改性PP电池包上盖:灼热丝与力学损失那笔账

应用领域 发布时间: 2026-09-13 629 阅读

What type of modified PP flame retardant is used for the upper cover of new energy vehicle battery packs? The answer is not just passing V0, but withstanding a 850℃ glow wire for 30 seconds without igniting, RTI ≥105℃, and passing the four tests for resistance to electrolytes and insulation simultaneously. This article explains clearly how glass fiber-reinforced halogen-free flame retardant PP passes the three tests, as well as three conditions under which modified PP should not be used.

An engineer from an automaker responsible for the battery pack cover told me: We want to replace the aluminum cover with plastic, aiming for both weight reduction and cost reduction, and for flame retardancy, just make sure it passes.

This sounds simple, but the trick lies in the two words 'just needs to be'. The lid won't get into the package without an overly strict fire-retardant report. In the industry, there are two most common failure scenarios: A V0 report looks great, but when tested by a third party with an 850℃ glowing wire, it ignites immediately; or it's installed in the vehicle for over a year and slowly becomes brittle, having been constantly exposed to 80-100℃.

This article does not discuss 'which material is best'; it talks about the key checkpoints this part should first pass, and under which conditions it absolutely should not use modified PP.

1. Six-dimensional analysis of working conditions: Temperature / Load / Medium / Lifespan / Appearance / Compliance

Break down the working conditions of the upper cover into six dimensions; once the six numbers are reported, the material orientation is basically determined. The upper cover uses modified flame-retardant PP material, with only two hard limits—long-term 80-100℃ inside the package corresponding to an RTI ≥105℃, and the hot wire at 850℃ corresponding to a short-circuit arc.

DimensionActual operating conditions of the upper coverRequirements for the materials
TemperatureInside the package long-term 80-100℃; short circuit / arc generates 850℃ level hotspots; even higher near the package in summerLong-term heat resistance RTI ≥ 105℃; resistant to instantaneous hot wire
LoadThe upper cover does not bear the main load, but it must withstand handling, vibration, and bolt tightening forcesCertain rigidity, dimensionally stable, not relying on high rigidity
MediumElectrolyte leakage / condensation, atmosphere inside the pack, coolant may splashResistant to electrolyte, maintains insulation
LifespanVehicle lifecycle (typically designed for 10 years / hundreds of thousands of kilometers)Does not become brittle after long-term thermal aging
AppearanceMostly non-exterior parts, with surface requirements lower than exterior trimPay attention to floating fibers and deformation, can be coated
ComplianceAutomotive and safety regulations: V0 850℃ glowing wire RTIAll three barriers must be passed; missing even one is not acceptable.

Among the six dimensions, temperature and compliance are of a 'veto' nature. The reason is straightforward: if the package is at 80-100℃ for a long time, and has 850℃ hotspots for a short term, the material cannot withstand these two extremes; no matter how good the other dimensions are, it still can't be included in the package.

Text version conclusion: There are only two hard lines for the upper cover condition——long-term 80-100℃ inside the package corresponds to RTI ≥ 105℃, and a short-circuit arc corresponds to a 850℃ glowing wire not igniting for 30 seconds. Resistance to electrolyte and insulation are the basis of the dielectric and safety; missing any one of them is considered a fail.

2. Comparison of material routes: glass fiber reinforced halogen-free flame retardant / pure flame retardant / metal cover

The top cover can fall on three routes; there is no 'which is better', only 'which line is stuck'.

RouteGet whatCost / ShortcomingApplicable
Glass Fiber Reinforced Halogen-Free Flame Retardant Modified PPSimultaneously passes V0, 850°C glow wire, and RTI tests; rigid and dimensionally stableMechanical properties are lower than pure PP, and costs are higher than pure flame retardant; floating fibers need to be controlledMainstream non-metallic cover
Pure halogen-free flame-retardant PP (without glass fiber)Light, exceeds V0; lowest cost850℃ hot wire and RTI often fail both tests; the rigid support can't hold the assemblyNon-package main heat-receiving component
Metal top cover (steel/aluminum)Strength, heat resistance, and flame retardancy naturally meet the standardsHeavy, expensive, low maturity, and low degree of integrationHigh magnification / high safety redundancy scenario

First, let's talk about the quantitative definition of halogen-free, which is an unavoidable hard standard: bromine <900 ppm, chlorine <900 ppm, and the total of both <1500 ppm. Only if this condition is met can it be called halogen-free.

