFj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fLwzdtuyUiffvo7Ew2jybh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pWsvhAGcjFZYbR83BUbneJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Nd7ieTKQUtbBWomKtz6w4a.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4M3C3ztgpqe6gNK643DSGh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/giFXoPNZcepNynsitRNfQn.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PPrKQfnsARVsJPanv2aLB6.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QPcHDRmbGM8MAfEZjpjHzi.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eB3dsR3sWcFvRE86JuosNj.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UcYk48HCMAN8kioeX2Py6W.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/SHex9u2wx8DJzqjCzjZrGK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/mVqcGXFtkhYAaizW9wGPo4.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/4TjA4juZEb92F5mLR8k9Ya.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/pwCHyfSAWyVpq63dLySZCM.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/NsZckDeDnhAqWpWCW9hAfN.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7UBg3C2DCdo2B5YFfh6dWm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6meZwV92UPVK64VXV2MzCM.jpg" alt="" /></figure></figure><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><iframe src="https://content.jwplatform.com/players/gxzPdril.html" id="gxzPdril" title="The Ultimate RGB Battlestation" width="1920" height="1080" frameborder="0" scrolling="auto" allowfullscreen></iframe><h2 id="load-regulation-hold-up-time-inrush-current-efficiency-and-noise-9">Load Regulation, Hold-Up Time, Inrush Current, Efficiency and Noise</h2><p><strong>To learn more about our PSU tests and methodology, please check out </strong><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supply Units.</strong></a><strong> </strong></p>        <div class="featured_product_block featured_block_hero" data-id="83dab911-4d7b-4fdd-bd76-dd5773886dcd">            <a href="http://www.amazon.com/gp/product/B07M9TP7VM?tag=hawk-future-20&ascsubtag=tomshardware&ascsubtag=%site%%transactionId%-gclid-%gclid%-Fallback" data-model-name="AX1000" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/Lhe3zCgehYco85zfWf3Vdc.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Corsair AX1000</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="795b1a85-4475-485a-ba1b-85d1189e7d16">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https://www.newegg.com/Product/Product.aspx?Item=N82E16817371112" data-model-name="Antec HCG1000 Extreme" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/r7EBzJq3Yr4A3GkW9zwAo4.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">Antec HCG1000 Extreme</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div>        <div class="featured_product_block featured_block_hero" data-id="c2702e4c-b868-4feb-996d-e935dcd078ef">            <a href="http://redirect.viglink.com?key=6c0b046b3e0ec746fbbe9b03fac3f09b&u=https://www.newegg.com/Product/Product.aspx?Item=9SIA68V6SK4462" data-model-name="be quiet! E11-1000" data-model-brand="" ><div class='product-image-widthsetter'><p class='vanilla-image-block' data-bordeaux-image-check style='padding-top:75.00%';><img style="width: 100%" class="featured_image" src="https://cdn.mos.cms.futurecdn.net/Lsz2nxFVWvceTRV4PLTDoK.jpg" alt=""></p></div></a>            <div class="featured_product_details_wrapper">                <div class="featured_product_title_wrapper">                                                                                <div class="featured__title">be quiet! E11-1000</div>                                    </div>                <div class="subtitle__description">                                                            <p> </p>                </div>                            </div>        </div><h2 id="primary-rails-and-5vsb-load-regulation-27">Primary Rails And 5VSB Load Regulation</h2><p>The following charts show the main rails' voltage values recorded between a range of 40W up to the PSU's maximum specified load, along with the deviation (in percent). Tight regulation is an important consideration every time we review a power supply because it facilitates constant voltage levels despite varying loads.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QJX4nThLyeyrmMfpEiiSA3.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZVib3eU54SeQGnQfnYL9db.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/K6JpiEr9Z4UW9ZdW26ibj6.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vRE8G3cS9bnfMR63cW73BW.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VjbfMtu53vGYqHpqzqmeKd.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/xS4VXBMRr66e27jnwdm87H.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/hTq5w6rwcmTJjMWzPZE8dk.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/PcSiDmuHSK4oFTJCnfoPf3.png" alt="" /></figure></figure><h2 id="hold-up-time-27">Hold-Up Time</h2><p>Put simply, hold-up time is the amount of time that the system can continue to run without shutting down or rebooting during a power interruption.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Mfo7wti2ACEgJEodL6dXdU.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/gnDmLnEXwUKFXL2W9GRLJY.