无卤阻燃改性PP做低压线缆护套:阻燃和耐弯折怎么取舍

应用领域 发布时间: 2026-09-12 2405 阅读

What material is used for low-voltage cable sheaths? Halogen-free flame-retardant modified PP can achieve V-0 and be halogen-free, but a 25-30% increase in flame retardant will reduce flexibility — flame retardancy and bending resistance are an unavoidable pair of adversaries. This article clarifies the costs of three supplement methods, ten criteria, and the order of verification, and also explains which four types of cables should not use it.

"The jacket material V-0 passed, but after the customer installed it for half a year, the bent parts started to turn white and crack."

The person asking the question makes low-voltage control cables. Originally, the sheaths used a halogen-containing system. To meet halogen-free and RoHS requirements, they were changed to halogen-free flame-retardant modified PP—the flame-retardant requirement was passed successfully, but the flexibility requirement failed.

Four on-site phenomena: After coiled cables are released, the areas with the smallest bending radius show white marks; in winter, when laying cables outdoors, they break at a bend; after six months of installation, the sheath hardens and cracks when bent; for long straight runs, the joints in that batch expose the core wires.

All four point to the same thing: low-voltage cable sheaths use halogen-free flame-retardant modified PP; flame retardancy and flexibility are a pair of enemies, and neither can be bypassed.

Let's put the hardest numbers out first: the typical addition of halogen-free flame retardant systems in PP is 25-30% (according to public data). With so many rigid inorganic particles in the matrix, the elongation at break and low-temperature impact will inevitably decrease. What you get is V-0, but what you pay for is flexibility.

So what this article aims to answer is not 'whether it can be done at the same time,' but 'which solution to use, and whether the cost of this choice is acceptable.'

1. Analysis of six-dimensional operating conditions: The temperature and load of low-voltage cable sheaths are both veto items.

In the six-dimensional working conditions of low-voltage cable sheaths, temperature and load should be checked first—the two fatal types of sheath failure occur in these two dimensions.

DimensionActual operating conditionsRequirements for the materials
TemperatureCabinets and cable trays have long-term temperatures of 70-90°C (with conductor heating included), with common temperature ratings of 70 / 90 / 105°C; outdoor low temperatures range from −25°C to even −40°C.Long-term heat resistance and low-temperature flexibility, both are needed
LoadLaying traction, installing bend radius, coiling and repeated bending; fixed laying and mobile laying are two different worldsElongation at break and bending resistance, not rigidity
MediumMineral oil (IRM902 caliber), UV, ozone, cleaning agents, and moistureOil-resistant, weather-resistant, ozone-resistant, moisture-resistant
LifespanDesign life commonly 20-30 years; long-term energized heating combined with agingRetention of flexibility after aging
AppearancePrinting and color coding (line gauge, temperature rating, manufacturer mark); surface free of cracks, no chalking, scratch-resistantPrint is wear-resistant and color difference is stable
ComplianceSingle vertical burning, halogen-free, low smoke, RoHSFlame-retardant grade and halogen-free caliber

Text version of the conclusion: The two dimensions of temperature and load should be looked at first. Chipping during installation at low temperatures is a temperature issue, while cracking from repeated bending is a load issue. Once the three numbers 'how heat-resistant, minimum bending angle, number of bends' are reported, the direction will basically become clear.

2. Division of Material Routes: Halogen-free flame-retardant modified PP sheath, cross-linked polyolefin, TPE/TPU, and PVC each with one section of pipe

Conclusion first: Halogen-free flame-retardant modified PP is not a 'better sheath material.' Among the four routes, it is the one with low density, low cost, and recyclability, mainly used in low-voltage cables fixed indoors.

But this route has a mechanism that cannot be bypassed.

