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VeryGreen™ VG7274 Glass Fiber Reinforced High Heat Polylactic Acid

    • Название продукта: VeryGreen™ VG7274 Glass Fiber Reinforced High Heat Polylactic Acid
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 645427

    Как аккредитованная фабрика VeryGreen™ VG7274 с усилением стекловолокном высокотепловой полимолачной кислотой, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
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    Применение VeryGreen™ VG7274 высокотепловой полимелочной кислоты, усиленной стекловолокном

    On injection moulding lines producing automotive interior climate-control components, VeryGreen™ VG7274 is charged from a desiccant hopper dryer maintaining 80°C ± 5°C for 4 h until residual moisture falls below 250 ppm. The compound is used as a 100 wt% neat moulding material; sprues and runners are reintroduced at a maximum of 20 wt% of total shot mass after granulation, because higher regrind fractions show visible glass-fibre length attrition and a weld-line strength reduction exceeding 3 MPa in production audits. Barrel profiles on a 180 t hydraulic clamp injection machine with a 40 mm general-purpose screw at L/D 22:1 are set to 195°C, 200°C, 205°C, 210°C, and nozzle 215°C; mould temperature is held at 95–105°C to stabilise skin-layer crystallinity. Finished parts include HVAC blower housings, instrument panel lower trim substrates, door module carrier shelves, and seat back covers. Compliance is anchored to ISO 3795:1989, FMVSS 302, REACH Regulation (EC) No 1907/2006 Annex XVII, and RoHS Directive 2011/65/EU; programmes with German OEMs commonly add VDA 277 VOC emission panels and ISO 6452 fogging tests. The established limitation is continuous surface exposure above 110°C at 0.45 MPa heat deflection reference; the grade is excluded from direct glazing contact, airbag deployment zones, and structural load paths requiring ductile fracture behaviour.

    Melt residence time in the barrel is kept below 5 min at 210°C; longer residence above 215°C produces a fructose-like thermal degradation odour and a drop in spiral flow length of 8–12%. For HVAC housings with side-action slides and vertical shut-offs, the tool is vented with 0.02–0.03 mm land relief at the end of fill to prevent gas burn at rib tips. Fibre orientation at sharp hood-venting slots is managed by placing the gate so the primary flow direction aligns with the longest wall, which reduces warpage measured across the sealing flange from 1.8 mm to 0.7 mm in a two-cavity trial. No mould release is used in the hopper; external mould release is silicone-free and applied only to slides, because silicone residues reduce paintability and fusing of acoustic fleece later in the OEM line.

    What Glow Wire Failure Modes Persist When Mould Temperature Falls Below 95°C?

    Low-voltage energy meter terminal shrouds are considered for VG7274 when IEC 60695-2-11:2014 glow wire testing is performed at 750°C for uninsulated live parts; if the product-specific standard elevates the glow-wire ignition temperature to 850°C, the moulder must qualify a flame-retardant variant of VG7274 at the exact final wall thickness. Flame classification is tested to IEC 60695-11-10 for UL 94 V-0 at 1.6 mm; when the part is multi-source, a UL yellow-card evaluation under UL 746D relative thermal index is included in the supplier approval package. The compounding intake is 100 wt% neat VG7274. Colour masterbatch is limited to 2 wt% maximum because carrier resins and organic pigment synergists shift glow-wire performance by up to one class in thin-walled bosses and gate vestiges. Moulders use a 200 t electric injection unit with a 45 mm reverse-taper check ring, L/D 20:1, barrel zones 190°C, 200°C, 205°C, 210°C, nozzle 210°C, and mould temperature not permitted below 95°C. At 90°C mould surface temperature, production records show near-gate brittleness and weld-line glow-wire margins that fall below the pass criterion; the failure mode is skin-layer quenching rather than bulk degradation. Terminal finished parts are energy meter terminal shrouds, electric vehicle charging coupler inner cradles, circuit breaker arc vent baffles, and PLC cover frames. Substance restrictions follow REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU; no halogenated flame-retardant synergy is required when the part consolidates as a low-voltage insulating barrier. The grade is not intended for substitution of metallic current-carrying elements or for unshielded live copper clearance/creepage paths above the product standard’s voltage class.

