门窗型材共挤用改性PP+ASA:表层和芯层各管什么

应用领域 发布时间: 2026-09-15 1119 阅读

Door and window profiles use co-extruded weather-resistant PP ASA. The key is not 'which material is better,' but rather the UV resistance and appearance of the surface layer, and the rigidity, dimensions, and cost of the core layer. This article explains the co-extruded double-layer structure, three degradation paths, five criteria, validation order, and the risks of material substitution, and also specifies the three situations in which this part should not be supported with modified PP.

- Reference: Trade Edition 'How to Choose Weather-Resistant PP' (PP-M7, from a formulation perspective, this article deliberately does not repeat its main content)

There is a layer of white powder on the surface of the door and window profiles, which comes off when you wipe it with your hand, and the color also becomes lighter—this is the most common type of failure people ask about with modified PP co-extrusion materials.

Don't rush to change the material yet. Take a look to see if the chalking is concentrated on the south-facing side or evenly distributed overall, then ask one more question: Was this part originally designed as co-extruded double layer, or single-layer weather-resistant PP 'forcefully toughened'?—For the same batch of material, the conclusions are completely different in the two cases.

1. Outdoor door and window profiles, single-layer weather-resistant PP cannot withstand three degradation pathways

Outdoor door and window profiles cannot rely solely on a single layer of weather-resistant PP to withstand UV — pure PP will degrade along three paths simultaneously: chalking, fading, and embrittlement. Adding additives can only delay it, not change the direction.

Pure PP profiles used outdoors cannot rely on a single layer of material for weather resistance. It will deteriorate along three paths simultaneously: chalking (surface degradation caused by a white frost), fading (increase in color difference ΔE), and embrittlement (decline in impact strength). Adding UV additives can only delay it, not change the direction.

The conclusion should be stated clearly first: outdoor long-life components achieve weather resistance through 'design', not by 'adding an additive'. The co-extrusion method assigns the entire responsibility for weather resistance to the outer layer.

An expert detail: The tertiary C-H bonds on the PP main chain have lower bond energy, making PP more susceptible to UV-induced hydrogen abstraction and chain scission than PE. Therefore, in the same outdoor environment, PP ages faster than PE structurally—this is not a formulation-level issue but a difference in the base material itself. Using intrinsically weather-resistant ASA for the surface layer is equivalent to compensating for this initial difference in the surface layer.

2. Six-dimensional disassembly of door and window profiles under working conditions: Four dimensions must be given with numbers

For the co-extrusion of door and window profiles, first separate the six dimensions; at least four dimensions need to be specified with concrete numbers before the directions can be determined.

DimensionThe real operating condition of this partRequirements for the materials
TemperatureOutdoors −20°C to 60°C; higher in areas facing south with no shade and exposed to sunlight; temperature cycling −20°C ↔ 60°CNot brittle in low temperatures, not soft when hot, does not deform after repeated cycles
LoadWind pressure, opening and closing fatigue, assembly constraints; long-term wind load and self-weightSufficient rigidity, low creep
MediumRain, ultraviolet, salt spray, window cleanerWeather-resistant Chemical-resistant
LifespanThe typical design life is 10-25 years, classified according to exposure levelsPerformance does not deteriorate after long-term aging
AppearanceColor difference ΔE≤3.0 (after xenon lamp aging), surface without chalkingColor and gloss stability
ComplianceEvaluation can refer to the aging and dimensional standards for building profiles (such as EN 513:2018, GB/T 8814, etc.)Set according to region of use

Among the six dimensions, temperature, lifespan, and appearance are 'hard lines with numbers,' while the medium and load determine how the core layer and interface are matched. Once the six numbers are reported, the route is basically set.

Text-based conclusion: Lifespan is the dimension most easily overlooked. Using the same set of accelerated aging hours to assess decorative strips that are replaced every five years and exterior wall profiles designed to last over twenty years is inherently unreasonable. First, determine the lifespan, then determine the system—this is the first sentence in selecting co-extruded profiles.

