# 高回弹TPE怎么选?压缩永久变形25%以内才算

塑料知识科普 发布时间: 2026-09-13 4543 阅读

The shock-absorbing pad collapses after half a year, and the rebound never comes back. High-rebound TPE with a falsely claimed rebound rate is just putting a new layer of skin on it.

Accident scene: insufficient rebound, the part just 'collapsed'

High-resilience TPE, used in cushioning pads, seals, shoe midsoles, and shock-absorbing components — the failure scene is almost always 'collapsed':

Scene 1: The cushion collapses after being pressed a few times and does not rebound — the permanent compression is large, and rebound is just empty talk; Scene 2: The sealing part has been under pressure for a long time,

Cannot return to the original position—the sealing gap keeps getting larger, leakage is only a matter of time; On-site case three: the midsole thins after a few weeks of running—**rebound fatigue, energy return rate drops quickly.

**

When selecting sealing materials, consider the rebound material for long-term compression set: if subjected to long-term pressure and rebound is insufficient, it will leak—the 'long-term compression set' of a rebound sealing element is the core figure, more important than the initial rebound.

Good initial rebound is just a facade; long-term compression changes reveal the truth.

There is also a 'test condition' trap with compression set: different compression ratios, temperatures, and durations yield completely different data—using the same material, 25% compression for 22 hours and 50% compression for 70 hours result in vastly different outcomes.

When requesting data, include the 'test conditions' as well; you can't directly compare them if the conditions are different.

Rebound decreases with temperature: the lower the temperature, the worse the rebound — for rebound components in low-temperature scenarios, you need to specifically look at 'low-temperature rebound data', not assume that room-temperature data covers everything.

In the north, rebound parts are used in winter, and the data should be based on low-temperature conditions. For northern rebound parts, do not directly take the normal temperature report as a conclusion.

Insufficient rebound, and the part collapses — when selecting high-rebound TPE, compressive permanent deformation is a hard requirement.

Rebound parts are moving towards lightweighting: micro-foaming and low density are the industry trends—offering the same rebound, but 20% lighter, making the products significantly more competitive.

The balance between lightness and resilience is the main focus of new material development. Lightness and elasticity need to be balanced together.

Structural design directly affects rebound experience: shape, thickness, and rib placement all influence rebound performance—using the same material, a well-designed structure can improve the rebound experience by one level.

Material selection and structural design should be done together; don't just focus on the material grade.

Cause Analysis: The Two Numbers of Rebound

Rebound is not 'soft feeling'—it is a combination of two numbers: compression set (ability to recover after deformation) and energy return rate (efficiency of rebound after impact).

IndicatorWhat are you looking at?Passing line reference
Compression setRecovery after long-term pressureWithin 25% (depending on operating conditions)
Energy Regression RateImpact rebound efficiencyThe higher, the better
ResilienceFree rebound heightAccording to the requirements

Technical Tip: When selecting high-rebound TPE, first consider the compressive permanent deformation, then the energy return rate—these two numbers determine the authenticity of the rebound.

The test conditions for compression set should be fixed: commonly use the standard of 70℃ × 22h with a 25% compression rate; materials that measure over 30% should not be used for long-term compressed sealing parts.

The compression of the seal itself is designed to be 15%-25%; if compressed beyond 30%, it will not rebound.

StepActionOutput
OneStatic and dynamic operating conditionsIndicator List
TwoSet temperatureDifficulty Assessment
ThreeAbout dataRebound Conclusion

Troubleshooting steps: three-step lock rebound material

Frequency of use determines material grade: cushioning pads experience daily pressure or occasional pressure, with different requirements—those under daily pressure need a small "long-term compression permanent deformation"; those under occasional pressure,

A short-term rebound is enough.

Only by writing the usage frequency into the working conditions can the grade be determined accurately.

Density and resilience are a pair of contradictions: high density means firm resilience but heavy; low density means light but collapses—so the density design of resilient components must be done together with the choice of materials.

Don't just focus on the material grade.

The density has gone down, and the rebound easily collapses as well.

How to fix collapse: three areas to change—materials, formula, system

Direction of the material: Resilience within the same system—resilience depends on the elasticity of the system, as well as the crosslinking and filler ratio in the formulation. If too much filler is added, the resilience decreases.

Hardness does not equate to rebound quality: within the same system, high hardness does not necessarily mean good rebound, and low hardness does not necessarily mean poor rebound—rebound is the result of the 'crosslinking structure and formulation'.