The scorching wire index also needs to be recorded accurately: GWIT 750 / 775℃; GWFI 850 / 960℃. The GWFI 850/960 level is exactly the criterion corresponding to the upper cover not igniting when in contact at 850℃ for 30 seconds.

Text version conclusion: Replacing the cover with steel plate or aluminum, glass fiber reinforced halogen-free flame-retardant modified PP can reduce weight by more than 50%, and the cost is about 30% lower than the PA66 system (according to publicly available B-level information). The trade-off is that the mechanical properties will suffer — this calculation will be done later.

3. ★ Selection Criteria Table: Five criteria, each with a verification method

The table below is the most important part of the entire article to keep. Pay attention to the third column "Verification Method · Standard Number" — when selecting materials, it's often not that you don't know which item to look at, but that you don't know what to measure or what measurement counts as passing. (Standard numbers are cited according to common usage; specific details should be based on the grade TDS / actual measurements)

IndicatorThreshold valueVerification Method · Standard NumberCommon FailuresCommon solution
UL94 V-0 (no flaming drips ignite surroundings)V-0 (specified thickness, self-extinguishing when removed from flame, does not ignite cotton wadding)GB/T 2408 / IEC 60695-11-10 (UL94)Burning molten droplets ignite the surroundingsHalogen-free flame retardant with anti-drip
850℃ glowing wire 30s does not igniteGWFI 850 / 960℃; does not ignite after 30s of contactIEC 60695-2-12/13; GB/T 5169.12/13 (GWIT/GWFI)The hot wire ignites on contact and cannot enter the packet.Glass fiber reinforced Halogen-free flame retardant
RTI long-term use temperatureRTI ≥105℃ (long-term 80-100℃ inside the package)UL 746B Relative Heat Resistance Index (Long-term Thermal Aging Extrapolation)Brittle and cracked from long-term useGlass fiber reinforced heat-resistant system
Electrolyte-resistantMechanical and Insulation Retention After Soaking (Industry Standard Soaking Evaluation)Electrolyte Soaking Performance Retention EvaluationSwelling / Cracking / Insulation DecreaseHalogen-free system Medium resistance design
InsulationCTI / Insulation Resistance Meets StandardGB/T 4207 / IEC 60112 (CTI)Tracking and breakdown due to leakageHalogen-free flame retardant Insulation thickness design

Text version conclusion: Among the five items, the 850℃ glowing wire test and RTI are the two that should be looked at first — ordinary phosphorus-nitrogen flame-retardant modified PP can barely pass V0, and cannot pass these two tests. The threshold values and verification methods should be considered together; missing either one means it is not qualified. This is much more cost-effective than testing the sample first and then going back to find the reason.

4. The Four Most Common Types of Failures of the Cover and Their Respective Root Causes

Failure 1: Ignition by 850°C glowing wire. V0 passed, but when tested, the glowing wire ignited directly. The root cause is that ordinary phosphorus-nitrogen flame-retardant modified PP is only enough for V0; the char layer and heat resistance cannot withstand 850°C hotspots. Without glass fiber reinforcement, it also cannot prevent thermal deformation.

Failure mode 2: Brittle cracking due to long-term thermal aging. Cracks appear after one or two years of usage in the vehicle. The root cause is that the RTI did not reach 105°C, and long-term exposure to 80-100°C inside the package gradually degrades the molecular chains, rather than sudden failure.

Failure 3: Decreased insulation after electrolyte exposure. Insulation resistance drops or even leaves marks after leakage or condensation. The root cause is that the dielectric resistance of the flame-retardant system was insufficiently tested; only flame retardancy was focused on, while electrolyte resistance was overlooked.

Ineffective Point Four (Daring to Challenge a Common Practice): To reduce weight, use purely halogen-free flame retardant material without adding fiberglass. Some people think the lighter the cover, the better, so they go for purely flame-retardant material. This is wrong — purely flame-retardant materials can barely pass V0, cannot pass the 850℃ glowing wire test and RTI requirements, and without fiberglass to reinforce rigidity, the cover is prone to deformation under bolting and vibration. The goal of replacing a metal cover is 'weight reduction while passing all three tests,' not just being light.

5. Verification sequence: a priori hot wire and RTI, a posteriori molding

This part is rarely written about by peers, but it is key to whether modifying PP cover materials can save money. If the order is wrong, the cost will concentrate and explode at the final step.

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① Sample physical comparison Tensile / Bending / Notched impact / Shrinkage / Flame retardant V0

↓ Only if all five items are within the threshold, proceed further

② Glowing wire RTI 850℃ 30s does not ignite; RTI ≥105℃

↓ If you can't pass these two levels, you don't need to do the rest.

