鞋扣材料怎么选?替 POM 前先看这五项

应用领域 发布时间: 2026-09-16 2812 阅读

Last week, a client who makes sports shoe fasteners asked whether the shoe fastener material could be changed from POM to modified nylon.

The sample pieces he sent are very small, packed in a self-sealing bag, seven in total, with colors ranging from off-white to dark gray.

There was also a sticky note stuffed in the bag, on which was written: 'The customer complained that the webbing was cut, suspecting that the buckle is too soft.'

I arranged the seven pieces on the table in the order he said, and then asked him the first question: Is the break on the webbing or on the buckle?

He was stunned for a moment and said: On the ribbon.

I said: Then among these seven items, maybe six of them are fine.

This article will clarify three things: the different types of fastener failures, the five criteria to truly consider when replacing POM, and why the wear resistance of fasteners isn't necessarily better the harder they are.

1. The failure of fasteners is 80% not due to 'breaking,' but 'loosening' and 'cutting'.

First, clearly explain the work related to the fasteners.

Shoe buckles, eyelets, and sports fasteners all share a common feature: they do not bear weight; they endure 'repetition'.

A buckle, a clasp, an eyelet, will undergo tens of thousands of uses for putting on and taking off and tens of thousands of pulls in a lifetime.

It has a total of five failure modes, and 'break' doesn't rank at the top.

Loose. The locking force has weakened. The part is not broken, but it can’t clamp anymore, and the shoelaces slip by themselves.

Round. Claws or teeth are worn round, the engaging surface becomes dull, and the locking force drops accordingly.

Cut. The edges of the buckle wear through or cut the webbing. This is the type most easily misjudged in complaints.

Crack. The base of the elastic arm is cracked. This really has to do with whether the material is brittle.

Swell. The size increases, making it difficult to push into the eyelets during assembly, or it cracks after riveting.

Among the five forms, only 'crack' and 'swelling' are strongly related to the material itself, while the other three are more related to structure, surface, and fit.

In a word: When selecting fastener materials, it is first necessary to distinguish whether it is a 'material problem' or a 'structural problem', and most complaints fall on the structural side.

Let's also talk about that judgment of 'thinking it's too soft'.

The buckle and the webbing form a friction pair of plastic against fabric.

It has nothing to do with that kind of 'hard-on-hard' like gears and bushings.

(Why) fabric is a bundle of fibers, and it is afraid of the cutting edge effect. As long as there are burrs, parting lines, or right-angle transitions on the edges of the webbing holes in the hardware, even if the material is extremely hard and wear-resistant, the webbing will still be slowly sawed through.

On the other hand, if the hole walls are rounded, polished, and smooth, a softer material is actually more friendly to the webbing.

So, the complaint that 'the webbing was cut' most of the time should not be attributed to the hardness of the material.

2. Six-dimensional working condition: What is the clamp held by?

Break down the working conditions of the fastener into six dimensions, and assign a verifiable quantity to each dimension.

Temperature. Commuter shoes are calculated for 0°C to 40°C, while outdoor and winter sports gear need to be considered for -20°C or even -30°C.

Low temperatures have a more direct impact on buckles than on outsoles: buckles are thin-walled small parts, and the elastic arm has a notch at the base, which chips off a level faster under low temperatures.

Load. Static pull-out strength is a hard metric.

When the shoelace of a shoe is tightened, the force at a single point is usually on the order of tens of newtons; the instantaneous peak during movement can reach several hundred newtons.

Let's convert it: a static requirement of several tens of newtons sounds easy, but that is the requirement for 'one time'; what the fastener really has to pass is the 'tens of thousands of times' test.

Medium. Sweat, rain, melting snow salt, sunscreen, detergent.

Sweat is weakly acidic, and long-term soaking can accelerate the hydrolysis of certain systems, as well as affect the appearance.

Lifespan. The number of insertions, removals, or openings and closings is determined per part. For parts like the 日字 buckle that are not inserted or removed, what is assessed is the 'retention of locking force after repeated stress'.

Appearance. Fasteners are exposed small parts, and their color, gloss, whether they are frosted, whether there are shrink marks and weld lines are all included in the appearance standards.

Compliant. In contact with skin, involves consumer product safety and volatile substances; outdoor parts also need to pass weather resistance tests.

Putting the six dimensions together, we can see a conclusion: among the six dimensions of fasteners, three are 'long-term quantities'.

Locking force retention, plug-in and plug-out lifespan, and weather resistance cannot be concluded from a single test.

This is also the reason why this kind of small item is most prone to failure—passing all tests at once, but six months later starting to receive concentrated complaints.

