PA66 与 POM 怎么选?齿轮滑动件各走各的路

塑料知识科普 发布时间: 2026-09-15 2489 阅读

73 PA66 and POM: Two Comparative Solutions for Gears and Sliding Components

1. Why these two materials are often compared

PA66 and POM are the two mainstream choices for sliding parts and gears:

PA66: Strength, toughness, impact resistance — used for load-bearing gears and transmission gears.

POM: self-lubricating, smooth, low wear—used for low-friction gears and sliders.

Both can make gear parts, but the cost, performance, and processing are completely different. This article clarifies each one's 'home turf' and 'boundaries'.

The grinder of the coffee machine is a good testing ground. A customer installed a PA66 gear and a POM gear each in a sample machine and had the customer service department do a blind listening test of the operating noise. The POM one was rated as smoother, while the PA66 one was considered more solid.

Both feelings are correct: POM has a low friction coefficient, is self-lubricating, and sounds clean; PA66 is rigid, tough, and impact-resistant.

The final plan is a hybrid: the driving gear uses POM for quietness, the driven gear uses PA66 for strength, and the intermediate drive shaft uses wear-resistant PA66. One gearbox has three different materials, each with its own role.

The engineer said this is called sound division of labor, in the ledger it's called performance division of labor, anyway, it's not an either-or choice.

2. Differences in Chemical Structure

PA66: Polyamide, contains amide groups (polar).

POM: Polyoxymethylene, main chain -CH₂-O- repeating.

The difference lies in polarity: PA66 is polar, highly water-absorbent, and can form a thin oil film by itself; POM is non-polar, hydrophobic, and hardly absorbs water. This polarity difference determines the starting point for all the performance differences between the two.

① The amide groups of PA66 allow it to form an oil film with the counterpart (after absorbing water), so its 'self-lubricating' property is effective under moderate loads.

② The -CH₂-O- main chain of POM gives it high crystallinity, good fluidity, low wear, and makes it easy to add POM self-lubricants.

③ POM hardly absorbs water—its dimensional stability is much better than PA66. In situations where dimensional tolerance is critical, POM has the advantage.

④ Neither can withstand strong acids or strong bases — but acids damage POM more directly, while bases are more harmful to PA66.

3. Key Performance Comparison

IndicatorPA66POM (copolymer)Direction of difference
Tensile Strength (Unreinforced, MPa)80-9060-70PA66 slightly higher
Bending modulus (unreinforced, GPa)3.0-3.52.8-3.2approach
Notch Impact (kJ/m²)5-106-8PA66 slightly higher
Water absorption rate (23℃ saturated, %)2.0-2.50.2-0.3POM is 1/10 of PA66
Coefficient of friction (self-dual, dry)0.3-0.50.2-0.4POM is lower
Wear (abrasive wear, mg)10-305-15POM is lower
Maximum continuous operating temperature (°C)120-15095-110PA66 high grade
Welding strengthmiddleLowPA66 Strong
Mold shrinkage rate (%)1.2-1.71.5-2.2POM slightly high
Injection molding fluiditymiddleVery goodPOM Easy Pour
Glass Fiber Synergy EfficiencyTallmiddlePA66-GF Strong
Fatigue lifeTallmiddlePA66 High
Unit price (standard grade, reference)1.0×0.9-1.1×approach

4. Where POM Excels

① Slide that requires no additional lubrication

The self-lubricating performance of POM is significantly superior to PA66 under low to medium loads. On gears, sliders, hinges, and drive belts, POM can operate for a long time without oil. This is crucial in the following situations: food machinery, medical devices, and cleanroom equipment where lubricating oil cannot be applied.

② Dimensional Stability

POM hardly absorbs water (0.2-0.3%). For precision gears, snap-fit connections, and thin-walled gears, POM dimensions after three months are almost the same as the first piece. Under the same conditions, PA66 dimensions can increase by 0.5-1%, which may cause tolerance issues.

③ Injection Molding Flowability

POM has better flow than PA66, allowing thin-walled gears (≤1mm wall thickness) to be fully filled. This is important for complex gears and precision gears with a small module.

④ Processing Stability

The processing temperature range of POM is narrower than that of PA66 but more stable—once the process is set, batch differences are small. PA66 is affected by moisture absorption, and deviations can occur depending on the drying condition of each batch of material.

