灵巧手齿轮与指关节件用什么微型耐磨尼龙?小到一定程度,尺寸比强度更要命

应用领域 发布时间: 2026-09-13 4162 阅读

Last month, a team working on dexterous hands came to inquire about miniature gears and immediately asked, 'Which of your modified nylons has the highest strength?'

I asked them what the module of the gear was. They said 0.3.

I replied: A gear with a module of 0.3, don't ask about the strength yet, calculate the water absorption first.

For a module of 0.3, the tooth height is only a few tenths of a millimeter, and the tooth thickness is even thinner. On such parts, even a tiny change in the material's dimensions due to humidity is enough to eliminate the backlash. This article explains the matter of materials for dexterous hands in the order of 'dimensions first, strength second.'

1. The failure of micro gears occurs first in size, not in strength.

Let's first mention a fact that is easy to overlook: the smaller the gear, the higher the weight of dimensional stability.

The reason is geometric. The gear backlash is an absolute value—for example, 0.02 mm. And the dimensional change caused by moisture absorption is a proportion—for example, 0.3%.

For gears with a large module, the tooth thickness may be 3 mm, and 0.3% is 0.009 mm, which is still within the tolerance.

For a gear with a module of 0.3, the tooth thickness may be only 0.4 mm. 0.3% is 0.0012 mm, which seems smaller—but its tolerance is also much smaller, often only a few microns.

As the numerator shrinks by a certain amount, the denominator also shrinks by the same amount, and the proportional relationship remains unchanged. The problem is: at the micron-level tolerance, changes on the micron scale can no longer be considered 'negligible'.

How much water absorption actually consumes, here is a scenario we experienced ourselves.

In the early years, I made a batch of micro gears with a module of 0.5 for a client, using conventional PA6 with glass fiber. All the samples passed inspection when they came off the line, and the report was issued for the dry state. When the client installed them into the module, after running for two weeks they started making abnormal noises.

After checking back and forth, we finally found out that it was an item that had been left in the workshop for a few days, absorbed moisture on its own, causing the tooth thickness to exceed the tolerance and the mesh to become tight.

Later, we changed the delivery rules for this type of micro-components: all must be conditioned before testing and conditioned before delivery, with dry-state data only used for internal process records. At the same time, we adjusted the materials one step towards lower water absorption.

This example illustrates that for miniature parts, whether the material absorbs water is not an academic issue, but a matter of whether it can be delivered.

There is another counterintuitive point: the acceptance of miniature parts depends more on their condition than that of large parts.

For the same batch of samples, measurements in a dry state and measurements in a conditioned state may lead to two different conclusions.

So on the drawings of miniature parts, in addition to the dimensions, it is also necessary to clearly specify 'under what condition it is measured'.

In one sentence: For making large gears, you can first screen the material for strength; for making miniature gears, first screen the material for water absorption.

2. Six-dimensional working condition: What is the dexterous hand microcomponent clamped by?

Dimensions and tolerances. This is the first dimension. The tolerances of tooth thickness, pitch, and center distance are all at the micron level, and any fluctuation in state will be amplified.

Load. The torque of the dexterous hand is not large, and the load on a single tooth is light. This is crucial—it means that strength is often not the bottleneck, and instead provides more room for material selection.

Number of cycles. Frequent gripping, high frequency, but low stress per instance, belongs to high-cycle low-stress fatigue.

Environmental humidity and temperature. When the hand is close to the drive motor, there is a temperature rise; at the same time, the dexterous hand is often used in normal temperature environments, so humidity is actually the larger variable.

Lubrication. Miniature gears are difficult to oil, and most are made self-lubricating. This requires the material itself to have low friction characteristics.

Cleanliness and compliance. Some applications come into contact with the human body or food, and there are additional requirements for leaching.

When viewed from six dimensions, an counterintuitive conclusion emerges: in the material selection of dexterous small components, the weight of the strength dimension is actually very low; size and friction are the main battleground.

