Products

Formosa Plastics HDPE TAISOX 8003

    • Product Name: Formosa Plastics HDPE TAISOX 8003
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    VTB
    Specifications
    HS Code 418472
    Density 0.960 g/cm³
    Melt Flow Rate 0.30 g/10 min
    Tensile Strength At Yield 28 MPa
    Tensile Elongation At Break >500%
    Flexural Modulus 1200 MPa
    Notched Izod Impact Strength 50 J/m
    Vicat Softening Point 127 °C
    Heat Deflection Temperature 75 °C at 0.45 MPa
    Hardness Shore D 65
    Environmental Stress Crack Resistance >1000 h
    Mold Shrinkage 0.02–0.04 mm/mm
    Thermal Conductivity 0.45 W/m·K
    Coefficient Of Linear Thermal Expansion 1.2e-4 /°C
    Dielectric Constant 2.3
    Volume Resistivity >1e15 ohm·cm
    Water Absorption <0.01%

    As an accredited Formosa Plastics HDPE TAISOX 8003 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 8003: 25 kg polyethylene bags, 40 bags per pallet, totaling 1,000 kg.
    Container Loading (20′ FCL) 20′ FCL loaded with Formosa Plastics HDPE TAISOX 8003 in 25 kg bags, palletized, stretch-wrapped, and securely lashed for export.
    Shipping Formosa Plastics HDPE TAISOX 8003 is shipped as non-hazardous polyethylene resin pellets, usually in 25 kg bags or 500–1,000 kg jumbo bags on pallets. Transport in clean, dry trucks or containers. Store away from heat, sunlight, moisture, and contamination. Not regulated for transport; protect packaging from damage. Handle with care.
    Storage Store Formosa Plastics HDPE TAISOX 8003 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and strong oxidizers. Keep original bags or containers tightly closed, off the floor, and protected from moisture, dust, and contamination. Use stable palletized stacks and avoid excessive stacking or physical damage. Follow the supplier’s SDS and local storage regulations.
    Shelf Life Typically 12 months from manufacture when stored dry, unopened, below 30°C, away from direct sunlight; confirm with supplier.
    Application of Formosa Plastics HDPE TAISOX 8003

    Thin-wall pails for water-based latex paints and non-flammable coating intermediates begin with a process window defined by nozzle temperature of 220–240 °C and a mould face temperature held between 15 °C and 40 °C. TAISOX 8003 is specified with a nominal melt flow rate of 0.8 g/10 min under ISO 1133-1:2022 and a nominal density of 0.960 g/cm³ under ISO 1183-1:2019. The material is processed on a reciprocating screw injection moulding machine with an L/D ratio of at least 20:1 and a compression ratio between 2.5:1 and 3.0:1. A check ring must seal without leakage; an in-line screw with a shot capacity of 50–70% of the barrel volume reduces residence time and surface oxidation. For a 5 L pail with a nominal wall thickness of 1.6–2.2 mm, a direct sprue gate or hot-tip valve gate with an orifice diameter of 2.5–3.5 mm is required to avoid jetting. Pack pressure is maintained at 60–80% of peak injection pressure. Lower pack pressure produces sink marks behind the handle bosses; higher pack pressure increases clamp force demand and can deflect the mould core, producing wall-thickness variation exceeding 0.2 mm. Pre-drying is not mandatory when ambient relative humidity is below 50%. At relative humidity above 60%, a hopper dryer cycle of 2 h at 60–70 °C prevents surface splay. Pigment loading for water-based paint containers typically uses a PE-based masterbatch at 2–4 wt%. Iron oxide red, phthalocyanine blue, and carbon black concentrates require a carrier melt flow rate above 10 g/10 min to prevent dispersion defects at low screw speeds. UN packaging for low-hazard liquids is drop-tested under ASTM D5276-19; a filled pail conditioned at −18 °C is dropped from 1.2 m onto a concrete pad. The common failure mode is not brittle gate rupture but flexural cracking at the weld lines around handle windows. Weld-line meeting angles should be held above 75° by gate location and flow leader design. End products include 5 L, 10 L, and 20 L industrial pails, water-based latex paint containers, and non-returnable coating tubs for aqueous primers and sealers. Published data for TAISOX 8003 at sub-zero pail drop conditions specific to UN certification is limited; pre-production drop verification is mandatory for each pail geometry.

