高铁地铁内饰板用改性PP:为什么"不燃"只是入场券

应用领域 发布时间: 2026-09-12 1267 阅读

What type of modified PP is used for high-speed rail and metro interior panels? On rail vehicles, the fire rating is just a ticket to enter, while smoke density is the actual threshold. This article clarifies the thresholds, six-dimensional conditions, eight criteria, and verification sequences of the TB/T 3237 and EN 45545-2 systems, and explains in which four situations this component should not use modified PP.

An engineer who works on subway interior finishes sent a message: The same board, with a different flame retardant added, keeps the same fire rating, but the smoke density doubled.

This sentence puts the truth about subway interior selection very bluntly: 'Non-flammable' is just the entry ticket, while smoke density is the real threshold.

There is another common scenario on site: the report shows a good combustion rating, but when the customer uses it to test smoke density, it fails. Checking the reason later — the sample sent for testing was raw material granules, while what was loaded onto the vehicle was a three-layer structure of 'PP honeycomb core, fiberglass skin, and laminate,' not the same thing.

This article talks about three things: how to set the threshold, in what order to test, and in which cases modified PP should not be used.

1. Six-Dimensional Analysis of Working Conditions: What really traps people with subway interior panels is those five minutes in the tunnel

Once the six dimensions are fully analyzed, the direction for materials is basically set; among these six dimensions, only compliance is the one that can veto everything.

DimensionActual operating conditions of rail transit interior panelsRequirements for the materials
TemperatureInside the car it is long-term 20-25°C; when parked in direct sunlight, the area near the roof and lights is higher; the publicly available data for thermoplastic PP honeycomb panels indicates −40 to 80°CDoes not warp or crack after hot and cold cycles
LoadVibration fatigue; assembly stress; passenger leaning and collision with luggage; seat strength public data is often based on 100 kg per seatSufficient rigidity, assembly points do not crack, relying on the structure to bear the load
MediumNeutral cleaners, disinfectants, moisture, and condensationPP substrate has good resistance to acids, alkalis, and grease; filling and flame-retardant systems are evaluated separately.
LifespanBased on the vehicle maintenance and overhaul cycle, it is usually calculated in yearsAfter aging, both mechanical properties and flame retardancy do not degrade
AppearanceMostly 'substrate HPL/PVC laminate or film-coated', with the substrate not exposedCheck the flatness and veneer adhesion, without pursuing a mirror finish
ComplianceFor domestic use, follow TB/T 3237-2010 (EMU) or TB/T 3138-2018; for export, follow EN 45545-2.Oxygen Index Combustion Rating Smoke Density Smoke Toxicity Four Levels

The weight of the compliance dimension is heavier than any other component, and the reason lies in the context.

Subway tunnels only have passages connected to the surface as entrances and exits, making smoke and heat exhaust difficult; insufficient underground oxygen can cause combustion to become incomplete, resulting in even more smoke (according to publicly available information from industry media, level B). The fire may not burn very large, but the smoke will definitely accumulate.

The Daegu subway fire in South Korea (2003) caused 198 deaths. Afterwards, a counterintuitive phenomenon was discovered: many people died around a table on the platform — the thick smoke made the station pitch black, people standing at eye level could not see the ground, and the crowd circled around the table, eventually being suffocated by the smoke.

Japanese fire department experiment: Even if the cabin is confirmed to be non-flammable, smoke spreads and the escape exits are obscured within 2-5 minutes after a fire starts, and harmful gases appear no later than 8 minutes. According to publicly available popular science information, the escape time provided to everyone is only 5 minutes (Class B).

Combine the two: 'non-flammable' and 'can escape' are two different things. What determines whether you can get out of the carriage is smoke density and smoke toxicity.

So the order of questions for material selection in rail transit is the opposite of that for automotive parts: instead of asking about strength first, you first ask about the four criteria of oxygen index, combustion rating, smoke density, and smoke toxicity, and see which level this board can pass.

2. How the three routes are divided: enhanced halogen-free flame-retardant PP, pure halogen-free flame-retardant PP, and the division of responsibilities with phenolic glass fiber reinforced aluminum honeycomb

The interior panels of rail transit can fall on three lines; there is no 'who is stronger,' only 'which line it is stuck on.'

