汽车热管理阀与水泵用什么尼龙?耐冷却液、耐水解是核心

应用领域 发布时间: 2026-09-12 3648 阅读

158 What is used for automotive thermal management valves and water pumps? Modified nylon

Plastic parts for thermal management systems

The thermal management system of new energy vehicles (battery cooling, motor cooling, cabin air conditioning) is much more complex than traditional vehicles,

and more plastic parts: electronic multi-way valve (controls coolant flow direction), electronic water pump housing and impeller, expansion kettle, coolant pipeline connector, temperature sensor base.

Common requirements: coolant resistance, temperature resistance (-40°C to 120°C), dimensional stability, hydrolysis resistance. Coolant resistance is the first threshold.

On-site Restoration: Tracing the Root of an Impeller Fracture Report

In the winter before last, after-sales service at a pump factory received batch feedback: the impeller of an electronic water pump installed in a certain new energy vehicle made abnormal operating noises, and disassembly revealed cracks at the blade roots. The root of the broken blade showed white fatigue arcs, typical mechanical fatigue characteristics.

's first reaction was impurities entering the coolant. Disassembled and inspected the same batch of pumps, the impeller chamber was clean, eliminating abrasive factors.

Digging deeper, material testing revealed the truth: that batch of impellers used a newly switched grade, with room temperature performance comparable to the previous grade, but the bending fatigue strength at 80°C coolant was nearly 20% lower.

The water pump operating conditions for new energy vehicles are harsher than fuel vehicles—coolant temperature remains high year-round and flow rate fluctuates with demand, and the impeller suffers from variable load fatigue. Low fatigue grades work on fuel vehicles, but under new energy thermal management conditions, they cannot last their design life.

Quick rectification: Switching back to high fatigue grades plus enlarging the blade root fillet by one level, double protection. Six months later, there were no similar complaints in the market. The pump factory placed the broken and qualified parts side by side in the display case. The first lesson in new employee training was to look at this impeller—same blueprints, different materials, two years of service life.

Aging resistance mechanism of coolant

Coolant is usually ethylene glycol solution + corrosion inhibitor package. PA undergoes hydrolysis in hot ethylene glycol aqueous solution—this is the main failure mechanism of thermal management components.

The higher the temperature, the faster the hydrolysis: 1000 hours of degradation at 80°C is equivalent to 200 hours at 120°C.

Therefore, thermal management components must use a hydrolysis-resistant system (carbodiimide hydrolytic agents + heat-resistant stabilizers), and verification should be conducted at actual operating temperatures rather than room temperature.

Special requirements for multi-way valves

The electronic multi-way valve is the core control component of the thermal management system—it has a rotating valve core inside, must rotate continuously in the coolant and maintain sealing.

Requirements: coolant resistance + wear resistance + dimensional stability + low friction.

The valve core should be PPS or PPA (temperature and hydrolysis resistant), and the valve body should be hydrolysis-resistant PA66-GF30.

The key failure mode is core jamming—scaling, wear, or dimensional changes can all cause sticking, which is the main fault in the thermal management system.

Pump impeller and casing

Electronic pump impeller uses PPS or hydrolysis-resistant PA66-GF30 —

Must withstand long-term immersion in coolant at 90-120°C + high-speed centrifugal force + cavitation.

Housing should be hydrolyzed-resistant PA66-GF30. Cavitation is a special failure mode of the pump impeller—the impact from bubble bursting strips off the material surface, requiring a system with high toughness and hardness.

Additionally, the impeller's dynamic balance must be controlled (just like the motor, NVH is affected).

Expansion kettle and piping

expansion kettle should be semi-transparent (see level) + coolant resistant + pressure resistance (usually 0.1-0.2 MPa) + temperature resistant.

Use PA66 semi-transparent grade or PP—similar to brake fluid reservoirs, but PA66 performs better than PP in thermal coolant.

Pipe joints should be hydrolyzed-resistant PA66-GF30. The sealing of quick-plug joints should be checked by long-term creep (PA creep can weaken the relay force).

Deeper layer: The mechanism of coolant aging resistance is more complex than imagined .

The attack on plastics by coolant is a combination of three paths. The first is the attack on ethylene glycol itself, which is mild to most engineering plastics, which is the prerequisite for the heavy use of plastic in the coolant circuit.

The second is the attack on additives. The corrosion inhibitors, defoamers, and dyes in antifreeze each have chemical reactivity. Some grades are sensitive to specific corrosion inhibitor systems, so during actual testing, the coolant brand and model should be specified, as formulations vary significantly among manufacturers.

