节温器壳体材料怎么选?长期 130℃ 的热氧老化账

应用领域 发布时间: 2026-09-16 3983 阅读

Last autumn, a client who makes thermal management modules sent two batches of thermostat housings.

Modified nylon parts, glass fiber reinforced, same grade, same sub-mold, same process card, from two shifts of the same factory.

One batch ran for eighteen months after being loaded, and the flange started to leak coolant; another batch has been almost three years, and when taken apart, it is still dry.

The customer's exact words were very direct:

"The material is the same material, and we also processed it the same way as them. Why did their batch crack, but ours didn't?"

I replied with three questions: What is the long-term water temperature? What is the concentration of ethylene glycol? What is the pre-tightening force of the flange bolts?

After asking three questions, the solution emerges. For the issue of thermostat housing materials, the answer is often not in the grade, but in the combination of the three numbers: 'temperature, medium, and preload'.

1. Six-dimensional working conditions: Here are two variables that others don't often calculate

The temperature should be considered over the long term. The thermostat housing is immersed in coolant at 105–130°C for extended periods, and the heat management module bracket on the side near the exhaust can be even higher.

The thermostat itself is a frequently moving part, with opening and closing cycles commonly on the scale of two to three minutes — it spends its days constantly alternating between hot and cold.

What does water at 130℃ mean? A household pressure cooker works at about 120℃. And this part has to be soaked in it continuously for tens of thousands of hours.

The medium is not 'ethylene glycol', it is 'coolant'. A typical mixture is 50% ethylene glycol and 50% water, with added corrosion inhibitors and defoamers.

Here is a key chemical change: ethylene glycol oxidizes under high temperature and aerobic conditions, producing small molecule acids such as glycolic acid and oxalic acid.

The result is that the coolant's pH will gradually drop from around 8 when new. When the pH falls to around 6, it becomes harsh on polyamides.

The pressure is fluctuating. The system pressure is commonly in the range of 0.1–0.2 MPa, varying with water temperature, and fluctuates multiple times throughout the day.

Among the loads, there is one that is 'static.' The preload of the flange bolts is applied on the housing over a long period, and what this brings is creep, not a strength issue.

The lifespan is calculated based on the whole vehicle: 15 years / 240,000 kilometers, during which the number of thermal cycles is in the tens of thousands.

Appearance and compliance. The flatness of the sealing surface, the smoothness of the internal flow channel, and the retention of performance after exposure to coolant—all three must be clarified in terms of standards before the fixed point.

Two number conversions:

First is the number of thermal cycles. Assuming two cold starts per day and 365 days a year, it amounts to around 700 times a year, and over fifteen years, it reaches an order of 10,000 times.

Secondly, creep. Plastic parts subjected to continuous pressure at 130°C often exhibit a deformation after 1000 hours that is an order of magnitude higher than the deformation under the same load at room temperature.

This second number is the real source of the flange leakage.

2. Material Path: Hydrolysis Resistance and Heat Resistance Are Not the Same

RouteLong-term temperature resistanceHydrolysis-resistant systemWater absorption magnitudeCost
PA6-GF30100–120℃Weakapproximately 2.8–3.0%High risk of hydrolysis at 130°C for long periods
PA66-GF30130–150℃Mature (compatible with thermally stable systems)About 2.5%Moisture-induced dimensional drift is relatively large
PA66-GF35130–150℃MatureAbout 2.2%The strength of the weld line rises and falls with the glass fiber
PA6T-GF30Above 150℃Upper-middleAbout 2%–3%High cost, high mold temperature requirements
PPS-GF40200℃ scaleGoodAbout 0.1% levelHigh cost, low toughness

Look at this table, the key point is that 'heat resistance' and 'hydrolysis resistance' are two different things.

A material being able to withstand a short-term peak of 150°C does not mean it can soak in water and ethylene glycol at 130°C for three years — the latter tests the hydrolytic stability of the amide bonds.

The PA66 system is mainstream for this type of part, provided it is equipped with an appropriate heat stabilization and hydrolysis-resistant system; whether it is equipped or not, over the long term, the performance will diverge along the same line.

PA6T has a larger temperature margin, at the cost of process window and cost; PPS has good dimensional stability and chemical resistance, at the cost of toughness and cost.

The thermal management bracket and the thermostat housing often should not use the same part number: the former tends to favor structural rigidity, while the latter favors sealing and hydrolysis resistance.

