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Formosa Plastics HDPE TAISOX 9001

    • Product Name: Formosa Plastics HDPE TAISOX 9001
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 627999
    Density 0.954 g/cm3
    Melt Flow Rate 0.05 g/10 min (190°C/2.16 kg)
    Tensile Strength At Yield 26 MPa
    Elongation At Break 600%
    Flexural Modulus 1100 MPa
    Izod Notched Impact Strength 160 J/m
    Vicat Softening Point 126°C
    Heat Deflection Temperature 70°C
    Shore D Hardness 65
    Environmental Stress Crack Resistance >1000 h
    Melting Point 134°C
    Water Absorption <0.01%

    As an accredited Formosa Plastics HDPE TAISOX 9001 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Formosa Plastics HDPE TAISOX 9001 is supplied in 25 kg polyethylene-lined woven bags, 40 bags per pallet (1,000 kg total).
    Container Loading (20′ FCL) 20' FCL container loaded with palletized 25 kg bags of Formosa Plastics HDPE TAISOX 9001, shrink-wrapped and secured for ocean freight.
    Shipping Formosa Plastics HDPE TAISOX 9001 is non-hazardous polyethylene resin, not regulated for transport. It is shipped in 25 kg bags or 1000 kg jumbo bags on pallets, or bulk containers. Store cool, dry, ventilated, away from sunlight, moisture, and ignition sources.
    Storage Store Formosa Plastics HDPE TAISOX 9001 in a cool, dry, well-ventilated warehouse. Keep original bags or octabins closed, on pallets, away from direct sunlight, heat, ignition sources, and strong oxidizers. Prevent moisture, dust, and contamination. Maintain moderate temperature and humidity, use FIFO stock rotation, protect from physical damage, and follow the supplier’s SDS and local regulations.
    Shelf Life Manufacturer-recommended shelf life is typically 24 months under proper storage: cool, dry, sealed packaging, away from direct sunlight and moisture.
    Application of Formosa Plastics HDPE TAISOX 9001

    A 20 L open-head pail with a nominal wall thickness of 2.0 mm and a gate-seal period of 9 s–12 s requires packing pressure between 60 MPa and 80 MPa on a hydraulic-clamp injection molding machine of at least 1800 kN. TAISOX 9001 is processed at a melt temperature of 210°C–230°C and a mold temperature of 15°C–30°C; mold temperatures below 15°C generate flow-front frost on the pail sidewall, while demolding with wall temperatures above 30°C can distort the handle bridge. The base resin carries a nominal density of 0.954 g/cm³ under ASTM D1505 and a melt flow rate of 1.0 g/10 min under ASTM D1238 at 190°C/2.16 kg, placing it in the medium-molecular-weight injection molding HDPE range in which environmental stress crack resistance is favored over long flow in thin sections. For UN-certified 1H2/Y solid pails, drop integrity under 49 CFR 178.603, stack stability under 49 CFR 178.606, and leakproofness under 49 CFR 178.604 are lot-release tests; qualification is not based on the resin certificate alone. Food-contact pails require finished-wall verification under 21 CFR 177.1520 and EU Regulation (EC) No 10/2011, including overall migration at or below 10 mg/dm² in the specified food simulants, because colorants, external lubricants, and regrind source may shift migration values. Hot-runner valve-gate sequencers should open at 65%–75% of the cavity flow-length; later actuation creates hesitation lines at the pail base radius where environmental stress crack resistance under ASTM D1693 Condition B can fall below 50% of an ungated wall specimen.

    Compliance for this class of packaging must be separated into base-resin obligations, compounded-additive obligations, and finished-article obligations because the regulatory test conditions apply to different points in the supply chain.

    ObligationReferenceVerification condition
    US food-contact olefin polymer21 CFR 177.1520Finished article extraction; migration cell for aqueous and fatty simulants
    EU food-contact plasticsEU Regulation (EC) No 10/2011Overall migration limit 10 mg/dm²
    REACH SVHC communicationRegulation (EC) No 1907/2006Article 33 threshold 0.1% w/w per SVHC
    RoHS restricted substancesDirective 2011/65/EUPb, Hg, Cd, Cr(VI), PBB, PBDE limits by homogeneous material
    UN dangerous goods packaging49 CFR 178.603–178.606Drop, stack, and leakproofness lot-release tests

    How Does Gate Design Affect Environmental Stress Crack Resistance in Returnable Logistics Crates?

