Testing Methodology

Although the testing of a cooler appears to be a simple task, that could not be much further from the truth. Proper thermal testing cannot be performed with a cooler mounted on a single chip, for multiple reasons. Some of these reasons include the instability of the thermal load and the inability to fully control and or monitor it, as well as the inaccuracy of the chip-integrated sensors. It is also impossible to compare results taken on different chips, let alone entirely different systems, which is a great problem when testing computer coolers, as the hardware changes every several months. Finally, testing a cooler on a typical system prevents the tester from assessing the most vital characteristic of a cooler, its absolute thermal resistance.

The absolute thermal resistance defines the absolute performance of a heatsink by indicating the temperature rise per unit of power, in our case in degrees Celsius per Watt (°C/W). In layman's terms, if the thermal resistance of a heatsink is known, the user can assess the highest possible temperature rise of a chip over ambient by simply multiplying the maximum thermal design power (TDP) rating of the chip with it. Extracting the absolute thermal resistance of a cooler however is no simple task, as the load has to be perfectly even, steady and variable, as the thermal resistance also varies depending on the magnitude of the thermal load. Therefore, even if it would be possible to assess the thermal resistance of a cooler while it is mounted on a working chip, it would not suffice, as a large change of the thermal load can yield much different results.

Appropriate thermal testing requires the creation of a proper testing station and the use of laboratory-grade equipment. Therefore, we created a thermal testing platform with a fully controllable thermal energy source that may be used to test any kind of cooler, regardless of its design and or compatibility. The thermal cartridge inside the core of our testing station can have its power adjusted between 60 W and 340 W, in 2 W increments (and it never throttles). Furthermore, monitoring and logging of the testing process via software minimizes the possibility of human errors during testing. A multifunction data acquisition module (DAQ) is responsible for the automatic or the manual control of the testing equipment, the acquisition of the ambient and the in-core temperatures via PT100 sensors, the logging of the test results and the mathematical extraction of performance figures.

Finally, as noise measurements are a bit tricky, their measurement is being performed only manually. Fans can have significant variations in speed from their rated values, thus their actual speed during the thermal testing is being acquired via a laser tachometer. The fans (and pumps, when applicable) are being powered via an adjustable, fanless desktop DC power supply and noise measurements are being taken 1 meter away from the cooler, in a straight line ahead from its fan engine. At this point we should also note that the Decibel scale is logarithmic, which means that roughly every 3 dB(A) the sound pressure doubles. Therefore, the difference of sound pressure between 30 dB(A) and 60 dB(A) is not "twice as much" but nearly a thousand times greater. The table below should help you cross-reference our test results with real-life situations.

The noise floor of our recording equipment is 30.2-30.4 dB(A), which represents a medium-sized room without any active noise sources. All of our acoustic testing takes place during night hours, minimizing the possibility of external disruptions.

<35dB(A) Virtually inaudible
35-38dB(A) Very quiet (whisper-slight humming)
38-40dB(A) Quiet (relatively comfortable - humming)
40-44dB(A) Normal (humming noise, above comfortable for a large % of users)
44-47dB(A)* Loud* (strong aerodynamic noise)
47-50dB(A) Very loud (strong whining noise)
50-54dB(A) Extremely loud (painfully distracting for the vast majority of users)
>54dB(A) Intolerable for home/office use, special applications only.

*noise levels above this are not suggested for daily use

The Noctua NH-C14S Testing Results, Maximum Fan Speed (12 Volts)
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  • mm0zct - Thursday, January 19, 2017 - link

    Came to the comments to say just this. I've been running my Phenom-II 1055t (95W) in a mini-ITX system with the Shuriken Big for almost 6 years now, very happily and quietly.
  • edzieba - Wednesday, January 18, 2017 - link

    For a low-profile cooler roundup, it seems odd to include the NH-C14S (at double the Z-height of the other coolers tested) but not the NH-L9i or even the NH-L9x65.
  • 80-wattHamster - Wednesday, January 18, 2017 - link

    One works with the samples one has, presumably.
  • jabber - Thursday, January 19, 2017 - link

    Yeah I always love folks that seem to think sites have every cooler, ram module, case, CPU, GPU under the sun to test against each other. If you have an infinite number of monkeys with typewriters...
  • jtd871 - Wednesday, January 18, 2017 - link

    These may not be tall coolers, but they're not all super low-profile either. I'd be interested in seeing reviews of the Cryorig C7 and Silverstone AR-05.
  • jtd871 - Wednesday, January 18, 2017 - link

    Could you guys please update Bench with all these results?!
  • Great_Scott - Wednesday, January 18, 2017 - link

    It should happen pretty soon. Hey, Bench was updated with the new Core i3 results and there isn't even a review out yet!
  • dreamcat4 - Wednesday, January 18, 2017 - link

    Its worth noting that while this review doesn't seem to mention the Raijintek Pallas or the CRYORIG C1... shouldn't assume those are unworthy of pretty serious consideration also.
  • creed3020 - Thursday, January 19, 2017 - link

    Yeah the review is not apples to apples. In the world of SFF coolers there are the very tiny and larger solutions. The Noctua should be compared to coolers like the ones you mentioned.
  • b4bblefish - Wednesday, January 18, 2017 - link

    I'm really confused why the Noctua L9 or L9x65 wasn't used here since those would have been more relevant to this shootout?

    Basically instead of 3 comparable fans it's just 2 low profile ones and a large cooler which really shouldn't be compared to the other 2...

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