5. Where PA66 Excels

① High load conditions of the stressed gear

The strength limit of POM is about 70 MPa (unreinforced). Under heavy loads, PA66-GF30 is the preferred choice. In scenarios such as automotive transmissions, powertrain gears, and wind power gears, PA66-GF30 is mainstream.

② Impact Resistance

The notch impact of POM is one level lower than PA66. Untoughened POM is brittle at low temperatures, while PA66 outdoor gears are more stable in winter.

③ Welded assembly

The welding strength of POM is extremely poor, and it can hardly be ultrasonic welded. This is POM's natural shortcoming. PA66 can be used to make welded joint assemblies.

④ Temperature Resistance

POM begins to oxidatively degrade (releasing formaldehyde) at 100℃ over the long term. PA66 can withstand 120-150℃. PA66 is safer for high-temperature gears.

6. Operating conditions that neither of them is good at

① High temperature ≥130℃ long-term

PA66 can't hold up, and POM can't hold up either. We need to go with PPA / PA46 / PA6T.

② High precision High load

POM has sufficient precision but insufficient strength; PA66 has sufficient strength but its precision is affected by moisture absorption — this situation requires post-processing (such as humidity conditioning and molding) with glass fiber reinforcement and high-rigidity formulations, making the process difficult.

③ Strong acids and strong bases

PA66 is not resistant to strong acids, POM is not resistant to strong acids — both will be corroded.

④ Food grade, medical grade

The food contact grade of POM is more complex than PA66, and the formaldehyde release from POM is a compliance challenge. The food-grade formulation of PA66 is more stable.

7. Judgment on the Combined Use of Four Articles

In many projects, PA66 and POM are not mutually exclusive; instead, both materials are used in one part, each responsible for a specific section:

① Gear and bearing housing assembly

Gears use PA66-GF30 (for load-bearing), and bearing housings use POM (self-lubricating with low friction). This is the most common combination of PA66 and POM.

② Slider and Guide Rail Assembly

The slider (moving part) uses POM (low friction), and the guide rail (static part) uses PA66-GF30 (load-bearing). Commonly found in printers and office equipment.

③ Synchronous pulley Synchronous belt

POM is self-lubricating and suitable for making pulley teeth. However, the load-bearing layer and connectors of timing belts are often made of PA66-GF30 woven materials.

④ Waterproof parts Rotating parts

The casing is made of PA66 (for strength), and the moving parts are made of POM (self-lubricating). Designed like a dishwasher or washing machine.

This approach of 'dividing the work between two materials' is more practical than 'struggling to choose between the two materials'.

VIII. Four Extended Judgments (Comparison between Gears and Sliding Components)

Judgment 1: Low wear does not equal long life. POM has low wear, but under high temperature or high load, wear can increase dramatically. True 'long life' depends on the combination of temperature, speed, and load conditions.

Judgment Two: Dimensional stability does not equal precision stability. POM absorbs little water, but has a high coefficient of thermal expansion (one level higher than PA66). In environments with large temperature fluctuations, the thermal expansion and contraction effect of POM is greater than that of PA66, which may introduce new errors.

Judgment Three: The 'low' in low friction is a relative value. POM has a friction coefficient of 0.2-0.4 against steel, but adding 5% PTFE can reduce it to 0.1; adding 10% oil can reduce it to 0.05. It depends on whether additional lubrication is still needed.

Judgment Four: The gear module and diameter determine which type can be selected. Precision gears with a small module (≤0.5) and a large diameter (≥50mm) are easy to mold with POM and have stable thin walls; high-load gears with a large module (≥1) and a small diameter (≤30mm) are more reliably strong with PA66-GF30.

IX. Boundary Statement

Operating conditionSuggestion
High-load gears (≥50 MPa contact stress)PA66-GF30
Medium and low load self-lubricating gearsPOM (copolymer)
Precision dimension gearPOM
Welded assemblyPA66
High temperature ≥120℃ gearPA66-GF30 (also with glass fiber)
Food grade, medical gradeUse a specialized PA66 formulation (see catalog)
Sliding environment without lubricationPOM or POM PTFE
Thin-walled long-process gearPOM
Large module high power transmissionPA66-GF30

Appendix: Two selection examples

Example 1: Printer Gear Assembly

Operating conditions: low load (office environment); precision module 0.5; requires oil-free operation; dimensional stability.

