发动机舱尼龙件老化发脆?背后四种机制,四种不同解法

应用领域 发布时间: 2026-09-13 2066 阅读

This part became brittle in less than two years.

Nylon parts in the engine compartment becoming brittle and cracking after a period of use are the most common type of complaint.

But 'brittle' is just a result, not the cause. There are at least four underlying mechanisms, and the solutions are completely different.

Dealing with one problem with the approach for another usually makes things worse.

The aging of the nylon parts in the engine compartment happens quietly year after year.

A ten-year-old car came in for maintenance, and the technician casually twisted a wire harness tie, which snapped with a pop.

The fracture appears white and has no stringiness, which is typical of a brittle fracture.

The cable ties from the same batch can withstand being folded in half countless times when in a new car condition.

Over ten years, the combined effects of cabin temperature, oil mist, and electrochemistry have gradually worn away its toughness.

Checking for aging means taking these combined factors apart and examining them one by one.

1. Four Types of Mechanisms

mechanismTrigger conditionTypical location
Thermo-oxidative agingLong-term high temperature OxygenParts close to the exhaust and turbo
Hydrolytic agingHigh temperature Water / Coolant / HumidityWater pathways and areas of damp stagnation
Media erosionEngine oil, fuel, coolantParts in contact with the medium
Ultraviolet agingDirect sunlightExtravehicular exposure unit

The common point of the four mechanisms is that they all manifest as 'changes in performance and brittleness'; the difference lies in the conditions under which they occur and the rate at which they happen.

So the first step in troubleshooting is not 'switching to a more heat-resistant material,' but rather determining which type it is.

2. First, look at the location: the location itself is a clue

Close to heat sources (exhaust manifold, turbo, EGR) → first suspect thermal-oxidative aging.

Places with long-term exposure to or retention of moisture → first suspect hydrolytic aging. Note the word "retention" — not all wet areas will have problems; areas with standing water or long-term moisture are at the highest risk.

Places exposed to engine oil, fuel, and coolant → first check for media corrosion.

Exposed to the outside of the cabin, in positions that can be directly hit by sunlight → UV aging needs to be considered.

If the location is neither high-temperature nor in contact with the medium, yet it becomes brittle → then it's time to suspect a problem with the material itself (such as degradation or mixing).

Positioning judgment costs almost nothing, yet it can rule out three of the four mechanisms.

3. Next, look at the fracture and time

Fracture morphology:

Thermal-oxidative aging usually starts from the surface, with the outer layer of the fracture being brittle and the inner layer relatively intact, showing obvious discoloration.

The cross-section of hydrolytic aging is often accompanied by whitening and powdering, and it often develops inward from the side in contact with the medium.

Parts subjected to medium erosion are usually accompanied by swelling, deformation, sticky surfaces, or cracking.

Time of occurrence:

Brittle after just a few months → most likely a material or process issue (degradation, mixing), not normal aging.

One or two years of brittleness → requires a mechanism that combines a temperature and a medium condition, usually thermal oxidation or hydrolysis.

Slow changes over three to five years → more likely part of the normal aging process, which is an issue of estimating design lifespan.

4. Criterion: Let the data speak

Thermal aging has a relatively clear verification method:

A typical practice is 150℃ × 1000 hours, measuring the retention rate of tensile strength. A retention rate above 75% is usually considered solid.

The value of this criterion lies in the fact that it transforms 'heat resistance' from 'how high a temperature it can withstand' into 'how much performance remains at high temperatures.' The former is a short-term indicator (HDT), while the latter reflects long-term performance.

The methods for verifying hydrolytic aging are different: performance retention should be measured under conditions of high temperature, high humidity, or medium immersion, while also observing changes in mass (liquid absorption rate).

The data from the two lines need to be separated; one piece of data cannot be used to judge two mechanisms.

5. Inspection Sequence

Step 1: Look at the location and service environment. Eliminate impossible mechanisms.

Step 2: Observe the fracture surface morphology and discoloration.

Step 3: Check the occurrence time and batch. Is it a common phenomenon or just individual batches? For individual batches, check the material; for a common phenomenon, check the design.

Step 4: Obtain the aging data of the materials. Request the retention rate for heat aging and the retention rate for hydrolytic soaking separately.

Step 5: If the data does not match the actual performance, you need to check the process (drying, mold temperature) and whether there has been any mixing.

6. Can it be prevented: Actually, it can be done during the selection process

Aging is not 'wearing out'; it is an estimate of design life.

Three things to do when selecting a model:

First, calculate the actual service temperature and time. It's not the 'maximum temperature', but the 'long-term continuous temperature and accumulated time'.

