CPS PCCooler F9 R120: Rising to the top with 30 mm (of thickness)

We can state that, regardless of noise levels (indeed very high at maximum), the CPS PCCooler F9 R120 is the highest airflow fan in the 30 mm-and-below profile category. Yes, even the Phanteks T30 comes out “worse” here. However, if your priority is the highest possible airflow at low noise, the picture changes—and it’s not such a happy one, especially with obstacles. That will become clearer in the detailed analysis.

How we measure power consumption…

Is it worth addressing the power consumption of fans? If you have seven of them in your computer (three on the radiator of the cooler and four for system cooling in the case) and they are also backlit, the power consumption starts at tens of watts. This makes it worth dealing with.
All fans are powered by Gophert CPS-3205 II laboratory power supply. It is passive and virtually noiseless, so it does not distort our noise level measurements. However, for the PWM fans, a Noctua NA-FC1 controller is connected through which the fans are regulated. We also have a shunt between the power supply and the Noctua controller. On it, we read the voltage drop, from which we then calculate the current. However, the voltage on the power supply is set so that 12 V goes to the Noctua NA-FC1. We then also set the exact 12 V to measure the maximum power of the 3-pin linear power supply fans.

In the power consumption tests, we will be interested in the power consumption in fixed noise level modes in addition to the maximum power consumption at 12 V or 100% PWM. That is, at those settings at which we also measure other parameters. Finally, in the graphs you will also find the power consumption corresponding to the start-up and minimum speeds. The difference between these two settings is that at start-up speed you need to overcome the frictional forces, so the power consumption is always higher than at minimum speed. At these, the fan is already running and just reduces power to just before a level where it stops.

These start-up and minimum power consumption data are a substitute for the start-up and minimum voltage information. You often encounter this when reading about fans, but with PWM fans there is no point in dealing with it. And although it is possible to power a PWM fan linearly, it will always perform better with PWM control – lower starting and minimum speeds. Therefore, it would be unfair to compare these parameters for all fans using linear control. That way, fans with PWM would be disadvantaged and the results distorted.

…and motor power

In addition to power consumption, it is important to consider one more parameter that is related to the power supply – the power of the motor. This is usually listed on the back on a label and is often mistaken for power draw. However, the voltage and current indication here is usually not about power draw, but about the power of the motor. The latter must always be well above the operating power consumption. The higher it is, the longer the life expectancy of the fan.

Over time and with wear, fan friction increases (through loss or hardening of the lubricant, dust contamination or abrasion of the bearings, etc.). However, a more powerful motor will overcome the deteriorating conditions of the fan to some extent, albeit at a higher power consumption, but somehow it will cope. However, if the difference between the motor power and the operating power consumption of a new fan is small, it may no longer be able to exert sufficient force to turn the impeller under increased friction due to adverse circumstances.

The label detail often does not talk about power draw, but about the maximum power of the motor

To test the power of the motor, we set the fan to full power (12 V/100 % PWM) and increase the mechanical resistance by braking the impeller in the middle. This is a higher load for the motor, with which the power consumption naturally increases. But this is only up to a point, until the impeller stops. The power of the motor in our tests corresponds to the highest achieved power consumption that we observed when the fan was being braked.

We use the Keysight U1231A high sample rate precision multimeters to analyse motor power (as well as normal operating power consumption). In addition, the individual samples are recorded in a spreadsheet, from which we then graph the maximum. The final value is the average of three measurements (three maximums).


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Comments (5) Add comment

  1. Hi,

    I don’t understand the chart Motor Power 12v 100% PWM and Fan power draw max speed.
    Should they be the same watts?
    One says 5.41 watts the other 15.23 watts do they rally draw that much power?

    Thanks

    1. In one case (Motor Power), the higher value appears because the motor, due to braking, has to overcome significantly greater resistance than it does during regular operation at 12 V or 100% PWM control (which are effectively the same). The motor power measurements are meant to illustrate the difference between the best and worst scenarios in terms of friction the fan must overcome. The operating power consumption of an older fan will be higher because friction increases over time with use—and it’s good to know how far the motor’s capabilities extend. 🙂

      1. while we’re at it, 😉
        It would probably be appropriate for manufacturers to limit max.motor power to 12W, cause many 4-pin fan headers on motherboards have max. current of only 1A, right?
        …or what is your opinion on it? 😛

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