TPE耐温多少度?100℃以下随便选,以上看体系

塑料知识科普 发布时间: 2026-09-12 2991 阅读

The part is fine at room temperature, but it becomes soft and deformed under high-temperature conditions. The TPE temperature resistance wasn’t selected according to the actual working conditions, it’s basically a time bomb.

Two types of temperature measurements, what's the difference? Understand first, then choose the material.

The question 'How much temperature can TPE withstand?' will have all wrong answers if the caliber is not specified.

TPE has two temperature ratings: short-term peak temperature and long-term continuous use temperature.

CaliberWhat does it refer to?Typical test
Short-term peakBriefly resistant without melting or crackingMelting Point / Vicat Softening Point
long-term continuousPerformance does not degrade after long-term useMeasure strength/hardness/rebound after 1000 hours of heat aging

The short-term peak looks at 'whether it will melt,' while the long-term continuous view looks at 'whether it will age.'

A TPE can withstand 200℃ for a short period, but for long-term continuous use it may only handle 120℃—because at high temperatures, molecular chains slowly break down, oils gradually separate, and the parts become harder and more brittle.

When selecting a material, consider its long-term continuous use temperature, not the peak value. When a customer says 'this material needs to withstand 150℃,' you need to ask: how long will it be used continuously? 1 hour or 1 year? The answers are completely different.

Technical saying: Don't listen to the melting point for temperature resistance, listen to aging — parts fail by 'gradually becoming brittle', not by 'melting on the spot'.

Criterion one: How to choose below 100℃? Mainstream systems are sufficient.

First, clearly explain the most commonly used settings: a continuous operating temperature below 100°C is the comfort zone for TPE, and most mainstream systems can cover this.

systemContinuous use temperature limit (reference)Typical scenario
SBS baseAbout 60-70℃Shoe materials, toys, daily necessities
SEBS baseAbout 80-100℃Sheath, sealing strip, handle
TPOAbout 90-100℃Car bumper trim and floor mats
TPVAbout 125-135°CCar sealing strips, around the engine compartment
TPUAbout 80-110°C (depending on hardness)Cable sheath, caster
TPEEAbout 125-150°CBellows, springs, heat-resistant cables

Below 100℃, SEBS-based and TPO are already very competitive—cost is controllable, feel is good, and processing window is wide.

When choosing a model and hesitating about "whether to go for a high-temperature system," first ask: can the continuous operating temperature really reach above 100℃? If not, a SEBS base is sufficient; opting for a high-temperature system is a waste of money.

By the way, remember: the premise of 'anything below 100℃ is fine' is continuous use with non-extreme media—if the conditions are relaxed, the system needs to be upgraded.

But pay attention to one detail: 'below 100℃' also depends on the medium. At the same 90℃, the lifespan differs by several times between exposure to air and exposure to machine oil. The medium can accelerate aging, so the temperature needs to be discounted when selecting a model.

Cars are the temperature test for TPE: the engine compartment, wiring harnesses, and seals are all temperature challenges.

In the industry, common requirements for components around the engine compartment include continuous use at 125℃; the wiring harness sheaths follow the standards of the vehicle manufacturer (125℃ is the mainstream level); sealing strips need to be both high-temperature resistant and UV-resistant.

These requirements are not arbitrarily decided; they are derived by the vehicle manufacturers based on aging tests under usage conditions.

When making car parts, first clarify which standard the customer uses for acceptance—different standards mean the same 'temperature resistance' can differ by a grade.

How to test temperature resistance? Understanding the thermal aging report

The temperature resistance data is not made up by the manufacturer; it is measured.

The most common test is the heat aging test: put the material into a constant-temperature oven and continuously age it at a set temperature for 1000 hours (about 42 days), and then measure the performance retention rate—tensile strength,

If any of the four items—elongation at break, hardness, resilience—drop too much, this temperature cannot be considered the 'continuous use temperature'.

When looking at the heat-aging report, focus on three numbers:

IndicatorWhat are you looking at?reasonable range
Tensile Strength Retention RateToo much falling indicates that the molecular chains are broken.≥80% (1000h)
Retention rate of elongation at breakSignal of becoming brittle≥60%
Hardness changeHardening indicates oil separation≤ 8A

The three numbers are direct evidence of whether the temperature can be withstood long-term. The manufacturer says 'resistant to 135°C,' but don’t just look at the label description; ask for the heat aging report—the retention rate in the report is more honest than any slogan.

The testing conditions are also important: continuous 1000h and intermittent 1000h (turning the oven on and off daily) yield different results; aging with load and aging without load are also different. Asking 'how was it tested' appears more professional than asking 'how high can it go'.

Criterion Two: System check above 100℃? Four-level dividing line

Above 100℃, the system begins to differentiate. Pay attention to the four levels:

Top level · 100-110℃: SEBS-based high-end materials are barely sufficient, but the margin is small, and long-term continuous use is not recommended. The truth about this level is: it can be used, but it's easy to push the limits.

Second gear · 110-135°C: The main field of TPV. EPDM crosslinked PP skeleton, resistant to aging, fatigue, and low permanent compression deformation, widely used in automotive seals and harness sheaths.

