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Formosa Plastics HDPE TAISOX 9003

    • Product Name: Formosa Plastics HDPE TAISOX 9003
    • 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 663181
    Polymertype High Density Polyethylene (HDPE)
    Density 0.954 g/cm³
    Meltflowrate 0.30 g/10 min (190°C/2.16 kg)
    Meltingpoint 131 °C
    Vicatsofteningpoint 124 °C
    Heatdeflectiontemperature 70 °C at 0.46 MPa
    Tensilestrengthatyield 27 MPa
    Elongationatbreak >500 %
    Flexuralmodulus 1100 MPa
    Notchedizodimpactstrength 13 kJ/m² at 23 °C
    Shoredhardness 66
    Thermalexpansioncoefficient 1.2 × 10⁻⁴ /°C
    Waterabsorption <0.01 %
    Dielectricstrength 20 kV/mm
    Moldshrinkage 1.5–3.0 %
    Processingmethod Injection Molding

    As an accredited Formosa Plastics HDPE TAISOX 9003 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 9003 is packaged in 25 kg polyethylene-lined paper bags, palletized, wrapped, and labeled for industrial handling.
    Container Loading (20′ FCL) 20′ FCL container loaded with 25 kg bags of Formosa Plastics HDPE TAISOX 9003, palletized, shrink-wrapped, and secured for transport.
    Shipping Formosa Plastics HDPE TAISOX 9003 ships as non-hazardous, non-regulated polyethylene pellets. Typical packaging: 25 kg bags, jumbo bags, or bulk containers. Transport by truck, rail, or sea freight in dry, ventilated conditions; protect from moisture, direct sunlight, contamination, and excessive heat. Standard general cargo handling applies.
    Storage Store Formosa Plastics HDPE TAISOX 9003 in a cool, dry, well-ventilated warehouse. Keep original bags sealed, off the floor, away from direct sunlight, moisture, heat, flames, and strong oxidizers. Avoid contamination and excessive stacking. Use clean handling equipment; ground/bond if dust develops. Maintain ambient temperature and follow the supplier’s SDS and local regulations. Do not store near food or drinking water.
    Shelf Life Formosa Plastics HDPE TAISOX 9003: typically 24 months if stored unopened in cool, dry, ventilated conditions, away from direct sunlight.
    Application of Formosa Plastics HDPE TAISOX 9003

    TAISOX 9003 is a high-molecular-weight high-density polyethylene resin with a producer-published melt mass-flow rate of 0.3 g/10 min under ISO 1133-1:2022 at 190 °C/2.16 kg and a nominal density of 0.950 g/cm³ under ISO 1183-1:2019. In 200 L tight-head drum production for UN-certified liquid packaging, the material is processed on accumulator-head blow moulding lines equipped with a 120 mm grooved-feed barrier screw and an L/D 24:1 cylinder. Barrel zone set-points are staged from 165 °C at the feed throat to 205 °C at the metering section, while the accumulator head is held at 198–205 °C and the parison die gap is set between 35 mm and 45 mm for a net part weight of 10.0–10.8 kg. The parison is extruded over 4–6 s, pre-blown at 0.05–0.10 MPa, transferred to a closed steel mould held at 15–25 °C, and expanded at 0.6–0.8 MPa for 120–180 s of in-mould cooling. A typical dry blend for black drum bodies is 97.0 wt% TAISOX 9003 with 3.0 wt% carbon black masterbatch containing 40% carbon black in an HDPE carrier; increasing the masterbatch above 3.5 wt% is avoided because low-temperature instrumented dart impact under ISO 6603-1:2000 at -18 °C has shown a sharp reduction in total penetration energy in production trials. The moulded drum body is tested under 49 CFR 178.604 to a hydrostatic pressure of 100 kPa for 10 min and under 49 CFR 178.603 for drop integrity from 1.2 m at -18 °C after conditioning for 24 h. The resulting 200 L tight-head container carries the UN marking code 1H1/Y1.5/200/... for Packing Group II liquids with specific gravity up to 1.5. Batch-to-batch variation in top-load buckling strength is controlled at the moulding line by maintaining a wall thickness at the chime of 6.0–8.0 mm and a shoulder radius of at least 15 mm. Pre-drying is not required when resin is stored in sealed hoppers at 20–25 °C; however, if condensation occurs after outdoor storage below dew point, a 2 h hopper drying cycle at 80 °C prevents melt-pressure fluctuation above 2 MPa at the extruder head.

