运动器材握把用改性PP:PP+SEBS 发泡减震与耐汗怎么选

应用领域 发布时间: 2026-09-15 4196 阅读

Sports equipment handles and protective gear use modified PP foamed with SEBS/TPE. The criterion is not 'how soft it is,' but 'how much impact it can endure and how much it can absorb.' This article breaks down the big impacts on protective gear and the small energy on handles into two failure paths, explains the mechanism of pore collapse, the re-testing for slip resistance after soaking in artificial sweat, the seven criteria and verification sequence, and specifies in which cases this part should not use a PP-based soft layer.

- General Outline: → 'Which Products Can Modified PP Be Used In? Material Map of 88 Items in 10 Major Fields' (PP-A0)

I've been using the handle for two months, and it still feels good, but as soon as my hands get sweaty, it slips, and the more I play, the more I hesitate to put in force.

The knee pads were pretty useful the first time I fell, but after falling two more times, my knees were still bruised — same gear, same spot.

The two people who said these sentences, one makes racket accessories, the other does protective gear contract manufacturing. Putting them in one article is because they point to the same thing:

The soft layer on the moving part is an 'energy-absorbing layer', not a 'comfort layer'. Its criterion is 'how much impact it can absorb after being subjected to how many impacts', not 'how soft it is'.

Hardness only determines the feel when you press down. What determines whether this part can still be used is whether the bubbles are still there and whether it can continue to collapse and absorb energy. Using modified PP as the carrier for this soft layer, the step most likely to go wrong is right here.

1. Six-dimensional breakdown of working conditions: The protective gear experiences few high-impact events, while the handle experiences many low-energy events.

Conclusion first: The first question to ask about these two types of parts is not 'how many degrees soft,' but 'how many times should this soft layer be pressed, and how much force each time?'

▸ Protective gear (knee pads, elbow pads, wrist guards) — high energy per impact, few times: impact tests are designed at the 50 J level, and a season only involves dozens to over a hundred impacts; the criteria are whether the peak energy of a single impact can be leveled off, and how much energy absorption remains after all impacts.

▸ Handles (rackets, cues, bike handle grips) — extremely small energy per use, but very high frequency: each grip involves a force of several hundred newtons, but it is done thousands of times a day and hundreds of hours a year; the criterion is how much thickness, resilience, and anti-slip property remain after long-term cycling.

Looking at the six dimensions together:

DimensionActual operating conditionsRequirements for the materials
TemperatureOutdoor in summer 40-60℃; outdoor in winter -20~-10℃; sweat itself about 37℃Does not become hard and brittle at low temperatures, does not soften at high temperatures, energy absorption is re-tested in both states
LoadProtective gear single major impact (50 J level); handle repeated gripping pressure (hundreds of newtons per time, thousands of times per day)For protective gear, look at peak value flattening and maintenance under repeated impacts; for grips, look at the thickness and rebound after long-term compression.
MediumSweat (salt, lactic acid, urea), sebum, sunscreen and mosquito repellent (containing alcohol and organic solvents), residual chlorineDoes not become sticky, does not blister, does not peel, does not change color, maintains friction when wet
LifespanProtective gear is based on seasons (dozens to over a hundred impacts); grips are based on hours of use (hundreds of hours per year)Energy absorption retention after impact; rebound retention after long-term compression
AppearanceDark soft layers leave marks on light-colored clothing; outdoor items turn yellow and chalky after UV exposureStaining grade, color difference after aging
ComplianceLong-term skin contact, protective gear export following EN 1621 system, objective statements on antibacterial properties, odorColorfastness and migration, odor caliber, and antibacterial should be done according to standards

Among the six dimensions, only two are of veto nature: energy absorption retention after impact, and anti-slip retention after sweating. Problems in the other dimensions at most affect the experience or require rework; these two, one concerns whether the protective gear can still protect, and the other concerns whether the grip will slip out of the hand.

An insider detail: For foam soft layer samples, compression set tests generally cannot be carried out within 72 hours after production. Before testing, the samples also need to be conditioned for more than 16 hours (GB/T 6669-2008 / ISO 1856 have this guideline). If measured immediately after production, the gas in the pores and residual stresses are not yet stabilized, so the compression deformation is often measured as smaller — the 'material looks better' is often just because it was measured too early.

