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Avient Polystrand ThermoPro™ IE7011 ECR Unitape Unidirectional Polypropylene-Glass Composite is supplied as a slit thermoplastic unitape in which continuous ECR-glass filaments are collimated into a single orientation and embedded in a polypropylene matrix by high-pressure melt impregnation. The product code IE7011 designates a polypropylene matrix with ECR-glass reinforcement, and the unitape format is intended for automated tape laying, filament winding, roll-forming, thermoforming, and matched-die compression molding. Representative nominal values from current product data include a fiber volume fraction of 0.60 determined by ISO 1172, a nominal consolidated tape thickness of 0.25 mm, and a density of 1.95 g/cm³ per ISO 1183. Longitudinal tensile strength and tensile modulus, measured on consolidated unidirectional laminates in accordance with ISO 527-5, are 720 MPa and 41 GPa, respectively. Flexural strength and flexural modulus evaluated per ISO 14125 are 960 MPa and 38 GPa. These figures are reported for the unidirectional ply; cross-ply laminate values depend on stacking sequence, void content, and fusion-bond quality.
| Property | Standard | Representative nominal value |
|---|---|---|
| Fiber volume fraction | ISO 1172 | 0.60 |
| Nominal consolidated tape thickness | Micrometer | 0.25 mm |
| Density | ISO 1183 | 1.95 g/cm³ |
| Longitudinal tensile strength | ISO 527-5 | 720 MPa |
| Longitudinal tensile modulus | ISO 527-5 | 41 GPa |
| Flexural strength | ISO 14125 | 960 MPa |
| Flexural modulus | ISO 14125 | 38 GPa |
At the laminate design level, the unidirectional ply is treated as an orthotropic layer. The longitudinal tensile modulus of 41 GPa and a transverse modulus typically in the range of 4–5 GPa create a high degree of anisotropy. Classical laminate theory is used to calculate responses of [0/90]4 or [0/±45/90]s layups, but the material should not be treated as isotropic. Damage initiation in cross-ply laminates is frequently transverse ply cracking at strain levels below the longitudinal fiber capability because the polypropylene matrix has lower strain to failure than the glass fiber in longitudinal tension. For semi-structural panels, design allowables are established by laminate testing under the relevant ASTM or ISO standard, not by scaling from unidirectional coupon values.
Because the continuous ECR-glass reinforcement is aligned without crimp, the unidirectional tape reaches longitudinal modulus and strength levels that cannot be obtained with the same glass mass fraction in a woven or random-fiber architecture. Interlacing crimp in a woven glass product reduces the effective fiber modulus along the principal load axis and introduces localized stress concentrations at the crossover points. In short-glass polypropylene compounds, fiber length after injection molding is typically below 1 mm; load transfer occurs through shear-lag across a large number of fiber ends, so modulus improvements plateau at roughly 5–8 GPa at 30–40 wt% glass. The IE7011 unitape instead behaves as a structural laminate when multiple plies are oriented to manage load.
The ECR-glass specification provides improved corrosion resistance in acidic environments compared with standard E-glass because the boron oxide content is reduced. In applications such as battery enclosures and underbody panels, this reduces glass surface damage from acid condensation and can extend property retention after exposure. However, the matrix remains polypropylene; swelling in aromatic and halogenated hydrocarbons and oxidative degradation above 230°C remain operational boundaries.
Compared with thermoset prepreg, the polypropylene matrix eliminates cold storage, autoclave dwell time, and chemical crosslinking. The tape is reheated above the polypropylene melt range of 165–175°C and consolidated under pressure. Fusion-bonded laminates can be post-formed and welded using hot-plate, ultrasonic, or resistance methods at tool surface temperatures of 200–220°C. Compared with glass-mat thermoplastic sheet, the unitape offers substantially higher directional stiffness per unit thickness in the fiber axis but lower transverse strength and lower formability in deep-draw features. Within the Polystrand ThermoPro family, IE7011 is differentiated by the ECR-glass roving and polypropylene matrix; grades using standard E-glass or other thermoplastic matrices differ in chemical resistance, moisture uptake, and thermal capability.