RouteGet whatCost / ShortcomingPosition on rail transit interior
Glass fiber / mineral reinforced halogen-free flame-retardant modified PPRigid, dimensionally stable, suitable for injection molding and compression molding; halogen-free system with relatively controllable smoke and toxicityFlame retardant dosage 25-30%, mechanical properties will inevitably give way; exposed glass fibers affect the veneerCabin side wall panels, end wall panel substrates, partitions, air ducts, inspection cover panels
Pure halogen-free flame-retardant PP (including thermoplastic sandwich panels with PP honeycomb core and glass fiber facing)Lightweight, recyclable, and hot-melt weldable; publicly available data indicates −40~80℃Raising the oxygen index is very strenuousNon-load-bearing components such as luggage rack profiles, linings, and cover plates
Division of labor of phenolic / fiberglass / aluminum honeycomb / PCPhenolic aramid honeycomb core has outstanding fire resistance; SMC molding is highly efficient; aluminum honeycomb has good stiffness and light weight; PC and alloys are used for air vent grids and lampshadesThe thermoplastic route yields at key fire protection areas and load-bearing positionsKey fire prevention areas such as the front of the vehicle and compartment partitions; the floor and electrical cabinets; head covers, fairings, and seat surfaces

Halogen-free must follow the quantitative definition card; you cannot rely on just the three words 'halogen-free': Bromine <900 ppm, Chlorine <900 ppm, total of both <1500 ppm. Remember the glow wire test: GWIT 750 / 775℃; GWFI 850 / 960℃, corresponding to a glow wire of 850℃ contacting for 30 s without igniting — this is what protects the terminals, lamps, and wiring ducts next to the interior panels.

There are two standards for smoke density, do not mix them: the building system follows the smoke density grade SDR of GB/T 8627 (in conjunction with GB 8624 classification), while rail transit follows the NBS smoke chamber method of GB/T 8323.2, judged by Ds(1.5 min) / Ds(4 min). When a customer says 'the smoke density doesn't pass,' first ask which standard they are referring to.

The position of modified PP in rail transit interiors should first clarify the boundaries. According to publicly published industry reviews of rail transit materials (B-level), headliners, sidewall panels, door pillar covers, and seat surfaces have long been primarily made of fiberglass; floors and electrical cabinets mostly use aluminum honeycomb; interior panels and partitions commonly use ABS; air vent grilles and lamp covers are often PC and alloys. Thermoplastic PP, along the lines of being recyclable, weldable, and highly efficient to mold, is used for non-load-bearing parts like luggage rack profiles, linings, air ducts, and maintenance access panels, as well as thermoplastic sandwich panels with PP honeycomb cores and glass fiber skins. In short: most of the modified PP currently used is in low to medium hazard, non-load-bearing, non-critical fire zone interior positions. Clarifying this boundary first is more useful than explaining afterward why a report doesn’t pass.

3. ★ Selection Criteria Table: Eight criteria for rail transit interior panels, each with a verification method

Pay attention to the third column: what's often trapping people is not 'which item to look at,' but 'what to use to measure and whether it counts.'

