工具手柄包胶用改性PP:SEBS 软硬一体的界面怎么解决

应用领域 发布时间: 2026-09-14 2532 阅读

The tool handle is overmolded with modified PP. Success does not depend on the soft material, but on the interface. PP is a non-polar material with a surface energy of only 29-31 mN/m. In secondary injection molding, the soft layer must be directly overmolded on the hard core, and the interfacial adhesion is the first threshold. This article explains all at once the three interface methods, nine criteria, the verification sequence requiring three interface peel tests, and "the four conditions that, if they occur simultaneously, indicate that PP-based overmolding should not be used."

Regarding the handle rubber coating, the question customers ask most often is: 'If it's softer, will it feel better?'

I have seen a customer who makes power tools reduce the hardness of the handle's soft layer from Shore A65 to A45. It did feel softer to hold, but there were actually three more after-sales complaints: slipping when wet, edges of the overmold curling, and the soft layer becoming shiny and hard after being compressed for six months.

Conclusion first: The success or failure of overmolded parts does not lie in the soft material, but at the interface. For tool handle overmolding with modified PP, the first thing to solve is not the soft material, but the interface that is only a few microns thick.

Hardness is only one aspect of the feel; what truly determines how long this part can last is the adhesion at the interface and the soft layer's ability to maintain resilience under prolonged gripping pressure.

So the correct first sentence is: first ask whether it sticks or not, then ask whether it feels comfortable to grip or not. Below, we break it down into five layers: working conditions, interface, route, criteria, and verification.

1. Analysis of six working conditions: -40°C to 90°C, hand sweat and machine oil; the working conditions for coated parts and structural parts are not calculated using the same algorithm

The first load on a rubber-coated handle is 'compression,' not 'tension'; the first medium is hand sweat, not rainwater.

Looking at the six dimensions together:

DimensionActual working conditions of the tool handleRequirements for the materials
TemperatureOutdoor in winter - does not freeze at -40°C; electric tool body can run for a long time up to 90°CSoft layer temperature resistance: -40~90℃; long-term use above 80℃ requires reevaluation
LoadGrip pressure (grip force can reach several hundred newtons, very small per instance); 1.5 m drop; continuous vibration from power toolsRebound retention Impact resistance of interface Fatigue resistance
MediumHand sweat (including salt and lactic acid), engine oil and grease, cutting fluid, cleaning agentsSweat-resistant, oil-resistant, does not swell or become sticky
LifespanThe handle is an 'eight hours a day' part, not a 'used occasionally' part.Thickness retention after long-term compression
Appearance and feelMatte or textured surface; dry and wet friction coefficients; brand parts require color consistencyWet anti-slip Color stability
ComplianceFlame retardant (for some electrical components), handheld power tool safety, long-term skin contact, food contact (kitchen utensil handles)Flame Retardant Rating Migration and Colorfastness

Among the six dimensions, only two have a veto nature: the interface and wet-state friction. Problems in the other dimensions at most result in a poor experience or rework; if these two have issues, one is unqualified, the other is a safety accident.

A professional detail: the holding pressure is actually very small, so small that ordinary compression tests are hardly even bothered to be done. But it is a continuous pressure for eight hours a day. To make the soft layer thinner, harder, and shinier, it’s not about a single strong force, but about time and frequency. So what really needs to be tested for this part is compression permanent deformation, not tensile strength.

2. The interface stage: The surface energy of PP is only 29-31 mN/m, three paths and their respective costs

PP is difficult to bond, and there is only one reason: it is a non-polar material with too low surface energy.

According to publicly available information (Class B), the critical surface tension of PP is about 29-31 dyn/cm, while most TPE systems are above 40 dyn/cm. The polarity of the two is mismatched, so when the molten soft material flows over the PP surface, it does not form molecular-level wetting. After cooling, a layer of micro-gaps remains at the interface—this is the source of the 'looks stuck, but peels off easily' phenomenon.

The industry calls this situation 'fake overmolding': it barely holds together through mechanical interlocking or van der Waals forces.

According to public information (Class B), a peel strength below 2 N/mm can basically be judged as fake coating; for genuinely adhered coated parts, the 180° peel strength should be above 3 N/mm. Moreover, the failure mode must be tearing of the soft layer itself, not interfacial separation. This point is even more important than the numerical value—it distinguishes between 'sticking' and 'hanging on'.

