膨胀水箱材料怎么选?液面波动与耐乙二醇

应用领域 发布时间: 2026-09-16 860 阅读

Last September, a customer who makes after-sales cooling system parts sent in two auxiliary water tanks.

The piece is dark and semi-transparent, with the minimum liquid level line engraved on the body of the pot; along the seam in the middle, there is a circle of whitish seepage marks. He wrapped it in two layers of bubble wrap and even specifically marked the leaking spot when sending it.

On the phone he said: 'We changed the material three times, but the welds are still leaking. The car owner said the liquid level fluctuates, and the gauge reports accordingly.'

I first asked three questions: Is the pressure cap set to 0.9 bar or 1.4 bar? Is the weld a hot plate weld or a friction stir weld? Is the liquid level read by a sensor, or by a person looking at the scale?

After he finished answering, the conversation took a turn—the difficulty of this part has nothing to do with 'resistance to ethylene glycol'.

Complete this article's judgment chain for the expansion tank material, and also clarify in which few situations this part should not use modified nylon.

First, sort out the names of the expansion tank and the auxiliary water tank.

In passenger cars, it is often called an auxiliary water tank, while in commercial vehicles and construction machinery, it is commonly called an expansion tank. Essentially, it serves the same role: to provide a buffer volume for the cooling system, giving the coolant a place to go when it expands due to heat, and allowing it to return when it cools down.

It does not bear the main load, so many people subconsciously think that this part is 'not difficult'.

Precisely because it does not bear the main load, when problems occur, no one thinks of it first; by the time it is discovered, often more than one part has already leaked.

1. For the working condition of this part, at least four of the six dimensions need to be quantified.

Pressure fluctuates. The opening pressure of the pressure lid is commonly 0.9–1.5 bar. The pot body moves back and forth between the lid's opening pressure and the system's negative pressure, cycling four to five times a day with hot and cold changes, accumulating about fifteen thousand cycles over ten years.

This number doesn't look big, but it acts on the entire pot wall: a large flat surface of 100 millimeters square, with a differential pressure of 1.4 bar applied, equaling more than a hundred kilograms of force pressing on that area.

Temperature. Inside the engine compartment, the temperature can range from -40°C during cold start conditions to 110–125°C under hot soak conditions, with a temperature difference span of up to 165°C.

The thermal expansion and contraction caused by this span is quite significant: for a 200-millimeter-long kettle body, roughly calculated based on the linear expansion coefficient of fiberglass nylon, the length difference between the hot and cold ends can reach two to three millimeters. This figure is an order of magnitude larger than what many people expect.

Medium. Ethylene glycol-based coolant, commonly mixed at around 50%, also containing water vapor and a small amount of acidic oxidation products.

Vibration and installation. Brackets, clips, and the joint positions where they are brazed or assembled with the radiator.

Appearance and readability. This is the easiest one to overlook—many secondary water kettles need to have a visible water level, which means they need to be semi-transparent.

Lifespan and compliance. The whole vehicle is often calculated based on ten years or two hundred thousand kilometers; compliance requirements related to evaporation and recovery will also affect the choice of materials.

Among the six items, first ask about four: pressure of the pressure cover, temperature range, welding method, and whether it is necessary to see the liquid level.

Second, three material routes, arranged side by side

RouteTypical practicesWhat is it good at?Its cost
PA66 body (without fiber)Use the main body to make a translucent observation windowThe liquid level is clearly visible; good toughness and mature welding processLow modulus, surface easily bulges; dimensions change with humidity
PA66-GF15/30Glass fiber reinforced, good structural rigidityThe large surface resists bulging, and the base of the support has good strengthAdding fiberglass makes it opaque; the strength of the welded joint is more sensitive to welding parameters
PA612 or PA12 systemLong carbon chain resin, low water absorptionBetter retention in long-term high-temperature coolant environmentsHigh cost; temperature resistance upper limit one level lower than PA66

The focus of looking at this table is not on 'which one is better,' but on what each of them sacrifices.

Without adding fiber, the sacrifice on that route is rigidity. It is possible to make it translucent, but the large flat surface on the body of the kettle will bulge under alternating pressure, and over time the sealing surface will follow.

The downside of the second route is transparency. Glass fibers and translucency are inherently in conflict—the fibers scatter light, making the part cloudy.