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/6Pxg3iv5wPA4bSeqaE7UtD.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/D5ueZZ3Dz4PCpr63iqRqa7.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/bW3deLPRHkr7vrF9WJhkiV.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/eniu9WZYdCPfpawV3YpBhh.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JJgy6ATQcKpgtYLWTCShgg.jpg" alt="" /></figure></figure><p>Corsair's hold-up time is long enough to satisfy the ATX specification's requirements and its power-good signal is accurate. We couldn't ask for more from the AX1000.</p><h2 id="inrush-current-27">Inrush Current</h2><p>Inrush current, or switch-on surge, refers to the maximum, instantaneous input current drawn by an electrical device when it is first turned on. A large enough inrush current can cause circuit breakers and fuses to trip. It can also damage switches, relays, and bridge rectifiers. As a result, the lower the inrush current of a PSU right as it is turned on, the better.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/CUtDjMHBLBJGhRCDo82uVY.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/QPgKYBo6GE7YXTHmjP2oyC.png" alt="" /></figure></figure><p>According to our measurements, the AX1000's inrush current is kept under control with both voltage inputs.</p><h2 id="10-110-load-tests-26">10-110% Load Tests</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed</strong></th><th  ><strong>PSU Noise</strong></th><th  ><strong>Temps (In/Out)</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>6.431A</strong></td><td  ><strong>1.977A</strong></td><td  ><strong>1.960A</strong></td><td  ><strong>0.992A</strong></td><td  >99.851</td><td  rowspan="2">92.324%</td><td  rowspan="2">0 RPM</td><td  rowspan="2"><6.0 dB(A)</td><td  >42.98°C</td><td  >0.963</td></tr><tr><td  >12.171V</td><td  >5.055V</td><td  >3.359V</td><td  >5.042V</td><td  >108.153</td><td  >40.31°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>13.863A</strong></td><td  ><strong>2.968A</strong></td><td  ><strong>2.946A</strong></td><td  ><strong>1.191A</strong></td><td  >199.572</td><td  rowspan="2">93.965%</td><td  rowspan="2">0 RPM</td><td  rowspan="2"><6.0 dB(A)</td><td  >44.83°C</td><td  >0.981</td></tr><tr><td  >12.168V</td><td  >5.052V</td><td  >3.358V</td><td  >5.038V</td><td  >212.389</td><td  >41.30°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>21.617A</strong></td><td  ><strong>3.462A</strong></td><td  ><strong>3.423A</strong></td><td  ><strong>1.391A</strong></td><td  >298.969</td><td  rowspan="2">94.309%</td><td  rowspan="2">0 RPM</td><td  rowspan="2"><6.0 dB(A)</td><td  >41.58°C</td><td  >0.990</td></tr><tr><td  >12.166V</td><td  >5.050V</td><td  >3.357V</td><td  >5.034V</td><td  >317.010</td><td  >45.87°C</td><td  >115.05V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>29.459A</strong></td><td  ><strong>3.960A</strong></td><td  ><strong>3.931A</strong></td><td  ><strong>1.591A</strong></td><td  >399.486</td><td  rowspan="2">94.092%</td><td  rowspan="2">733 RPM</td><td  rowspan="2">20.2 dB(A)</td><td  >41.76°C</td><td  >0.993</td></tr><tr><td  >12.163V</td><td  >5.047V</td><td  >3.355V</td><td  >5.029V</td><td  >424.570</td><td  >46.67°C</td><td  >115.05V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>36.928A</strong></td><td  ><strong>4.955A</strong></td><td  ><strong>4.917A</strong></td><td  ><strong>1.792A</strong></td><td  >499.576</td><td  rowspan="2">93.694%</td><td  rowspan="2">782 RPM</td><td  rowspan="2">22.4 dB(A)</td><td  >41.97°C</td><td  >0.993</td></tr><tr><td  >12.161V</td><td  >5.045V</td><td  >3.354V</td><td  >5.025V</td><td  >533.198</td><td  >47.60°C</td><td  >115.05V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>44.407A</strong></td><td  ><strong>5.947A</strong></td><td  ><strong>5.904A</strong></td><td  ><strong>1.992A</strong></td><td  >599.720</td><td  rowspan="2">93.133%</td><td  rowspan="2">848 RPM</td><td  rowspan="2">25.7 dB(A)</td><td  >42.62°C</td><td  >0.995</td></tr><tr><td  >12.159V</td><td  >5.042V</td><td  >3.352V</td><td  >5.020V</td><td  >643.938</td><td  >48.48°C</td><td  >115.07V</td></tr><tr><th  rowspan="2"><strong>7</strong></th><td  ><strong>51.854A</strong></td><td  ><strong>6.945A</strong></td><td  ><strong>6.892A</strong></td><td  ><strong>2.193A</strong></td><td  >699.488</td><td  rowspan="2">92.563%</td><td  rowspan="2">923 RPM</td><td  rowspan="2">27.0 dB(A)</td><td  >43.17°C</td><td  >0.996</td></tr><tr><td  >12.157V</td><td  >5.040V</td><td  >3.351V</td><td  >5.016V</td><td  >755.687</td><td  >50.19°C</td><td  >115.07V</td></tr><tr><th  rowspan="2"><strong>8</strong></th><td  ><strong>59.374A</strong></td><td  ><strong>7.940A</strong></td><td  ><strong>7.881A</strong></td><td  ><strong>2.394A</strong></td><td  >800.026</td><td  rowspan="2">91.894%</td><td  rowspan="2">993 RPM</td><td  rowspan="2">29.6 dB(A)</td><td  >43.64°C</td><td  >0.997</td></tr><tr><td  >12.154V</td><td  >5.037V</td><td  >3.350V</td><td  >5.012V</td><td  >870.601</td><td  >52.43°C</td><td  >115.07V</td></tr><tr><th  rowspan="2"><strong>9</strong></th><td  ><strong>67.217A</strong></td><td  ><strong>8.442A</strong></td><td  ><strong>8.359A</strong></td><td  ><strong>2.395A</strong></td><td  >899.322</td><td  rowspan="2">91.255%</td><td  rowspan="2">1072 RPM</td><td  rowspan="2">32.1 dB(A)</td><td  >44.55°C</td><td  >0.997</td></tr><tr><td  >12.152V</td><td  >5.035V</td><td  >3.349V</td><td  >5.011V</td><td  >985.505</td><td  >54.82°C</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>10</strong></th><td  ><strong>74.903A</strong></td><td  ><strong>8.943A</strong></td><td  ><strong>8.872A</strong></td><td  ><strong>3.002A</strong></td><td  >999.772</td><td  rowspan="2">90.413%</td><td  rowspan="2">1422 RPM</td><td  rowspan="2">40.5 dB(A)</td><td  >45.22°C</td><td  >0.998</td></tr><tr><td  >12.150V</td><td  >5.032V</td><td  >3.347V</td><td  >4.998V</td><td  >1105.782</td><td  >56.46°C</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>11</strong></th><td  ><strong>83.152A</strong></td><td  ><strong>8.944A</strong></td><td  ><strong>8.873A</strong></td><td  ><strong>3.003A</strong></td><td  >1099.823</td><td  rowspan="2">89.670%</td><td  rowspan="2">1815 RPM</td><td  rowspan="2">47.8 dB(A)</td><td  >46.55°C</td><td  >0.998</td></tr><tr><td  >12.148V</td><td  >5.030V</td><td  >3.347V</td><td  >4.997V</td><td  >1226.522</td><td  >58.64°C</td><td  >115.10V</td></tr><tr><th  rowspan="2"><strong>CL1</strong></th><td  ><strong>0.138A</strong></td><td  ><strong>15.001A</strong></td><td  ><strong>14.999A</strong></td><td  ><strong>0.000A</strong></td><td  >127.665</td><td  rowspan="2">88.571%</td><td  rowspan="2">938 RPM</td><td  rowspan="2">27.7 dB(A)</td><td  >41.93°C</td><td  >0.974</td></tr><tr><td  >12.167V</td><td  >5.049V</td><td  >3.350V</td><td  >5.076V</td><td  >144.138</td><td  >47.41°C</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>CL2</strong></th><td  ><strong>83.013A</strong></td><td  ><strong>1.000A</strong></td><td  ><strong>0.999A</strong></td><td  ><strong>1.000A</strong></td><td  >1021.927</td><td  rowspan="2">90.682%</td><td  rowspan="2">1376 RPM</td><td  rowspan="2">40.3 dB(A)</td><td  >45.89°C</td><td  >0.998</td></tr><tr><td  >12.149V</td><td  >5.033V</td><td  >3.351V</td><td  >5.022V</td><td  >1126.939</td><td  >56.05°C</td><td  >115.09V</td></tr></tbody></table></div><h2 id="20-80w-load-tests-27">20-80W Load Tests</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>Fan Speed</strong></th><th  ><strong>PSU Noise</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>1.171A</strong></td><td  ><strong>0.491A</strong></td><td  ><strong>0.474A</strong></td><td  ><strong>0.198A</strong></td><td  >19.323</td><td  rowspan="2">76.572%</td><td  rowspan="2">0 RPM</td><td  rowspan="2"><6.0 dB(A)</td><td  >0.784</td></tr><tr><td  >12.161V</td><td  >5.063V</td><td  >3.364V</td><td  >5.061V</td><td  >25.235</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>2.421A</strong></td><td  ><strong>0.987A</strong></td><td  ><strong>0.978A</strong></td><td  ><strong>0.396A</strong></td><td  >39.722</td><td  rowspan="2">86.070%</td><td  rowspan="2">0 RPM</td><td  rowspan="2"><6.0 dB(A)</td><td  >0.895</td></tr><tr><td  >12.161V</td><td  >5.058V</td><td  >3.361V</td><td  >5.054V</td><td  >46.151</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>3.604A</strong></td><td  ><strong>1.482A</strong></td><td  ><strong>1.455A</strong></td><td  ><strong>0.594A</strong></td><td  >59.208</td><td  rowspan="2">89.345%</td><td  rowspan="2">0 RPM</td><td  rowspan="2"><6.0 dB(A)</td><td  >0.936</td></tr><tr><td  >12.160V</td><td  >5.057V</td><td  >3.360V</td><td  >5.050V</td><td  >66.269</td><td  >115.09V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>4.857A</strong></td><td  ><strong>1.976A</strong></td><td  ><strong>1.961A</strong></td><td  ><strong>0.793A</strong></td><td  >79.645</td><td  rowspan="2">90.898%</td><td  rowspan="2">0 RPM</td><td  rowspan="2"><6.0 dB(A)</td><td  >0.953</td></tr><tr><td  >12.161V</td><td  >5.056V</td><td  >3.359V</td><td  >5.047V</td><td  >87.620</td><td  >115.09V</td></tr></tbody></table></div><h2 id="efficiency-charts">Efficiency Charts</h2><p>Next, we plotted a chart showing the AX1000’s efficiency at low loads, and loads from 10 to 110 percent of its maximum-rated capacity.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UwYLm4aqyWengPqmMxGedR.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/h7HbBFLBtKfE6H9w2bifLh.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9Jiqn5ZxZqATJFUWKMHCdZ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fa9uRDWoDwScuiHKxivQJe.png" alt="" /></figure></figure><p>As you can see, the AX1000 is highly efficient under normal and light loads. We're not surprised, of course: this is an 80 PLUS Titanium- and ETA-A+-certified PSU.