IndicatorThreshold valueVerification Method · Standard NumberCommon FailuresCommon solution
Oxygen Index LOIRoof panel ≥35%; side panels, wall panels ≥32%; floor panels ≥30% (TB/T 3237-2010, EMU)GB/T 2406.2 (Plastics / Rubber-Plastics), GB/T 8924 (FRP), etc., are methods classified by materialOxygen-rich end continuous burning, this section of the side wall panel cannot passHalogen-free phosphorus-nitrogen / intumescent flame retardant Fiberglass or mineral filling lifts upwards
Fire performance ratingPriority for Grade A; Grade B can be chosen when supply and demand match; Grade C is not qualifiedUIC 564-2 Chapter 7 Vertical BurningFlames spread, molten drops ignite belowHalogen-free flame retardant with anti-drip design
Smoke Density DsFlame / Flameless measurement respectively: Ds(1.5 min) ≤100, Ds(4 min) ≤200 (TB/T 3138-2018 caliber Ds(4) ≤200, 25 kW/m², with igniting flame mode)GB/T 8323.2 (NBS Smoke Chamber Method)Changing the flame-retardant system doubled the smoke density, and the old report is invalid.Low smoke system: reweigh per item, particle data cannot be reused
Smoke toxicityLimit values for 8 gases: CO, CO₂, HCl, HBr, HF, HCN, NOₓ, SO₂ (typical values from public sources: CO <4000 mg/m³, HCl ≤150 mg/m³; small items with mass ≤100 g may be exempt)TB/T 3237 Appendix, simultaneous collection of flame combustion inside the smoke box (refer to ASTM E662)If there is a halogen system releasing HCl / HBr, this column is filled directly.Halogen-free system; first conduct elemental screening, then send for toxicity testing
Halogen-free Quantitative DefinitionBromine <900 ppm, Chlorine <900 ppm, Total of both <1500 ppmElemental analysis (XRF preliminary screening, oxygen bomb combustion - ion chromatography verification)Nominally halogen-free but tested to contain halogen, subsequent reports are all voidSupplier Element Declaration Incoming Batch Screening
Scorching threadGWIT 750 / 775℃; GWFI 850 / 960℃; 850℃ contact for 30 s does not igniteIEC 60695-2-12 / -2-13; GB/T 5169.12 / 5169.13Ignition around terminals, lamps, and cable ductsGlass fiber reinforced Halogen-free flame retardant
Mechanics and Weather ResistanceLong glass fiber PP-LGF open range: tensile 50-80 MPa, flexural 80-120 MPa, notched impact 15-40 kJ/m², HDT 120-180℃, shrinkage 0.3-0.8%; mineral system talc powder commonly 15-40 partsGB/T 1040.2; GB/T 9341; GB/T 1043.1; GB/T 1634.2; Xenon lamp / Heat aging according to project specificationsAssembly point cracking, long-term stress creep, brittleness after agingSubstrate level Balance filling and toughening, rank sacrifice items by piece
Finished product sampling consistencySample from finished product; if finished product cannot be obtained, prepare according to actual application conditionsTB/T 3138-2018 Finished Product Sampling RequirementsParticle report qualified, composite board finished product unqualifiedThe inspection status is consistent with the loading status, and the facing/skin is counted together.

Text version conclusion: Among the eight items, smoke density and smoke toxicity should be looked at first, as they are the two items where 'the combustion level is the same, but the results differ by several times'; halogen-free quantification is the cheapest, as a simple elemental screening can eliminate a batch; the oxygen index determines which position this board can be used in.

The flame retardant content in PP is generally in the range of 25-30%. 'Adding more flame retardant will definitely reduce mechanical properties' is a structural issue of PP, not a formulation-level issue. What’s more tricky is the third variable—reducing smoke density often requires more flame retardant, or switching to a different system, with mechanical performance being affected at the same time. The three factors of oxygen index, smoke density, and mechanical properties interact with each other; it is impossible to change only one.

4. The Four Most Common Failures of Rail Transit Interior Panels and Their Root Causes

Invalid point one (daring to question a common practice): Selecting materials solely based on the fire rating report. Many materials have the same fire rating, but the smoke density can differ several times; in confined environments like tunnels and underground sections, casualties mainly come from visibility loss and toxicity caused by smoke, not the flames themselves. Two materials with the same fire rating are not equivalent when it comes to rail transit.

Failure 2: Halogen-containing systems can meet the grade but fail the scenario. Brominated compounds are highly efficient and require small amounts, so achieving the grade is easy, but during processing they release hydrogen halides when heated, which corrode equipment and molds, and when burned, they release hydrogen halides and dense smoke (according to public information); transit toxicity tests directly set limit values for HCl and HBr, and the list of prohibited substances also explicitly lists high-concentration halogens and polybrominated compounds. In this scenario, halogen-containing routes are explicitly avoided.

Failure 3: The sample submitted for inspection is not the same as the installed part. Smoke density and toxicity tests are extremely sensitive to thickness, flaming/non-flaming modes, and the state of the skin and facing. Replacing the complete part report with a report on a single material for composite panels is equivalent to not testing at all. TB/T 3138-2018 specifically added requirements for sampling finished products (according to publicly available standard interpretations, Class B) — this revision itself is aimed at addressing this kind of issue.

Failure 4: Adding flame retardants to increase the oxygen index actually increases the smoke density. Flame retardancy and smoke suppression are not the same curve: public technical data indicate that phosphorus-nitrogen systems help reduce smoke generation, while halogen-containing flame retardants may increase smoke density (Class B). As the oxygen index rises, smoke density may also increase, and mechanical properties simultaneously degrade. The correct action is to change the system, not to continue increasing the amount.

