防水卷材材料用POE与SEBS改性PP怎么过两关

应用领域 发布时间: 2026-09-13 4449 阅读

The main types of waterproofing membranes are asphalt-based and TPO/PVC, with modified PP serving as auxiliary layers for reinforcement, adhesion, and weather-resistant top layers. This article separates winter cracking and hot weld seam opening as two types of failures, clarifies the roles of POE and SEBS, the five criteria and validation order, and explains the three conditions under which modified PP should not be used.

A friend who does roof waterproofing complained to me: 'In the north, in winter, the membrane cracks as soon as it is folded, and two pieces of membrane welded together with heat will develop gaps after a winter.'

These two sentences happen to pinpoint the two most common failures of the auxiliary layer of waterproofing membranes — insufficient low-temperature flexibility, and poor welding at the heat-welded interface. But then he asked, 'Can your modified PP be used as a waterproofing membrane material?' My answer was: It can, but we need to first make it clear that in the entire membrane system, it is an auxiliary layer, not the main player.

The main materials for waterproof membranes are asphalt-based, TPO, and PVC. Modified PP plays a supporting role among them, serving as reinforcement layers, adhesive layers, or carriers for weather-resistant surface layers. Treating a supporting layer as the main waterproof layer is the most common misconception in the industry; honestly clarifying its role is where this article can genuinely help with material selection. Below, we break it down into four layers: working conditions, approach, criteria, and validation.

1. Six-dimensional working condition breakdown: Northern region −30°C bending, summer roof 70°C, one temperature difference line sets the threshold for the auxiliary layer

Conclusion first: Temperature dimension is not a single number, it has two extremes — the low-temperature bend of −20~−30℃ on northern winter nights, and the high temperature of 60-70℃ on exposed roof surfaces in summer; the thresholds for auxiliary layers should follow the main system, and cannot be considered in isolation.

DimensionActual working conditions of the waterproofing membrane auxiliary layerRequirements for the materials
TemperatureIn the northern winter nights, temperatures can reach −20~−30℃ (low-temperature bending conditions for exposed roofs); in summer, the surface of dark-colored exposed roofs can reach 60-70℃ (light-colored TPO reflection can reduce it by about 15℃, according to industry technical document B level); the main TPO according to GB 27789 is taken as −40℃ for low-temperature bending.The auxiliary layer should leave interface allowance at low temperature and softness, and the main body’s hind legs should not be dragged.
LoadRoof inspection walking, soil covering/backfill loads (green roofs, underground projects); non-structural stressToughness and resilience, without requiring rigidity for load-bearing
MediumRainwater, ultraviolet (UV), soil acidity and alkalinity (underground/planting); alkali resistance assessed according to building materialsPolyolefins are inherently resistant to acids and alkalis, and stable systems are UV-resistant
LifespanExposed roofs are usually designed for 10-25 years (Class B)Softness and interface do not collapse after long-term aging
AppearanceLight-colored reflective surfaces take priority; color difference is only meaningful in auxiliary layers of the same color systemReflectance, color chart consistency
ComplianceThe main membrane follows GB 27789 (TPO)/ GB 12952 (PVC); the auxiliary layer follows system coordination and company standards/technical agreements.Priority is given to those with the same system as the main body, weldable, and recyclable

In six-dimensional space, temperature is the primary hard limit and is strongly bound to the main body. The main body's TPO can withstand low-temperature bending at −40°C (according to GB 27789-2011), whereas the auxiliary layer only reaches −15°C, which is equivalent to embedding an earlier crack—the auxiliary layer's threshold being lower than the main body is the most common hidden error in this type of component.

A judgment that competitors cannot copy: TPO sheet base material is essentially a polyolefin system that polymerizes EP (ethylene-propylene) rubber with polypropylene (according to technical documents from multiple companies, grade B), so 'polypropylene polyolefin elastomer' is a compatibility route within the system, not a hard connection across systems — both belong to polyolefins, and the heat-welded interface and recycling logic are both favorable. This is exactly why modified PP is suitable for making TPO auxiliary layers.

2. Comparison of material routes: the division of roles between POE-modified PP, SEBS-modified PP, and TPO main body

Conclusion first: The three approaches have a division of labor—POE-modified PP pipes are flexible and resistant to low temperatures, SEBS-modified PP pipes are softer, more resilient, and weather-resistant, and TPO-based sheets are the main waterproofing layer; this article only presents them side by side without giving a conclusion on 'which is better.'