</p><h2 id="5vsb-efficiency-27">5VSB Efficiency</h2><div ><table><thead><tr><th  ><strong>Test #</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>DC/AC (Watts)</strong></th><th  ><strong>Efficiency</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>1</strong></th><td  ><strong>0.100A</strong></td><td  >0.496</td><td  rowspan="2">73.700%</td><td  >0.000</td></tr><tr><td  >4.961V</td><td  >0.673</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>2</strong></th><td  ><strong>0.250A</strong></td><td  >1.239</td><td  rowspan="2">77.534%</td><td  >0.143</td></tr><tr><td  >4.957V</td><td  >1.598</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>3</strong></th><td  ><strong>0.550A</strong></td><td  >2.724</td><td  rowspan="2">79.812%</td><td  >0.256</td></tr><tr><td  >4.952V</td><td  >3.413</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>4</strong></th><td  ><strong>1.000A</strong></td><td  >4.944</td><td  rowspan="2">79.858%</td><td  >0.354</td></tr><tr><td  >4.943V</td><td  >6.191</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>5</strong></th><td  ><strong>1.500A</strong></td><td  >7.404</td><td  rowspan="2">80.768%</td><td  >0.409</td></tr><tr><td  >4.935V</td><td  >9.167</td><td  >115.08V</td></tr><tr><th  rowspan="2"><strong>6</strong></th><td  ><strong>3.000A</strong></td><td  >14.725</td><td  rowspan="2">79.789%</td><td  >0.484</td></tr><tr><td  >4.908V</td><td  >18.455</td><td  >115.08V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/YGmboEaPqf2Ap8WgG3kTAP.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/UQY9jraYjJMHcryUEbmWye.png" alt="" /></figure></figure><h2 id="power-consumption-in-idle-and-standby-27">Power Consumption In Idle And Standby</h2><div ><table><thead><tr><th  ><strong>Mode</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Watts</strong></th><th  ><strong>PF/AC Volts</strong></th></tr></thead><tbody><tr><th  rowspan="2"><strong>Idle</strong></th><td  rowspan="2">12.200V</td><td  rowspan="2">5.067V</td><td  rowspan="2">3.366V</td><td  rowspan="2">5.068V</td><td  rowspan="2">10.845</td><td  >0.553</td></tr><tr><td  >115.1V</td></tr><tr><th  colspan="5" rowspan="2"><strong>Standby</strong></th><td  rowspan="2">0.047</td><td  >0.005</td></tr><tr><td  >115.1V</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Dgk25V8ERk3K9NZcch8Fja.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/CxFYLcaYujBCgnE3m3MEFG.png" alt="" /></figure></figure><h2 id="fan-rpm-delta-temperature-and-output-noise-27">Fan RPM, Delta Temperature, And Output Noise</h2><p>All results are obtained between an ambient temperature of 37°C (98.6°F) to 46°C (114.8°F).   </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/K5aY6XTuDhzCvGMTtt9MeU.png" mos="https://cdn.mos.cms.futurecdn.net/K5aY6XTuDhzCvGMTtt9MeU.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/K5aY6XTuDhzCvGMTtt9MeU.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The fan does its job well, given the temperature differences that our equipment recorded.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:81.14%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/tWAwJ2XNbz7yNepkqPNhp7.png" mos="https://cdn.mos.cms.futurecdn.net/tWAwJ2XNbz7yNepkqPNhp7.png" align="" fullscreen="1" width="631" height="512" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/tWAwJ2XNbz7yNepkqPNhp7.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>Under loads as high as 300W, the fan doesn't spin. Between 300W and 900W, the fan's rotational speed stays fairly low, limiting noise output as well. It's only under very high loads (and elevated temperatures) that the acoustics become bothersome.</p><p>The following results were obtained in an ambient environment kept between 30°C (86°F) and 32°C (89.6°F).   </p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:729px;"><p class="vanilla-image-block" style="padding-top:69.14%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/as7crbx36rBBco4LXjFd2B.jpg" mos="https://cdn.mos.cms.futurecdn.net/as7crbx36rBBco4LXjFd2B.jpg" align="" fullscreen="1" width="729" height="504" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/as7crbx36rBBco4LXjFd2B.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:729px;"><p class="vanilla-image-block" style="padding-top:69.14%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/K5epzha5Exv7Shy9mQ8vEF.jpg" mos="https://cdn.mos.cms.futurecdn.net/K5epzha5Exv7Shy9mQ8vEF.jpg" align="" fullscreen="1" width="729" height="504" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/K5epzha5Exv7Shy9mQ8vEF.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>Even under normal operating temperatures, the passive mode doesn't last long if load on the minor rails increases too much. Apparently, the DC-DC converters responsible for handling the 5V and 3.3V rails need active cooling once they're pushed hard.</p><p>Overall, though, Corsair's fan profile is conservative, even under demanding loads.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="protection-features-dc-power-sequencing-cross-load-tests-and-infrared-images-8">Protection Features, DC Power Sequencing, Cross-Load Tests and Infrared Images</h2><h2 id="protection-features-27">Protection Features</h2><div ><table><tbody><tr><td  colspan="2"><strong>Protection Features</strong></td></tr><tr><td  ><strong>OCP</strong></td><td  >12V: 117A (140.96%), 12.137V 5V: 40.7A (162.8%), 5.053V 3.3V: 38.4A (153.6%), 3.35V 5VSB: 4.3A (143.33%), 4.861V</td></tr><tr><td  ><strong>OPP</strong></td><td  >1419.7W (141.97%)</td></tr><tr><td  ><strong>OTP</strong></td><td  >✓ (180°C @ 12V heat sink)</td></tr><tr><td  ><strong>SCP</strong></td><td  >12V: ✓ 5V: ✓ 3.3V: ✓ 5VSB: ✓ -12V: ✓</td></tr><tr><td  ><strong>PWR_OK</strong></td><td  >Operates properly</td></tr><tr><td  ><strong>NLO</strong></td><td  >✓</td></tr><tr><td  ><strong>SIP</strong></td><td  >Surge: MOV Inrush: NTC thermistor & bypass relay</td></tr></tbody></table></div><h2 id="dc-power-sequencing-26">DC Power Sequencing</h2><p>According to Intel’s most recent Power Supply Design Guide (revision 1.4), the +12V and 5V outputs must be equal to or greater than the 3.3V rail at all times.