Noctua NF-A14x25 G2 PWM: Finally a first-class 140mm fan

The range of 140mm fans is now expanded by the Noctua NF-A14x25 G2 PWM. The wait for this model was very long, but finally, after various hardships, everything was brought to a successful end. This, by the way, is also indicated by our in-depth tests, from which the NF-A14x25 G2 fan takes away the “best” results across many usage scenarios. This is also due to the significant innovations in the aerodynamic design.

How we measure power draw…

Is it worth addressing the power draw 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 draw 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 draw tests, we will be interested in the power draw 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 draw 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 draw 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 draw, 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 draw. 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 draw, but somehow it will cope. However, if the difference between the motor power and the operating power draw 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 draw 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 draw that we observed when the fan was being braked.

We use the Keysight U1231A high sample rate precision multimeters to analyze motor power (as well as normal operating power draw). 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).


Contents

Arctic BioniX P14 A-RGB: Elegant daisy chaining is just the beginning

High cooling efficiency is the foundation, but with the BioniX P14 A-RGB fans, Arctic has also made efforts on other fronts. In addition to the clever daisy-chaining method (with the aim of reducing cabling to a minimum), this includes, for example, illumination as intense as possible. The light is guided not only through the entire impeller, but also through the surface of the frame, from the side. There are light guides in these areas as well. Read more “Arctic BioniX P14 A-RGB: Elegant daisy chaining is just the beginning” »

Contents

Arctic BioniX P12 A-RGB: Efficient, inexpensive, illuminated and…

And with very clever daisy‑chaining from one fan to the next. This is what can fill in the ellipsis in the headline. The aerodynamic efficiency remains top‑tier, built on a design that Arctic revised some time ago (with the P12 Pro fans), but which can still be considered “new.” The BioniX P12 A‑RGB fans certainly are (new), and in this in‑depth analysis we focus on how they work. Read more “Arctic BioniX P12 A-RGB: Efficient, inexpensive, illuminated and…” »

Contents

ID-Cooling AM-120-K: Bet on an Elegant Geometry

It has exactly the elements that make an inexpensive fan aerodynamically efficient and acoustically unobtrusive. Or rather, not too obtrusive—at least at lower, non‑high speeds. At higher speeds, every fan is “noisy,” but making a low‑cost fan that can still be described as pleasant to the ear is already something of a feat. We can, however, state that ID‑Cooling has achieved this with the AM‑120‑K model. Read more “ID-Cooling AM-120-K: Bet on an Elegant Geometry” »

Contents

Comments (20) Add comment

  1. Minor errors:
    LS-PWM version is up to 800 RPM, not 1200.
    Value’s missing in “Noise level – No obstacle – max speed” chart.

    Question:
    I remember Noctua saying that the protrusions on the gasket can compress enough to form a tight seal (based on my question)… guess not? Or is there not enough mounting pressure?

    1. Thanks for the heads up, it’s corrected! 🙂

      Yes, definitely, at different mounting pressures these protrusions in the anti-vibration gasket will compress differently, and in some cases they are compressed completely. As is the case in our situation on the thicker radiator. But there is still a gap on it. Caused by the way the walls of the radiator are rounded and the gasket is not perfectly straight and in places it twists a bit (you can see it well in this photo). It’s still just a soft liner, so it’s a natural thing. Don’t expect dramatic differences at this level though – the airflow through the radiator would be comparable even with an older system without the gasket material around the fan walls. Hmm… it’s maybe a good idea for a specific test looking at the dependence of the airflow on the presence of the gasket. Well, we’ll see…

      1. I’ll test and see how well the gasket compresses once mine arrives. I’m guessing it might need pretty high mounting force to compress completely.

        While the imperfect seal might only change the airflow by a few m3h, it seems enough to knock the fan from #1 to #2 at least in some cases. Case in point: no obstacle @ 36 dBA, Round = 810 RPM, 73.9 m3h; Square = 825 RPM, 72.1 m3h. The very slight difference in RPM should be due to the more substantial frame attenuating noise slightly more; meanwhile, the deterioration in airflow despite having higher RPM could only be attributed to increased leakage from the sides.

          1. I don’t have the proper equipment to test the exact force needed, but it seems to require pretty high mounting force indeed. I couldn’t compress it at all with my bare fingers, and in order to compress it on an acrylic panel, I needed unconformably high force (and still couldn’t get the sides to fully seal). For my application, foregoing antivirbation pads and gaskets altogether resulted in a much better seal. Fortunately, I have the intake side against the panel, and according to the manual that side does not need load relief.

            1. Thanks for the info. The degree of deformation of these pads (and the size of the gap between the fan and the radiator) will be strongly dependent on the mounting pressure of the screws, which can vary even when fully tightened.

