断路器壳体换料的风险清单:阻燃、CTI 与结构分件

应用领域 发布时间: 2026-09-15 4526 阅读

When changing the material of a circuit breaker casing, the most common situations are the fusing wire exceeding the limit and the CTI dropping by one level. This article explains the three routes for halogen-free switching, how to read the criteria table, why different compartments of the same casing are selected separately, and the verification sequence that needs to be rearranged when changing materials.

The matter of replacing the breaker housing materials happened two winters ago at a factory that makes small circuit breakers.

They received an export order, and the target market requires it to be halogen-free, so the original flame-retardant system needs to be completely replaced.

The two shell pieces sent are white, palm-sized, with deep cavities and multiple ribs, cushioned with foam, and the corners still bear traces of being burned in a hot wire test.

The purchasing person said very directly on the phone: 'The hot wire passed, but the CTI actually dropped a level, and the safety standard got stuck.'

I first asked three counter-questions: Are we changing the base material, or are we adjusting the entire flame-retardant system together? Is the wall thickness the same as before? Was that CTI report measured in a dry state, or after damp heat treatment?

He thought for a moment and said, the system has changed, the wall thickness hasn't, and the test status on the report isn't written.

This issue highlights the area where changing the casing material is most likely to have conflicting priorities—flame retardancy and tracking resistance often have opposing directions for improvement.

The timeline below shows the real course of their batch of shells.

The starting point was sending the halogen-free switch for testing. The glow-wire test passed, and the procurement considered the matter settled; the latent phase was constantly monitoring the CTI data on hand, which seemed fine because it was measured under dry conditions; the outbreak occurred when submitting for safety compliance according to the contamination level, and the CTI under damp heat conditions dropped by one grade, causing certification to halt; the settlement was a retrospective check— the system had changed, the wall thickness had not, and the test conditions were not clearly documented— all three were things that 'weren't written down.'

The cost of replacing the casing is often the most expensive item recorded under the testing conditions.

1. Six-dimensional condition of the casing before material change

The casing looks like a structural component, but in reality, it is the last line of defense for electrical safety, and the working conditions need to be examined in six different ways.

For the temperature aspect, steady-state and transient should be separated. The long-term temperature in the distribution box is mostly between 40–70°C, and it is one level higher near the terminals; during a short-circuit instant, the arc temperature can reach thousands of degrees, but that is extremely brief, and the concern is that the material does not keep burning during those few seconds.

This load has two sets. One set is the operating force of the actuating mechanism, with a mechanical life of several thousand to over ten thousand cycles; the other set is the torque of the self-tapping screws during assembly, and the slipping torque of the plastic studs must have a margin.

This medium is the easiest to be overlooked. Dust, moisture, cleaning agents, and coastal salt spray all accumulate on the same component; CTI tests exactly the performance when "voltage, moisture, and surface contamination" appear simultaneously.

The lifespan is calculated based on ten years, and the number of electrical cycles must also be considered. The impact of aging on flame retardancy and electrical performance is often more pronounced than on mechanical properties.

Appearance is a strict standard for electrical components. Color differences, weld lines, and floating fibers must be controlled, and surface roughness must also be managed—the rougher the surface, the more likely it is to accumulate dirt and absorb moisture, causing the CTI to decrease.

Compliance is the longest: UL94 is reported as V-0 according to minimum wall thickness, glow wire is graded by GWIT and GWFI, CTI is graded by pollution level, ball pressure is reported by temperature point, and exports also require a halogen-free list.

DimensionThe numbers to ask when changing materialsWhat happens if it leaks?
TemperatureLong-term temperature range, short-circuit transient durationIncorrect selection of ball pressure and temperature grade
LoadNumber of operations, self-tapping screw torqueBoss thread stripping, clip break
MediumPollution level, humidity, salt sprayCTI dropped
LifespanRated life, electrical life cyclesElectrical failure after aging
AppearanceColor difference, floating fibers, surface roughnessAssembly return, CTI decline
ComplianceWall thickness, flame retardant and hot wire grade, halogen-free listStuck during submission for testing, redo

Among the six items, wall thickness and target market need to be decided first. If they can't be decided, any choice of system afterward will be a temporary solution.