To make the interface really stick, there are three paths in the industry, each with different costs:

▸ Path One · Compatibilizer / Capacity-Enhancing Layer

The interface changes from physical entanglement to a chemical transition layer. According to publicly available information (Class B), adding 1-3% PP-g-MAH or 2-3% SEBS-g-MAH can increase the interfacial bonding strength from 0.8 MPa to above 1.5 MPa; when the grafting rate is controlled at 0.5%-1.5%, the interfacial strength can be increased by 50%-80%.

Cost ▸ One more step in the formulation work. Excess compatibilizer will reduce fluidity and increase cost, and it also needs to be balanced with the oil content—too much oil will migrate, which instead weakens the interface.

▸ Path Two · Mechanical Locking Structure

Achieve ▸ Rely on geometric interlocking as a fallback. Create micro-grooves on the mating surfaces (depth 0.15-0.3 mm, width 0.5-1 mm), chamfer the edges (30-45°, depth 0.5-1 mm), and make φ2-4 mm through holes for rivet locking. According to public data (Grade B), the peel force can be increased 2-3 times.

Cost ▸ The molds are complex; stress is concentrated at the holes and undercuts, which are high-risk points for subsequent cracking; the freedom of appearance is also limited.

▸ Path Three · Replace Hard Core Substrate

Once obtained ▸ directly switch to polar hard cores like PA, ABS, PC-ABS, with naturally easy-to-make interfaces, and increase the material temperature window to 190-230°C.

Cost ▸ Then that's not the material for this piece. The hard core no longer uses PP, so the position for the PP substrate on this part is useless. Honestly, this point cannot be glossed over just to make the plan look complete.

When it comes to the interface, soft materials solve half of it, and the hard core and structure solve the other half. Focusing only on adjusting the hardness with the soft material formula is underestimating the problem.

3. How to distinguish the three material routes: PP, SEBS, changing polarity of hard core, TPU/silicone/EPDM boundary

You don't need to argue about which route is better; just look at what the core material is, how much temperature resistance is needed, and how much oil and wear resistance is required.

RouteGet whatCost
PP hard core SEBS-based TPE (containing PP components / graft modified)No primer needed, slip-resistant when wet, oil and sweat resistant, does not freeze or harden at -40℃, recyclableThe low surface energy interface of PP must be resolved first; there is an upper limit to long-term temperature resistance.
PP hard core pure SEBS-based TPE (without PP compatibility)General-purpose, price-friendlyPeeling force is only 0.3-0.8 N/mm, belonging to the pseudo-encapsulation range
Changing polarity of hard core (PA / ABS / PC-ABS) Polar formulation TPEThe interface is naturally easy to make, and the material temperature window is 190-230°CThe core material has been changed, and the cost, moisture absorption, and dimensions follow along.
TPU CoatingOutstanding wear and oil resistancePrimarily based on polar substrates; feels relatively hard, harder at low temperatures
Silicone overmoldingSkin-friendly, good temperature and weather resistanceDoes not chemically bond with PP, requires primer or mechanical structure; high cost
EPDM vulcanized coated rubberGood weather resistance and temperature resistance, low raw material costRelies on vulcanization molding, with a long cycle; does not primarily bond chemically with PP

Here we need to clarify a set of concepts that are easily confused: 'TPE and PP' is not a single material, but a category of materials.

Pure SEBS-based TPE has only weak interaction with PP, with a typical peel strength of 0.3-0.8 N/mm; if a certain proportion of PP resin is pre-added to the SEBS matrix, the PP component and hard-core PP undergo co-crystallization during melting, increasing the peel strength to 2.5-4.0 N/mm; further grafting maleic anhydride onto the molecular chain (grafting rate 0.5%-1.5%) achieves bonding through chemical bonds, reaching 3.5-5.5 N/mm.

The difference lies in 'whether there is a segment co-crystallized with PP', not in how soft it is. Many customers bring a material labeled 'for PP only' and ask why it still falls off. The answer is often that this particular material is only made for general compatibility and does not have co-crystallization or grafting.

The three approaches are for division of labor, not substitution: for a soft layer that needs to be extremely wear-resistant, look at TPU; for temperature and weather resistance, consider silicone or EPDM; if you need no primer, wet-state slip resistance, and recyclability, go with SEBS-based TPE over PP. Using modified PP for a hard core and SEBS-based TPE for the soft layer is a relatively smooth combination in terms of cost and process, provided that the interface issue is resolved first.