2. Why soft layers become 'less effective the more you use them': Pore collapse is irreversible

Conclusion first: energy absorption relies on the collapse of pores, and this collapse is irreversible. The turning point for this part is not 'how soft it is,' but 'how quickly it collapses'.

According to publicly available information (Class B), the compression curve of foam materials is divided into three segments: the first 5%-10% is elastic, like compressing a spring; as compression continues, the cell walls buckle and collapse in a controlled manner. This segment is called the 'plateau region,' which is the truly energy-absorbing part; only when the pores are almost completely collapsed does the material suddenly become hard. Energy absorption relies on the plateau region, and the length of this plateau region determines how many times this soft layer can endure.

Even though they both take a hit, the protective gear and the grip follow different paths:

▸ High-impact mode of protective gear: the energy per hit is high, and the foam cells are compressed deeply in a single deformation. The failure mode is that the entire layer of foam cells collapses at once or is locally crushed—visually it just looks like 'a flattened section,' but in reality, this section has already lost its energy-absorbing capacity.

▸ Small energy repeated-use mode of the handle: Each compression is very shallow, but it happens several thousand times a day, and it is soaked in sweat and sebum for a long time. The failure pattern is gradual fatigue of the pores: first the rebound slows down, then the thickness cannot be maintained, and finally the surface becomes shiny and hard, with reduced slip resistance. The appearance is still fine, but the feel of the grip has already changed.

Protective gear experiences 'one heavy hit,' while the handle experiences 'light hits every day.' The former is afraid of the pores collapsing all at once, while the latter is afraid of the pores slowly fatiguing. Even with the same material, the part that fails first differs on the two paths.

Let me clarify a mechanism that is easy to confuse. Both are foams: the polypropylene foam walls are semi-crystalline, so they can rebound after being compressed and buckled; the polystyrene foam walls are amorphous, so a single major impact will cause them to fracture and collapse irreversibly (Class B, public technical data) — which is why the PP-based soft layer is originally intended to 'withstand multiple hits.' But to be honest: 'withstand multiple hits' does not mean 'unlimited times.' According to public data, foamed polypropylene with a density of 30 kg/m³ can absorb 8-15 kJ/m³ in a single impact and can endure dozens to hundreds of impacts; after 50% compression, the rebound can exceed 95%, but after preloading, it takes about 14 days for performance to gradually recover (Class B). The 'wait 14 days' is crucial — the rebound comes slowly, and if used continuously, the performance cannot recover in time.

There is another unavoidable exchange: rebound speed. If the rebound is too fast, the energy is pushed back before it is absorbed, causing 'shaky hands' for your hands and 'feeling off-balance' for your body; if the rebound is too slow, it won't return after being pressed down, which is called 'sagging'. Damping and rebound are a pair of opposing forces; they are not two parameters that can both be maximized at the same time.

3. How to classify material routes: PP-SEBS blend foaming, PP-TPE, and several adjacent boundary routes

Let's start with the conclusion: This matter is not about arguing 'which is better'; it only depends on which hard material the soft layer is on, how much pressure it will endure, and how long it will soak.

RouteGet whatCostCommon placements
PP SEBS blend foamingLow density, good resilience, can be repeatedly compressed, recyclableAfter long-term compression, rebound will decrease; oil-filled systems are sensitive to solvents.Soft grip layer, light protective gear
PP TPE (SEBS-based) FoamingNo primer required, good wet slip resistance, does not harden at -40°CIt only has a weak effect with PP hard core, and both long-term compression and the interface are weak.Secondary injection molded soft layer, close-fitting parts
PP TPE (SEBS PP-based) foamingPP components co-crystallize with the hard core, improving both the interface and resilience; the cell walls are reinforced by an additional phase.The formulation window is narrow; adding more PP makes it harder and reduces resilience.Parts that need to adhere well and withstand repeated pressing
SiliconeSkin-friendly, resistant to temperature and weather, outstanding resistance to sweat and oilsDoes not chemically bond with PP, requires primer; high costHigh-end close-fitting soft layer
EPDM vulcanizationGood weather resistance and temperature resistance, good sweat resistanceRelying on vulcanization molding, long cycleLarge-area protective padding
PU foamHigh energy absorption density, wide range of softness and hardnessProne to hydrolysis, easily powdery under long-term exposure to sweatHigh energy-absorbing protective gear lining
GelFits well, distributes pressure wellHeavy and weak in rebound, cannot serve as a structural energy-absorbing layerLocal pressure relief pad