RouteGet whatCost / Boundary
POE Modified PP (Polyolefin Elastomer Toughened)Excellent toughening at normal temperature and −20~−40℃ low temperature, good compatibility with PP, processing stability, and good aging resistance of saturated structure (according to industry technical documents, Grade B)Modulus and heat resistance decrease with increasing amount; cost is medium to high
SEBS Modified PP (Toughened with Hydrogenated Styrene Block Copolymer)Toughening efficiency and rebound are better, with good weather/UV stability (hydrogenated saturated structure); for the same impact improvement, the amount of SEBS added can be about 50-67% less than POE (according to a Krahn代理 technical document, Class B).Higher cost; heat resistance and rigidity need to be improved; impact performance actually decreases at high additive levels
Division of responsibilities with the TPO entityTPO (PP-EP rubber, can be heat-welded, recyclable, does not contain plasticizers) is the main waterproofing layerModified PP is only used as a carrier for reinforced/adhesive/weather-resistant surface layers and does not replace the main waterproof layer.

The classification is very straightforward: if it needs to be flexible, low-temperature resistant, cost-controllable, and easy to weld with PP → POE route; if it needs to be softer, have better rebound, and more stable weather resistance when exposed → SEBS route or POE-SEBS composite; the waterproof main layer is the domain of TPO/PVC, not something that modified PP should compete for.

What truly determines success or failure is whether there is enough compatibilizer. Polyolefin elastomers rely on maleic anhydride-grafted PP (PP-g-MAH) as a molecular bridge for dispersion, typically 2-8% (according to modified masterbatch technology documents, grade B). If there is too little compatibilizer, the elastomer disperses coarsely, the interface is weak, and low-temperature toughness and weld interfaces fail together—this is the pitfall most easily encountered in the auxiliary layer.

Dare to deny a common practice: some people replace POE with ordinary elastomers (such as SBS, LLDPE) to save costs and toughen the material. This is wrong — the feel at room temperature is similar, but POE provides low-temperature toughening covering −20~−40°C, SBS easily precipitates under temperature differences, LLDPE toughening is limited, and directly adding it to homopolymer PP can lead to delamination (according to toughening agent selection technical documents, grade B). Just because it feels soft at room temperature doesn't mean it can withstand bending at −25°C.

3. ★ Selection Criteria Table: Five indicators, each with a validation method

Conclusion first: The column to focus on in this table is the third one—what often traps you with the flexible auxiliary layer is not 'which indicator to look at' but 'whether the low-temperature bending and welding peel tests represent the interface.' The thresholds labeled 'self-check suggestions' are engineering self-check thresholds determined according to system coordination, not mandatory national standard values; the national standard value is only referenced in the main roll material column as GB 27789.

IndicatorThreshold valueVerification Method · Standard NumberCommon FailuresCommon solution
Low temperature flexibility (low temperature bending)Auxiliary layer synergy threshold −25℃ no cracking on bending (main body TPO at −40℃, according to GB 27789-2011); lower than the main body interfacial allowanceGB/T 328.15-2007 (Polymeric Waterproof Membranes - Low Temperature Flexibility)Winter cracking, brittle cracking at weldsPOE/SEBS toughening PP-g-MAH compatibilizer for dispersion improvement
Softness retention after thermal aging and UV agingAfter aging, it can still withstand low-temperature bending (for example, after thermal aging at 115°C or accelerated artificial climate aging, no cracking occurs at −25°C; for the main TPO single-layer roof according to 2500h type, retention rate ≥90%, according to GB 27789)GB/T 18244 (Test Methods for Aging of Building Waterproof Materials) GB/T 328.15 RetestBrittle and chalky after excipient migrationAmple antioxidant and light-stabilizing system (HALS), following a plasticizer-free approach
Weld interface peel strengthPeel strength of joints after hot welding/hot air welding ≥3.0 N/mm (refer to main TPO threshold, according to GB 27789: P-class internal reinforcement ≥3.0, H/L-class ≥4.0) or failure of the membrane/interfaceGB/T 328.21-2007 (Polymer Waterproof Membrane - Seam Peel Strength)Cold soldering, insufficient soldering, interface delamination and crackingSame polyolefin interface Welding process window Winding tension control
Tensile strength and elongation at breakElongation is key: the auxiliary layer's self-inspection fracture elongation should be ≥200-300% (according to working conditions and coordination with the main body, as an example); tensile strength is secondary.GB/T 328.9-2007 (Polymer Waterproof Membrane Tensile Properties)Only considering tensile strength when selecting materials → fails low-temperature bendingUsing elongation at break and low-temperature bending as criteria
Water-resistant and alkali-resistantRetention rate of tensile and bending properties ≥80-90% after long-term immersion/water alkali immersion (depending on the system, example)Building material water resistance/alkali resistance evaluation (retested after soaking GB/T 328.9 / GB/T 328.15)Hydrolysis and alkaline corrosion lead to brittlenessPolyolefins are inherently resistant to acids and bases, forming a stable system

Text version conclusion: Among the five items, low-temperature bending, weld interface delamination, and flexibility retention after aging are the three doors that should be checked first. The correct criterion for flexible components is elongation at break, not tensile strength—high tensile strength does not equal no breakage at low temperatures, nor does it equal strong welding; if the criterion is chosen incorrectly, all subsequent solutions are wasted.