Dare to challenge a common practice: when the feel is rough, people add lubricants to the soft material (like erucamide or oleamide). This is wrong, and the mistake is very subtle. These additives continuously migrate to the surface, forming a separating layer at the bonding interface, which exactly destroys the interfacial strength. The slight slipperiness you add to improve the feel is actually the starting point of delamination. To improve the feel, what needs to be adjusted is the surface texture and the hardness-thickness combination, not adding migrating additives.

4. ★ Selection Criteria Table: How to Test Nine Items from Interface Separation to Wet Friction Coefficient

The table below is the part of the entire article that should be collected the most, arranged according to the combination of modified PP hard core and soft layer coating. Pay attention to the third column 'Verification Method'—for this component, the most common point of confusion is not 'which indicator to look at,' but 'what to use for measurement, what measurement result counts as passing, and what the appearance of damage looks like to be considered qualified.'

IndicatorThreshold (typical)Verification Method / StandardCommon FailuresCommon solution
180° Peeling Strength (Dry State)≥3.0 N/mm, and the failure mode is tearing of the soft layer itselfGB/T 2790 / ISO 8510-1 / ASTM D903Interface peeling, edge curlingCompatibilizer Substrate Preheating Anchoring Structure
Peel Strength (after damp heat aging)After boiling at 95℃ for 2 hours, the degradation is ≤20%GB/T 2790 Boiling PretreatmentDelayed delaminationLow-migration oil-based High-graft compatibilizer
Peel strength (after hot and cold cycles)No visible bubbling or peeling after cyclingGB/T 2790 -40~85℃ CycleFoaming in the floating fiber area and corner delaminationAvoid floating fibers Replenish polar components
dry friction coefficientμ ≥ 0.8 (more lenient standard ≥ 0.5)ASTM D1894 / GB/T 10006 (specify the friction surface)Can't hold, slipperySurface texture Adjust formula for friction
Friction coefficient in wet condition (hand sweat/water)Attenuation ≤15%, wet state μ still > 0.5Same as above; moistened with artificial sweat or waterSlippery when wetWet anti-slip system
Shore Hardness A40-70 (common for power tool handles: 45-55)GB/T 531.1 / ISO 7619-1, 23±2℃Difficult to exert force or fatigued after holding for a long timeCoordination of hardness and thickness
Compression setCompression ratio 25%, evaluated according to the item standard after 70°C × 22 hGB/T 7759.1 / ISO 815-1 / ASTM D395Soft layer thinning, grip strength decreasingRebound system Thickness allowance
Tear strength≥15 kN/mGB/T 529 / ISO 34-1Split flangeMatching of body strength and hardness
Resistant to sweat and oilThe color difference and mechanical changes after soaking in artificial sweat/lubricating oil are within the thresholdDIN 53160-2 (artificial sweat, pH 6.5); medium soaking 23°C × 24 hSticky, bulging, discoloredLow-migration oil-based medium-resistant formula

Text Version Conclusion: Among the nine items, the three interface items (dry state, after humid heat aging, after thermal cycling) must be considered together; measuring only the dry state is equivalent to not measuring at all. The friction coefficient in the wet state is a safety factor and cannot be replaced with dry state data. Permanent compression deformation is the item most easily overlooked for this part, because it measures whether it can still be held after prolonged use. Treat this table like a medical check-up sheet; if any item is missing, it is not considered qualified.

5. Common Failures and Root Causes: Delamination, slipping, stickiness, bubbling—should we check the interface first or the material first?

The early failures of this part mostly occur at the interface, not in the soft material itself.

Failure 1: Delamination Delay — At first, it looks stuck together, but after a week to a month, the whole piece comes apart. The root cause is usually one of three things: too much oil in the soft material, with small molecule oil migrating to the interface and forming a separating film; residual mold release agent on the hard core surface, sweat, or migration layer of antioxidants; or false overmolding, initially held together by mechanical fit, which separates once the oil film forms. First check the cleanliness and storage of the bonded surface, then check the formulation — if you do it in the reverse order, you'll waste a few rounds of testing.

