改性PP鞋材共混基体:EVA/POE 的相态与相容性怎么控

应用领域 发布时间: 2026-09-13 2380 阅读

The selection of modified PP for the blended matrix of shoe materials is not difficult because of the formulation table, but rather whether the phase morphology has been achieved. Even with the same formulation, two manufacturers may get different results, and the root cause usually lies not in the materials but in blending and molding. This article thoroughly explains the differences in solubility parameters of PP, EVA, and POE, the criteria for three-phase compatibility, the role of compatibilizers, and the history of screw shear, and also provides a step-by-step verification sequence.

The proportion table has been given to you, just follow it.

This is the most straightforward thing said by a customer who makes shoe soles. The formula was sent over: the PP base material is the same grade, and the amounts of EVA and POE are also similar, but the two suppliers' materials produce two different results—one supplier's support sheet turns white after being bent twice and fails the flex test; the other supplier's passes, and the rebound feel is also correct.

It's not the formulation that's lacking. It's the phase state: the same components, being sheared a certain number of times in the barrel and cooled at a certain temperature, determine how it will ultimately develop.

1. Six-dimensional analysis of operating conditions: The sole component is simultaneously undergoing low temperature, bending, and friction.

The sole is not a single piece; it is an assembly.

DimensionActual working conditions of the shoe sole componentRequirements for the materials
TemperatureThe lower limit is −20 to −30℃ (northern winter, cold storage); the upper limit is 50-60℃ on the ground in summerLow temperature cannot cause brittle fracture; it is a hard wire; high temperature amplifies creep.
LoadBending fatigue (whole shoe flexing counted in tens of thousands) Continuous compression Friction (thousands of contacts per kilometer)Three parallel lines of fold resistance, creep resistance, and wear resistance
MediumSweat (inside and inner side of the plug), rainwater, muddy water, detergentSweat-resistant, water-resistant, detergent-resistant
LifespanSneakers are commonly designed for 300-800 km or 1-2 years; daily shoes are calculated by year.Flex resistance and hardness retention after aging
AppearanceWhite and light-colored base materials are sensitive to yellowing; colored parts are sensitive to batch-to-batch color differencesYellowing resistance and batch-to-batch color difference
ComplianceContact with skin (inner lining, midsole); children's shoes comply with mandatory safety standards; odors are amplified inside a sealed shoe boxSkin contact, odor, restricted substances

Temperature is a dimension that restricts you at both ends: low temperatures amplify bending resistance, while high temperatures amplify compression and creep. So the first question when selecting a part is 'What is the lowest temperature this part will experience, and where will it be under pressure,' not asking about the material grade. Then, sort it according to the part's position, and its classification becomes clear:

[Outsole Insert / Injection Molded Sole] Wear-resistant, non-slip, stiffness ▸ Low cushioning requirements ▸ Belongs to PP-based, rubber, TPR/TPU

[Support shank / Heel stabilizer] Stiffness, fold resistance, creep resistance ▸ Low cushioning requirement ▸ Material: PP-based, TPU, rigid PU

[Toe Cap] Stiffness, wear resistance, fold resistance ▸ Low cushioning demand ▸ Belongs to PP base, TPU

[Midsole Body] Rebound, cushioning, lightweight ▸ High cushioning demand ▸ Based on EVA, POE, PU

Modified PP in footwear materials is not the main component of the midsole; it is the matrix and modified component of the 'non-cushioning areas'.

2. Comparison of Material Routes: Division of Roles Between EVA-Based, POE-Based and PU, TPR, Rubber, EVA-PP Blends

This section only presents the division of labor and does not make any conclusions about 'who is better'.

