改性PP储能液冷接头怎么选?耐冷却液是硬指标

应用领域 发布时间: 2026-09-14 4050 阅读

What type of PP is used for energy storage liquid cooling pipeline joints? The biggest difference between liquid cooling components and general electrical components is that they need to be immersed in ethylene glycol-based coolant for a long time, and aging is 'continuous exposure throughout the entire process' rather than occasional splashes. This article explains the six-dimensional working conditions, the material selection route of coolant-resistant modified PP, the immersion test criteria and sequence, and also states under which three conditions this component should not use modified PP.

For the energy storage liquid-cooled connector, this part started leaking after being soaked for two years. When we disassembled it, the material wasn't cracked, but the surface became sticky and the insulation came off—can your modified PP withstand this?

This is a variation of the question I was asked the most at the exhibition. Most of the people asking had already experienced a pitfall once: molding and assembly went smoothly, but after running for a while, they found that the coolant side developed problems first.

The biggest difference between liquid-cooled components and general electrical components lies in this word 'soak.' They need to be soaked in ethylene glycol-based coolant for a long time without interruption, with aging occurring through full exposure, not splashing.

Next, break it down four layers according to operating conditions, routes, criteria, and verification.

1. Start with the conclusion: the first threshold for liquid cooling connectors is coolant resistance, not strength.

The pipeline joints of the energy storage liquid cooling system almost look the same at failure sites: the coolant side fails first.

The two most common types are: one is that the connector body or the sealed mating surface cracks or becomes sticky after long-term immersion, causing slow leaks; the other is that mechanically it looks fine, but after immersion, the volume resistivity or insulation resistance drops, and the insulation performance does not meet the requirements. The latter is the most hidden, because the appearance is intact, and it is often only discovered through testing or on-site error reporting.

So when choosing the material for this part, the first question shouldn't be 'Is the strength enough?' It should be 'Can it withstand being soaked in coolant over a long period?' Strength comes later; resistance to coolant is the hard metric.

A detail only an insider would know: the 'media exposure' of liquid-cooled parts and the 'rain and snow splashes' on a car bumper are not comparable at all. Splashes are intermittent and reversible—you can just wipe them off and it's fine; coolant immersion is continuous and irreversible, and inhibitors, metal ions, and moisture will keep interacting with the material. Choosing 'coolant resistance' as if it just means 'resistant to a little liquid' is the most common selection mistake for these types of parts.

2. Six-dimensional analysis of operating conditions: Continuous immersion throughout the entire process is the fundamental difference between liquid-cooled parts and other parts

The operating conditions of the liquid cooling pipeline joints are broken down into six dimensions. Once the six numbers are reported, the direction basically emerges.

DimensionActual operating conditions of liquid-cooled jointsRequirements for the materials
TemperatureThe operating temperature of the coolant is commonly 40-65℃, with peaks possibly reaching 80-95℃; when shutting down and cooling, the joints undergo repeated thermal expansion and contraction.Heat-resistant oxidation aging, hydrolysis resistance, margin of heat distortion temperature
LoadPump start and stop cause pressure pulsations (about 0.x- several bar); quick-connect fittings also have insertion and removal forces as well as sealing surface pressingDimensional stability Sealing surface creep resistance
MediumEthylene glycol-based coolant (usually 30-60% ethylene glycol, water, corrosion inhibitors, metal ions), continuous immersion throughoutEthylene Glycol Long-Lasting Coolant Hydrolysis Resistant
LifespanThe designed service life of energy storage equipment is often ≥10 yearsLong-term continuous aging, not occasional splashing
AppearanceSealing surface flatness, no cracking or stickiness, color stabilityThe size and appearance are both stable
ComplianceVolume resistivity / insulation resistance meets the electrical requirements of this partElectrical items must be retested after soaking

Among the six dimensions, the medium dimension is of a 'veto' nature. The reason is straightforward: the coolant completely surrounds the joints throughout, and problems in other dimensions are often reworkable, but if there is an issue with the medium, it gradually deteriorates from the inside, and by the time it is discovered, it has often already leaked or undergone insulation failure.