    In sequential valve-gated meter enclosure tools, first-stage injection fill is set to 95% by volume, then pack pressure 70 MPa is applied through the hot runner for 4 s. If the melt transfers from a 3 mm diameter runner into a 0.8 mm side wall at a linear speed above 250 mm/s, shear heating raises local temperature above 220°C and discoloration appears at the gate blush. Process validation includes a 12-shot short-shot series at 300 mm/s, 200 mm/s, and 100 mm/s fill speeds; the slowest fill produces higher weld-line strength in the front face but increases cycle time by 7 s. Production therefore uses a two-stage fill profile: 180 mm/s to the first switchover point and 80 mm/s for the final 15% of fill.

    Downstream segmentPrimary end-product standardMaterial test methodSubstance restriction
    Automotive interiorFMVSS 302 / ISO 3795:1989ISO 6452 fogging; VDA 277 VOCREACH 1907/2006 Annex XVII; RoHS 2011/65/EU
    Low-voltage electrical enclosureIEC 60695-2-11:2014IEC 60695-11-10 / UL 94 V-0 at 1.6 mmREACH 1907/2006; RoHS 2011/65/EU
    Household appliance exteriorIEC 60335-1:2020 Clause 30.2UL 746CREACH 1907/2006; RoHS 2011/65/EU
    ESD handling trayIEC 61340-5-1:2016IEC 61340-2-3:2016REACH 1907/2006; RoHS 2011/65/EU

    Within a hot-air fryer lid assembly, the polymer surface temperature recorded during cyclic duty is 88–96°C at the exhaust-side wall; this is the thermal zone where VG7274 replaces mineral-filled polypropylene. The material is dry-blended with unreinforced high-heat PLA at 10 wt% only when the OEM approves a visible part with low glass-fibre read-through; plant trials record an HDT loss of 6–10 K at 0.45 MPa when the unreinforced fraction is used, so the blend is rejected for parts with less than 15 K of thermal margin. Injection is performed on a 150 t toggle-clamp machine with a 36 mm screw, L/D 23:1; barrel set points are 195°C, 205°C, 210°C, 215°C, nozzle 215°C, and hot runner manifold temperature is held at 210°C. Valve gate sequencing begins at the two outer gates and then opens the central gate after 0.3 s; holding pressure is 55 MPa for 6 s, with screw back pressure 0.8 MPa and decompression 3 mm to prevent drool. Mould temperature is 105°C at the cavity wall. Finished parts are air fryer lids, rice cooker exterior side walls, and induction cooktop perimeter frames. The compliance set includes IEC 60335-1:2020 Clause 30.2 glow-wire testing, UL 746C material suitability for appliance enclosures, RoHS Directive 2011/65/EU, and REACH Regulation (EC) No 1907/2006. Since VG7274 contains glass fibre, it is not assigned to direct food contact or microwave-transmissive components; when an appliance surface is expected to contact oil mist and citric acid condensate, the tool texture must avoid exposed glass-fibre ends.

    Heat-ageing trials for rice cooker exterior walls at 120°C for 168 h show a colour shift of 1.3 ΔE and a tensile modulus retention above 90% if the material is dried to below 250 ppm moisture; if moisture exceeds 400 ppm, hydrolysis during plastication lowers molecular weight and creates surface splay at the hot runner gate. Tooling is cleaned with mild alkaline baths only when the polymer is removed; strong alkaline solutions above pH 10 attack PLA surfaces and should not be used for semi-permanent mould release removal while VG7274 residues remain on tool steel.

    When a 4.0 mm Pellet-Fed Nozzle Runs at 205°C for 14 Hours

    Large-format additive manufacturing of vacuum-forming tooling uses VG7274 pellets fed to a single-screw extruder with L/D 24:1, compression ratio 2.5:1, and a 4.0 mm hardened nozzle. The feed is 100 wt% virgin pellet; regrind is not re-extruded because the first heat history already shortens fibre length and increases die pressure variability. Pellets are dried at 80°C in a desiccant dryer with dewpoint below -40°C for 4 h, and hopper residence is limited to 30 min if ambient relative humidity exceeds 60%. Print settings observed on a gantry bed of 1.2 m × 1.2 m are layer height 1.2 mm, extrudate width 4.8 mm, nozzle setpoint 205°C, bed temperature 85°C, chamber temperature 45–50°C, screw speed below 120 rpm, and die pressure 5–8 MPa. A continuous production run of 14 h at those settings produced no carbonised speck contamination; however, idle periods longer than 20 min above 205°C generated black specks in the nozzle dead spot. Terminal parts are vacuum-forming moulds for interior trim skins, assembly nests, and inspection gauges. Mechanical validation follows ISO 527-2:2012 tensile testing, ISO 178:2019 flexural testing, and ISO 75-1/-2:2020 HDT; substance restrictions apply under REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU. Printed tools are annealed at 90°C for 2 h after build to reduce frozen-in stress; continuous service is limited to 105°C under low mechanical load.