    Mandatory assessmentStandard or clauseAcceptance valueSpecimen or condition
    Melt mass-flow rateISO 1133-1:20220.3 g/10 min190 °C, 2.16 kg
    DensityISO 1183-1:20190.950 g/cm³Compression-moulded plaque
    Environmental stress-crack resistanceASTM D1693-21 Condition BF50 600 h minimumNotched 38 mm × 13 mm specimen in 10% Igepal CO-630 at 50 °C
    Low-temperature dart impactISO 6603-1:2000No brittle failure at -18 °CFinished drum wall section
    Hydrostatic pressure49 CFR 178.604100 kPa for 10 minFinished 200 L drum
    Drop integrity49 CFR 178.6031.2 m at -18 °CConditioned 24 h, Packing Group II liquid

    What Limits Wall-Thickness Uniformity in 1,000 L Mono-Layer IBC Inner Bottles?

    Parison programming accuracy and tooling temperature balance govern the wall-thickness distribution of 1,000 L mono-layer IBC inner bottles blow moulded from TAISOX 9003. The accumulator-head machine typically uses a 150 mm screw with L/D 24:1 and a 120-point radial wall-thickness programmer; die gap modulation from 30 mm to 55 mm is required to compensate for a parison length exceeding 1,800 mm. Melt temperature at the die exit is held at 190–210 °C, and the accumulator head pressure is maintained between 35 MPa and 45 MPa to prevent shear-induced molecular-weight degradation. Up to 20 wt% clean post-industrial regrind from trimmed parison flash and rejected bottles is added to the virgin resin feed, provided the regrind is shredded below 6 mm, dried to a volatile content below 0.05 wt% per ISO 15512:2019, and metered separately to avoid shot-to-shot density variation. The mould is held at 12–20 °C with internal cooling channels designed to remove heat from the pinch area at a flux of approximately 1.8 W/cm²; inadequate pinch cooling produces a weld-line thickness below 3.0 mm and reduces IBC sidewall burst strength below the required 150 kPa hydrostatic test level. Wall thickness at the sidewall centre is specified at 3.5–4.5 mm, with a reduction to 2.8 mm at the handle recess permissible only if the drop test under 49 CFR 178.603 is repeated at -18 °C. Environmental stress-crack resistance is tracked on each resin lot under ASTM D1693-21 Condition B; production lots with F50 values below 600 h are excluded from containers intended for surfactant-based liquids. The finished inner bottle is subsequently mounted into a steel or blow-moulded outer frame to form a composite IBC tested under 49 CFR 178.705–178.707 for vibration, top lift, drop and leakproofness performance.

    Because twin-sheet thermoforming of industrial dunnage requires a melt that retains sag resistance across a free span of 800–1,200 mm, TAISOX 9003 is extruded into sheet at a surface temperature of 200–210 °C and immediately chilled through a polished three-roll stack set at 75–85 °C. The sheet formulation is 98.0 wt% virgin TAISOX 9003 and 2.0 wt% carbon black masterbatch; if reprocessed sheet skeleton is reintroduced, the regrind fraction is limited to 20 wt% after shredding to 8 mm and drying at 80 °C for 2 h. Extrusion is performed on a 90 mm single-screw extruder with L/D 30:1, a barrier screw, and a 20/40/60 screen pack placed before a 1,200 mm sheet die. The roll-stack gap is calibrated to produce sheet thickness from 4 mm to 12 mm; haul-off speed is set between 0.8 m/min and 2.4 m/min depending on target thickness. Twin-sheet thermoforming uses double-sided ceramic heaters with a surface temperature of 180–190 °C, plug assist, and vacuum of -0.08 MPa; forming below 170 °C increases plug penetration marks and knit-line weakness in the finished part, while forming above 205 °C causes sheet sag and non-uniform wall distribution. Tensile properties are measured on specimens cut from thermoformed corners under ISO 527-2:2012 Type 1B, and corner thinning below 60% of original sheet thickness is rejected because it reduces load-bearing capacity below the specified 800 kg static load for automotive assembly trays. The finished dunnage and material-handling trays comply with heavy metal restrictions in RoHS Directive 2011/65/EU Annex II and are evaluated for REACH SVHC content when export documentation is required.