3. Before replacing POM, first lay out the four routes together

RouteStiffnessWater Absorption and SizeGap ShockSelf-lubricatingWeightCommon positioning
POM (copolymer / homopolymer)TallExtremely low (about 0.2%), size stableLow, gap sensitiveGoodWeight (approximately 1.41)Traditional mainstream
PA6 or PA66 (unmodified)middleHigh (percentage points of saturation)middlegeneralLight (approximately 1.13)Rarely used alone
PA6 / PA66 Glass FiberTallanisotropyLowgeneralmiddleStructural fasteners, guide rail components
Toughened PA6 / PA66middleHigh, need to adjust humidityTallAdjustableLightMainstream alternative route

Look at this table, the focus is not on which column looks good, but on which column the threshold for POM is replaced.

The threshold is not in strength, but in two columns: size and notch impact.

The moat of POM is a water absorption rate of about 0.2%—it hardly absorbs water.

Landing on a small buckle a few millimeters thick, the POM part hardly changes in size from the factory to two years of use.

The water absorption rate of nylon is an order of magnitude higher. When it falls onto the same buckle, its dimensions will change significantly after reaching moisture saturation.

(Conversion) For making a 20-millimeter-long snap, the length change caused by moisture absorption can reach around 0.1 millimeters—that is already on the scale of an entire fitting tolerance.

This is the first hurdle for this POM matter: it's not about 'whether the strength is enough,' it's about 'whether the size can be maintained.'

Now look at the second column.

POM has low notch impact strength, which is its well-known drawback. After nylon is toughened, its low-temperature notch impact strength can be significantly higher than that of POM.

So the route is very clear:

If you want stiffness, go with glass fiber reinforcement; if you want impact resistance, go with a toughened system; if you want both, then you have to make concessions or compensations regarding water absorption.

There is also an underestimated account: weight.

POM has a density of about 1.41, while regular nylon is about 1.13. For the same volume, the weight difference is about 20%.

(Conversion) A 4-gram clasp, converted to nylon, is about 3.2 grams; with four clasps and several eyelets on a pair of shoes, a pair of shoes can save a few grams to more than ten grams.

When it comes to 'calling a shoe lightweight if the whole shoe is 20 grams lighter,' this is not a negligible number.

By the way, let me clarify one thing: eyelets, slide buckles, '日' buckles, and clasps, although all called fasteners, have different criteria.

The eyelet is a ring-shaped part, judged by its resistance to compression and wear; the buckle is an elastic arm, judged by notch impact and fatigue; the 'ri' shaped buckle is a purely load-bearing part, judged by creep and friction.

Writing them on the same selection sheet is inherently wrong.

4. Selection Criteria Table (The five items that POM needs to check, listed in this table)

The threshold value is a directional recommendation, not an acceptance standard. The actual value must be determined through actual measurement based on the part type, wall thickness, fit tolerance, and target operating temperature.

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Gap impactNormal temperature and low temperature are assessed separately, and no 'sufficient' lower limit is set for low temperatureGB/T 1043.1 Simply Supported BeamBrittle fracture at the root of the flexible armGo for a toughening systemToughening agent
Dimensional change after water absorptionAccording to the fit tolerance, it is usually required to be less than the unilateral tolerance.Measured before and after humidity adjustmentCannot fit in, cracks after rivetingLong carbon chain system Humidity-controlled deliveryNucleating Agent (Crystallization and Shrinkage)
Flexural ModulusDetermine according to the required locking force; it is not advisable to copy the POM value.GB/T 9341Cannot clamp, locking force decayGlass fiber or mineral filledCoupling agent (interface)
Friction and WearDetermined by pairs, the fabric pairs have separate standardsGB/T 3960 Sliding Friction WearThe cam is rounded, and the webbing is cut off.Chamfering Surface treatment LubricationLubricant (Internal and External Balance)
Long-term creepDetermined according to service life and preloadSteady-state creep measurementLoosens by itself after long-term clampingIncrease crystallinity and fiber orientationNucleating agent (crystallinity)
Insertion and removal or opening and closing lifespanPriced per piece, usually starting from thousands of unitsComponent-level fatigue test rigClamping force attenuationFlexible arm structure optimization
Surface and appearanceNo frost, no shrink marks, parting lines not exposedVisual color differenceRework of exposed partsControl external lubrication amountLubricant (Total Amount Control)

How to use this table: Do not score line by line.

First, look at the second row 'Size change after water absorption' and the first row 'Notch impact'.

If these two lines don't pass, the subsequent modulus and lifespan are meaningless — because it won't fit, or it will break in the first winter.

Follow the standard if the standard number can be found; if it cannot be found (for example, 'webbing wear'), write the testing method into the technical agreement. Clearly explain how to measure it, which is more useful than arguing about which material to use.

The last column of the table is for the person making the formula: under the same indicator, the type of additive supporting it is different.

Knowing which category is responsible for which metric makes adjustments not random.

5. Five types of failures and their real causes

Failure 1: Fracture at the base of the elastic arm, with a flat break surface.