Continuous use at 125℃ is a common threshold for automotive wiring harnesses and sealing strips, and TPV is the main solution.

Level 3 · 135-150℃: TPEE and high-end TPV. TPEE is a crystalline polyester elastomer, with high temperature resistance, good resilience, and oil resistance. It is commonly used in corrugated tubes, springs, and heat-resistant cables; the drawbacks are that it is expensive and has a narrow processing window.

Level 4 · Above 150℃: High-end grades of TPEE and specialty elastomers (such as polyimide elastomers).

When the continuous usage temperature goes even higher, TPE has to give way to special engineering plastic elastomer systems — this range is not the battlefield of conventional TPE.

gradingTemperature rangePriority systemDon't use
front page100-110℃SEBS High-endSBS
Second gear110-135℃TPVSEBS General Grade
Level 3135-150 °CTPEE / High-end TPVTPV Standard grade
Level 4150°C +Special ElastomerConventional, TPE

Mnemonic: SEBS below 100, TPV at 100-135, TPEE above 135, switch to the track above 150.

Criterion 3: Is the low-temperature segment equally important? -40°C is the threshold

Temperature resistance is not just about high temperatures; low temperatures are another key point for TPE. Many parts are not damaged by heat but cracked by freezing.

Industry standard threshold is -40°C: automotive exteriors, outdoor equipment, cold chain seals, generally requiring -40°C not to crack or lose elasticity. At this temperature, mainstream TPE systems can basically pass:

Low temperature selection involves two actions: first, test for bending at -40°C (no folding in half, no white marks); second, observe how compression permanent deformation behaves at low temperatures.

High temperature determines lifespan, low temperature determines usability—materials chosen in the south may become brittle in northern winters.

One more reminder: don't just look at whether the material breaks in low temperatures, also look for rebound recovery—if it bends but doesn't bounce back, the seal will still fail.

Temperature resistance× oil resistance×hardness: three things to consider together .

Temperature resistance has never been an isolated indicator; it is linked with two other factors:

Temperature Resistance × Oil resistance: seals in contact with engine oil. For every 10°C increase in temperature, the oil's attack on the material goes up to a new level. TPV has good oil resistance, while SEBS base has average oil resistance—**"120°C resistance" and "120°C engine oil" are two different materials.

** When reporting operating conditions, the medium must be reported together with temperature.

Temperature Resistance × Hardness: In the same system, higher hardness usually means greater temperature resistance margin—soft materials are supported by oil components, and when the temperature rises, oil leaks first.

Components that are both soft and temperature-resistant are a major challenge in TPE selection, often requiring sacrifices on hardness or cost.

Temperature Resistance × Rebound: Permanent compression deformation at high temperatures is the key to sealing lifespan. For the same sealing ring, 95% rebound at 25°C, and at 100°C it may only be 70%—material selection focuses on high-temperature rebound, not room temperature rebound.

CombinationTypical ScenariosPriority System
High Temperature + Oil ResistanceEngine Peripheral , GearboxTPV, TPEE
High Temperature + SoftHigh-Temperature Sealing, Heat-Resistant HoseHigh-end SEBS, TPV soft grades
Low Temperature + Oil ResistanceNorthern Outdoor Oil Circuit PartsTPV, Special SEBS

When reporting operating conditions, explain all three items at once: "temperature + medium + hardness" so suppliers can lock the system within two or three units; If you only mention one temperature, the other party can only guess.

Cologne customer case: cost exceeds standard, rematching substrate and processing temperature

A modified material application factory in Qingdao has material costs exceeding standards, uncompetitive pricing, and nearly losing customer orders. Cologne looked over and found that the system was overperforming—continuous temperature at only 80°C, but using a high-temperature system, with all costs spent on "unusable performance."

Cologne cooperated to rematch the overmolding substrate and processing temperature, downgrading the system without sacrificing temperature resistance margin, bringing costs back within budget. Temperature resistance selection is not about higher quality but "sufficient + margin"—spending extra money to buy unusable temperature resistance is the biggest hidden waste in procurement.

Temperature, oil, and hardness all together: Five steps to set the temperature

Take a piece of paper and follow this order, and the temperature resistance will be selected:

After completing five steps, the system is basically locked, then discussing the grade. Discuss temperature resistance based on operating conditions, so suppliers can give accurate answers; If you ask "how many degrees it can withstand," anyone will guess.

Regarding TPE temperature resistance, three frequent misconceptions, all at once:

Misconception 1: "The higher the temperature resistance, the better." "No." High temperature resistance usually means higher costs, narrower processing windows, and a harder feel.

Enough plus a 10-20°C margin is the optimal solution; Blindly pursuing high temperature resistance is like spending real money on unusable performance.

Misconception 2: "Melting point is temperature resistance." " That's not right. Whether a melting-point tube melts or not doesn't matter if it's "brittle or not." Many materials have a melting point of 150°C+, but continuous use temperature is only 90°C—aging occurs before melting and ruining the part. Temperature resistance depends on aging, not melting point.

