鞋大底材料怎么选?耐磨与冰面防滑的平衡

应用领域 发布时间: 2026-09-15 2432 阅读

Last month, a customer who makes hiking shoes came to ask what material should be used for the shoe sole.

He wants to replace a rubber sole with an elastomer based on a modified nylon system, for only one reason: weight reduction.

When sending the sample, he attached a note, on which three numbers were written in ballpoint pen: DIN wear 120, wet slip 0.42, hardness 62.

On the phone he spoke very directly: 'I only want these three numbers, nothing else.'

I asked him the first question: Who gave you these three numbers? He paused for two seconds and said, the previous material factory.

I said: These three numbers are not three numbers in the same dimension; they are two accounts undermining each other.

This article explains three things about outsoles: why wear resistance and slip resistance are in conflict, what each of the three routes sacrifices, and what kind of shoes really shouldn’t modify the outsole.

1. The failure of the outsole is, in 80% of cases, not 'worn through,' but 'slipped first.'

First, clarify the work done by the base sole.

The sole is divided into three layers: the midsole provides cushioning and rebound, the outsole provides grip and wear resistance, and the sole plate is the piece sandwiched in the middle or directly attached to the ground.

The outsole needs to do four things at the same time: grip the ground, withstand wear, support the foot, and maintain its shape.

Out of the four things, consumers will only complain about two: wearing out quickly and being too slippery.

And these two, in terms of materials, are a pair of inverse variables.

Why reverse—anti-slip relies on 'stick'.

The softer the material, the deeper the microscopic protrusions embed into the ground when stepped on, the larger the real contact area, and the greater the friction.

Wear-resistant relies on 'bearing'.

The harder the material and the higher the crystallinity, the less material is cut away by the ground.

One needs to be soft, the other needs to be hard. This is the primary contradiction of the base seasoning.

In one sentence: The selection of the outsole, in essence, is about finding a position between 'sticking well' and 'bearing well'.

And this position is not fixed; it moves with the temperature.

Rubber is soft at normal temperature and provides good slip resistance on wet surfaces; when it reaches below minus ten degrees, it becomes hard and brittle, losing both slip resistance and folding durability.

The modulus change of nylon elastomer in this section is smoother than that of rubber, and low temperature is its opportunity.

But the hardness and wear resistance limit at room temperature is not as flexible as rubber.

So the real question shouldn't be 'which material is better'.

The question should be: On what temperature of ground are these shoes mainly used for running?

Let's go back to that note at the beginning.

That client wrote the DIN wear, slip coefficient, and hardness all in one line, treating it as an inspection sheet.

The problem is that the sources of these three numbers are completely different: wear is the volume loss on the test bench, slip resistance is the coefficient of friction, and hardness is the indentation.

They are three separate curves, and in most formulas, when one goes up, another has to go down.

How these three curves are arranged is really what needs to be discussed when choosing the main seasoning base.

2. Six-dimensional working condition: What exactly is pinching the big base

Break down the operating conditions of the main base into six dimensions, and assign a verifiable quantity to each dimension.

Temperature. This is the first dimension, and also the dimension that is most easily overlooked.

Commuter shoes in southern cities may be worn in temperatures as low as 0°C; for outdoor activities in northern winters, -20°C is normal, and -30°C also needs to be taken into consideration.

Temperature determines two things: the modulus of the material, and the material's bending lifespan.

Load and wear. A person weighing 70 kilograms, when walking normally, bears a weight of 1 to 1.5 times their body weight on a single foot; the peak load when running can reach 3 times the body weight.

To convert it: when a 70-kilogram person runs, the forefoot of the sole has to absorb a force of around 200 kilograms at the moment of landing.

This force doesn't happen just once; it comes every time you land.

The quantitative indicator of wear is DIN wear, measured in cubic millimeters—the smaller the value, the more wear-resistant it is.

Medium. Water, snow, ice, melting salt, oil stains, detergent, all of these need to be gone through.