According to publicly available industry information (Class B, Composite Material Application Technology "Analysis of Polypropylene Material Properties and Typical Applications"), for automotive radiator water tanks, expansion tanks, and other parts that are in long-term contact with ethylene glycol-based coolant, the common practice for materials is to use a copolymer PP toughened system. The key difficulty is 'aging and cracking caused by long-term immersion in high-temperature coolant,' so material selection should focus on hydrolysis resistance and thermal oxidative aging resistance. The situation with energy storage liquid cooling connectors involves the same type of medium, and the logic is similar.

3. Comparison of Material Routes: Coolant-resistant modified PP, glass fiber reinforced PP, and PA66/PPS/metal are a matter of division of labor, not superiority.

Modified PP is used in this part. The matrix is basically based on copolymer PP, with additional toughening, hydrolysis resistance, and thermal oxidative aging stabilization systems mixed in. However, liquid-cooled connectors are not limited to this single approach; there are several routes that have a division of labor.

RouteGet whatApplicable scopePoints to Note
Cold-resistant modified PP (copolymer PP, toughened, hydrolysis-resistant/heat-oxidation-stable)Low cost, lightweight, resistant to ethylene glycol immersion, good insulationMedium-low temperature, non-pressurized or low-pressure liquid cooling circuit connectorFocus on long-term heat and hydrolysis resistance; plug-in sealing surfaces need dimensional stability
Glass fiber reinforced PPRigid, dimensionally stable, better creep resistanceThe joint body requires structural supportFibers may slightly affect the sealing surface's smoothness and contact performance, verification is required.
PA66-GFHigher heat resistance, creep resistance, better pressure bearingHigher temperature or higher pressure circuitHigher cost, moisture absorption affects dimensions, moisture control needed
PPSHigher resistance to high temperatures and chemical corrosionStrongly corrosive coolant or higher temperatureHigh cost, narrow processing window
Metal fittings (brass/stainless steel)Maximum pressure and temperature resistance boundarySystem pressurized main circuitHeavy, high cost, attention needed for electrochemical corrosion

There is no 'which is better' for these items. The only judgment criteria are: which section of the circuit the fitting is in, and the magnitude of temperature, pressure, and medium. Quick-connect fittings for low-pressure branches, made of coolant-resistant modified PP, are the cost-effective choice; for pressurized main circuits or highly corrosive formulas, metal or PPS should be used. Forcing parts designed for different boundaries into the same material is what causes problems.

Dare to challenge a common practice: some people, in order to make it 'more durable,' directly add glass fiber reinforced PP to liquid cooling connectors, believing that the more fibers, the stronger it will be. This is wrong. Glass fiber does help with the rigidity of the connector body, but the sealing interface does not want fibers exposed on the surface. Moreover, the performance of glass fiber systems under long-term coolant exposure needs to be verified separately; it cannot be assumed that 'adding glass fiber makes it more resistant to coolant.' The place where glass fiber should be added is the connector body, not the sealing surface side.

4. ★ Selection Criteria Table and Coolant Soak Test: All six indicators include verification methods

The table below is the part of the entire text most worth keeping. Pay attention to the third column 'Verification Method · Standard Number' — the part that usually causes the most trouble when choosing is not 'which indicator to look at', but 'what to use to measure it and how much counts as passing'.

IndicatorThreshold value (reference)Verification Method · Standard NumberCommon FailuresCommon solution
Resistance to coolant soaking (retention rate of tensile strength)≥85% (decrease ≤15%)GB/T 11547-2008 / ASTM D543 Tested according to GB/T 1040 after soakingStrength collapses after long-term soakingCopolymerized PP water-resistant/heat-oxidation resistant system
Coolant Immersion Resistance (Retention Rate of Elongation at Break)≥70% (decrease ≤30%)Same as aboveBecoming brittle and crackingToughening System Stabilizer
Rate of mass change (liquid absorption/desorption)Controlled within ±2% and tends to be stableGB/T 11547-2008 Weighing Before and After SoakingContinuous weight gain, excipient precipitationResistance of the substrate and additives to extraction
Dimensional change rate (critical mating surface)≤1%, sealing surface can be tighter ≤0.5%GB/T 11547-2008 Measuring Key DimensionsSealing surface deformation leakageLow shrinkage Dimensionally stable
Appearance (cracking/stickiness/discoloration)No cracking, not sticky, no obvious chalkingGB/T 11547-2008 Visual InspectionPowdering and becoming stickyHydrolysis-resistant and heat-resistant oxygen
Electrical (Volume Resistivity / Insulation Resistance)Meets this insulation classAfter soaking, retest according to GB/T 1410 / GB/T 10064The mechanics didn't fail, but the insulation did.Electrical items must be retested after soaking