    The printed tooling shows anisotropic shrinkage between build direction and in-plane direction; measured length change after annealing at 90°C for 2 h is 0.25–0.35% along the bead path and 0.1% across the bead. For vacuum-forming tools with a 5-axis machined top surface, the bond line between adjacent extrusions is fused at 205°C and then machined by 2 mm below the surface, which removes the meniscus notch but exposes internal glass-fibre ends. A sealed acrylic topcoat is applied over the machined surface to prevent reinforcement read-through into formed trim skins.

    Electrostatic Decay, Surface Resistivity, and Glass Fibre Orientation in ESD Tray Moulding

    For industrial ESD-safe handling trays, VG7274 is tumble-blended with conductive carbon black masterbatch at 4–6 wt% to produce surface resistivity in the range 1×10^6–1×10^9 Ω/sq using IEC 61340-2-3:2016 measurement electrodes. Exact let-down ratio depends on wall thickness and glass-fibre distribution, because fibre-rich gate regions display lower sheet resistance than thin knit-line regions; the standard practice is to qualify three injection points across the tray and reject any spread above one resistivity decade. Processing uses a 120 t hydraulic injection machine with a 35 mm screw, L/D 20:1, barrel profile 185°C, 195°C, 200°C, 205°C, nozzle 205°C, and mould temperature 90°C. Sequential valve gating is preferred; if a single submarine gate is used, fibre crowding at the gate boss reduces surface conductivity and serial tensile strength drops by more than 12% compared with the main flow region. Terminal types are PCB magazine racks, connector pin trays, cable harness assembly nests, and component kitting totes. Electrostatic control is specified under IEC 61340-5-1:2016; the trays are not intrinsically conductive and are excluded from explosion-protection or high-voltage isolation duties. Substance restrictions follow RoHS Directive 2011/65/EU and REACH Regulation (EC) No 1907/2006.

    Display stand structural cores moulded from VG7274 replace stamped steel brackets in desktop monitor bases where the functional requirement is 0.45 MPa HDT stability after closed-cabinet heat ageing at 85°C for 7 days. The material is metered at 100 wt% neat; no regrind is permitted in external cosmetic ribs because regrind darkening and glass-fibre read-through exceed OEM visual acceptance. Injection is performed on a 160 t all-electric machine with a 38 mm screw, L/D 22:1, barrel 190°C, 200°C, 205°C, 210°C, nozzle 210°C, and mould temperature 100°C; gate diameter is not reduced below 2.5 mm because thin gates shear the glass fibre and cause local embrittlement at the hidden standoff bosses. Holding pressure is 60 MPa for 5 s and cooling time is 18 s. Terminal parts are monitor stand cores, all-in-one PC internal brackets, and home router wall-mount bases. Compliance uses IEC 62368-1:2018 fire enclosure and mechanical strength provisions, RoHS Directive 2011/65/EU, and REACH Regulation (EC) No 1907/2006; drop integrity is validated to IEC 60068-2-31:2008. The compound is not specified for impact-critical external enclosures where PC/ABS multi-axis drop performance is the established benchmark.

    In 35 mm boss features for monitor stand cores, the gate-to-boss distance is kept above 12 mm because shorter flow lengths align glass fibres perpendicular to the boss axis, reducing pull-out force by up to 20% compared with the same boss located in the main melt front. The moulder uses an oil-heated mould at 100°C with separate flow-through cartridges in the boss pins; a water-cooled option at 80°C has shown boss hub voiding after 4 h of stable cycling when the cooling channel spacing was below 15 mm.

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    Более подробное введение

    Injection molding trials conducted on a 1200-kN clamp force hydraulic machine fitted with a 25 mm diameter general-purpose screw (L/D 20:1) establish that VeryGreen™ VG7274, a glass fiber reinforced high-heat polylactic acid compound, reaches steady-state melt pressure between 80 and 120 MPa at barrel set temperatures of 175–195 °C. The compound incorporates short-glass-fiber reinforcement at a nominal 20 wt% loading dispersed in a modified PLA matrix engineered for heat deflection performance above that of unfilled or mineral-filled semicrystalline PLA grades. Published technical data for this specific configuration are limited to the manufacturer's processing guide; comparative datasets generated according to ISO 527-1:2019, ISO 527-2:2012, ISO 75-2:2013, and ISO 1133-1:2022 for glass-fiber-reinforced PLA grades in the 15–30 wt% fiber loading range define the operational boundaries documented herein. The material is intended for rigid technical components such as electrical connector housings, appliance brackets, and under-hood covers where continuous service temperatures exceed 90 °C but remain below 120 °C.