③ Short shot test molding – Check the filling, weld line position, and floating fibers

↓ Short-shooting needs to work first before talking about mass production

④ Loading Match Assembly force, clearance, resistance to electrolyte immersion

⑤ Batch trial production Client-side verification

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Text Version Conclusion: The verification sequence is small sample → hot wire/RTI → short shot → loading → mass production. Hot wire and RTI must pass before the short shot, because they are most likely to result in a veto; only after passing them should the mold-side work be done, so as not to waste mold trial costs.

6. Reverse honesty: Under three working conditions, this part should not use modified PP

Earlier, we talked about 'how to do it'; here, we talk about 'when not to do it.' This section is the most valuable for making selection decisions.

The situation that occurredWhy is modified PP not suitable?Which way should I go?
Requires a long-term operating temperature above 150℃The heat resistance limit of modified PP is around that line, and reinforcement doesn't raise it much.Switch to higher heat-resistant engineering plastics or metals
Requires Class A surface, high flame retardancy while meeting the requirementsHigh surface requires less filler and less floating fiber, high flame retardancy requires high filling, biaxial drawingDesign the surface parts and flame-retardant parts separately, or change the material
Requires high-speed collision-level structural strengthThe upper cover is a lightweight cover, and the PP toughness cannot absorb the collision energy.Return to the structural plan or metal cover

Text Version Conclusion: The common point of these three working conditions is that there are "simultaneous requirements in opposite directions"—long-term high temperature but lightweight, A-grade surface but high flame retardancy, crash-level strength but plastic top cover. The presence of any of these indicates that this part should not be strictly made of PP; clarify this first before discussing compromises. Any orders forced through will eventually need to be reworked and returned.

7. Material Change Risk List: Mold / Material Temperature / Drying / Color Difference / Verification Sequence

Before deciding to try modified PP, it is recommended to go through this table first. Customers' real concern is often not performance, but whether 'the mold and process need to be changed'.

Items to be movedWhat needs to be confirmed?What will happen if I don't do it?
Mold shrinkage rateThe shrinkage rate of glass fiber material differs from the original plan, sensitive for long partsThe dimensions are off, and they don't fit on the truck.
Gate and VentingDifferences in fiberglass flow cause changes in weld line positionsInsufficient filling, weak weld lines
Material Temperature and Mold TemperatureGlass fiber Different flame-retardant system windowsFloating fibers, carbonization, and fusion line defects
DryAccording to the specific system, the residence time of the flame retardant must be controlled.Silver threads, bubbles, degradation
Pressure holding and demoldingShrinkage differences cause deformation and whitening on the surfaceDeformation, extrusion strain
Color differenceNon-exterior parts also need to confirm the color swatch firstBatch color difference dispute
Verification orderSample → Heating wire/RTI → Short shot → LoadingAll the risk is pushed to the final step before it explodes

Text version conclusion: Material change affects three aspects: molds, processes, and color differences. The part that should be discussed first is the verification sequence. Skipping the small sample and going straight to molding is equivalent to spending the cost in advance; skipping the short shot test and going straight to batch production means that a single failure will result in the loss of the entire batch.

8. One-page report comparison table: Direct reporting for four scenarios

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Conventional non-metallic coverGlass Fiber Reinforced Halogen-Free Flame Retardant Modified PPV0 850℃ glowing wire RTI≥105℃GB/T 2408; IEC 60695-2-12/13; UL 746BLong-term temperature inside the pack, and whether it comes into contact with electrolyte
High weight-reduction upper coverSame as above, with increased fiberglassLose more than 50% of weight; pass all three levelsSame as above Short-shot mold testingWall thickness distribution, bolt position stress
Electrolyte-resistant critical componentHalogen-free flame retardant Medium tolerance designInsulation and mechanical retention after soakingElectrolyte Soaking Evaluation CTITypes of electrolyte and contact methods
High-security redundant componentsMetal upper cover or high heat-resistant systemStable above 150° CLong-term heat resistance extrapolationRate, thermal runaway boundary

Text version Conclusion: This form allows technicians to directly report conclusions without relying on organizational language. There is only one criterion — can the client take this form and determine the material direction in one meeting?