2.1 Flame retardant is added at 25-30%, why flexibility inevitably decreases

The dosage needs to be increased to this level, which is determined by the structural characteristics of PP — its limiting oxygen index is originally only around 17.5. And what is added are rigid inorganic particles, not flexible chain segments. There are two consequences:

- The elongation at break and low-temperature impact sharply decrease, and the sheath becomes hard and brittle;

- Flame retardant particles themselves may become stress concentration points and act as the starting points for cracking.

Article 2 is the easiest to miss. The cracks in the sheath often do not occur at the thinnest part of the wall, but in areas where the dispersion is uneven and there are agglomerated particles. On site, it manifests in two ways: the sheath cracks during repeated bending, and the edges chip during low-temperature installation.

2.2 Three Methods of Supplementing, Three Stroke Costs

Tonifying methodGet whatCost
① Toughening (POE / EPDM)Fracture elongation is recovered along with low-temperature impactThe combustible rubber phase enters the matrix, reducing the flame retardant efficiency; if you still want to pass V-0, you have to add more flame retardant, but increasing the amount pushes down the flexibility that was just restored.
② Replace with a more efficient flame-retardant system (such as certain phosphorus-nitrogen intumescent systems)Increasing the amount at the same gear can bring it downRising costs, narrowing processing window (the decomposition temperature of the flame retardant must match the processing temperature), and some systems show significant moisture absorption
③ Double-layer coextrusion (soft inner layer, flame-retardant outer layer)Flexibility and flame retardancy are handled separatelyWith the increase in process complexity, an additional interface needs to be controlled, and wall thickness and eccentricity become more difficult to manage.

The core judgment is just one sentence: none of these three are free. The question is not 'can they be done simultaneously,' but 'which one to use as a supplement, and whether the cost is acceptable.'

Dare to challenge a common practice: many projects 'first select materials according to V-0, then figure out how to add flexibility.' The order is reversed. What should be determined first is the baseline for flexibility—the minimum installation temperature, the minimum bending radius, and the number of bends. The flame retardancy rating is provided by safety regulations and is fixed; the flexibility baseline is determined by design and installation methods and is flexible.

2.3 Four routes, each managed by one section

RouteCost / BoundaryAdapter segment
Halogen-free flame-retardant modified PP sheathLow density, low cost, recyclable; flexibility upper limit is restricted, long-term use above 90℃ is limited by window constraintsLow-voltage cables and control cables fixed and laid indoors
Cross-linked polyolefin (XLPO)Temperature-resistant, weather-resistant, and stable electrical performance; however, thermosetting cannot be recycled and is difficult to repair.Halogen-free low-smoke main trunk sections with higher temperature resistance requirements
Thermoplastic Elastomer (TPE / TPU)Soft and smooth, good low-temperature performance, good wear resistance; cost is relatively high, oil resistance and temperature resistance depend on the system.Flexible cables for frequent movement, drag chains, and reels
PVCLow cost, high softness and processing maturity; contains halogens, releasing hydrogen halides and dense smoke when burnedConventional low-voltage cables with no halogen requirement

Text version conclusion: The four types are not substitutes for each other; they have a division of labor. If you require halogen-free, low-smoke, budget-controlled, and fixed installation methods, that is the domain of halogen-free flame-retardant modified PP; if you require extremely flexibility, frequent movement, long-term use above 90°C, or very strict smoke density requirements, then you should go for XLPO, TPE/TPU. The halogen content and smoke generation of PVC when burning should be clarified (public information standard: halogen-containing systems release halogen acid gases at a level of 15-40 mg/g, halogen-free is judged as ≤5 mg/g), but it still holds its place in cost and flexibility — this is a matter of division of labor, not a question of which is better or worse.

3. ★ Selection Criteria Table for Low-Voltage Cable Sheaths: Ten indicators, each with verification method and standard number

The part where choosing a model most often gets stuck is not 'which indicator to look at,' but 'what to use to measure it and how much counts as passing.'

