高压连接器胶芯打样试模怎么排?爬电、CTI 与调湿

应用领域 发布时间: 2026-09-16 2481 阅读

When replacing materials in high-voltage connectors, the rubber core is the part that must not be skimped on. This article explains why the creepage distance cannot be replaced by CTI, which steps thin walls and moisture adjustment are critical at, how to read the criteria table, and what is checked in each of the three rounds of prototype molding tests, as well as how long samples are kept.

The matter of replacing the adhesive core in the high-voltage connector started last week from a phone call.

A factory that produces high-voltage connectors for new energy wants to switch the rubber core from the previously imported material to our supply route.

The first thing he said was: 'I want a V0 material, how many types do you have?'

I asked three follow-up questions: Is the platform 400V or 800V? What is the long-term operating temperature? Does the adhesive core have thin-walled areas?

He answered very straightforwardly: 800V, long-term 150°C, the thinnest part of the cable core is 0.6 millimeters.

After the replacement, the problems are no longer about temperature resistance. The parts can go through the furnace, the body is not soft either, and the issues are twofold: uneven filling in thin-walled areas and floating fibers on the surface; on the whole machine side, when checked according to the pollution level, the creepage distance is insufficient.

His second sentence on the phone was: 'I added distance, but it still doesn't work.'

This sentence points out one of the most common pitfalls when changing materials for high-voltage parts—the creepage distance compensates for the path length, but it cannot compensate for the material's tendency to carbonize.

The timeline below is the true course of that batch of glue cores.

The starting point was that the dry-state CTI report was qualified and the appearance was acceptable, so the project team considered the material change a success; the latent phase was that the floating fibers at the thin-walled areas persisted and were regarded as minor appearance issues; the outbreak occurred after the damp-heat treatment, when the CTI dropped by one level, causing the overall creepage distance verification to fail, and safety inspection submissions were halted; the settlement was a retrospective review, which found that the substrate had been changed, but the mold temperature and material temperature were not adjusted accordingly, and the damp-state data had never been measured.

The cost of changing high-pressure parts is often ultimately recorded under two terms: test status and molding window.

1. Record the six-dimensional process data before changing the material

The gel core of the high-voltage connector operates under much harsher conditions than the casing, so each of the six items must be checked one by one.

Voltage comes first. The margin requirements for the 400V platform and the 800V platform differ greatly, and the direction for 1000V is also different; CTI determination also needs to be tied to the pollution level, and the compliance positioning of the same material varies under different pollution levels.

The temperature aspect needs to be accounted for in two separate ways. The long-term operating temperature is commonly 125–150°C; the other is temperature cycling, ranging from several tens of degrees below zero to 125°C for several hundred to over a thousand cycles, which tests the fit between the inserts and the plastic parts.

The dielectric is specific to high-voltage components. Coolant, moisture, salt spray, and cleaning agents all affect it together; moisture is the most critical—after nylon absorbs moisture, its volume resistivity will decrease. The same grade may pass when dry but could drop a level in a hot and humid environment.

The lifespan is calculated as ten to fifteen years for the whole vehicle. The number of plug-in and pull-out cycles for high-voltage connectors is less than that of low-voltage components, but the number of temperature cycles is higher, and the latches and inserts should be checked according to their condition after the cycles.

Regarding appearance, this mainly concerns the thin walls on the glue core. A wall thickness of 0.6 millimeters, slightly thicker than a bank card, means that floating fibers, material deficiencies, and flow marks all directly affect insulation and assembly.

Compliance takes the longest: CTI according to IEC 60112, flame retardant rated V-0 based on minimum wall thickness, glow wire, yellow card thickness, and exports also require a halogen-free list.

DimensionThe numbers to ask when changing materialsWhat happens if it leaks?
VoltagePlatform voltage, pollution degreeCTI gear selected incorrectly
TemperatureLong-term temperature, number of temperature cycles, and rangeInsert interface cracking
MediumCoolant, salt spray, humidityInsulation degradation under wet conditions
LifespanYears of use, number of insertions and removalsInsufficient buckle strength
AppearanceMinimum wall thickness, floating fiber limitThin-wall insulation failure
ComplianceWall thickness, CTI rating, Halogen-free listThe safety regulation card got stuck, redo

Among the six items, the platform voltage and the minimum wall thickness must be determined first, as they directly determine the route.

Two or three substrate routes, laid out side by side

Changing materials is not about pushing to the most heat-resistant setting, it's about clearly laying out the costs of the three options.

