鞋中底材料怎么选?回弹与轻量的两笔账

应用领域 发布时间: 2026-09-14 4429 阅读

Last fall, a client who makes sneakers came to us with two midsole samples, and as soon as he spoke, he quoted some numbers: 'The rebound rate must be above 70, and the density must be able to be pressed to 0.15.'

I said these two numbers can be reached at the same time, but first answer me a question: who are these shoes being sold to, and how long do you plan to wear them?

He was momentarily stunned. Because the real turning point of the midsole material is not about 'how bouncy it feels when first worn,' but about 'whether it still bounces after three months of wearing.' This article will clarify the logic behind the selection of midsole materials.

1. Midsole is not about rebound, but how long the 'rebound can last'

First, let's clarify what the midsole does in a shoe.

The midsole is sandwiched between the outsole and the insole, performing three functions: cushioning landing impact, returning energy during push-off, and maintaining the shoe's shape.

The first two are the 'feel when you put it on,' and the third is the 'feel after wearing it for three months.'

The issue consumers complain about the most is precisely the third one—the shoes 'collapse' after being worn for a while, feel stiff when stepping on them, and make walking tiring. This phenomenon has a technical name: permanent compression deformation.

It means that after the material is repeatedly compressed, it cannot return to its original thickness.

Rebound rate is an instantaneous indicator, while compression permanent deformation is a long-term indicator. Both are measured, but the latter is closer to the real experience.

In a nutshell: The choice of midsole material and its instantaneous rebound rate determine the 'selling point,' while its long-term compression and permanent deformation determine 'repurchase'.

Two or three material routes, compare the costs side by side

RouteRebound (Instantaneous)Rebound retention (long-term)DensityCostSuitable for positioning
EVA Foam (Traditional)middleMedium to weakLowLowMass-market running shoes, casual shoes
TPAE / PEBA Nylon ElastomerTallGoodLowMedium-high to highMid-to-high-end running shoes, racing shoes
TPU Foaming / Other ElastomersMedium-highGoodmiddlemiddleTraining shoes, outsole connectors

Looking at this table, the focus is not on 'which is more bouncy,' but on the cost in the column for rebound maintenance.

EVA is cheap, mature, and has a simple foaming process, and is used in the vast majority of shoes. But the problem with EVA is rapid rebound decay — after wearing for a period of time, the foam structure fatigues, and the rebound decreases significantly.

TPAE and PEBA belong to nylon elastomers (polyether block amides), with hard and soft segments in their molecules: the hard segments provide strength and resilience, while the soft segments provide flexibility. This structure allows them to recover better under repeated compression, so the fact that they can 'stay resilient even after three months of wear' is something they do better.

The cost is a high unit price, and the processing window is narrower than EVA.

Here is a reminder: Nylon elastomer is not a 'stronger EVA'; it is a completely different system. The foaming process, molds, and recycling paths are all different, and you can't just switch the material and use it.

3. Six-dimensional working condition: What is pinching the midsole

Mechanics: compression cycles. Each step is a compression. Running 500 kilometers in a pair of shoes means hundreds of thousands of compression cycles. This is typical high-cycle compression fatigue.

Temperature. This dimension is the easiest to overlook. The rebound of elastomers decreases significantly at low temperatures—running shoes become stiff in winter, and this is not just a feeling, it's a material property. Shoes in cold regions must be evaluated based on the minimum usage temperature.

Environment: UV and moisture. Light-colored midsoles exposed to UV will yellow, and moisture will accelerate hydrolysis. Outdoor shoes especially need to be evaluated.

Appearance. The midsole is an exposed part; its color, texture, and whether it yellows all affect sales.

Lifespan. Here, 'lifespan' refers to the service life of the shoes, usually calculated by mileage or months.

Compliant. For contact with skin and partial contact with the ground, material safety and volatile substance requirements must be handled according to consumer goods regulations.

The easiest to overlook among the six dimensions is the combination of 'temperature' and 'environment'.

In a low-temperature humid environment, the performance of the elastomer will be worse than when looking at a single sample.

The acceptance test plan should run these two items together, not separately.

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

Threshold values are directional recommendations, not acceptance standards—the actual numbers must be determined by your positioning, costs, and process measurements.

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary system
Rebound rateSet according to positioning; racing types require higher standardsGB/T 1681 (Rebound Resilience)The foot feel has become harderChoose high-rebound elastomer
Compression setSet according to the service period target, the smaller the better.GB/T 7759Midsole collapse, shoe shape deformationEnhance the rebound retention systemCrosslinking / Crystallization Control Additive
DensitySet according to lightweight goalsGB/T 533OverweightSupercritical foaming processNucleating agent (pore uniformity)
Low-temperature reboundCovers the minimum operating temperatureLow-temperature rebound testHardening and cracking in winterChoose soft segments with good low-temperature performance
Yellowing resistanceDetermined according to appearance requirementsUV Aging Color DifferenceThe light-colored midsole is yellowingAnti-yellowing systemLight Stabilizer / Antioxidant
Hydrolytic stabilityPerformance retention under humid and hot conditionsActual measurement of damp-heat agingBecame brittle after long-term storageHydrolysis-resistant systemAnti-hydrolytic agent
Volatility and OdorSet according to consumer goods requirementsScene specification methodUnboxing odorChoose a low volatility system

How to use this table: first look at the second row 'compression set'. Most of the negative reviews of the midsole come from here. The rebound rate can be increased through formulation and process, but if the rebound is not maintained, it will show its true performance after wearing for a season.