IndicatorThreshold Value (Typical)Verification Method · Standard NumberCommon FailuresCommon solution
Single vertical burningA single vertical spread-through; bundled laying should follow the requirements for bundlingGB/T 18380.12 (equivalent to IEC 60332-1-2)Sheath promotes combustion, flame spreads along the cableIncrease the dose, or switch to a more efficient system
Halogen-free Low smokeHalogen acid gas (calculated as HCl) ≤5 mg/g; pH ≥4.3; conductivity ≤10 μS/mm; transmittance ≥60%; bromine <900 ppm, chlorine <900 ppm, total <1500 ppmGB/T 17650.1, GB/T 17650.2; Smoke density GB/T 17651.2Corrosive gases, smoke density exceeding the standardHalogen-free system, low-smoke filler, no halogen-containing additives added
Hot wire (when the whole machine requires it)GWIT 750 / 775℃; GWFI 850 / 960℃; 850℃ glowing wire contact for 30 s does not igniteGB/T 5169.13 (GWIT), GB/T 5169.12 (GWFI)Ignition by hot wire, ignition by dropletImprove carbonization and flame retardant efficiency
Elongation at break (original)Halogen-free flame-retardant polyolefin sheath material is commonly 150-250% (Class B); sheath threshold is commonly ≥150%GB/T 2951.11White marks and cracks at the bendsToughening, or reducing the amount of flame retardant added
Elongation at break retention after agingChange rate after 100℃ × 168 h ≤ ±30%GB/T 2951.12New material can bend, but after aging it cannot bend and becomes brittleAntioxidant system Low-moisture-absorption flame-retardant system
Low-temperature winding / Low-temperature stretching−15 / −25 / −40℃ determined per piece; low-temperature tensile elongation ≥30%GB/T 2951.14Low-temperature installation chipping and crackingImpact-resistant copolymerization to increase toughness, or switch to a high-flexibility system
Heat shrinkShrinkage rate ≤3% (can be relaxed according to the standard at 80°C setting)GB/T 2951.13Long section directly applied retracting, joint exposing coreAdjust crystallization and cooling, review shrinkage rate
High Temperature Pressure (Thermal Deformation)80-90℃ indentation depth ≤50%GB/T 2951.31Deformation under high temperature and pressure, sheath punctureIncrease temperature resistance grade Control filler ratio
Resistant to mineral oil / Resistant to chemicalsIRM902, 100℃ × 24 h or 168 h; common change rate ≤±40%GB/T 2951.21Swelling and softening in oily environmentsSelection of oil-resistant base and system
Volume Resistivity / Insulation ResistanceConfirm according to product standards and customer thresholds; for finished products, additionally test the insulation resistance between the conductor and the sheathGB/T 31838.2 (Equivalent to IEC 62631-3-1)Insulation decreases and withstand voltage fails after moisture absorptionHigh-purity, low-ion system Moisture-proof and dry

Text version of the conclusion: Out of the ten items, there are two that should be looked at first—the retention rate of elongation after aging, and low-temperature winding / low-temperature stretching. The former determines whether the sheath can survive the design lifespan, while the latter determines whether it can be installed on the machine. Selection based only on the original elongation at break is incomplete: sheath failures almost all occur after several years of service.

There is another related point to consider: halogen-free flame-retardant systems (especially expandable types) are prone to moisture absorption, and moisture absorption directly lowers electrical performance (Industry data for Class B: the volume resistivity of halogen-free flame-retardant cable material can decrease by 60-80% after being soaked in water for one day). For this type of sheath, drying, packaging, and storage are all significant matters.

4. Common Failures and Root Causes: Sheath cracking, aging and embrittlement, low-temperature chipping, shrinkage exposing the core

Four phenomena, four root causes; don’t mix up the order of attribution—if you get it wrong, money will be spent in the wrong place.

Failure 1 · Whitening and cracking at bends (appears even with new material). The root cause is mostly not 'brittle material,' but insufficient elongation at break. When the original elongation is around 150%, and the bending radius during installation is designed according to flexible cable requirements, cracking is inevitable. First, look at the bending radius and installation method, then at the material.