Route / MaterialsGet whatCost / BoundarySuitable part
EVA-based (including foaming in combination with EPDM/POE)Cushioning, lightweight, mature craftsmanshipDifficult to recover after cross-linking, prone to collapse under long-term compressionMidsole body
POE base (foam mainly with POE or combined use of POE/EVA)Rebound and compressive deformation are better than EVA, good at low temperaturesHigh unit price, low stiffness, narrow processing windowHigh-rebound midsole area, ultra-light midsole
PP Base (Modified PP Blend)High stiffness, wear-resistant, low density, dimensionally stable; recyclability is significantly better than cross-linked EVAPoor cushioning, low-temperature toughness improved by toughening, large shrinkage, thick-walled parts prone to sink marksOutsole insert, support sheet, heel stabilizing sheet, toe cap, injection-molded sole, midsole insert
PUWear-resistant, castable, density adjustableHydrolysis resistance and yellowing resistance have long been shortcomings and are difficult to recycleOutsole, PU midsole
TPR / TPUGood elasticity, injection-moldable, recyclableHigh density, high cost; poor compatibility with PP, encapsulation requires interface treatmentOutsole, midsole patch, rubber-coated parts
Rubber (vulcanized)Most wear-resistant, good folding resistanceHeavy, non-recyclable, high energy consumptionHigh wear-resistant area of the outsole
EVA PP BlendBalances certain cushioning and firmness, with recovery better than cross-linked EVAPoor compatibility and difficult phase control may affect foaming uniformity and rebound.Outsole inserts, mid inserts, lightweight support components

The classification is very simple: if cushioning is the main concern, go with EVA-based or POE-based; if firmness and wear resistance are the main concerns, go with PP-based; if ultimate wear resistance without regard to weight is desired, go with rubber; if appearance and texture are prioritized, go with PU or TPU.

Text version conclusion: EVA/PP blending is a real route, but it is not 'simply adding the advantages of both sides.' What you get is stiffness and cost, and what you pay for is the difficulty of phase control — poor compatibility directly manifests in mechanical dispersion caused by coarse phase regions, as well as fluctuations in foam uniformity and rebound.

3. ★Phase Behavior and Compatibility: Why are PP, EVA, and POE naturally two-phase systems, and how can they be made into a single-phase system?

In one sentence: Thermodynamically, these three materials should not be mixed together; whether they can be used depends on whether you artificially create the interface.

The first criterion is the solubility parameter (Hildebrand scale), whose physical meaning is the square root of the cohesive energy density—the greater the difference between two polymers, the higher the interfacial tension.

MaterialPolarity / StructureSolubility parameter δ ((cal/cm³)^½ caliber)Difference with PPCompatibility Assessment
PP (isotactic homopolymer)Nonpolar, saturated C–C main chain7.4-8.1 (slightly different according to different sources)substrate
PE / POE (Ethylene-Octene)Non-polar, saturated, heavily branchedPE is about 7.98; POE belongs to the same group, δ is close to PEsmallPartially compatible, still two phases
EVA (grades with high VA content)Contains vinyl acetate segments, polarity increases with VA9.1-9.5About 1.0-1.4Thermodynamically more incompatible
PVC (Control)PolarityAbout 9.55BiggerCapacity must be increased

(δ value caliber: Grade A US4713271 patent specification Table I; Grade B published polymer physical property data.)

This table is easily misread as 'POE and PP can mix, EVA and PP cannot mix,' but the second-level criterion immediately rejects it.

Layer 2 · Crystallinity and difference in crystallization temperatures. The melting point of PP is 160-170℃, while the crystallization temperature in the crystallization zone of POE is much lower than that — when the melt cools down, PP crystallizes first and pushes the still-uncrystallized elastomer phase outward. So even if δ differs by only a few hundredths, PP/POE is still a two-phase system. The difference is only this: it is a 'low interfacial tension two-phase' system, where the phase regions can be small and stable; PP/EVA is a 'high interfacial tension two-phase' system, which, without compatibilizers, becomes coarse and dispersed.

Layer 3 · Viscosity Ratio and Shear. When the viscosity ratio of the two phases is close to 1, the dispersed phase is most easily broken by shear; if the difference is too large, it either cannot be broken or aggregates immediately after being broken. The viscosity ratio is determined by the formulation, and the balance between breaking and aggregation is determined by the shear history—this is why the same formulation table can yield two different results on two machines.

Three control routes, each managed in one section.

Route 1 · Compatibilizer. PP-g-MAH, POE-g-MAH, grafted elastomers—reduce interfacial tension, stabilize the phase region, and improve interfacial adhesion. The recommended addition amount in publicly available compatibilizer product information is 2-10 wt%, with common grafting rates of 0.9-1.3 wt% (Grade B); the cost is increased, and excessive amounts may also form a third phase.

Route 2 · Control the compounding process. Screw combination, shear strength, temperature distribution, feeding method, residence time — reducing and homogenizing the phase region size is also the only way to 'change the phase on-site.' The trade-off is that too much shear will cause degradation and chain scission, while too little shear will make the phase region coarse.