There is a set of concepts that must be clarified: 'PP TPE' is not a single material, it is a type of material; the difference between 'SEBS-based' and 'SEBS PP-based' is whether it can co-crystallize with a hard core. Pure SEBS-based has good rebound and low-temperature performance, but only weak interaction with the hard core; if a certain proportion of PP resin is added beforehand, it will co-crystallize with the hard core during melting, improving both the interface and resistance to repeated compression. Whether the soft layer can stick, and how many times it can recover, branches out from here. (Interface delamination will not be detailed in this article; it has been thoroughly explained in the same series PP-A25.)

The role of modified PP in this part is often as a 'carrier for a soft foamed layer with a hard core' rather than the soft layer itself: the hard core uses impact copolymer PP, the soft layer uses a PP-SEBS or PP-TPE foaming system, and balancing the proportions is meaningful only when compared to a single type of soft material.

4. ★ Selection Criteria Table: Seven indicators, each with verification methods and standard numbers

Let's start with the conclusion: the part of this table that you should pay the most attention to is not the threshold values, but the third column — 'what to test with, how to prepare it, and how much counts as passing'.

IndicatorThreshold Value (Typical)Verification Method / StandardCommon failuresCommon solution
Single Impact Transmission Force (Protective Gear)EN 1621-1:2012: Level 1 Average ≤35 kN, Single impact ≤50 kN (B/C area); Level 2 Average ≤20 kN, Single impact ≤30 kNEN 1621-1:2012: Drop weight 5 kg, energy 50 J, flat striker 40×80 mm, anvil radius 50 mm; each piece is impacted three times in three areasCrushed in the impact zone, local punching failureThickness allowance Peak load shared by hard shell
Energy absorption retention after multiple impactsThe same sample must pass the threshold in all three impacts; it must also pass after wet, high, and low temperature treatments.EN 1621-1:2012 (including wet impact; optional -10℃ × 24 h, 40℃ × 24 h)Pass for the first time, then leak energyImprove compressive permanent deformation performance
Compression set and ball reboundAccording to piece-specific standards, often refer to 50% compression, 70°C × 22 h; rebound matches the designed feel.GB/T 6669-2008 / ISO 1856 (Method A 70°C × 22 h, or Method B 23°C × 72 h; specimen 50 × 50 × 25 mm); GB/T 6670-2008 / ISO 8307 (steel ball φ16 mm, 16.8 g, drop height 500 mm; specimen 100 × 100 × 50 mm)Soft layer thinning, not sticking, rebound attenuation, 'collapse' or 'hand-shock'Rebound system Thickness allowance Oil fill and PP component balance
Slip resistance maintained after sweat soakingDry state μ ≥ 0.8 (loose ≥ 0.5); wet state decay ≤ 15%, still > 0.5 when wetASTM D1894 / GB/T 10006 (must specify the friction surface); first soak in artificial sweat and then retestSweaty hands slipping, losing gripWet anti-slip system Surface texture
Appearance and staining after artificial sweatColor change and staining are generally not lower than grade 3, and close-fitting garments often require grade 3-4 or above.GB/T 3922-2013 (Modified adopting ISO 105-E04:2013): acidic pH 5.5±0.2, alkaline pH 8.0±0.2, 37±2℃ × 4 h, 12.5 kPaSticky, blistered, discolored, leaves marks on light-colored clothingLow-migration oil-based, sweat-resistant formula
Low temperature resistantAfter being stored at -20℃, it does not become hard and brittle, and the rebound slows down noticeably.Refer to the T-condition of EN 1621-1 (-10℃ × 24 h); or retest hardness and impact after storing at low temperature according to the company standardWinter protective gear becomes hard, and the handle gets icy, making it easy to slipUse SEBS-based system (middle block Tg about -60°C)
Odor and AntibacterialOdor ≤ grade 3 (VDA 270 standard); antibacterial according to standard, no efficacy claims madeVDA 270 (Class B, German standard); ISO 22196:2011 / GB/T 31402-2015; Mold resistant ISO 16869 / ASTM G21Stuffy smell, foul odor, moldyLow-odor system, antibacterial agent, and durability verification

Text Version Conclusion: Among the seven items, 'energy absorption retention after multiple impacts' and 'anti-slip retention after sweat soaking' are two veto thresholds, while the rest are supporting items. In addition, both compressive permanent deformation and ball rebound specify sample condition adjustments (GB/T 6669 requires placement and adjustment after production; GB/T 6670 requires adjustment at 23±2℃ for at least 16 hours, and perforated materials need to be pre-compressed twice)—if the moisture conditioning requirements are not followed, two opposite conclusions can be obtained from the same batch of material.

