工业齿轮材料怎么选?轴承保持架与齿轮两条线

应用领域 发布时间: 2026-09-13 1815 阅读

Last month, a customer who makes gear reducers sent a set of bearing cages.

The eight-holed plastic part has an outer diameter of about 60 millimeters, and a step has been worn around the edge of the pocket holes. When held up to the light, a noticeable bright band can be seen. He sent it together with the roller, which also has a layer of dark transfer material.

On the phone he said, 'The hole got worn bigger in less than a year, and it was the same with three different materials.'

I first asked three questions: Are you grinding the pocket hole, or is the rivet broken? Is the bearing grease-lubricated or oil-lubricated, and what is the rotation speed? Is the pocket hole formed in the mold or machined afterward?

After he finished answering, the direction was basically clear: he had been following the path of changing materials, but the problem was not with the materials.

This article discusses the judgment chain for industrial gear materials and bearing cages separately, and also clarifies in which situations this matter should not be pursued further.

First, distinguish between the two parts; this is the starting point of the whole piece.

The bearing cage is the structure inside the bearing that separates the rollers. It does not bear the main load itself; its requirements are that the pocket holes do not wear too large, do not move out of place, and do not become brittle.

An industrial gear is a torque-transmitting component. What is required is that the tooth surface does not peel, the tooth root does not crack, and the weld line does not lie on the stress path.

The failure modes of the two parts are completely different, so the criteria are not aligned.

Treat these two items as the same question; out of ten inquiries, eight will ask off-topic questions.

1. Two operating curves, at least four items need to be quantified

Let's first look at the cage.

Rotational speed and dn value. The common rotational speed is 1000–3000 rpm. What truly determines the limit is the dn value, which is the bearing inner diameter (in millimeters) multiplied by the rotational speed.

A bearing with an inner diameter of 40 mm and 3000 rpm has a dn value of 120,000 mm·rpm. According to publicly available information, the commonly used dn upper limit for plastic cages is roughly in the range of hundreds of thousands to millions, with the specific value depending on the standard of the bearing manufacturer.

Temperature. In conditions with oil lubrication, 80–120°C is common, and under high speed, the friction heat between the pocket and the rollers will add an additional layer.

Medium. Grease, lubricating oil, cleaning agents, and rust inhibitors. The grade of the grease and material compatibility should be confirmed during the prototype stage.

Now look at the gear.

Load. The single-tooth load and linear velocity determine PV. A contact pressure of 2 MPa combined with a linear velocity of 0.5 m/s results in 1 MPa·m/s; when this value approaches the upper limit, the temperature rise will first become uncontrollable.

Lifespan. Gear test rigs are often run at around 10^7 cycles. At 3000 rpm, 10^7 cycles is about 56 hours — it doesn't sound long, but the gear teeth need to be disassembled and inspected multiple times in between.

Appearance and compliance. Internal parts are insensitive to color differences, but sensitive to oil leakage, precipitation, and noise; in some cases, there are also requirements for being halogen-free.

Four numbers—rotational speed, temperature, PV magnitude, and lifespan count—first ask for all, then discuss the route.

Second, three material routes, laid out side by side

RouteTypical practiceWhat is it good at?Its cost
PA66-GF25/30Glass fiber reinforced, cage and mainstream direction of medium and low load gearsBalanced rigidity, heat resistance, and creep resistance; cost controllableDimensions will change after absorbing water; weld line strength is very sensitive to the gate position
PA46-GF30Higher melting point and crystallization rateCages and gears maintained above 120℃ for long periodsMore sensitive to moisture, narrow processing window, high cost
PA66 Solid Lubrication SystemAdd molybdenum disulfide or polytetrafluoroethylene systems on the reinforced baseReduce friction and wear, making the holes and gear surfaces more durable during operationDark parts; the wear of mating parts should be evaluated together

The focus of looking at this table is not on 'which one is better,' but on what each is afraid of.

The advantages of PA66 come from the density of amide groups: the more amide groups per unit chain length, the denser the hydrogen bonds, and the tighter the molecular chains are locked, so both rigidity and creep resistance are sufficient.

The cost also comes from here—high hydrogen bond density also means high water absorption.

A part with a water absorption rate of 1% has a dimensional change of about 0.2–0.3%. When it lands on the pocket of the cage, the clearance between the roller and the pocket starts to drift in one direction from 'just right'.