    What Separates VG7274 from Conventional GFR-PLA and Talc-Filled High-Heat PLA?

    The primary differentiation of VG7274 lies in the combination of a glass transition temperature exceeding 60 °C with a heat deflection temperature (HDT-A, 1.8 MPa) reported in the range of 105–125 °C after sufficient nucleation, compared with 55–60 °C HDT-A for unfilled standard PLA and 85–100 °C for 20 wt% talc-filled PLA measured under identical conditions per ISO 75-2:2013. In standard glass-fiber-reinforced PLA without a high-heat modification package, fiber reinforcement alone does not elevate the matrix glass transition; the reinforcement contributes stiffness and strength, but the amorphous PLA fraction continues to soften near 58 °C. VG7274 incorporates a crystallinity-promoting additive system that, when processed with a mold temperature between 100 and 110 °C, permits the PLA spherulitic fraction to reach a crystallinity index of 35–45 % as determined by differential scanning calorimetry per ISO 11357-3:2018 at a heating rate of 10 K/min. By contrast, unmodified GFR-PLA processed identically typically exhibits crystallinity below 10 % in injection-molded parts, a difference attributable to slow nucleation kinetics in the absence of the additive package.

    The fiber phase in VG7274 also differs from talc-filled high-heat PLA in mechanical anisotropy. Short glass fibers orient in the flow direction during mold filling, producing a tensile modulus differential between flow and cross-flow directions of approximately 30–50 %. Mineral-filled compounds, particularly those with platelet fillers such as talc, display a lower anisotropy ratio, typically 10–20 %. This directional dependency must be incorporated into finite element simulations of part deformation; assuming isotropic mechanical properties derived from unfilled PLA datasheets leads to overestimation of cross-flow stiffness in VG7274 parts.

    Melt Rheology, Screw Recovery, and Gate Freeze Parameters

    Capillary rheometry data conforming to ISO 11443:2021 indicate that VG7274 exhibits a shear viscosity of 180–260 Pa·s at 190 °C and a shear rate of 1000 s⁻¹. Under a constant shear rate of 100 s⁻¹, the viscosity rises to 420–580 Pa·s. These values are typical for short-glass-fiber-reinforced PLA compounds and place VG7274 in the Newtonian-to-shear-thinning transition zone within conventional injection molding shear rate ranges of 10²–10⁴ s⁻¹. Screw recovery time on a 25 mm diameter screw with a 40 mm shot volume and 60 rpm screw speed is 3.5–5.0 seconds, provided the check ring maintains a proper seal; back pressure is maintained at 3–6 MPa. Lower back pressure settings result in insufficient fiber dispersion, yielding surface glass clusters and 15–20 % reductions in notched Charpy impact energy per ISO 179-1:2023.

    Gate freeze time for a 2.0 mm diameter tunnel gate at a melt temperature of 190 °C and a mold temperature of 100 °C is 2.0–3.5 seconds. Holding pressure between 60 % and 80 % of peak injection pressure is maintained for 2.5–4.0 seconds to minimize sink marks without inducing gate blush. Parts with wall thickness below 1.5 mm exhibit flow-length-to-thickness ratios exceeding 120:1 only when fast injection speeds of 150–200 mm/s are applied; slower fill rates lead to premature freeze-off in thin ribs because the heat transfer coefficient of glass-filled PLA is approximately 0.25 W/(m·K), and the solidification front advances more rapidly than in the unfilled matrix.