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

Conclusion first: All four points in this section are invalid. The first two point to incorrectly chosen operating condition thresholds, and the last two point to material selection and system — among them, two are commonly used in the industry but are erroneous practices.

Failure 1: Brittle fracture in winter low temperatures. Doubt it: A common but mistaken practice in the industry is to choose flexible membrane layers based only on tensile strength—high tensile strength looks reassuring for procurement, but whether flexible components break at low temperatures depends on elongation at break and low-temperature bending, not tensile strength. High tensile strength ≠ no breakage. This mistake in waterproof membrane auxiliary layers will directly result in fractures in northern winter.

Failure 2: Cracking at the hot-weld interface (cracks appear after one winter). The root cause is mostly not in the material itself, but due to the welding temperature/time window not being properly controlled, or incompatibility between the auxiliary layer and the main body (non-homopolymer polyolefin system) → insufficient peel strength. For the same weld, if the temperature is too low, it results in cold welding; if too high, it causes over-welding and carbonization, and cracks appear when stressed after one winter.

Failure 3: Feels the same at room temperature, but fails bending at low temperature. Questionable denial: To save costs, POE is replaced with ordinary elastomer toughening (SBS/LLDPE). The softness at room temperature is similar, but at −25°C bending, the POE system passes, while the replacement system fails (POE has excellent low-temperature performance at −20~−40°C; SBS tends to precipitate under temperature differences; LLDPE toughening is limited and adding it directly to homopolymer PP can easily cause delamination, according to toughening agent selection technical document, grade B). The cost saved in the end turns into rework in winter.

Failure four: Became brittle/powdery after aging. The root cause is insufficient antioxidant/UV stabilization, or the use of a system containing plasticizers that migrate out. The TPO main body does not contain plasticizers (according to GB 27789 system characteristics and industry technical documents), and the modified PP auxiliary layer also needs to use a plasticizer-free stabilized system.

5. Verification sequence: first low-temperature bending, and finally overlapping for water testing

Conclusion first: The verification of the auxiliary layer follows a five-step sequence, and the first step is access control—if it fails at low-temperature bending, the rest don't need to be done. If the sequence is wrong, problems will erupt on-site all at once.

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① Low-temperature bending test (access control)

According to GB/T 328.15, the auxiliary layer uses the synergistic threshold (e.g., no cracks at −25℃ bending)

↓ However → Return to the formula (toughening system / compatibilizer ratio)

② Fracture Elongation Verification

According to GB/T 328.9, elongation at break under tensile testing

↓ Elongation not enough → Return ① Adjust toughening system

③ Softness retention after aging

After thermal aging (around 115°C, according to GB/T 18244) and UV aging, re-test low-temperature bending

↓ Cracking after aging → Revert to antioxidant/light stabilization system

④ Welding Interface Delamination Strength

According to GB/T 328.21, measure the seam peel strength after hot air welding / heat welding

↓ Delamination merely → Revert to interface compatibility (PP-g-MAH) and welding process

⑤ Overall Lap Joint Water Test

Lap joint specimen water immersion / impermeability test (GB/T 328.10 type)

↓ Leakage → Return ④ Welding and Rewinding Tension

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Every step has clear 'just go back to the previous level' criteria. The most common mistake is skipping ① and ② and going directly to ④—using the welded sample to judge the material's flexibility. The forming conditions of welded parts are often temporary, so the measurements taken are not representative. The low-temperature bending test must be done before welding because it is the most likely to result in a complete rejection.

Text Version Conclusion: Validation order is low-temperature bending → elongation → aging flexibility → welding peel → lap joint water test. Low-temperature flexibility comes first, determining whether the material can proceed; the welding interface is placed fourth because interface failure should be discussed only after the material is decided.

6. Reverse Honesty: In these three types of working conditions, the modified PP auxiliary layer should not be rigidly connected

Conclusion first: If the surface is exposed for a long time, consistently above 70°C, or needs to bear structural loads—if any of these conditions occur, modified PP auxiliary layers should not be the first choice.