This category is related to the material, but it is not 'insufficient strength'.

The root cause is usually gap sensitivity—the base of the elastic arm has sharp angles, or the weld line happens to be located at the base.

POM is originally sensitive to notches, and if it is changed to nylon following the fiberglass route, the weld line strength will drop another level.

The solution is to adopt a toughening system combined with rounding the structure, rather than simply increasing strength.

Failure two: The webbing was cut, and complaints were concentrated on the same type of buckle.

Go back to that first customer.

Among the seven samples, the one that usually has a real problem is often just one: the parting line burr at the strap hole was not cleaned properly.

This point needs to be explained separately: breaking the webbing usually isn’t because the material is too soft, but because the edges are too 'sharp'.

Using harder materials will only make it cut faster.

Failure three: After using for half a year, it can't clamp properly, and the shoelaces slip on their own.

The root cause is long-term creep. Nylon exhibits more noticeable creep than POM under high load, and the preload will gradually diminish over time and temperature.

The solution is to incorporate crystallinity and fiber orientation, while recalculating the initial pre-tension.

Failure 4: Uneven color in the same batch, with several pieces showing a whitish powdery surface.

It's not 'material is unstable'.

A pale, powdery appearance is mostly due to an excessive amount of external lubricating additives, or the processing temperature exceeded the additive's heat resistance limit, causing it to migrate to the surface.

This line on the exterior part is the first thing the customer notices. Once found, the bonding and printing processes must be re-inspected together.

Failure 5: After being installed on the shoe, it cannot be pressed into the eyelets.

The root cause is moisture absorption, not that the mold was made too small.

Nylon parts are often still relatively dry when they leave the factory, and after being at the customer's place for half a month, they will reach the proper size.

So for the dimensions given to the customer, it is necessary to specify which state they were measured in.

A straightforward statement: the order for troubleshooting fastener failure is—first look at the fracture morphology, then check the edge quality, and only finally suspect the grade.

If you can't distinguish these three steps, changing the materials is pointless.

6. Processing and Verification: A Few Things to Decide in Advance When Switching from POM to Nylon

Drying. POM hardly absorbs water, and many workshops use it 'directly without drying.' Nylon, on the other hand, must be dried.

Nylon with excessive moisture content will hydrolyze and degrade in the barrel. The parts made from it may look normal on the surface but feel brittle during use. This is the first major pitfall when changing materials.

Mold temperature and crystallization. The mold temperature of POM is usually higher than that of nylon, crystallizes quickly, and has a shiny surface.

The mold temperature of nylon is relatively low, so the crystallization speed and surface gloss need to be tested again. Mold temperature also directly affects nucleation and crystallinity; once the crystallinity changes, the stiffness and dimensions change accordingly.

Shrinkage rate and mold compensation. The molding shrinkage rate of POM is around 2%, while that of nylon is significantly smaller.

Using the original POM mold, the dimensions will shift in one direction. In addition, they will expand further after the nylon absorbs moisture, so the two changes need to be calculated together.

Holding pressure and demolding. The fastener is a small multi-cavity mold, and the holding pressure curve directly affects sink marks and dimensional consistency.

Demolding is more sensitive with nylon—it is easy to scratch the surface.

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

1. Material level: flexural modulus and notched impact in dry and conditioned states

2. Sample level: Dimensions and fit after humidity adjustment

3. Component-Level Functions: Pull-Off Force, Opening and Closing Lifespan

4. Whole shoe level: putting on and taking off experience, webbing wear

5. Environmental superposition: low temperature humid heat sweat

The previous item just goes downward, and the following data has no explanatory significance.

Here's an insider detail: for small parts like fasteners, measure the dimensions once before and once after humidity adjustment; the difference between the two measurements is more useful than their absolute values.

A large difference indicates that this part is sensitive to the condition, so the storage conditions on the customer's side need to be included in the technical agreement.

7. Boundaries: When not to intervene

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

In the following four situations, it is not recommended to switch this part from POM to modified nylon.

First, cooperate with the tolerance gauge for precision parts within a unilateral 0.05 millimeter.

The dimensional change of nylon after absorbing moisture cannot be reduced to this level just by formulation.

This type of demand stays in POM, or returns to a system with more stable dimensions.

Secondly, for the friction pair directly opposing the POM part, only one side is replaced.

Friction pairs are designed in pairs. If only one side is replaced, the friction coefficient, hardness, and wear rate of the two sides will not match, causing wear to concentrate on the side that was not replaced.

Third, parts that work long-term in weak acid or chlorine-containing environments.

POM itself is sensitive to acids, but the applicable range for nylon is also not wide. For this category, the list of media must be confirmed first; you cannot rely on guessing.

Fourth, parts with very small annual usage, and also those for which we want to continue using the old molds directly.

