机器人底座、导轨滑块与限位块用什么尼龙?这三个件的答案完全不一样

应用领域 发布时间: 2026-09-16 3233 阅读

Last quarter, a client who makes robot bodies sent over an exploded diagram, circling three positions: the base, the guide rail slider, and the limit block. He asked very directly: 'Can all three of these parts be replaced with modified nylon?'

I looked at the picture and replied to him: For these three items, the answer is not 'can' or 'cannot,' it is three different answers.

The main body of the base will most likely need to remain metal; the wear-resistant lining of the guide rail slider can be made; the limit block and vibration damping pad, on the other hand, are most suitable for plastic.

Many people package a component and ask about the material all at once, which itself is a starting point where material selection can easily go astray. This article separates these three types of parts for discussion.

1. First distinguish: the base is the 'load-bearing main body,' not a 'structural component'

The role of the base in a robot is to serve as the reference for bearing force — it has to transfer the entire machine's weight and dynamic reaction forces to the ground, and also provide a fixed mounting surface.

This role determines that its requirements for the material are: high modulus, creep resistance, and long-term flatness stability.

And thermoplastic materials, in these three aspects, are precisely not strong.

So the main body of the base (base plate, columns, mounting surface) is almost all made of cast iron, steel, or aluminum alloy. This is not conservatism; it's a division on the physical level: the modulus of metals is one to two orders of magnitude higher than that of plastics, and their creep under long-term loads is also much smaller.

Is there a place for plastic parts on the base? Yes, but it's for secondary parts:

- Vibration damping pad / isolation block: Metal washers transmit vibration, using elastomers or toughened nylon for isolation works even better;

- Cable fixing blocks, protective covers, and panels: they do not bear load, so making them out of plastic is completely reasonable;

- Limit block: bears impact but not continuous static load, also an appropriate location for plastic.

In a word: regarding the base, the question is not 'Can the base be made of plastic?' but 'Which parts of the base should not be made of plastic?'.

2. Guide Rail Slider: Wear Resistance and Rigidity Are Two Separate Issues

The plastic parts in the guide rail slider (linear guide slider) are usually the slider liner, retainer, end cap, and dustproof parts.

The working conditions of these parts have several characteristics:

The number of reciprocations is extremely high. One trip counts as one reciprocation, which occurs tens of thousands of times a day, amounting to several million times a year. These kinds of parts are typical high-cycle, low-stress fatigue parts.

The surface must be wear-resistant. The slide block liner is in direct contact with the guide rail, and wear determines the maintenance of accuracy.

It needs to have a certain rigidity. If the slider bushing is too soft, it will deform under lateral force, affecting the guiding accuracy.

But note one point: the main load borne by the slider is still supported by the guide rails and balls. The role of the plastic liner is to guide, reduce friction, prevent dust, and reduce noise, not to bear the main load path. Designing the slider liner as a load-bearing component is mistaking its role.

Here is a point that is easily overlooked: the wear of the slider lining depends on the 'plastic against steel' friction pair, not plastic against plastic. When selecting materials, one should consider the compatibility of this friction pair, rather than just the hardness of the plastic.

There is one more thing: the structure of the slider lining is more prone to problems than the material.

Uneven wall thickness and overly thin joints will deform first under lateral forces.

The accounting for the liner is half in the friction pair and half in the cross-section design.

Don't ignore the size aspect on the slider lining either.

After the lining absorbs moisture, it will swell. When it swells, the preloading increases, and the sliding resistance rises accordingly.

The precompression allowance should be left according to the wet state, not the dry state.

3. Limit Blocks and Vibration Dampers: This Is the True Realm of Plastics

Limit blocks, buffer blocks, and vibration-damping pads are the most suitable parts for being made of plastic.

The reason is simple: they bear impact and vibration, not continuous static load.

The characteristics of impact loads are short duration and high peak. At this time, what the material needs is toughness and damping, but metals have poor damping and not necessarily high toughness. Nylon and thermoplastic elastomers actually have an advantage here—they absorb energy, reduce noise, and do not damage mating parts.

This is also a phenomenon we have observed on the front line: when customers bring the base to ask about plasticization, nine times out of ten the direction is wrong; but when they bring the limit block or buffer pad to ask, the direction is often correct. This is because the failure modes of these two types of parts are different—one is creep, the other is impact.

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

Threshold values are directional recommendations, not acceptance criteria—the actual numbers must be determined by your load, stroke, and service life measurements.