    In returnable logistics crates molded from TAISOX 9001 in a 35 L bottle-crate geometry with nominal sidewall thickness of 3.5 mm and top-frame rib height of 8 mm, the highest stress concentration occurs at the gate-weld interface. When a heated sprue bushing feeds a cold-runner network with 8 edge gates, the flow front splits around the handle aperture and forms a mechanical weld at roughly 90° to the fill direction; the tensile strength of that weld, measured on specimens cut from the crate wall under ISO 527-2, commonly falls to 60%–75% of the bulk value. Substituting a hot-runner manifold with valve gates above each sidewall relocates weld lines into aperture corners and improves notched Izod impact at −20°C by 10%–20% relative to cold-runner parts under ISO 179-1/1eA, but the improvement is sensitive to valve pin temperature and packing pressure; if the valve pin cycles more than 2°C below melt temperature, gate freeze-off time shortens and low molecular weight material is trapped at the gate vestige.

    Machine settings for stable crate filling fall between 70 MPa and 100 MPa injection pressure, with hold pressure from 50 MPa to 70 MPa for 7 s–10 s and screw back pressure at 0.5 MPa–1.0 MPa. Mold temperature should remain between 15°C and 25°C; above 25°C, differential shrinkage between the 8 mm top-frame rib and 3.5 mm sidewall can exceed 0.5 mm across a 400 mm span, causing lid interference and stack instability. The solidification window narrows when recycled content exceeds 30%; polypropylene contamination is controlled by the incoming PCR specification because PP domains reduce low-temperature dart impact under ISO 6603-2 and create visible delamination at the gate area. For agricultural crates exposed to wet-dry cycling, validation under ASTM D4169-22 DC 5 or ISTA 7D should include at least 5 return-cycle simulations; HDPE relaxes clamping ribs after repeated load, and diagonal dimensional change should remain below 2%.

    Caps, Closures and Tamper-Evident Band Dimensional Stability

    Because the melt flow rate of TAISOX 9001 remains at 1.0 g/10 min, the practical minimum wall thickness in a cold-runner stack mold is approximately 1.2 mm at a flow length of 120 mm; beyond that, the flow length-to-wall thickness ratio exceeds 100:1 and the tamper-evident bridge fills with short shots or jetting. This grade is therefore applied in thick-wall industrial closures, drum plugs, and child-resistant caps where the seal bridge is 1.5 mm–2.5 mm and the tamper ring experiences tensile hoop stresses from mechanical application. Linear mold shrinkage values under ASTM D955 should be confirmed before cavity steel is cut: 1.5%–2.0% parallel and 2.0%–2.5% perpendicular. Dimensional stability after 48 h at 50°C requires annealed cap dimensions to be checked against removal torque specifications under ASTM D2063 or ASTM D3472. For a 63 mm drum plug, radial seal interference is typically held at 0.3 mm–0.5 mm; below 0.25 mm, leak rates under ASTM D4991 can exceed 10 mL/h under air pressure. Antistatic and slip additives used on chemical closures should be pre-screened for environmental stress crack resistance depression because tertiary amines at loadings above 0.2% can reduce Condition B ESCR under ASTM D1693. Melt temperature should not exceed 240°C, and hold time above 3 min at that temperature increases low molecular weight oxidation species that may migrate into packaged contents. At the tamper-evident band hinge, radii below 0.3 mm cause band rupture on high-speed capping lines operating at 60–120 closures/min.

    Refrigerator storage containers and drawer-style home organization units molded from TAISOX 9001 require low-temperature impact resistance at −20°C and a surface finish free of splay. A wall thickness of 2.0 mm with a projected area of 0.35 m² demands a clamp force above 7000 kN when cavity pressure reaches 50 MPa, though gate location and fill imbalance can shift the actual machine requirement. The grade’s 1.0 g/10 min melt flow rate limits filling of long drawer faces; direct edge gates or fan gates should be positioned at the base centerline rather than at the rim to keep the weld line in a low-stress bottom corner and to avoid visible flow marks. A melt temperature of 210°C–230°C and mold temperature of 20°C–30°C produce a surface gloss range of 30–50 at 60° under ASTM D523; gloss drops sharply when mold temperature falls below 15°C or regrind content exceeds 20%. Food-contact components require finished-article compliance with 21 CFR 177.1520 and EU Regulation (EC) No 10/2011, including overall migration not exceeding 10 mg/dm²; resin compliance alone does not cover the pigment, antistatic, or slip system. Freezer-to-microwave use is outside the service boundary because sustained temperatures above 80°C cause warpage and odor transfer, and HDPE is not suitable above 90°C. Non-food storage totes can incorporate up to 30% post-industrial regrind without changing the colorant carrier, but post-consumer content above 50% should be evaluated for gel count under ASTM D7310 and filter pressure under ISO 4577.