Three, three material routes, comparing the costs side by side

RouteWater absorption / Dimensional stabilityResilienceSelf-lubricatingSuitable scenarios
POM (Copolymer POM)GoodGoodGoodConventional miniature gears, cost-sensitive
Low water absorption nylon (PA12 / PA46, etc.)Good to very goodGoodMedium (lubrication system can be added)Micro components requiring higher temperature resistance or greater toughness
PEEK / Special Engineering PlasticsVery goodmiddleGoodHigh temperature, high cleanliness, long life, cost-insensitive

Looking at this table, the focus is not on 'which is stronger,' but on the trade-off between cost and water absorption.

POM is the evergreen of miniature gears: dimensionally stable, self-lubricating, tough, and cost-controllable. However, POM has limited temperature resistance and is difficult to bond and surface-treat.

The advantage of low water-absorption nylon is that it can improve temperature resistance and toughness while maintaining its dimensions, and it can also be formulated to have self-lubricating and wear-resistant properties. The trade-off is that its unit price is higher than POM.

Special materials like PEEK address high temperature and cleanliness, with the cost being price.

Here is a point to remind you: changing the system is not just changing a number, it is changing an entire set of processing windows. The melt temperature, mold temperature, shrinkage, and demolding of POM and nylon are all different, so the mold basically needs to be redesigned.

4. Selection Criteria Table (This is the page you should collect the most in this article)

The threshold value is a directional recommendation, not an acceptance standard—the actual value must be determined through actual measurements based on your module, tolerance, and usage environment.

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Dimensional change after moisture absorptionThe change in tooth thickness falls within the tolerance zoneMeasured before and after humidity adjustment / ISO 294Mesh becomes tighter or looser, abnormal noiseLow water-absorption substrate Forced humidity controlIntrinsic properties of the material determine it, without relying on additives
Friction coefficient (self-lubricating)The lower it is, the more it helps reduce wear and temperature riseASTM D1894Tooth surface wear, localized temperature riseSelf-lubricating systemLubricant / Wear-resistant Filler
High-cycle fatigueThe tooth profile error is controllable after the target number of timesMicro Gear Test StandTooth root fatigue crackToughening Tooth root fillet
Gap ShockCoverage assembly and drop conditionsGB/T 1043chipped tooth, broken toothToughening systemToughening agent
Long-term thermal-oxygen retention rateAssessment based on hand temperature riseISO 527become brittle and turn whiteStabilization systemAntioxidant
Tooth profile accuracy (mold end)Determined by the precision of each piece, usually at the micrometer levelGear Measuring CenterTooth profile deviationGear teeth are made individually with shrinkage compensation
Cleanliness / PrecipitationAssess according to scenario standardsScene specification methodPrecipitation, pollutionChoose a clean system
Clearance (After Assembly)Determined according to mating parts and tolerancesInstall the paired parts for actual measurementStuck or empty returnTooth profile compensation Humidity adjustment
Ejector Marks / Surface DefectsThe tooth surface must not have ejector pin marksVisual MicroscopicLocal stress, early wearEjection Method and Gate Redefinition

How to use this table: Start with the first row. If you can't meet the row for material selection and moisture-absorbing dimensions of the micro gear, all the other indicators are meaningless—because the part either won't fit at all, or if it fits, it will make noise after running for two weeks.

An additional usage note: This table should be viewed in categories according to the modulus.

For parts with module 0.3 and module 1, the threshold for the same indicator is not the same.

First, confirm which range your modulus falls into, and then compare it with the threshold value.

5. Four common failures and their real root causes

Failure 1: Sample passed, but abnormal noise appeared two weeks after installation.

The root cause is moisture-induced dimensional drift. The sample was measured in a dry state, and after installation, it absorbed moisture to reach equilibrium, causing a change in tooth thickness. The solution is to deliver in a humidified state and retest, not to change the material.

Failure 2: Tooth surface turns white and powdery.

The root cause is the local temperature rise combined with thermal oxidative aging. Miniature gears have a small heat dissipation area, so frictional heat easily accumulates locally. At this point, switching to a higher-grade antioxidant is helpful, but the root cause lies in the friction coefficient and meshing accuracy, not in the material itself.