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Long-term creep (under sustained load)Deformation controllable within the design lifeISO 899 or long-term load testingSlow sinking, extremely poor flatnessIncrease rigidity/crystallinity, or revert to metalNucleating agent (increases crystallinity)
Bending modulusDetermined according to structural rigidity requirementsISO 178Deflection under force, misalignment in guidanceFiberglass / Mineral FilledCoupling agent (interface)
Wear (on steel guide rails)Set lifespan target based on the number of reciprocationsSelf-built reciprocating test benchLiner thinning and precision declineWear-resistant system Paired surfacesWear-resistant filler / Lubricant
Notch Impact (Limit/Buffer Component)Cover the maximum impact loadGB/T 1043Impact cracking, spallingToughening systemToughening agent
Flatness / Dimensional StabilityMeets assembly requirements after humidity adjustmentCoordinate Measuring Machine / ISO 294Assembly stress, guiding deviationLow water absorption substrate Humidity adjustment
Long-term thermal-oxygen retention rateAssess based on actual temperatureISO 527become brittle and turn whiteStabilization systemAntioxidant
Damping / Vibration Reduction (Cushioning Components)Determine according to the vibration test resultsVibration Table ComparisonHigh vibration transmission and loud noiseChoose a high damping system
Sliding Resistance (Liner)Determined by pre-pressing and moisture absorption marginMeasured thrust with installed guide railBecomes tight and stuck after absorbing moistureWet-state reserved preloading marginLubricant (Internal and External Balance)
Insert pull-outDetermined according to assembly and maintenance conditionsPull-out TestLoose insert, damaged during maintenanceInsert structure and preheating

How to use this table: first look at the first row 'long-term creep'. This is the first critical step in selecting materials for structural components. If the component has to endure a static load for a long time and it fails the creep criteria, there is no need to look at other indicators — because its failure is slow and irreversible.

Five, four common failures and their real root causes

Failure 1: After being installed for six months, the flatness is extremely poor and the positioning is off.

The root cause is long-term creep. Under continuous static load, the material slowly deforms, and the part 'sags' a little bit. This is more common in plastic parts than wear and is also more easily misjudged as an 'assembly problem'.

Failure 2: The slider lining is worn thin, and the guiding accuracy decreases.

The root cause is wear. Two things need to be checked: the surface roughness and hardness of the paired guide rails; the lubrication condition. For a plastic-to-steel friction pair, wear often occurs on the plastic side, but the trigger is on the steel side.

Failure 3: The limit block is cracked.

The root cause is usually insufficient impact from low-temperature gaps or inadequate structural fillets. Low-temperature environments and low-temperature conditions need to be evaluated separately—data obtained at normal temperature will be different in winter.

Failure 4: The dimensions of the same batch of parts are inconsistent, making assembly difficult.

This is mostly due to moisture absorption or uneven dispersion. Special attention should be paid to the dispersion and length retention of glass fibers in glass fiber-filled parts. When you see this phenomenon, first check the mixing and drying, then talk about changing the material.

Failure 5: The liner feels tight when installed and only becomes smooth after running for a while.

The root cause is often the increase in pre-pressure after moisture absorption, or burrs getting stuck on the mating surface.

First check the wet dimensions and flash, don't rush to switch to softer material.

Parts that become tight once installed often had early warnings in the data, but they were covered up according to the dry-state report.

There's something that needs to be said directly: When investigating the failure of a structural part, first distinguish whether the part is bearing a 'static load' or an 'impact load' before discussing the material. The approaches for the two types of parts are opposite — static loads require stiffness, while impact loads require toughness.

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

Drying. Nylon must be baked; if the moisture content exceeds the standard, it will hydrolytically degrade during melting, which is especially obvious for glass fiber-filled parts. The drying window is determined according to the measured moisture content.

Orientation of glass fibers and weld lines. Glass fiber parts are anisotropic. Weld lines are weak areas, and the higher the glass fiber content, the more pronounced they are. For parts like limit blocks that are subjected to impact, weld lines must never be located in the direction of impact.

Fiber length is retained. Glass fibers break during processing, so the actual fiber length in the part is shorter than in the material. Spline data does not equal part performance, which is especially evident in thin-walled parts.

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

1. Material level: creep, modulus, impact, wear

2. Component level: flatness, assembly clearance, insert pull-out

3. Structural test bench: perform static load and vibration according to actual load

4. Whole machine: attach to the main body and perform typical actions

5. Environmental superposition: temperature humidity long-term load

7. Boundaries: When This Matter Should Not Be Discussed

In the following four situations, it is not recommended to proceed with modified nylon for these parts:

First, it bears the main load path and requires long-term precision stability. This is the role of the base body—to remain on the metal. The modulus and creep properties of plastic determine that it is not suitable as a high-precision load-bearing reference.

Secondly, locations with long-term static loads and relatively high temperatures. High temperatures significantly accelerate creep. The combination of high temperature and sustained load is the most dangerous for plastic structural components.

Thirdly, it requires a mounting reference surface with sub-micron level flatness. This level of precision requires metal or special materials; plastic cannot achieve this scale of stability even with humidity adjustment.

Fourth, the annual usage is too small to justify the mold. Such parts usually require a specialized mold, and if the usage is too low, it is not economically feasible.

Fifth, positioning parts that require long-term dimensional stability. The dimensional changes of nylon after moisture absorption are an objective reality.

If the tolerance of the positioning part is smaller than the magnitude of moisture absorption changes, neither material choice nor humidity adjustment can control it; it has to go back to metal.

Writing these five points at the beginning is not to discourage, but to save time. Items that shouldn't be plasticized but are plasticized often end up being returned — the cost of return is much higher than not doing it in the first place.