5. Common Failures and Root Causes: Four Phenomena, Should You Check Design First or Material First?

Let's start with the conclusion: The early failure of this component is mostly not about 'whether the material is soft,' but about 'how much space the design leaves for the soft layer.'

Failure 1: It works well for the first few times, but after a few uses, the protective gear can no longer hold up. The root cause usually falls into one of three categories: insufficient thickness allowance in the soft layer, causing the foam cells to be compressed down to the edge of the platform in one go; mismatch between foam cell density and hardness, leading to local collapse first; only one layer of soft material without a hard shell to share the peak load. First, check whether the structure allows space for the soft layer, then check the material.

Failure 2: Slipping due to sweaty hands. These complaints are most easily categorized as 'surface not rough enough.' However, sweat itself is a natural lubricant, and the friction coefficient in a wet state often decreases much more than in a dry state—formulations that are fine when dry but terrible when wet do exist. The criteria must measure dry and wet states separately, and the decline in the wet state must be kept within 15% to be considered stable.

Failure Mode 3: Soft layer becomes sticky, bulges, and discolors. The media in sports scenarios are harsher than tool handles: in addition to sweat, there are sebum, sunscreen, and insect repellent, the latter two containing alcohol and organic solvents. According to public information (Class B), the SEBS system itself absorbs oil and is resistant to aliphatic hydrocarbons, but is not resistant to aromatic hydrocarbons and polar solvents. Under the influence of these media, the first to be affected is the oil-filled system, which manifests as stickiness, bulging, and interface loosening.

Failure Four: Dark soft layers leave marks on light-colored sportswear. This is a very common customer complaint for wearable items, yet it is rarely included in inspection sheets. The criteria are actually well established—staining levels after exposure to artificial sweat: a staining level below grade 3 is usually considered non-compliant, and close-fitting garments often require grade 3-4 or above (according to GB/T 3922-2013 standards). This factor should be considered when choosing colors and formulations.

Dare to challenge a common practice: if protective gear doesn't absorb enough energy, people just make the soft layer thicker or soften the formula. This is wrong, and the mistake is very subtle. Increasing thickness only improves 'how shallow a single compression is,' while also slowing rebound and adding weight and heat; simply making it softer makes the rebound too fast, sending the energy back, making it feel more 'bouncy' when worn. For modified PP making this part, the parameters to adjust are 'pore structure, rebound speed, and hard-shell support,' not the thickness and hardness knobs.

6. Verification sequence: Why energy absorption maintenance must come first

Conclusion first: The money for this piece is spent on the sequence. If the sequence is wrong, the costs will explode at the final step.

`

① Define the scenario and function: Protective gear (high impact, low frequency) / Grip (low energy, high frequency) separate them first

↓ Can't tell which category it belongs to, so the following tests can't be designed

② Energy absorption retention under multiple impacts / multiple compressions According to EN 1621-1 for three impacts; or according to GB/T 6669 for compression permanent deformation

↓ Energy absorption does not meet the standard → Return, first adjust the remaining thickness of the soft layer and the pore ratio

③ Retest after artificial sweat soaking Anti-slip (wet-state μ attenuation) Interface Appearance (staining)

↓ Sticky / Blistering / Color transfer below level 3 → Return and replace with low migration oil-based type

④ Low-temperature performance Retest hardness and impact after being placed at -10℃ or -20℃ for 24 hours

↓ Becomes hard and brittle, rebound significantly slows → revert to replacing SEBS-based system

⑤ UV resistance and migration resistance: Outdoor parts do not chalk or fade; light-colored parts are retested for staining.

⑥ Actual sports scene verification: Real-wear impact testing of protective gear and continuous grip sweating measurement

`

Why must ② come before ③? ② is the threshold of 'whether it can be used,' and ③ is the threshold of 'whether it can be used for a long time.' If the absorption cannot be maintained, even the best sweat formula is useless——if the protective gear fails even once, there is no next step. And ③ must come before ④ because sweat is the item most likely to cause an outright failure: it's not uncommon for a formula to measure well in normal dry conditions but become sticky after soaking in sweat.

