水龙头阀芯材料怎么选?水解与结垢是两件事

应用领域 发布时间: 2026-09-13 2537 阅读

Last month, a customer who makes faucet cartridges sent two removed cartridge seats.

The part is made of modified nylon injection molding. One piece is overall yellowed, and the side near the hot water breaks easily when twisted by hand — the break surface is white, with almost no visible plastic deformation.

The other one was taken apart from the cold water side, the color is normal, from the same batch of material.

He spoke very directly on the phone: 'With the same material, the side in cold water is fine, but the side in hot water breaks as soon as you snap it.'

I asked him three questions: Is the yellowing only on the hot water side, or is it everywhere? What is the temperature of the hot water, and how many times a day does it switch between hot and cold? Is the local water hard, and has the scaling issue been tested?

He answered the first two sentences in great detail — the temperature of the hot water can reach up to around seventy degrees, and the mixed water is switched hundreds of times a day. He paused at the third sentence, saying the water is hard, but scaling has never been measured.

After asking these three questions, the lines of hydrolysis and scaling diverged.

This article explains the material selection for faucet cartridges and mixing valve cartridges, and also thoroughly explains why 'long-term hydrolysis' and 'scaling' must be calculated separately.

1. Hydrolysis and scaling have never been the same thing

Many inquiries combine these two questions into one sentence: 'Is your material resistant to hot water and does it not scale?''

The mechanisms, solutions, and verification methods for these two matters are all different.

Hydrolysis is chemical. Water molecules in hot water penetrate the amide bonds of nylon, breaking the long molecular chains. Once the chains break, the molecular weight decreases, and both strength and toughness drop.

It happens inside the component, often not visible on the surface—so parts on the hot water side that turn yellow and brittle are often 'damaged from the inside first'.

Scaling is physical. Calcium and magnesium ions in hard water precipitate on heated surfaces, attaching layer by layer. It does not change the material itself; what changes are the cross-section of the flow channel and the surface condition.

When the layer of scale reaches a certain thickness, the flow decreases, the valve plate fits poorly, and the feel becomes heavier.

(In other words) Hydrolysis is 'the material weakening by itself,' while scaling is 'water building houses on the object.' One is a chemistry problem, the other is a geometry problem.

Solving chemistry problems relies on formula and matrix selection, while solving geometry problems depends on structure, flow paths, and surface conditions. Using one method to tackle two problems, one of them will definitely not be addressed.

In one sentence: For inquiries about valve core components, first separate 'hydrolysis' and 'scaling' into two questions. If they can't be separated, selecting the type is just guessing.

2. Six-dimensional operating conditions: the six numbers on the valve core

Temperature. On the cold water side, 5 to 30℃ is common; on the hot water side, 60 to 85℃ is considered a typical range. The most critical issue is switching—alternating between hot and cold is more damaging to components than a constant temperature.

Pressure. Municipal pipe networks commonly range from 0.1 to 0.6 MPa, and secondary water supply for high-rise buildings can be higher; there is also water hammer impact at the moment of switching.

Medium. The residual chlorine in tap water, chloramines, calcium and magnesium ions in hard water, as well as residues of detergents and soap. Chloramines are often more aggressive to materials than residual chlorine, so the local disinfection method should be confirmed when selecting materials.

Lifespan. A household faucet is turned on and off dozens of times a day, totaling one hundred thousand to two hundred thousand times over ten years; components in public places need to be of a higher grade.

Appearance and fit. The valve core seat is often matched with ceramic valve plates and chrome-plated housings, and the dimensions and flatness of the mating surfaces directly affect the feel and sealing.

Compliance. Components that come into contact with drinking water must go through a sanitary safety evaluation for water-related products. This is often the point where projects get held up at the end.

In six dimensions, temperature, pressure, medium, and lifespan can all provide numbers; the work at the component level lies in these four numbers.

Why dig down one more layer?

Why is alternating hot and cold more damaging than constant temperature? Because the temperature response of the material's interior and surface is not synchronized.

When the piece is soaking in hot water, the surface heats up and expands first, while the inside is still cool and hasn't moved; when cold water is poured over it, it reverses again. With each round of switching, the interior of the piece goes through this process back and forth.

This is not a question of 'heat resistance', but a question of 'whether it can withstand repeated cycles'. Therefore, when verifying, constant temperature immersion is used, and alternating cycles cannot be measured.