Five or six common failures and their real root causes

Failure 1: After wearing for two to three months, the midsole collapsed and felt hard when stepped on.

The root cause is compression set. The cellular structure fatigues under repeated compression and does not return to its original thickness. The solution is to improve the ability to retain resilience — choose a system with a higher proportion of elastic recovery, rather than simply increasing density.

Failure 2: Light-colored midsoles turn yellow after wearing for a period of time.

The root cause is photo-oxygen aging. Light-colored parts require higher light stability, but this is not just a matter of "adding light stabilizers"—the substrate's resistance to yellowing is very important. When yellowing occurs, first distinguish whether it is surface yellowing or overall yellowing, and the treatment direction is different.

Failure three: Shoes become hard in winter and develop cracks at low temperatures.

The root cause is the decrease in low-temperature rebound. The glass transition temperature of the soft segment determines this behavior. The soft segment should be chosen based on the lowest temperature in actual use, not based on room temperature data.

Failure 4: Inconsistent midsole density and feel within the same batch.

This is mostly an issue with the foaming process or nucleating dispersion. The uniformity of the pores is directly related to the dispersion of the nucleating agent—if the nucleating agent is unevenly dispersed, the pore sizes will vary, and the density and resilience will be inconsistent. When you see this phenomenon, first check the foaming process and nucleating system, and don't rush to change the base material.

Here's something that needs to be said directly: for midsole failure troubleshooting, first distinguish between 'instantaneous indicators not met' and 'long-term indicator degradation'; the solutions for these two types are completely different. The former relies on the formulation, while the latter relies on the system and structure.

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

Drying. Nylon elastomers contain amide segments, so moisture absorption must be addressed. If the material becomes damp in packaging, it will directly affect foaming and performance. The drying window is determined based on the actual measured moisture content.

Matching of foaming process. Supercritical foaming requires the melt strength of the material. The same material may perform completely differently under different foaming processes, so the process and the material must be developed together and cannot be selected separately.

Molds and shrinkage. The midsole is a thick-walled special-shaped part, with uneven shrinkage. Mold compensation must be done per piece.

Storage and transportation. The midsole is a semi-finished product, with portions stored both in the factory and in the retail store.

High humidity will accelerate hydrolysis, and strong light will cause light-colored parts to yellow prematurely.

Packaging and storage conditions should be included in the operating requirements.

Many conclusions of 'the materials are no good' actually, when traced back, are problems with the warehouse.

Fitting and post-processing. The midsole should fit with the outsole and upper, and the adhesive and treatment agent should be selected together.

Material surface exudation can cause bonding failure, and this should be considered together with the additive system.

Shoes that don't stick properly cost more to repair than to replace the materials.

Foaming also has another often overlooked variable: the mold temperature distribution.

If the mold temperature is uneven, the bubbles will be larger on one side and smaller on the other, making the feel different on each side of the same shoe.

First measure the mold temperature distribution, then adjust the foaming parameters.

This step is often skipped in shoe factories, yet it is a cost-effective improvement.

The consistency of the bubbles relies half on the material and half on the mold temperature.

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

1. Material Level: Resilience, permanent deformation under compression, density, low-temperature resilience

2. Sample Level: Comparison of samples under different foaming conditions

3. Finished Product Level: Density distribution and geometric dimensions of the whole midsole

4. Fatigue level: Simulate compression cycles, remeasure rebound midway

5. Environmental Overlap: Low Temperature Humid Heat Ultraviolet

The order cannot be changed. If the previous level is not passed, just move on, the data that comes after has no explanatory meaning.

7. Boundaries: When This Matter Should Not Be Discussed

For the following four situations, it is not recommended to proceed with this part using nylon elastomer:

First, purely mass-market models, with very tightly controlled unit prices. The cost of nylon elastomer is several times that of EVA. When used in midsoles, it only pays off if the positioning is high enough.

Secondly, production lines without matching foaming process capabilities. Nylon elastomers cannot be used just by changing the material; the melt strength and foaming window must be matched. Without process support, even good materials cannot produce good midsoles.

Third, the usage environment has been long below the material's low-temperature applicable range. At that temperature, the elastomer's rebound and toughness are insufficient, and other systems need to be considered.

Fourth, the usage is so small that it can't cover the development costs of the process. The material verification for the midsole was done together with 'material and process', which required a significant investment.

Fifth, only make shoes for single-use or short-term use. These types of shoes do not last long enough to reach the stage where their rebound retention advantage is evident.

Using a high-cost system is a waste; EVA is more suitable.

