服务器风扇叶与风扇框用什么尼龙?动平衡比强度更要紧

应用领域 发布时间: 2026-09-15 3594 阅读

Last year, there was a customer who made server fan blades, and they brought a fan blade made of modified nylon injection molding.

The edges of the blades had slight material defects. He pinched the tip of a blade and turned it around, saying, 'This fan has been used for half a year, why is it getting louder and louder? Is it because the material isn't strong enough?'

We didn't ask about the intensity first; we asked about the rotation speed and the humidity in the machine room first. The answer came back — around five thousand revolutions per minute, running continuously all year, and the humidity in the machine room is not low.

This matter clearly explains the core of selecting materials for server fans: their failure is rarely a 'break', but more often 'becomes noisier as it spins.' The root of the noise lies in dynamic balance, not in strength. What is needed here has never been 'more solid', but 'whether it spins steadily'.

1. A server fan is not the same thing as a car fan.

First clarify the boundaries, so as not to draw the wrong conclusion.

Car cooling fans are in the engine compartment, lasting long at 90–120°C, and what they're afraid of is high-temperature creep and fatigue, which is another story (covered separately in the car fan section). Server fans are much cooler—the circuit is 40–60°C, and the area around the fan is not going to get very hot.

But the server fan has its own difficulties:

High rotation speed, running all year round. Server fans commonly rotate thousands to tens of thousands of times per minute, accumulating tens of millions of rotations in a year, never stopping. Car fans fluctuate with vehicle speed, while server fans are continuous duty.

Dynamic balance is extremely sensitive. The blades are high-speed rotating parts, and even a few grams of weight distribution change can be amplified into vibration and noise, which are then transmitted to the bearings and the casing.

Cleanliness and flame retardancy are hard constraints. The equipment room has a human working environment, requiring low smoke and low toxicity, with plastic parts starting at UL94 V0, mostly halogen-free.

So when selecting materials for server fans, it's not about 'how high a temperature they can withstand or how much load they can bear,' it's about 'whether they remain smooth, stable, and clean after ten thousand hours of operation.'

In a nutshell: For server fan blades, strength is the entry ticket, and dynamic balance is the watershed.

Boundary by magnitude: Car fan surroundings are 90–120℃, while server fans are only 40–60℃—the temperature difference is more than double, so server fans do not need to compete with high temperatures and should focus on speed and dynamic balance. This is also the reason why they cannot use the same materials as car fans.

2. Six-dimensional working condition: What constraints are applied to this part?

Spread out across six dimensions.

Temperature. Around the fan 40–60°C, milder than a car fan. But over long-term continuous use, thermal aging is a slow variable.

Rotational speed and load. Thousands to tens of thousands of revolutions per minute, with centrifugal force and wind load superimposed on thin-walled blades. The criterion is not 'whether it breaks,' but 'whether the center of gravity deviates under long-term rotation.'

Medium. Does not directly soak in liquid, but is exposed to organic room air, condensation, and dust. Flame retardancy and low outgassing are the focus.

Service life. Continuous operation for ten years or tens of thousands of hours. The criteria are the maintenance rate of dynamic balance and the noise curve, not the initial strength.

Tens of thousands of hours, taking 30,000 hours as an estimate, is equivalent to running continuously for three and a half years without stopping. The criterion has changed from "whether it can rotate" to "whether it remains smooth and quiet at the 30,000th hour." Many blades have a good initial dynamic balance, but after drifting for half a year, noise complaints arise — when looking at lifespan, we should consider balance lifespan, not strength lifespan.

Appearance and cleanliness. Low smoke and low toxicity, low yellowing, low precipitation, suitable for computer room environment requirements.

Compliance. Flame retardant UL94 V0, preferably halogen-free; check GWIT near electrical appliances.

In six dimensions, temperature, rotational speed, and lifespan are all given specific numbers; the component-level precision lies here.