Second, select the system according to the mechanism. For thermal-oxidative aging, a thermally stable system is required; for hydrolytic environments, a hydrolysis-resistant system or long carbon chains are needed; for the medium environment, it should be considered together with the compatibility data of the medium.

Third, incorporate validation into the specifications. Use 'retention rate after aging' as the receiving criterion, not just the factory strength.

The decisive move of aging lies in the moment of selection, not in after-sales.

There is also a judgment that is easy to confuse: 'became brittle after being used for two years' and 'became brittle after being stored in inventory for two years' are two different things.

The former involves aging, corresponding to mechanisms such as thermo-oxidation, hydrolysis, and media; the latter is mostly caused by post-shrinkage and moisture absorption, leading to changes in size and stress, and it may even be a problem with the stability of the material itself.

The directions for troubleshooting brittle inventory are completely different — you need to check the storage environment's temperature and humidity, whether it is kept away from light, the packaging method, and whether there is any residual stress release inside the items.

Treating inventory problems as aging issues is a wrong approach from the start.

The aging of the cabin nylon parts is the result of the superposition of three forces.

Thermal-oxidative aging is the main factor, with long-term temperature causing the molecular chains to oxidize and break, and toughness gradually lost.

Oil liquid erosion is an accelerator, and oil mist and coolant vapor will extract additives and accelerate aging.

Electrochemistry is a hidden arrow; when current passes through copper terminals, copper ions migrate into the plastic and catalyze degradation.

The traces left by three types of aging on components are different: thermo-oxidative embrittlement leaves smooth fracture surfaces, oil effects are accompanied by swelling and discoloration, and copper-induced brittleness is concentrated near copper terminals.

When troubleshooting, first look at the fracture and its location, identify the main failure factors, and then verify accordingly.

Follow-up Question 1: When troubleshooting for crispiness, what should be checked first?

First, look at the fracture surface and location. If the fracture surface is white and smooth, and the location is far from the heat source, check in the direction of thermal-oxidative aging. If it is brittle and concentrated around the copper terminals, check for copper-related damage. If there is discoloration and swelling, check for contact with oil. The location is the cheapest clue for troubleshooting, so look at the location first before starting tests.

Follow-up Question 2: Will the toughening agent age on its own?

Yes. The elastomer phase in the toughening system cross-links and hardens under hot oxygen, and the toughening effect weakens year by year. That's why aging resistance verification should test low-temperature shock after aging, not just factory data. When selecting materials, asking about toughness retention after aging can filter out a batch of solutions that only meet immediate standards.

Tracking a single cable tie brittle breakage

Ten-year-old car cable tie brittle breakage, other engine compartment parts in the same batch are intact. The cable tie is positioned right next to the engine exhaust side, and the local ambient temperature is much higher than the rated value. The material was not wrong, but the position was wrong. Rectification involves switching to a higher-temperature grade on the exhaust side and adjusting the wiring path. The final aging inspection often points to the layout rather than the formula.

Four-step aging inspection method

Determine heat source grade by location, failure type by fracture surface, select verification items by type, and bring conclusions back to selection or layout for rectification. Once these four steps are completed, similar problems won't happen again.

Aging management has another prerequisite: temperature map.

Engine compartment is not a uniform temperature field; the exhaust and intake sides can differ by tens of degrees.

Draw partition maps of the engine compartment based on actual measured temperatures, with material grades for each zone assigned accordingly.

An OEM conducted a test and found the cable tie temperature on the exhaust side was more than twenty degrees higher than the label.

After selecting materials based on actual tests, the warranty rate for cabin plastic parts dropped significantly.

The temperature map is the base map for cabin material selection, more valuable than any single piece experience.

Three extended questions

How to choose the temperature for aging tests? Add the upper limit of the actual measured temperature in the partition of the part plus a safety margin; there's no need to standardize it across the entire cabin.

At what level of aging is considered unqualified? By function: cable ties are checked for tensile break force retention, exterior parts for color difference, seals for compression deformation.

How do you align material aging data with the overall vehicle warranty? Multiply the warranty period by the annual equivalent aging, convert it into test hours, and work backward to the formula requirements.

Three nacelle selection diagrams

Temperature zoning diagram, oil-liquid contact diagram, current path diagram.

Stacking three diagrams makes the operating conditions of each part clear at a glance, turning model selection from an experience-based question to a diagram-based question.

Aging of engine compartment components also depends on new trends from automakers.

After electrification, the overall temperature field of the engine room drops, but local hotspots are more concentrated.

The area around electronic controls and charging circuits has become a new high-temperature zone, and material grades need to be rezoned.