3. Three material routes for co-extruded profiles: how to divide the work between the surface layer and the core layer

There are three material routes for this part, and the difference is not about 'which is better,' but about how the surface layer and core layer are divided in their roles.

RouteHow to distinguish between the surface layer and the core layerGet whatThe price paid
Single-layer weather-resistant modified PPThe surface layer and core layer use the same material, with the full amount of UV additives added.Low cost, simple processWeather resistance and rigidity restrict each other; light colors fade easily; limited lifespan
Co-extruded Modified PP ASA (Main Topic of This Article)Surface layer ASA pipe has weather-resistant appearance, core layer PP pipe has rigidity, dimensions, and costClear division of labor, weather resistance and rigidity can be optimized separatelyAn additional co-extrusion die and interface control
Three-layer co-extruded modified PP (PP compatible layer ASA)Add a compatible layer in the middleThe interface is the most stable and can be applied to surface layers with large polarity differencesHighest cost, most complex process

Which one to choose depends on what this part fears most: afraid of fading and embrittlement → the surface layer must be inherently weather-resistant; afraid of cost → the core layer uses filled PP; afraid of delamination → add a compatibilizer layer. The three have a division of labor, not a hierarchy of advantages and disadvantages.

Text version conclusion: The essence of co-extrusion is 'layered responsibility.' The outer layer is dedicated to resisting UV and maintaining appearance, while the core layer is dedicated to providing rigidity, dimensional stability, and cost margin. Putting the responsibilities of both layers onto one is the most common mistake for long-lasting outdoor parts.

Section 4, ★ Co-extruded Door and Window Profile Selection Criteria Table: Five Indicators with Verification Methods

The table below is the one you should most definitely keep from the entire article—five columns listed at once: indicators, thresholds, validation methods, common failures, and standard solutions. The fourth column, 'validation methods,' is the place where you are most likely to get stuck when changing materials.

IndicatorThreshold valueVerification Method · Standard NumberCommon FailuresCommon solution
Surface Color Difference ΔE≤3.0 (after xenon lamp aging)GB/T 16422.2 / ISO 4892-2, duration 1000-2000 hFading, loss of shineSurface layer uses ASA or high weather-resistant PP stabilizer
Powdering gradeNo visible powdering (visual / grayscale)GB/T 16422.2 Evaluation after agingWhite frost on the surface, powder falling offSurface layer with intrinsic weather-resistant system (ASA)
Impact retention after aging≥90% (UV resistance retention rate, Class A, JT/T 1432.1-2022)JT/T 1432.1-2022 (Soil Geogrid Aperture)BrittleCarbon black HALS (dark) / UV absorber HALS (light)
Co-extrusion interface peel strengthNo stratification, peeling force reaches the technical specification thresholdEN 513:2018 Appendix Sampling (Coating / Coextrusion Layer Adhesion, Peel Strength)Layering, interface whiteningCompatible with the same system, add a compatibility layer if necessary
Linearity after temperature cyclingBending / twisting within toleranceMeasured after temperature cycling (−20℃↔60℃, several cycles)Warping, twistingMatching of linear expansion coefficients of surface layer and core layer

Text Version Conclusion: The five items have a step-by-step pass relationship. ΔE and chalking are judged by 'appearance,' impact retention by 'mechanics,' peel strength by 'interface,' and straightness by 'dimensions.' If any level fails, return to that level for correction first, rather than pushing all the way to the final assembly before discovering it.

5. Three common failures of modified PP co-extruded profiles: the root cause lies in the coordination between the surface layer and the core layer

The three most common types of failure of modified PP co-extruded profiles are mostly not due to the material itself, but in the coordination between the surface layer and the core layer.

Failure 1: Surface chalking and fading. The root cause is insufficient weather resistance of single-layer PP and depletion of additives; or the surface layer uses ordinary PP but only includes a UV absorber without adding HALS.