Misconception 3: "Temperature resistance is fixed right from the factory." " Part of it is correct. Within the same system, fine-tuning the formula (crosslinking, antioxidant, oil content) can change the upper temperature resistance limit by 10-20°C.

Adjusting the formula at a modified factory saves much more than directly changing the system—first ask if adjustment is possible, then consider switching.

After dismantling these three misconceptions, take another step for procurement: conduct a 1000-hour thermal aging pre-test during the sample stage.

Before the whole batch goes into production, take sample materials and run a round of thermal aging (or ask suppliers to provide historical aging data for the same grade), confirm retention rate meets standards, then scale up the volume.

Thermal aging testing fees are dozens of times cheaper than batch returns after production start—this is the most cost-effective investment in purchasing heat-resistant parts.

** adds a detail about low temperatures: not all TPEs can pass -40°C.

SEBS base is fine, but some high-crystalline TPEE grades become hard and brittle at -40°C—for parts with high low-temperature requirements, include low-temperature bending tests in the acceptance criteria when selecting materials.

Don't assume "all elastomers are low-temperature resistant."

Northern customers, cold chain equipment, outdoor sealing—this is especially important.

** There is also an "invisible indicator" for temperature resistance: ozone resistance and UV resistance.

Outdoor components (automotive seals, outdoor cables) under sunlight accelerate ozone and UV aging—just because the temperature test has passed doesn't mean the weather resistance has passed.

For outdoor scenarios, ask "Is there weather resistance rating/UV aging data?" to look at both data together for complete results.

** Another common purchasing mistake: treating "peak temperature" as "continuous temperature."

The client says "the material must withstand 150°C," but when asked, it's actually instant steam sterilization at 150°C, 5 minutes each time—this is different from continuous 150°C; SEBS high-end materials might be good enough.

Ask clearly about "how often and how long," many "high-temperature problems" are actually false propositions, saving money on switching to high-temperature systems.

The final step: have suppliers write "continuous usage temperature + test basis" on the quotation — if you can't write it, don't rush even if the quote is low. Temperature resistance is a hard indicator and must be documented.

Temperature Resistance Selection, Finally, here's a self-checklist:

QuestionAnswer written here
Continuous operating temperature?___°C
Peak temperature and duration?___°C / ___h
Contact medium?Air / Oil / Acids and Alkalis / Water
Minimum operating temperature?___°C
Required lifespan?___ year
Is there a manufacturer/industry standard?___

After filling out six lines, take it and ask the supplier; they can't fool you even if they want to. There's no shortcut to selecting a temperature-resistant model, but asking about all operating conditions is the fastest way.

** Here's another set of real-world test concepts: how to interpret temperature resistance data so you don't get misunderstood.

** When you see "125°C endurance," don't misunderstand it as "125°C can be used however you want"—it usually means "after 125°C continuous aging for 1000 hours, performance retention rate meets the standard"; In actual use, temperature fluctuations, medium corrosion, and mechanical stress accumulate , so

engineers tend to leave an extra 10-20% margin.

In other words, for materials rated at 125°C, the design should use them at 100-110°C for stability.

Correspondingly, acceptance requires suppliers to follow this logic: not only must they "withstand 125°C," but also "after aging at 1000 hours at 125°C, the elongation retention rate must be ≥60%"—if the requirements are detailed, suppliers won't be able to fool you with "peak temperature."

** One last thing to the design: temperature resistance is related to wall thickness.

At the same temperature, thin-walled parts dissipate heat quickly and have a lower center layer temperature; thick-walled parts have higher internal temperatures and faster aging—the temperature resistance requirements for thick-walled seals are a notch higher than those for thin-walled parts.

When the drawings specify temperature resistance requirements, don't forget to specify the wall thickness.

** Here's another common application profile: the temperature resistance logic of cable sheaths.

Cable sheaths are classified according to UL/GB standards: 60°C, 70°C, 90°C, 105°C, and 125°C are common temperature grades, each corresponding to a different material system**—90°C SEBS is sufficient, 105°C requires more durable formulas, and 125°C usually requires TPV or cross-linked material.

When reporting a "cable sheath" request, directly state the grade (e.g., "90°C grade"), and the supplier immediately understands, which is much more efficient than saying "heat-resistant sheath."

consolidated the criteria from this article into one sentence: first report the continuous temperature, then look at the system, and finally decide on the grade. If the order is correct, the temperature resistance selection will not be confusing.

**Temperature resistance is selected, not asked—the more specific the operating conditions, the more precise the answer. Remember the four watershed levels: reporting temperature but not system is essentially a wasted report.

Choose the right system and win half the way for temperature resistance. **

Summary

TPE The final step in material selection is simple: discuss with operating conditions in mind, ask without conditions, and feel free to share with colleagues who need it.

Don't mix two temperature standards, remember the four-level watershed, remember the -40°C threshold, go through the five-step decision-making process—TPE temperature resistance is no longer a problem for you.

People always ask: Can secondary grade materials be used?

Our answer has never changed—there are many places where it can be used, but not a single place where it can't be touched. It's different from recycled materials: one is the indicator is off, the other is the molecular chain is broken

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