It's not that the accuracy is a little off; it's that the clearance when installed is not the same as after running for half a year.

PA46 has raised the heat resistance, but the cost is that it becomes more sensitive to moisture and has a narrower processing window. Its value lies in the line above 120°C, not in room temperature performance.

Solid lubrication deserves a separate mention: it reduces friction and wear, but the mechanisms of molybdenum disulfide and polytetrafluoroethylene are different, and the choice will vary depending on whether the mating part is steel or ceramic.

Choosing the wrong system lowers the friction coefficient, causing the mating parts to be worn first—this kind of case is not uncommon in wear-resistant parts.

On this side of the gear, there is another point that is different from the cage: the gear teeth are subjected to a compound motion of rolling and sliding.

The orientation of glass fibers near the tooth surface is determined by the direction of flow. Once the orientation is disordered, the wear resistance at different parts of the tooth surface will vary, and wear will begin on one side of the tooth surface first.

This is also why the gating design for gear parts must follow the tooth profile and cannot be applied as if they were circular parts.

On the cage side, it's the opposite: the pocket holes are continuous, and dimensional consistency is more important than local wear resistance.

3. Selection Criteria Table (This page is worth keeping)

The threshold values in the table are directional recommendations, not acceptance standards; the actual values must be determined by the specific project, specific working conditions, and actual measurements.

IndicatorDirectional thresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
PV value (pocket and tooth surface)Calculate by item, leave a surplus of 2 timesTest Bench Temperature Rise Measured Wear AmountEnlarged pocket holes, pitting on the tooth surfaceReduce PV or change structure Lubrication systemSolid lubricant
Maintain pocket hole sizeAfter 1000h, the aperture change is within 1/3 of the toleranceMeasured after temperature rise cycleEnlarged bore, roller movementMaterials Structural DesignMaterial intrinsic
Tooth surface contact fatigueAfter 10^7 cycles, the increase in tooth profile error is controllableGear Test Bench Tooth Profile MeasurementTooth surface spalling, chippingFiber Reinforcement Interface BondingCoupling agent (fiber interface)
Long-term thermal oxygen retention rateAfter 1000 hours at 100℃ ≥70%ISO 527Fading, becoming brittle, powdering offStabilization systemAntioxidant
Difference in wet and dry state dimensionsThe difference is controlled within 0.1%Measured before and after humidity adjustment / ISO 294Pocket clearance driftDelivered in a controlled humidity stateMaterial intrinsic
Low temperature gap shock-20℃ not less than 50% of the room temperature valueISO 179-1Chipping or corner breakage during clampingToughening systemBase formulation
Test bench temperature riseThe allowable temperature of fat not to be exceeded after stabilizationTest stand thermocouple measurementFat carbonization, seizureReduce PV or change the heat dissipation pathMaterial intrinsic

How to use this table: first look at the PV row, then look at the tooth surface fatigue row.

If the PV cannot get through, both the root fillet and the tooth surface are doomed; if the tooth surface fatigue cannot get through, the gear's line ends directly.

The remaining several items are factors that 'determine whether it can be stable long-term'; they are important but come later.

In the 'Verification Method' column of internal and external tests, there are many items of bushing wear that do not have existing national standards to follow. When there is no standard to follow, include the verification plan in the technical agreement, rather than omitting this item.

4. Four common types of failures and their real root causes

Failure 1: The pocket hole gets bigger and bigger with wear, and changing to harder material doesn't help.

This is the most common misstep for this type of part. Most people's instinctive reaction is 'the material is too soft, switch to a grade with higher rigidity,' so the fiberglass content is increased from 25% to 35%, and then to 40%.

But the common root cause of oversized bearing pockets is an excessive PV value, not insufficient hardness. Wear occurs on the plastic side, yet the triggers are often in the operating conditions and lubrication: a high rotational speed, selecting the wrong grease brand, or excessive clearance between the bearing pocket and the roller.

Adding fiberglass at this time only makes a part that is being ground harder and more brittle.

The correct sequence of actions is to first check the PV, then look at the fat, and finally discuss the materials.

Failure 2: Gear tooth breakage, fracture occurs at the tooth root.

The root cause is usually not brittle material, but that the weld line happens to fall at the root of the tooth. When the gate position of the gear part changes, the position of the weld line changes accordingly; the higher the glass fiber content, the more obvious the decrease in weld line strength.

This can be solved by changing the gating, changing the material won't solve it.

