| Код ТН ВЭД | 771468 |
Как аккредитованный завод Avient Polystrand ThermoPro™ IE7015X X-Ply Cross-Ply Polypropylene-Glass Composite, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Each carton contains one roll of ThermoPro™ IE7015X composite, wound on a core and sealed in moisture-resistant packaging for shipping. |
| Погрузка контейнера (20-футовый контейнер) | 20′ FCL loading: Avient Polystrand ThermoPro™ IE7015X X-Ply polypropylene-glass composite, palletized, stretch-wrapped, braced, and securely loaded in a standard dry container. |
| Доставка | Avient Polystrand ThermoPro™ IE7015X X-Ply Cross-Ply Polypropylene-Glass Composite ships as a non-hazardous, non-regulated article. It is palletized in rolls or flat sheets, protected from moisture, contamination, and damage. Transport in dry vehicles; avoid excessive heat, direct sunlight, and incompatible chemicals. No special dangerous-goods documentation is required. |
| Хранение | Store in a cool, dry, well-ventilated area away from direct sunlight, heat, ignition sources, and moisture. Keep in original sealed packaging, supported flat to prevent warping or damage. Avoid contact with strong chemicals, oils, or solvents. Maintain stable temperature and humidity. Follow manufacturer’s guidance and local regulations; use appropriate housekeeping and inventory rotation. Do not stack heavy loads. Inspect regularly. |
| Срок годности | No specific expiration; shelf life is indefinite when stored in original packaging, cool, dry, away from sunlight, moisture, and contaminants. |
Конкурентные цены Avient Polystrand ThermoPro™ IE7015X X-Ply Cross-Ply Polypropylene-Glass Composite, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.
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Avient Polystrand ThermoPro™ IE7015X X-Ply Cross-Ply Polypropylene-Glass Composite is supplied as a consolidated thermoplastic laminate in which continuous E-glass plies are arranged in a 0°/90° cross-ply stack and melt-impregnated with a polypropylene matrix. The IE7015X grade is specified at a nominal glass loading of 70% by weight, measured under ISO 1172, yielding a density of approximately 1.85 g/cm³ under ISO 1183-1. The sheet form is intended for compression molding, thermoforming, and overmolding operations rather than injection molding because the continuous glass phase cannot flow into ribs or small attachment features. The product is commonly supplied cut-to-width and blanked to near-net shape; published tensile and flexural data are generated on consolidated laminates rather than on injection-molded test plaques.
The IE7015X designation separates the grade from unidirectional tape and random-mat products in the Polystrand ThermoPro line. The X-Ply construction places continuous glass fiber plies in a 0°/90° stack, whereas unidirectional products orient all plies in one direction and random-mat products distribute fibers in-plane without a controlled orthogonal architecture. The cross-ply arrangement raises off-axis properties and reduces in-plane anisotropy, but it does not provide the full melt-flow capability of a short-glass compound. These differences control both part design and manufacturing route.
In a short-glass PP compound, tensile failure is dominated by fiber pull-out and matrix yielding. The average residual fiber length after injection molding is frequently 0.2 mm to 0.5 mm, and stress transfer develops over that short distance. In IE7015X, the load-bearing filaments extend continuously through the sheet, so tensile failure in the 0° plies is translaminar and fiber-dominated. Off-axis loading is governed by the 90° plies and by the matrix shear response between plies. Because the laminate is cross-ply rather than unidirectional, the in-plane stiffness is more balanced; a unidirectional tape may show a tensile modulus ratio between 0° and 90° approaching 10:1, while a cross-ply stack reduces that ratio, although it does not produce full quasi-isotropy at 0°/90° unless additional off-axis plies are added.
The continuous fiber architecture also changes damage tolerance. Impact events create interlaminar delamination and fiber breakage rather than the microcracking and fiber pull-out observed in short-glass compounds. This has implications for hidden damage after stone impingement or tool drop; visual inspection may not reveal internal ply separation. Test methods such as ISO 14125 for flexural properties and ISO 179-1 or ISO 180 for impact provide comparative data, but these methods do not fully characterize interlaminar fracture energy, which is better assessed by Mode I or Mode II delamination tests such as ASTM D5528.