Route 3 · Choose a combination of grades with cohesive energy density that are closer to each other. From the source, put the δ difference and viscosity ratio into a favorable range, at the cost of limited selectable grades.

One mnemonic to keep this section in mind: the delta difference determines whether to increase capacity, the viscosity ratio determines whether it can be fractured, and the cooling crystallization sequence determines whether the phase region is stable. If you do only one of the three things, the phase state cannot be achieved.

4. ★The same brand, but two manufacturers produce it differently: the problem is usually not with the material

Conclusion first: For the same grade and the same formulation sheet, the results from two different companies are not the same. The root cause is usually not in the material, but in mixing and molding. Because the die area size is extremely sensitive to shear history.

This link can check:

Screw combination (how to arrange the shear elements) → Shear and tensile strength the melt bears → 'Breakup-aggregation' balance of dispersed phase droplets → Size and distribution of phase regions → Interfacial bonding and stress transfer → Impact, flexural resistance, and resilience of the finished product

On the same production line, any change in feeding method, temperature distribution, or residence time distribution will alter the phase at the outlet. So 'just change the material' often doesn't work in a blending system — what you may be changing is not the material itself, but a set of unknown phase states.

Why does following the ratio table often result in failure? Because the ratio table gives the ingredients, not the state:

Provide ▸ the mass fractions of each component, the grade of the base material, and possibly the fillers and additives

It doesn't specify ▸ from which position each component should be added (feeding order, whether the functional filler needs to be pre-mixed)

Not given ▸ How much the melt is sheared in the barrel (compared to mechanical energy), residence time distribution, and temperature distribution

Did not provide ▸ Cooling and holding conditions (the molding stage decides the final size of the crystalline regions)

The ratio is the composition, and the phase state is the history. With the same composition but different history, you end up with two different materials.

Dare to question a common practice: When encountering 'same formulation, different results,' many people's first reaction is to 'switch to a better PP base material.' This move is often counterproductive in a blend system — when the problem lies in coarse and uneven phase distribution, changing the material only swaps one unknown phase state for another, often making the first batch right and the second batch go back to being wrong. The correct first step is to look at the phase state before deciding whether to adjust the process or the formulation.

An insider detail: to judge whether the phase structure has been achieved, it isn't necessarily required to wait for test reports. The fracture from low-temperature impact is free information—fractures with evenly dispersed phase regions and well-bonded interfaces appear as dull, tough tears; fractures from coarse or aggregated phase regions will show obvious mirror-like areas. For the same formulation, if the fracture shapes from two companies are different, it basically indicates that the phase structures are different.

5. ★Selection Criteria Table: Eight indicators, each with a verification method

Pay attention to the third column 'Verification Method · Standard Number' — the part that most often gets stuck during selection is not 'which indicator to look at', but 'what to measure with, and how much counts as passing'.

IndicatorThreshold Value (Typical)Verification Method · Standard NumberCommon FailuresCommon solution
Hardness (component level)Public patent specification: PP base shoe sole can have a Shore A of 65-75GB/T 3903.4-2017 (outsole hardness); material grade can refer to GB/T 2411 (review before publication)If it's too soft, it can't support; if it's too hard, it won't bend.Adjustment of homopolymer/ copolymer ratio and toughening system
Bending modulus (stiffness)Support plates and head covers are backwards calculated by piece; PP substrate systems commonly have 800-2000 MPa range (typical values, according to TDS)GB/T 9341The support plate is sagging, and the stabilizing plate is deformedMineral-filled reinforcement, or increase the homopolymer ratio
Room temperature fold-resistantAccording to product standards and customer mileage requirements; GB/T 3903.1-2017 is applicable under the conditions of heel height ≤70 mm, sole flexion thickness ≤25 mm, and rigid bending angle ≥45°GB/T 3903.1-2017Cracks and whitening at the bendsToughening Suppressing coarse phase regions Thinning structure
Low-temperature fold resistanceSet the threshold according to the minimum operating temperature (−20~−30°C, foldable after pre-treatment)GB/T 3903.1-2017 (Preprocessing refers to GB/T 3903.7-2019)Brittle fracture in winterToughening system Capacity-increasing agent enhances interfacial bonding
Wear-resistant (DIN abrasion)The volume of wear is determined per piece in consultation with the customer; footwear often also refers to ISO 20344 / GB/T 20991.GB/T 9867-2008 (equivalent to ISO 4649:2002); GB/T 3903.2-2017The sole is worn flat, and the pattern has disappearedChoose a wear-resistant system; public patent specifications indicate that adding a small amount of silicone rubber can reduce wear.
Yellowing resistance and odor (white/light-colored parts)Yellowing resistance is rated according to the customer's color card and gray card; children's shoes are executed according to GB 30585-2014 (odor, formaldehyde ≤20 mg/kg, phthalates ≤0.1%).HG/T 3689-2014 (Method A) GB/T 4841.3-2006 Gray Card; GB 30585-2014 OdorWhite base parts turning yellow, unpleasant odor when opening the packageAntioxidant Weather-resistant Low-odor Low VOC System
Shrinkage and Warpage (Thick-Wall Process)PP shrinkage rate public process specification 0.5%-2.5%, use the upper limit for thick-walled partsGB/T 17037.4 / ISO 294-4Sink marks, internal pores, warpingHold pressure to take 50%-80% of the injection pressure, extend holding time, conformal cooling

