变压器与电感骨架用尼龙?耐温不是唯一一条,先看失效

应用领域 发布时间: 2026-09-12 3543 阅读

Transformer and inductor cores are the most 'traditional' type of plastic electrical components, but selecting materials has never been any easier.

It has to withstand long-term temperature rises, provide creepage distance, secure terminals, and be repeatedly tightened by enameled wire.

Four failure modes correspond to four completely different solutions. If you mix them together in discussion, it's easy to focus only on temperature resistance and overlook the other three.

The transformer frame has a unique process: varnishing.

The temperature of baking after dipping in paint heats the frame together, and ordinary grades deform at this stage.

An audio transformer factory suffered a loss; after the core frame was baked, the window position shifted, and all the winding was messed up.

Switch to materials with a higher temperature rating; after baking, the costs went up, and the customer wants a price reduction.

Under a pincer attack from both sides, the optimization of the varnishing process itself has instead become the way out.

The story of choosing a framework is often a three-way game.

1. First, list the four types of failures

First, softening deformation. When the long-term temperature rise exceeds the material's tolerance, the framework creeps, the winding posts tilt, and the inductance drifts.

Second, tracking. Moisture combined with pollution and voltage forms a carbonized path on the surface, eventually leading to breakdown.

Third, terminal cracking. The stress concentration around the terminal is caused by the difference in thermal expansion between the insert and the plastic, combined with the winding tension.

Fourth, winding cuts. Burrs on the frame surface and insufficient rounding can damage the insulation layer of the enameled wire.

The material requirements for the four lines are different: for deformation, consider temperature resistance and creep resistance; for marks, consider CTI; for cracking, consider the insert structure; for cuts, consider surface and structural design.

2. Regarding temperature resistance, first consider the insulation class

The temperature resistance requirement of the skeleton comes from the insulation grade of the winding, not from the ambient temperature.

The common correspondence is: Class B about 130°C, Class F about 155°C, Class H about 180°C. It should be matched according to long-term continuous temperature, not according to short-term peak values.

The material grades are roughly: 130℃ uses flame-retardant reinforced PA66; 155℃ uses high-temperature system PA66 or PA46; above 180℃ usually requires PA6T, PA9T, or PPS.

The most common mistake here is treating HDT as suitable for long-term heat resistance. HDT is a short-term indicator; long-term performance depends on the retention rate of properties after thermal aging, and the two are not the same.

3. Thin-walled long processes are the injection molding challenges of the framework

The wall thickness of the skeleton is often only a few tenths of a millimeter to just over one millimeter, but the process is very long, and in the middle, the terminals also need to be covered.

This determines that it has very high requirements for the fluidity of the material, but materials with good fluidity often have low glass fiber content and insufficient rigidity, forming a contradiction.

The usual handling methods are three parallel approaches: increase the material temperature and mold temperature (without causing degradation), adjust the gate position to shorten the flow path, and thicken key areas (using structure to add material).

The most typical表现 of insufficient filling is material shortage near the terminals and whitening at the ends. Such defects often appear only in individual cavities within a whole batch, making them easy to miss in spot checks, and inspection combining first article and batch checks is required.

There is another structural approach: appropriately thicken the wall around the terminals, using locally thick walls to compensate for the filling allowance. The design principle for thin-walled parts is not "thin everywhere," but "thin where it should be thin, and thick where it should be thick."

4. Terminal Inserts: Structure Over Material

Wires need to be soldered and connected on the skeleton terminals, and they also need to be continuously pulled by the winding tension.

The stress around the terminal comes from three sources: thermal expansion differences, winding tension, and assembly stress.

The recommended processing order is: first modify the terminal's clamping geometry (knurled, ring groove, barb) → then leave enough fillet and wall thickness for the plastic hole → then try preheating the insert → finally consider changing the material.

Changing the material first often does not solve the problem, because the stress comes from geometry and temperature difference, not from insufficient material strength.

By the way, here is a common rework scenario: after the terminal cracked, it was replaced with a tougher material, but it resulted in the terminal becoming loose. Increasing toughness often requires reducing rigidity, causing the terminal's retention force to decrease. This is a typical case of 'pressing the gourd and the ladle rises,' indicating that the problem was not originally with the material.

The correct approach is to return to geometry: the occlusion structure determines tensile resistance, the thickness of the hole wall determines cracking resistance, and preheating determines residual stress. Once these three things are decided, then talk about material selection.

There is one more thing that is easily overlooked: winding tension. The core experiences continuous tensile stress during winding; the greater the tension, the heavier the burden on the terminals and the winding post. In some cracking cases, reducing the tension slightly made it disappear—adjusting process parameters is much cheaper than changing materials, and should be tried first.