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/5YR8RrHoiSRmbJRMNp6WTH.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EqtgCrY8PwP4Vt5RTiRaDo.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/n45c8uKNuVHdUXPpyBupT8.jpg" alt="" /></figure></figure><p>In all three tests that we ran, the 3.3V rail's voltage was indeed lower than the other two rails.</p><h2 id="cross-load-tests-26">Cross Load Tests</h2><p>To generate the following charts, we set our loaders to auto mode through custom-made software before trying more than 25,000 possible load combinations with the +12V, 5V, and 3.3V rails. The deviations in each of the charts below are calculated by taking the nominal values of the rails (12V, 5V, and 3.3V) as point zero. The ambient temperature during testing was between 30°C (86°F) and 32°C (89.6°F).</p><h2 id="load-regulation-charts-27">Load Regulation Charts</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Tb97bEeH6zqRgYAuSztAUd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/m6znuJFLGULqySiTZVqZAm.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/khVTbQEwjimXqFyF26f3Qe.jpg" alt="" /></figure></figure><p>Load regulation remains tight on every rail.</p><h2 id="efficiency-chart-22">Efficiency Chart</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:729px;"><p class="vanilla-image-block" style="padding-top:69.14%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/b5gjJMUsfqTyhAuTg6QRcd.jpg" mos="https://cdn.mos.cms.futurecdn.net/b5gjJMUsfqTyhAuTg6QRcd.jpg" align="" fullscreen="1" width="729" height="504" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/b5gjJMUsfqTyhAuTg6QRcd.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>There is a small region where efficiency exceeds 94%. For a much larger area, the AX1000 falls between 92-94% efficiency. Taken as a whole, our efficiency readings look good.</p><h2 id="ripple-charts-22">Ripple Charts</h2><p>Ripple represents the AC fluctuations (periodic) and noise (random) found in the PSU's DC rails. This phenomenon significantly decreases the capacitors' life span because it causes them to run hotter. A 10°C increase can cut into a cap's useful life by 50 percent. Ripple also plays an important role in overall system stability, especially when overclocking is involved.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/TQVurq2xcySiNP4bn8KfqQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ZWT8gHHWd9DyC6kFBPYWsK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/EEzXfCfHzVnoqHpZ4SRxue.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Kd55fbD4wJHBAgex65uDm5.jpg" alt="" /></figure></figure><p>The ripple suppression is excellent on all four rails.</p><h2 id="infrared-images-27">Infrared Images</h2><p>We apply a half-load for 10 minutes with the PSU's top cover and cooling fan removed before taking photos with a modified FLIR E4 camera able to deliver an IR resolution of 320x240 (76,800 pixels).</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/KE6HCwRupc2LJhEnSqFWEA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/abiyiDGJ39b9x6TBNAZtLU.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/9D4CHD6RKmPwQSuRPuhJ2T.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/95tTcsTNHtM2fHEBW5NLCe.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/HcTjTBrzk4uC46qgcE9bFY.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FYExPfCAPyRYDqsFo33VvQ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/J3nkXUAGJ78iNi2qjeRNFR.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/tXfmQQWevwa2DpJLKnTcUK.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/fUZu6nNcWosHEKygzRCgSc.jpg" alt="" /></figure></figure><p>Temperatures inside of the PSU stay low, even in the face of our unforgiving test conditions. This explains why Corsair is able to get away with a relaxed fan profile.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="transient-response-tests-ripple-measurements-and-emc-pre-compliance-testing-8">Transient Response Tests, Ripple Measurements and EMC Pre-Compliance Testing</h2><h2 id="advanced-transient-response-tests-27">Advanced Transient Response Tests </h2><p><strong>For details on our transient response testing, please</strong><span class="apple-converted-space"><strong> </strong></span><a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>click here</strong></a><strong>.