| Attribute | IE7015X X-Ply | Short-glass PP compound | Glass-mat thermoplastic |
|---|---|---|---|
| Fiber form | Continuous E-glass plies at 0°/90° | Chopped strands reduced to 0.2–0.5 mm after plastication | Needled or matted bundles, 25–50 mm typical |
| Melt-flow behavior | No glass migration; matrix flow and ply slip only | Melt flow into ribs and thin walls | Limited flow; loft and mat deformation during molding |
| Dominant failure mode | Translaminar fiber fracture and ply delamination | Fiber pull-out and matrix yielding | Bundle pull-out and mat delamination |
| Test methods for comparison | ISO 527-4, ISO 14125, ISO 179-1 | ISO 527-2, ISO 178, ISO 179-1 | ISO 527-4, ISO 14125, ISO 179-1 |
This difference in fiber architecture means that IE7015X cannot be regarded as a higher-modulus drop-in replacement for a short-glass PP in an injection-molded part. The continuous glass phase creates high in-plane modulus and strength, but the material cannot fill a multi-ribbed geometry without an overmolding step. The result is a process-dependent design boundary: structural stiffness is obtained through laminate thickness and fiber orientation, not through flow-induced fiber alignment. When property comparisons are made, they must be made at equal thickness and equal fiber volume fraction, using anisotropic laminate test methods rather than single-point isotropic tensile data.
Published supplier data for IE7015X report a nominal glass content of 70% by weight under ISO 1172 and a density of approximately 1.85 g/cm³ under ISO 1183-1. In the dominant fiber direction, tensile strength is reported at approximately 430 MPa and tensile modulus at approximately 25 GPa under ISO 527-4. Flexural strength is reported in the range of 450 MPa to 460 MPa, with flexural modulus near 20 GPa under ISO 14125. Notched Izod impact values report at approximately 1,300 J/m under ISO 180. These values are representative and orientation-dependent; off-axis properties are lower, and final design allowables require lot-specific data because continuous-fiber laminate properties vary with fiber tensioning, ply nesting, and void content.
The matrix thermal response is dominated by polypropylene. Differential scanning calorimetry under ISO 11357-3 typically shows a melting endotherm between 160 °C and 170 °C. Continuous-use temperature under load is matrix-limited; parts subjected to sustained flexural load above 90 °C to 110 °C can creep because the amorphous regions of the matrix soften. The glass reinforcement lowers thermal expansion in the fiber direction; values on the order of 10–20 × 10−6 K−1 are typical for continuous glass/PP laminates, compared to 80–120 × 10−6 K−1 for neat PP under ISO 11359-2.
Because the reinforcement is continuous, the product exhibits a large property cliff between fiber-direction and matrix-dominated properties. The cross-ply architecture reduces the difference between 0° and 90° directions, but 45° off-axis properties remain lower and are governed by the matrix shear response. A panel designer cannot assume an isotropic tensile modulus; the laminate must be modeled with orthotropic material cards and validated by testing. For applications requiring planar isotropy, additional angle plies or a quasi-isotropic layup would be required.
On production compression lines, the material is processed as a preconsolidated blank rather than as a pellet feed. Edge-trimmed sheet is cut to a near-net perimeter using die cutting, waterjet, or ultrasonic knife equipment. The blank is preheated to 190 °C to 210 °C in a forced-air or infrared oven, with the core temperature verified by an embedded thermocouple rather than by surface pyrometry alone. The time between oven exit and tool closure is kept below 15 s on automated lines; longer transfer times allow the polypropylene matrix to cool below 170 °C and crystallize, preventing full consolidation. In a hydraulic press of 300 t to 800 t clamp force, matched metal tools are held at 50 °C to 90 °C, and compression pressure is applied at 30 bar to 80 bar based on plan view area. The pressure compacts the laminate and forms the sheet by intraply shear and bending, but it does not cause glass migration into ribs or bosses.
The preheat window is narrow. Extended dwell above 210 °C can induce thermo-oxidative chain scission in the PP matrix, while a core temperature below 180 °C produces interlaminar voids that lower flexural strength under ISO 14125. Because the 70 wt% glass content reduces through-thickness thermal conductivity, the surface can reach setpoint while the core remains below processing temperature. This skin-core differential is a primary source of scrap in industrial compression molding. Ovens with two-side IR emitters or reversed air circulation reduce the differential, and multiple thermocouple locations are used to establish a production recipe for each thickness.
