# 透明TPE怎么选?透光率雾度先看再做对比

塑料知识科普 发布时间: 2026-09-12 2698 阅读

Transparent shell material turns hazy, the customer returns it directly for remaking, and the color difference needs to be re-measured. Transparent TPE is about optical calculations, not just looking transparent.

Conclusion first: Transparency is an 'optical accounting,' not 'looking see-through'.

Transparent TPE, used in transparent sheaths, transparent seals, transparent toys, and medical observation windows — **Conclusion in one sentence: The 'transparency' of transparent TPE is calculated based on two numbers: light transmittance and haze.

It's not enough for it to just 'look transparent' to the naked eye.

**

The processing window for transparent materials is narrow: the material temperature and mold temperature ranges are narrower than those for ordinary materials — if the temperature is too high, it turns yellow; if too low, it becomes foggy.

So the process parameters for transparent TPE need to be fixed and written into the process card, and every time the machine is started, the windows should be aligned. If the process is unstable, transparency is just mysterious.

On the process card, the material temperature and mold temperature are fixed; when starting the machine, follow the card precisely.

Color matching must pass the refractive index test: different systems have different refractive indices, and if the mixtures or color masterbatches do not match, the light transmittance will drop—so transparent materials need to be 'color matched within the same system'.

The refractive indices of the color masterbatch and the substrate need to match.

Refractive index matching is the core task of transparent coloring. If you use a different colorant, the refractive index may no longer match.

Many transparent parts failed, turning into 'sample is clear, mass production is hazy' — transparency is a matter of both formula purity and processing window, not just because the grade name includes 'transparent'.

Why TPE: The three transparent thresholds

Threshold One · Light Transmittance: The proportion of light passing through the material—highly transparent parts should be 85%, ordinary transparent parts 70%. If the light transmittance is insufficient, the product quality grade will drop directly.

Light transmittance varies with wall thickness: for the same grade, the thicker it is, the lower the light transmittance — the difference in transmittance between 3mm and 1mm can be several points. Therefore, inspection of transparent parts should be measured according to the 'actual wall thickness,' and you shouldn’t use thin sheet data for thick parts.

Threshold Two · Haze: Blur caused by light scattering—the lower the haze, the more transparent it is. High transparency parts should have low haze; whitening and fogging indicate that the haze exceeds the standard.

The haze value should match the tactile sensation: ≤2% feels almost as transparent as glass, 2%-5% has a slight haziness, and above 5% it becomes 'blurry'. High-end transparent packaging and medical observation windows are controlled at ≤2%, while ordinary transparent parts are acceptable within 5%.

Fogging is linked to precipitation: when oil precipitates or additives precipitate, the surface fogs up—precipitation problems in transparent parts are ten times more pronounced than in ordinary parts.

Therefore, transparent materials need to specifically undergo the 'haze after high-temperature aging' test, and they are only considered stable if they do not become hazy after aging.

Threshold Three · Natural Color: The color of the material itself—yellowing and graying are the Achilles' heel of transparent components. The purity of the formula and the stability of the system determine the natural color.

Natural color requires batch control: the natural color of transparent materials (slightly yellow/blue/gray) is determined by the base material and stabilizers—different batches of natural color will drift, making the products appear inconsistent.

Therefore, transparent materials need 'original color batch control,' and the color difference ΔE should be recorded in the acceptance inspection.

Yellowing expressed using YI: After aging, the change in the yellowing index is a key parameter for transparent parts — when YI rises from 2 to 8, yellowing can be seen with the naked eye.

If you need data, just ask 'how much does YI change after aging?' Numbers are more reliable than the naked eye. When the yellowing index rises, customers can see it with their own eyes on the spot; it can't be hidden.

Problems occur as soon as the processing temperature deviates: if the temperature is too low, plasticization is poor and hazing occurs; if the temperature is too high, degradation and yellowing happen — the process window for transparent materials must be narrow and precise, and high equipment stability is required.

To make transparent parts, both equipment and management need to be upgraded to the next level.

Tech Tip: When selecting transparent TPE, first consider the values of light transmittance and haze before discussing anything else—optical data doesn't lie.

Optical parametersHigh transparencyOrdinary transparent
Light transmittance85%70%
Fog densityLowMedium-low
Yellowness indexLowmiddle

Transparent conditions: light transmittance, haze, yellowing, scratch resistance

Operating condition itemWhy askAffect what
What itemCasing/Sealing/Toys/MedicalTransparency Level
Light transmittanceWhat is the target light transmittance?Grade of brand
Fog densityWhat is the maximum fog density?Formula Purity
What environmentUV/High Temperature/Contact MediumNatural color retention

Comparison Table: System Selection for Transparent TPE

systemLight transmittanceFog densityExplanation
SEBS baseTallLowTransparent main force
TPVmiddlemiddleTranslucent
TPU (thermoplastic polyurethane)Medium-highMedium-lowCan be made transparent
Gel TPEmiddlemiddlePrimarily ultra-soft

In transparent applications, SEBS is the main choice—balancing light transmittance, haze, and cost; TPV and TPU are considered based on specific requirements.