Text version of conclusion: Among the six regulations, electrical retesting is the easiest to be overlooked. Mechanical integrity is fine, appearance is not cracked, but after soaking, the insulation resistance drops. This is a real failure mode in liquid-cooled components—because the ions and corrosion inhibitors in the coolant gradually change the conductive paths on the surface and inside the material. Treat this table as a medical checkup sheet; if any item is missing, do not deem it qualified. This is much more cost-effective than installing the device, running it for two years, and then going back to find the cause.

4.1 How to test coolant resistance: clearly specify the three soaking conditions, and arrange the criteria according to 'item threshold method'.

This is the core of this article. Coolant resistance is not about 'soaking and seeing,' but a set of operable verification methods. First, establish the soaking conditions, then determine the criteria.

The three soaking conditions must be clearly stated:

- Medium ratio: Mix according to the actual coolant formula, for example, 50% ethylene glycol and 50% water with the corresponding corrosion inhibitor; to accelerate screening, the ethylene glycol concentration or the proportion of corrosion inhibitor can be increased.

- Temperature: take according to the upper limit of operating temperature, or when accelerating, take one level higher than the operating temperature (for example, if operating at 65°C, take 80-95°C for acceleration)

- Time: Short cycle during the screening phase (e.g., accelerated for hundreds of hours), then after confirmation, perform long-term soaking close to the expected lifetime.

The test method follows the immersion system of GB/T 11547-2008 "Plastics — Determination of the Resistance to Liquid Chemicals" (modified from ISO 175:1999, current, Grade A) or ASTM D543-21 "Standard Practices for Evaluating the Resistance of Plastics to Chemical Reagents" (Grade A), and reports changes in mass, dimensions, appearance, and strength.

The criteria are written as 'Item Acceptable Variation Threshold Method', with a reference range provided for each item along with an explanation of the basis:

Verification itemAcceptable change threshold (reference)Methods and BasisThreshold basis
Tensile Strength Retention Rate≥85% (decrease ≤15%)Test according to GB/T 1040 after soaking in GB/T 11547 / ASTM D543The joint bears assembly and pulsating stress, and strength collapse immediately poses a leakage risk
Elongation at break retention rate≥70% (decrease ≤30%)Same as aboveElongation is more sensitive to aging and is a precursor to cracking
Rate of change of massControlled within ±2% and tends to be stableGB/T 11547 Weighing Before and After SoakingContinuous weight gain = liquid/agent precipitation, indicating long-term deterioration
Rate of change in size≤1%, it is recommended that the sealing mating surface be ≤0.5%GB/T 11547 Key Dimension MeasurementChange in size leads to sealing failure
Appearance (cracking/stickiness/discoloration)No cracking, not sticky, no obvious chalkingGB/T 11547 Visual inspection, can be equipped with a microscopeVisual observation is the most intuitive but provides the latest alarm
Electrical Retesting (Volume Resistivity / Insulation Resistance)Still meets the insulation rating of the partGB/T 1410 / GB/T 10064, retest after soakingThe mechanical strength hasn't failed, but the insulation has, which is the most common type of failure for liquid-cooled parts.

Text Version Conclusion: The thresholds above are reference values for material selection in the industry (Grade B), not any mandatory national standard; specific values should be determined according to the coolant formula you actually use, the operating temperature, and the design life, and it is best to confirm them together with the coolant supplier. However, the requirement that 'electrical items must be retested after soaking' is non-negotiable—passing the mechanical test does not mean the insulation has passed.