RoutePlatforms that can be coveredWater Absorption and SizeProcessing windowWhere is it suitable to change from?
PA66-GF Flame Retardant400V Standard ComponentHigh water absorption, average sizeWide, easy to makeOriginal general-purpose flame retardant
PA6T-GF Halogen-free800V mainstream componentsLow water absorption, relatively stable dimensionsRequires high material temperature and high mold temperatureOriginal imported material delivery time or cost is limited
PA9T-GF800V high-demand thin-walled partsLower water absorption, stable dimensionsNarrowest window, highest material temperatureOriginal imported materials are discontinued or out of stock

None of the three is better; it only depends on which one can handle your wall thickness and structure.

A common misjudgment is to immediately jump to a higher level when the CTI is found to be substandard. Before jumping, do three things: confirm that the wet CTI is indeed substandard, as many projects are misled by the dry-state data; confirm that the creepage distance on the structural side has been properly optimized; confirm that the temperature rise and assembly temperature are within the comfort zone for the new material.

Finish three things before jumping, and you'll spend money with peace of mind.

Another misjudgment is comparing only the water absorption rate without considering the processing window. For the grade with the narrowest window, the mold and production line need to be adjusted accordingly; the parts that cannot be adjusted become new risk points after changing the material.

3. Material Change Evaluation Form: This form determines which items you will re-inspect

Translate the previous constraints into verifiable metrics. The thresholds in the table below are directional suggestions, not acceptance criteria; the actual values must be determined by your parts, your structure, and actual measurements.

IndicatorDirectional ThresholdVerification Method / StandardCommon failures after material changeCommon solutionCorresponding auxiliary agent system
Tracking Index CTI800V platform component tested at 600V setting after damp heatIEC 60112, conditioned stateDrop one gear, safety regulation cardLow moisture-absorbing substrate, not easy to carbonizeAntioxidant (inhibits degradation)
Creepage distance verificationDerive the design value in reverse according to the CTI levelStructural Drawing IEC 60664-1 CheckThe extended distance still does not passFirst adjust the gear, then change the structure— (possessive structure side)
Thin-wall fillingNo missing material or floating fibers at the minimum wall thicknessShort-range sampling Visual inspection and slicingFloating fibers, material shortage, weak insulationMaterial heating temperature and mold temperature, modify the gateLubricant (improves flow)
Dimensions after moisture conditioningThe groove and insert positions are determined according to the conditioned stateMoisture conditioning Re-measurement with CMMAssembly leakage, plug-in force driftDrawings and acceptance based on moisture conditioningCoupling agent (size-stable)
Insert Temperature CyclingThe interface does not crack after thermal cyclingTemperature cycling test SliceCracking at the insertOcclusion structure or near expansion coefficient— (Belongs to the structural side)
Flame retardant ratingReport V-0 according to minimum wall thicknessUL94 / IEC 60695-11-10Thin wall does not meet the standardChange the flame retardant system and retest

How to read this table: first look at the first two rows.

CTI and creepage distance are a pair, but they are not interchangeable. CTI controls whether the surface will carbonize, while creepage distance controls whether the surface path is long enough. If the material itself easily carbonizes, no matter how long the distance is, it only shifts the point of failure.

The third column is for procurement: the CTI report must specify the test status and corresponding thickness; it is only valid below the thickness, and if the wall is thinner, it must be downgraded.

The position of the last two lines is actually a reminder: some items cannot be solved by changing materials and need to be modified at the structural level.

4. Four types of failures after material replacement, and their real causes

Failure 1: Passes dry CTI, drops one level after damp heat treatment.

The root cause is a combination of three factors: moisture absorption, surface contamination, and carbonization under voltage. The process roughly goes like this: the surface absorbs moisture or gets coated with conductive dirt, leakage current carbonizes the surface, the carbonized layer conducts electricity, the current becomes further concentrated, and eventually an irreversible path is formed. So there are only two ways to increase CTI—either make the material resistant to moisture absorption or make it resistant to carbonization, but these two aspects inherently counteract each other.

Failure 2: If the CTI is insufficient, use the creepage distance to make up for it.

This is the most common practice in this line, and also an inertia that this article most wants to change. Creepage distance is indeed useful in design, but it cannot replace the material: once a spot is carbonized, the conductive path will expand outward from the carbonized area, rather than following the path you designed. The correct sequence is to first choose the right CTI level, and then use distance to provide design tolerance; if reversed, it means using the structure to make up for the shortcomings of the material.

Failure 3: Floating fibers and material deficiency in thin-walled areas.

