Asus TUF Gaming 450W Bronze Power Supply Review

The Asus TUF Gaming 450W is a low-power but high-performance PSU.

Asus TUF Gaming 450W
(Image: © Tom's Hardware)

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Primary Rails And 5VSB Load Regulation

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.

Load regulation is tight on all rails. The PSU's low capacity and the fixed cables, which have lower resistance than modular ones, help in this. 

Hold-Up Time

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.

The hold-up time is short and the same applies to the power ok signal's hold-up time. 

Inrush Current

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.

Inrush currents are high. A higher resistance NTC thermistor is required. 

Leakage Current

In layman'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 GW Instek GPT-9904 electrical safety tester instrument.

The leakage current test is conducted at 110% of the DUT'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's chassis.

Asus TUF-Gaming 450

(Image credit: Tom's Hardware)

Leakage current is low. 

10-110% Load Tests

These tests reveal the PSU's load regulation and efficiency levels under high ambient temperatures. They also show how the fan speed profile behaves under increased operating temperatures.

Swipe to scroll horizontally
Test12V5V3.3V5VSBDC/AC (Watts)EfficiencyFan Speed (RPM)PSU Noise (dB[A])Temps (In/Out)PF/AC Volts
10%1.946A1.941A1.974A0.984A45.00483.087%0<6.038.18°C0.943
Row 2 - Cell 0 12.027V5.151V3.344V5.082V54.167Row 2 - Cell 6 Row 2 - Cell 7 Row 2 - Cell 8 34.12°C114.92V
20%4.918A2.913A2.962A1.182A90.00987.121%0<6.038.93°C0.973
Row 4 - Cell 0 12.017V5.15V3.342V5.076V103.315Row 4 - Cell 6 Row 4 - Cell 7 Row 4 - Cell 8 34.63°C114.92V
30%8.235A3.398A3.457A1.381A134.93988.157%0<6.039.91°C0.983
Row 6 - Cell 0 12.008V5.15V3.341V5.071V153.067Row 6 - Cell 6 Row 6 - Cell 7 Row 6 - Cell 8 35.17°C114.89V
40%11.569A3.888A3.956A1.579A180.02387.466%111326.335.49°C0.987
Row 8 - Cell 0 11.999V5.144V3.337V5.066V205.822Row 8 - Cell 6 Row 8 - Cell 7 Row 8 - Cell 8 40.51°C114.88V
50%14.558A4.864A4.949A1.778A225.0287.427%112526.636.23°C0.989
Row 10 - Cell 0 11.987V5.14V3.334V5.062V257.377Row 10 - Cell 6 Row 10 - Cell 7 Row 10 - Cell 8 41.73°C114.88V
60%17.551A5.839A5.944A1.978A270.01987.002%118928.436.68°C0.991
Row 12 - Cell 0 11.978V5.138V3.332V5.056V310.359Row 12 - Cell 6 Row 12 - Cell 7 Row 12 - Cell 8 42.76°C114.86V
70%20.548A6.815A6.939A2.179A315.01986.288%127830.537.05°C0.992
Row 14 - Cell 0 11.967V5.137V3.33V5.05V365.08Row 14 - Cell 6 Row 14 - Cell 7 Row 14 - Cell 8 44.14°C114.85V
80%23.598A7.793A7.934A2.279A360.08185.54%140333.338.09°C0.993
Row 16 - Cell 0 11.957V5.135V3.327V5.047V420.95Row 16 - Cell 6 Row 16 - Cell 7 Row 16 - Cell 8 46.17°C114.84V
90%26.996A8.28A8.419A2.38A405.06784.741%154135.838.89°C0.993
Row 18 - Cell 0 11.948V5.134V3.325V5.043V478.011Row 18 - Cell 6 Row 18 - Cell 7 Row 18 - Cell 8 47.94°C114.81V
100%30.169A8.769A8.936A2.982A449.90883.779%166738.140.5°C0.994
Row 20 - Cell 0 11.939V5.133V3.324V5.032V537.019Row 20 - Cell 6 Row 20 - Cell 7 Row 20 - Cell 8 50.53°C114.81V
110%33.215A9.745A10.024A2.983A494.52582.655%178439.941.87°C0.994
Row 22 - Cell 0 11.929V5.133V3.322V5.029V598.298Row 22 - Cell 6 Row 22 - Cell 7 Row 22 - Cell 8 52.83°C114.79V
CL10.117A12.866A13.088A0A111.31882.505%0<6.044.91°C0.98
Row 24 - Cell 0 12.000V5.147V3.339V5.079V134.926Row 24 - Cell 6 Row 24 - Cell 7 Row 24 - Cell 8 39.42°C114.89V
CL20.116A19.419A0A0A101.42381.034%0<6.045.94°C0.979
Row 26 - Cell 0 12.016V5.151V3.345V5.083V125.161Row 26 - Cell 6 Row 26 - Cell 7 Row 26 - Cell 8 38.65°C114.9V
CL30.116A0A19.773A0A67.38476.765%0<6.046.99°C0.969
Row 28 - Cell 0 12.012V5.168V3.337V5.076V87.779Row 28 - Cell 6 Row 28 - Cell 7 Row 28 - Cell 8 37.94°C114.9V
CL437.597A0A0A0.001A449.67284.823%172438.941.19°C0.994
Row 30 - Cell 0 11.960V5.152V3.332V5.075V530.135Row 30 - Cell 6 Row 30 - Cell 7 Row 30 - Cell 8 52.16°C114.82V

The PSU doesn't have a problem delivering 110% of its maximum power at 42°C. This doesn't mean that you should push it so hard, though. 