The third is hydrolysis. The moisture in the coolant causes polyester materials to hydrolyze at high temperatures, while nylon is relatively stable. This is one of the reasons why the pump impeller industry mainly uses PA66 series.

Multi-way valves are the most integrated plastic components in thermal management circuits. The flow channel switching inside the valve body is driven by a motor. The valve plate material must be wear-resistant and coolant-resistant, and the valve body must be pressure-resistant and sealed. The integrated runner structure greatly increases the complexity of injection molds.

In multi-way valve failure modes, plate sticking accounts for the majority, often caused by valve plate swelling or accumulation of precipitates in the runner. Controlling precipitation at the material end is more critical than wear resistance itself. This experience was gained by multi-pass valve manufacturers using after-sales data.

The expansion kettle looks simple, but the combined operation of pressure pulsation plus temperature cycling plus coolant is also quite impressive. The pressure valve seat area of the kettle cap is a weak point, where the material alternates between steam and liquid phases. Verification requires a composite test combining pressure and temperature cycling.

Extended judgment: Hidden variables in thermal management components

have three most easily missed hidden variables. First, differences in coolant formulation—different manufacturers have different corrosion inhibitor packages, which greatly affects PA and must be verified with actual coolant.

Second, scaling — prolonged high temperatures in the coolant will cause scaling, affecting the valve core and runners, requiring design for filtration or regular replacement.

Third, dry burning—after coolant leaks, the water pump runs dry, causing a sudden temperature rise. Plastic parts must have short-term dry burn resistance.

Engineering Testing: 4 mandatory tests

Test 1: Coolant soaked at 120°C for 1000 hours. Hydrolysis resistance PA66 maintains tensile strength at 80%, general PA66 drops to 48%—must withstand hydrolysis.

Test 2: Valve core wear (100,000 cycles). PPS core wear 0.05 mm, PA66 core 0.25 mm—core priority for PPS.

Test 3: Cavitation (500 hours). Surface weight loss of 8 mg for high-toughness systems, 35 mg for general systems—impeller must resist cavitation.

Test 4: Creep of quick-insert joints. PA66 relay decays by 20% after 1000 hours—design margin required.

Boundary Declaration

Operating ConditionRecommended Materials
Multi-way Valve CorePPS or PPA (Wear-resistant + Hydrolysis-resistant)
Valve body / pump housingHydrolysis-resistant PA66-GF30
Pump impellerPPS or high-toughness hydrolysis-resistant system
expansion kettlePA66 semi-transparent grade
pipeline quick-connect connectorhydrolysis-resistant PA66-GF30 + creep margin

engineering memo

The first barrier for thermal management components is coolant resistance — PA loses half of its strength after 1000 hours in 120℃ glycol-water solution, so a hydrolysis-resistant system is necessary. Multi-way valve cores preferably use PPS (wear is only 1/5 that of PA66).

Practical Case Study: Common Pitfalls and Correct Solutions

Pitfall 1: Choosing materials based on traditional car thinking, ignoring electrical safety requirements. Correct approach: The first criterion for plastics in new energy vehicles is often electrical performance—CTI (Comparative Tracking Index), flame retardant rating, and arc resistance. These indicators, which are not important in traditional vehicles, are strict requirements here. Pitfall 2: Only looking at flame retardant rating, ignoring long-term electrical tracking under humid heat. Correct approach: Flame retardancy reflects behavior in case of fire, while CTI reflects long-term operation—both are necessary. High-voltage parts usually require CTI ≥ 600V and flame retardant rating V-0; lacking either is a long-term risk. Pitfall 3: Simplifying the battery's working conditions as just 'high temperature', ignoring alternating hot and cold and humid heat. Correct approach: The battery pack operates in a composite environment of temperature cycling, humidity changes, and coolant; validation must include combined tests of temperature shock, humid heat, and coolant compatibility. These three pitfalls are all checklists that must be self-inspected before mass production.

Triple Follow-up Questions: Three Frequent Questions from Readers About Thermal Management Components

Question 1: What are the differences in material selection between the thermal management circuit of new energy vehicles and the cooling circuit of fuel vehicles? The temperature is higher, the flow changes more frequently, and the circuit is more complex. The coolant in fuel vehicles is around eighty degrees year-round, while the high-temperature section of new energy vehicle circuits exceeds ninety degrees, so the temperature resistance level and fatigue specifications of plastic parts are generally increased.