Textual conclusion: The applicability of GB/T 3903.1-2017 should be confirmed first—it explicitly does not apply to whole shoes and outsoles with a heel height greater than 70 mm, a thickness greater than 25 mm in flexible areas of the sole, or a rigid bending angle less than 45°. Many thick-soled shoes and thickened middle inserts are not within the scope of this standard at all; using it as a basis for acceptance means the measured values cannot represent the shoe's resistance to bending. GB/T 3903.2-2017 likewise does not apply to natural leather outsoles or raw rubber soles.

6. Common Failures and Root Causes: Four Phenomena, Four Root Causes

Failure 1: Cracks and whitening at the bend. The root causes fall into two categories — interfacial delamination caused by coarse regional areas (material side), and excess thickness or stress concentration at the bend (structural side). Measure the thickness and the bend first, then discuss material replacement.

Failure 2: It breaks with just one fold at low temperatures. The root cause is not that the 'PP is naturally brittle,' but that the size of the toughening phase domains and the interface bonding were not done properly—when the δ difference isn't reduced by the toughening agent, the elastomer phase actually acts as a defect. What can be asserted is this: many people try to solve low-temperature cracking by 'adding more toughening agent,' but the approach is often wrong. As you increase the amount, the domains are more prone to coalesce and grow, which may actually decrease impact resistance instead of increasing it, and stiffness drops first. The correct sequence is to first optimize the interface and domain size, and then consider increasing the amount.

Failure 3: Sink marks on thick-walled parts and internal porosity. The root cause is that PP crystallizes and shrinks quickly, and compensation shrinkage is insufficient in thick areas. Sink marks frequently occur at the base of ribs and where wall thickness changes abruptly; internal porosity is vacuum pores formed due to overly rapid cooling, with standard process references indicating diameters of 0.5-3 mm. The symptomatic approach on the process side: hold pressure at 50%-80% of injection pressure, extend holding time, reduce injection speed in thick-walled areas, and enhance cooling in thick sections. This is a process issue, not a formulation issue.

Failure Four: Yellowing of white parts and batch-to-batch color differences. For yellowing, first check the antioxidant and weather resistance systems, then check for warehouse UV exposure; color differences should be investigated in two steps: first check the batch of color masterbatch, then check the phase state. Changes in phase state can alter the light scattering inside the material, and the same color masterbatch will naturally appear differently under different phase states.

7. Verification order: first the fixed parts and positions, then proceed step by step downward

If the order is wrong, the costs will all come out in the final step.

OrderVerification itemHowever, just the criteria for rejection
① Fixed Parts and PositionsClarify whether it is the outsole insert, support piece, toe cap, heel stabilizing piece, or midsole insertThe location hasn't been determined, and the firmness and cushioning requirements can't be settled → Return for redefinition
② Phase State and Fundamental MechanicsCross-sectional observation Tensile / bending / notched impact / hardness, confirm the mixture as the formulaUneven phase and large mechanical discreteness → revert to the mixing process and capacity expansion system
③ Resistance to bending at normal and low temperaturesAt normal temperature according to GB/T 3903.1-2017 (first confirm it is within its applicable scope); at low temperature, test for fold resistance after pre-treatment at −20~−30℃Cracking, whitening, or brittle fracture → return to toughening system and phase region control
④ Wear resistance and hardnessGB/T 9867-2008, GB/T 3903.2-2017, GB/T 3903.4-2017Excessive wear or hardness deviation → return to substrate specification and wear-resistant system
⑤ Indentations and warpingThick-wall process window: holding pressure, mold temperature, cooling, injection speedWrinkles or warping beyond tolerance → Return to mold and process, not the material
⑥ Resistance to yellowing and odorHG/T 3689-2014 (Method A); children's shoes are tested for odor according to GB 30585-2014Extremely poor → Return the antioxidant weather-resistant system and low-odor system
⑦ Overall Shoe DurabilityActual mileage or fatigue test rig Completion part re-inspectionOn-site failure → Return to ① Reset position and operating conditions