Failure Type 2 · New material can bend, but after aging it cannot bend. The root cause is thermal-oxidative aging combined with moisture absorption and hydrolysis of the flame retardant system, causing elongation retention to drop by ±30%. The verification item is the elongation at break after aging according to GB/T 2951.12, not the original value — many projects only test the original value and release it, only to have issues appear two years after installation.

Failure Three · Chipping during low-temperature installation. The root cause is that winding or stretching at low temperatures is not sufficient. PP is already close to brittle in low-temperature zones, and with 25-30% rigid particles added, it becomes a double weakness. This issue should be tested during the small sample stage using winding or stretching at −15 / −25 / −40°C.

Failure Four · The sheath retracts exposing the core, and the printing is worn off. The root cause lies in heat shrinkage and surface wear resistance. After changing the material, the crystallization behavior changed, and the shrinkage changed accordingly; scratch resistance is often tested using the scratch needle method (B-level industry data standards), which is related to both surface hardness and printing process.

Dare to deny the second common practice: some people rely on 'adding two or three more parts of flame retardant' to reliably pass V-0. This is wrong. Increasing the amount further continues to reduce flexibility, increases moisture absorption, and lowers insulation resistance—using the margin for V-0 to compromise flexibility, electrical performance, and lifespan is clearly an uneconomical trade.

5. Verification sequence: For low-voltage cable sheath replacement, first determine safety standards, then determine flame retardancy, and then screen for flexibility

This part is something almost no peers write about, but it determines which step the money is spent on and whether it will eventually explode all at once.

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① Complete machine safety requirements Flame retardant grade / Halogen-free / Smoke density / Temperature rating / Certification standards

↓ If this level is not clearly set, everything afterwards will be wasted

② Set flame-retardant level and system Single vertical burning (GB/T 18380.12) passed first

↓ Can't get through, return ① Check whether the gear position is set too high

③ Screening Flexibility Elongation at Break (GB/T 2951.11) Low-Temperature Winding/Stretching (GB/T 2951.14)

↓ However, return to ② to change the system or adjust the dosage

④ Retention rate of flexibility after aging Change rate of elongation after 100℃×168 h ≤±30% (GB/T 2951.12)

↓ Not enough, return to ②③ for redistribution of the system

⑤ Electrical Retesting Volume resistivity (GB/T 31838.2) Finished product insulation resistance; retesting in a humid state is recommended

↓ Much more dampness loss, return ② switch to a low moisture absorption system

⑥ Complete Machine Wiring Verification: Bending Radius, Laying Traction, Printing and Color Marking, Terminal Crimping

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The most common mistake is skipping ③ and ④ and going straight to ⑥. Judging the material flexibility based on finished cables is too costly; skipping the post-aging retention rate is equivalent to leaving the biggest risk to be settled two years later.

Text version of the conclusion: The sequence is safety standards → flame retardancy → flexibility → aging retention → electrical → wiring. The flexibility and aging retention stages must be passed during the small sample phase—they are the most likely to result in outright rejection, and this is also the time when changing the system has the lowest cost.

6. Reverse honesty: For these four types of low-voltage cable sheaths, halogen-free flame-retardant modified PP should not be the first choice

Let's first talk about situations where it shouldn't be used. For the following four types of parts, changing the route is more cost-effective than forcing it.