5. Verification sequence: first the halogen-free screening, and finally the complete loading documentation

This part is rarely written by peers, but it is key to whether changing materials can save money.

`

① Halogen-free Screening Bromine / Chlorine Content (XRF Preliminary Screening, Ion Chromatography Verification)

↓ Nominally halogen-free, actual measurement contains halogen, return for system replacement

② Combustion level UIC 564-2 Chapter 7 Vertical burning; Class A preferred

↓ Rated as C, returned to replace the flame-retardant system

③ Oxygen index GB/T 2406.2 / GB/T 8924, ranked according to installation position

↓ Side wall panel ≥32%, top panel ≥35% do not match, return for modification of filling and system

④ Smoke density GB/T 8323.2, with flame / without flame, measure Ds(1.5 min) and Ds(4 min) respectively

↓ The most common level people fail in rail transit, but it reverts to system modification

⑤ Fume Toxicity The eight gases each with respect to the limit values

↓ But going back, the brine system usually gets stuck here

⑥ Mechanics and Aging Tensile / Bending / Notched Impact / HDT Xenon Lamp or Thermal Aging

↓ Passed flame retardant test but collapsed mechanically and couldn't be assembled, returned for rebalancing

⑦ Vibration Fatigue Vehicle Loading Vibration and Assembly Stress Simulation

⑧ Complete loading documents: sampling from finished products, inspection of finished product status, and verification with loading status

`

Each level has clear 'just go back to the previous level' criteria.

Text version conclusion: The sequence is halogen-free screening → combustion rating → oxygen index → smoke density → smoke toxicity → mechanical properties and aging → vibration fatigue → complete document.

Halogen-free screening is placed first, as it can be rejected in minutes and costs are low; Smoke density must be passed before mechanics, because changing smoke density usually requires system movement, and once the system is moved, the mechanics must be rebalanced; The entire document is placed last, but the sampling status must be fixed from the start.

6. Reverse Honesty: In these four situations, interior panels of rail transit should not use modified PP

Earlier we talked about 'how to do it,' here we talk about 'when not to do it.'

The situation that occurredWhy is modified PP not suitable?Which way should I go?
The project has been classified as the highest risk level (HL3 class of EN 45545-2)HL3 tightens the limits on oxygen index, smoke density, and toxicity simultaneously, and the modified PP system cannot reach that level.Phenolic / aramid honeycomb core, metal honeycomb composite structure
Components must bear loads and endure long-term fatigue (vehicle body structure, load-bearing floor, seat frames)It can be used under high filling for rigidity, but long-term fatigue and structural redundancy are not its field.Aluminum honeycomb, metal structures, SMC molded components
At the same time, it should have ultra-low smoke density and high rigidity (key fire prevention areas such as the front of the vehicle and compartment partitions).Flame retardancy and high rigidity pull against each other in PP; increasing the amount together with fillers overwhelms both mechanical properties and processing.Phenolic-based sandwich composites, SMC
Request provision of type testing and certification supportWhat the material supplier can provide is the material data and batch consistency, while the component type tests are led by the component party.Led by the component side, we will cooperate by providing material-side data.

The last point is the collaboration boundaries: material suppliers provide data and batch consistency, while type testing and certification are led by the component party. We do not make overstepping commitments. What data is needed, according to which system it should be issued, and in what condition it should be submitted for inspection can all be listed together before sample approval.

There is one more thing that must be reminded: the top-tier level (oxygen index ≥35%) is already near the ceiling for modified PP. When encountering top-tier parts, first separately check the feasibility of the oxygen index before discussing the following five steps; if the order is reversed, it will waste the entire round of sampling.

7. What needs to be moved during material replacement: Risk checklist for subway interior panel replacement

Before deciding to try modified PP, go through this table first. The client's real concern is often not performance, but whether the report needs to be redone.