3. Selection Criteria Table (This page is the most worth keeping)

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Mechanical retention after coolant exposureAfter 130℃ × 1000h, tensile retention ≥ 70%ISO 527-2 / GB/T 1040.2-2022Brittling, surface crackingHydrolysis-resistant system is configured according to temperature settingsAntioxidant (including thermally stable compounded system)
Molecular weight retentionThe relative viscosity decreases within a controllable range after soakingGB/T 1632.1 / ISO 307Long-term performance cliff-like declineMoisture content control Hydrolysis-resistant systemAntioxidant (including thermally stable compounded system)
130℃ Creep1000h deformation is determined per piece, focusing on the flangeConstant temperature and constant load creep testFlange leakage, preload relaxationGlass fiber reinforced Structural stiffeners
Maintain the flatness of the sealing surfaceStill within drawing tolerances after thermal cyclingCoordinate Measuring Machine / Piece-Level Thermal CyclingLeakage, improper sealing ring compressionGate and Orientation Design
Inner flow channel precipitateNo visible precipitates, gating cross-section not reducedSoak and then dissect, weighValve port sticking, flow driftControl the dosage of small-molecule additivesLubricant (Low Bleed Type)
Weld line strength≥ 60% of the inherent strengthComponent-level inspection TensileWeld line crackingControl glass fiber content Gate designCoupling Agent (Fiber / Resin Interface)
Blasting pressureFollow item specifications, leave a marginHydraulic blasting testCasing ruptureStructure and wall thickness coordination
Dimensional change after water absorptionwithin the magnitude of 0.3%ISO 294 / Measured Before and After Humidity AdjustmentAssembly interference, sealing surface offsetForced moisture conditioning or low water absorption substrate

How to use this table: First look at the first two rows—mechanical retention and molecular weight retention after being resistant to coolant.

These two lines represent whether the material has been eaten away by water. If they don't pass, the creep and burst data afterward are only temporarily looking good.

A reminder: The coolant data must specify the type, concentration, pH, and temperature of the coolant. Data that only says 'ethylene glycol resistant' has limited reference value.

Four or Five Common Failures and Their True Causes

Failure 1: The flange surface slowly leaks, but the casing itself does not crack.

The root cause is mostly creep, not strength. When the bolt preload is applied on plastic at 130°C for a long time, the material will slowly flow away bit by bit.

Once the preload is released, the seal ring is not properly compressed, and leakage occurs. This cannot basically be detected in tests at room temperature.

Failure 2: Surface cracking and powdering, breaks with a simple twist.

This is hydrolysis plus long-term heat and oxygen. Why are water and acid so strong?

The main chain of polyamide is an amide bond, which can be cleaved by water and acid—molecular chains shorten segment by segment, and macroscopically, this results in strength collapse.

And the coolant becomes acidic after being used for a long time, which turns it from 'neutral water' into 'acidic water,' making it much more aggressive.

An attribution from the additive side: These components rely on thermal stability and hydrolysis-resistant systems to perform, but some compounded systems can be deactivated by complexation in coolant environments containing amines or sulfur. The same grade can have a significantly different lifespan in different coolants, and it's often due to this issue.

Failure three: Thermostat valve stuck, flow drift.

This is not a mechanical problem; it is precipitation. Small molecule additives are leached out by hot water and gradually accumulate near the valve port and valve seat.

During troubleshooting, first check the runner cross-section, then look at the amount of small molecules in the formula — this approach is more effective than changing the substrate.

Failure four: For the same batch of items, some can be used while others are defective.

First, check three things: dryness, assembly preload, and the brand and batch of the coolant. Any one of these being inconsistent is enough to create a difference in lifespan.

Failure Five: The corner near the exhaust side cracks first.

This is a typical signal of uneven temperature distribution. First, re-measure the temperature points on the whole machine, then discuss the materials.

Here's something that needs to be said directly: Many people think 'the more fiberglass is added, the more resistant it is to creep.'

The direction is half correct. Glass fiber can indeed increase the initial rigidity, but it cannot prevent the matrix from losing modulus under moisture absorption and high temperatures.

Moreover, after the glass fiber content increases, the interface between the fibers and the matrix can become the starting point for cracks in a long-term water environment, and the weld line strength also decreases accordingly.

So we are more inclined to ask: is this due to 'insufficient rigidity' or 'leakage at the sealing surface'? The solutions to these two issues are different.