20-80W Load Tests

In the following tests, we measure the PSU'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.

Swipe to scroll horizontally
Test12V5V3.3V5VSBDC/AC (Watts)EfficiencyFan Speed (RPM)PSU Noise (dB[A])Temps (In/Out)PF/AC Volts
20W1.236A0.486A0.493A0.196A19.99876.013%0<6.034.51°C0.86
Row 2 - Cell 0 12.019V5.149V3.344V5.096V26.308Row 2 - Cell 6 Row 2 - Cell 7 Row 2 - Cell 8 31.46°C114.94V
40W2.718A0.68A0.691A0.295A4083.598%0<6.035.26°C0.934
Row 4 - Cell 0 12.027V5.15V3.344V5.093V47.848Row 4 - Cell 6 Row 4 - Cell 7 Row 4 - Cell 8 31.93°C114.94V
60W4.202A0.874A0.888A0.393A6086.329%0<6.035.84°C0.958
Row 6 - Cell 0 12.024V5.15V3.344V5.091V69.501Row 6 - Cell 6 Row 6 - Cell 7 Row 6 - Cell 8 32.06°C114.92V
80W5.684A1.068A1.086A0.491A79.95387.689%0<6.037.59°C0.969
Row 8 - Cell 0 12.021V5.15V3.343V5.088V91.175Row 8 - Cell 6 Row 8 - Cell 7 Row 8 - Cell 8 33.61°C114.92V

The fan doesn't spin at light loads. 

2% or 10W Load Test

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.

Swipe to scroll horizontally
12V5V3.3V5VSBDC/AC (Watts)EfficiencyFan Speed (RPM)PSU Noise (dB[A])Temps (In/Out)PF/AC Volts
0.552A0.5A0.15A0.1A10.21364.499%0<6.025.49°C0.756
Row 2 - Cell 0 12.019V5.143V3.342V5.1V15.833Row 2 - Cell 6 Row 2 - Cell 7 24.36°C114.92V

The 60% mark is passed with a 2 % load. 

Efficiency & Power Factor

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.

The platform is efficient, leading the charts in all load regions. 

5VSB Efficiency

Swipe to scroll horizontally
Test #5VSBDC/AC (Watts)EfficiencyPF/AC Volts
10.1A0.511W72.813%0.064
Row 2 - Cell 0 5.112V0.702WRow 2 - Cell 3 114.87V
20.25A1.277W77.809%0.14
Row 4 - Cell 0 5.11V1.641WRow 4 - Cell 3 114.88V
30.55A2.807W79.824%0.246
Row 6 - Cell 0 5.106V3.517WRow 6 - Cell 3 114.88V
41A5.098W80.257%0.325
Row 8 - Cell 0 5.099V6.353WRow 8 - Cell 3 114.88V
51.5A7.637W78.897%0.373
Row 10 - Cell 0 5.092V9.679WRow 10 - Cell 3 114.88V
62.999A15.19W77.812%0.433
Row 12 - Cell 0 5.065V19.523WRow 12 - Cell 3 114.87V

The 5VSB rail achieves high enough efficiency. 

Power Consumption In Idle And Standby

Swipe to scroll horizontally
Mode12V5V3.3V5VSBWattsPF/AC Volts
Idle12.060V5.104V3.327V5.115V6.0710.45
Row 2 - Cell 0 Row 2 - Cell 1 Row 2 - Cell 2 Row 2 - Cell 3 Row 2 - Cell 4 Row 2 - Cell 5 114.84V
StandbyRow 3 - Cell 1 Row 3 - Cell 2 Row 3 - Cell 3 Row 3 - Cell 4 0.0540.006
Row 4 - Cell 0 Row 4 - Cell 1 Row 4 - Cell 2 Row 4 - Cell 3 Row 4 - Cell 4 Row 4 - Cell 5 114.84V

Vampire power is low with 115V input, but we would like to see below 0.1W with 230V input. 

Fan RPM, Delta Temperature, And Output Noise

All results are obtained between an ambient temperature of 37 to 47 degrees Celsius (98.6 to 116.6 degrees Fahrenheit).

(Image credit: Tom's Hardware)

(Image credit: Tom's Hardware)

The fan speed profile is not aggressive, even under harsh operating conditions. 

The following results were obtained at 30 to 32 degrees Celsius (86 to 89.6 degrees Fahrenheit) ambient temperature.       

(Image credit: Tom's Hardware)

(Image credit: Tom's Hardware)

At normal operating temperatures, close to 30 degrees Celsius, the PSU's semi-passive operation won't last long if you push hard the minor rails. From 150W to 310W, the fan's noise is within 25-30 dBA, and the 30 dBA mark is passed at higher loads. In no case, noise exceeds 35 dBA under normal operating temperatures. 

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Contributing Editor

Aris Mpitziopoulos is a Contributing Editor at Tom's Hardware US, covering PSUs.

  • Dark Lord of Tech
    You can buy the 650w version for $4.00 more. :unsure:
    Reply