7. Reverse Honesty: If these situations occur simultaneously, this piece should not use a PP-based soft layer

Conclusion first: The more a part is 'expected to absorb energy and remain stable,' the less it should rely on a single soft layer for support.

The situation that occurredWhy is the PP-based soft layer not suitableWhich way should I go?
Requires professional-grade high-level impact protection, with sufficient margin left.Single-layer soft layers absorb energy through pore collapse; to get past stricter thresholds, both thickness and density need to increase, bringing weight and stuffiness along with them.Go with a hard shell and high energy-absorbing liner, replace the liner with a high energy-absorbing density system
Requires long-term immersion in sweat and does not allow anti-slip degradationAnti-slip depends on surface texture and formulation; after long-term exposure to sweat, the texture gets filled, and the oil system migrates.Use a polar system resistant to sweat and oil, with the soft layer made as a replaceable part
Requires extremely low density while also needing high energy absorptionLow density means more pores and fewer cell walls; the energy absorption density is related to the low density itself.It is permissible to increase the density, or change to a multi-layer structure (low-density outer layer, high energy-absorbing core).
Temperature resistance requirement: long-term above 80℃Both the SEBS soft layer and the PP hard core are close to the temperature resistance limit, and the migration in the oil-filled system accelerates.Change to a polar hard core with a heat-resistant formula, or go with a silicone / EPDM system

The pattern is consistent: Whenever there is a 'requirement for two opposite directions at the same time,' it indicates that this part should not use modified PP with a soft layer and hard support. In such cases, our approach is to first make this point clear, and then discuss whether there is any room for compromise—the subsequent orders that are hard to handle will ultimately have to be reworked and returned for compensation.

8. What needs to be moved for material replacement: Material replacement list for soft layer components

First, to state the conclusion: when replacing the soft layer component, it's not just one part that moves; it's the four pieces: 'hard core, soft layer, interface, and structure.'

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Mold shrinkage rateThe shrinkage difference between the hard core and the soft layer determines the internal stress at corners and edgesCorner peeling, edge lifting
Soft layer thickness designIs the remaining thickness enough to withstand the compression loss over the entire service life?It won't stick after a few months
Gate, venting, and material temperature mold temperatureThe foam injection window is narrower than ordinary injection molding, and the venting and gate positions are more sensitive.Lack of filler, uneven porosity, density differences, scattered energy absorption
Drying and DemoldingThe oil-filled system is sensitive to moisture and volatile components; foam parts tend to bulge if demolded too early and crack if demolded too late.Silver threads, bubbles, deformation, flaking
Color Difference and Color MigrationDark soft layers need to undergo color adhesion verification before being loaded onto the machine.Leaving marks on light-colored clothes, disputes between batches
Verification orderSet scene → Energy absorption retention → Sweat re-test → Low temperature → UV resistance and migration → Scene verificationAll the risks are concentrated to explode at the final step

9. One-page report comparison table: Decide the direction of the soft layer in one meeting

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Knee pads and elbow pads (mainly for single high-impact events)Impact-copolymer PP hard core PP/SEBS foamed soft layer, paired with hard shell to share the peak loadSingle delivery force meets the standard Maintains after three impactsEN 1621-1:2012 (including wet and low temperature conditions)Target grade, remaining thickness of soft layer
Racket and cue grips (low energy, high frequency)Impact-resistant copolymer PP hard core SEBS-based TPE foamed soft layerCompression set, rebound decay, wet state μ decay ≤15%GB/T 6669 / GB/T 6670 / ASTM D1894Whether it is in contact with the skin for a long time, amount of sweating, cleaning method
Bicycle handlebar grips (outdoor, sweat, sun exposure)PP SEBS blended foam, with weather resistance and UV-resistant systemDoes not chalk after aging, slip resistance does not diminishXenon lamp aging Retested after sweat immersionOutdoor exposure years, whether long-term sun exposure
Fitness equipment handle (high frequency, high sweat)Impact-resistant copolymer PP PP/SEBS foamed, surface textured in wet stateSlip resistance in wet conditions, thickness after long-term compressionASTM D1894 GB/T 6669Types of venue cleaners and frequency of use

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 tends to go wrong the most is often not whether it's soft or not.