3. Three routes, what each one gives way to

RouteStrength retention after long-term hydrolysiswithstand alternating hot and coldWet dimensionsCostCommon positioning
Hydrolysis-resistant PA66, glass fiber reinforcedGood (relying on the system)moderate preferenceMoisture absorption is relatively high and needs humidity adjustmentmiddleValve core seat, pressure-bearing section
PA12 / PA612 Long Carbon ChainGoodGoodOkay, low water absorptionTallLong-term hot water, size-sensitive areas
PPS / Special Engineering Plastics (Reference)Good, higher temperature resistanceGoodGoodTallAbove 80°C for a long period
Metal valve body Ceramic valve disc (for comparison)GoodStableTallHigh-voltage main line, high-grade products

Look at this table, the focus is not on which column is the prettiest, but on yielding one head on each route.

Hydrolysis-resistant PA66 loses dimensions and alternating margin. Its overall performance and cost are the most balanced, but the moisture absorption part must be managed through moisture conditioning and tolerance coordination.

Long carbon chains reduce costs. Amide group density is low, absorbs less water, and is more stable in hot water over time, but the price per unit rises significantly as a result.

Special engineering plastics also result in lost costs, as well as process barriers brought by stricter molding conditions.

There is also a common collocation logic that is often overlooked: for the valve core position, it is usually a ceramic valve plate with a plastic valve seat.

The ceramic piece is responsible for the sealing surface, while the plastic seat is responsible for providing elasticity and tolerance compensation. The two are not an either-or relationship, but each undertakes different tasks.

So asking 'Does the valve core use ceramic or plastic?' is itself an incomplete question.

4. Selection Criteria Table (It is recommended to save this page for valve core components)

Threshold values are directional recommendations, not acceptance standards. The actual values must be determined by water temperature, water quality, pressure, and client agreement.

IndicatorDirectional thresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Strength maintained after soaking in hot waterBased on the maximum water temperature and a ten-year caliber calculation, the retention rate must leave enough margin.Re-test according to GB/T 1040.2 after soaking in hot waterYellowing and brittle fracture on the hot water sideHydrolysis-resistant matrix Stabilization systemHydrolysis-resistant stable system
withstand alternating hot and coldNumber of cycles calculated based on actual switching frequencyAlternating hot and cold water circulation Retest appearance and mechanical propertiesCracks at the joint and loosening of the fittingsReduce internal stress Increase toughnessAntioxidant (inhibits thermal oxidative aging)
Wet dimensionsThe fit surface deviation is determined according to sealing and tactile requirementsMeasured before and after humidity adjustmentCan't fit in, valve plate can't be pressed tightlyLow water-absorption substrate Humidity-conditioned deliveryNucleating Agent (Crystallization and Shrinkage)
Creep resistance at threads and insertsDeformation under long-term preloading is within the toleranceRe-test after sustained loadLeakage and cracking at the root of the threadGlass fiber reinforced Rounded rootCoupling agent (interface)
Scale adhesion and flow path maintenanceThe thickness of the scale is within the design section toleranceHard Water Circulation Test Bench - Disassembly and InspectionFlow decreases, hand feel becomes heavierOptimize the flow channel to reduce dead water zones
Hygiene Safety and DepositsAccording to the sanitary safety evaluation requirements for water-related productsPractical test based on the soaking approach of GB/T 17219The project is stuck at the approval stageAll additives are subject to the permitted list
Chlorine resistance and chloramine resistanceConfirm according to local disinfection methodsRetesting after soaking in a chlorine-containing mediumSurface cracking and discolorationChoose an oxidation-resistant systemAntioxidant
Switch fatigueCalculated based on ten years of usageSwitch fatigue test bench Midway retestSeal failure, tactile driftStructural rounding Material toughness

How to use this table: first look at the first row, then look at the second row.

The first line controls hot water, the second line controls the hot and cold switching. If either of these two lines fails, there's no need to talk about the feel and appearance afterwards.

You should be mentally prepared for two aspects: first, the 'scaling' item — materials can improve the surface condition, but scaling mainly depends on the structure and flow channel design; second, the 'hygiene and safety' item — it is an entry requirement, not a bonus item.

5. Five common failures and their real root causes

Failure 1: The hot water side is yellowed and brittle, while the cold water side is intact.

The root cause is hydrolysis, and it is the molecular chain breaking from the inside.

On this point, the step that customers most often get wrong is 'switching to a material that can withstand higher temperatures'.

A temperature of seventy degrees is not solved by increasing the heat resistance grade. What really needs to be addressed is the hydrolysis-resistant system, the water content control during processing, and the cooling and internal stress of the parts.

High temperature is only an accelerator, not the cause.

Failure 2: Leakage at the root of the thread, or cracking from the edge of the insert.

The root cause is usually the combination of two factors: creep caused by long-term preloading, and repeated expansion and contraction brought by alternating hot and cold temperatures.