Failure Two: Slipping with wet hands. Complaints of this type are most easily attributed to "too high hardness," but this is often not the case. According to publicly available data (B level), the coefficient of friction in a dry state generally needs to be above 0.5 (high-quality formulations can reach 0.8). The real criterion is the decay rate after contact with water or sweat—maintaining it within 15% is considered stable. Formulations that perform well when dry but poorly when wet do exist, so it is necessary to test separately under both dry and wet conditions.

Failure 3: The soft layer becomes thin, hard, and shiny over a long period of compression. The root cause is insufficient permanent deformation under compression, tested according to GB/T 7759.1 (compression rate 25%, 70°C × 22 h). One intuition to correct: improving this relies on the resilience system and the reserved thickness of the soft layer, not by lowering the hardness—formulas with low hardness but poor resilience will still collapse after a few months.

Failure Four: Bubbling and peeling in exposed fiberglass areas. When the hard core is PP with fiberglass, the exposed fiberglass at the bonding interface can weaken adhesion, and the shrinkage differences from thermal cycling add internal stress in the same area—therefore, the bonding interface should be arranged where there are no floating fibers.

6. Verification sequence: Why is interface debonding done three times, and why is it performed before the friction coefficient

Almost no one in the industry writes this part, but the money for this piece is all spent on it. If the order is wrong, the costs will all come out at the final step.

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① Interface Delamination (Dry State) 180° peeling, check strength Failure mode

↓ Less than 3 N/mm or interface separation → Return, do not proceed further for now

② Interface delamination (after damp heat aging) Boil at 95℃ for 2 hours before testing again

↓ Attenuation >20% → Return to check oil filling amount and grafting rate

③ Interface delamination (after hot and cold cycling) - Measure again after cycling from -40 to 85℃

↓ Bubbling / Peeling → Return to check floating fibers and shrinkage difference

④ Coefficient of friction (dry and wet states) Dry state μ, wet state decay rate

↓ Wet state degradation >15% or wet state μ <0.5 → return to modify the surface system

⑤ Compressive permanent deformation and thickness retention: 25% compression, 70°C × 22 h

↓ Exceed Threshold → Return to Correct Rebound System

⑥ Resistance to hand sweat and oil Retested after soaking in artificial sweat and machine oil

↓ Sticky / Bubbling / Discoloration → Return and replace with low migration oil system

⑦ Drop and Complete Machine Assembly No delamination after 1.5 m drop, no interference in assembly

⑧ Grip experience Re-evaluation after aging

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Why does the interface need to be done three times, and why must it come before the friction coefficient? Because the interface is the threshold of "whether it can be used," while the friction coefficient is the threshold of "whether it is good to use." If the interface fails, all subsequent tests are useless—no matter how good the feel is, if the parts delaminate in the customer's hands, they will be returned. The third time (after thermal cycling) is the easiest to skip: the shrinkage difference between the hard core and soft layer of modified PP will accumulate stress at the corners, which cannot be detected at room temperature, but will appear after a few cycles.

7. Reverse honesty: When these four conditions appear simultaneously, the places being held should not use PP base wrapping

Earlier we talked about 'how to do it'; here we talk about 'when not to do it.' This section has the highest value for selection and judgment.

The situation that occurredWhy PP base coating is not suitableWhich way should I go?
Requires long-term exposure above 80℃The SEBS soft layer and PP hard core are both close to the temperature tolerance limit, causing faster oil migration and quicker interface degradation.Change to polar hard core corresponding to heat-resistant formulation, or use silicone/EPDM vulcanization system
Requires extremely high wear resistanceSEBS-based TPE does not have strong wear resistance; after long-term abrasion, the surface will first lose its gloss and then become fuzzy.Take the TPU coating route
The interface must absolutely not slip (such as safe hand-hold positions for high-altitude work or live electrical work)Adhesion is a probabilistic event and cannot be used as a safety redundancy.It is necessary to use mechanical locks or edge riveting, or return to the structural scheme (overall soft core with hard inserts).
The soft layer is extremely thin (<1 mm) while also requiring high adhesionThe melt does not have enough time to fully diffuse, the cohesive strength is insufficient, and the peel curve is unstableChange to a polar hard core; polar formulation; or switch to two-color injection molding (directly encapsulate the hard plastic before it cools)

The pattern is consistent: whenever there are 'two conflicting requirements at the same time,' it indicates that PP basic encapsulation should not be used for this part. In such cases, our approach is to first clarify this point, and then discuss whether there is room for compromise—orders that are forcibly accepted will ultimately have to be reworked and returned for compensation.