Fogging, yellowing, crystal spots: Explaining the three transparency issues at once

Pit 1 · Sample is transparent, mass production fogs: processing window not controlled — material temperature, mold temperature, drying, if any of these are off, fogging occurs. Avoidance: write the process window into the process card, verify with small batches.

Pitfall Two · Yellowing: Transparent parts yellow, which is ten times more noticeable than opaque parts — anti-oxidation systems and UV stabilization systems need to be specially formulated. Avoidance: Data on light transmittance after aging is required.

Antioxidants should be of the low-discoloration type: ordinary antioxidants discolor at high temperatures, causing transparent parts to turn yellow—so for transparent materials, it is necessary to ensure a 'low yellowing antioxidant system,' as the formulation ratio determines the quality limit.

Low yellowing antioxidant system is the standard setup for transparent materials.

Only uniform wall thickness is transparent: Transparent parts with uniform wall thickness transmit light evenly; those with large differences in thickness have uneven brightness between thin and thick areas, making them look non-transparent.

Therefore, the design of transparent parts should prioritize 'uniform wall thickness' to avoid large differences. Wall thickness design is an invisible quality score for transparent parts.

Pitfall Three · Only looking at light transmittance and ignoring haze: high light transmittance but also high haze still looks 'blurry' — both numbers must be considered together; neither can be ignored. Avoidance: include both light transmittance and haze as acceptance criteria.

Three accounts for the arrival of transparent materials, light transmittance must be tested

Transparent materials are valuable for purity: They require high purity of the substrate and are priced higher than ordinary materials—but transparent parts usually sell for a "quality premium," with a small proportion of material cost.

For transparent parts, make sure to provide a sufficient budget and don't use ordinary material quotes as a basis. Transparent parts sell transparency; material costs cannot be skimped on purity.

Storage must be sealed and moisture-proof: Moisture and high temperatures will reduce light transmittance after processing—transparent materials must be sealed and moisture-proof, and used after reheating. Storage management should be written into SOPs to ensure stable transparency quality.

If the temperature is not properly reset, start the machine and the surface tends to fog up.

Use transparent masterbatch for color matching: ordinary masterbatch blocks light, causing light transmission to drop directly—transparent masterbatch requires higher dispersion and compatibility, so choose those specifically designed for transparent systems.

Proper color matching ensures both the appearance and light transmittance of transparent parts.

Cologne customer case: Matched again due to non-compliant wear resistance, rework rate halved

A modified material application factory in Wuhan had transparent parts that failed wear resistance and had fast surface wear-off. Cologne cooperated to rematch the overmolding substrate and processing temperature, reducing the rework rate by half.

The "transparency and wear-resistant" of transparent parts is a contradictory requirement—matching correctly is the only way to balance these two requirements.

Performs an "optical acceptance" action for transparent parts procurement: each batch is randomly checked for transmittance + haze, and the data is written on the receipt—optical data is the ID card for transparent parts, batch inspection, and every batch is reliable. If no spot checks are made, the fog is only discovered after mass production, so rework is too late.

Light transmittance and haze must be measured according to standard caliber: according to ASTM D1003 and other standards—different standards and thicknesses require different data. When requesting data, align "standard + thickness" together to ensure transparent data can be compared.

Transparent material relies on supplier control: temperature fluctuations and formula changes are all reflected in light transmittance—ask about "batch transmittance fluctuation data for transparent material" when choosing suppliers, and you can immediately see their strength. Transparent materials rely on batch stability. Suppliers with small batch light transmittance fluctuations can have peace of mind for mass production.

Transparent material samples per batch: retest light transmittance after three months—optical performance will drift, so retesting the samples is key to monitoring. The reputation of transparent parts is built bit by bit through batch stability.

Packaging must prevent scratches and stains: transparent parts are prone to scratches and stains—use soft film and spacers for shockproof transport. A scratch on the surface may keep the light transmittance unchanged but ruin the visual impression. Packaging is the final mile of transparent product delivery.

Transparent parts have a wide range of applications: transparent packaging, medical device catheters, eyeglass accessories, lampshades, transparent seals, children's water cups—more extensive than you might think. When selecting a model, first set the "transmittance target + haze limit," then select the system.

Summary

Light transmittance and haze are the ID cards for transparent TPE; check the data before ordering.

Selecting transparent TPE involves three things: "system × purity, × process"—setting the system upper limit, purity setting the original color, and process quantity production, so transparent parts can be cleanly transmitted.

Transparent production requires dedicated machines and materials: transparent materials are extremely sensitive to pollution—machine residues, masterbatch contamination, and environmental dust all cause light transmittance to drop. Machine cleanliness is written into the SOP to prevent contamination. If the machine is cleaned after changing colors, the next batch of transparent parts will be foggy.

Three lines clarify who we are:

Modified performance—modified thermoplastic elastomers, modified nylon (PA6 / PA66 / PA46 / PA11 / PA12 / PA6T / PA9T and nylon alloys), modified PPO / PPS;

Stocked—major chemical giants have nylon resin, sub-brand materials, and bulk materials in stock;

Judge—what parts, what materials to use

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