High-humidity storage can introduce moisture at the glass–matrix interface through the sizing layer. Although polypropylene itself is hydrophobic, the glass sizing can retain surface moisture. When stored at relative humidity above 60%, the sheet should be dried at 80 °C for 2 h to 4 h in a dehumidifying dryer before preheating. Condensation on cold sheet should be avoided because expanding steam at the ply interface can create microvoids. This defect may not be visible on the surface but can reduce interlaminar shear strength measured by short-beam shear methods such as ASTM D2344.
| Parameter | Lower bound | Upper bound | Equipment note |
|---|---|---|---|
| Blank core preheat | 190 °C | 210 °C | Two-side IR or recirculating air; thermocouple verified |
| Mold temperature | 50 °C | 90 °C | Matched metal tooling, oil or electric heating |
| Compression pressure | 30 bar | 80 bar | Hydraulic press, plan-view pressure reference |
| Transfer time | — | <15 s | Automated frame or needle gripper |
| Drying at RH > 60% | 80 °C | 2–4 h | Dehumidifying dryer |
Overmolding with a PP-based compound is the standard route for adding ribs, bosses, and attachment features. The formed IE7015X blank is inserted into an injection mold; the overmolding melt temperature should exceed 200 °C to allow surface melting of the sheet matrix and intermixing at the interface. Vertical insert-molding machines with clamp forces from 200 t to 1,600 t are used depending on part size. Mold temperatures below 30 °C can quench the overmolding resin before interfacial entanglement develops, reducing bond strength. Plasma or flame treatment of the sheet surface can improve adhesion, but this effect decays with storage time and should be introduced immediately before molding.
Mechanical fastening concentrates bearing stress around the hole. In a 0°/90° laminate, bearing response is not isotropic; a hole loaded parallel to the 0° fiber direction displays different strength than one loaded at 45°. Fastener pull-through and bolt torque behavior should be evaluated by ASTM D5961 or an equivalent bearing test, not by a standard tensile coupon. Waterjet-cut or die-cut holes leave fractured glass filaments at the edge, and edge-bearing capacity can be improved by using molded-in holes or by post-machining with diamond-coated tools to reduce delamination. In structural assembly, fastener torque must be limited because the polypropylene matrix cannot support high local bearing stress without creep at elevated temperature; creep around a fastener can reduce preload over time and should be evaluated under ISO 899 or ASTM D2990.
Adhesive joining requires surface preparation. The laminate surface is low-energy as molded unless a fabric carrier or textured release layer is used; bond strengths can be improved by plasma, flame, or corona treatment followed by a structural adhesive. In the absence of such treatment, the bond may fail adhesively at the interface rather than cohesively in the laminate. Peel and shear tests should be conducted under ISO 4587 or ASTM D1002 with the same release-film history as production parts because residual release agents can create weak boundary layers.
Automotive underbody shields and load floors use the cross-ply sheet where stone impact and high stiffness-to-weight ratio are required. A compression-molded shield made from IE7015X can provide higher flexural modulus than a short-glass PP panel at the same thickness, but the design must compensate for the absence of glass flow into ribs. Perimeter sealing and attachment features are commonly added by overmolding or secondary elastomer seals rather than by molding intricate stiffeners directly. Validation for underbody use should include gravel impact testing per ISO 20567-1 or an OEM stone-chip standard, thermal cycling per ISO 16750-4, and moisture exposure per the vehicle manufacturer’s corrosion schedule. Published data for this specific product in a particular vehicle platform is limited; component tests must be used to confirm performance.
In sandwich panels, the product is used as a thin structural skin laminated to a polypropylene honeycomb or foam core. The cross-ply architecture reduces warpage compared to unbalanced skins because in-plane thermal contraction is balanced across the laminate thickness. Symmetric layups of IE7015X skins can maintain flatness after cooling, while asymmetric layups distort because of differences between fiber-direction and matrix-dominated thermal contraction. Flatwise tensile strength and climbing-drum peel of the bonded assembly are relevant test methods, but specific values depend on the core and adhesive system rather than on the product alone.
The polypropylene matrix distinguishes IE7015X from thermoset glass laminates. A thermoset laminate cures irreversibly; the IE7015X sheet can be reheated and reshaped within the processing window, and trimmed scrap can be reground and reprocessed as a filled PP feedstock, although the continuous fiber length is destroyed. The PP matrix also provides faster cycle times than thermoset wet layup, but it imposes a lower continuous-service temperature than an epoxy or phenolic system. The cross-ply architecture reduces the directional bias of a unidirectional tape; however, a unidirectional tape can provide higher maximum stiffness in a single load direction when the designer needs directional tailoring. The choice between X-Ply and unidirectional tape is therefore a design decision based on in-plane load directions, not a simple strength ranking.
The product is not a direct replacement for a short-glass injection molding compound because the continuous glass phase cannot fill ribs or thin walls. It is also not a direct replacement for a random-mat GMT because the orthotropic ply structure has less loft and different acoustic damping behavior. These differences enter the manufacturing cost model: IE7015X can provide higher stiffness at lower thickness than short-glass PP, but it requires a compression press, blank cutting, and potentially an overmolding step. Process engineers evaluating it should compare total manufactured part cost at equal stiffness, not raw material cost per kilogram.