So the common design solution for this part is to divide it into sections: the section with the observation window uses the main material to maintain transparency, and the section that bears more force uses glass fiber reinforced material, with the two sections welded together.

The third route addresses water absorption and long-term retention, with the cost being expense and the upper limit of temperature resistance.

Here, one point that is often overlooked needs to be clarified: the effect of ethylene glycol on nylon follows the temperature.

The same material, when soaked in a 90℃ coolant for 1000 hours (about 42 days) and soaked for the same duration at 120℃, the retention rate is not of the same order of magnitude.

So when asking what material should be used for this part, the first question is not 'what is the medium,' but 'what is the long-term temperature.'

3. Selection Criteria Table (This page is worth saving)

The threshold values in the table are directional recommendations, not acceptance standards; the actual values must be determined by the specific project, specific working conditions, and actual measurements.

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Retention rate after coolant immersionBased on the temperature setting, after 1000 hours ≥75%ISO 175 / ASTM D543 ISO 527Peeling and becoming brittle on the inner wallChange substrate Stabilization systemAnti-hydrolytic agent
Cyclic stress fatigue0.2–1.5 bar alternating, no leakage after more than 10^4 cyclesPressure Cyclic Test Stand Explosion TestWeld seam leakage, large surface bulgingParting Design Wall Thickness and RibsMaterial intrinsic
Weld joint strengthNot less than 70% of the body strengthTensile and shear specimen Assembly burstWeld cracking and leakageWelding process parameters Material matchingMaterial intrinsic
Low-temperature shock-40℃ not lower than 40% of the room temperature valueISO 179-1Chipping and corner dropping during winter assembly and disassemblyToughening System (Core-Shell Structure)Substrate Formula
Foginess and liquid level readabilitySet per item, minimum liquid level line visible to the eyeHaze Meter Visual ConfirmationThe liquid level is unclear, resulting in misjudgment when refuelingControl grain sizeNucleating agent
Long-term thermal oxygen retention rate110°C×after 1000h, ≥70 %ISO 527Whitening and brittleness near the bracketStabilization systemAntioxidant
Dry-wet dimensional differenceDifference controlled within 0.15 %.Measured before and after humidity control / ISO 294Lid-sealed surface leakageMoisture control delivery + sealing structureMaterial intrinsic

How to use this table: first look at the weld surface strength in the third row, then look at the pressure alternating in the second row.

Most complaints about auxiliary kettles focus on the weld seam. For items where the material itself is in place, if welding is not paired, leakage will still occur.

In the table under "Verification Methods," many OEMs have their own enterprise standards for pressure alternating and do not have unified national standards. Following OEM standards is better than guessing based on experience.

Four, four common types of failures and their real root causes

Failure 1: weld leakage, the instinctive reaction is to "thicken the wall thickness."

This is the most common mistake in this category. Wall thickness thickening addresses the main body strength, while the root causes of weld leakage usually lie in two areas: the design of the weld joint and welding process parameters.

If any of these are off, the temperature, holding pressure, and cooling time of hot plate welding, or the amplitude and pressing depth of vibration friction welding, the weld surface will not penetrate or be over-welded.

Material change won't solve the problem of incomplete welding. First, adjust parameters, then look at the material.

Failure 2: Liquid level fluctuates between high and low, and the instrument responds accordingly.

The owner's description sounds like a sensor failure, but after investigation, it's often a different matter: the kettle body undergoes elastic deformation under alternating pressure, and the liquid level reference moves accordingly; Plus, after the nylon part absorbs moisture, its volume changes, so the correspondence between the scale line and the actual volume drifts.

First, test the dimensional stability of the kettle, then talk about the sensor. If the order is reversed, changing the sensor twice won't solve the problem.

Failure 3: Same batch of parts, one batch clears through, another produces fog.

This is not "unstable material." The haze of semi-transparent parts mainly depends on the grain size of the crystals—the coarser the grains and the stronger the light scattering, the more foggy the parts become.

From the additive side, common causes are uneven dispersion or insufficient amount of nucleating agents, or insufficient mixing of antioxidants during mixing, causing local color differences.

If you see this phenomenon, first check the mixing process and masterbatch; don't rush to replace the material.

