# 耐高温TPE怎么选?125℃和150℃隔着一个体系

塑料知识科普 发布时间: 2026-09-14 3618 阅读

The air conditioner air outlet parts become soft and deformed after the high temperatures in summer. High-temperature-resistant TPE, adjust one temperature level, and the entire set is chosen all in white.

Here's the conclusion first: the temperature determines the system, don't try to force it within the system.

High-temperature resistant TPE, used in engine compartment parts, high-temperature seals, oven seals, and around electronic components — the conclusion in one sentence: 125°C and 150°C belong to different systems; if the temperature is written incorrectly, even the most expensive material is useless.

Thermal-oxidative aging is the invisible driver of high temperatures: with high temperature and oxygen, the aging rate multiplies—so for high-temperature resistant materials, you need to look at 'thermal-oxidative aging' data, not just the temperature resistance value.

The strength retention rate after 1000 hours of thermal aging is a key figure in selecting high-temperature components. If only the heat resistance is reported without the aging retention rate, the data should be questioned.

Many people ask 'Which grade of high-temperature TPE is good?' — but the question is asked the wrong way. For high-temperature resistance, you first categorize by temperature range, then choose the system, and finally select the grade.

For continuous operating conditions, leave a short-term margin: for a position continuously at 125°C, it's safer to select materials rated at 150°C—leaving a 20-30°C margin improves both lifespan and reliability. Choosing right at the limit saves on cost, but bets on lifespan.

Why TPE: three temperature settings

Temperature settingTypical systemExplanation
70-90℃SEBS baseRegular application
100-125℃TPVSealing strip, sheath
150℃TPEEHigh-temperature structural components

Temperature is the watershed of the system—SEBS cannot withstand long-term continuous use below 125°C, TPV cannot endure continuous high temperatures of 150°C, and TPEE is the one capable of handling high temperatures.

TPEE should also be classified by temperature grade according to its grade: different grades have continuous heat resistance from 125℃ to 170℃—choosing TPEE does not mean it has sufficient heat resistance; you need to match the temperature to the grade.

Asking the supplier 'What is the continuous temperature resistance of this grade, and according to which standard was it tested?' is much more professional than asking 'How heat-resistant is TPEE?'

Technical Tip: When selecting high-temperature TPE, first distinguish between 'short-term peak' and 'long-term continuous' — two temperatures, two answers.

Load can change high-temperature lifespan: at the same 125°C, with load and without load, the material's lifespan differs greatly—creep and stress relaxation accelerate at high temperatures.

So for high-temperature components, the operating conditions should include the two numbers 'temperature' and 'load,' and the supplier should evaluate based on both numbers, rather than just reporting a single heat resistance value.

Selecting loaded components while suppressing reports without load will definitely reduce lifespan.

Operating condition breakdown: Two calibers of temperature

Caliber One · Long-term continuous use temperature: the temperature at which the material can work for a long time — this temperature determines the system's upper limit; Caliber Two · Short-term peak temperature: occasionally high temperature — **can be exceeded in the short term,

But it cannot be exceeded frequently.

**

Heat deflection temperature ≠ continuous temperature resistance: heat deflection temperature is a short-term test, while continuous temperature resistance is long-term aging — the two numbers should not be mixed up.

When you need data, ask 'how many degrees is the continuous temperature resistance, how many hours of aging, and what is the retention rate,' don't be fooled by just a single temperature resistance value.

In high-temperature environments, there is also a 'medium synergy': high-temperature oil, high-temperature water vapor, high-temperature chemical gases — the aging mechanisms are completely different. Passing a single temperature resistance test does not mean passing combined working conditions.

For positions with a medium, a 'temperature-medium' synergistic aging test must be conducted for the data to be accurate.

Heat dissipation design can extend the life of materials: adding cooling fins and avoiding heat accumulation lowers the actual working temperature of the material, directly doubling its lifespan — an issue that material selection alone cannot solve.

Design can solve half.

The design review of high-temperature components should consider both 'material temperature resistance' and 'heat dissipation design' together.

Operating conditionWhy askAffect what
Continuous temperatureSeveral times of long-term workSystem cap
Peak TemperatureOccasionally to a few degrees, for how longHeat resistance margin
DurationHow many hours a day do you work?Rate of aging
MediumWhat to contact under high temperatureSynergistic aging

Comparison Table: SEBS-Based vs TPV vs TPEE (High-Temperature Perspective)

DimensionSEBS baseTPVTPEE
Continuous temperature resistanceInside 90℃125°C grade150℃
High-temperature aginggeneralGoodGood
High-temperature strengthFalls quicklyStableStable
CostLowmiddleTall
Typical Applicationsroom temperature partSealing strip, sheathHigh-temperature structural components

For high-temperature positions, TPV and TPEE are the mainstays—the higher the temperature, the more it leans towards TPEE.