9. The top cover passes all three stages together; the difficulty lies in matching, not on a single material

The most common flame-retardant failure in the industry is not that V0 fails, but that V0 passes, or the hot wire or RTI fails. According to Aibang Polymer's "Analysis of Flame-Retardant PP Applications in 800V High-Voltage Platforms for New Energy Vehicles," the passing criteria for the battery casing cover are UL94 V-0 + 850°C hot wire contact for 30 seconds without ignition + long-term RTI usage temperature ≥105°C (in-pack long-term 80-100°C). Ordinary phosphorus-nitrogen flame-retardant PP can barely pass V0, and the last two layers often fail.

There is a structural judgment that must be clarified: PP flame retardant dosage is generally in the 25-30% range, while many engineering plastics systems fall far below this. "The more flame retardant added, the more mechanical degradation" is a structural issue with PP, not a formulation level issue. If the dosage cannot be reduced, mechanical losses are inevitable; If you want to adjust the formula to "have V0, high impact resistance, and low cost," the PP is physically mutually exclusive.

Ningbo Kelong New Materials Co., Ltd. commonly supplies glass fiber reinforced halogen-free flame-retardant modified PP for this part, mainly to solve the problem of "passing all three checks together + dimensional stability"; The formula can be adjusted according to the working conditions of the part, and we can accompany customers for small-scale sample comparison and short shot mold testing, and can also handle multi-variety, small-batch part-level requirements.

FAQ

Q: How do you choose halogen-free or halogen-free? Is it okay to just look at cost?

Answer: No. Halogen (bromine-based) is highly efficient, requires less dosage, and is low-cost, but during processing, it releases hydrogen halide and corrodes molds when heated, and combustion releases hydrogen halide and thick smoke, which is also unfavorable for the 850°C hot wire. Among the three checkpoints of the top cover, the mechanical savings from halogen often return at the heat wire stage. Halogen-free is more stable, but the trade-off is mechanics and cost.

Question: Can pure flame-retardant without adding glass fiber be lighter and cheaper?

A: It can be lightweight and cheap, but it can't pass the last two stages of the three stages. The top cover needs to be "weight reduction + passing the three tests," not simply lightness. The role of glass fiber here is to add rigidity and raise heat resistance, not to be optional.

Question: How much flame retardant is added to remove it? Is it because your modified PP formula isn't good?

Answer: It's not a matter of formulation level, it's the structure of the PP base. Adding 25-30% is an unavoidable barrier for PP—it can't be reduced. All you can do is balance the interface and process under this premise to keep losses controllable.

Operating ConditionKey CriteriaConventional Supply
Battery Pack CoverV0 + 850°C Hot Wire 30s + RTI≥105°CGlass Fiber Reinforced Halogen-Free Flame-Retardant PP, Regular Stock
Electrolyte-Resistant Upper CoverInsulation and mechanics maintained after immersionHalogen-free flame retardant + medium tolerance direction
High weight reduction coverWeight reduction over 50%, all three tests passedHigh glass fiber halogen-free flame retardant PP direction

Text version conclusion: First ask if the top cover has all three checkpoints, don't just use the V0 report for discussion; Hot wire and RTI are the two most common hurdles for ordinary flame-retardant PP; the system must be tested according to these two tests. Replacing the metal top cover and switching to modified PP should be calculated separately—reducing weight by over 50%, cost about 30% lower than PA66, which is the only way to replace metal with glass fiber reinforced halogen-free flame-retardant PP.

Ten, three final words

First, the flame retardant upper cover has three levels, not just one V0. UL94 V-0 + 850°C hot wire 30s + RTI≥105°C—even one less step doesn't pass; Ordinary phosphorus and nitrogen PP often gets stuck in the last two stages.

Second, reducing weight by more than 50% and costing about 30% less than PA66 is the process of replacing the metal cover with glass fiber reinforced halogen-free flame-retardant PP. Mechanical losses are structural and inevitable; acknowledge this first, then discuss the solution.

Third, the order of validation is more important than the validation items. Sample → hot wire/RTI → short shot → for vehicle installation; hot wire and RTI must be placed before mold trials.

Next article will talk about battery module brackets—the part is stuck in rigidity and dimensional stability, not flame retardant triple barriers.

About Us

"What material is used for this part?" "

This is the question we get asked the most, and also the one we rarely answer. Because the answer has never been 'use the best,' but 'the most suitable grade.'

Ningbo Kelong New Materials Co., Ltd. produces its own modified polypropylene (PP) pelletizing, covering three grades: homopolymer, random copolymer, and impact-resistant copolymer substrates, as well as modification directions such as filling, glass fiber reinforcement, toughening, flame retardant, low odor and low VOC, weather resistance, no coating and scratch resistance; Also engaged in PP resin, sub-brand materials, and large package materials for major petrochemical plants

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