2. Three paths for halogen-free switching, first lay out the costs

Changing materials is not just about increasing the flame-retardant rating; it's about clearly laying out the costs of the three options.

PathHow to changeCostSuitable for what situations
Change the system without moving the substrateSwitch the antimony bromide system to a phosphorus-nitrogen systemIncreased dosage, toughness drops one level, fluidity worsensThe structure is mature, only wants to address regulations
Change substrate without altering the systemSwitch PA66-GF to high-temperature substrateThe complete set of material and mold temperature needs to be modifiedTemperature margin or size needs to be increased
The system and the substrate move togetherHalogen-free High-temperature SubstrateThe longest cycle and the heaviest verificationHigh export requirements, thin-walled parts

None of the three is better; it’s only about which one can match your wall thickness and certification pace.

The first option is the most convenient, but it has a side effect that is often underestimated: once the amount of flame retardant is increased, both fluidity and toughness usually decrease together. The shell is a thin-walled deep cavity part, so a decrease in fluidity directly leads to insufficient filling and weak weld lines.

The risk in Article 2 lies in the process. Once the base material is changed, the material temperature, mold temperature, and drying all need to be reset. Copying the old production settings is most likely to fail on the first batch.

The third option is the most expensive, but it is often the only feasible path when the three conditions of 'thin-walled, halogen-free, high CTI' are combined.

A common misconception is 'the bigger the flame-retardant rating margin, the safer.' This does not apply to the casing—the larger the margin, the more additive is used, which negatively affects toughness, flow, and CTI together. The grade that just passes the standard is often the easiest to work with.

3. Material Change Criteria Table: This table determines which items you need to re-inspect

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

IndicatorDirectional thresholdVerification Method / StandardCommon failures after material changeCommon solutionCorresponding auxiliary agent system
Incandescent wire ignition temperature850°C or 960°C by position within the pieceIEC 60695-2-13Ignition and arc extinguishing time exceededChange flame retardant system, improve dispersionFlame Retardant System (Synergistic Effect)
Tracking Index CTITested after being wet and hot according to pollution levelIEC 60112, conditioned stateDrop one gear, safety regulation cardLow moisture absorption, not easy to carbonizeAntioxidant (inhibits degradation)
ball pressure125℃ or according to customer specificationsIEC 60695-10-2Heat marks and deformationRaise the temperature settingAntioxidant (Maximum Temperature Limit)
Stretching and Impact RetentionAfter thermal aging ≥ 70%ISO 527 / ISO 179Splice line crack, clip breakMold temperature and gate modificationLubricant (affects weld lines)
Weld line strengthTo be determined according to the housing stressShort shot sampling StretchingAssembly falls from the weld line crackIncrease mold temperature and modify the gateLubricant
Aged electricalFlame retardant and CTI without degradationRetest two items after thermal agingQualified at the factory, later lostStabilization system RetestAntioxidant

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

The hot wire and CTI are a pair, and when changing materials, the most common issue is 'one end is over, the other end falls.' Therefore, these two tests should be conducted on the same batch of samples together, not sequentially—the time cost of doing them sequentially is too high.

The third column is for purchasing: The CTI report must clearly state whether it is after dry or damp heat, and according to which wall thickness it is measured; the contact time of the glowing wire must also be recorded. If the conditions are not clearly written, there will be a round of blame later.

The last line is the easiest to cut corners on and also the most prone to problems. Retesting fire retardancy and CTI after aging is the step that turns 'factory qualified' into 'qualified for ten years.'

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

Failure 1: The hot wire exceeded the limit, CTI dropped by one level.

The root cause lies in the choice of the system. Many methods to improve flame retardancy will lower the tracking and erosion performance, which is especially obvious in halogen-based ones. So this is not a case of 'it got worse just because the grade was changed'; the two indicators inherently work against each other, and the formulation needs to find a balance in between. When you see the CTI drop a level, first look at the system, and don’t rush to suspect the substrate.

Failure 2: Welding line cracking, which often occurs after assembly drops or operational cycles.