5. Processing and Verification: Drying on this chain is the very first step

Dry. We ourselves have suffered losses in the workshop because of this: with the same batch of material, the same mold, and the parameters unchanged, one mold comes out fine, and the next mold breaks as soon as it's taken apart.

After checking the molds and parameters for three days, I couldn't find anything. Finally, I got to the dryer — those days a hot air dryer was being used.

Polyamide must be dried using a dehumidifying dryer; an ordinary hot air dryer is ineffective for it. Material with excessive moisture will hydrolyze and degrade in the barrel, and the strength of the parts has already been compromised.

Soaking in water at 130°C further shortens the lifespan. This kind of problem cannot be detected on the raw material bag; it only becomes apparent on the finished part, and it appears very late.

Mold temperature. The crystallinity is supported by the mold temperature. If the mold temperature is low, the parts become brittle, the surface darkens, and water resistance performance also decreases.

Gate and orientation. Near the sealing surface, it is desirable for the fiber orientation to be consistent to avoid local shrinkage differences that could warp the flatness.

It is recommended to arrange the verification sequence in this way:

1. Dimensions after humidity adjustment and flatness of the sealing surface (dry state data is only recorded for process documentation)

2. Mechanical retention and molecular weight changes after soaking in coolant at 130°C

3. 130℃ constant temperature and constant load creep (observe flange deformation)

4. Internal Pressure Circulation and Blasting

5. Sealing Test After Component-Level Thermal Cycling

6. Complete Vehicle Installation and Durability

The order cannot be changed. If the previous item fails, the numbers measured later will only look good temporarily.

An insider detail: the duration of a creep test cannot be shortened.

The deformation rate of the first three months cannot be extrapolated to the next three years—the creep curve of plastic is not a straight line; it can suddenly become steeper at a certain point in time.

6. Boundaries: When to return metals or switch systems

First, the long-term water temperature exceeds 140°C. In this range, the long-term performance of conventional polyamide systems is insufficiently supported, so one needs to move towards systems like PPS.

Secondly, if the coolant remains in the acidic range for a long time and cannot be replaced. If the coolant in the operating environment cannot be maintained periodically, the risk of hydrolysis will be amplified.

Third, it requires long-term zero leakage and no maintenance. The consequences of failure for this type of component are water leakage and shutdown, with a very high risk weight, so a structural compensation plan should be considered or it should revert to metal.

Fourth, the annual usage is too small to justify the cost of spreading the mold and long-cycle validation.

Laying out these four points is not to discourage, but to let the project know how long the validation will take during the project initiation stage.

Add a section: How to perform creep verification so that one dares to sign the report

This section is written for the person who has to sign. If the creep test is done incorrectly, it is more dangerous than not doing it at all because it will give you an overly optimistic number.

Temperature is taken according to long-term values. Using the creep curve at 23℃ to predict the deformation at 130℃ will definitely lead to an incorrect conclusion.

The load should be converted according to the actual preload, not just half. A conservative load leads to conservative conclusions, and vice versa.

Place the measurement point on the flange, not in the middle of the housing. What you need to answer is 'Will the sealing surface come loose?' not 'Is this piece of material good?'

All three time points should be recorded: 1000 hours, 3000 hours, and 5000 hours. A smooth initial period does not mean the later period will also be smooth.

At the same time, measure the pre-tightening force decay. The decay curve of the bolt torque is closer to the answer to the 'leakage-free' issue than the deformation value.

Test itemConditionWhat are you looking at?Determine direction
constant temperature and constant load creepLong-term water temperature, actual pre-tightening forceFlange deformationDeformation determines the sealing margin
Preload force attenuationSame as aboveBolt torque changes over timeDetermining assembly torque and reinspection cycle
Mechanical properties after soaking130℃ × 1000h coolantStretch retention rateDetermine whether the material is eaten by water
Molecular weight changeSame as aboveRelative viscosityDegree of chain breakage
Component-level thermal cycling-40℃ to 130℃Sealing surface flatnessDecide the sealed structure

Adding another timeline — the same batch of material, two sets of processes, how the gap was created:

`

Same grade ├── Two shifts, two sets of drying and pre-tightening parameters, the first pieces are all qualified

Month 6

├── A small number of flange surfaces have white deposits (judged to be dirty coolant)

├── Occasional liquid level alarm after cold start (determined to be the sensor)

└── Month 18 concentrated report on seepage → Trace back → Ten to fifteen percent difference between the two batches of pretightening force → Retorque and drying window

`

The conclusion is not 'the material is no good.' The conclusion is that the same batch of material, under two different processes, has a lifespan difference of one and a half years.