8. What needs to be moved when changing materials: The material change list for overmolded parts is twice as long as that for single-material parts.

For replacing the encapsulated parts, it's not just one part being moved, but two sets of materials plus one interface. It's recommended to go through this table first.

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Mold and structureWhether to make micro-grooves, undercuts, or through holes at the mating surface; the position should avoid weld linesRelying solely on bonding for coverage makes long-term reliability uncontrollable
Core shrinkage rateThe difference between core shrinkage and outer layer shrinkage determines the internal stress at corners and edgesCorner peeling, edge lifting
Substrate Pretreatment and Storage AgingThe bonding surface must be free of release agent, oil, and hand sweat; the shorter the interval between demolding and secondary encapsulation, the better.Interface layer, cannot stick
Material Temperature and Mold TemperatureHard core material barrel: 180-220℃, mold temperature: 30-50℃; soft material melt temperature is 15-25℃ higher than the PP melting point, and should not exceed 210℃Damage to the soft material main chain, interface yellowing and blistering
Substrate PreheatingPreheat to 60-80°C; after closing the mold, the surface temperature of the hard core is higher and more stable before injectionThe melt solidifies as soon as it touches the cold hard core, and the diffusion layer is only a few nanometers thick.
Drying and VentingDetermined according to the specific system; soft material systems are sensitive to moisture and ventingSilver threads, bubbles, interface defects
Color differenceBranded parts must confirm the color swatch before productionBatch color difference dispute
Verification orderInterface delamination three times → friction coefficient → compression set → sweat and oil resistance → drop assemblyAll the risks are concentrated to explode at the final step

9. One-page report comparison table: How to set the direction of an integrated soft and hard component in one go

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Conventional manual tool handles (screwdrivers, wrenches)PP hard-core SEBS-based TPE (contains PP components)Peel ≥3 N/mm and body tear; dry state μ ≥0.8GB/T 2790; ASTM D1894Hard core grade, whether it is in long-term skin contact
Electric tool handle (with vibration and heating)PP hard-core grafted SEBS-based TPE, hardness A45-55Wet-state μ attenuation ≤15%; temperature resistance -40~90℃Friction coefficient in dry and wet states; 80°C/24 hOperating temperature of the airframe for long durations, regulatory requirements
Workshop handles (often covered with machine oil and cutting fluid)Oil-resistant system, TPV or TPU if necessarySwelling and strength changes after medium immersion23℃ × 24 h oil immersion Delamination retestType of medium and duration of contact
Long-term skin contact / children or utensil handlesLow migration oil-based compliant formulationColor fastness and migration of artificial sweatDIN 53160-2; food contact according to GB 4806Target Market and Sampling Standards
Safe hand grip position (high altitude, live electricity)Do not rely on bonding; use mechanical locks or modify the structureStructural redundancyIs it on the safe load-bearing path?

Text version conclusion: The purpose of this table is to allow technicians to report conclusions directly. There is only one criterion for judgment—whether the customer can use this table to determine the direction of the materials in a single meeting.

10. The part that is most prone to problems on this item is often not the flexible material.

Public issues. The most common early failures of this type of part are delayed delamination and slipping when handled with wet hands, and the proportion caused by the soft material itself is not high. Delamination mostly occurs in three areas: excessive oil filling leading to oil migration, release agent or hand sweat residue on the bonding surface, and pseudo overmolding that relies solely on mechanical interlocking.

Public criteria. The interface is tested according to GB/T 2790 (180° peel), with a threshold ≥3 N/mm and a failure mode of substrate tearing of the soft layer; permanent compression deformation is tested according to GB/T 7759.1 (compression ratio 25%, 70°C × 22 h); sweat resistance is tested according to DIN 53160-2 using artificial sweat for color fastness; the coefficient of friction is measured separately for dry and wet states, with wet state attenuation ≤15%.

Industry-standard solutions. For hard cores, preferentially choose copolymer PP rather than homopolymer (homopolymer has higher crystallinity and lower surface energy); for soft materials, use SEBS-based material combined with PP-g-MAH or SEBS-g-MAH as a transition layer; avoid floating fibers at the bonding interface, and create micro-grooves and undercuts; preheat the substrate and control the interval from demolding to overmolding.