Let's do a little calculation about the rotation speed: a fan blade spinning at 5,000 RPM makes about 2.6 billion revolutions in a year; at 10,000 RPM, it's about 5.2 billion revolutions. With such a large number of rotations, even a few milligrams of imbalance in the center of mass can be amplified into perceptible vibrations. Dynamic balancing is not 'spinning smoothly,' it's 'still stable after spinning for a year.'

3. The blades and the fan frame are made of two different materials.

This is the most common pitfall of the 'one set of materials to go around the world' plan.

Fan blades: They need toughness (resistant to startup impact), low warpage (coplanarity), good dynamic balance stability, and thin walls for good filling. The glass fiber content cannot be too high—GF15–25 is the common range; too high and anisotropy increases, making the blades brittle.

Why can't the glass fiber content be high? When the glass fiber content is high, the orientation becomes more apparent during flow, leading to greater shrinkage differences at different positions of the blade, increasing warpage and root stress; thin-walled, long-flow parts are also difficult to fill and prone to short shots. GF15–25 represents a compromise between toughness and rigidity, as well as filling and warpage, and it's not the case that lower is always better or higher is always more stable.

Fan frame: it should be rigid (to fix the motor and blades), creep-resistant (long-term preloading), dimensionally stable, and flame-retardant. The glass fiber content can be a bit higher, GF25–35 is more suitable.

RequirementFan bladeFan frame
Primary performanceToughness Dynamic Balance Low WarpingRigidity Creep Resistance Flame Retardant
Glass fiber contentGF15–25GF25–35
Critical failureDynamic balance deterioration, root fatigueDeformation, loose assembly, flame retardant precipitation
Temperature40–60℃Close to the blade
Processing difficultiesThin-wall filling Warping BalanceShrinkage and Size Flame Retardant

The same fan assembly, two parts, two formulas. Using one set of material usually doesn't satisfy either side.

Why can't the same material be used? The blades need to have thin walls for good filling and low warping to maintain coplanarity. If the glass fiber content is too high, they become brittle and difficult to fill; the frame, on the other hand, needs rigidity to support the motor and resist creep, and if the glass fiber content is too low, it won't hold up. The two parts have conflicting requirements for glass fiber content, so forcing a single material would only lead to compromises at both ends.

4. Selection Criteria Table: Dynamic Balance and Dimensional Stability are the Main Focus

Turn constraints into verifiable indicators. The thresholds in the table below are directional suggestions, not acceptance standards — the actual values are determined by the project, working conditions, and measurements.

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Dynamic balancing (residual imbalance)According to ISO 1940 classification, usually within G6.3Dynamic balancing machine: full speed sweepingVibration, noise, bearing wearLow warping Counterweight technologyNucleating agent (size-stable)
Bending modulus (rigidity)Refer to the 6–10 GPa rangeISO 178Blade tip deformation, reduced airflowGlass fiber reinforcedCoupling agent (interface enhancement)
Warp / CoplanarityBlade flatness is determined per pieceCoordinate Measuring Machine / Platform MethodSweeping wind, soundLow warp system GateNucleating agent (crystallization control)
Moisture Absorption Weight / SizeWet-state changes are controllable and the center of gravity is not biased.ISO 62 WeighingDynamic balance driftLow moisture-absorbing substrateIntrinsic material properties, without relying on additives
Long-term heat resistance60℃ × Long-term Strength RetentionISO 527Pale and brittleThermally stable systemAntioxidant (thermal-oxidative)
Flame retardantUL94 V0, halogen-free preferredUL94 / GWITSafety standard rework, precipitationHalogen-free flame retardant system
Root fatigueLong-term rotation without cracksDurability rotation testThe leaf flies outGlass fiber orientation Gate optimizationCoupling agent (interface)

How to use this table: record the row for strength and the row for dynamic balance separately. Focus only on the modulus, not on dynamic balance. The fan will start making noise after half a year, and no matter how high the strength is, it will be useless. For parts that involve dynamic balance, the moisture absorption dimension row carries a very high weight.

A practical reminder: For parts requiring dynamic balancing, list the 'wet dynamic balancing grade' separately in red, and don’t mix it with the 'dry modulus' in the same table. If mixed, moisture-induced drift gets averaged out, both dynamic and static balancing pass at the factory, but once installed in a humid machine room, it will fail.