The situation that occurredWhy the modified PP support layer is not suitableWhich way should I go?
Requires long-term exposed roof surface layer (directly subject to UV, wind, and rain)The modified PP auxiliary layer has worse weather and heat resistance than the TPO main surface layer, and the remaining durability under long-term direct sunlight is insufficient.Use TPO/PVC main membrane on the surface, or add a protective layer/coating
Requires a continuous high-temperature environment above 70℃PP has a limited heat deflection temperature, and the modified PP auxiliary layer does not have enough margin for continuous 70℃Switch to a higher heat-resistant system, or add a thermal insulation layer/protective layer
Requires bearing structural loads (load-bearing layer of planted roof, main load from covering soil)Modified PP is a flexible auxiliary layer and does not bear structural loadsThe structure bears force through a specialized reinforcement layer/structural layer, while the auxiliary layer only serves for waterproof coordination.
Requires strong adhesion with different chemical systems (such as direct composite with asphalt-based materials where the interface is incompatible)High risk of inter-system bond interface failureUse a dedicated transition/compatibility layer, or choose materials of the same system

The rule is still the same: if demand goes beyond the coverage of the polyolefin auxiliary layer, it's not a matter of 'switching grades.' First clarify the boundaries, then discuss compromises—hard orders will eventually have to be returned through rework and claims.

7. What needs to be moved when changing materials: a checklist to look at before taking action (sheet/roll processing)

Conclusion first: The auxiliary layer uses sheet/roll processes, and what really needs adjusting is different from injection-molded parts—the four things most easily overlooked are calendering temperature, roll temperature, winding tension, and cooling rate.

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Calendering/Extrusion Sheet TemperatureThe processing window of modified PP elastomer systems is different from that of pure PP; at higher temperatures, the elastomer degrades.Low temperature softness drop, surface defects
Roll temperatureThe temperature of the calender rolls affects the crystallization and surface of the sheet, influencing subsequent hot welding.Weak welding interface, uneven surface
Rewinding tensionUneven tension → sheet internal stress, subsequent welding distortion, uneven lap jointWeld seam opening, overlap misalignment
Cooling rateCooling rate affects crystallinity and dimensional stability, impacting low-temperature flexibilityLow-temperature bending fluctuations, dimensional shrinkage
Interface CompatibilityWhether the main TPO is compatible with polyolefin, and whether the ratio of PP-g-MAH is sufficientInsufficient welding peel strength, delamination
Color differenceColor difference in light-colored surface layers is only meaningful within the same color familyBatch color difference dispute
Verification orderLow-temperature bending → Elongation → Aging flexibility → Weld peeling → Lap joint water testThe risk will erupt once it is fully transferred to the site

Text-based conclusion: Changing materials involves two aspects: sheet processing and interface compatibility, among which the verification sequence should be discussed first. Skipping low-temperature bending and going straight to welding samples is equivalent to spending the cost in advance; skipping welding peel tests and going directly to engineering means that a single seam opening results in reworking the entire sheet.

8. One-page report comparison table: Three types of waterproofing scenarios reported directly

Conclusion first: There is only one criterion to judge whether this table is qualified—whether the technician can use it to determine the direction of the auxiliary layer in one meeting.

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Exposed roof reinforcement/bonding auxiliary layerPOE modified PP (or POE/SEBS composite)Low-temperature bending −25°C no cracks; welding peel ≥3 N/mmGB/T 328.15 / GB/T 328.21Main Membrane Type (TPO/PVC) and Welding Method
Planting/Subsurface Alkali-Resistant Auxiliary LayerSEBS or POE SEBS modified PP (weather-resistant/rebound)Performance retained after alkali soaking; flexibility retained after agingGB/T 328.9 Alkaline Resistance Evaluation GB/T 18244Medium (soil pH/plant roots) and design life
Light-colored weather-resistant surface layer carrierPOE modified PP with sufficient anti-oxidation/UV stabilitySoftness retention after UV agingGB/T 18244 GB/T 328.15Whether exposure and reflection are required
Continuous 70℃ or structural stressModified PP not preferred: TPO/PVC main body or with protective/structural layerClassify according to the corresponding systemEach product standard systemContinuous temperature, load-bearing capability

9. The part that is most likely to have problems is often not the material itself.

In the category of waterproofing membrane auxiliary layers, the three most frequently discussed issues in public materials are: cracking at low temperatures in winter, seam opening at heat-welded interfaces, and brittleness after aging — looking at tensile strength alone cannot screen out those that will crack; verification must be done with 'low temperature, interface, and aging' all together.