Both the shrinkage rate and water absorption dimensional changes require remolding. The mold costs are not evenly distributed, so this matter is not feasible financially.

There is one more thing to mention separately: eyelets and buckles are not the same thing.

The eyelet is a ring-shaped compression part, with the criterion's focus on compressive flattening and surface wear resistance; the buckle is a cantilever elastic part, with the criterion's focus on notch impact and fatigue.

Using the same batch of material to make these two pieces, most likely one of them will not meet the standard.

Writing these few points at the beginning is not to discourage, but to save time.

Material Change Risk List (Things to be modified when switching from POM to modified nylon)

link; segment; partWhat do you want to move?Points that are easy to overlook
MoldThe shrinkage rate difference is significant, and the dimensions basically need mold modification.Only counted the molding shrinkage, forgot about the moisture absorption part
DryMust be dried, set the window according to the measured moisture contentContinue the workshop habit of using POM without baking
Mold temperatureThe crystallization rates are different, so the mold temperature and cooling need to be retried.Give only according to the supplier's recommended value
Pressure holding and demoldingThe holding pressure curve of the multi-cavity mold for small parts needs to be resetTreat surface scratches as a mold problem
Humidity controlRe-measure the dimensions after humidity adjustment, and the delivery status needs to be specified.Estimating time based on average wall thickness, the thicker part hasn't absorbed through.
AppearanceThe parting line and gate position of the exposed parts need to be checkedBurrs on the parting line grind off the webbing
Color differenceThe system is different, the color palette needs to be reconfirmedNo separate standard has been set for the color difference between dark and light pieces
Verification orderMaterial → Sample → Component-level Function → Whole Shoe → EnvironmentGo straight to mass production after just one ramp-up.

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

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Commuter shoe buckles, size firstLong carbon chain nylon or stay in POMWater absorption size, notch impactMeasured before and after humidity adjustmentCan the tolerance be loosened?
Outdoor buckles, low temperature preferredToughened PA6 or PA66Low temperature gap shockGB/T 1043.1Minimum operating temperature
Structural buckle, stiffness firstGlass Fiber Reinforced PA66Flexural modulus, weld line strengthGB/T 9341Splice line position
Long-term stressed componentHigh-crystalline nylon or stay in POMCreep and clamping force retentionSteady-state creep measurementPreload design

Risk Warning: The main uncertainties of this route lie in water absorption size and long-term creep, not in initial strength.

Three questions readers often ask

Question: Can off-grade materials actually be used on this piece?

The deviations in secondary card materials mainly lie in color differences, fluidity, and batch stability. When making exposed fasteners, the color difference is the most likely checkpoint to cause issues; for internal structural components, it is relatively more forgiving. Before using it, first clarify one thing: does the criteria for this part include appearance? If it does, it must be inspected according to the standards for appearance parts.

Question: Are nylon buckles more likely to break than POM?

Look at the data for fractured and notched impact, not the strength numbers. Untoughened nylon is notch-sensitive at low temperatures and is not necessarily better than POM; after toughening, low-temperature notch impact will significantly improve. The issue is not the word 'nylon,' but which route is being taken.

Question: Can the POM mold be used directly?

Not recommended. The difference in shrinkage, combined with the moisture-absorbing part, will cause the dimensions to deviate in one direction. In most cases, mold modification is needed, and for large quantities, it is recommended to start over.

Conclusion

Go back to that first customer.

Later, the seventh piece he sent was one of the few samples that had problems — the parting line of the strap hole was not cleaned properly.

The material wasn't changed, just the mold was modified with one rounded corner, and the complaints stopped.

The judgment chain for replacing the fastener with POM basically has only three steps:

Determine the material based on the fracture shape → Determine the tolerance from the water absorption dimension → Determine the surface from the mating part.

Once these three steps are set, the question of "whether it can be replaced" naturally has an answer.

If you currently have a fastener or eyelet to select material for, just send over these three things and we can provide direction: minimum usage temperature, fit tolerance, and whether it is exposed.

The most frequently asked question about secondary-grade materials is whether they can be used for small parts like fasteners — our answer has always been to first see if there are appearance criteria in the judgment, and then talk about other factors.

What we do is very specific: we take resins like PA6, PA66, PA46, PA11, PA12, PA6T, PA9T, and nylon alloys, and modify them so that they are really usable for a specific part; we also modify PPO, PPS, and thermoplastic elastomers on the side.

We also deal in nylon resins from major chemical companies, secondary-grade materials, and large bulk materials. Additionally: we long-term collect nylon raw materials, sprue scraps, and all kinds of nylon waste, with proper disposal channels.

The additive system in the formula is configured according to the working conditions of the part — common additives are kept in stock, special types are matched as needed; you provide the working conditions and grade, and the material and additives are prepared all at once.

The selection of materials and mold testing for such parts can be discussed together.

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