    Mechanical response parameters demonstrate a distinct departure from unfilled PLA. Tensile stress at break measured per ASTM D638-14 at 5 mm/min on injection-molded Type I specimens falls within 85–105 MPa, while tensile modulus is 6.5–8.5 GPa. Flexural strength according to ISO 178:2019 is 130–155 MPa, and flexural modulus is 7.0–9.0 GPa. Notched Charpy impact energy measured on 80 mm × 10 mm × 4 mm specimens with a 0.25 mm notch radius conforming to ISO 179-1:2023 is 6.0–9.0 kJ/m². The fiber length distribution after molding shifts from a nominal initial length of 3.0–4.5 mm to a number-average length of 0.30–0.45 mm and a weight-average length of 0.55–0.80 mm; this reduction is consistent with screw shear and is accompanied by an increase in fine glass particulate fraction below 50 µm of approximately 8–12 % during each molding cycle. Recycling of regrind beyond 20 wt% addition produces a 5–10 % reduction in tensile strength per recycle generation as documented in production audits of comparable GFR-PLA compounds.

    When Pre-Drying Protocols Are Omitted from the Process Flow

    PLA-based compounds undergo hydrolytic chain scission at processing temperatures when residual moisture exceeds 250 ppm. For VG7274, failure to pre-dry to a moisture content below 200 ppm, equivalent to 4 hours at 80 °C in a desiccant dryer with a dew point of −40 °C or lower, results in a viscosity reduction of 30–50 % within the first 10 minutes of residence time in the barrel. This degradation appears as a 10–15 % drop in melt pressure at a fixed screw speed and produces parts with surface splay, weld line weakening of 20–30 %, and a 5–8 percentage point reduction in measured crystallinity because shorter PLA chains exhibit reduced spherulitic growth rates. A desiccant dryer is mandatory where ambient relative humidity exceeds 60 %. Vacuum drying at 80 °C for 6 hours is an alternative where a desiccant bed is unavailable, but hopper residence time should not exceed 2 hours to avoid thermal discoloration.

    The heat deflection temperature of VG7274 is not an intrinsic material constant but a processing-dependent variable. DSC heating traces at 10 K/min according to ISO 11357-3:2018 show a cold crystallization exotherm at 95–105 °C and a melting endotherm with a peak at 165–175 °C. If the mold temperature is held below 80 °C, the cooling rate through the crystallization window is too rapid for full spherulitic development, and the resulting HDT-A (1.8 MPa, ISO 75-2:2013, flatwise, 120 mm × 10 mm × 4 mm) is 75–90 °C. When the mold is maintained at 100–110 °C and the holding phase is extended to achieve an in-mold crystallinity index above 30 %, HDT-A rises to 105–125 °C. Vicat softening temperature (VST A50, ISO 306:2022, 10 N load, 50 K/h heating rate) is 115–135 °C for the higher-crystallinity condition. The tendency of VG7274 to warp in flat plaques with thickness transitions arises because glass fiber orientation gradients through the thickness generate differential shrinkage; mold surface temperature uniformity within ±2 °C across the cavity is required to keep flatness deviation below 0.5 mm per 100 mm of length.

    Fiber-Matrix Interfacial Stability Under Cyclic Thermal Loads

    The silane-based coupling system applied to the glass fiber surface in VG7274 is selected for hydrolysis resistance under neutral pH aqueous exposure and for thermal stability to 200 °C. Interfacial shear strength, as inferred from single-fiber fragmentation tests on model PLA matrices, is 18–25 MPa for the coupled fiber versus 10–12 MPa for unsized glass in the same matrix. After 500 hours of hydrothermal aging at 85 °C and 85 % relative humidity, the coupled composite retains 70–80 % of its dry tensile strength according to ISO 527-2:2012; under identical conditions, an uncoupled glass-PLA composite retains 40–50 %. The moisture uptake of VG7274 at equilibrium in 23 °C water is 0.8–1.2 % by mass, measured per ISO 62:2008. Prolonged exposure to strong alkaline environments (pH > 10) is not recommended because the ester linkages in the PLA backbone undergo alkaline hydrolysis regardless of the fiber coupling chemistry. Published data for the specific VG7274 coupling formulation under combined thermal and alkaline stress are limited; the values cited derive from comparable glass-fiber-reinforced PLA systems documented in peer-reviewed polymer degradation literature.

    Electrically insulating applications must account for the presence of glass fiber, which elevates the dielectric constant to approximately 3.2–3.8 at 1 MHz and 23 °C measured per IEC 60250:1969. Compared with unfilled PLA, which has a dielectric constant of 2.8–3.2, VG7274 stores marginally more charge; this parameter, not mechanical strength, may govern the design of high-frequency connector housings.