The thinnest part of the glue core is 0.6 millimeters, and by the time the material reaches here, it has already cooled considerably. The root cause usually lies in the material temperature, mold temperature, and injection speed, not in the substrate itself; after adding the flame retardant system, the fluidity drops another level, making filling even more difficult. This issue can be resolved through the process window, not by changing the material grade.

Failure 4: Cracking at the insert position after thermal cycling.

The coefficients of thermal expansion for metal and plastic differ significantly, so stress will occur at the interface under temperature cycling. If a part cracks at the insert location during a thermal cycling test, it is most likely due to this reason, not because the material strength is insufficient. The solution is to provide the insert with sufficient interlocking structure, or to choose a system with a thermal expansion coefficient that is closer, and this issue needs to be addressed early in the design stage; changing the material later won’t fix it.

Add one that is easily overlooked: the groove opening size of the sealing groove. Plastic parts swell after absorbing moisture, causing the groove opening to change, and consequently, the compression rate of the sealing ring changes. The critical dimensions must be determined according to the data after humidity adjustment; otherwise, the assembly may be fine initially, but after a period of use, leakage may start. This point belongs to the management account of dimensions in a humidity-adjusted state, not to the material account.

5. Processing and Verification: Material temperature, mold temperature, and humidity control are three separate matters

There is an additional risk of melt temperature on high-pressure parts: if the melt temperature is too high, the material may locally degrade, and the surface is more prone to carbonization. For the same grade, parts with improperly adjusted process and properly adjusted process may have CTI measurements that are not in the same range.

The impact of mold temperature goes in two ways. When the mold temperature is low, the front end of the material flow heals poorly, and the weld lines are weak; at the same time, the surface is rougher, making it easier to absorb moisture and accumulate dirt, causing the CTI to decrease.

The issue of drying is amplified with the glue core. Both types of material absorb water quickly; after unsealing, leaving them open for a few hours will cause the moisture content to rise again. Before running the machine, it is necessary to confirm with a moisture meter or a dew point meter, not by feel.

Humidity adjustment is the third thing that many people overlook. Key dimensions such as slots, embedding positions, and clips must be drawn and inspected according to the humidity-adjusted state; parts made to dry-state dimensions may fit well during assembly, but leakage will start after a while.

It is recommended to arrange the verification sequence like this, do not change it:

1. Material grade: moisture-conditioned CTI, glow wire, thin-wall flame retardant

2. Process window: change material temperature and mold temperature, make comparison parts to observe thin-wall filling

3. Item level: dimensions after moisture adjustment, insert interface, terminal insertion and extraction force

4. Gentle circulation: Complete the actual circulation range, and examine the interface with slices

5. Complete machine: Check creepage distance and insulation according to pollution level

Why can't the sequence be changed? Because both CTI and size depend on moisture absorption status. If moisture absorption isn't locked, adjust mold temperature, and the data only applies to that batch.

6. Boundary: For these high-voltage components, stop handling them before changing materials

This section may be more valuable than the previous few sections because it helps you cut losses before starting work.

First, the 400V platform's general-purpose components, and the CTI in wet conditions just 'looks insufficient.' First, confirm whether it was intimidated by the dry-state data, and then optimize the creepage distance. Many projects don't need to change materials at this point.

Secondly, production lines with very low minimum assembly temperatures. The toughness of semi-aromatic types is one level lower than that of aliphatic types. Assembly at room temperature is fine, but brittle snapping of the clips can appear in low-temperature scenarios. Before finalizing the upgrade plan, include plug-in and pull-out tests at the minimum assembly temperature in the checklist.

Third, locations with strong surrounding electric arcs. For these locations, the arc resistance data should be checked; ordinary flame-retardant systems can't withstand it, and specialized solutions should be considered.

Fourth, large-volume parts with costs pushed to the extreme. The extra money spent on upgrading materials may not necessarily be recovered on the whole machine, and this calculation must be considered together.

Fifth, parts whose failure points have not yet been identified. If the insulation does not meet the standard or the part is cracked, first determine whether it is a CTI issue, a tracking issue, or an insert interface issue, as the solutions for these three problems are completely different.

Putting these five points at the beginning is not to discourage, but to save time.