Can we deny a common practice: some people, for the sake of convenience, only use ordinary weather-resistant PP for the surface layer and just add UV absorbers. This is wrong. UV absorbers are responsible for 'blocking,' while HALS are responsible for 'capturing'; adding only one of them cannot fully compensate for the free radical chain reaction—after a few years outdoors, it will still chalk. The surface layer needs intrinsic weather resistance, either using ASA, or using a dual system of carbon black and HALS.

Failure 2: Co-extrusion delamination and whitening at the interface. The root cause is insufficient compatibility between the surface layer and the core layer, or weak interface bonding caused by mismatched temperatures at the co-extrusion die. According to industry public information, due to differences in plasticizing temperature, linear expansion coefficient, and viscosity between the co-extrusion material and the base material, forces tend to accumulate at the interface, which can be easily damaged under low temperatures and external forces.

Failure 3: Profile warping and twisting. The root cause is the different linear expansion coefficients between the surface layer and the core layer, which accumulates internal stress through temperature cycling. The PP core layer is about (4-8)×10⁻⁵/K (GB/T 1036), and the ASA surface layer is about (7-9)×10⁻⁵/°C (public industry data); even a small difference can cause long parts to bend.

Failure Four: Light-colored parts fade quickly. The root cause is that light colors cannot rely on carbon black and can only rely on UV absorbers and HALS, while the pigment itself may discolor before the resin.

6. Verification sequence for modified PP co-extruded profiles: first appearance, then mechanical properties, then interface, then dimensions

The verification sequence determines whether changing materials saves money or wastes money. If the sequence is wrong, the costs will explode all at once in the final step.

OrderTest whatBut just return
① AppearanceColor difference ΔE, chalking grade (after xenon lamp aging)Return to superficial formula
② Mechanical retentionRetention rate of impact strength after agingReturn the weather-resistant system
③ InterfaceCo-extrusion peel strength (refer to material from Annex of EN 513)Return to compatible / co-extrusion process
④ SizeLinearity after temperature cyclingReturn Material Matching / Setting
⑤ Complete assemblyClearance, assembly force, opening and closingGot on the computer last

Every step has clear 'just go back to the previous level' criteria. The most common mistake is skipping steps ① and ② and going straight to ③ — using trial molds to judge material weather resistance, the trial mold conditions are often temporary, and the measured numbers are not representative.

Text version conclusion: The verification order is appearance → mechanics → interface → dimensions → assembly. If appearance and mechanics fail, there is no question of discussing the interface and dimensions, because that indicates the surface weathering direction is fundamentally wrong.

7. Reverse Honesty: Three Situations Where Window and Door Profiles Should Not Use Modified PP Rigid Support

It's more valuable to first clarify the situations where it shouldn't be used rather than how to choose—there are three situations where this part shouldn't be made from modified PP no matter what.

Situation one: Requires A-grade high-gloss mirror finish and long-term maintenance. Modified PP co-extruded surface can achieve high gloss, but long-term mirror-level weather resistance is not its strength. Aluminum alloy profiles or PVC high-gloss profiles should be considered.

Scenario 2: Requires outdoor use for more than 20 years while maintaining bright dark colors. For outdoor bright dark colors lasting more than 20 years, it is difficult to reliably guarantee stability even with an ASA co-extruded surface layer. Usually, aluminum alloy or long-validated specialized architectural profile systems are needed, and the threshold should be written into the technical agreement.

Scenario 3: Required to bear structural loads (such as load-bearing components of full-height windows in high-rise buildings). The creep of modified PP is structural and can only be alleviated through modification. Load-bearing components should use aluminum alloy profiles or glass fiber reinforced structural profiles, as material specialization is more stable than rigid support.

Consistent pattern: Whenever there is a 'requirement for two opposite directions at the same time', it indicates that this piece should not be forcibly made with PP. Forcing the next orders will eventually lead to rework and claims for return.