    When Automotive Fuel Tank Skins Are Coextruded with EVOH Barrier Layers

    A six-layer automotive fuel tank shell utilises TAISOX 9003 as the outer and inner HDPE skin layers because its high molecular-weight fraction maintains parison stability during coextrusion with a weakly melt-bonded ethylene-vinyl alcohol copolymer barrier. The layer distribution by volume is commonly set at 25% outer HDPE, 40% regrind, 3% adhesive tie, 2% EVOH, and 30% inner HDPE; the EVOH layer is held at 205–215 °C, while the HDPE layers and accumulator head are operated at 210–220 °C, and the combined melt temperature at the die exit is not permitted to exceed 220 °C because EVOH shear degradation produces gel particles larger than 0.3 mm that weaken barrier continuity. Extruder sizes for the outer, inner and regrind layers are typically 60–90 mm with L/D 24:1; the barrier extruder is a 30 mm or 35 mm machine operating at 40–60 rpm. Mould temperature is maintained at 15–20 °C, blow pressure at 0.7–0.8 MPa, and cooling time between 200 s and 280 s for a 60–90 L tank. The formed tank is tested under UNECE Regulation No. 34 for fire resistance, low-temperature impact and fuel permeability; total hydrocarbon emission below 1.5 g/m²/day at 40 °C is required after CE 10 fuel conditioning, which is not achieved without the EVOH barrier or post-fluorination. For aggressive alcohol fuel blends above E10, sulfonation or fluorination of the HDPE skin is applied to reduce permeation through the unpolar polyethylene matrix, and the outer HDPE layer must be compounded without migratory slip additives because they reduce interlayer peel strength below 3 N/15 mm under ISO 11339:2022.

    Extruded Corrugated Conduit Crush Resistance and Wire Pull Tension

    For large-bore corrugated utility conduit, TAISOX 9003 is extruded through a corrugating block system at a melt temperature of 195–205 °C; the block vacuum is set to -0.06 MPa and cooling water is held at 20–25 °C to lock hollow corrugation profiles before the pipe exits the mould blocks. The formulation uses 97.5 wt% TAISOX 9003 and 2.5 wt% UV-stabilized carbon black masterbatch; carbon black dispersion is verified by optical microscopy at 100× to exclude agglomerates above 20 µm that create micro-cracks under crush load. Extrusion is performed on a 75 mm single-screw extruder with L/D 25:1 and a 20/40/60 screen pack; the die head is set at 200 °C, and screw speed is adjusted between 35 rpm and 55 rpm to maintain a melt pressure of 20–25 MPa. For a 110 mm outside-diameter corrugated duct, initial crush stiffness must exceed 320 kPa at 5% deflection under ASTM D2412-21; this threshold is not reached if mould block clamping pressure falls below 0.4 MPa or if the melt temperature drops below 190 °C, producing a visible weld line at the corrugation root. Wire pull tension is evaluated by drawing a 4 mm test cable through a 30 m straight run with a 90° bend radius of 1,200 mm; pulling force must remain below 250 N to prevent scoring of the inner wall. The finished conduit is supplied to utility cable ducting applications where the outer HDPE shell is required to meet the dimensional and weathering provisions of ASTM F2160-22; direct burial under AASHTO H-20 live loads without concrete encasement is outside the rated operational envelope of this wall configuration.

    After parison pinch-off on a 500 L agricultural spray tank moulded from TAISOX 9003, the pinch line is compression welded at a melt temperature of 200 °C and a mould clamp force of 1,200 kN to eliminate cold-flow channels that would otherwise propagate under repeated hydraulic pressure cycling. The agricultural tank formulation is 96.5 wt% TAISOX 9003, 2.5 wt% UV-stabilized masterbatch, and 1.0 wt% blue pigment masterbatch; the UV package is selected to maintain tensile elongation at break above 300% after 2,000 h of accelerated weathering under ISO 4892-3:2016 cycles. Extrusion blow moulding is conducted on a 100 mm accumulator-head machine with L/D 24:1, a die gap of 50 mm, a blow pressure of 0.65 MPa, and a mould temperature of 15–20 °C; wall thickness is specified from 6 mm at the sidewall to 12 mm at the saddle support points. The tank is subjected to a hydrostatic pressure test at 1.5 times rated capacity for 30 min and to a low-temperature drop test from 0.8 m at -10 °C after conditioning for 24 h. Environmental stress-crack resistance after contact with dilute pesticide carriers is assessed under ASTM D1693-21 Condition B, and a minimum F50 of 600 h is used as the internal pass/fail criterion for tanks intended to hold methomyl- or glyphosate-based formulations. The material is not used with concentrated aromatic solvents above 10 wt% because solvent-induced crazing reduces the weld line burst pressure below the rated service pressure of 200 kPa.