Ice is a special case; it is not solid friction, but lubrication on the 'surface layer of water'.

Why does this happen — the friction on the ice surface generates heat, which melts a layer of water at the micron level, and the material is actually sliding on water.

So being 'hard' on the ice is not an advantage at all.

What really works are hysteresis loss and the real contact area, that is, the part of the energy loss when the material is compressed and then springs back.

Lifespan. A pair of commuting shoes is calculated at 800 kilometers, and a pair of trail shoes is calculated at 500 kilometers.

800 kilometers is approximately 1 million to 1.3 million steps.

Every step is a bend, a cut, and only when accumulated do they become the true measure of assessment.

Appearance. For light-colored and transparent outsoles, we look at yellowing and haze. This is a strict criterion for outsoles because the entire piece is exposed.

Compliance and environmental protection. Contact with the ground and skin involves consumer product safety and volatile substances; in the past two years, there has also been an additional focus on recyclability and single-material direction.

When the six dimensions are placed together, one can see a conclusion: these six dimensions are not parallel; they are sequential.

When the temperature changes, the modulus changes; when the modulus changes, the slip resistance changes; if the slip resistance needs to be improved, the hardness must decrease; when the hardness decreases, the wear increases.

They are a chain; when one link moves, the rest follow.

3. Three routes side by side: each one's strengths and the tuition to be paid

RouteAnti-slip (Dry / Wet / Ice)Wear-resistantLow-temperature fold resistanceDensityCombined with the midsoleCommon positioning
Vulcanized Rubber (NR / SBR / BR)Good / Good / MediummiddleHardened at medium and low temperaturestallInterface processing requiredMain support level
TPU systemGood / Medium / MediumGoodmiddlemiddleCan be directly overmoldedSports and leisure
Nylon Thermoplastic Elastomer (TPAE / PEBA)Medium / Good / GoodAdjustable formulaGoodLowCan be directly overmoldedLightweight, ice surface, high-rebound sole

Look at this table. The key is not which column is the strongest, but that you have to pay the tuition in every column.

The tuition of rubber is weight and low temperature.

For the same pair of size 42 shoes, the rubber outsole usually weighs several dozen grams more than the nylon elastomer outsole. Those several dozen grams are the difference between a 'lightweight version' and a 'regular version' for the whole shoe.

TPU's tuition is low temperature.

At room temperature, it is almost omnipotent, but below -20°C, the modulus rises quickly, and both anti-slip and fold resistance decrease together.

The tuition of nylon elastomer is wear resistance and cost.

Its hard segments are polyamide, and the crystallinity provides an abrasion-resistant base; but the polyether soft segments in the molecular chain are inherently soft to adhere to the ice surface.

The wear-resistant line needs to go up, and there are usually only two paths.

One approach is to increase the proportion of hard segments, with the trade-off being a decline in low-temperature performance.

The other approach is to rely on a modified system to make up for it, but the cost is that you have to be careful with the appearance and interface.

Here is one that is easy to overlook: Nylon elastomer is not a 'stronger EVA,' nor is it a 'lighter rubber.'

It is a different system—processing windows, molds, and recycling paths are all different.

Using rubber molds and processes directly on nylon elastomers will most likely get stuck at the shrinkage and adhesion stages.

So when it comes to changing materials, what truly needs to be evaluated is never 'whether the material is good enough,' but 'which row this pair of shoes is willing to give way to.'

4. Selection Criteria Table (It is recommended to save this page)

Threshold values are directional recommendations, not acceptance criteria. The actual values must be determined through actual measurements based on shoe model, shoe size, target market, and usage temperature.