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Mold shrinkage rateThe shrinkage of the glass fiber system is significantly anisotropic, and long parts are sensitive.The dimensions are seriously off, and the side wall panels do not align at the seams.
Gate and VentingHigh filling Large differences in flow properties of flame-retardant systemsInsufficient filling, low weld line strength
Material Temperature and Mold TemperatureFlame-retardant system is sensitive to residence timeFloating fibers, color difference, odor, smoke density fluctuation
DryDetermine according to the specific system; it cannot be copied according to the conditions of ordinary PP.Silver threads, bubbles, degradation
Pressure Holding and DemoldingBoth the shrinkage and ejection behavior of the high-fill system changedDeformation, ejection tear, assembly point cracking
Color differenceThe color difference of the substrate of the veneer will show through.Batch color difference dispute
Complete set of flame retardant and smoke densityMaterial changes require a complete redo: halogen-free screening, combustion rating, oxygen index, smoke density, and smoke toxicity; not a single item can use the old report.The burning level is still the same, but the smoke density has doubled, and the loading documents are invalid.
Verification orderHalogen-free screening → Burning level → Oxygen index → Smoke density → Smoke toxicity → Mechanical aging → Vibration fatigue → Complete documentAll the risks are concentrated to explode at the final step

Text version conclusion: For rail transit parts, changing the material involves more effort than for general parts — report. The major issue is that the flame retardant and smoke density reports become invalid: if the same material is changed to a different flame retardant system, the combustion rating may remain unchanged, but the smoke density is no longer in the same range. Therefore, what should be discussed first in this table is the verification sequence.

VIII. One-Page Report Comparison Table: Six Scenarios for Direct Reporting

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Cabin side wall panel / end wall panel substrateGlass fiber or mineral reinforced halogen-free flame-retardant modified PPOxygen index ≥32%; Ds(1.5 min) ≤100, Ds(4 min) ≤200GB/T 2406.2; GB/T 8323.2Installation location attribution, veneering method
Luggage Rack Profiles / Linings / Cover PlatesPure halogen-free flame-retardant PP or thermoplastic PP honeycomb composite panelBoth oxygen index and smoke density pass; −40~80℃ dimensional stabilityGB/T 2406.2; GB/T 8323.2; Finished product samplingBearing ownership, whether it needs to be recyclable
Ventilation Duct / Maintenance Cover PlateFlame-retardant SMC or reinforced halogen-free flame-retardant PP selected according to molding efficiencyBurning level: Priority to Grade A, Grade B negotiableUIC 564-2 Chapter 7Batch and molding method
Top plate componentsFirst test the feasibility of the oxygen index separately, then decide on the route.Oxygen index ≥35%GB/T 2406.2 or according to the corresponding method for the materialCan the filling be changed?
Export EU ProjectFirst determine the hazard level according to EN 45545-2, then select the materialAccording to R1 or the corresponding set of requirements: CFE ≥20 kW/m², MARHE, Ds(4), CITG item by itemISO 5658-2; ISO 5660-1; ISO 5659-2; EN 17084Operation Category and Design Category (set HL1/HL2/HL3)
Key fire prevention areas (cab, partition, load-bearing floor)Does not use modified PPDirect transfer phenolic laminate / metal honeycomb / SMC

Text version conclusion: The purpose of this table is to allow technicians to report conclusions directly upward. There is only one criterion for judgment—whether the customer can determine the direction of the materials in a single meeting using this table. Pay special attention to the fifth row: domestic TB/T reports and EN 45545-2 reports are not equivalent and must be done separately.

9. The part of rail transit interior panels that is most prone to problems is often not 'insufficient flame retardancy of the material'

The most common early failure of rail transit interior panels in the industry is not failing the flammability rating, but failing the smoke density or smoke toxicity even if the flammability rating is passed. According to publicly available standard materials, TB/T 3237-2010 stipulates four parallel criteria for the evaluation of interior materials in EMU trains: oxygen index varying by installation position (ceiling ≥35%, side panels and wall panels ≥32%, floor ≥30%), combustion performance (UIC 564-2 Chapter 7, must reach Class A or B), smoke density (GB/T 8323.2, measured separately for flaming and non-flaming), and smoke toxicity (limits for eight specific gases). Failure in any one of these criteria means the material cannot enter this system.

The common industry practice is to determine three things together: first, use halogen-free elements to screen and lock in the system; then classify the oxygen index according to the installation position; and finally, use a low-smoke system to reduce the smoke density. The key is not in looking at any single item alone, but whether the oxygen index, smoke density, and mechanical properties can all simultaneously stay within the thresholds—they are in opposition to each other.