    1. Nice comparison with the fact that with your frame even better results are achieved. The offset from the obstacle is obviously useful. Microturbulence is suppressed, which reduces noise at the same time as the pressure/airflow is increased. Great, good work. 🙂

      1. In a corsair 5000D where a 7800x3d is cooled by a noctua dh-15, which set of fans or fan configuration do you recommend me for optimal slightly positive pressure? Should i go for 2 front 1400mm, 1 rear 120mm and rear top 120mm? Thanks

        1. One of the good options are Noctua NF-A14x25 G2 PWM fans. Then there are several alternatives that have a suitable aerodynamic design, but you need to know about the things that could possibly bother you. With the BeQuiet Silent Wings Pro 4 (BL099) it could be a whiny coil in PWM control, with the Arctic P14 Max it could be the minimum speed that’s too high, and with the Thermaltake Toughfan 14 Pro it could be the lower build quality (if you come across a clicking piece or multiple such pieces). Of the cheaper fans, the BeQuiet Pure Wings 3 (BL108) is still attractive, but it also has some weak points – check them out in our analysis and consider what is (in)essential for you.

  2. Why did it fail so bad against a plastic filter compared to the previous gen? Are they not good for case intakes?

    1. It is hard to say why there has been such a deterioration. The aerodynamic design of the two fans is significantly different. Some improvement could be achieved with a spacer, as indicated by the results of the NF-A14x25r G2 fan with the DIY frame, but in that case below average results are achieved. In cases with fans more significantly offset from the filters or with a thicker front panel structure, the Noctua NF-A14x25 G2 might already be suitable/top-notch, as can be seen in the results with the hexagonal grille. These are already significantly better than with the first generation fans (NF-A14 PWM).

  3. Thanks for the test ! Time to try those on the North XL. <3

    Planning to put 3 on the front and limit them at 1.000 rpm, hopefully they won't resonate with the front wood 😀

    1. The vibration of the NF-A14x25 G2 PWM that reaches the frame is negligible at 1000 rpm. They will almost certainly not cause secondary noise on the front panel of the FD North XL. How the fans will interact with the structure of the brackets or the wood panel is, of course, another matter. Due to these elements, the acoustic profile can change even at lower speeds. Be sure to let us know how this combination of the case (FD North XL) and the fans (NF-A14x25 G2 PWM) behaves. 🙂

  4. I was hoping to replace my 140mm radiator fans with these but, having seen your results, I don’t know that I would benefit from doing so. I have been using the Toughfan ex14 Pro and it seems to beat the NF-A14x25 G2 pretty handily in most of the radiator airflow tests. Am I missing something?

    1. As far as cooling efficiency on radiators is concerned, it will be very similar for both fans. Nevertheless, it must be stated that the Toughfan Pro EX14 should not be lagging behind in this regard and rather will be the one that is more efficient (i.e. achieving a hair higher cooling performance at comparable noise levels). However, the premise that you don’t get to clicky pieces with the Toughfan Pro EX14 has to be met. This is something you probably won’t have to deal with with Noctua NF-A14x25 G2 fans, as the manufacturing quality requirements are higher.

  5. I’m confused about those static pressure and airflow measurements. In your charts, the Arctic P14 (which is much cheaper) seems to beat the NF-A14x25 G2 at matched sound level. It produces higher static pressure against resistance, and more or comparable airflow.

    So it seems that this premium fan isn’t that great in terms of static pressure, airflow or noise. Am I missing something?

    1. Thank you for your question, I will be happy to explain.

      It is not true that higher measured values of static pressure at the same airflow automatically mean a smaller loss of airflow through an obstacle. This may or may not be the case. One reason for this is that static pressure is measured at zero airflow, which represents significantly more resistance (and back pressure) than any obstacle in practice. The resistance of a radiator is also significantly smaller than the situation at which static pressure is measured. At zero airflow, the fan behaves differently than on an obstacle at non-zero airflow. At zero airflow, a different, practically unrealistic motor output is achieved, and so in the real world it is not possible to work responsibly with this value. In other words, a fan that has a lower static pressure at the same airflow (these values are in turn usually based on a zero static pressure environment, which is also out of common practice…) may not have a greater loss of airflow through an obstacle. Again: It can, it doesn’t have to. Meanwhile, how a particular fan interacts with a chosen obstacle also plays a role in tests normalized by noise level. Specifically, to what extent does a given obstacle increase the noise level of a particular fan. This can also vary from case to case. It depends on the combination of the particular aerodynamic design of the fan with the particular structure of the obstacle. While in some combinations there are no significant tonal peaks (compared to a situation without an obstacle), these are dramatic in some/other cases. It is individual. Anyway, to evaluate responsibly the aerodynamic performance of a fan for practical use based on traditional measurements of static pressure and airflow, and hence actually P/Q curves, is impossible. This is because practical measurements on obstacles, which are important, are lacking. For what reasons you already know. Does that answer your questions? If anything is unclear, feel free to bring it up, we can discuss the specifics again. 🙂

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