5. Common failures and root causes: mechanical failure, insulation failure, easiest to be overlooked

Failure 1: Slow leakage after long-term soaking. The root cause is often that the hydrolysis-resistant/heat-resistant oxygen system is not properly implemented, or the toughening agent gradually migrates out in the long-term medium. First check the soaking retention rate, then check the system; if the order is reversed, you may end up wasting several batches of material.

Failure 2: The appearance is intact, but the insulation has failed. This is the most hidden type for liquid-cooled components. Ions and corrosion inhibitors in the coolant alter the material's conductive pathways, so the mechanical indicators remain all green, but the insulation resistance no longer meets the standard. It only becomes apparent during testing after assembly or when errors are reported on-site, so the material selection stage must incorporate electrical retesting into the verification process.

Failure Three: The sealing surface of the quick-connect fitting deforms after repeated insertion and removal. The root cause is not an initial size defect, but the material's rebound/creep after multiple insertions and removals, which leads to poorer sealing surface contact. If you only look at the initial size, it will be misjudged; re-measuring the sealing surface after insertion and removal cycles is necessary.

Failure Four: Thermal expansion and contraction cause stress concentration cracking at joint connections. The root cause lies in the repeated expansion and contraction of the material under temperature cycles, leading to stress concentration at corners or thin-walled areas. This is usually a problem that needs to consider both structural design and material fatigue resistance, and cannot be solved by simply changing the material.

Dare to deny a common practice: some people consider 'no cracks after soaking' as qualifying for coolant resistance. This is wrong. No cracks only indicate that the appearance criteria have passed; tensile retention, dimensional changes, and especially electrical properties may have already exceeded limits. The criteria for coolant resistance are a combination of six items, not just an intuition of 'it looks fine.'

6. Verification sequence: first soak, then test mechanics, then test electrical, and finally assemble the complete machine

Almost no one in the industry writes this part, but it is the key to whether material changes can save money. If the order is wrong, the costs will concentrate and explode at the final step.

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① Soaking and screening during the material selection stage: short cycle, high concentration, accelerated by heating

↓ First eliminate unsuitable systems; at this point, no money has been spent on molds yet.

② Mechanical Retention Rate Tensile / Elongation at Break / Mass / Dimensions / Appearance

↓ If any fails, go back to the previous level and choose materials again

③ Electrical Retesting Volume resistivity, insulation resistance (must be done after soaking)

Passing mechanics does not mean passing insulation.

④ Whole machine pressure cycle, thermal cycle, thermal expansion and contraction, pump start-stop pressure pulsation

↓ Simulate real service, the final step

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Text version conclusion: The verification sequence must be soaking screening → mechanical retention rate → electrical retesting → complete machine cycling. The value of accelerated screening lies in 'eliminating unsuitable systems before mold injection,' and not leaving this step to be discovered at the complete machine stage.

7. Reverse honesty: For these three operating conditions, the liquid-cooled connector should not use modified PP

Earlier we talked about 'how to do it'; here we talk about 'when not to do it.' This section has the highest value for selection and judgment.

The situation that occurredWhy modified PP is not suitableWhich way should I go?
Long-term coolant temperature above 120°CThe heat- and oxygen-aging limit of PP is around that line, and long-term continuous soaking at high temperatures will gradually cause cracking.Replace PA66-GF / PPS / metal joint
System pressurized main circuit (high voltage)PP has limited rigidity and creep resistance, making it difficult to maintain pressurized sealing over the long term.Metal or reinforced engineering plastics
Long-term exposure to strongly corrosive coolant formulations (non-ethylene glycol system, high inhibitor content, or oxidative components)PP has limits in its tolerance to coolant formulations; strong corrosion will accelerate degradation.PPS / Special Corrosion-Resistant Materials / Metal

The pattern is very clear: temperature, pressure, and the corrosiveness of the medium—if any of these exceed the limits of PP, this part should not rely on modified PP. When we encounter such a situation, our approach is to first explain this clearly, and then discuss whether there is any room for compromise—any orders pushed through forcibly will ultimately have to be returned through rework and claims.