Ningbo Kolong New Materials Co., Ltd. commonly supplies halogen-free flame-retardant reinforced modified polypropylene (PP) particles for this component. The base material and filler ratio are determined according to the component's installation position and threshold settings. They are mainly used to address the issue mentioned above, that 'the rating is exceeded, but the smoke density does not pass.' The formulation can be adjusted according to the working conditions of the component and can be used for sample comparison and joint development. They can also accommodate component-level customers with small batches of various varieties.

Frequently Asked Questions

Q: For two materials with the same combustion rating, how much can the smoke density differ?

Answer: Being off by several times is common. Smoke density is directly related to the flame-retardant system and the carbonization method, while the combustion rating only considers self-extinguishing and dripping after being removed from the flame. In rail transit, both of these factors must be considered simultaneously; discussing material selection based solely on the combustion rating report is like gambling with visibility in tunnels.

Question: With a halogen system that is cheap and good, can it be used on rail transit?

Answer: Not recommended. Processing releases halogen acids when heated, which can corrode equipment and molds, and burning releases halogen acids along with thick smoke; subway toxicity tests directly set limits for HCl and HBr. The savings from that part usually have to be compensated for at the toxicity stage.

Question: If the flame retardant is added to 25-30%, is the drop in mechanical properties due to your formulation being inadequate?

Answer: It's not a formula-level problem, it's a structural issue with PP, and increasing the amount won't reduce it. All that can be done is to balance the interface with the filler to keep the loss controllable. If you want to further reduce smoke density, the amount will have to go up.

Question: If TB/T testing is done domestically, can it be used directly for export projects?

Answer: No. Domestically, follow GB/T 8323.2 plus UIC 564-2; EN 45545-2 follows ISO 5658-2, ISO 5660-1, ISO 5659-2, EN 17084, and first determine HL1/HL2/HL3 according to operational category and design category. The two sets need to be done separately.

Operating conditionKey criterionRegular supply
Cabin side wall panel / end wall panel substrateOxygen index ≥32%; Ds(1.5 min) ≤100, Ds(4 min) ≤200Halogen-free flame-retardant reinforced PP direction, regular stock
Luggage rack / Lining / Cover plateDual oxygen index and smoke density, dimensionally stableHalogen-free flame-retardant PP and reinforcement direction
Export project itemsItemized according to EN 45545-2 requirements set and hazard levelsHalogen-free flame-retardant reinforced PP direction, combined with material-side data

I want to give a reminder: When something goes wrong, the most common mistake is to change the material first. Excess smoke density, insufficient oxygen index, or excessive toxicity—each of these issues has more than one possible cause. First identify the cause, then change the material; if you reverse the order, you often end up changing materials several times and still stay in the same place.

Ten, Lastly Say Three Sentences

1. On rail transit interior panels, 'non-combustible' is just a ticket to entry, while smoke density is the threshold. The evacuation conditions of tunnels and underground sections determine that what really prevents people from getting out of the carriage is the visibility and toxicity of the smoke, not the flames themselves.

Second, the three factors—oxygen index, smoke density, and mechanical properties—are interrelated, and it's impossible to change just one. Adding 25-30% flame retardant is an unavoidable threshold for PP, and the loss in mechanical properties is structural; if you want to further reduce smoke density, you usually need to add more or change the system, and the cost occurs at the same time. Acknowledge this fact first before discussing a plan.

3. The order of verification is more important than the verification items. Halogen-free screening → Combustion rating → Oxygen index → Smoke density → Smoke toxicity → Mechanics and aging → Vibration fatigue → Complete documentation. Halogen-free screening should be listed first, smoke density must be placed before mechanics, and the sampling state should be fixed from the beginning.

Regarding the position of PP in rail transit interiors, let's clarify the boundaries first: it is currently mainly used in interior parts that are of low to medium risk, non-load-bearing, and not critical fire zones; for areas like the front of the train, car compartment partitions, and load-bearing structures, phenolic sandwich, metal honeycomb, and SMC should be used—we do not forcibly apply PP there.

About Us

About us, four sentences:

1. Ningbo Kelong New Materials Co., Ltd., self-produced modified polypropylene (PP) pelletizing—homopolymer / random copolymerization / impact-resistant copolymerization;

2. Modification directions: filling, glass fiber reinforcement, toughening, flame retardant, low odor and low VOC, weather resistance, scratch resistance without coating;

3. PP resin trade of major petrochemical plants;

4. Side牌料 and large package料 in stock.

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