Failure 3: The same batch of items has inconsistent yellowing.

This is not 'unstable material.' It is more likely that the antioxidant is unevenly dispersed during the mixing stage—within the same batch, some particles have more antioxidant and some have less, which manifests as color differences on the parts after injection molding.

Seeing this phenomenon, first check the mixing process and masterbatching, don't rush to change the material.

Failure 4: Fat turns black, bearings seize.

This issue is often not a material problem. When the temperature rise exceeds the allowable temperature of the grease, the grease carbonizes first, and then the cage holes and rollers directly undergo dry friction.

Measure the temperature on the test rig first, do not measure the strength first.

One thing to say directly: the order for troubleshooting the failure of bearings and gears is first operating conditions, then structure, and finally materials. If the order is reversed, you will keep going in circles changing materials.

5. Processing and Validation: What is a priori and what is a posteriori

Dry. Nylon must be dry. If PA66 contains more than 0.15% moisture, it will hydrolyze and degrade at melting temperature; ordinary hot air dryers are basically ineffective for nylon, and a dehumidifying dryer must be used.

The drying window is determined according to the actual measured moisture content, not copied directly from the recommended value for the grade.

Mold temperature and crystallinity. The common mold temperature for PA66 is 80–100°C. If the mold temperature is insufficient, the crystallization will be incomplete, and the part's heat resistance and wear resistance will not reach the nominal level — in this case, switching to a better grade is useless.

Weld line position. Gears and cages often have cores and multiple gates, so weld lines should be indicated on the drawings for review together and cannot be left to be added after the prototype mold is made.

Annealing and moisture conditioning. It is recommended that precision cages be delivered after annealing or moisture conditioning to reduce the impact of dimensional changes on the fit.

Verify the order, it is recommended to arrange it like this:

1. Comparison of sample properties (tensile, impact, modulus, thermo-oxidative retention)

2. Perform a short shot test mold and mark the weld line positions

3. Single-pocket or single-tooth loading stand

4. Complete bearing or complete gearbox test rig, record temperature rise throughout the process

5. Environmental Superposition: Temperature Cycling Medium Immersion

The order cannot be changed. If the previous item is just skipped, the data measured later has no explanatory meaning.

A professional detail: the pocket size of the cage should be measured once 24 hours after injection molding and once after humidity adjustment is completed.

The difference between two sets of data is more useful than the absolute value — a large difference indicates that this part is sensitive to conditions, and the humidity of the assembly environment must be included in the protocol.

6. Boundaries: When this matter should never be discussed

This section might be more valuable than the previous few sections.

In the following four situations, it is not recommended for the rack or gear to follow the path of plastication:

First, the dn value significantly exceeds the common range for plastic retainers. The centrifugal force and temperature rise of high-speed bearings go beyond the range that thermoplastic materials can stably support over the long term, and such requirements need to consider metal or phenolic routes.

Secondly, the tooth surface has a high linear velocity and there are no controllable lubrication conditions. Under dry friction, the temperature rise of the plastic tooth surface quickly becomes uncontrollable, which cannot be solved by the formulation.

Third, the accuracy requirement reaches the level of gear grinding. The modulus, thermal expansion, and moisture absorption expansion of plastics are all much greater than those of metals, and this gap is at the material physics level, which cannot be compensated by changing the formulation.

Fourth, long-term operation above 120℃ under continuous heavy load. There is insufficient data to support the long-term performance of conventional glass fiber reinforced PA66; one should consider PA46, PPA, or metals.

Writing these four points at the beginning is not to discourage, but to save time. For projects that go smoothly at the sample stage but get stuck at mass validation and then have to backtrack, the cost of backing out is much higher than not doing it from the start.

It should also be clarified: the bearing housing and the gear cannot be packaged together to make a decision. In a tool or a reducer, the criteria for these two parts are not aligned. Forcing them to use the same material often results in one part taking on working conditions that it should not bear for the other part.

7. Self-production capability level: How far can we go

What we do is very concrete: we turn resins like PA6, PA66, PA46, PA11, PA12, PA6T, and PA9T into a form that a specific part can actually use.

For prototyping parts like retainers and gears, we proceed in rounds.

First produce a small sample to test the material properties and thermal-oxidative retention, then determine the short-shot gate weld line position, and finally set up the loading fixture with a single pocket or single tooth.

Samples from each batch are kept; if there is a deviation, we can trace back to see which batch changed what.