Not an accessory of hardness.

So choose rebound material; hardness is just a reference, rebound data is the basis.

Formula direction: The balance of oil and fillers is the key to resilience—too much oil makes it soft but poorly resilient, too many fillers make it hard but also poorly resilient. Only professional formulations dare to claim "soft and resilient."

Provide the rebound parts procurement with a 'three-data' standard: permanent compression deformation, energy recovery rate, and rebound retention rate after fatigue—once these three data points are all in place, selecting the rebound parts is already half won.

If one of the three pieces of data is missing, the supplier's quotation becomes questionable.

For rebound tests, the instrument caliber must be considered: energy restitution rate and rebound rate are measured with different instruments, so the results cannot be directly compared — when requesting data, make sure to obtain both the 'testing instrument and standards'.

Only with aligned calibers can data be compared horizontally between suppliers.

System direction: The main materials with high resilience are TPEE and SEBS-based (high-elasticity formulations) — TPEE has good resilience and temperature resistance, SEBS-based offers high cost-performance; TPV has average resilience, and should not be chosen for applications requiring high rebound.

The expected lifespan should be calculated based on the number of compressions: for shoe midsoles, count in hundreds of thousands of times; for sealed cushioning components, calculate according to actual usage frequency — when selecting materials, inform the supplier of the 'target number of compressions'.

The material grade is the only way to determine accuracy.

Life expectancy is a hidden parameter in the selection of elastic components. The midsole of shoes undergoes hundreds of thousands of cycles, while seals are measured in years, differing by orders of magnitude.

Cologne Customer Case: Swelling Deformation and Production Adjustment, Aging Passed in One Go

A modified material application factory in Yantai had rebound components with insufficient oil resistance, swelling and deforming after oil immersion. Kolon cooperated on-site for production adjustment and debugging until the yield stabilized, passing the 1000-hour aging test in one go.

The problem with the rebound component often lies in failing to take both 'rebound' and 'medium resistance' into account—align the parameters, and both can be stable together.

Oil immersion can reduce rebound: When the rebound part is soaked in oil, the rebound will decrease—sealed cushioning parts in oil need both 'rebound' and 'oil resistance' data. For parts with dual requirements, don't just look at the single rebound indicator.

Check these four items when rebound material arrives, the rebound rate must be measured

Four Investigations, fatigue data is the easiest to be saved

acceptance itemwhat to look atkey points
deformation datacompressed permanent deformationmeasured by operating conditions
return rateenergy return rateScenario-based
FatigueRepeated compression retention rateDynamic key
Sample retentionBatch sample retentionCompared to

Static rebound is better, but that doesn't mean fatigue rebound is better.

Summary

Compression and permanent deformation within 25% is the foundation for rebound parts; after crossing this line, we can talk about tactile feel.

There is no standard answer for high-resilience TPE materials; only the most appropriate answer—determining operating conditions, indicators, systems, data—will rebound parts bounce back.

Formulation transparency determines data reliability: the oil content and packing ratio of rebound material directly affect rebound and long-term stability—require suppliers to provide "rough formula composition with rebound data comparison" to see if price alone is reliable. Suppliers with transparent formulas can trust rebound data. If prices only quote without oil content ratio, the data is often unreliable.

Give rebound parts a "specimen verification" action: once the material data is complete, you also need to make formed specimens (actual shape and actual thickness) to measure rebound—shape and thickness affect rebound performance. Only when specimen data meets standards can you scale up volume. Both material-level and specimen-level data must pass to be safe.

One last "sample retention retesting": re-retaining samples for each batch of rebound parts, then retesting after three months for permanent compression deformation—rebound is a "floating" indicator, and batch stability depends on retesting. Retaining samples for retesting is a routine step in batch management of rebound parts.

Micro-foaming is the mid-to-high-end route: micro-foamed TPE has low density and good rebound, but cell uniformity is hard to control, causing large batch fluctuations. When selecting micro-foamed materials, batch stability acceptance must be stricter, and the uniformity of the foam holes should be randomly checked. Uniform foam holes ensure uniform rebound and stable batches.

Rebound parts have a wide range of applications: shoe midsoles, sealing rings, cushioning pads, shockproof pads, yoga products, medical device handles—these are found across various industries. When selecting a model, first set "dynamic/static," then "compression ratio/frequency," and the indicators become clear.

received a phone call these past couple of days, and the first question was, "How much does your nylon withstand?"

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