</strong></p><p>In the real world, power supplies are always working with loads that change. It's of immense importance, then, for the PSU to keep its rails within the ATX specification's defined ranges. The smaller the deviations, the more stable your PC will be with less stress applied to its components. </p><p><strong>We should note that the ATX spec requires capacitive loading during the transient rests, but in our methodology we chose to apply the worst case scenario with no extra capacitance on the rails. </strong></p><h2 id="advanced-transient-response-at-20-percent-200ms-3">Advanced Transient Response at 20 Percent – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.166V</td><td  >12.075V</td><td  >0.75%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.050V</td><td  >5.001V</td><td  >0.97%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.356V</td><td  >3.285V</td><td  >2.12%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.036V</td><td  >5.001V</td><td  >0.69%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-percent-20ms-3">Advanced Transient Response at 20 Percent – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.166V</td><td  >12.041V</td><td  >1.03%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.051V</td><td  >4.993V</td><td  >1.15%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.356V</td><td  >3.269V</td><td  >2.59%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.037V</td><td  >4.999V</td><td  >0.75%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-20-percent-1ms-3">Advanced Transient Response at 20 Percent – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.165V</td><td  >12.071V</td><td  >0.77%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.052V</td><td  >4.993V</td><td  >1.17%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.357V</td><td  >3.262V</td><td  >2.83%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.038V</td><td  >4.987V</td><td  >1.01%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-percent-200ms-3">Advanced Transient Response at 50 Percent – 200ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.158V</td><td  >12.128V</td><td  >0.25%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.044V</td><td  >4.997V</td><td  >0.93%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.353V</td><td  >3.279V</td><td  >2.21%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.023V</td><td  >4.975V</td><td  >0.96%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-percent-20ms-3">Advanced Transient Response at 50 Percent – 20ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.158V</td><td  >12.107V</td><td  >0.42%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.044V</td><td  >4.989V</td><td  >1.09%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.353V</td><td  >3.264V</td><td  >2.65%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.024V</td><td  >4.977V</td><td  >0.94%</td><td  >Pass</td></tr></tbody></table></div><h2 id="advanced-transient-response-at-50-percent-1ms-3">Advanced Transient Response at 50 Percent – 1ms</h2><div ><table><thead><tr><th  ><strong>Voltage</strong></th><th  ><strong>Before</strong></th><th  ><strong>After</strong></th><th  ><strong>Change</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>12V</strong></th><td  >12.157V</td><td  >12.113V</td><td  >0.36%</td><td  >Pass</td></tr><tr><th  ><strong>5V</strong></th><td  >5.045V</td><td  >4.989V</td><td  >1.11%</td><td  >Pass</td></tr><tr><th  ><strong>3.3V</strong></th><td  >3.354V</td><td  >3.262V</td><td  >2.74%</td><td  >Pass</td></tr><tr><th  ><strong>5VSB</strong></th><td  >5.025V</td><td  >4.962V</td><td  >1.25%</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/UwwB6csQv9JpTaByiTfDpD.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/WdJzhR7bB3E7w8VoV3gAXD.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/FAyowFXBgzV9WpY5zsSuyS.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/3J5Vd3AzFk9Hzy4DXu4pZe.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JYaD5X6acsbj6uU49sYbcT.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zAaVTMmjxKNmu8JUDdKMVW.png" alt="" /></figure></figure><p>The results from each rail are very good. Particularly on the all-important +12V rail, registered deviations are low.</p><h2 id="turn-on-transient-tests-27">Turn-On Transient Tests</h2><p>In the next set of tests, we measure the PSU's response in simpler transient load scenarios—during its power-on phase. Ideally, we don't want to see any voltage overshoots or spikes since those put a lot of stress on the DC-DC converters of installed components.</p><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/LYpdN2sQTVk9Qb73bQFgoA.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/aWKRxdKWAb3t3usA8YzX9m.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/rxZsDaWNQ2dgNgRb56aiA3.jpg" alt="" /></figure></figure><p>There aren't any notable spikes or voltage overshoots to report, so everything checks out.