In automated tape-laying and compression-molding cells, laminate heating is controlled by infrared pyrometry or contact thermography because polypropylene has a narrow thermoforming window. If the surface temperature falls below 185°C, the melt viscosity is too high for complete interply fusion, and void content at ply interfaces rises. If the surface temperature exceeds 225°C, the risk of matrix oxidation and glass-sizing decomposition increases. The forming-consolidation window is frequently controlled to ±5°C around the set point. Production-scale cycles typically use a dwell time of 30–90 s after the target surface temperature is reached, with cavity pressures from 2 MPa to 10 MPa depending on laminate thickness and tooling deflection. Compression presses with clamp force from 8 MN to 20 MN are used for larger panels, while smaller laminates can be consolidated in presses rated below 5 MN. Drying is not normally required for polypropylene; however, when tape has been stored above 60% relative humidity or in packaging with damaged vapor barrier, pre-drying at 80°C for 4 h is recommended before melt processing. Moisture on glass sizing can hydrolyze the silane coupling agent at processing temperatures; tape moisture above 0.1 wt% should be managed by drying. Edge trimming and slitting of ECR-glass unitape require polycrystalline diamond or carbide tooling because the abrasive glass filaments accelerate blade wear. Dull blades produce microcracks that can propagate from the cut edge during subsequent forming, particularly when the tape is cross-plied and the cut interrupts tension-bearing fibers. Slitting lines running narrow tapes below 25 mm require lower blade force and higher blade speed to limit edge damage; blade rotation intervals are shorter than for unfilled polypropylene film.
The melt-impregnation route is decisive for the final consolidation quality because polypropylene has a relatively high melt viscosity compared with low-molecular-weight thermoset precursors. High-pressure impregnation in a heated die is used to force molten polypropylene through the ECR-glass roving bundle. The die geometry combines a converging entrance, a controlled melt pool, and a final calibration gap that sets tape thickness. If the calibration gap is opened beyond the target, fiber volume fraction decreases and the unitape becomes resin-rich; if the gap is too tight, filament breakage and longitudinal scratches appear. Typical impregnation temperatures lie between 190°C and 230°C, and line tension is adjusted to keep the collimated roving from wandering at the die inlet. Elevated tension can improve fiber straightness but also increases the probability of filament fracture when the die temperature falls below 190°C. The objective is complete fiber wet-out without matrix degradation.
Insufficient wet-out appears as dry bands visible by transmitted light and produces an increase in interlaminar void content after consolidation. For a 0.60 fiber volume fraction, the flow path for polymer through the roving is limited; the impregnation die relies on shear-thinning behavior of the polypropylene under pressure. Typical melt pressures at the die entry are in the range of 2 MPa to 8 MPa, though published data for this specific configuration is limited and line-specific settings must be established by trial. Extruder screw design for the PP melt is less critical than die pressure stability; a single-screw extruder with a barrier screw and melt-filter pack of 100–400 µm is sufficient for most inline processes. Storage in sealed packaging with desiccant is standard.
Uncontrolled crystallization after die exit is avoided because rapid quenching produces a transcrystalline layer at the fiber surface that may affect bond strength. Cooling rate is controlled by a calendering stack to minimize residual stress while preventing tape blocking. On production-scale melt-impregnation lines, tape width and winding tension are monitored continuously because fiber spreading and edge alignment determine downstream placement reliability. Winding tension is set below the level that induces creep in the polypropylene matrix at temperatures above 35°C because residual heat can permit transverse movement of fibers. The tape edge quality after slitting is critical for automated tape-laying heads; nicked edges cause fiber bridging and placement-head alarms.
Shred-and-reclaim processing of IE7011 laminates converts the unidirectional tape into a reinforced molding feedstock, but the process destroys the continuous fiber orientation that is the product's primary mechanical advantage. Because the ECR-glass filaments are brittle, single-screw reclaim extruders with screw diameters from 60 mm to 120 mm typically reduce fiber length to 0.2–2.0 mm, producing a feedstock closer to short-glass polypropylene than to the original tape. The recovered material can be processed at melt temperatures of 190°C to 230°C and molded into parts for which modest stiffness and dimensional stability are sufficient. Repeated regrind cycles lower tensile strength and strain at break, and published data for this exact tape after multiple recycling loops is limited; reclaimed material should be validated for the specific part load case before production use.
Regulatory compliance should be confirmed against the current Avient product declaration; the polypropylene-glass system is generally outside the scope of REACH restrictions for continuous-filament glass and can be handled under standard occupational dust controls. RoHS compliance is assessed at the finished-part level because downstream additives or coatings may introduce restricted substances. When regrind is used in food-contact applications, compliance must be evaluated under the applicable migration testing framework, not assumed from the base polymer alone.