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary system
DIN wearSet according to positioning; for commuting, it is recommended to stay within 150 mm³GB/T 9867 / ISO 4649Base pattern smoothed, midsole exposed by grindingIncrease the proportion of hard segments or modify the systemWear-resistant packing (depending on the system)
Dry anti-slipFlat steel plate COF starting at the 0.7 levelGB/T 3903.6 Whole Shoe Slip ResistanceWheel spin during ground startEnhance soft section flexibility Pattern
Wet anti-slipCOF above 0.4 under water film conditionsSame as above, with soapy solution conditionsSlippery tile surface on rainy daysIncrease lag loss
Ice surface anti-slipThe higher the ice surface COF, the better; the industry overall tends to be low.Ice surface inclined platform or drag testComplaint about injury from falling in the snowReduce thermal modulus Fine grooves
HardnessBody 60–80 Shore A rangeGB/T 531.1 / ISO 868Too hard and not close to the ground, too soft and collapsingHard section and soft section ratioNucleating Agent (Crystallization and Size)
Low-temperature fold resistanceAssessment based on the number of times at -20℃GB/T 3903.1 Whole Shoe Flexing ResistanceLow-temperature cracking and whitening of creasesChoose long carbon chains or polyether soft segmentsAntioxidant (Thermal Oxidation Protection)
Delamination strength with the midsoleMade according to whole shoe requirementsMeasured peeling strengthOutsole detachmentRemove mold release residueLubricant (Usage and Migration)
Yellowing resistanceColor difference limits for light-colored/transparent partsUV Aging ColorimeterLight-colored base turning yellowChoose a substrate resistant to yellowingAntioxidant (including anti-yellowing)

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

First look at the line 'low temperature bend resistance,' then look at the line 'ice surface anti-slip.'

These two lines don't make sense, the subsequent wear data is meaningless—because the shoes will crack in winter, rather than wear down slowly.

In the 'Internal and External' verification method column, some items do not have corresponding national standards, especially ice surface slip resistance. When there is no standard to follow, include the verification plan in the technical agreement instead of omitting this item.

The last column of the table is intended for the person making the formula: under the same indicator, it is often supported by different types of additives.

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

Five, four common failures and their real root causes

Failure 1: The side of the outsole turns white, and when touched, there is a layer of powder.

The first reaction is usually 'this material is not wear-resistant.' In reality, what is more common is that an external lubricant additive has been added too much, or the processing temperature has exceeded the additive's thermal limit, causing it to come to the surface.

If you see whitening, don't change the material immediately. First, check the amount of lubricant and the material temperature, then see if the powder coating has any impact on the bonding between the outsole and midsole.

Failure 2: Sells well in summer, complaints concentrate in winter.

The root cause is low-temperature modulus. The same material feels different at 20°C and -20°C; the low-temperature part in the formula was not done enough.

Here is a complete timeline, worth mentioning again.

A client making snow boots started off well—after switching to a lighter sole, the weight reduction of a single shoe can be felt immediately when held.

The incubation period in the middle is very long: they stock up in summer, and the fitting feedback in the mall is all 'light, soft, comfortable.' The tests are done at normal temperature for slip resistance, and all pass.

The outbreak occurred in the third week of winter: several northern cities reported that after freezing, shoe soles became slippery, and after wearing for two months, the sides were all covered with white marks.

Looking back, I realized that the slip resistance was tested under room temperature, dry conditions, and on a flat surface, all three of which are conditions found in warm weather.

The settlement is also very straightforward: the after-sales costs for that season were several times higher than the amount saved by changing the materials.

Failure 3: Light-colored base turns yellow after three months of wear.

It's not entirely a matter of light stability. You need to distinguish whether it's the surface yellowing or overall yellowing.

Surface yellowing is mostly due to photo-oxidative aging, while overall yellowing depends on the inherent yellowing resistance of the base material and whether the antioxidant has dispersed during the mixing stage.

Failure Four: The hardness of the same batch of film varies from high to low.

This is probably not due to 'unstable material,' but inconsistent crystallinity — if the mold temperature or cooling time varies between batches, the crystallinity will be inconsistent, and hardness will naturally vary.

Hardness on the outsole is not an independent metric; it is essentially the same as the degree of crystallinity.