</p><h2 id="ripple-measurements-27">Ripple Measurements</h2><div ><table><thead><tr><th  ><strong>Test</strong></th><th  ><strong>12V</strong></th><th  ><strong>5V</strong></th><th  ><strong>3.3V</strong></th><th  ><strong>5VSB</strong></th><th  ><strong>Pass/Fail</strong></th></tr></thead><tbody><tr><th  ><strong>10% Load</strong></th><td  >12.5mV</td><td  >9.7mV</td><td  >12.9mV</td><td  >10.7mV</td><td  >Pass</td></tr><tr><th  ><strong>20% Load</strong></th><td  >13.0mV</td><td  >5.2mV</td><td  >10.8mV</td><td  >12.7mV</td><td  >Pass</td></tr><tr><th  ><strong>30% Load</strong></th><td  >6.7mV</td><td  >5.0mV</td><td  >10.1mV</td><td  >9.1mV</td><td  >Pass</td></tr><tr><th  ><strong>40% Load</strong></th><td  >7.7mV</td><td  >6.4mV</td><td  >9.1mV</td><td  >7.3mV</td><td  >Pass</td></tr><tr><th  ><strong>50% Load</strong></th><td  >8.4mV</td><td  >5.0mV</td><td  >8.7mV</td><td  >7.2mV</td><td  >Pass</td></tr><tr><th  ><strong>60% Load</strong></th><td  >8.8mV</td><td  >5.2mV</td><td  >9.0mV</td><td  >7.4mV</td><td  >Pass</td></tr><tr><th  ><strong>70% Load</strong></th><td  >9.7mV</td><td  >5.3mV</td><td  >9.1mV</td><td  >8.2mV</td><td  >Pass</td></tr><tr><th  ><strong>80% Load</strong></th><td  >10.4mV</td><td  >5.5mV</td><td  >9.8mV</td><td  >8.5mV</td><td  >Pass</td></tr><tr><th  ><strong>90% Load</strong></th><td  >10.9mV</td><td  >5.6mV</td><td  >10.1mV</td><td  >8.4mV</td><td  >Pass</td></tr><tr><th  ><strong>100% Load</strong></th><td  >15.2mV</td><td  >6.5mV</td><td  >10.7mV</td><td  >9.6mV</td><td  >Pass</td></tr><tr><th  ><strong>110% Load</strong></th><td  >15.7mV</td><td  >6.6mV</td><td  >11.0mV</td><td  >9.9mV</td><td  >Pass</td></tr><tr><th  ><strong>Cross-Load 1</strong></th><td  >15.2mV</td><td  >5.2mV</td><td  >11.6mV</td><td  >7.0mV</td><td  >Pass</td></tr><tr><th  ><strong>Cross-Load 2</strong></th><td  >15.1mV</td><td  >6.2mV</td><td  >9.5mV</td><td  >9.0mV</td><td  >Pass</td></tr></tbody></table></div><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/cHCuapLeZC7aCj2HsDS3uJ.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Unie5ZLrLzmte5Ssjj5SH9.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/Wz4KFH978PmvJHjUmfDbjB.png" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/vs6WFeNZhR9nBnhXpNa5o8.png" alt="" /></figure></figure><h2 id="ripple-at-full-load-27">Ripple At Full Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/Mtnk5mXt6F7iY58W9sG7iF.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/XKxL9k8DsBzohZKsr69qnS.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/US2gxYCtUt6h6BjAM7AKrJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/VuJcjNjWLdUXnLibD5jiTQ.jpg" alt="" /></figure></figure><h2 id="ripple-at-110-percent-load-3">Ripple At 110-Percent Load </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/xvXx4kfNj9JrxrKzZrk2GP.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/jqTWXQcZ6RzUC85N6wpKYX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/JqseKi6YrUYiXF2VypNxPT.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/uksZa6q4qzvxbzZDnjgi6M.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-1-27">Ripple At Cross-Load 1 </h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/vZHnsqp5FfqTjRGniARoBE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/7QC95sxXruUgsEXdJYjGD.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/KQKLa6KXbgiLsKzC5PiRkE.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/cPwbqtnL4hFsCqfgmJbQwT.jpg" alt="" /></figure></figure><h2 id="ripple-at-cross-load-2-22">Ripple At Cross-Load 2</h2><figure role="gallery"><figure><img src="https://cdn.mos.cms.futurecdn.net/QEuF3DmJiFwdDDAu7ZyShd.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/AUnTnf6bfiRoAyfLNNmpSX.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/ojZbecJfL6wyCu7WtiEVPJ.jpg" alt="" /></figure><figure><img src="https://cdn.mos.cms.futurecdn.net/zhNaL3YdJqqeAr8DCW2yZ5.jpg" alt="" /></figure></figure><h2 id="emi-results-average-amp-peak-detector">EMI Results – Average & Peak Detector</h2><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1506px;"><p class="vanilla-image-block" style="padding-top:37.25%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/hsxqjYvaxyY2j639h3odbM.jpg" mos="https://cdn.mos.cms.futurecdn.net/hsxqjYvaxyY2j639h3odbM.jpg" align="" fullscreen="1" width="1506" height="561" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/hsxqjYvaxyY2j639h3odbM.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p>The EMI emissions we observe remain much lower than their allowable limits. Obviously, the AX1000's EMI filter does its job well.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="performance-noise-and-efficiency-8">Performance, Noise and Efficiency</h2><h2 id="performance-rating-27">Performance Rating</h2><p><a href="http://media.bestofmicro.com/P/L/819993/gallery/Result-34-34_Relative_Performance_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/P4Cm48pizUNHx6sJRFQ737.png" mos="https://cdn.mos.cms.futurecdn.net/P4Cm48pizUNHx6sJRFQ737.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/P4Cm48pizUNHx6sJRFQ737.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>As you can see, the AX1000 dominates in its 1kW category.</p><h2 id="noise-rating-27">Noise Rating</h2><p>The graph below depicts the cooling fan's average noise over the PSU's operating range with an ambient temperature between 30°C and 32°C (86°F to 89.6°F).</p><p><a href="http://media.bestofmicro.com/P/M/819994/gallery/Result-37-36_Average_Noise_Output_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:631px;"><p class="vanilla-image-block" style="padding-top:80.98%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/vAvs6ATPBLiFosPRTrmveg.png" mos="https://cdn.mos.cms.futurecdn.net/vAvs6ATPBLiFosPRTrmveg.png" align="" fullscreen="1" width="631" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/vAvs6ATPBLiFosPRTrmveg.