This is also why, for the review of this type of part, I suggest including 'process and torque' in the technical agreement: whenever changing drying equipment or bolt suppliers, it must be reconfirmed each time.

Material Change Risk List (Transferred from the original plan, items that need to be changed)

link; segment; partWhat do you want to move?Points that are easy to overlook
MoldThe shrinkage rate changes with the glass fiber content, and the sealing surface is compensated per piece.Seal groove position and wall thickness change
DrySet the window according to the measured moisture content, using a dehumidifying dryerRecycled materials mixed with the water content brought in
Material Temperature / Mold TemperatureMold temperature is adjusted based on crystallinity and flatness jointlyOnly copy the recommended brand numbers, without looking at the parts
Assembly PreloadRedetermine torque according to the creep characteristics of the materialUse the torque value of the original metal parts
Humidity controlForced humidity adjustment Re-measure dimensionsBased on the average wall thickness to estimate the time, the thick-walled areas are not fully soaked.
Coolant ValidationSpecify the category, concentration, pH, and temperatureOnly make a group with pure ethylene glycol
StructureThe sealing groove and the stiffener need to be modified together.Only change the materials, do not alter the structure
Verification orderSize → Medium → Creep → Internal Pressure → Complete MachineIf the previous item fails, just move on.

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

`

Project: Thermostat Housing / Thermal Management Module Bracket · Material Route Evaluation

Conclusion direction: Modified nylon can be considered as a candidate route, provided that both the hydrolysis-resistant system and structural compensation are in place

1. Three Rules That Must Be Followed

1. 130℃ coolant soaking data Molecular weight change data, both groups are required

2. The assembly preload should be recalibrated according to the creep characteristics and cannot follow the torque used for metal parts.

3. The duration of creep verification is not shortened, and no conclusion is drawn if the duration is not met.

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

· Long-term water temperature within 140℃

· The coolant has a regular maintenance and replacement mechanism

· Creep test conditions with constant temperature and constant load

· The sealing surface can be controlled through structural compensation

3. Next Steps

1. Actual measurement of the coolant pH and temperature in the real usage environment

2. Soak at 130℃ × 1000h, and observe mechanical retention and molecular weight.

3. Perform constant-load creep at 130°C and measure the flange deformation

Risk warning: The main uncertainty of this route lies in long-term hydrolysis and creep, not in initial strength and temperature resistance.

`

Two questions readers often ask

Question: Compared with imported materials, where does the domestic route fall short?

According to public information, the advantage of imported brands in this type of component mainly lies in the integrity of long-term hydrolysis data, record of batch stability, and experience in validating supporting coolant systems.

The difference in domestic routes lies more in whether 'long-term data has been fully completed' rather than the materials themselves. Which components are already mature and which are still not recommended depends on the validation results of the components and cannot be generalized.

Q: Can the thermal management bracket directly use the part number of the thermostat housing?

Look at what it is afraid of. The bracket mainly fears rigidity and creep, while the casing mainly fears hydrolysis and sealing. The priorities of the two are different.

If the number of items is small and you want to combine part numbers for management purposes, you must at least re-verify creep under the condition of using the bracket — what is saved is management cost, not verification.

Conclusion

Returning to the three questions at the beginning. Why can these three questions set the direction?

Because it asks about three things: the water temperature (to determine the material system), the concentration (to determine the severity of the medium), and the preloading force (to determine the creep risk).

After these three questions are asked, it's finally the turn for the brand to appear.

If you currently have a thermostat housing or a thermal management bracket and need to decide on materials, just send over three things to give guidance: long-term water temperature, coolant type and concentration, and assembly preload or sealing surface tolerance.

The material is the same, but the processes are two different sets of processes — the same bag of particles sent to two factories, one batch can last fifteen years, while the other leaks in two years.

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.

The auxiliary system in the formula is matched according to the working conditions per item — conventional auxiliaries are kept in stock, and special models are matched as needed; you report the working conditions and grade, and the materials and auxiliaries are prepared together at once.

Also operates nylon resins, 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 test molding of parts like thermostats can be discussed together.

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