Продукты

Avient Polystrand ThermoBallistic™ TBS8010X X-Ply Cross-Ply Polypropylene-Glass Composite

    • Название продукта: Avient Polystrand ThermoBallistic™ TBS8010X X-Ply Cross-Ply Polypropylene-Glass Composite
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
    • Свяжитесь сейчас
    Спецификации
    Код ТН ВЭД 440475

    Как аккредитованный завод Avient Polystrand ThermoBallistic™ TBS8010X 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 и хранение
    Упаковка
    Доставка
    Хранение
    Бесплатная цитата

    Конкурентные цены Avient Polystrand ThermoBallistic™ TBS8010X X-Ply Cross-Ply Polypropylene-Glass Composite, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

    Для получения образцов, цен или более подробной информации свяжитесь с нами по адресу +8618136850665 или отправить по почте admin@ascent-chem.com.

    Мы ответим вам как можно скорее.

    Телефон: +8618136850665

    Электронная почта: admin@ascent-chem.com

    Запрос

    Получите бесплатную сметуAscent Petrochem Holdings Co., Limited

    Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!

    Сертификация и соответствие требованиям
    Более подробное введение

    Avient Polystrand ThermoBallistic™ TBS8010X is a consolidated cross-ply thermoplastic composite panel supplied in a polypropylene matrix reinforced with continuous glass roving. The X-ply designation identifies a balanced 0°/90° fiber layup in which adjacent unidirectional plies are oriented orthogonally, producing an in-plane quasi-isotropic response when multiple plies are stacked. The product belongs to the ThermoBallistic family and is distributed as flat panels or thermoformable blanks. Published datasheet values for the TBS8010X-specific configuration are limited; the numerical ranges cited below are representative of product-class cross-ply polypropylene–glass laminates with a fiber volume fraction of 60% to 70%, measured according to ASTM D2584-18. Typical panel thickness spans 2.0 mm to 25 mm, and areal density is most commonly controlled in the range of 5.0 kg/m² to 50 kg/m² depending on threat level. Density of the consolidated laminate is generally 1.75 g/cm³ to 2.05 g/cm³ when tested to ISO 1183-1:2019.

    Material Architecture and Consolidation Behavior

    Continuous glass roving is impregnated with polypropylene in a melt-impregnation stage upstream of X-ply layup. The polypropylene matrix typically exhibits a melt mass-flow rate of 20 g/10 min to 100 g/10 min at 230 °C under a 2.16 kg load according to ISO 1133-1:2022. The fiber reinforcement is not woven; unidirectional tape layers are cross-plied to suppress crimp and to shorten the stress-wave path between projectile contact and back-face response. In consolidation, heat and pressure are applied in a double-belt press or matched-die compression press. Typical consolidation windows use plate or belt temperatures of 200 °C to 230 °C, surface pressures of 0.5 MPa to 2.0 MPa, and residence times of 3 min to 10 min. Cooling under pressure to below 80 °C is required to prevent warpage and to preserve crystallinity uniformity. At the upper boundary of 230 °C, polypropylene undergoes oxidative chain scission if residence time is not controlled; production lines use nitrogen blanketing or short-dwell infrared heating to limit melt oxidation. At the lower boundary, incomplete wet-out of glass tows produces dry fiber regions that reduce interlaminar shear strength. Interlaminar shear strength of properly consolidated cross-ply PP-glass is typically 25 MPa to 45 MPa when measured to ISO 14130:1997.

    Field observations on double-belt presses indicate that edge pinning and belt release are more critical than melting temperature. Contaminated release belts generate surface resin starvation, causing localized backface deformation variability in ballistic panels. Panels cut from the outer 25 mm of the pressed sheet are often quarantined for ultrasonic C-scan inspection to detect delamination before ballistic layup. This inspection protocol is not required by a universal standard but is applied where multi-hit consistency is specified.