    Can TAISOX 8003 Maintain Stack-Load Creep Modulus in Cold-Chain Dairy Crate Return Loops?

    Cold-chain returnable dairy crates are cleaned in tunnel washers with 2–4% sodium hydroxide solution at 60–80 °C and then moved into storage at −20 °C. The controlling material property is not short-term tensile yield but environmental stress crack resistance under ASTM D1693-15, condition B, 100% Igepal CO-630, at 50 °C. For HDPE grades in the 0.8 g/10 min melt flow rate band, ESCR values commonly exceed 50 h, but published data for TAISOX 8003 under this exact protocol is limited. A dairy crate must limit flexural strain at the rib root below 1.5%. Above 2.0%, caustic detergent absorption into the oriented amorphous phase accelerates cracking during repeated wash cycles. The mould temperature is held at 25–45 °C to reduce frozen-in molecular orientation at sharp corner radii. Cooling time extends by 10–20% relative to a chilled mould, but ESCR gains on rib intersections are measurable. The screw is run at a back pressure of 5–15 bar to homogenize melt temperature without excessive shear heating. Stack-load creep is tested under ISO 899-2:2003 with a compressive stress of 0.5–1.0 MPa applied at 40 °C for 1000 h. Creep modulus below 400 MPa in the first 100 h signals unstable stack performance in high-bay cold stores. Short-shots are rejected because flow hesitation at the central grid intersection in 6×6 bottle compartments creates weld lines with low hot melt integrity. A sequential valve-gate hot runner with 4 nozzle drops per cavity is preferred over a single sprue gate. End products include 24-bottle and 48-bottle dairy crates, bread tray return loops, and fish boxes used at ice-storage temperatures. Compatibility with quaternary ammonium sanitizer solutions must be verified before plant trials because cation-active biocide residues can accelerate stress crack propagation in stressed HDPE ribs.

    Tamper-evident closures for edible oil, dairy, and non-carbonated ready-to-drink bottles place TAISOX 8003 in a viscosity-controlled filling regime where the 0.8 g/10 min melt flow rate increases fill pressure but improves environmental stress crack resistance in the tamper band hinge. The mould is a 48-cavity or 64-cavity cold-runner stack tool with pin-point gates of 0.6–1.0 mm diameter. Nozzle temperature is elevated to 230–250 °C. Residence time above 260 °C causes oxidative degradation that appears as yellowing on the tamper band and reduces organoleptic neutrality. The tamper band is formed by an undercut with draw ratio not exceeding 4:1; higher draw ratios generate stress-whitening and inconsistent tear-off force. Slip additives are introduced as a masterbatch containing 5% erucamide, let down to a final erucamide concentration of 0.05–0.15 wt%. Overdosing above 0.25 wt% causes plate-out on mould vents and torque loss on capping lines. Organoleptic neutrality is assessed under EN 1622:2006. Food contact compliance is evaluated under EU 10/2011 with overall migration limits of 10 mg/dm² in food simulants, and under FDA 21 CFR 177.1520 for olefin polymers. Process capability for cap ovality must be maintained below 0.3 mm on a 28 mm neck finish to prevent high-speed capping head jams. End products include 38 mm and 28 mm single-piece closures, dairy cap wads, and edible oil closures with integral tamper-evident bands. Published data for TAISOX 8003 closures under high-speed capping torque remains limited; closure manufacturers must run capper trials above 800 bottles/min if the line uses magnetic clutch heads.