8. Material Change Risk List: The co-extruder head and interface are the key points

Before deciding to trial modified PP co-extrusion, go through this table first. The client'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?
Mold shrinkage rateThe shrinkage rate of the core layer PP is different from the original plan and is sensitive on long parts.The dimensions are out of tolerance, and the assembly does not fit.
Coextrusion die temperature matchingAre the melt temperature windows of the skin layer and core layer compatible?Weak interface integration, layered
Surface thicknessThe common co-extruded surface thickness is 0.2-0.3 mm (industry media), as specified by the technical agreementToo thin, lacks weather resistance; too thick, high cost
Cooling and shapingIs the cooling rate of the double layer consistent?Warping, internal stress
Interface CompatibilityWhether the surface layer and core layer are of the same system, and whether a compatible layer is neededPeeling, whitening
Color differenceLight-colored parts must confirm the color swatch before being put on the machineBatch color difference dispute
Verification orderAppearance → Mechanics → Interface → Dimensions → AssemblyThe risk erupts at the very last step

Text version conclusion: Changing materials involves three parts: mold, nozzle, and interface, among which the verification order should be discussed first. Skipping small samples and testing the mold directly is equivalent to spending the cost in advance; skipping the interface and going straight to batch production can result in the loss of the entire batch in one layer.

9. One-page report: Comparison table for selecting extruded profiles for doors and windows

The following one-page report allows technicians to directly submit conclusions upward without having to reorganize their language.

SceneRecommended RouteKey indicatorsVerification StandardConditions need to be confirmed first
Dark-colored outdoor door and window profilesCo-extruded modified PP ASA (core layer carbon black HALS)ΔE ≤ 3.0; impact retention ≥ 90%GB/T 16422.2; JT/T 1432.1-2022Exposure level, design life
Light-colored profilesCo-extruded modified PP ASA (UV absorber HALS)Same as above; the pigment does not change color firstSame as aboveColor, color difference threshold
High-rigidity low-cost liningCore layer high-fill / impact-resistant copolymer PPRigidity, shrinkage rateGB/T 1036, GB/T 17037.4Shrinkage rate, assembly clearance
Strict interface requirementsThree-layer co-extrusion compatible layerPeel strength meets the agreementEN 513:2018 Appendix Material SelectionCompatible layer grade, print head

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 problems that occur most easily with door and window profiles often do not lie in the material itself.

In the co-extruded door and window profile industry, there is a very typical type of failure: the material is fine, but the part fails. Public technical information explains it directly — outdoor PP parts degrade along three paths: chalking, fading, and brittleness. Using only UV absorbers is not enough; UV absorbers must be combined with HALS, or the surface layer must be replaced with intrinsically weather-resistant ASA (according to industry public information, ASA provides intrinsic weather resistance through its acrylate rubber phase, without relying on expendable stabilizer packages that will be depleted).

The public criteria are also provided. Xenon lamp aging follows GB/T 16422.2 (corresponding to ISO 4892-2), with a color difference ΔE≤3.0 as an acceptable threshold (referring to the criterion for automotive exterior parts in GB/T 24149.1-2009), with a typical evaluation duration of 1000-2000 hours; for outdoor parts, there are additional criteria—performance should not decrease after 500-1000 hours of UV and heat aging (according to publicly available technical information); for dark-colored parts, carbon black can be used as a quantifiable means, with JT/T 1432.1-2022 specifying a carbon black content ≥2.0% and a UV resistance retention rate ≥90%.

The common industry practice is to assign weather resistance to the outer layer: the outer layer ASA or high-weather-resistance PP handles UV and appearance, while the PP core handles rigidity, dimensions, and cost; having both the outer and core layers in the polyolefin system improves adhesion. If the polarity difference is large and no compatibilizer layer is added, delamination, peeling, and interface whitening will occur. The coefficients of linear expansion also need to match — PP core (4-8)×10⁻⁵/K, ASA outer layer (7-9)×10⁻⁵/°C; even a one-grade difference in temperature cycling can cause bending.