In addition, the surface quality of the skeleton directly affects winding: burrs, flash, and demolding scratches can all cut the enameled wire. These issues may not be immediately revealed during insulation testing, but can lead to inter-turn short circuits after long-term vibration or temperature rise. Surface requirements should be specified in the drawings.

5. Creepage distance should be calculated together with CTI

The shape of the skeleton itself is the carrier of the creepage distance.

For the same surface distance, materials with a higher CTI can withstand higher voltages. So the question of whether the 'distance is enough' depends on what material is used.

Here is a practical procedure: First, according to the target voltage and safety standard level, determine the required creepage distance; then, based on the available structural space, work backward to determine the required CTI level. If the back-calculated CTI exceeds conventional materials, it is necessary to find a new balance between structure and materials.

6. Material Grade Table

Long-term temperature riseMaterial directionNotes
Within 130℃Flame-retardant reinforced PA66Focus on CTI and fusion lines
About 155℃High-temperature PA66 / PA46Need to age data long-term
Above 180℃PA6T / PA9T / PPSThe process window needs to be readjusted

At the same time as changing gears, drying, mold temperature, and the screw must also be changed. This is especially important for high-temperature nylon.

7. Verification Checklist

① Ball pressure test to confirm that it does not soften under long-term temperature rise.

② Withstand voltage and insulation resistance, measured in a humidity-conditioned state.

③ CTI, data under humidified conditions.

④ Terminal pull-out force and torque, test the assembly of the insert.

⑤ Winding test: wind fully according to the actual tension, and check for cuts and deformation.

⑥ Retest the first four items after the hot and cold cycles.

Three of the six items are 'humidity control state'. This is not a repetition, but because the actual working condition of the framework is a moisture-absorbing environment.

One last point about the verification sequence: first conduct the material-level tests (ball pressure, CTI), then the component-level tests (pull, pressure resistance), and finally the whole machine-level tests (winding, aging). Reversing the order will waste many rounds, because if the material does not pass, the component-level tests are of limited significance.

The impact of the varnishing process on the framework can be considered in three parts.

When dipping in paint, the paint penetrates the surface of the plastic, and certain solvent systems can cause swelling.

The heating stage of baking is the first test, and thermal deformation occurs at this stage.

The insulation section is the second test, a long-term temperature test to assess the heat resistance level.

The cooling phase seems safe, but rapid cooling can leave internal stress.

Therefore, verification of frame materials must simulate a complete dipping curve; it is not possible to measure only one baking temperature.

Some factories and paint manufacturers jointly developed low-temperature fast-curing paint, lowering the baking temperature by thirty degrees.

Materials and processes yield one step to each other, benefiting both cost and quality.

Follow-up question one: How much does the type of impregnation paint affect the skeleton?

There is a big difference. Solvent-based paint has a high risk of swelling; water-based paint is milder but requires different baking requirements. Before determining the skeleton material, use the actual paint type for soaking and curve verification, rather than replacing it with generic solvent data. Paint and material are partners, and partners must interview together.

Follow-up question two: How do you choose the temperature resistance grade for the frame?

Choose based on baking temperature plus safety margin, and also check long-term RTI data. It can withstand baking for a short time and can withstand operating temperature in the long term—two temperatures, two lines. If you select materials only based on baking temperature, aging after a few years of service will catch up on that lesson.

Tracking the tangled groove winding in a single order

After baking, the window position shifted and the winding was completely messy. Investigation found that the curing temperature of that batch of paint was ten degrees higher, the production line followed the label, and the frame was overheated and deformed. Rectification involved the paint factory correcting labels and adding temperature monitoring at the process end. If the upstream label was incorrect, the downstream frame deformation would pay the price. Verifying incoming material documents is also part of skeleton quality management.

Three steps for skeleton verification

solid paint soaking, complete curve simulation, and re-testing dimensions and insulation after aging. Once these three steps are completed, the soaking test is over .

to sum up: the skeleton is the coil's skeleton; soaking with varnish is to bathe the bones. If the water temperature is incorrect, the bones will deform. Treat the paint as a process parameter and the material as a structural partner when chosen, thus giving the transformer a base for lifespan.