A reminder: The fact that dynamic balance is affected by moisture absorption is often overlooked. PA66 absorbs 8% moisture, and after the blades absorb moisture, both their weight and dimensions change, subtly shifting the center of gravity—the higher the rotational speed, the greater the centrifugal force amplifying this slight shift. Dynamic balance reports must be based on the conditioned state, not the dry state.

5. Four Common Misjudgments and the Real Causes

Judgment one: The fan noise indicates that the material strength is insufficient.

This is the most typical misjudgment. When the customer hears the fans running, their first reaction is 'the material is no good.' The noise from server fans is most often due to imbalance deterioration—moisture absorption causing off-center weight, warping affecting airflow, and root fatigue causing cracks. None of these three are directly related to 'whether the strength is sufficient.' When we handle such cases, we first ask about the fan speed and the humidity in the server room, then determine whether it is imbalance or fatigue, without rushing to replace the material.

Judgment 2: Room temperature brittle fracture and low temperature brittle fracture are considered the same thing.

In blade testing, "brittle fracture" often occurs, but the handling approaches for the two situations are completely different. Brittle fracture at room temperature is mostly due to insufficient toughening, weak weld lines, or inadequate drying; brittle fracture at low temperature is usually because the wrong type of toughening agent was chosen—ordinary elastomers become brittle by themselves at low temperatures. You can distinguish them with three quick questions: at what temperature did it break, did it deform first or break directly, and is the fracture cross-section radial or fibrous. If you can't tell, you'll just keep changing materials without success.

Counter-triple three: Use the dry-state dynamic balance report to determine the design.

Nylon absorbs moisture, which causes it to swell and become heavier. PA66 absorbs 8% moisture, and after the blades absorb moisture, the center of gravity shifts, causing the dynamic balance grade to drop. Using dynamic balance measured in the dry state for assembly, after running in the machine room for half a year, as humidity rises, the balance will be ruined. Both dynamic balance and dimensions must allow for tolerance according to the conditioned moisture state.

Judgment 4: Once the flame retardant is added, it's done.

Halogen-free flame retardants need to be added in large amounts. Some flame retardants or antioxidants can migrate to the surface under long-term heat and high processing temperatures, resulting in exudation, fogging, or yellowing. This is a formulation-side issue — if the processing temperature exceeds the heat resistance or the auxiliary agents are not heat-resistant enough, the surface will become dirty. When you see yellowing and exudation, first check the heat resistance of the additives, and don't rush to change the substrate.

A timeline (industry common path of dynamic balance deterioration): fan injection molding, dry-state dynamic balancing qualified → installed and running in the machine room → half a year of moisture absorption, center of gravity shift → noise increase, accelerated bearing wear → after one year, blade wind sweep or slight root cracks → the trace is that moisture absorption dimensions did not leave allowance for wet state. The problem was buried in the material selection stage, it just happens slowly.

6. Processing and Verification: Dynamic balancing and flame retardancy should be monitored separately

The server fan is an injection-molded part, with the two slots controlled separately.

Drying. Nylon must be baked; if the moisture content exceeds the standard, molding will degrade, causing reduced strength at the base of the blades and high internal stress. Drying should be based on the measured moisture content to determine the window.

Gates and runners. The blades have thin walls and long flow paths, and the orientation of the glass fibers determines the strength and warpage at the root. The gate position must be set first, otherwise it cannot be recovered later.

Mold temperature. Raising the mold temperature of fiberglass parts to the range of 110–120°C results in a dense surface, fewer floating fibers, and minimal warping.

Dynamic balancing process. After injection molding, dynamic balancing weights need to be added, leaving a margin according to the expected wet state. If this step is skipped, everything afterward depends on luck.

Verification order. It is recommended to arrange it like this:

1. Material level: flexural modulus, thermo-oxidative retention rate

2. Dimensional level: coplanarity in dry and wet states, dynamic balance

3. Durability Level: Long-term Rotation Noise Curve

4. Flame Retardant Grade: UL94 / GWIT

5. System level: Final inspection before assembling the whole machine

The order cannot be changed. If the previous item hasn't passed, moving on will make the subsequent data meaningless.