The situation that occurredWhy halogen-free flame-retardant modified PP is not suitableWhich way should I go?
Long-term operating temperature requirement: above 90℃The temperature resistance window of the PP substrate is around this line, and raising it with filling has a limit.Cross-linked polyolefin (XLPO) or higher temperature-resistant system
Requires extremely high flexibility (frequently moving flexible cables, drag chains, retractable reels)The opposition between flexibility and flame retardancy cannot be eliminated, and the PP base hardly provides both high flexibility and high flame retardancy at the same time.TPE / TPU, or high-flex XLPO
Requires extremely low smoke density and non-toxicity (crowded areas and tunnel scenarios)It is difficult for the PP-based system to simultaneously meet the requirements at this very low smoke density level.Halogen-free low-smoke polyolefin (XLPO) system
Requires long-term immersion in oil, strong solvents, or strongly polar mediaThe medium's erosion of the matrix is systemic, and the formula can't contain it.Select corrosion-resistant elastomer systems according to the medium

The pattern is consistent: whenever there are 'two opposing requirements that both need to be met, and enough margin needs to be given for both,' it's time to change course rather than force it with PP. When facing such demands, our approach is to first make this clear, and then discuss whether there is room for compromise—forcing through the order in the end will always result in rework and claims to get it back.

7. What to operate when changing materials: Checklist for first inspecting then operating on the jacket extrusion line

Before the customer decides to try halogen-free flame-retardant modified PP jackets, it is recommended to go through this table first.

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Extrusion Temperature DistributionThe melt viscosity of the flame-retardant system is relatively high, so the barrel and die temperatures need to be increased, but they are limited by the decomposition temperature of the flame retardant.Surface roughness, pores, release of flame retardants
Screw and ShearFlame-retardant particles are prone to break and disperse unevenly under high shearSurface pitting, batch-to-batch variation in indicators
Drying and packagingHalogen-free flame retardant systems are obviously hygroscopic, and drying conditions and packaging methods need to be confirmed.Bubbles, silver streaks, insulation resistance drop
Die mold and draw ratioIf the melt strength is different, the draw ratio needs to be reset.Sheath eccentricity, uneven wall thickness
Cooling and TractionBoth the crystallization behavior and the shrinkage rate have changedJacket retraction, conductor exposure, dimensional out-of-tolerance
Color difference and printingInteraction between color masterbatch and flame-retardant system; printing adhesion needs re-testingBatch color difference, print not wear-resistant
Verification orderSafety standards → Flame retardant → Flexibility → Aging retention → Electrical → WiringAll the risks are concentrated to explode at the final step

Text-based conclusion: Changing materials involves adjusting five process areas: temperature, screw, drying, die, and cooling, plus two aspects for acceptance: color difference and printing. Among them, the validation sequence should be discussed first—first, pass the flexibility and aging tests on small samples before adjusting extrusion parameters.

8. One-page report sheet: Directly paste the conclusion of low-voltage cable sheath material selection into the PPT

The purpose of this form is to allow technicians to report conclusions directly without having to reorganize their language.

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Indoors fixed laying of low-voltage control cablesHalogen-free flame-retardant modified PP toughening systemSingle fiber vertical burning, elongation at break, retention after agingGB/T 18380.12, GB/T 2951.11, GB/T 2951.12Flame retardant rating, temperature resistance level, minimum bending radius
Cabling outdoors or in the equipment roomHalogen-free flame-retardant modified PP weather-resistant systemUV aging resistant, low-temperature winding, halogen-free low smokeGB/T 16422.2, GB/T 2951.14, GB/T 17650.1/.2Minimum ambient temperature, UV exposure level
Northern low-temperature installation environmentIncrease toughening and dosage, or switch to a higher flexibility system−25 / −40℃ low-temperature winding or stretching ≥30%GB/T 2951.14Minimum temperature during installation, construction method
Long section direct application, tight joint allowanceAdjust crystallization and cooling, review shrinkage rateShrinkage rate ≤3%GB/T 2951.13Laying method, joint reserve length
High flexibility, frequent movementShould go with TPE/TPU or high-flex XLPO (not on this route)No cracking after bending fatigueBending fatigue according to IEC 60811-504/JB/T 10491 ApproachNumber of bending cycles, minimum bending radius

Text version Conclusion: There is only one criterion for judgment—can the customer use this chart and determine the material direction in a single meeting?