Deduction:

Low load → POM is fine

Oil-free → POM self-lubricating is better than PA66

Precision modulus → POM has good fluidity, and the mold can be filled

Dimensional stability → POM does not absorb water

Conclusion: POM (copolymer).

Example 2: Electric Curtain Reduction Gear

Operating conditions: intermittent load (10 seconds per operation); module 0.8; required 5-year lifespan (outdoor).

Deduction:

Intermittent load → Medium strength requirement

Outdoor → Temperature / weather resistance requirements (up to 60°C in summer)

5-year lifespan → Creep and aging need to be stable

Conclusion: PA66-GF30 UV stabilizer. POM will slowly oxidize during long-term outdoor exposure at 60℃, while PA66-GF30 UV formulation is more stable.

Industry insight: The biggest misconception in gear material selection is thinking 'using ABS/PA66/PC is enough.' We have seen many precision gear projects that continued using PA66 simply because 'we used PA66 before and never had problems,' only to encounter a lot of short shots and half a year of mold modifications when switching to POM. The core of gear material selection is not 'which material I like,' but 'under this working condition, which material's boundary conditions are being exceeded.' When we list the boundary conditions of PA66 versus POM and make the project team clearly see 'where it is getting stuck,' the material selection becomes much more stable.

A winter of a door lock actuator

The starting point is that the gear of the car door lock actuator uses POM, and all tests at room temperature passed.

Incubation period of two years, northern winter temperatures of minus twenty-five degrees, occasional vehicles making abnormal noises when unlocked, after-sales service handles on a case-by-case basis.

The outbreak occurred in the third winter, with cold waves erupting in concentration and a batch of complaints about jammed cards appearing. The toughness of POM decreases at low temperatures, and the gaps on the worn tooth surfaces are amplified.

Settlement plan: Replace the gears with low-temperature toughened PA66 reinforced with solid lubricant, and fine-tune the gear profile for compensation. Then two winters passed safely.

The conclusion of this case is very clear: at normal temperature, gears are measured by accuracy; at low temperature, gears are measured by toughness. When the temperature changes, the ranking changes.

The gears of PA66 and POM meet, and three issues are finalized.

Follow-up question 1: What is the minimum working temperature? At low temperatures close to minus twenty degrees, caution is needed with POM.

Follow-up Question 2: What are the lubrication conditions? In non-lubricated situations, natural POM is superior; with grease, the gap narrows.

Follow-up Question 3: Does the load have an impact? In impact situations, the toughness of PA66 is hard currency.

Extension: Four-step quick judgment (PA66 vs POM direction)

Four steps to condense the selection of gears and sliding parts into executable judgments:

Step 1: First mark the load and speed. High load (≥50 MPa contact stress) → PA66-GF30; medium to low load in non-lubricated environment → POM (copolymer).

Step 2: Measure welding and assembly. The welding strength of PA66 is much higher than that of POM. For multi-component welded assemblies, PA66 is preferred; for single-component parts, POM is preferred.

Step 3: Assess self-lubrication requirements. Conditions where oiling is not possible (POM's self-lubricating advantage) — food machinery, medical devices, clean rooms, where POM has an absolute advantage.

Step 4: Measure dimensional stability. POM absorbs almost no water (0.2-0.3%), and the dimensions of precision parts remain accurate after 6 months; PA66 absorbs 2-2.5% water, and its dimensions will drift with humidity.

Besides these four methods, there are also the 'two-material division' solutions: gear and bearing housing combination → gear PA66-GF30, bearing housing POM. This is the most common pairing and is more practical than worrying about 'which one to use'.

Practical Combat: Three Steps

Step 1: Consider friction and strength separately. POM has low friction, PA66 has high strength—don't try to achieve both at the same time. It's safer to have the two materials handle different parts.

Step 2: Gear Dynamic Balancing Dual testing of weld lines. High-speed gears must undergo dynamic balancing with a grade of G2.5 or higher; welded gears also need to be tested for weld line strength.

Step 3: Consider composite solutions for long-life components. Gear PA66-GF30 and bearing housing POM are the most common division in gearboxes. Using a single material to achieve 'both requirements' often causes problems.

Finish off with one more sheet of three questions and three answers.

Frequently Asked QuestionsAnswer in one sentence
Who should be prioritized for mute?POM naturally has a low coefficient of friction
Who to choose for impact resistance?PA66, especially has impact at low temperatures
Who has good dimensional stability?POM, water absorption is almost zero
Can they be used interchangeably?Yes, the gear system components each perform their own duties, which is mainstream.