Failure 3: Tooth root cracks and broken teeth.

The root cause is mostly insufficient fillet at the tooth root or misaligned assembly, not insufficient material strength. The fillets at the tooth roots of miniature parts are often made relatively small, resulting in obvious stress concentration. This issue cannot be solved by changing the material; the mold needs to be modified.

Failure 4: The same batch has varying dimensions and a low assembly pass rate.

This is mostly due to uneven dispersion or crystallization. If the filler or lubricant is not thoroughly mixed during the blending stage, it can lead to increased dimensional deviations between parts. When you see this phenomenon, first check the mixing process and masterbatching, and don't rush to change the material.

Here's something that needs to be said directly: for failure investigation of micro parts, first look at the condition (dry or wet) and the mold (round corners, tooth shape), and only then suspect the material. Because the tolerances of micro parts are so small, any fluctuation will be amplified into 'the material is no good'.

6. Processing and Verification: Several Things That Must Be Decided in Advance

Drying. All nylon systems must be dried; low water absorption does not mean no drying is needed. For micro parts with thin walls, the impact of moisture inside the part is even more direct—the water in the material will hydrolyze during melting, directly affecting the root strength of the teeth.

Moisture conditioning. This item is not optional for miniature parts. The moisture conditioning conditions, duration, and evaluation methods must all be recorded in the technical agreement, along with weight or dimensional re-measurement.

Tooth profile compensation. The tooth profile is not circular, and shrinkage varies at different points. Tooth profile compensation for micro parts must be done individually and cannot use a general shrinkage rate.

Orientation and gate. The runner of the miniature part is short and fills quickly, so the effect of orientation is significant. The gate position should avoid the stressed tooth roots.

Molding and Ejection. If the ejector pin marks of micro components fall on the tooth surface, it is equivalent to embedding a wear starting point.

The ejection position should avoid the meshing area, and the mold temperature should allow the tooth root to cool first.

This point should be raised during the mold review, not remedied when trial molding.

Verification order. It is recommended to arrange it like this, do not change the order:

1. Dimensions (after humidity adjustment): actual measurement of tooth thickness, tooth pitch, and center distance

2. Assembly: Engage with the actual mating part and measure the backlash

3. Test bench: run high-cycle operation, remeasure tooth profile midway

4. Environmental Superposition: Humidity Cycle Temperature Rise Cycle

5. Whole machine: Mount onto the dexterous hand to perform grabbing and gripping actions

The order cannot be changed. If the previous item fails, just move on; the subsequent data has no explanatory meaning.

7. Boundaries: When This Matter Should Not Be Discussed

For the following four situations, it is not recommended to use modified nylon for micro parts:

First, the long-term temperature exceeds the continuous operating range of the selected system. Small components have poor heat dissipation, and local temperature rises will be higher than the overall machine temperature. When selecting a system, the calculation should be based on local temperature, not ambient temperature.

Second, parts that require long-term submicron precision. The dimensional accuracy of these parts has already exceeded the range that thermoplastics can support with stable humidity regulation, depending on special engineering plastics and even metals.

Thirdly, parts whose structure cannot accommodate tooth profile compensation and for which it is not feasible to reopen the mold. The tooth profile of miniature gears must be compensated per part, and it is basically impossible to produce qualified parts using the old mold.

Fourth, the annual usage is too small to justify the cost of micro molds and validation. Micro molds are expensive and the validation cycle is long, so if the usage is too low, it is not economically viable.

Fifth, the dimensions between parts are required to be completely consistent. The batch variation of injection-molded parts is an objective reality.

Micro components can only reduce fluctuations, not bring them to zero. Requirements of this kind need to be aligned with the customer regarding the tolerance range in advance.

Writing these five points first is not to discourage, but to save time.