The structural features of the casing are deep cavities, porous sections, and localized ribs. The material flow converges at many points, resulting in numerous weld lines. The higher the glass fiber content, the more gradual the increase in the rigidity of the body, and the steeper the decrease in the strength of the weld lines—the data for the entire casing looks great, but it cracks from that line as soon as it drops. Both structure and process need to be adjusted together.

Failure three: For the same batch of housings, the performance of the filament fluctuates between good and bad.

This is not "material instability." Flame-retardant systems are sensitive to process fluctuations: higher temperatures mean additives decompose, lower temperatures cause uneven dispersion, causing batch performance to decline. Further investigation reveals that barrel temperature settings differ significantly between different teams. This account on the additive side also has disciplinary records.

Failure Four: After aging, the CTI drops gears, but the factory data is qualified.

CTI will decrease with moisture absorption and aging. The mechanism is that the flame retardant gradually migrates and the surface condition changes. Therefore, before sending it for safety certification, first measure it yourself according to the aged state, which can save a round of rectification; whether this item drops or not depends on whether the stabilization system is adequately formulated.

5. Processing and Verification: Wall thickness and material temperature are two narrow gates

The wall thickness must be determined before selecting the material, not after selecting the material and then going back to change the structure.

With the same flame retardant level, thin-walled parts are much more difficult than thick-walled parts — the flame retardant has to work in less material while also considering flowability and weld lines. Reducing the wall thickness from two millimeters to just over one millimeter amplifies the negative effects of the additive.

The material temperature window is also narrower than that of general-purpose materials. If the temperature is too high, the flame-retardant system begins to decompose; if the temperature is too low, dispersion is uneven, and the performance of the part's surface and interior will be inconsistent, causing CTI and glow wire test results to fluctuate. Therefore, after changing the material, the processing window should be posted on the machine, and parameters should be locked according to the window.

The effect of mold temperature on the weld line is more direct on the housing than on other parts. If the mold temperature is low, the weld location heals poorly, which is a hidden defect. The specific temperature to raise it to should be determined through testing with your part.

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

1. Material level: initial screening with hot wire, moisture-conditioned CTI, ball pressure

2. Process window: change material temperature and mold temperature, compare parts to check weld lines and appearance

3. Component level: assembly drop, operation cycle, snap-on and boss

4. Retesting after aging: Perform flame retardant and CTI tests again on the thermally aged samples

5. Send safety regulations: issue reports according to the target market and pollution level

Why do the retests after aging come before sending it for safety certification? Because safety certification looks at long-term performance, going through it ourselves in advance saves time compared to sending it and having it sent back.

6. Boundary: For these types of shells, stop when changing materials

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

First, there are locations around with strong electric arcs. The surface of the enclosure near the contactor's arc-extinguishing area will be subjected to arc erosion. Ordinary flame-retardant nylon cannot withstand it, and attention should be given to thermosetting or ceramic directions.

Secondly, we need to make the casing of the transparent window. Integrally molding a transparent window with a flame-retardant casing is an extreme challenge for the materials. Most manufacturers adopt a dual-material solution, injecting the window separately and then assembling it; the risk of this approach lies in the interface sealing, so the plan must be finalized before selecting the materials.

Thirdly, an extremely thin-wall component that must be halogen-free and also have a high CTI. This is a very challenging part in the formula area. First, consider modifying the structure or relaxing one of the requirements, and don’t try to handle all three issues in a single material change.

Fourth, parts with extremely large annual output and very low unit prices. The accounts for these parts should be calculated in total, and the increased cost from the material side may not be recoverable.

Fifth, parts whose failure points have not yet been located. If the casing is burned or cracked, first distinguish whether it is due to insufficient flame retardancy, a weak welding line, or incorrect assembly spacing, as the solutions for these three issues are completely different.

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

7. Material Change Risk List (Things that need to be changed when switching from the original system to a halogen-free route)

link; segment; partWhat needs to be moved?Points that are easy to overlook
MoldIf the amount is changed, the shrinkage rate will change, and deep cavity parts need to be re-measured.Only replace the material without repairing the mold, and issues arise from tight assembly fit
DryAfter changing the system, the drying window needs to be redefined.Using the old parameters, the surface is fogging up
Humidity controlCTI must be determined in the conditioned stateSubmit dry-state data for safety compliance
Material Temperature / Mold TemperatureThe flame-retardant system is sensitive to temperature and the window needs to be locked.Different teams have inconsistent settings
Pressure Holding / DemoldingThe position and strength of the weld line need to be redefinedWhen the glass fiber content is high and the amount added is large, it becomes more brittle
Color differenceThe color swatches of the white and dark pieces are matched separatelyThe base color will change after replacing the flame-retardant system
Verification orderInitial screening → Process → Component level → Aging retest → Submit for safety complianceIf the previous item fails, just move on.