Implement a 'graded selection' action for high-temperature components procurement: classify the company's high-temperature components according to continuous temperature levels—within 90°C, 125°C level, 150°C level—and lock 1-2 system grades for each level.

Hierarchical management, centralized procurement, streamlined inventory, controllable costs.

Softening, deformation, aging: three high-temperature pitfalls explained at once

Pitfall 1 · Treating the peak value as continuous: If the material's peak value is 150°C, thinking it can withstand long-term use at 150°C—the peak value and continuous use are two different standards, confusing them will inevitably lead to failure. Avoidance: Clearly define the long-term continuous use temperature.

Pitfall 2 · Only check hardness at high temperature: Hardness changes greatly at high temperature—if hardness drops, the seal fails. Avoidance: You need hardness and permanent compression deformation data at high temperature.

Insulation testing needs to be added in electrical scenarios: high-temperature TPE parts in motors and transformers also need to consider electrical resistance — insulation performance decreases at high temperatures, which may cause failures.

When selecting high-temperature electrical components, both the 'temperature' and 'electrical' dimensions must be checked together.

Pitfall Three · High Temperature and Medium Synergy: High temperature combined with oil accelerates aging — passing a single temperature test does not mean passing high temperature with oil. Avoidance: Conduct synergistic aging tests according to actual operating conditions.

High temperature and flame retardancy need to be aligned at once: For products like battery peripheral components that have both 'high temperature and flame retardant' requirements, the material cost is high and the selection is difficult—components with dual requirements should have both hard specifications aligned at once, rather than confirmed separately.

Three Records of High-Temperature Material Arrival, Must Read the Thermal Aging Report

This line can be counted: after continuous use for 1000 hours of thermal aging, tensile strength retention should not be less than 70%, elongation at break should not be less than 60%, and the appearance should show no obvious discoloration or cracks.

High-temperature compression parts must also have stress relaxation tested: gaskets at 125°C × 1000 hours, stress relaxation rate generally does not exceed 30%; otherwise, the compression force will weaken over time and the seal will loosen.

High-temperature materials also have a "thermal aging sample retention" suggestion: retain samples for each batch of high-temperature material to conduct accelerated aging control—measure aging data every six months to track batch stability.

High-temperature parts are safety parts; only with complete batch data can after-sales support be confident.

UL's RTI certification is worth considering: Relative thermal index certification is the "endorsement" of high-temperature materials—materials with RTI have high OEM recognition.

For high-temperature safety components, prioritize grades with long-term certification, as certification itself is proof of quality. Brands without long-term certification require extra detours to enter the OEM directory.

Cologne customer case: tight delivery deadline and in-stock mismatch, formula readjustment supplement certification

a modified material application factory in Nanjing had tight delivery times and mismatched product grade performance. Cologne cooperated with readjusting the formula (oil/additive/filling ratio), passed third-party testing, and completed the certification.

Tight delivery times, and definitely not using the wrong in-stock hardtop—formula readjustment + inspection and supplementation, less hassle than pressing a batch.

Summary

The goal of this article is simple: choosing high-temperature resistant TPE is worth spending an extra ten minutes thinking about.

125°C vs. 150°C, the difference isn't just the numbers, it's the entire selection logic—temperature determines the system, peak margin reserves, data determines the conclusion, so high-temperature parts can withstand the pressure.

High-temperature material storage should be avoided and ventilated: if the storage environment temperature is too high, materials will age prematurely—warehouse should be protected from light and ventilated, and temperature control during hot summer periods. Materials are half aged before they even enter the machine, often in the storage pot. The storage environment is the hidden lifespan switch for high-temperature materials.

Don't store high-temperature materials for too long: If stored for more than two years, materials may degrade slightly and their temperature resistance fluctuates—pay attention to batch dates when receiving goods, first in, first out. Freshness of materials is an invisible variable of high-temperature performance. Check the production date before receiving goods; don't treat two-year-old material as new material.

Even when material data is complete, it still needs to pass sample checks: molded samples must be verified at high temperature according to actual wall thickness and working conditions before data counts. Only grades that have been verified can be scaled up—both material and sample levels must pass for safety.

Keep samples for each batch of high-temperature materials: Do thermal aging controls every six months; data drift helps detect early. High-temperature parts are safety parts; re-testing samples are industry practice. Leave samples with batch and date attached, then compare every six months.

One more reminder: When selecting high-temperature resistant TPE, it's better to ask "long-term or peak" than to rush to order—clarify the working conditions so the material lasts longer.

To look at suppliers, look at thermal aging curves: reliable suppliers have long-term curves (1000h, 3000h, 5000h data points) — only 1000h doesn't reveal long-term trends. If you want data, you need "multi-time aging curves"—this is the touchstone for supplier strength. If you only send a short-term aging report, you have no confidence in long-term trends

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