The difference in thermal expansion between metal inserts and plastic is on the order of magnitude, and with each cycle of heating and cooling, this interface goes back and forth. The solution is to redesign the wall thickness and fillets around the insert, while also accounting for moisture expansion in the tolerance.

Failure three: After two to three years of use, the airflow becomes noticeably smaller and the feel becomes heavier.

The root cause is that scaling has changed the flow path cross-section, not that the material has deteriorated.

The correct approach for this is structurally: reduce dead zones, increase the cross-sectional allowance in areas prone to scaling, and make cleaning easier. What the material can do is make the surface smoother so that the scale adheres more loosely.

Failure 4: Surface precipitation, stickiness, or the appearance of light-colored spots after the part has been installed for a period of time.

(Additive-side attribution) This type of phenomenon is mostly related to additive migration.

Low molecular weight additives tend to migrate to the surface in long-term water immersion environments, which is more pronounced when the lubrication system is oriented toward external lubrication or when the dosage is relatively high. At the same time, some additives themselves are not on the water-related approved list, and the project may be blocked during the compliance process.

The processing order is to first look at the list of precipitates and additives, and then discuss the matrix.

Uneven color in the same batch is also occasionally seen. Whether the antioxidant is evenly dispersed in the material is more worth checking than its grade — the issue of dispersion more often turns out to be the real culprit than 'material instability'.

Failure Five: The same batch of valve cores, when installed on machines in different areas, have a lifespan difference of double.

The root cause is water quality. In areas with hard water, chloramine disinfection, or high secondary water supply pressure, the modes of attack on components are different.

Therefore, the verification of plumbing components cannot be done with just one 'standard water quality' report.

A timeline, this is the most common approach for this type of item:

During the prototype phase, soak testing was done at a constant temperature of 70 degrees, and all data passed → No abnormalities in the first year on the market → In the second year, sporadic reports of brittle fractures on the hot water side began to appear, mainly in northern regions with relatively hard water → Disassembly and retesting revealed that the molecular weight on the hot water side had significantly decreased, and there were scale deposits in the channels → Additional verification with alternating hot and cold cycles and hard water cycling → Formulation was adjusted to a hydrolysis-resistant system and structural modifications reduced dead water zones → The next-generation product was redeveloped.

The problem was already buried in the prototype stage; it just took two years to come to the surface.

6. Processing and Verification: There are a few things regarding the valve core parts that must be decided in advance

Drying. This point needs to be emphasized more when it comes to plumbing parts. When the moisture content exceeds the standard, the melting process itself is a hydrolysis, and the molecular weight of the part drops right at the forming stage.

Soaking it in hot water afterwards is equivalent to starting to fall from an even lower point.

Mold temperature and internal stress. The valve core seat is a part with uneven thickness, and the gating and mold temperature determine the distribution of internal stress. Parts with high internal stress are more likely to crack from areas of stress concentration under alternating hot and cold conditions.

Insert. Metal inserts need to be preheated to avoid forming clamping stress when the plastic shrinks around a cold insert. Many factories skip this step to save cycle time, but the cost shows up two years later.

Verification order. It is recommended to arrange it like this, do not change the order:

1. Material level: strength retention after hot water soaking, wet-state dimensions

2. Item level: mating surface dimensions, thread torque, appearance

3. Alternating grade: cyclic hot and cold changes, re-measure dimensions and appearance midway

4. Media level: Soaking and circulation under chlorinated and hard water conditions

5. Complete machine level: Install onto the actual valve body to perform switch fatigue and flow re-testing

Do not reverse the order: if the previous item has no conclusion, the value of the next item will have no reference.

Here's an insider detail: for soaking tests, do not use deionized water instead of tap water to draw conclusions.

Deionized water is more sensitive to precipitates, while the chlorine, hardness, and pH in tap water are completely different. The type of water used should match the water quality of your actual customers.

7. Boundaries: When the valve core should not use modified nylon

First, locations where the long-term water temperature remains stable above 80°C. In this range, conventional modified nylon cannot withstand long-term hydrolysis, so a system with higher temperature resistance should be considered, or reverting to metal.

Secondly, high-pressure main lines or large-diameter pressure-bearing components. The cost of failure in these locations is too high, and the creep and tolerance limits of plastics are not worthwhile.

Third, projects that cannot provide supporting documents for water-related health permits. Even if the performance meets the standards, without complete documents, the project cannot reach mass production. This should be confirmed at the project initiation stage, not left until the end.

Fourth, the annual usage is too small to justify spreading the cost of molds and validation. The validation cycle for valve core components is long and there are many projects, so the quantity is too small to be cost-effective.