Ningbo Kelong New Materials Co., Ltd. commonly supplies weather-resistant and filled solutions for modified PP co-extrusion in this part: according to the exposure level, the surface layer is provided with a weather-resistant system (ASA co-extrusion or carbon black HALS/UV absorber HALS) and the core layer with a rigidity filler scheme. The formulation is adjusted according to the working conditions of the part, and it can cooperate in joint development for sample trials. Small-batch, multi-grade co-extrusion trial material requests can also be accommodated.

Operating conditionKey criterionCologne regular supply
Co-extruded door and window profile surfaceWeathering Interface (Material taken from EN 513 Appendix)Weather-resistant modified PP ASA co-extrusion orientation, adjusted according to exposure level
Core layer rigidity / DimensionsShrinkage rate, rigidity (GB/T 1036)High-filled / Impact-resistant Copolymer PP Core Layer
Light-colored weather-resistantUV absorbers HALS, pigments do not discolor firstLight-colored weather-resistant system direction

Just a reminder: when something goes wrong, the most common mistake is to change the material first. Powdering, delamination, warping — each of these issues has more than one cause. Identify the cause first, then change the material; if the order is reversed, you can go through several rounds of material changes and still be in the same place.

Frequently Asked Questions

Question: For co-extruded door and window profiles, does the surface layer have to use ASA?

Answer: Not necessarily. Dark/black parts can use carbon black HALS weather-resistant PP for the outer layer; for light-colored parts, because carbon black cannot be used, it is more common to use ASA or UV absorber HALS. Division of labor is the key: the outer layer handles weather resistance and appearance, while the core layer handles rigidity, dimensions, and cost.

Question: How does co-extrusion delamination occur, and can it be detected in advance?

Answer: Most of the issues come from insufficient compatibility between the outer layer and the core layer, or weak interface bonding caused by mismatched temperatures at the co-extrusion head. You can refer to the material selection in Appendix of EN 513:2018 to perform interface peel/adhesion evaluation. It is better to make a small sample and check the interface before mold trials, which can save a lot compared to scrapping the entire batch after production.

Question: Why do light-colored profiles fade faster than dark-colored ones?

Answer: Dark colors can rely on carbon black as a quantifiable handle for weather resistance (JT/T 1432.1-2022 caliber carbon black ≥2.0%, UV resistance retention ≥90%), whereas light colors do not have this layer of protection and can only rely on UV absorbers and HALS, and the pigment itself may discolor first. Therefore, the verification scheme for light-colored parts cannot simply copy that of dark-colored parts.

Question: After temperature cycling, the profile bent. Is it a material problem?

Answer: Not necessarily. The linear expansion coefficients of the surface layer and the core layer are different (PP about 4-8×10⁻⁵/K, ASA about 7-9×10⁻⁵/°C), and temperature cycling can accumulate internal stress, causing bending and twisting. First, measure the straightness after temperature cycling, and then determine whether it is a material compatibility issue or a mold/setting issue.

About Us

After sending out the sample, we usually ask one more question: 'How do you plan to test it?'

Because the testing method is incorrect, even good material can yield bad results. This is especially true for modified PP co-extrusion materials—any factor such as surface layer thickness, die temperature matching, or interface compatibility, if not properly addressed, can lead to biased conclusions.

Ningbo Kolon New Materials Co., Ltd. produces modified polypropylene (PP) granules, covering three types of base materials: homopolymer, random copolymer, and impact copolymer, as well as various modification directions such as filled, glass fiber reinforced, toughened, flame retardant, low odor and low VOC, weather-resistant, and scratch-resistant without painting; formulation can be adjusted according to specific working conditions, supporting sample testing and co-development, and able to meet small-batch, multiple-grade requirements.

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