8. Count the three items separately: one comparison table

Placing the three types of components together, the differences are immediately clear.

pieceThe role in the whole machineMain payloadCan it be plasticized?Key indicators
Base bodyLoad-bearing referenceContinuous static load Dynamic reactionNot recommendedModulus, creep resistance, flatness
Guide Rail Slider BushingGuiding and Reducing FrictionHigh frequency, low stress FrictionOkayWear, rigidity, wet-state precompression
Limit block / Vibration damping padImpact and Vibration IsolationShort-term impact vibrationPreferred plasticToughness, damping, low-temperature impact

The thing that should be taken away from this table the most is not 'can' and 'cannot,' but the sentence 'why it is not recommended.'

The base body is not incapable of using plastic; it's that it bears precision responsibility, which plastic cannot handle.

The limit block is not 'just good enough to use'; the toughness it requires happens to be the strength of plastic.

The easiest mistake in selection is to put three types of components in one sentence when asking.

The answer given to a question asked in one sentence is bound to be based on the most difficult type; the other two types will be ignored.

Asking in parts actually saves time.

Material Change Risk List (from metal to modified nylon, things that need to be changed)

link; segment; partWhat needs to be moved?Points that are easy to overlook
MoldsShrinkage compensation is done per piece, and fiberglass parts have directionality.Directly make the mold using the existing metal part dimensions
DryGlass fiber reinforced nylon sets the window according to the actual moisture contentRecycled materials mixed with the water content brought in
Material Temperature / Mold TemperatureThe effect of mold temperature of fiberglass parts on floating fibers and surfaceGive only according to the recommended value by grade
Pressure Holding and DemoldingThick-walled parts have large shrinkage, and the holding pressure curve needs to be redefined.Removing from the mold too early causes deformation
InsertThe weld line around the insert should avoid the stress areaInsert Preheating and Encapsulation Temperature
Humidity controlParts that require humidity adjustment need to set conditions and re-measureIgnore dimensional changes caused by moisture absorption
Verification orderMaterial → Part level → Structural test rig → Complete machine → EnvironmentOnly perform short-term tests, do not perform creep tests

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

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Project: Peripheral Structural Components of Robot Base · Material Route Evaluation

Conclusion direction: Part decision — the slider lining and limit block can be plasticized, the base body is recommended to remain metallic

1. Three Rules That Must Be Followed

1. First, distinguish between 'continuous load parts' and 'impact load parts', and select them separately.

2. Components subject to sustained loads must undergo creep testing; short-term strength alone is not sufficient.

3. The impact test piece must be notched and impacted at the lowest temperature.

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

· This part does not bear the main load path

· The deformation under long-term load is within the design allowance

· Means to verify creep or long-term loading

· Annual usage is enough to amortize the dedicated mold

3. Next Steps

1. Classify the parts on the exploded view as 'load-bearing / non-load-bearing'

2. Perform long-term load deformation test on the candidate part

3. Re-manufacture impact test specimen for minimum temperature notch impact

Risk warning: The main uncertainty of this type of material lies in long-term creep, not in initial strength.

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Two questions readers often ask

Q: If the robot base is entirely replaced with glass fiber reinforced nylon, it should reduce the weight quite a bit, right?

Weight reduction is possible, but the base needs to remain undeformed, and the modulus and creep of glass fiber nylon do not reach this level. Weight reduction should be sought from non-load-bearing components, not from reference components. Replacing the reference component with plastic will save weight, but that weight will be paid back in terms of precision.

Question: Can the slider bushing and the limit block be made from the same material?

Not recommended. Slider liners need to be wear-resistant and rigid; limit blocks need to be tough and energy-absorbing. One is afraid of wear, the other is afraid of impact—they are two opposite directions of the same base material. Select them separately and use each within its own system.

Conclusion

The selection of materials for the peripheral parts of the robot base is ultimately a component-by-component question, not a one-time material selection question.

There are only three judgment chains:

First distinguish between load-bearing and non-load-bearing → then see whether the load is continuous or impact → finally choose the system.

Once all three are set, the question of 'whether you can use plastic' naturally has an answer.

If you currently have a set of structural components to determine the materials, sending over three things can give direction: the role of the part in the overall machine's load-bearing, the magnitude of long-term loads, and whether there are impacts.

Finally, one last point: the easiest thing to save when plasticizing structural parts is weight;

The easiest to return are precision and the number of repairs. These two should be calculated together.

About us, four sentences.

Manufacture modified nylon pellets: PA6, PA66, PA46, PA11, PA12, PA6T, PA9T, and nylon alloys, also produce modified PPO, PPS, and thermoplastic elastomers.

Raw materials: Nylon resins from major chemical giants, secondary-grade materials, and bulk material stock.

Engage in recycling: long-term collection of nylon raw materials, sprue regrind, and various nylon wastes, with proper disposal channels.

Act as a running companion: discuss an item from material selection to mold testing, and clarify the areas that shouldn't be made of plastic in advance.

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