The engine room temperature map from old experience needs to be redrawn according to electrification.

A supporting factory redrew the temperature map ahead of schedule, so the new energy project was set ahead of competitors.

Trend research is not a mere empty activity; it is the winning or losing strategy of fixed locations.

Last group follow-up question

Has the oil environment in the new energy engine room changed? Yes, there are more coolant circuits, a wider contact area for ethylene glycol, and an increase in hydrolysis resistance.

What are the new requirements for materials in high-voltage circuits? Resistance to marking and arcing must keep up, and CTI weights should be increased.

Can the validation cycle for aging be shortened? You can accelerate at higher temperatures, but the acceleration rate must be calibrated by benchmarking tests, not just blindly.

The course on engine room material selection has new chapters every year; if you stop learning, you'll fall behind.

To wrap up this article on aging, let's talk about a mindset issue.

Aging is a slow variable—so slow that no one wants to spend time on it during the project period.

But remember the after-sales ledger clearly; slow variables are always in the end.

Treat aging verification as an investment, not a cost; it's the boundary between suppliers and excellent suppliers.

The engine room ten years from now will score today's decisions.

Final Three Points

Aging inspection starts with location; location is the cheapest diagnostic tool.

Temperature maps are the base map for engine room material selection; after electrification, they need to be redrawn.

The material aging curve is the product's market credit curve.

Aging article ends with a data asset perspective.

Every aging test data is an asset; when collected, it forms the company's material selection map.

Selection of similar parts can be reused across projects, greatly shortening validation cycles.

Some factories have built a database of ten-year aging data; new project material selection is checked before testing.

The savings in verification costs are enough to support two labs.

No data accumulation; every step starts from scratch.

The complete knowledge map for this article

Fracture determines type, location determines heat source, zones and grades, acceleration determines cycle, re-measurement determines attenuation, database determines reuse.

Six steps connected, managing aging engine rooms shifts from firefighting to scheduling.

Factories with declining complaints about brittle aging are old factories that treat aging as a serious discipline.

Ten years of engine room real skill—this saying fits best with plastic parts.

Aging: Here's another customer communication scenario. When customers bring brittle parts to claim compensation, the first thing they say is often 'They're lacking.' At this point, it's not about debate, but about troubleshooting ability. Laying out data on location, fractures, temperature history, and oil contact history, and pinpointing failure factors to heat source layout or assembly stress, customers' attitudes change instantly. In the face of data, responsibility shifts from mutual accusations to joint rectification. The reputation of supporting factories for inspection is built up repeatedly.

Adding another verification reminder for new materials replacing old ones. Regulations on prohibited substances are updated every year, and some old formulas need to be replaced due to additives restrictions. After replacement, aging data cannot be reused from old brands; core items must be redone. Some factories have been reusing old data and being found to be unqualified, resulting in one-time losses far exceeding retesting costs. For regulation-driven material replacements, not a single verification checklist is omitted. Compliance and aging lines intersect at the material replacement node, so you must keep an eye on them.

Aging Inspection adds another clever use for control parts. When inspecting for brittle issues, compare samples and faulty parts from the same batch to separate service factors. If the sample data is normal, the problem lies in the service environment; Sample retained parts are also fragile, so the problem is traced to materials and processes. This tactic cuts the inspection scope in half. The value of the sample retention system is realized at such moments; the batch of samples stored in the archive cabinet is the most reliable reference for inspection.

adds another link between aging and packaging and transportation. If the packaging of machine room parts at the factory is not moisture-proof, moisture absorption during transport and storage will prematurely deplete the material's lifespan. Especially for long-distance sea transport in humid and hot regions, a 45-day voyage is equivalent to a single humid-heat pretreatment. Some factories add humidity indicator cards to packaging bags, so the warehouse status is immediately visible upon arrival. The moisture resistance rating of packaging materials must also be written into the standard, so the moisture content carefully controlled by the factory is not left unchecked at sea. Aging timing begins the moment it leaves the factory; packaging is the first barrier.

Conclusion

Inspection chain for brittle nylon parts:

First, look at the positioning mechanism → then look at the fracture and time→ Then separate and ask for two types of aging data.

One more reminder: aging data should be required according to "actual usage conditions," not the "most stringent conditions." If conditions are set too strictly, qualified suppliers will be filtered out; If set too loosely, verification loses meaning. This is the biggest test of the coordination between procurement and technology.

Judging aging, material data, structural design, and actual working conditions are all indispensable—if one is missing, the conclusion will be biased.

If you have a piece struggling with aging issues, send me three things: installation location, service temperature and time, fracture shape or photos

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