The auxiliary system in the formula is matched according to the working conditions per item — conventional auxiliaries are kept in stock, and special models are matched as needed; you report the working conditions and grade, and the materials and auxiliaries are prepared together at once.

Material Change Risk List (switching from metal or POM, items that need to be modified)

Items to be changedWhat should be paid attention to?Points that are easy to overlook
MoldThe shrinkage rate difference changes with the glass fiber content, and the pocket holes and tooth shapes may need mold modification.Only provide based on the general shrinkage rate, no compensation per item.
DryNylon must be dry; excessive moisture content will cause hydrolytic degradation, making parts brittle.Use a hot air dryer instead of a dehumidifier
Material Temperature and Mold TemperatureMold temperature directly determines crystallinity, which in turn determines heat resistance and wear resistance.Copy the recommended value from the brand, without looking at the part
Fusion lineWhen the gate changes, the weld line also changes. The tooth root and the cavity wall are most vulnerable if the weld line passes through them.It was only discovered after test molding that the weld line is on the stress path.
Pressure Holding and DemoldingThe weld line strength decreases more sharply when the glass fiber content increasesFollow the original component's holding pressure curve
Humidity controlAcceptance is based on the dimensions after moisture adjustment; dry-state data is only used for process records.Based on the average wall thickness to estimate the time, the thick-walled areas are not fully soaked.
Verification orderSample → Short shot → Single-piece stand → Complete machine → Environmental stackingIf the previous item fails, just move on.

One-page report sheet (for people who need to report upwards)

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Project: Bearing Cage / Industrial Gears · Material Route Assessment

Conclusion direction: Modified nylon can be a candidate route, and whether it can be implemented depends on four prerequisite conditions

1. Three Rules That Must Be Followed

1. First verify the PV and temperature rise, then discuss the material grade.

2. The location of the weld lines is marked on the drawing and reviewed together with the gate.

3. Delivered in a humidity-conditioned state, dry-state dimensions are not reported

2. Precondition (It is recommended to postpone if any are not met)

· The dn value falls within the common range for plastic retaining brackets

· There are controllable lubrication conditions, and the compatibility of the grease with the material has been confirmed

· The precision requirement does not reach the level of gear grinding

· Test bench verification budget and cycle on the order of 10^7

3. Next Steps

1. Take the actual roller and pocket hole, and measure the fit clearance and amount of wear

2. Short-shot three-mode, mark the welding line positions

3. Test bench run temperature rise curve, look at the temperature first and then the wear

Risk Warning: The main uncertainties of this route lie in temperature rise and weld lines, not in initial strength.

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Two questions readers often ask

Question: Can cages be made with recycled materials to reduce costs?

The key is the position of the part. The cage is a moving component, and the pocket size directly determines whether the bearing can operate. Material with a broken molecular chain is not recommended for this type of part. In the cost reduction sequence, the material is placed in a later position.

Question: Can gears and cages use the same grade to simplify inventory?

You can try, but don't draw conclusions first. Gears are more concerned with tooth surface fatigue and weld lines, while cages are more concerned with pocket size and temperature rise. In the same piece of equipment, the failure modes of the two components are different; using the same material often just shifts management convenience to one component failing earlier.

Conclusion

The replacement of the bearing cage and industrial gears with plastic ultimately comes down to a working condition matter, not a hardness issue.

There are only three judgment chains:

Set PV for rotational speed → Set the system for temperature → Verify the order to determine success or failure.

Revisiting the three opening questions—are we grinding the pocket hole or the rivet, grease or oil, in-mold forming or post-processing—they respectively point to the three aspects of wear, lubrication, and process.

Once the three points are matched, whether these two parts can use modified nylon naturally has its answer.

If you have a bearing cage or gear that needs material specification, sending over three things can provide guidance: rotational speed and dn value, continuous operating temperature, and lubrication method along with the grease brand.

Explain who we are in three lines:

Modify performance — Modified nylon (PA6 / PA66 / PA46 / PA11 / PA12 / PA6T / PA9T and nylon alloys), modified PPO / PPS / thermoplastic elastomers;

Stock available — major chemical giants' nylon resin, secondary brand materials, and bulk materials in stock;

To judge—what part, use what material.

What we do is very concrete: we turn the above resins into a form that can actually be used for a specific part. Additionally, we collect nylon raw materials, sprue scraps, and various types of nylon waste on a long-term basis, with proper disposal channels.

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