Failure 4: Snap edges during winter disassembly.

Fracture occurs at low temperature with uniform fractures; this is low-temperature brittle fracture. Normal temperature brittle fracture and low-temperature brittle fracture are two different things: ordinary elastomer toughening fails at low temperatures, and the core-shell structure is only effective.

Customers often say "good toughness," but a single question can tell the difference: fracture at room temperature or low temperature? Is the fracture gap or uniform? These two answers point to completely different solutions.

The inspection order states directly: for this part's failure, first suspect welding and structure, then the process, and finally the material.

Because leakage issues focus on interfaces, interface issues are usually not something that can be replaced by material replacement.

5. Processing and Verification: Inspect what needs to be tested before

Drying. Nylon must be dried. Excessive moisture content will hydrolyze and degrade at melting temperature, and the toughness and long-term retention of the part will decrease. Ordinary hot air dryers are basically ineffective for nylon; a dehumidifying dryer is needed.

Condition of the part before welding. If the weld surface is damp or contaminated with release agent, welding quality will be directly reduced. Before being soldered, the part must be managed in the same state.

Mold temperature. If the mold temperature is insufficient, the surface crystallization will be incomplete, resulting in inconsistent melting behavior during welding. The temperature difference between two molds on the same production line can be magnified by the welding machine into a difference in weld strength.

Humidity control. After absorbing water, nylon parts increase in size; 1% of water absorption corresponds to about 0.2–0.3% of the dimensional change. A 60mm cap increases from 60.00 to 60.12–60.18.

The compression of the sealing ring should be adjusted according to the moisture adjustment size; otherwise, it will be tight during installation and loose after a while.

Verification sequence, recommended arrangement as follows:

1. Sample soaking and retention rate (based on actual temperature and medium ratio)

2. Welding process window test: combination of temperature, time, and pressure parameters

3. Weld joint tie-cut specimen + assembly bursting pressure

4. Pressure alternating test frame (alternating hot and cold + pressure cycle)

5. Overall vehicle operating conditions stacked: vibration, temperature cycle, loading status

cannot be changed in sequence. The first item is just a step down; the data measured later have no explanatory value.

A knowledgeable detail: the measurement points on the kettle body should avoid welds and gates. The dimensions at these two positions are greatly affected by process fluctuations; excluding them reveals the measured data representing the part itself.

6. Boundaries: When should this matter be discussed at all ?

In the following four situations, it is not recommended to pursue modified nylon for expansion tanks or auxiliary kettles:

First, the system pressure is significantly higher than usual, or it requires long-term higher working pressure. The creep characteristics of nylon mean that large planes will continuously deform under long-term pressure. For such structures, more rigid solutions or metals are needed.

Second, the entire piece must be highly transparent and rigid. These two requirements naturally conflict within the same piece; if the part design cannot solve or does not accept parts, the route must be changed.

Third, long-term operating temperature consistently above 125°C. Conventional systems lack long-term data support in this range; you need to look for systems with higher temperature tolerance.

Fourth, the welding process itself is still unstable. The weld surface is the number one risk point for these parts; discussing materials before the process is stable means spending money on the least likely results.

Putting these four points in front is not to discourage you, but to save time. Projects that go smoothly during the sample stage but are stuck in batch validation before rolling back have much higher costs than if they were not done at the start.

One more point: the expansion tank and radiator water chamber cannot be bundled together for decision-making. The water chamber is attached to the main body, endures long-term scouring and high-temperature media, and the expansion tank is a buffer volume. The focus of the criterion is on pressure alternating and welding.

7. Self-production capability: How far can we go ?

What we do is very specific: modify the resins PA6, PA66, PA46, PA11, PA12, PA6T, PA9T into a truly usable part form.

For prototyping of parts like expansion water tanks, we proceed in turns.

First, produce samples to test soaking and retention rates, then test the welding process window, followed by pressure alternating and blasting.

Each round of samples is retained by batch; if there is a deviation, you can go back to check which round moved what.

The additive system in the formula is matched according to the working conditions of the parts—regular additives are always in stock, special models are matched as needed; You report the working conditions and grade, and the materials and additives are all matched at once.