Transformer skeleton has another special scenario: high-frequency inductors. The inductor skeleton in switching power supplies has frequencies in the hundreds of kilohertz, and material loss at high frequencies becomes a new indicator. Ordinary grades have high high-frequency losses, and with heat generation and winding temperature rise, the skeleton temperature is higher than expected. For high-frequency scenarios, low-loss formulas should be chosen; mature industry solutions have specialized inductor skeleton grades. Every time frequency rises, the material list must be rearranged. Power supply customers recognize this rule the most because they have burned more skeletons than anyone else. The coordination between

skeleton and encapsulation process is also a skill. When encapsulation material cures, heat is released, and curing temperature allows the skeleton to undergo another thermal test. The shrinkage stress of the encapsulation body presses on the skeleton, and the thin wall area may crack due to stress. Verification of skeleton materials requires simulating the encapsulation curve together; using only bare parts for verification can cause risk leakage. Some factories and encapsulation material factories hold joint meetings to combine verification of the two systems into one set, doubling efficiency. Cross-factory joint meetings sound troublesome, but calculating the total is the fastest way.

Checklist Summary

Transformer and Inductor Framework Fixed-Point Data Package: Solid paint and encapsulation curve verification, dual temperature data for baking and operation, high-frequency loss data (if applicable), stress cracking verification, post-aging dimensional insulation retesting. The skeleton is the type of plastic component most closely tied to the process, and process data accounts for half of the package, which is normal.

Another key point in batch management of transformer skeletons: dielectric batch sampling. The dielectric performance of the skeleton fluctuates between batches; by comparing batch sampling and retained samples, the fluctuation curve is established. Some factories have drawn three years of dielectric batch data into control charts, with automatic warning over limits. Dielectric data control charts upgrade skeleton batch management from sampling and release to trend management. The benefit of trend management is that you can see slow degradation; when a batch is released, you can see what can't be seen.

The cleanliness of the dipping stage also affects the skeleton. Impurities in the paint penetrate the skeleton surface, and the weak point of dielectric is at the impurities. Filtration and tank cleaning must have systems; don't let the saved filter cartridge money turn into after-sales work orders. Some factories have dielectric defect rates that fluctuate seasonally; tracing the fact that the paint deteriorates quickly in summer and the filtration cycle is not adjusted accordingly. Process parameters follow the seasons; this principle works equally for impregnating paint.

A material selection and coordination suggestion for transformer factories: arrange a joint verification of the paint, encapsulation materials, and framework suppliers. Problems at the interface between the three systems can never be detected by individual verification. The cost of joint verification is lower than any batch rework. Interface issues are solved by joint meetings, which is a mature experience in electronics manufacturing and worth replicating for every skeleton project.

One more point on batch management of transformer skeleton: sample retention and traceability. The dielectric data of the skeleton must be traceable down to material batches and molding parameters; retained samples are the physical anchor point for traceability. Some factories arrange sample rooms by batch; this trump card is the biggest bonus during customer audits. Half of the customer's trust in suppliers comes from the moment they enter the sample room. The cost of retaining samples is just a few cents per item, and trust value is invaluable.

The relationship between skeleton and safety certification must be clearly explained. Transformer products have had safety certifications, and the frame as part of the insulation system is within the scope of certification. Material replacements require re-evaluation of safety regulations, and this cost should be included in the project in advance. Some factories missed safety re-evaluation during material replacement, causing the entire batch to be stuck at customs. The relationship between certification and materials is the first line on the framework project schedule. Before scheduling, the certification path must be drawn out first to avoid supply shortages midway.

Manufacturer's final material selection advice: treat joint verification of paint, encapsulation, and framework systems as standard measures, and treat safety pathways as the first line of the schedule. If these two things are done properly, the failure rate of framework projects will plummet. The industry's mature experience is right there; copying operations is not shameful, rework is.

Frame project final cross-cultural experience. Japanese clients require batch reports for dielectric batch data for frameworks; European and American clients require long-term data curves; domestic customers value response speed most. Three types of customers have three expectations, and service plans should be tiered accordingly. One factory has made three sets of document package templates, so taking orders from different clients is easy. Understanding the customer's inspection logic is more effective than going to multiple sites.

Frame failure Another niche scenario to mention: rodent bites and insect damage. Outdoor and warehouse environments where frames are damaged by rodent bites can cause dielectric failure without warning. Rodent-proof designs in outdoor transformers are not a joke; they are real failures. The design of housing holes and material hardness both affect the risk of mouse bites. Niche entries in the industry experience database are often the only answer to a strange after-sales incident worth accumulating slowly.

Conclusion

Transformer Framework Material Selection: The judgment chain is:

first set the temperature resistance level for insulation grade →, then set CTI → by voltage and space, then determine structure by terminals and winding→ and finally select the specific grade.

Each of the four failures has its own pipeline; any missing one will be exposed during the verification phase

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