Sixth, the production line does not have drying and humidity control conditions. Nylon elastomers are sensitive to moisture absorption.

Without drying and workshop humidity control, batch stability cannot be achieved, so conditions should be improved before discussing material changes.

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

8. Separate accounting for two sets of books: a reconciliation table

Instead of classifying by material, changing to 'watch what when' makes it even clearer.

What are you looking at?When to watchHow to measureWho cares the most
Instant reboundMaterial selection, sample making, extracting selling pointsResilience TestProducts and Market
Rebound retentionFixed service period, fixed whether to change materialsCompression Set FatigueQuality and After-Sales
Low-temperature reboundSet sales region and seasonLow-temperature rebound testProducts and Regions
Pore uniformitySet process windowSection Microscopic ObservationManufacturing and Technology

The thing that should be taken from this table the most is not the names of the indicators, but the 'when to look' column.

During the material selection stage, only the instantaneous rebound is considered, which is equivalent to leaving the after-sales problems to the after-sales service.

Items that should be tested during the material selection stage should not be delayed until after shipment.

There is also one more sentence: The priority of these four items changes according to the positioning.

The standard version prioritizes cost control, while the racing version prioritizes controlling rebound retention.

First determine the position, then set the priority; the order cannot be reversed.

Material Change Risk List (From EVA to Nylon Elastomer Midsole, things that need to be changed)

link; segment; partWhat needs to be moved?Points that are easy to overlook
MoldThe shrinkage and cooling behavior is different, basically requiring a restart or major changes.Use the shrinkage rate of the EVA mold
DryNylon elastomer needs to be dried, and the window should be set according to the moisture content.Continue the habit of not baking EVA
CraftThe foaming window needs to be rematched with the melt strengthFollow EVA's foaming parameters
Material Temperature / Mold TemperatureThe processing window is narrower than EVA, it needs to be redefined.Give only according to the supplier's recommended value
Demolding and post-processingThe cooling and shaping methods may be differentFollow the original cooling time
Color differenceThe system is different, the color palette needs to be reconfirmedThe yellowing standard for light-colored parts should be set separately
Verification orderMaterials → Samples → Finished Products → Fatigue → EnvironmentOnly perform static testing

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

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Project: Shoe Midsole · Material Route Evaluation

Conclusion direction: Nylon elastomers (TPAE / PEBA) can serve as a candidate route for mid-to-high-end positioning

1. Three Rules That Must Be Followed

1. The rebound rate and the permanent compression deformation should be measured together, with the latter carrying more weight.

2. Low-temperature rebound is assessed according to the actual usage temperature

3. The materials and foaming process must be developed together

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

· Product positioning can support material costs

· Has matched foaming process capability

· The minimum operating environment temperature is within the system range

· Cyclic budget for fatigue and aging verification

3. Next Steps

1. Take the existing midsole and measure the compression permanent deformation decay curve

2. Compare rebound based on the actual minimum temperature

3. Small batch trial foaming to check density and pore uniformity

Risk Warning: The main uncertainty of this route lies in the long-term rebound maintaining consistency with the process, not in the initial rebound rate.

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Two questions readers often ask

Question: Are TPAE and PEBA the same thing?

They all belong to the category of nylon elastomers and all have a polyether block amide structure, but the combination of hard and soft segments is different, resulting in different performance tendencies: some are more elastic, some are better at low temperatures, and some are more heat-resistant. You can't just generally talk about 'nylon elastomers'; you need to refer to the specific model's hard and soft segment structure when asking.

Question: Is it better for the midsole to have a lower density?

Lightweight is the goal, but lower is not always better. If the density is too low, permanent deformation under compression and rebound retention will worsen, and it will collapse after short use. Essentially, there is a trade-off between being lightweight, having good rebound, and being durable.

Conclusion

The selection of midsole materials for shoes, ultimately, is a matter of long-term durability, not of immediate tactile feel.

There are only three judgment chains:

Determine the cost ceiling → Set rebound retention for the service life → Define temperature limits based on the usage environment.

Once all three are decided, the question of 'what material to use' naturally has an answer.

If you currently have a midsole project and need to decide on materials, just send over three things to get guidance: target positioning, expected service mileage or months, and minimum operating temperature.

Add a sentence: As for the midsole, most of the money spent on verification is basically on 'time'.

Both compression fatigue and aging need to run cycles, schedule first, then discuss the price.

Standing between the resin factory and the injection molding factory, the matter of midsoles actually already has half of the answer written—it’s written on the consumer's odometer, not on the material property sheet.

What we do is very specific: we take resins like PA6, PA66, PA46, PA11, PA12, PA6T, PA9T, and nylon alloys, and turn them into a form that can actually be used for a certain part; we also do modified PPO, PPS, and thermoplastic elastomers along the way.

Also operates the nylon resin, secondary-grade materials, and bulk materials of major chemical giants, and has long-term purchasing of nylon raw materials, sprue back materials, and various types of nylon waste, with proper disposal channels.

The material selection and mold trial for this type of part can be discussed together.

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