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

The trial molding for changing the material of the casing is usually done in three rounds, without skipping steps between rounds.

First Round · Sample Comparison: Use your original mold to make 3–5 samples, check the appearance, filling, and short-shot weld line positions, and simultaneously send a set for initial screening with a hot wire. This round is mainly to confirm whether the material can fill the deep cavities. Keep two samples, and mark the batch number along with the material and mold temperatures.

Second Round · Process Window: Keep the material constant, vary the material temperature and mold temperature, and produce two sets of comparison pieces. Test and adjust wet-state CTI, ball pressure, weld line strength, and assembly drop. This round determines the mass production parameters.

Round 3 · Aging and Safety Regulations: Re-test the heat-aged samples for flame retardancy and CTI, then send them for inspection according to the target market. Only after passing this round is it recommended to scale up production. Store samples sealed by batch, covering the first mass production batch, to facilitate root cause tracing.

Why can't we jump between the three rounds? Because the flame retardancy and electrical performance both depend on the dispersed state and moisture-absorbed state; the process hasn't been locked in, so the data is only valid for that batch.

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: Which is harder to pass, the glowing wire test or the CTI? It depends on the location inside the part. Near heating elements, the glowing wire is a hard threshold; along the surface near live components, CTI is a hard threshold. Most housings need to pass both, so during initial screening, both tests are measured together.

Q: Will the electrical performance deteriorate after switching to halogen-free? If the system is chosen correctly, it won't, but you need to monitor the moisture absorption and retest the dielectric properties in a wet state. In coastal high-humidity markets, wet-state data is more indicative than dry-state data.

Q: Is it necessary to retest after aging? Yes, it is. Both flame retardancy and CTI change with aging, and this item ensures that a 'pass' in the report becomes a 'pass' over ten years.

9. Structural components: For the same housing, different cavities can be selected separately

This is the most cost-saving thing in shell material replacement, and also the thing that most people overlook.

For the same circuit breaker, the operating conditions are different in different compartments. The temperature in the wiring compartment is lower than in the main compartment, but the dust and moisture are heavier, so according to the pollution level, the CTI requirements are actually higher; the main compartment is concerned with flame retardancy and ball pressure; the operating mechanism area focuses on strength and weld lines; for the transparent window section, most use dual materials.

PositionMain points of examinationMaterial selection direction
Main cavity housingFlame retardant, ball pressure, mechanical strengthFlame-retardant reinforcement system
Wiring cavityCTI under pollution degreeCTI with higher level of moisture conditioning
Operating Mechanism AreaWeld line and snap-fit strengthBalancing resilience and flow
Transparent windowLight transmission and interface sealingDouble plan, select separately
Near the arc-extinguishing zoneArc-resistantThermosetting or ceramic direction

Sorting materials according to position is more cost-effective than applying a one-size-fits-all approach to the whole machine, and it does not compromise safety.

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

itemA one-sentence conclusion
Change whatStart with a halogen-free phosphorus-nitrogen system, and whether to change the substrate depends on the wall thickness.
Move whatSet wall thickness first, lock the material temperature window, reset the mold temperature
Test whatHot wire, moisture-conditioned CTI, ball pressure, measure all three together
When can the volume increase?Three rounds of mold trials passed, re-measurement after aging shows no shifting, safety compliance report issued

What we deliver is not just a package of materials.

A piece of humidity-conditioned CTI data, a retest after aging, a material selection sheet sorted by cavity position—these things won't appear on the material bag, yet they determine whether this housing can pass safety regulations. Returning to the three questions at the beginning: asking whether to change the system or the base material, asking whether the wall thickness has changed, asking whether the test conditions are clearly recorded.

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