Material change risk checklist (items to be moved when switching from PP or general PA66)

Items to be moved for material changeWhat to pay attention toPoints prone to leakage
MoldsShrinkage differences vary with the substrate and glass fiber content, and the cover and weld step need to be recalculated.Compensation is given based only on the general shrinkage rate, not per piece.
DryNylon must be dry; excessive moisture will cause hydrolytic degradation, reducing both retention rate and toughness.Use a hot air dryer instead of a dehumidifier
WeldingChanging the material is equivalent to changing a set of fusion parameters, and a process window test needs to be carried out.Directly increase the output using the original welding parameters
Material Temperature and Mold TemperatureMold temperature determines surface crystallization and directly affects weld seam consistencyCopy the recommended value from the brand, without looking at the part
Pre-welding conditionMoisture and release agent residue can reduce weld strengthLeave the parts in the workshop for a few days before welding, without caring about their condition.
Humidity controlThe sealing surface of the cover is given a compression amount according to the size after moisture adjustment.Based on the average wall thickness to estimate the time, the thick-walled areas are not fully soaked.
Verification orderSample soaking → Welding window → Tensile shear and blasting → Pressure alternation → Whole vehicleIf the previous item fails, just move on.

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

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Project: Expansion Tank / Auxiliary Water Tank · Material Route Evaluation

Conclusion direction: Modified nylon can be a candidate route, and whether it can be implemented depends on four prerequisite conditions

1. Three Rules That Must Be Followed

1. Soaking data is based on the actual temperature and medium ratio, and the normal temperature table is not used as a reference.

2. Conduct welding process window testing simultaneously when changing materials, without using the previous parameters.

3. The sealing surface of the cover should be compressed according to the size after moisture adjustment.

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

· System pressure falls within the common range, and the large flat surface has a rib reinforcement plan

· The welding process has been stabilized, with process window test data available

· Long-term operating temperature ≤ 125℃ range

· When a translucent observation window is needed, accept the cost of component design

3. Next Steps

1. Take the actual coolant and soak it for 1000 hours according to the working condition temperature.

2. Make three sets of welding parameter samples and measure the tensile-shear strength

3. Assembly blasting Each run one cycle under alternating pressure

Risk warning: The main uncertainty of this route lies in the fusion interface and alternating pressure, not in resistance to ethylene glycol.

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Two questions readers often ask

Question: The liquid level of the auxiliary kettle is not clear. Can the wall thickness be reduced a bit?

Thinning can improve transparency, but at the same time it will reduce the flat surface's resistance to bulging. A more stable approach is to make the observation window as a separate section, using the base material, while retaining fiberglass reinforcement in the stress-bearing section.

Question: If I replace the pressure cap with one that opens at a lower pressure, will it be more friendly to the kettle body?

In terms of direction, yes, but the choice of pressure cover must first meet the system requirements; it cannot be compromised for the sake of the kettle body. What should be done on the kettle body side is the design of reinforcing ribs and separate parts, rather than lowering the pressure cover.

Conclusion

The plasticizing of the expansion tank and auxiliary water tank, ultimately, is an interface problem coupled with a state problem.

There are only three judgment chains:

Long-term temperature determines the system → Welding and structure determine success or failure → Humidity-controlled state delivery determines consistency.

Revisiting the first three follow-up questions — which setting is the pressure cap, what type of process is the weld seam, and whether the liquid level is read or observed — they correspond respectively to the lines of pressure fluctuation, the fusion surface, and appearance.

After the three items are matched, whether this piece can use modified nylon naturally has an answer.

If you have a spare water tank or expansion tank and need to determine the specifications, sending over these three things is enough to give guidance: system pressure and pressure cap specifications, long-term operating temperature, welding method, and whether the liquid level needs to be visible.

There are three things we never guess: temperature tolerance, lifespan, and dosage.

If the long-term temperature is not given, don't guess; if the service life is not given, don't guess; if the annual usage is not given, don't guess either. Solutions that are guessed will eventually have to be returned with rework and claims.

We manufacture modified nylon (PA6 / PA66 / PA46 / PA11 / PA12 / PA6T / PA9T and nylon alloys), modified PPO / PPS / thermoplastic elastomers, and also distribute nylon resins, second-brand materials, and bulk materials from major chemical companies. Additionally, we have long-term procurement of nylon raw materials, sprue regrind, and various nylon waste, with formal disposal channels.

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