    Before thermoforming or welding at production scale, moisture uptake in the consolidated sheet is controlled because the glass sizing can retain water. When the product is stored at relative humidity above 60%, a pre-drying step of 80 °C for 2 h to 4 h is applied before thermoforming or welding; moisture-induced porosity is most commonly detected as a drop in ultrasonic attenuation rather than as visible surface blistering. The material is incompatible with prolonged contact with strong oxidizing acids, aromatic hydrocarbons, and chlorinated solvents; these agents can extract sizing components and swell the polypropylene phase. Mechanical cutting is performed with waterjet or high-speed carbide tooling. Laser cutting is generally avoided because glass-fiber and polypropylene ablation products contaminate the cut edge and reduce edge-initiated ballistic performance. In production-scale trimming, waterjet pressure above 350 MPa can cause exit-side delamination if the panel is not supported; a sacrificial backing layer of 10 mm to 15 mm rigid polymer or wood-fiber board is typically used. Thermoforming is performed at 180 °C to 210 °C, with heating time adjusted to panel thickness to avoid surface oxidation. After forming, panels are held in a cooled fixture until the surface temperature falls below 80 °C.

    At service temperatures below -20 °C, polypropylene matrix embrittlement reduces multi-hit energy absorption; low-temperature qualification is required if the panel is exposed to arctic environments. At sustained service temperatures above 80 °C, polypropylene softens, and creep under compressive load can increase; metal attachments should use isolation washers or bracketed standoffs.

    What Differentiates TBS8010X from Woven Thermoset, Aramid, and UHMWPE Systems?

    The primary difference is the thermoplastic matrix. Unlike phenolic or epoxy ballistic laminates, the TBS8010X class does not require cold storage, has no out-time limit, and does not undergo cure kinetics during consolidation. It can be re-heated to 180 °C to 210 °C and post-formed without a reduction in fiber-dominated properties. Joining is performed with hot-plate, infrared, ultrasonic, or resistance welding; adhesive bonding is possible after atmospheric plasma or flame treatment. This contrasts with aramid and UHMWPE backings, which are usually bonded with reactive adhesives or film adhesives because their surfaces are not thermoplastic weldable. The cross-ply non-woven fiber orientation reduces fiber crimp relative to woven roving, which lowers in-plane stiffness loss and delays strain localization at crossover points. In terms of specific performance, aramid and UHMWPE systems provide lower areal density for a given fragment threat, but polypropylene-glass cross-ply laminates exhibit higher compression-after-impact strength and lower total cost per unit areal weight. The PP-glass system is also less moisture-sensitive than aramid and does not show the same level of creep under sustained compressive load as UHMWPE, although published data for the TBS8010X-specific configuration is limited.

    Representative mechanical property ranges for the product class are as follows. Tensile strength is 300 MPa to 600 MPa and tensile modulus 18 GPa to 30 GPa when tested to ASTM D3039/D3039M-17. Flexural strength is 250 MPa to 500 MPa and flexural modulus 15 GPa to 25 GPa under ISO 14125:1998. Notched Izod impact ranges from 60 kJ/m² to 120 kJ/m² under ISO 180:2019. These values are not certificate values for a specific panel lot and must not be used as a substitute for incoming material test reports.

    Melt impregnation quality governs backface deformation.

    Melt impregnation quality is controlled by the ratio of matrix melt viscosity to fiber tow permeability. If the melt viscosity is too high, incomplete wet-out leaves entrapped air between filaments; if it is too low, matrix squeeze-out reduces interlaminar thickness. The 60% to 70% fiber volume fraction window is maintained by controlling belt gap and tension. Porosity content above 2% by volume, measured by optical microscopy or ultrasonic C-scan attenuation, is associated with reduced interlaminar shear strength and increased backface deflection. On production double-belt presses, the dominant failure modes are not melting but edge bleed, where resin flows beyond the fiber bed at high pressure, and belt sticking, which can pull surface tows out of alignment. These defects are controlled by edge dams, release film, and cooled exit rolls. Panels with surface tow misalignment greater than 5° from the nominal 0°/90° axis are typically downgraded because off-axis tows shift the ballistic response. This is an operational boundary recorded in production-scale panel inspection, not a universal specification.