Material Change Risk List (Things that need to be changed when switching from the original plan to low water-absorption nylon)

link; segment; partWhat do you want to move?Points that are easy to overlook
MoldThe teeth are compensated for shrinkage individually, basically requiring a restart.Use the shrinkage rate of POM
DryDetermine the window based on the measured moisture contentThe miniature part has thin walls, and water directly affects it
Humidity controlForced moisture adjustment Weight-based determination RetestEstimate time based on average wall thickness; small pieces are either under-penetrated or over-penetrated
Material Temperature / Mold TemperatureJoint adjustment according to tooth profile filling and precision requirementsGive only according to the recommended value by grade
Pressure holding and demoldingThe miniature parts are prone to deformation, and the ejection method needs to be redesigned.Pimple marks appear on the tooth surface
Color differenceThe base color of the low water absorption system is relatively lightAppearance requirements should be confirmed in advance
Verification orderMoisture Adjustment Size → Assembly → Test Bench → Environment → Complete MachineOnly perform dry-state validation

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

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Project: Dexterous Handheld Miniature Gears / Knuckle Joints · Material Route Evaluation

Conclusion: Low-absorbency nylon or POM can be candidates, with trade-offs depending on temperature rise and tolerance

1. Three essential items to be maintained

1. Deliver in wet condition, dry data not reported

2. Compensate for shrinkage in tooth profiles by piece, do not apply general values

3. Select system based on local temperature rise (not ambient temperature )

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

· Tolerance zone can accommodate moisture absorption dimensional changes of the selected material

· Allow reopening for tooth profile compensation

· Have a miniature gear bench or equivalent verification method

· Annual usage sufficient to dilute the cost of the micro mold

3. Next action

1. Take the paired part and measure the actual meshing side clearance margin

2. Size difference before and after humidity adjustment, evaluate the component's sensitivity to humidity

3. Perform a high-perimeter bench comparison under the same operating conditions

Risk warning: The main uncertainty of this route lies in dimensional drift caused by humidity, not in strength.

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Three Frequently Asked Questions by Readers

Question: Can we just use ordinary PA66 for micro gears? It's easy to process and cheap?

It depends on the module and tolerances. If the module is large and tolerances are loose, you can use it; If the module is below 0.5 and tolerances are at the micron level, the moisture absorption size of ordinary PA66 usually can't handle the drift. For this type, you either go for a low-absorption system or accept a humidity-controlled delivery with relaxed tolerances.

Question: If lubricant is added, does that mean you don't need to worry about friction?

The direction is correct, but don't overdo it. Excessive lubricant can cause frosting, affect appearance and welding, and for micro parts, excess lubricant can make dimensional control even more difficult. Friction is a systemic issue, related to substrate, crystals, and the surface of the counterpart part.

Question: How long does humidity adjustment take, and how do you count as complete?

Don't look at the time, look at the result: measure moisture content by gravimetric method, and only finish adjusting when it reaches the equilibrium value.

Micro parts have thin walls, so the speed is faster than for large parts, but it's also easier to absorb the head.

The determination of humidity regulation should be written in the technical protocol, not just the words "humidity adjustment treatment."

Conclusion

Choosing materials for dexterous micro parts is, ultimately, a matter of dimensions, not strength.

There are only three judgment chains:

Modulus determines tolerance→ Water absorption determines system→ humidity regulation determines delivery.

Once all three are set, the question of "what material to use" naturally becomes clear.

If you have a dexterous micro part to specify, send over three things and you can give direction: modulus, tooth thickness tolerance, and local temperature rise.

One last note: the bulk of micro component cost often doesn't lie in the material.

In molds, humidity control, and verification rounds. When selecting materials, count all these together to keep accounts.

The most troublesome inquiry is: "Which company uses this part?" "—— For micro parts, what's more important than "which company" is "what condition is the delivery condition."

What we do is very specific: converting resins like PA6, PA66, PA46, PA11, PA12, PA6T, PA9T, and nylon alloys into a truly usable part form; We also modify PPO, PPS, and thermoplastic elastomers.

also deals in nylon resin, sub-brand materials, and bulk materials from major chemical giants, and also regularly collects nylon raw materials, sprue return materials, and various nylon scraps, with official disposal channels.

For material selection and mold trial for these types of parts, you can chat together

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