The industry-standard solution involves deciding on three things together: choosing a POE or SEBS toughening system (divided according to low-temperature resistance and weather resistance), using a PP-g-MAH compatibilizer to finely disperse the elastomer (typically 2-8%), and using a plasticizer-free anti-oxidation/weather-resistant system. The key is whether the grade of the base material, the toughening system, the compatibilizer ratio, and the welding window can all align simultaneously — TPO itself is a polypropylene-based polyolefin, and only with thermal welding and recycling in auxiliary layers of the same system will it work smoothly.

Ningbo Kolon New Materials Co., Ltd. commonly supplies self-produced modified polypropylene (PP) pellets focusing on POE/SEBS toughening. They provide corresponding substrate grades and compatibilizer ratios according to the low-temperature threshold and welding method of the sheet system, mainly to address the two issues mentioned above: "winter cracking and thermal welding seam opening." The formulation can be adjusted according to the working conditions of each piece and can be used for sample comparison and welding peel testing.

Frequently Asked Questions

Question: Which one should be chosen, POE or SEBS?

Answer: Do not mention specific brands, just talk about verifiable differentiation. For flexibility, low-temperature resistance, controllable cost, and good weldability with PP → POE; for softer feel, better rebound, and more stable exposed weather resistance → SEBS or POE-SEBS composite. The shortcomings are usually in weather resistance and cost structure, not the performance indicators themselves — it's more worthwhile to ask which conditions for POE are already mature and which parts still need small-sample testing, rather than 'which one is better.'

Question: It feels soft at room temperature; does that mean it is flexible enough?

Answer: Not enough. The softness at room temperature does not indicate performance at low temperatures; for flexible parts, you should look at elongation at break and low-temperature bending (GB/T 328.9, GB/T 328.15), not the hand feel or tensile strength.

Question: When welded together with the TPO substrate, how can the interface avoid cracking?

Answer: The interface must be within the same polyolefin system, with a sufficient proportion of compatibilizer. Then, determine the welding process window (temperature, time, cleanliness), and finally test the joint peel strength according to GB/T 328.21. The sequence of these three steps cannot be reversed—if the material is wrong, no matter how well the welding is done, the interface cannot be compensated.

Operating conditionKey criterionCologne regular supply
Exposed roof reinforcement/bonding auxiliary layerLow-temperature bending −25°C no cracks; welding peel ≥3 N/mmPOE modified PP / POE SEBS composite direction
Planting/Subsurface Alkali-Resistant Auxiliary LayerProperties are preserved after alkali immersion; Aging softness is retainedSEBS or POE SEBS modified PP direction
Light-colored weather-resistant surface layer carrierUV softness does not decrease after agingPOE Modified PP antioxidant/light-stabilizing system direction

Just a reminder: when parts have problems, the most common mistake is to change the material first. Winter cracking, weld cracks, aging and brittleness—each has more than one cause. Position first, then change the material; If the order is reversed, you often end up in the same place after several rounds of replacement.

Ten, three final words

First, modified PP is the auxiliary layer in waterproof membranes, not the main character. The main waterproof layer is TPO/PVC, while the auxiliary layer only serves as a reinforcement, bonding, and weather-resistant surface carrier; Treating the auxiliary layer as the main layer is the most common misleading misconception in the industry.

Second, the correct criteria for flexible parts are elongation at break and low-temperature bending, not tensile strength. The threshold is set according to the main TPO (−40°C), the auxiliary layer leaves an interface margin (self-check −25°C), and low-temperature flexibility is the first verification checkpoint.

Third, the welded interface is set at the fourth checkpoint, but like low-temperature flexibility, it is vetoed by one vote. The order of the welding window for polyolefin compatibilizers cannot be reversed; If the material is wrong, no matter how well the welding is done, the interface cannot be fixed.

Next article continues in the building materials section, discussing the mineral filling direction of PVC/PP composite pipes—the criteria for that part have shifted to the ring stiffness line.

About Us

A single PP pellet leaves the factory as just a particle.

It becomes the bumper, refrigerator liner, washing machine bucket, lunch box, with a whole set of solutions in between—which substrate grade to choose, how much filling to add, toughening route, whether shrink pressure can be suppressed, and whether the odor is acceptable.

Ningbo Kelong New Materials Co., Ltd. produces self-produced modified polypropylene (PP) granulation, covering three grades of substrates: homopolymer, random copolymer, and impact-resistant copolymer, as well as modification directions such as filling, glass fiber reinforcement, toughening, flame retardant, low odor and low VOC, weather resistance, and no coating or scratch resistance; Also engaged in PP resin, sub-brand materials, and bulk packaging materials for major petrochemical plants

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