    When 100 Percent Regrind is Reintroduced into Non-Food Packaging Lines

    At 100% in-house regrind, non-food packaging lines running TAISOX 9001 shift the processing window and the acceptance profile more than the nominal melt-flow-rate value suggests. After 4 heat histories through a screw with L/D 24:1, the melt flow rate can drift from 1.0 g/10 min to 0.8 g/10 min or rise above 1.2 g/10 min, depending on whether chain extension from residual peroxide decomposition or chain scission from thermal oxidation dominates. Production lots should therefore be sampled from the granulator and re-checked under ASTM D1238, because cavity pressure can vary by more than 10% at a fixed screw position when melt-flow-rate drift is not compensated. Oxidation induction time decreases with each heat cycle; fresh HDPE typically shows an OIT above 20 min at 210°C, while regrind-dominated feed can fall below 5 min, the practical lower limit for stable plastication without surface defects. Gels and oxidized particles are counted under ASTM D7310 or equivalent; a rise above the molder’s internal limit signals loss of filtration and risk of black speck contamination. The terminal product class—refuse bins, collapsible crates, and protective dunnage—does not require food-contact status, which allows clean post-consumer HDPE if the feed stream is lot-controlled for density by ASTM D1505 and melt flow rate by ASTM D1238. A linear blend of 70% virgin TAISOX 9001 to 30% clean post-industrial regrind is a standard starting point for refuse-bin sidewalls of 3.0 mm–4.0 mm; higher regrind content requires lowering injection speed by 10%–20% and raising melt temperature by 5°C–10°C to maintain complete filling around mold inserts. Cold-weather impact validation is conducted under ISO 179-1/1eA at −20°C and 23°C; exposure below −30°C is not recommended unless the design eliminates sharp handle cut-outs and the regrind source is free of degraded PP.

    Pallet and Dunnage Weight Reduction Through Processing Window Control

    When pallet platforms are molded from TAISOX 9001 in hot-runner tools with a projected area above 0.8 m², the required clamp force exceeds 20,000 kN, and the melt flow rate of 1.0 g/10 min requires multiple sequential valve gates to fill the perimeter board and cross-rib structure. The practical nominal wall for flat pallet decks is 4.0 mm–6.0 mm; below 4.0 mm, panel bending stiffness under a 1000 kg uniformly distributed load falls below typical load ratings under ISO 8611, while above 6.0 mm cycle time increases because thick HDPE sections cool slowly. Melt temperature is held between 215°C and 235°C, and mold temperature is held between 15°C and 25°C; higher mold temperatures reduce molded-in stress but increase flatness deviation because shrinkage of 1.5%–2.5% across a 600 mm deck creates edge curl if cooling channels are unbalanced between top and bottom faces. The pallet must be cooled under pressure until gate-seal time is reached, typically 20 s–30 s depending on section thickness; premature gate freeze-off leads to sink marks at rib intersections and a reduction in top-deck flatness that fails a 2.0 mm flatness criterion under ISO 8611 or customer-specific measurement. For open-deck pallets, weld lines where the fork strap meets the deck should be placed at 45° to the main bending direction; weld-line tensile strength under ISO 527-2 must remain above 70% of the bulk value to prevent crack initiation after repeated forklift entry. Terminal products include export pallets, rackable storage platforms, and heavy dunnage boards; these are non-food applications, but REACH and RoHS obligations still apply to colorants and processing aids.

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    Certification & Compliance
    More Introduction

    Formosa Plastics HDPE TAISOX 9001 is a high-molecular-weight ethylene copolymer supplied as pelletized extrusion blow molding resin. The material carries the polymer CAS registry number 9002-88-4 and is positioned for large industrial blow moldings where melt strength and environmental stress crack resistance are load-bearing requirements. Manufacturer-published typical values list density at 0.954 g/cm³ according to ASTM D1505 and melt flow rate at 0.05 g/10 min under 190°C/2.16 kg according to ASTM D1238; the equivalent ISO method is ISO 1133-1:2022. The high-load melt flow rate under 190°C/21.6 kg is typically 6.0 g/10 min, yielding a flow ratio near 120. That ratio indicates a broad molecular weight distribution selected for parison hang strength rather than low-pressure injection fill.