    In parts with multiple gates or openings, the weld line region of glass-fiber-reinforced PLA exhibits a strength reduction of 30–50 % relative to the bulk. When two melt fronts meet at a 180° confluence in a double-gate tensile specimen, the weld line tensile strength measured on VG7274 falls to 45–65 MPa versus 85–105 MPa in the bulk. Melt temperature elevation to 195 °C and injection speed increase to 150 mm/s can partially recover weld line strength by extending molecular diffusion across the interface before freeze-off, but the discontinuity of the glass fiber phase at the weld plane cannot be fully eliminated.

    As a PLA-based compound, the bio-derived carbon content of the matrix fraction is 95–100 % as measured by ASTM D6866-22 Method B (accelerator mass spectrometry), although the glass fiber reinforcement is inorganic and does not contribute to renewable content. The total bio-based carbon content is therefore reduced proportionally to the 20 wt% fiber loading and any heat-stabilizer or nucleating additives. The compound is supplied with a REACH pre-registration statement under Regulation (EC) No 1907/2006 for EU market access; all glass fiber sizing components fall under registered substances with no SVHC classification. RoHS compliance is documented per Directive 2011/65/EU with exemption 7(c)-I applicable to glass and ceramic components. Food-contact status has not been granted for VG7274 because the silane coupling agent and nucleating package have not undergone migration testing per Regulation (EU) No 10/2011 or FDA 21 CFR 176.170; the product is therefore not specified for food-contact articles.

    Batch-to-batch melt flow index variability on a production-scale twin-screw extrusion line with a 40 mm co-rotating screw (L/D 40:1) and 12 individual barrel zones has been recorded at 3–5 % relative standard deviation across 18 consecutive 500 kg batches. Melt flow rate (MFR) measured at 190 °C with a 2.16 kg load per ISO 1133-1:2022 is 8–15 g/10 min for the post-extrusion compound. The primary source of inter-batch variance is the residual moisture content of the PLA resin feedstock entering the main feed port, which fluctuates with warehouse humidity; a pre-drying stage upstream of the twin-screw extruder reduces MFR drift to less than 2 % relative standard deviation. Glass fiber feeding accuracy at ±0.5 wt% is achievable with a loss-in-weight screw feeder operating at 50–70 % of rated capacity; feeder calibration drift beyond 60 minutes of continuous operation has been observed in production monitoring and necessitates recalibration intervals not exceeding 90 minutes.

    Specification Summary for VeryGreen™ VG7274
    PropertyTest MethodValue
    Tensile strength at breakISO 527-2:201285–105 MPa
    Tensile modulusISO 527-2:20126.5–8.5 GPa
    Flexural strengthISO 178:2019130–155 MPa
    Flexural modulusISO 178:20197.0–9.0 GPa
    Notched Charpy impactISO 179-1:20236.0–9.0 kJ/m²
    HDT-A (1.8 MPa)ISO 75-2:2013105–125 °C (mold > 100 °C)
    MFR (190 °C, 2.16 kg)ISO 1133-1:20228–15 g/10 min
    Moisture uptake (23 °C, equilibrium)ISO 62:20080.8–1.2 %
    DensityISO 1183-1:20191.35–1.45 g/cm³
    Comparative Property Matrix: VG7274, Conventional GFR-PLA, and Talc-Filled High-Heat PLA
    PropertyVG7274Conventional GFR-PLA (20 wt%)Talc-Filled PLA (20 wt%)
    HDT-A (1.8 MPa)105–125 °C85–100 °C85–100 °C
    Tensile strength85–105 MPa70–90 MPa45–60 MPa
    Tensile modulus6.5–8.5 GPa5.5–7.5 GPa3.5–5.0 GPa
    Notched Charpy impact6.0–9.0 kJ/m²6.5–9.5 kJ/m²3.0–5.0 kJ/m²
    Crystallinity (molded, mold > 100 °C)35–45 %< 10 %15–25 %
    Flow/cross-flow modulus anisotropy30–50 %30–50 %10–20 %

    Vent depth for glass-fiber-reinforced PLA tooling is specified at 0.02–0.03 mm, shallower than the 0.03–0.05 mm used for unfilled PLA, because glass fibers can block deep vents and produce flash at the parting line. Mold cavity surface roughness below Ra 0.1 µm is avoided on aesthetic surfaces because the glass fiber phase produces visible glass dispersion patterns on polished surfaces; a textured finish of Ra 0.4–0.8 µm masks fiber orientation marks more effectively. Ejector pin placement must account for the higher shrinkage anisotropy of VG7274 relative to unfilled PLA; draft angles below 0.5° are not recommended on ribs deeper than 10 mm.

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