Question 2: Should the pump impeller use fiberglass or not? Yes, the mainstream content is 25% to 30%. The impeller needs rigidity to maintain the blade shape, and fiberglass also improves fatigue strength. But too much fiberglass makes the impeller brittle, and impacts from stones hitting the pump body need to be absorbed by toughness. The recipe is an art of balance.

Question 3: Do coolant brand and material verification need to be linked? Yes. The formulation of aftermarket universal coolants varies widely. Original equipment material verification is tied to the OEM coolant model, while universal products are tested for compatibility according to mainstream coolant brands. The compatibility database of material suppliers is the core asset of this type of project.

Reverse case: a thermostat housing sold as a universal part

An aftermarket parts factory took the drawings of an internal combustion engine thermostat housing and used them for the repair market of new energy vehicles. After being installed in cars for three months, they began to leak in batches. The root cause is that the temperature and pressure in the new energy vehicle circuits are higher, and the housing material's pressure resistance level is insufficient. Aftermarket parts are not synonymous with low quality; materials that match the operating conditions are what constitute genuine products.

Supplement: The actual problems of the other three readers

Question 4: What material is the most stable for the valve plate of a multi-way valve? It is generally agreed that a composite system with wear resistance and low precipitation is best. It is preferable to use matching grades from the same supplier for the friction pair of the valve plate and valve body, as there is a basis for the compatibility of the two sets of data. Using friction pairs across different suppliers makes it difficult to determine responsibility if problems occur.

Question 5: Which comes first, the electrical life or the mechanical life of the pump? Look at the impeller bearings. In the sliding bearing design, the mechanical life is the limiting factor, while in the rolling bearing design, the electrical life comes first. The role of impeller materials differs in the two designs: the former is more wear-resistant, and the latter focuses on strength. Confirm the bearing design before selecting the model.

Question 6: Will the thermal management integrated module replace individual parts? The trend is moving in that direction. After combining multiple valves and pumps into a single module, the number of plastic parts decreases, but the complexity of individual parts increases. The housing and flow channel components within the integrated module will be an incremental market in the coming years, and the thresholds for mold and material capabilities are rising.

A set of on-site observations

Observation one: After-sales complaints of thermal management components show seasonal patterns. Complaints during the high-temperature summer period are concentrated on pressure resistance and sealing, while complaints during the low-temperature winter period are concentrated on starting stiction. The failure mechanisms in the two seasons are different, and material selection verification needs to cover both ends.

Observation 2: Coolant compatibility is becoming a key requirement in bids. More and more OEM tender documents specify compatibility with certain brands of coolant. The more extensive a supplier's compatibility database, the faster their bid response. This kind of intangible asset is worth real money when comparing prices.

A set of closing numbers

Number one, regarding the speed limits of water pumps. The rotation speed of electronic water pump motors generally ranges from several thousand to ten thousand. The impeller's linear velocity is proportional to the rotation speed. The speed used for wear resistance testing is set one level above the highest operating speed. Each time the speed goes up one level, the material's fatigue specifications also go up one level.

Number two, regarding the upper limit of coolant temperature. The high-temperature section of the thermal management circuit for new energy vehicles is around ninety degrees, and in some high-load conditions it briefly exceeds one hundred. For every ten-degree rise in coolant temperature, the material's aging rate roughly doubles. This chemical rule determines that the temperature resistance level cannot be compromised.

Number three, regarding the level of integration of multi-way valves. The number of flow channels in mainstream multi-way valves has increased from three-way to eleven-way, with the level of integration multiplying several times. The complexity of the valve body flow channels makes injection molds a core competitive asset. In point-by-point negotiations for valve body components, mold capability is a topic on par with material capability.

The last sentence

Thermal management is the lifeline of new energy vehicles, and every plastic component in the circuit is involved in the regulation of temperature and pressure. By preparing both the coolant compatibility and fatigue life data, one can secure a position in this incremental market.

Postscript

One more point worth mentioning: the plastic parts in the thermal management circuit will retain coolant for a long time when the system is shut down. Aging from static soaking is more severe than in a flowing state, so the validation plan needs to include both static and dynamic groups; only doing the dynamic testing would be overly optimistic.

Conclusion

There are three things we never guess—when it comes to choosing materials, the earlier you ask, the less trouble it is.

The material selection and mold trial for this type of part can be discussed together.

这台机器上的件,说下工况我帮你看看

报个件、说清温度和要过的认证,当天回你两三个能打的方案。电话微信同号,找到人就能聊。

打电话 18969817163发邮件询价
WA