What we commonly supply. Ningbo Kolon New Materials Co., Ltd. commonly supplies in this area are impact-resistant copolymer-oriented modified polypropylene (PP) particles. According to the soft layer system used and the part's shrinkage requirements, we provide the corresponding substrate grades and filling schemes, mainly to address the two issues mentioned above: 'poor interface adhesion and easy peeling at corners.' The formulation is adjusted according to the operating conditions of the part and can be used to make small sample comparisons and mold trials. We can also meet the needs of part-level customers for multiple varieties in small batches.

Frequently Asked Questions

Question: If the hardness of the soft material is reduced, will the feel be better?

Answer: This is the aspect most prone to deviation in this component. Hardness is only one dimension of the feel; the other three dimensions are at least equally important — rebound speed (too fast will cause a 'shock,' too slow will feel 'sinking'), surface friction coefficient (which varies greatly between dry and wet hands), and thickness loss after long-term compression. Focusing only on hardness, the resulting handle is likely to slip when hands are wet. The conventional industry range is Shore A40-70, with power tool handles often between A45-55, but that is just a starting point, not the answer.

Question: Is it enough for us to make just one sample for peel strength?

Answer: Not enough. It needs to be tested three times—after dry conditions, after damp heat aging, and after thermal cycling, and the failure mode must be examined each time. There is also a very low-cost self-check method: during a tear test on the coated parts, if tearing brings out fibers from the hard core, or breaks within the soft layer itself, it indicates bonding; if it cleanly separates at the interface, it is a false coating or the interface is already contaminated, and even high values are not reliable.

Question: The customer requires long-term skin contact, or even food contact. What should we do?

Answer: There are two approaches. For long-term skin contact, check the color fastness to artificial sweat (DIN 53160-2) and the limit requirements for polycyclic aromatic hydrocarbons, using low-migration oil-based materials; for food contact, you need to choose food-grade SEBS and food-grade white oil, and conduct migration testing according to the target market. These two things need to be clarified when selecting the formulation, and you can't add the report after molding.

Q: The hard core is PP with glass fiber, but the rubber coating keeps bubbling and peeling. Is it a material problem?

Answer: Don’t change the material yet. First, check three places — whether there are floating fibers on the joint surface, whether there is leftover mold release agent or hand sweat, and whether the interval between demolding and secondary coating is too long. These three factors have a significantly higher proportion of cases. Problems with the material generally show as consistent detachment across the whole batch; contamination and floating fibers show as localized bubbling first, and the order of checking these two is different.

Operating conditionKey criterionSelf-produced regular supply
Hand tool handlePeeling ≥3 N/mm and substrate tearingImpact Copolymer PP Substrate Orientation Shrinkage Range Matching
Electric tool handleWet friction decay ≤15%; temperature resistance -40~90℃Direction of impact-resistant copolymer filling according to temperature control and shrinkage match
Workshop handle (oily)Strength and swelling after medium immersionProvide the corresponding oil-resistant adaptation direction according to the medium

Eleven, finally say three sentences

The first sentence: the success or failure of overmolded parts does not lie in the soft material, but at the interface. The surface energy of a modified PP hard core is only 29-31 mN/m. If the interface fails, no matter how comfortable the handle is adjusted, it is all in vain.

The second point is that feel cannot be described by hardness alone. Rebound speed, friction coefficients in both dry and wet states, and thickness loss after long-term compression are equally important as hardness; if you only adjust hardness, the handle made may easily slip when wet.

The third sentence: interface delamination must be done three times. It is only considered passed if it passes all three tests: in the dry state, after damp heat aging, and after thermal cycling; testing only in the dry state is equivalent to leaving the risk to the client.

About Us

There are some businesses we don't do.

We don't provide quotes without asking about the purpose.

Selling secondary-grade materials as the main brand will not be done.

I won't do it if it 'promises' to work under any conditions.

Ningbo Cologne New Materials Co., Ltd. produces modified polypropylene (PP) granules, covering homopolymer, random copolymer, and block copolymer base materials, as well as modifications including filled, glass fiber reinforced, toughened, flame-retardant, low odor and low VOC, weather-resistant, and scratch-resistant without coating; it also deals in PP resins from major petrochemical plants, off-spec materials, and bulk materials.

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