    When Cross-Ply Orientation Replaces Woven Roving in Ballistic Spall Liners

    Spall liner design has to manage both fragment impact and attachment loads. Cross-ply orientation produces higher in-plane shear stiffness than woven fabric of the same areal weight because the straight fiber path eliminates crimp. In a woven roving, the undulating fiber bundle straightens before it carries full tensile load, which delays stiffness development and concentrates strain at the crossover. Cross-ply PP-glass layers can be oriented to match a dominant bending or shear axis; however, the product is not a true isotropic plate. The in-plane modulus is directionally dependent, and the 0°/90° layup gives lower modulus in the ±45° direction. For a balanced laminate, the ±45° tensile modulus can be 20% to 40% lower than the 0° value. Designers compensate by rotating alternate plies or by adding continuous off-axis plies during layup. In spall liner installations, the panel is often not bonded directly to the hull; it is mounted with polyurethane adhesive or mechanical standoffs so that it can deform and delaminate without transmitting excessive load to the structure. This delamination is a controlled energy-absorption mechanism in PP-glass systems because the ductile PP matrix arrests crack propagation; the same mechanism in a brittle epoxy system can cause wide-area debonding and loss of multi-hit capability.

    For threat-specific qualification, panels of this class are evaluated according to NIJ 0108.01 for ballistic-resistant protective materials or STANAG 2920 for fragment-simulating projectiles. Reported V50 ranges for continuous glass–polypropylene cross-ply laminates with areal densities of 10 kg/m² to 25 kg/m² fall between 400 m/s and 700 m/s for the 1.1 g fragment-simulating projectile; these values are product-class references, not certified panel ratings, and are not transferable to multi-hit rifle threats without an attached test report. Backface deformation evaluations for body armor applications commonly use a clay witness under NIJ 0101.06 with a 44 mm maximum; rigid armor panels are often evaluated under NIJ 0108.01. Production usage includes vehicle spall liners, temporary protective partitions, modular armor housings, and rigid panel inserts where mechanical load and fragment impact occur simultaneously. The material can be thermoformed into double-curvature shells at 180 °C to 210 °C and is usually cut after forming to avoid edge damage. Panel attachment is normally achieved with polyurethane adhesive beads or mechanical fasteners through pre-formed holes; drilling must be performed with carbide or diamond tooling to avoid glass-fiber pull-out at the hole exit.

    PropertyTest standardTypical range
    DensityISO 1183-1:20191.75 g/cm³ to 2.05 g/cm³
    Fiber volume fractionASTM D2584-1860% to 70%
    Tensile strengthASTM D3039/D3039M-17300 MPa to 600 MPa
    Tensile modulusASTM D3039/D3039M-1718 GPa to 30 GPa
    Flexural strengthISO 14125:1998250 MPa to 500 MPa
    Flexural modulusISO 14125:199815 GPa to 25 GPa
    Interlaminar shear strengthISO 14130:199725 MPa to 45 MPa
    Notched Izod impactISO 180:201960 kJ/m² to 120 kJ/m²
    Heat deflection temperature at 1.8 MPaISO 75-2:2013140 °C to 160 °C
    Water absorption at 24 h, 23 °CISO 62:2008<0.2%
    Process variableConditionEquipment or limiting factor
    Pre-drying80 °C for 2 h to 4 hRequired above 60% RH
    Consolidation temperature200 °C to 230 °CDouble-belt press or matched-die press
    Consolidation pressure0.5 MPa to 2.0 MPaEdge dams and release film required
    Residence time3 min to 10 minNitrogen blanketing above 230 °C
    CoolingBelow 80 °C under pressureChilled exit rolls or cooled fixture
    Thermoforming180 °C to 210 °CIR or hot-air oven; heated tooling
    TrimmingWaterjet or carbide toolingSacrificial backing 10 mm to 15 mm

    Where the panel is used in vehicle crew compartments, smoke density is sometimes specified according to ASTM E662 or ISO 5659-2. Polypropylene-based composites generally produce higher smoke density and lower char yield than phenolic systems; fire-performance requirements must be evaluated before replacing a phenolic armor laminate. With appropriate sizing and additive selection, the PP-glass composite can be supplied to meet RoHS Directive 2011/65/EU restrictions; specific lot compliance must be verified against the supply contract.

    Procurement specifications for this product class should define threat level, areal density, backface deformation limit, multi-hit spacing, environmental conditioning, and edge attachment method before comparing TBS8010X with alternative materials. Published data for this specific configuration is limited, and the ranges above are not a substitute for certified panel testing.

    ТОП