The most common mistake is skipping step ② and going straight to step ③. Comparing fold resistance before the phase state is completed actually measures the temporary conditions of that molding trial, not the performance of this batch of material — this is also a common source of the 'two different conclusions from the same batch of material.'

8. Reverse honesty: In these three situations, the shoe material blended matrix should not be forcibly modified with 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 substrate not suitable?Which way should I go?
Requires high rebound and shock absorption (midsole main body)The shock absorption of the PP-based system relies on pores and the elastic phase, but its rebound and compressive deformation cannot compete with EVA or POE foam systems.Use EVA-based or POE-based foamed midsoles (It is common practice in the industry to use both EVA and POE)
Requires both extremely high resilience and low densityBoth rely on foaming to achieve, while PP has low melt strength and a narrow foaming window.Use POE base or POE/EVA with a foam system
Long-term high-frequency bending, and no hardness drift is allowedPP is a semi-crystalline polymer, and its crystallinity slowly changes with usage time and environmental temperature.Use cross-linked elastomer or rubber systems, or move it to a non-load-bearing location
Requires direct heat bonding with TPU or rubber outsole, encapsulated with rubberPP is non-polar, has low surface energy, and has poor interfacial adhesion with polar TPUGo with the reinforcement or primer route, or switch to having TPR/TPU handle the bonding surface

The pattern is consistent: whenever 'shock absorption is the main requirement' appears, or 'requirements in two opposite directions are needed at the same time,' it indicates that this part should not be forced with a PP base.

9. What to touch when changing materials: a checklist to look at before taking action

Before deciding to try modified PP blends, it is recommended to go through this table first. The customer's real concern is often not performance, but 'do I need to change my current molds and processes'.

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Blending process (if making the blend yourself)Screw combination, feeding sequence (whether the capacity enhancer is premixed), temperature distribution, residence timeThe phase has changed, and two pieces came out from the same mix ratio.
Mold shrinkage rateThe shrinkage rate of the new material differs from the original plan, and thick-walled parts are more sensitive to shrinkage.Dimensions are out of tolerance, assembly does not align
Gate and VentFlow differences in the blend system; venting of thick-walled partsInsufficient filling, weld line position change, air trap burning
Material Temperature and Mold TemperatureThe effect of the processing window on crystallization and phase regionsSurface defects, shrink marks, toughness fluctuations
DryFillers and systems containing recycled material need to be determined according to the systemSilver filaments, internal pores
Pressure Holding and DemoldingShrinkage differences causing sink marks and flashIndentation, warping, ejection marks
Color differencePhase changes will alter the color, and the color-matching piece must be confirmed with the color swatch before being put on the machine.Batch color difference dispute

Changing the material involves four areas: mixing, molds, process, and color difference. The table below is used to report the conclusions directly.

SceneRecommended RouteKey indicatorsVerification standardConditions that need to be confirmed first
Outsole insert / Injection-molded soleModified PP Base Toughening and Wear-Resistant SystemHardness, DIN abrasion, room temperature fold resistanceGB/T 3903.4-2017, GB/T 9867-2008, GB/T 3903.1-2017Wear-resistant threshold, whether it contacts ground oil stains
Support plate / Heel stabilizing plateModified PP Base Mineral Filled ReinforcementBending modulus, creep resistanceGB/T 9341Stiffness requirements, wall thickness
Closed-toeModified PP Matrix Toughening and Interface CompatibilizationLow-temperature bend resistance, hardnessGB/T 3903.1-2017, GB/T 3903.4-2017Minimum operating temperature
White / Light-colored base itemWeather-resistant and anti-yellowing, low-odor systemYellowing resistance, odorHG/T 3689-2014 (Method A), GB 30585-2014Color chart and gray card requirements
PP mixed into the ready-made EVA systemFirst carry out the capacity expansion system and phase verification, then discuss the ratio.Cell size, foam uniformity, resilienceCross-sectional observation Top listCan the existing mixing equipment adjust the screw combination?