7. Material Change Risk List (From the original route to this one, things that need to be moved)

link; segment; partWhat do you want to move?Points that are easy to overlook
MoldIf the substrate changes, the shrinkage rate will change, and the groove and insert positions need to be re-measured.Only change the material without repairing the mold; sealing will leak first
DryReplace the dehumidifying dryer and set the window according to the measured moisture content.Hot air drying is basically ineffective for these two types of materials
Humidity controlKey dimensions are drawn and accepted according to the moisture-conditioned stateRelease according to dry-state dimensions
Material Temperature / Mold TemperatureIf the material temperature is too high, it will degrade and the surface will carbonize more easily.Copy the gear setting from the previous batch
Pressure Holding / DemoldingThe thin walls and insert locations need to have holding pressure resetStress concentration at the insert
Color differenceColor matching the natural color and the dark parts separately with the color boardThere are differences in the base color between batches
Verification orderMaterial → Process → Component Level → Thermal Cycle → Complete MachineIf the previous item fails, just move on.

8. Proofing and mold testing schedule (number of machine runs, what is inspected in each run, how long samples are kept)

When we change the material for the glue core and arrange the test mold, it is usually divided into three rounds, and steps are not skipped between rounds.

First round · Sample comparison: Use your original mold to produce 3–5 pieces, check thin-wall filling, floating fibers, short shot weld line positions, and also confirm the moisture content after drying. In this round, first verify whether the material can fill a thin wall of a few tenths of a millimeter. Keep two samples, and mark the batch number, granule drying parameters, and mold temperature.

Second Round · Process Window: Fix the material, change the material temperature and mold temperature, and make two sets of comparison parts. Send for humidity-conditioned CTI and thin-wall flame retardant; after conditioning, check the slot and insert dimensions, and the terminal insertion and extraction force. This round determines the mass production parameters. Samples should be sealed and stored by batch, and kept for at least three months after mass production stabilizes.

Third round: Temperature cycling for thermal circulation and the complete machine: perform temperature cycling tests according to the actual circulation range and inspect the insert interface on cross-sections; then install the parts on the complete machine and check creepage distance and insulation according to contamination level. Only after passing this round is mass production recommended. Samples should be preserved for a period covering the first batch of mass production to facilitate root cause tracing.

Why can't you skip between the three rounds? Because the conclusion of each round is the premise for the next: if the filling is not confirmed, there is no way to discuss the process window; if the moisture absorption state is uncertain, CTI and dimensional data have no explanatory significance.

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.

Three questions readers often ask

Q: If CTI is insufficient, should we increase the creepage distance first or change the material first? First, check the distance according to the rating, and then look at the wet-state CTI data. If the order is wrong, the money will be wasted.

Q: For the same grade, why do two companies get different CTI results? The difference is mostly due to test conditions and thickness. Writing the conditions and thickness into the specifications is more useful than arguing about whose data is more reliable.

Question: Can the humidity adjustment process be skipped? The critical fit dimensions cannot be skipped. Parts released according to dry-state dimensions often experience leaks long after assembly.

9. Creepage Distance and CTI Division Table (for structural colleagues)

It is recommended to directly copy this table into the design review.

QuestionWho is in charge of this?What can the materials side do?What can the structural side do?
Will the surface become carbonized?MaterialChoose a system that is low in moisture absorption and not prone to carbonizationNone
Is the surface path long enough?StructureNoneCheck creepage distance according to the gear position
Will it slip gears over the long term?Materials and ProcessesStabilization system, material temperature controlAvoid areas where dirt accumulates
Is the thin-wall insulation enough?Materials and ProcessesIncrease liquidity, reform the systemLocal thickening, modify the gate

Creepage distance addresses the path, while CTI addresses whether the surface will carbonize. Both are needed; one cannot replace the other.

If you are going to use this article for a report, you can summarize it in four lines:

itemA one-sentence conclusion
Change whatFor the 800V gel core, from the perspective of low moisture absorption in high-temperature systems, first confirm the wet-state data
Move whatMaterial temperature and mold temperature reset, replace drying with dehumidification, redraw after adjusting humidity
Test whatMoisture-conditioned CTI, thin-wall filling, dimensions after moisture conditioning, thermal cycling interface
When can the volume increase?Three-round mold trial passed, no cracking during thermal cycling, full machine creepage verification passed

I received a phone call a couple of days ago.

That sentence on the phone, 'I increased the distance, but it still doesn't work,' was actually not about the distance; it was asking whether the material would carbonize in a hot and humid environment.

Also, back to the three opening questions: asking about the platform voltage, asking about the long-term temperature, asking about the minimum wall thickness—if you can answer all three, the route for the gel core is basically determined. When changing materials for the gel core, the most expensive part is never that bag of material; it's putting on the table the three things of testing state, molding window, and moisture-adjusted dimensions.

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