To put it bluntly: the troubleshooting order for outsole failure is—first determine whether it is 'slipping' or 'abrasion', then distinguish between 'normal temperature' and 'low temperature', and only finally look at the grade.

If you can't distinguish these three steps, no matter how many times you change the material, you still can't find the point.

6. Processing and Verification: There are several things that must be decided in advance regarding the outsole.

Dry. Nylon elastomers contain amide segments, so moisture absorption is inevitable.

Moisture can get in if the material is damp in the packaging, the workshop humidity is high, or recycled material is mixed in. The drying window should be set according to the actual measured moisture content, not just copied from the recommended values.

Shrinkage and molds. The outsole is an irregularly shaped part with varying thickness, thin at the forefoot and thick at the heel, with different shrinkage in each area.

Mold compensation must be done per piece and cannot use the general shrinkage rate from the material manual.

Two-tone and encapsulated rubber. Nowadays, more and more outsoles are made with a dual hardness structure: the outer layer is harder for abrasion resistance, and the inner layer is softer for better ground grip.

This brings up an interface issue—whether the two injections can stick together.

The reason it doesn't stick is ninety percent not due to pressure, but due to the release agent and additive migration layer left from the first injection molding.

Cleaning procedures are more useful than adjusting parameters. This is especially effective on the outsole.

Moisture conditioning. The molded parts will continue to absorb moisture, and their dimensions and hardness will change.

Moisture adjustment should be completed before fitting. If it expands after fitting, the size of the whole shoe will change accordingly.

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

1. Material level: DIN abrasion, hardness, low-temperature tensile

2. Sample level: Comparison of anti-slip performance for dry, wet, and icy conditions

3. Finished Product Grade: Whole sole size, pattern depth, peeling strength

4. Whole shoe level: fold resistance (including low temperature), whole shoe slip resistance

5. Environmental Superposition: Low Temperature Road Salt Ultraviolet

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

Here's an insider detail: After the film is developed, measure its hardness every 24 hours, and measure it again after humidity adjustment is completed.

The difference between the two is more useful than the absolute value—if the difference is large, it indicates that this part is sensitive to conditions, and the storage humidity of the entire shoe factory must be included in the agreement.

7. Boundaries: When This Matter Should Not Be Discussed

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

In the following four situations, it is not recommended to proceed with this item using a nylon elastomer sole.

First, shoes that are purely low-priced commuter models, with outsole costs tightly controlled.

The unit price of nylon elastomer is several times that of ordinary rubber. When used on outsoles, it will only return if the positioning can hold.

Secondly, it requires structural soles or work shoe soles with extremely high support or extremely strong wear resistance.

The criteria for this type of component are lifespan and support, with the upper limits of hardness and crystallinity determining whether a rubber or polyurethane route is more suitable.

Third, special protective shoe soles used for long periods in environments above 60°C.

The soft segments of nylon elastomers will soften under long-term high temperatures, and there is insufficient long-term data support for this range in publicly available information.

Fourth, production lines without the capability for two-color injection molding or over-molding processes.

The outsole can't be improved just by changing the material. If the interface craftsmanship isn't up to par, even good materials can't produce a good sole.

There is one more point that needs to be mentioned separately: the sole piece and the entire outsole are not the same thing.

Shoe sole pieces are often thin sheets or patchwork structures, with the criterion 'dimensional stability' weighted higher than for an entire sole; the whole sole focuses more on the pattern molding and the bonding interface with the rubber.

These two things cannot be decided on together.

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

For projects that go smoothly in the sample phase but get stuck in the mass production phase, the cost of reverting is much higher than not doing it from the beginning.

