XPG Pylon 650W Power Supply Review

A decent performance PSU with a good price.

XPG Pylon 650
(Image credit: © Tom's Hardware)

Why you can trust Tom's Hardware Our expert reviewers spend hours testing and comparing products and services so you can choose the best for you. Find out more about how we test.

Advanced Transient Response Tests

For details about our transient response testing, please click here.

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. 

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. 

Latest Videos FromTom's Hardware

Advanced Transient Response at 20% – 20ms

Swipe to scroll horizontally
Voltage Before After Change Pass/Fail
12V 12.178V 11.883V 2.42% Pass
5V 5.037V 4.891V 2.90% Pass
3.3V 3.321V 3.089V 6.99% Fail
5VSB 5.047V 4.971V 1.51% Pass

Advanced Transient Response at 20% – 10ms

Swipe to scroll horizontally
Voltage Before After Change Pass/Fail
12V 12.178V 11.892V 2.35% Pass
5V 5.037V 4.887V 2.98% Pass
3.3V 3.320V 3.092V 6.87% Fail
5VSB 5.047V 4.976V 1.41% Pass

Advanced Transient Response at 20% – 1ms

Swipe to scroll horizontally
Voltage Before After Change Pass/Fail
12V 12.178V 11.908V 2.22% Pass
5V 5.037V 4.887V 2.98% Pass
3.3V 3.320V 3.087V 7.02% Fail
5VSB 5.047V 4.968V 1.57% Pass

Advanced Transient Response at 50% – 20ms

Swipe to scroll horizontally
Voltage Before After Change Pass/Fail
12V 12.140V 11.847V 2.41% Pass
5V 5.028V 4.877V 3.00% Pass
3.3V 3.313V 3.071V 7.30% Fail
5VSB 5.016V 4.939V 1.54% Pass

Advanced Transient Response at 50% – 10ms

Swipe to scroll horizontally
Voltage Before After Change Pass/Fail
12V 12.140V 11.841V 2.46% Pass
5V 5.028V 4.882V 2.90% Pass
3.3V 3.313V 3.075V 7.18% Fail
5VSB 5.016V 4.940V 1.52% Pass

Advanced Transient Response at 50% – 1ms

Swipe to scroll horizontally
Voltage Before After Change Pass/Fail
12V 12.140V 11.861V 2.30% Pass
5V 5.028V 4.882V 2.90% Pass
3.3V 3.313V 3.070V 7.33% Fail
5VSB 5.016V 4.928V 1.75% Pass

The transient response is not so good, especially at 3.3V, which failed in all of our transient tests. 

Turn-On Transient Tests

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.

An almost perfect slope for the 5VSB rail, and only a small step in the 12V waveforms. 

Power Supply Timing Tests

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, to be compatible with the Alternative Sleep Mode.

Swipe to scroll horizontally
PSU Timings Table
T1 (Power-on time) & T3 (PWR_OK delay)
Load T1 T3
20% 45ms 130ms
100% 32ms 130ms

The PWR_OK delay is within the 100-150ms region, so the PSU supports the alternative sleep mode, which the ATX spec recommends.

Ripple Measurements

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-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.

The ripple limits, according to the ATX specification, are 120mV (+12V) and 50mV (5V, 3.3V, and 5VSB).

Swipe to scroll horizontally
Test 12V 5V 3.3V 5VSB Pass/Fail
10% Load 9.0 mV 39.5 mV 11.6 mV 12.1 mV Pass
20% Load 11.5 mV 15.0 mV 10.5 mV 8.0 mV Pass
30% Load 14.9 mV 45.1 mV 14.6 mV 15.3 mV Pass
40% Load 11.2 mV 13.9 mV 10.9 mV 8.2 mV Pass
50% Load 14.7 mV 19.9 mV 14.0 mV 9.3 mV Pass
60% Load 20.6 mV 23.3 mV 17.0 mV 11.3 mV Pass
70% Load 21.7 mV 11.5 mV 11.1 mV 12.7 mV Pass
80% Load 27.2 mV 14.4 mV 14.6 mV 13.4 mV Pass
90% Load 34.2 mV 14.1 mV 17.0 mV 15.1 mV Pass
100% Load 56.7 mV 18.4 mV 19.5 mV 14.9 mV Pass
110% Load 74.9 mV 20.8 mV 21.8 mV 16.8 mV Pass
Crossload 1 14.5 mV 15.0 mV 18.8 mV 8.0 mV Pass
Crossload 2 61.0 mV 36.8 mV 26.2 mV 12.9 mV Pass

Ripple at 12V should be lower, ideally below 40mV. Ripple suppression is very good on the other rails. 

Ripple At Full Load

Ripple At 110% Load

Ripple At Cross-Load 1

Ripple At Cross-Load 2

EMC Pre-Compliance Testing – Average & Quasi-Peak EMI Detector Results

Electromagnetic Compatibility (EMC) is the ability of a device to operate properly in its environment without disrupting the proper operation of other nearby devices.

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.

(Image credit: Tom's Hardware)

Conducted EMI emissions are low. 

MORE: Best Power Supplies

MORE: How We Test Power Supplies

MORE: All Power Supply Content

Aris Mpitziopoulos
Contributing Editor

Aris Mpitziopoulos is a contributing editor at Tom's Hardware, covering PSUs.

  • maxamillionfeettall
    Nice! So both the 750w and 650w units have the elite secondary caps. Makes me wonder what the 550w version has since the 450w version uses capxon.

    The FDB fan is a big plus, kudos for that.
    Reply