7. Boundaries: When not to use modified nylon

This section might be more valuable than the previous one.

Firstly, ultra-high-speed or aviation-grade fans. Such fans have requirements for dynamic balance and fatigue that exceed the normal range of thermoplastics, so metals or special materials are more stable.

Secondly, fan positions where the long-term temperature exceeds 120°C. Ordinary PA66 systems are not enough; semi-aromatic or PPS types are required.

Third, precision positions requiring near-zero noise limits. The rotational noise of nylon and moisture absorption fluctuations may not be acceptable in such scenarios; metal or special materials need to be used instead.

Fourth, the annual usage is too small to justify the cost of injection molding and validation. Precision blades that require balancing need tooling, gate optimization, and durability testing, which is not feasible with an annual usage of only a few hundred units.

Fifth, corrosive media or strong static environments. These require specialized systems; general modified nylon cannot cover them.

Writing these five points at the beginning is not to discourage, but to save time. Projects that go smoothly during the sample phase but are later rolled back during mass production due to dynamic balance or flame retardant precipitation—I've seen more than one; the cost of rollback is much higher than not doing it in the first place.

8. Material Change Risk Checklist (What needs to be changed when switching from the original plan to modified nylon fan blades / fan frame)

link; segment; partWhat needs to be moved?Points that are easy to overlook
MoldThe blade gate is determined according to flow balance, without using the old positionFiber orientation causes weak roots
DrySet the window according to the measured moisture contentMoisture carried in by recycled materials
Material Temperature / Mold TemperatureThe mold temperature of the fiberglass parts is raised to 110–120°CGive only according to the recommended value by grade
Pressure holding and demoldingFocus on controlling the roots and leaf tipsSplice line high stress zone
Humidity controlDynamic balancing is based on the wet-state allowanceNormal when dry, slightly abnormal when wet
Color differenceAdvance confirmation of exterior color samplesExpected yellowing of flame-retardant system
Verification orderMaterial → Size → Durability → Flame Retardant → SystemProceed if the previous item is not passed

9. One-page report form (for those reporting upward)

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Project: Server fan blades / fan frame · Material route evaluation

Conclusion: fiberglass nylon can be a candidate, but whether it can be implemented depends on three prerequisites

1. The three essential points to be preserved

1. Dynamic balance is determined by wet state, not dry state

2. Two formulations: blade and fan frame, not a single material

3. Warping should be moved to the gate first, then material replacement should be discussed

2. Prerequisites (if any one is not met, postponement is recommended)

· Long-term operating temperature ≤ 60°C (local details to be separately)

· Dynamic balancing process and wet margin plan with

· Annual usage is sufficient to dilute injection molding and verification investment

3. Next steps

1. Perform wet and dry coplanar coplanarity and dynamic balance

2. Perform long-term rotation noise curve

3. Gate and runner balance solution

Risk warning: The main uncertainty in this route lies in dynamic balance and moisture absorption size, not in initial strength.

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10. Two common questions readers often ask

Question: What's the difference compared to imported nylon fans?

Let's just talk about two things you can compare: for the same indicator, check if it marks the test state (dry or wet, full speed or single point); For the same item, see if it provides long-term dynamic balance data. Fan components are extremely sensitive to condition, so it's best not to compare numbers with unknown status. Some blades are already mature in the domestic PA66-GF toughening route, but for some high balance grades, caution is still advised—when it comes to your speed, you need to consider temperature and humidity.

Question: Is PA66-GF sufficient? Should I use the upper half of the aromatic mode?

Check temperature and location. Server fans are 40–60°C, PA66-GF toughening systems are sufficient and cost-effective; Only long-term temperatures above 120°C or locations near heat sources should semi-aromatic elements be considered. Before upgrading, confirm the temperature rise is true and that structural allowance is optimized; then replacement is not too late. Most server fans are more worthwhile to spend on dynamic balancing and gates than upgrading to base materials.

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