Material Change Risk List (Things that need to be changed when switching from rubber outsoles to nylon elastomer outsoles)

link; segment; partWhat do you want to move?Points that are easy to overlook
MoldThe shrinkage rate varies greatly, basically requiring a restart or major changes.Continue using the shrinkage empirical value of the rubber mold
DrySet the window according to the measured moisture contentContinue the workshop practice of using rubber without baking
Material Temperature / Mold TemperatureThe window is narrower than the rubber, it needs to be reordered.Only give according to the supplier's recommended value
Overmolding and BondingThe cleaning process and interface treatment need to be redoneResidual mold release agent from the first injection molding
Humidity controlComplete humidity adjustment and re-measure dimensions before bondingEstimating time based on average wall thickness, the thicker part hasn't absorbed fully.
Pattern and exhaustThin-walled deep-pattern exhaust needs to be rearrangedUsing the original pattern depth, material shortage occurs
Color differenceThe system is different, the color palette needs to be reconfirmedNo separate yellowing standard is set for light-colored and transparent parts
Verification orderMaterials → Sample → Finished Product → Complete Shoe → Environmental OverlayGoing straight to mass production after only doing static testing

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

SceneRecommended RouteKey indicatorsVerification standardConditions that need to be confirmed first
Commuting and casual, mainly at normal temperatureNylon elastomer Rigid filmDIN wear resistance, dry and wet anti-slipGB/T 3903.6Can positioning bear the cost?
Snowy and icy surfaces, mainly in winterLong-chain nylon elastomerNon-slip on ice, -20°C fold-resistantIce Surface Field Measurement GB/T 3903.1Minimum operating temperature
Trail running, wear resistance firstPrimarily made of rubber or TPUWear and tear strength, tear resistanceGB/T 9867Is it necessary to lose weight?
Lightweight version, weight reduction prioritizedThin sole, hard outer pieceDensity, peel strengthMeasured peeling strengthTwo-color injection molding capability

Risk Warning: The main uncertainties of this route lie in low-temperature skid resistance and the rubber bonding interface, not in normal temperature wear.

Three questions readers often ask

Question: Can ice surface anti-slip be solved with a formula?

It can improve, but you can't just look at the formula. Ice surface friction relies on the combination of hardness and pattern; the marginal benefit brought by fine blade grooves is sometimes greater than changing the material. The order is to first determine the pattern and hardness, and then decide on the material.

Question: Is it better if the DIN wear number is smaller?

On this metric, yes. But it is a set of linked values with slip resistance and hardness. Lowering wear alone often means the overall formula becomes harder, and slip resistance on ice decreases accordingly. All three numbers need to be considered together.

Question: Can nylon elastomer outsoles be recycled?

is easier to handle than sulfur-containing rubber, but it still depends on whether the overall shoe structure is multi-material splicing. In recent years, whole shoe designs have been moving toward fewer materials and disassemblable designs. This needs to be determined at the drawing stage.

Conclusion

Returning to the client mentioned at the beginning.

I finally replied to him with three sentences: first, distinguish between slippery and icy surfaces; then determine the minimum usage temperature; and finally, discuss DIN abrasion.

Because the answers to these three questions differ, it leads to three different paths in material selection.

The judgment chain for outsole materials, ultimately, has only three steps:

Determine hardness/softness by ground and temperature → Determine anti-slip pattern → Determine interface by structure.

If you currently have an outsole or midsole piece that needs material selection, you can send these three things to get guidance: target shoe type, minimum usage temperature, and target mileage.

Many people here work with plastics, but fewer work with shoe materials — many answers are actually in the consumer’s mileage chart, not in the physical property table.

What we do is very specific: we take resins like PA6, PA66, PA46, PA11, PA12, PA6T, PA9T, and nylon alloys, and turn them into something that can actually be used in a part; we also modify PPO, PPS, and thermoplastic elastomers.

We also handle nylon resins, secondary brand materials, and bulk materials from major chemical giants. Additionally, we long-term acquire nylon raw materials, sprue scrap, and various nylon waste, with proper disposal channels.

The additive system in the formulation is matched according to the part’s working conditions — common additives are kept in stock, special models are customized as needed; you provide the working conditions and grade, and the materials and additives are provided together.

Material selection and mold trial for such parts can be discussed together.

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