There is one more thing to clarify: the valve disc and the valve seat should not be packaged into a single decision.

Using ceramic for the valve disc is a mature approach, and using modified nylon for the valve seat is a common combination. Each is verified separately and has its own standards.

Mixing them into one question like 'What material is used for the valve core' is most likely to cause disputes during the inspection stage.

Change Material Risk List (things that need to be changed when switching from the original plan to hydrolysis-resistant modified nylon valve core parts)

link; segment; partWhat needs to be moved?Points that are easy to overlook
MoldWet dimensions and shrinkage need to be recalculated, and the mating surface tolerance needs to be redefinedOnly calculate the molding shrinkage, skipping the moisture absorption part
DrySet the window according to the actual measured moisture content, stricter than conventional partsDrying time for reused material
Humidity controlThe size report is based on the conditioned stateDry state qualified, leakage after installation
Material Temperature / Mold TemperatureAdjust according to the water hydrolysis system window to avoid retention and degradationExcessive residence time in the hopper
InsertInsert preheating and verification of surrounding wall thickness and filletCold insert forms clamping stress
ComplianceAuxiliaries and color masterbatches should be included together in the water contact permit listOnly report the base material, omit reporting the auxiliary agents
Verification orderMaterial → Component level → Alternating hot and cold → Medium → Complete machineOnly perform constant-temperature soaking, do not perform alternating.

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

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Normal temperature waterway valve seatHydrolysis-resistant PA66 fiberglassWet dimensions, thread torqueMeasured before and after humidity adjustmentWork pressure
Hot water side valve core seatHydrolysis-resistant PA66 or long carbon chainHot water soaking retention rate, alternatingSoak Alternating cycleMaximum water temperature and switching frequency
Above 80°C for long periodsSpecial engineering plastics or metalsLong-term retention rateCorresponding material system standardsTemperature limit
Hard water area componentsAny system Flow path optimizationScale adhesion, cross-sectional allowanceHard water circulation test benchWater hardness
Water-compliant componentsAll additives follow the permitted listSoaking extractRefer to the approach of GB/T 17219Local health requirements

Risk Warning: The main uncertainties of this route lie in the long-term hydrolysis retention rate and the compatibility stability under alternating hot and cold conditions, not in the initial strength.

Three questions readers often ask

Question: What is the difference between hydrolysis-resistant PA66 and long-chain PA66?

Two points. First is wet dimensions: long carbon chains absorb less water, making the formulation more stable; second is cost: long carbon chains are significantly more expensive. When the water temperature is high and the formulation is tight, the reason for using long carbon chains is more justified; when the water temperature is not high and the formulation is loose, hydrolysis-resistant PA66 is more cost-effective.

Question: If an anti-hydrolysis system is added, will it no longer undergo hydrolysis?

Hydrolysis is an inherent property of this system; what the formulation can do is slow down the rate, not prevent it from happening. Therefore, verification should check 'how much remains after soaking,' rather than 'whether there is any change after soaking.'

Question: Can scaling be solved by materials?

What the material can do is make the surface smoother and make the scale adhere less, improving cleaning. What really determines the scale formation rate is water quality, temperature, and flow channel structure. If the structure is not changed, changing the material can only delay the problem.

Conclusion

Back to those two valve cores.

Later, the work was divided into two parts: on the formulation side, the hydrolysis-resistant system was re-validated under alternating hot and cold conditions; on the structure side, the stagnant water zone on the hot water side and the cross-section of the flow channel were rearranged.

The third edition sample reached the target number of cycles in the alternating cycle test, and the dimensions and appearance remeasured midway were all within the acceptable range.

The reason why the first three questions at the beginning are valid is that they each touch on temperature, frequency, and water quality: temperature determines the system, frequency determines the validation method, and water quality determines whether the structure needs to be changed. If you ask one less question, the matter of 'material change' may be directed in the wrong way.

The judgment chain of valve core components ultimately has only three links:

Water temperature determines the system → switching frequency determines the verification method → water quality determines the flow channel and surface.

Once the three rules are set, the answer to 'what material to use' naturally emerges.

If you have a valve core or mixing unit in hand that needs material specification, sending over three things can give direction: the maximum water temperature and switching frequency, the local water quality and disinfection method, and the annual usage scale.

The most troublesome inquiry is this sentence — 'Is your material resistant to hot water?' In one sentence, it bundles together hydrolysis, scaling, and cyclic stress issues, so the answer cannot be just one.

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.

Also operates the nylon resin, secondary-grade materials, and bulk materials of major chemical giants; additionally, it has long been purchasing nylon raw materials, sprue return materials, and various types of nylon waste, with formal disposal channels.

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.

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

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