Text version conclusion: There is only one criterion for judgment—whether the client can use these two tables to finalize the direction of the materials in a single meeting. If it can't be finalized, it is usually because the inputs for 'number of parts' and 'minimum operating temperature' have not yet been provided.

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

The two most common complaints about outsoles are 'breaking with a single fold in winter' and 'different results from two companies using the same formulation sheet.' In these two types of issues, the proportion caused by the material itself is not high. The criteria for the former are clearly stated: flex resistance is tested according to GB/T 3903.1-2017, wear resistance according to GB/T 3903.2-2017 or GB/T 9867-2008, and GB/T 3903.1-2017 has prerequisites for heel height, thickness and rigidity of bending areas, and bending angle. The latter can basically be explained by the phase state and mixing process—the same formulation sheet only provides the ingredients, not the phase state.

The common industry practice is to set three things together: the substrate grade, the toughening and elastomer system (POE, EVA, or a combination), and interface compatibilization and phase control (amount of compatibilizer, screw configuration, and temperature distribution). The balancing relationship among these three is the real technical challenge for this type of part. The public patent literature also confirms this: PP-based shoe sole materials achieve the target Shore A hardness range by balancing the ratio of homopolymer to soft copolymer, then use a small amount of maleic anhydride-grafted elastomer to modify the interface, and a small amount of silicone rubber to reduce wear. If any one is missing, one of hardness, slip resistance, or wear resistance will be compromised.

Ningbo Kelon New Materials Co., Ltd. commonly supplies modified polypropylene (PP) particles for this kind of part, focusing on toughening and blend modification. The appropriate grade of base material and filler system are provided according to the part, minimum usage temperature, and molding method, mainly addressing the two issues mentioned above: 'different results with the same ratio and low-temperature bending resistance.' The formulation is adjusted according to operating conditions, and the phase state at this level can be confirmed during the small-scale trial through cross-section observation together with mechanical variability. We can also accommodate the needs of part-level customers for multiple varieties and small batches.

Frequently Asked Questions

Q: Why do two manufacturers produce different results using the same formulation sheet? A: The formulation sheet provides the ingredients; phase state is another matter. The size of the phase region is extremely sensitive to shear history—screw configuration, feeding sequence, temperature distribution, residence time, cooling, and holding pressure. If any of these factors differ, the phase state will be different. This is not a problem with the material, and changing the material may not necessarily solve it.

Q: If low-temperature flexural strength can't pass, can we just add more toughening agent? A: The direction is often wrong. Increasing the amount causes the phase regions to combine and grow larger more easily, which may not increase impact strength but rather decrease it, and stiffness may drop first. The correct sequence is to first reduce the size of the interface and phase regions before talking about adding more.

Q: In a PP/EVA blend system, can it achieve both stiffness and resilience? A: You can get a part of it, but at a cost. The solubility parameters of the two differ by more than one unit, so the interface relies on compatibilizers; the PP phase will also occupy the continuous phase space of the system, which may affect foaming uniformity and resilience. This approach is "adding stiffness and recyclability to the EVA system," not "combining the advantages of both sides."

Finally, a few words. First, the ratio is the composition, and the phase state is the history; second, modified PP is not the main component in shoe materials—it belongs in outsole inserts, support pieces, toe caps, heel stabilizing pieces, and midsole inserts.

About Us

The same brand, but two manufacturers produce it differently. Where does the problem lie?

The material is the same, but there are two sets of processes. Drying, mold temperature, screw, gate position—if any one of these is off, you end up with two different parts. Choosing the right material only counts as half the win.

Ningbo Kelon New Materials Co., Ltd. produces modified polypropylene (PP) granules, covering three types of base materials: homopolymer, random copolymer, and impact copolymer, as well as modifications such as filled, glass fiber reinforced, toughened, flame-retardant, low odor/low VOC, weather-resistant, and scratch-resistant without coating. The company also trades in PP resins, off-spec materials, and bulk materials from major petrochemical manufacturers. Formulations are adjustable, and the company can cooperate on sample development, as well as handle small-batch orders of multiple grades.

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