    Typical application coverage in distributor literature includes extrusion blow molding of large containers, industrial drums, and technical parts. The low MFR excludes the grade from injection molding and from thin-wall high-speed continuous extrusion processes where cycle time is controlled by melt flow. Accumulator head blow molding machines with shot capacity matched to part weight are the standard conversion route.

    Typical published property data for Formosa Plastics HDPE TAISOX 9001
    Property Test method Typical value Unit
    Density ASTM D1505 0.954 g/cm³
    Melt flow rate ASTM D1238 (190°C, 2.16 kg) 0.05 g/10 min
    High-load melt flow rate ASTM D1238 (190°C, 21.6 kg) 6.0 g/10 min
    Tensile yield strength ASTM D638 27.5 MPa
    Elongation at break ASTM D638 >600 %
    Flexural modulus ASTM D790 1,100 MPa
    ESCR F50 ASTM D1693 Condition B, 10% Igepal CO-630, 50°C >1,000 h
    Notched Izod impact at -40°C ASTM D256 no break —
    Brittleness temperature ASTM D746 <-70 °C

    Values are typical from published literature and should not replace the lot-specific certificate of analysis.

    Rheological Boundaries in Accumulator Head Processing

    Temperature control at the die head is a critical processing threshold. The recommended melt temperature for TAISOX 9001 is 190°C–220°C; die head settings are typically maintained within 190°C–210°C, while barrel zones range from 180°C to 220°C. A deviation of ±5°C at the head produces measurable shifts in parison sag, die swell, and top-load distribution in finished containers. Sustained exposure above 240°C increases the risk of chain scission, gel formation, and odor. Below 180°C, the high-molecular-weight melt may exhibit insufficient plastication, excessive torque, and melt fracture at the die lip.

    Die swell and parison sag are the governing variables. The low melt flow rate provides high melt strength, allowing parison hang times of 15–20 s on large drum tooling, but the same viscosity increases sensitivity to core-temperature gradients. Operators must profile the die gap to compensate for diameter swell and to avoid pinch-off thinning at the mandrel and die bushing. Accumulator head lines benefit from grooved-feed extruders with L/D ratios of 24:1–30:1 and barrier screws; specific output is lower than for a 0.3 g/10 min HDPE blow molding grade, so screw speed must be limited to prevent shear heating above 230°C. The die gap is commonly set between 0.8 mm and 1.5 mm and adjusted during parison programming; a wider initial gap increases swell but can reduce wall-thickness control at the pinch-off.

    On production-scale accumulator-head lines, the principal bottleneck observed with this grade is not melting but thermal homogenization. Parison programming must be delayed until the melt temperature measured at the accumulator is stable within ±3°C. Shot size is normally set to 1.1–1.3 times the finished part weight to allow for flash and parison preblow. Mold temperatures between 10°C and 40°C are adequate for dimensional stability; cooling time scales with wall thickness squared, and thick-walled drum sections above 3 mm require extended blow time to prevent post-mold shrinkage and warpage. Pre-drying is not normally required for sealed pellet handling; condensation after outdoor storage should be removed by drying at 80°C for 2 h before extrusion.

    What Limits the Use of TAISOX 9001 in Thin-Wall Containers?

    Thin-wall blow molding below 0.8 mm nominal wall thickness is not an appropriate conversion route for this grade. The 0.05 g/10 min melt flow rate restricts volumetric throughput and increases extruder pressure; in continuous shuttle or wheel machines, the parison may not release cleanly from the die and wall-distribution control suffers. Published data for this specific configuration is limited, because the grade is intended for large-part accumulator applications. If thin-wall containers are required, a lower-viscosity HDPE with MFR above 0.3 g/10 min is conventionally selected, recognizing that ESCR and drop impact at low temperature will be lower than those of TAISOX 9001.