8. Material Change Risk List: Sealing surface and insertion/removal lifespan are hidden items

Before deciding to try modifying PP with coolant, it is recommended to go through this table first. The customer's real concern is often not performance, but 'do I need to change my current mold and process?'

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Mold shrinkage rateThe shrinkage rate of new material differs from that of existing material, with long parts/sealing surfaces being the most sensitiveExcessive size deviation, sealing surface leakage
Gate and VentDifferences in the flow of glass fiber/fillersInsufficient filling, weld lines, floating fibers
Material Temperature and Mold TemperatureCoolant system processing windowSurface defects, sealing surface not smooth
DryIt depends on the specific system.Silver threads, bubbles
Pressure holding and demoldingShrinkage differences cause deformationWhite topping, deformation
Color differenceConfirm the color swatch for the exterior parts firstBatch dispute
Verification orderSoaking Screening → Mechanical → Electrical → Complete MachineThe risk is concentrated and explodes in the final step

Text version conclusion: Changing materials involves three aspects: molds, processes, and color differences, among which the verification sequence should be discussed first. Skipping small sample soaking and going straight to mold testing is equivalent to spending the cost in advance; skipping short-cycle screening and going straight to the complete machine means that a single failure results in the loss of the entire batch.

9. One-page report comparison table: directly paste into the review meeting

SceneRecommended RouteKey indicatorsVerification standardConditions that need to be confirmed first
Energy storage low-voltage liquid cooling branch jointCoolant-resistant modified PP (copolymer, toughened, hydrolysis-resistant, heat and oxidation-resistant)Strength/elongation retention after soaking, dimensions, insulationGB/T 11547 / ASTM D543 GB/T 1410Coolant ratio, operating temperature, design life
Quick-connect coupling (multiple insertions and removals)Same as above Dimensionally stable systemDeformation of the sealing surface after plugging and unplugging, retention of insertion and extraction forcePlug-in and unplug cycles Dimension re-measurementNumber of insertion and removal cycles required, sealing structure
Circuits requiring pressure or higher temperaturePA66-GF / PPSHeat-resistant, creep-resistant, pressure-bearingCorresponding engineering plastic standardsPressure level, peak temperature
Main Circuit / Strong Corrosion FormulaMetal or PPSPressure-resistant, corrosion-resistantSystem pressure, coolant formula

Text version conclusion: The purpose of this table is to allow technicians to report conclusions directly without having to reorganize their wording. There is only one criterion for judgment—whether the client can use this table to finalize the direction of the materials in a single meeting.

10. Self-production Capacity Position (B0 Level) FAQ

For components like energy storage liquid cooling connectors, the most common early failure in the industry is slow leakage and insulation degradation after long-term immersion in coolant. Among these two issues, the proportion caused by the material's resistance to the medium system is not low. Public information clearly states the criteria for these components: they must resist long-term ethylene glycol coolant, hydrolysis, and thermal aging. The base material uses copolymer PP with mixed toughening, and the difficulty lies in 'aging and cracking caused by long-term high-temperature coolant immersion'.

The common practice in the industry is to decide on three things together: choosing the PP grade for co-polymerization, increasing the amount of toughening system, and matching hydrolysis-resistant and thermo-oxidative stabilizers. The balance among these three factors is the real technical difficulty for this type of part—looking at any one of them alone is meaningless.

The key is not whose material lasts longer in brewing, but whether the four aspects—substrate grade, toughening system, hydrolysis/thermal oxidation stabilizers, and sealing surface dimensional stability—can all be addressed simultaneously.

Ningbo Kolon New Materials Co., Ltd. commonly supplies modified polypropylene (PP) particles for this part, focusing on copolymer base materials, toughening, hydrolysis resistance, heat resistance, and oxidative stability. They provide corresponding modification solutions based on the part’s coolant formulation, operating temperature, and service life requirements, mainly to address the two issues mentioned above: 'leakage and insulation deterioration after long-term coolant immersion.' The formulation can be adjusted according to the part’s working conditions, and small samples and mold trials can be conducted for comparison. They can also accommodate the demands of part-level customers requiring multiple varieties in small batches.