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    Certification & Compliance
    More Introduction

    Formosa Plastics High-Density Polyethylene TAISOX 9003 is a high-molecular-weight, blow-molding-grade resin supplied in pellet form for extrusion blow molding of large-volume industrial containers, tight-head drums, and automotive fluid-handling components. The grade is differentiated within the TAISOX series by a nominal melt flow rate of 0.35 g/10 min under 2.16 kg at 190°C (ASTM D1238) and a nominal density of 0.954 g/cm³ (ASTM D1505). The melt flow rate places the material below general-purpose injection and blow molding HDPE grades and indicates a high molecular weight tailored for parison stability. Manufacturer-published data should be treated as typical values, not as batch-specific guarantees; incoming lot acceptance requires a certificate of analysis.

    Material Identity and Typical Physical Property Ranges

    For incoming resin qualification, the following typical values are applied. They are obtained from standard compression-molded test specimens and do not represent guaranteed performance in blow-molded parts.

    PropertyTypical valueTest method
    Melt flow rate0.35 g/10 minASTM D1238 at 190°C, 2.16 kg
    Density0.954 g/cm³ASTM D1505
    Tensile strength at yield26 MPaASTM D638
    Elongation at break>600%ASTM D638
    Flexural modulus850 MPaASTM D790
    ESCR F50, 10% Igepal, Condition B>600 hASTM D1693
    Notched Izod impact at 23°CNo breakASTM D256
    Brittleness temperature<-70°CASTM D746
    Hardness65 Shore DASTM D2240
    Vicat softening temperature125°CASTM D1525

    Values in the table are manufacturer-published typical values and should not be read as specification limits. Lot-to-lot variation in high-molecular-weight HDPE can shift melt flow rate within roughly ±0.05 g/10 min and density within ±0.002 g/cm³, depending on reactor and pelletizing conditions. The ESCR test is particularly sensitive to stress-cracking agent concentration, temperature, and specimen notching; comparative ESCR evaluation should use the same ASTM D1693 condition and aging bath temperature across resin lots. Alternative test methods such as ISO 1133-1 for melt flow rate and ISO 1183-1 for density may produce comparable but not identical values because of slight differences in conditioning and calibration. Regulatory compliance testing under FDA 21 CFR 177.1520 or EU Regulation 10/2011 is end-use dependent and must be performed on the final molded article, not on neat resin pellets.

    The bimodal molecular weight distribution creates two distinct relaxation times. The high-molecular-weight fraction controls zero-shear viscosity and ESCR, while the lower-molecular-weight fraction reduces melt viscosity at high shear. This shear-thinning behavior is significant in blow molding because the material experiences high shear at the die lips and near-zero shear during parison hang. As a result, melt flow rate alone under-predicts processability; processors should consider melt flow ratio or online rheometer data when comparing lots. Published data for melt flow ratio for this grade is limited; however, production trials often measure head pressure at constant screw speed and accumulator fill time as lot-specific controls. Excessively high zero-shear viscosity can cause unstable parison extrusion and require raising melt temperature; excessively low viscosity can cause sag and poor wall thickness control. These two boundaries define a narrow processing window, particularly on machines without closed-loop melt temperature control.

    How does TAISOX 9003 behave during accumulator-head extrusion blow molding?

    Under accumulator-head extrusion blow molding, the high molecular weight of TAISOX 9003 influences screw design, melt temperature, and parison sag. Typical start-point melt temperatures at the accumulator outlet are 190–210°C; head and die zones are often set 5–10°C lower to increase melt viscosity at the die lip and reduce parison sag. On machines with 80 mm to 120 mm grooved-feed extruders and 24:1 to 30:1 L/D ratios, the high-molecular-weight fraction raises back pressure and specific energy consumption compared with fractional-melt HDPE grades. Published capillary viscosity curves for this specific grade are limited; accumulator fill time and melt temperature variation should be recorded as indirect indicators of lot-to-lot flow variation. Die swell is typically positive, requiring diverging die bushings or adjustable die gap profiles. Die gap start points commonly lie between 2 mm and 4 mm for barrel sections and from 1.5 mm to 3 mm for calibrated neck areas; final settings depend on shot size, accumulator pressure, and pinch-off geometry. Melt strength reduces parison sag for hang times up to 20–30 s, but the actual limit is geometry-dependent and must be determined by wall-thickness mapping. Barrier screws or Maddock mixing sections are used to minimize melt temperature heterogeneity; insufficient mixing can produce gel-like high-molecular-weight regions in thick-walled drums.