Add another reverse case.

There was a project that put PA66 gears into a lubrication-free precision mechanism, attracted by its toughness. As a result, PA66 swelled slightly after absorbing water, reducing backlash, and after half a year of operation, crawling noise appeared. Precision lubrication-free mechanisms are the territory of POM, and water absorption is a natural disadvantage of PA66. Entering someone else's main field turns an advantage into a burden.

The Origin of Numbers: Why Two and Three

Why is POM self-lubricating? Its molecular chains are orderly, it has a high degree of crystallinity, and low surface energy, so its friction coefficient against steel is naturally low. It can move on its own and doesn’t need much oil. The clean running sound in a gearbox is the direct result of low friction. The trade-off is that its toughness is average, more noticeable at low temperatures, and impact conditions are its no-go zone.

Why does the ranking reverse at low temperatures? Around minus twenty degrees, the toughness curve of POM drops significantly, while the curve of the PA66 toughened system remains stable. At room temperature, POM leads due to low friction, but at low temperatures, PA66 overtakes thanks to its toughness. When the temperature changes, the ranking changes—the first question in gear selection must be the lowest temperature, before discussing friction and noise.

Practical Checklist: Six Actions for Gear Project Initiation

The driving wheel and the driven wheel are made of different materials, each performing its own function.

The minimum working temperature is written into the acceptance; for cold region projects, an additional grade is added.

For non-lubricated situations, first check the PV value; don't just look at the friction coefficient.

Check the toughness curve under impact conditions, with a focus on the low-temperature section

Tooth profile relief allowance, including both water absorption and wear

Conduct random tests of operational noise every year, and keep data records for comparison

Gears are the parts in the transmission system that are most specialized in division of labor. By assigning materials according to their roles, noise, lifespan, and cost can all be accounted for.

Quick Reference Manual: Gearbox Division Quick Lookup

Positionfirst choiceReason
Drive wheels (high-speed)POMLow friction, low noise
Driven wheel (impact-receiving)Toughened PA66Resilience Reserve
Bushing and gasketWear-resistant PA66Both pressure-resistant and wear-resistant
Seal ring seatPOMDimensional stability

The task allocation table looks simple, but behind it is a sequence achieved through many trials and errors. The gearbox is a textbook example of material division: there is no all-purpose material, only a well-divided combination.

Here's another judgment tip from the after-sales side: for noise complaints, first check the temperature records. If complaints are concentrated in winter, it basically points to insufficient low-temperature toughness; if complaints are concentrated in summer, it's mostly because thermal expansion has eaten up the side clearance, which is less related to the material and more related to the fitting tolerances.

A temperature timetable can first sort after-sales issues into two categories: materials or design, immediately narrowing down the investigation direction by half. This technique doesn't cost money, but it requires that the after-sales data include a temperature column—many teams' data sheets have everything, except temperature, which is the most worthwhile field to add.

The final piece of advice for gear components: check the compatibility of lubricating grease with plastics. Some greases behave differently when POM and PA66 are soaked long-term, so provide the grease grade to the supplier during selection, and have the compatibility test done in the same batch. The materials in the gearbox never work in isolation; grease is the third material, don’t forget it.

Add another assembly-end detail for the gearbox: press-fit force. The interference fit design differs between POM and PA66: POM is rigid and hard, and if the interference is too large, it cracks directly; PA66 is more tough and has a higher tolerance. In the assembly manual, the upper limits of the press-fit force for the two materials are written separately, which reduces a lot of 'inserted but cracked' hidden scrap on the production line.

Some customers have counted that after this change, the scrap rate for gear assembly dropped from six per thousand to less than one per thousand, without changing the material, without spending extra money, purely by writing the character of the material into the work instruction.

Conclusion

The division of labor between PA66 and POM is the contrast between 'high-strength gears' and 'self-lubricating gears'.

PA66 is the main field for load-bearing gears: high strength, impact resistance, weldability, glass fiber reinforcement—power gears, transmission gears, outdoor gears.

POM is the home field of sliding parts: self-lubricating, dimensionally stable, easy to mold — precision gears, sliders, thin-walled gears.

The starting point for choosing a material is not 'which is stronger,' but 'which aspect is my part stuck on.' If it's stuck on strength, impact, or durability, choose PA66-GF30; if it's stuck on self-lubrication, dimensions, or ease of molding, choose POM.

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