9. The most common problem with low-voltage cable sheaths is often not flame retardant or not passing

The two most common complaints about sheaths are bend cracking and brittleness after aging, and among these two types, the proportion caused by insufficient flame retardant rating is not high.

The flame retardant threshold is the obvious threshold, with clear criteria: single vertical combustion is GB/T 18380.12, halogen-free is GB/T 17650.1 / GB/T 17650.2. Flexibility is the door on the dark side; many projects have never quantified material selection at all—no minimum installation temperature, no minimum bending radius, no retention rate target after aging.

The industry's common approach is to set four things together: substrate level, toughening system dosage, flame retardant system selection (determines how much can be compressed), and retention rate target after aging. The balance relationship among these four is the real technical challenge for these parts.

Ningbo Kelong New Materials Co., Ltd. commonly supplies halogen-free flame-retardant + toughening directions in modified polypropylene (PP) pellets for this part. According to the flame-retardant level, minimum installation temperature, and bending radius, the base material and flame-retardant system are assigned to the main issue, mainly to solve the aforementioned issues of "over-flame-retardant and flexible collapse"; The formula can be adjusted according to the working conditions of the part, and can be used for sample comparison and post-aging flexibility retention verification. It can also accommodate small-batch multi-variety and small-batch demands from customer-level customers.

FAQ

Q: Can halogen-free flame-retardant PP sheaths be made with V-0 and flexible properties together?

A: Yes, but there is a cost. Toughening lowers flame retardant efficiency, changing systems increases costs and narrows processing windows, and double-layer co-extrusion raises process complexity. The question isn't "can it be done," but "which one to use to compensate for, and whether the cost is acceptable."

Q: What is the elongation at break for your halogen-free flame-retardant PP sheath material?

A: Per piece, not individually. You need to set three thresholds for me: original elongation at break, retention after aging, and low-temperature winding temperature. We set the system based on these three and provide both the original value and the retention value after aging—the data only given to the original value is incomplete when used on the sheath.

Q: Why does our current material bend when new, but becomes brittle after a year of installation?

A: This is the most typical failure of the sheath—retention of flexibility after aging. Two things to check: GB/T 2951.12 (100°C×168 h) whether the rate of change in elongation at break after aging exceeds the ±30% range; Whether the flame-retardant system absorbs too much moisture. Both issues are in the materials and packaging, not in the machine.

wants to remind you: the most common mistake when a part has a problem is to change the material first. Bending and cracking, aging and becoming brittle, low-temperature cracking, shrinkage and core exposure—each has more than one cause. Position first, then change the material; If the order is reversed, often the same thing remains in place after several rounds.

Final words

Low voltage cable sheaths use halogen-free flame-retardant modified PP; flame retardant and flexible are a pair of enemies, no one can avoid them. This doesn't depend on formulation level, but on the 25-30% flame-retardant dosage.

The question is not "can both be achieved," but "which one to use to compensate for, and whether the cost is acceptable." Toughening, system change, double-layer co-extrusion—all three paths need to be accounted for.

The order of validation is more important than the validation items. Safety regulations→ flame retardant → Flexible → Aging retention → Electrical → wiring; Flexibility and aging retention must be passed during the sample stage.

About Us

Same grade, but two companies produce different products—what's the problem?

is the same material, but the process is two different sets. Drying, extrusion temperature, screw assembly, die and cooling—if any one is off, the result is two different lines. Choosing the right material only means you're half the battle.

Ningbo Kelong New Materials Co., Ltd. produces modified polypropylene (PP) granulation, covering three grades: homopolymer, random copolymer, and impact-resistant copolymer. It also covers three grades: filling, glass fiber reinforcement, toughening, flame retardancy, low odor and low VOC, weather resistance, and no coating or scratch resistance. Also operates PP resin, sub-brand materials, and large package materials for major petrochemical plants.

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