Public issues. The most common early failures of such components are 'energy absorption decay after impact' and 'anti-slip decay after sweat,' and the proportion caused by the soft material itself is not high: the former mostly occurs in three areas—insufficient thickness allowance, mismatch between pore density and hardness, and lack of a hard shell to share the peak; the latter starts from surface patterns being filled in and the migration of the oil-filled system.

Public criteria. Impact tested according to EN 1621-1:2012 (5 kg drop hammer, 50 J, each of the three zones impacted once, Level 1 average ≤35 kN / Level 2 ≤20 kN, including wet state and high/low temperatures); long-term compression tested according to GB/T 6669 / ISO 1856; ball rebound tested according to GB/T 6670 / ISO 8307; appearance and staining after sweat tested according to GB/T 3922-2013; coefficient of friction measured separately for dry and wet conditions.

Common solution. For the hard core, prioritize impact-resistant copolymer PP; for the soft layer, select PP-SEBS blend foam or PP-TPE foam based on component division; the protective gear is designed with a 'hard shell-soft layer' structural division, and the handle's surface texture is designed together with wet anti-slip; use low-migration oil-based formulations.

What we usually supply. Ningbo Kolon New Materials Co., Ltd. usually supplies modified polypropylene (PP) pellets with impact-resistant copolymer orientation in this case, providing corresponding base material grades and filling schemes according to the soft layer system and shrinkage requirements, mainly to address the two issues mentioned above: 'energy absorption cannot be maintained' and 'the shrinkage of the soft and hard layers does not match.' The formula can be adjusted according to working conditions and can be used for small sample comparison and mold trials.

Frequently Asked Questions

Question: Are protective gears safer the softer they are?

Answer: No. Softness only determines the feel when pressed down, while energy absorption depends on the platform area left after the foam cells collapse. If it's too soft, rebound is slowed, and pressing down without coming back is a 'collapse'; if it's too springy, the energy is pushed back, resulting in a 'push' when worn.

Question: Can the acceptance form for sports grips and tool handles be used interchangeably?

Answer: No. The focus of a tool handle is on the interface and grip feel (see the same series PP-A25); a sports grip involves two additional aspects—sweat conditions and maintaining slip resistance and thickness after repeated gripping.

Question: If tested with artificial sweat, is it the same as actually wearing it and sweating?

Answer: Not the same, but it is the one that is reproducible. Artificial sweat is divided into acidic and alkaline types (pH 5.5 and 8.0) according to GB/T 3922-2013 (modified adopting ISO 105-E04:2013), 37°C × 4 hours—this test measures 'color and staining'; slip resistance and interface need to be retested after immersion in the medium.

Operating conditionKey criterionSelf-produced regular supply
Protective gear soft layerSingle delivery force Multiple impacts maintainedImpact-resistant copolymer PP substrate orientation Shrinkage adjustment balance
Soft grip layerCompression permanent deformation, wet μ decay ≤15%Provide the corresponding substrate and filler grade according to the soft layer system
Outdoor grip and handle coverDoes not chalk after aging, slip resistance does not diminishImpact copolymer Weather-resistant and UV-resistant orientation

One reminder: when this part has a problem, the most common mistake is to replace the material first. Energy absorption attenuation, anti-slip attenuation, stickiness, leaving marks — each issue has more than one cause. Diagnose first, then replace the material.

Eleven, finally say three sentences

The first sentence: The soft layer of the moving part is the energy-absorbing layer, and the criterion is 'how much impact it can absorb after being hit multiple times,' not 'whether it is soft or not.'

The second sentence: Protective gear and grips are two failure modes. Protective gear is vulnerable to a single severe impact, causing the entire foam layer to collapse; grips are vulnerable to daily light impacts, causing the foam to gradually fatigue.

The third sentence: sweat is the unique threshold of the sports soft layer. After soaking in artificial sweat, re-test anti-slip, interface, and appearance, then do low temperature and UV resistance tests; only testing in the dry state and on the first impact is equivalent to leaving the risk to the customer.

About Us

Let's talk about three things before quoting: where this part will be used, which requirements it must meet, and which ones can be dropped.

Especially the third point. The indicators for modified PP are not additive; they are trade-offs—flame retardancy versus toughness, high flow versus impact resistance, glass fiber versus dimensional stability. Without ranking them, you can't quote a price accurately, nor can you settle on a solid plan.

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.

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