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>Corsair's AX1000 might not be as quiet as the Seasonic competition, but it's quiet enough for a PSU able to serve up 1000W of power.</p><h2 id="efficiency-rating-27">Efficiency Rating</h2><p>The following graph shows the PSU's average efficiency throughout its operating range with an ambient temperature close to 30°C.</p><p><a href="http://media.bestofmicro.com/P/N/819995/gallery/Result-38-37_Average_Efficiency_w_711.png"></a></p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:632px;"><p class="vanilla-image-block" style="padding-top:80.85%;"><img id="" name="" alt="Click to see more results" src="https://cdn.mos.cms.futurecdn.net/3ddpYqCoKv2EwND6TvFGBE.png" mos="https://cdn.mos.cms.futurecdn.net/3ddpYqCoKv2EwND6TvFGBE.png" align="" fullscreen="1" width="632" height="511" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/3ddpYqCoKv2EwND6TvFGBE.png' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div><figcaption itemprop="caption description" class="pull-"><span class="caption-text">Click to see more results </span></figcaption></figure><p>Clearly, this is a highly efficient platform.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><h2 id="bottom-line-11">Bottom Line</h2><p>Corsair's AX1000 offers tight load regulation on all of its rails, amazing ripple suppression, and crazy-high efficiency levels. Its transient response is impressive, so we're not surprised that it takes the lead from Seasonic's 1000W 80 PLUS Platinum- and Titanium-rated models (even though they're built using the same platform with slight modifications).</p><p>The AX1000's hold-up time isn't as long as Seasonic's PSUs, but it still exceeds 17ms, satisfying the ATX specification's requirements. Where Corsair trails Seasonic is in our noise measurements: the 1kW Titanium Seasonic Prime achieves a much lower overall noise output. Corsair's AX1000 isn't noisy though; our average measurements remained under 25 dB(A), which is great given its 1000W of capacity.</p><figure class="van-image-figure pull-" data-bordeaux-image-check ><div class='image-full-width-wrapper'><div class='image-widthsetter' style="max-width:1024px;"><p class="vanilla-image-block" style="padding-top:75.00%;"><img id="" name="" alt="" src="https://cdn.mos.cms.futurecdn.net/ViDbpXbzLpyDFgdrrCb8DE.jpg" mos="https://cdn.mos.cms.futurecdn.net/ViDbpXbzLpyDFgdrrCb8DE.jpg" align="" fullscreen="1" width="1024" height="768" attribution="" endorsement="" class="pull- expandable"><a href='https://cdn.mos.cms.futurecdn.net/ViDbpXbzLpyDFgdrrCb8DE.jpg' target='_blank' class='expand-button icon-expand-image icon' ></a></p></div></div></figure><p><span>We'll say it again: </span><span>Corsair's AX1000, along with the 80 PLUS Platinum- and Titanium-rated Seasonic Prime models, are currently the best 1kW PSUs that money can buy. It's nice to see the company's legendary AX series make a strong comeback. For a while there, the AX family lived in the shadow of Corsair's digital AXi line-up. <br/></span></p><p><span>Seasonic is among the best PSU OEMs and Corsair is one of the strongest brands nowadays, so a partnership between was bound to be successful. Although we live in a digital era, analog platforms still dominate the PSU market. We're looking forward to fully digital platforms from Seasonic and Corsair, but it's easier to wait with high-performance designs like the AX1000 to tide us over. <br/></span></p><p>With a $280 (£220) price tag, the AX1000 certainly isn't cheap. But it offers the highest possible performance, quiet operation, and relatively compact dimensions, given a 172mm depth measurement. Smaller 1kW power supplies exist, but none of them can match the AX1000's performance.</p><p>The selectable semi-passive mode is a big advantage if you plan to use this unit with its fan facing downwards or sideways. We're hoping that Seasonic goes fully digital with its fan control circuit in the near future. An MCU with advanced PWM control would obviate the need for semi-passive operation, which puts a lot of stress on FDB fans during their start-up phase, causing lubricant to go all the way up the bearing.</p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/best-psus,4229.html"><strong>Best Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/reviews/how-we-test-psu,4042.html"><strong>How We Test Power Supplies</strong></a></strong></p><p><strong>MORE: <a href="https://www.tomshardware.com/topics/power-supplies"><strong>All Power Supply Content</strong></a></strong></p><p><strong><em>Disclaimer:</em></strong><em> Aris Mpitziopoulos is Tom's Hardware's PSU reviewer. He is also the Chief Testing Engineer of <a href="https://www.cybenetics.com/index.php">Cybenetics</a>, and developed the <a href="https://www.tomshardware.com/news/new-cybenetics-eta-230v-lambda-230v,36417.html"> Cybenetics certification methodologies </a> apart from his role on Tom's Hardware. Neither Tom's Hardware nor its parent company, Future PLC , are financially involved with Cybenetics. Aris does not perform the actual certifications for Cybenetics.</em></p>
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