Operating conditionKey criterionCologne regular supply
Energy storage liquid cooling joint (non-pressurized circuit)Ethylene glycol-resistant coolant, hydrolysis-resistant, heat aging-resistantCopolymer PP Toughening Hydrolysis-resistant / Heat-oxidation stability direction
Quick connector sealing surfaceDimensionally stable, does not deform after plugging and unpluggingLow-shrinkage, dimensionally stable modified PP orientation
Glass fiber reinforced joint bodyRigidity, creep resistanceGlass fiber reinforced PP orientation (with dimensional control)

Frequently Asked Questions

Question: We originally used PA66-GF for the joint. Can switching to modified PP reduce costs?

Answer: It is true that it can reduce costs, but the premise is that this joint is in a low-pressure, low-to-medium temperature circuit. First, pass the soaking screening and electrical retesting to confirm that it can withstand the coolant and meet insulation requirements, then discuss replacement; it is not recommended to replace the pressurized main circuit. The issue is about division of labor, not just comparing prices.

Q: After soaking in coolant, it looks like there are no cracks. Does that mean it's safe?

Answer: Not necessarily. Even if the mechanical properties haven't dropped, a decrease in insulation resistance represents a real failure in liquid-cooled components. During the material selection stage, the volume resistivity and re-measured insulation resistance after soaking must be included in the process, and one cannot rely solely on appearance.

Question: With the quick connector being repeatedly plugged and unplugged, how can you tell if the sealing surface is not deformed?

Answer: What is being checked is the size and deformation of the sealing surface after multiple insertion and removal cycles, not the initial size. Passing the initial size does not mean it will still fit after dozens of insertions and removals; this needs to be verified separately.

Question: Can you directly provide a standard soaking condition?

Answer: There is no universally applicable soaking condition. The ratio of the medium, temperature, and time should be determined based on the coolant formula you actually use, the operating temperature, and the design life; we will work with you to set the conditions according to the framework of GB/T 11547 / ASTM D543, and then carry out short-cycle accelerated screening.

I want to give a reminder: when there is a problem with a part, the most common mistake is to replace the material first. Leaks, insulation degradation, deformation of sealing surfaces—each of these issues has more than one cause. First identify the cause, then replace the material; if the order is reversed, even after several rounds of replacement, the problem often remains.

Finally, say three sentences

First, the first sentence in choosing materials for liquid cooling joints is 'Can it be soaked in coolant for a long time?' rather than 'Is the strength enough?' In six-dimensional operating conditions, only the medium is continuously exposed throughout, which is a deal breaker.

Second, the criterion for coolant resistance is a combination of six items, not just the intuition of 'it looks fine.' Mechanical strength may remain but insulation may fail, which is the most common failure in liquid-cooled parts; after soaking, the electrical items must be retested.

Third, the verification sequence is more important than the verification items. Soaking screening → mechanical retention → electrical re-test → whole machine circulation, accelerated screening must be done before molding.

In the next article, we will talk about energy storage battery pack enclosures — the thing that is most feared is not soaking in coolant, but getting stuck with V-0 rating, temperature resistance, and insulation all at the same time.

About Us

After sending out the sample, we usually ask one more question: 'How do you plan to test it?'

Even good material can produce bad results if the testing method is incorrect. Drying of thin-walled parts, mold temperature and screw settings for glass fiber materials, retention time for flame-retardant materials—if any of these are not properly managed, the conclusion will be skewed.

Ningbo Cologne New Materials Co., Ltd. produces modified polypropylene (PP) granules, covering homopolymer, random copolymer, and block copolymer base materials, as well as modifications including filled, glass fiber reinforced, toughened, flame-retardant, low odor and low VOC, weather-resistant, and scratch-resistant without coating; it also deals in PP resins from major petrochemical plants, off-spec materials, and bulk materials.

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