    Primary application fields include industrial chemical drums, intermediate bulk container liners, water storage tanks, and automotive fuel tank shells. The environmental stress-crack resistance of TAISOX 9003 is the governing material property when containers hold fatty acid esters, nonionic surfactant solutions, alkaline cleaners, or agricultural emulsions; stress cracking can propagate from weld lines at the pinch-off, from closure neck threads, or from carbon-black dispersion defects. Finished drums should be evaluated under ASTM D2463 drop impact and ASTM D2911 hydrostatic pressure burst conditions for UN 1H1 non-removable-head drums. Published data for this specific resin in full-scale UN 1H1 qualification is limited; end users must validate with their specific closure, gasket, and filling liquid. For automotive fuel tank service, wall thickness uniformity and pinch-off strength are more important than neat-resin Izod data; fuel permeation and cyclic pressure fatigue require component-level testing under SAE J2576 or equivalent evaporative emissions protocols.

    When a 200 L tight-head drum is extrusion blow molded

    When a 200 L tight-head drum is extrusion blow molded from TAISOX 9003, parison programming is used to vary the die gap through the shot. The pinch-off tail and shoulder regions are programmed thicker because these zones experience folding and cold-pinch weld stresses during mold closing. Mold temperature is maintained between 10°C and 30°C using chilled water; too low a mold temperature can create surface skin voids, while too high a mold temperature extends cycle time without proportional improvement in impact performance. Blow air pressure is normally 0.6–0.8 MPa. A 200 L drum with sidewall thickness below 2 mm can fail by buckling under top load even if the resin tensile yield is unchanged; top-load and stacking performance are controlled by wall thickness, cooling uniformity, and base geometry rather than by resin yield alone. Cycle time for a typical 200 L drum on a single-station accumulator machine may range from 120 s to 180 s, but published cycle data for this specific resin-machine combination is limited and must be established by trial. Pinch-off weld integrity is a known failure mode when mold closing speed is too high or when flash temperature is too low; production lines often use optical wall-thickness measurement and drop-impact testing on first articles to establish process limits.

    Comparing TAISOX 9003 with Lower-Molecular-Weight HDPE Blow Molding Resins

    Comparing TAISOX 9003 with lower-molecular-weight HDPE blow molding grades having melt flow rates of 0.7–1.0 g/10 min, the primary trade-off is melt strength and ESCR against throughput and die swell. The lower melt flow rate reduces screw output per revolution, requires higher torque at a given screw speed, and can generate additional shear heating in the accumulator. Relative to film-grade TAISOX 9001, TAISOX 9003 is optimized for parison extrusion and wall thickness control rather than bubble stability and film tear resistance. Compared with chromium-catalyzed HDPE grades of similar density, TAISOX 9003 may require different antioxidant and acid-scavenger additivation in color compounding; the base resin stability package should be confirmed before adding metal stearate lubricants or amine-based process aids, as these can alter color stability or accelerate die-lip buildup. The grade is not a drop-in replacement for HDPE injection molding resins because its high molecular weight reduces spiral flow length and increases internal stress orientation in thin walls.

    Pre-drying is not normally required because HDPE moisture absorption is below 0.01% by weight (ASTM D570), but condensation can occur when cold pellets are transferred into a humid processing area; surface moisture can produce splay or internal bubble defects in thick wall sections. Accumulator residence time should be limited at melt temperatures above 220°C; hold times above 5 min can shift color and reduce melt strength. Purging after polyvinyl chloride or polycarbonate requires a polyolefin purge grade or HDPE purge compound; TAISOX 9003 should not be processed directly after heat-sensitive resins without removing acidic degradation residues. For food-contact uses, the base resin is generally within FDA 21 CFR 177.1520 olefin polymer provisions and may be evaluated under EU Regulation 10/2011 migration limits for specific food simulants; however, TAISOX 9003 is more commonly consumed for industrial non-food containers, and compliance must be confirmed for the final compounded article. Published data for this specific product in each cleaning, drying, and food-contact scenario is limited; processors must establish line-specific procedures.

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