    Mechanical property data published in the supplier’s technical datasheet place tensile yield strength at approximately 27.5 MPa (ASTM D638) and elongation at break above 600%. Flexural modulus is approximately 1,100 MPa (ASTM D790), which provides high top-load rigidity for tight-head drums. The notched Izod impact at -40°C is reported as no break, and the brittleness temperature is below -70°C when tested according to ASTM D746. These values are typical and are not lot-specific guarantees; certificates of analysis control each shipment.

    Environmental stress crack resistance is the defining fitness-for-service property for chemical drums. The datasheet value for ESCR, measured as F50 in 10% Igepal CO-630 at 50°C under ASTM D1693 Condition B, exceeds 1,000 h. This resistance derives from the high molecular weight fraction and comonomer placement; the public datasheet does not specify the exact comonomer. In aggressive liquids such as aromatic hydrocarbons, ketones, and surfactants, final article compatibility must be confirmed by immersion testing because ESCR is stress-dependent and may decline at molded-in notch regions, pinch-off lines, and sharp corners.

    Pinch-off weld lines represent a known stress concentration in drum blow molding. The geometry should be designed with a sharp compression edge and an adequate flash pocket; a dull or overly wide pinch-off increases residual stress and reduces effective ESCR despite the datasheet performance of the resin. Mold vacuum and venting also influence how the parison lays into the pinch-off, and insufficient venting can entrap air at the weld line.

    When Chemical Resistance and Environmental Stress Crack Resistance Govern Drum Service Life

    Chemical containment applications require a match between resin, closure, and wall thickness. TAISOX 9001 is used in drums intended for water-based industrial chemicals, detergents, and non-flammable liquids; its high ESCR supports resistance to stress cracking caused by molded-in strain. The material is not recommended for continuous contact with strong oxidizing acids or aromatic solvents; published compatibility data for specific chemical formulations may be limited, and permeation tests such as ASTM D2684 are required for hazardous goods packaging. Drop impact at -18°C is often part of dangerous goods qualification under UN/DOT 49 CFR or ADR, and the low-temperature impact performance of this grade supports post-conditioning drop tests on 30–220 L containers.

    For packaging of aggressive solvents, barrier treatment or multilayer construction may be required; the base polyethylene layer provides mechanical strength but not hydrocarbon barrier. In such structures, TAISOX 9001 functions as the load-bearing layer, while the barrier layer is typically polyamide or EVOH. The density of 0.954 g/cm³ also contributes to top-load capacity when containers are stacked; creep testing at 40°C should be performed for warehouse stacks exceeding 3 m.

    Compared with general-purpose HDPE blow molding grades with MFR near 0.3–0.5 g/10 min, TAISOX 9001 has higher melt strength and longer allowable parison hang time, but lower throughput and higher extrusion energy input. Compared with injection-molding HDPE grades with MFR above 10 g/10 min, the product cannot fill thin walls at high speed but delivers substantially better ESCR and low-temperature impact. In the supplier’s HDPE portfolio, the grade is therefore separated from small-bottle and cap formulas; it is not a drop-in replacement for a low-viscosity HDPE because tooling and accumulator shot capacity must be re-evaluated. The density at 0.954 g/cm³ also differs from lower-density HDPE film grades, which have higher dart impact in film form but insufficient stiffness for large rigid containers.

    Screening the Material Against Global Chemical and Food-Contact Obligations

    Formosa Plastics HDPE TAISOX 9001 is supplied under standard industrial hygiene and regulatory controls. The resin is not classified as hazardous under GHS; however, pellet handling generates dust and slip hazards. Food-contact suitability is typically referenced to 21 CFR 177.1520 for olefin polymers when the final article meets migration limits; compliance must be verified on the finished part because processing aids and color concentrates may change the overall migration profile. EU food-contact plastics may be assessed under Regulation (EU) No 10/2011 with an overall migration limit of 10 mg/dm² for plastic articles. Heavy metal restrictions under REACH and RoHS 2011/65/EU are normally addressed through raw material controls; no intentionally added SVHC is disclosed above 0.1% w/w.

    Lot-to-lot variation on production lines is observed primarily as shifts in high-load melt flow rate and die swell. Converters of large drums commonly implement incoming melt-flow verification at 21.6 kg and 190°C to reject drifting lots before extrusion. The acceptable regrind fraction is not a single datasheet value; recycled content above 10% should trigger re-qualification of ESCR and drop impact because repeated thermal processing reduces the high-molecular-weight fraction that governs crack resistance.

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