    Agricultural Chemigation Tank Fittings and UV-Stabilized Masterbatch Loading

    Fittings, strainers, and valve bodies in agricultural chemigation service are exposed to dilute fertilizer salts, micronutrient chelates, and nonionic wetting agents at ambient field temperatures. TAISOX 8003 at 0.960 g/cm³ is used as the base resin, but the compounded formulation must include a UV stabilizer system because fittings are installed above ground. A hindered amine light stabilizer masterbatch is added at 0.2–0.5 wt% total HALS content; carbon black masterbatch at 2.0–2.5 wt% is used for black fittings requiring long-term outdoor weatherability. Calcium carbonate masterbatch above 5 wt% is not recommended because filler reduces ESCR and accelerates weld-line failure at threaded boss roots. Injection moulding is performed with a flood feed and a back pressure of 8–15 bar. The melt temperature at the nozzle is 210–230 °C, and mould temperature is 20–35 °C. Thread geometry is specified as rounded-root buttress or stub Acme rather than sharp V-thread to reduce stress concentration. Tensile yield retention after accelerated weathering is assessed under ASTM D638-22; a retention of at least 80% after 2000 h in a xenon-arc weatherometer using ISO 4892-2:2013 cycles is a typical acceptance threshold. ESCR of the compounded part is checked under ASTM D1693-15, condition B. Continuous exposure to sodium hypochlorite above 2000 ppm free chlorine is outside the operational boundary; oxidative degradation reduces notched impact under ISO 179-1/1eA by more than 30% in published HDPE studies. End products include hose barbs, saddle clamp bodies, eductor housings, and strainer bowls used in drip and sprinkler fertigation lines. Alkylphenol ethoxylate-based wetting agents can reduce ESCR; the actual field formulation should be used for immersion stress crack screening rather than relying only on standard Igepal data.

    Application segmentStandard/protocolCritical thresholdTest condition
    Thin-wall pailsASTM D5276-19No leakage after 1.2 m drop−18 °C, filled pail
    Dairy crate return loopsASTM D1693-15Minimum 50 h ESCR, condition B100% Igepal, 50 °C
    Food contact closuresEU 10/2011Overall migration 10 mg/dm²Food simulants, time-temperature repertoire
    Agricultural fittingsASTM D638-2280% tensile yield retentionXenon-arc 2000 h, ISO 4892-2:2013

    Electrostatic discharge control in electronics handling bins deviates from standard HDPE processing because conductive carbon black addition alters both rheology and impact response. TAISOX 8003 is compounded with a conductive masterbatch to reach surface resistance between 106–109 Ω as measured under IEC 61340-5-1:2016 or ANSI/ESD S20.20-2021. At carbon black loading above 6 wt%, the melt flow rate drops below 0.5 g/10 min, increasing injection pressure and requiring nozzle temperature of 230–245 °C. At loading above 12 wt%, notched impact can fall by more than 40% relative to unfilled HDPE; published data for this specific grade is limited. The mould should use large trapezoidal runners and full-round gates to avoid dead spots where carbon black agglomerates can form. Mould release is not required for unfilled parts, but a non-amine mould release is allowed at 0.5–1.0% letdown only when ejection forces exceed press limits. End products are divided boxes, tote inserts, and tray carriers used in semiconductor and circuit-board assembly areas. These bins are not intended for humidity-controlled packaging of moisture-sensitive devices below 5% RH because HDPE water vapour transmission is too high for that function. Antistatic performance must be verified on the formed part, not only on the compounded pellet, because flow-induced orientation causes surface resistivity anisotropy between the gate area and flow front.

    When Returnable Poultry Crates Require Low-Temperature Puncture Toughness After Chlorinated Sanitizer Washes

    Returnable poultry crates in high-care slaughterhouse washdown loops are cleaned with chlorinated alkaline detergents at 60–85 °C and then placed in blast freezers operating at −30 °C. The performance requirement is puncture toughness after repeated sanitizer contact, not clean-room resistance. TAISOX 8003 mouldings are gated so that the base rib network fills before sidewall flow fronts merge; this reduces knife-edge stress concentration at compartment dividers. Injection speed is set to fill the cavity in 1.5–2.5 s. Higher speeds cause burn marks at air traps near corner vents. Pack pressure is held at 70–85% of peak injection pressure for 3–5 s. Mould temperature is held at 20–30 °C for dimensional stability. Low-temperature puncture resistance is assessed with instrumented puncture impact under ISO 6603-2:2000 at −30 °C. A caustic stress crack screening test uses 3% sodium hydroxide at 80 °C for 72 h; stress-whitening at rib roots or hinge points is cause for rejection. End products include poultry transport crates, meat processing trays, and seafood tubs. Published data for TAISOX 8003 under chlorinated detergent cycling is limited; plant trials must include 500 wash cycles to establish fracture initiation thresholds.

    Material Handling Pallet Feet and Anti-Slip Inserts Demand Notched Impact Above 10 kJ/m²

    Pallet feet and anti-slip inserts are thick-section mouldings from 6 mm to 20 mm nominal wall. The critical test is Charpy notched impact under ISO 179-1/1eA at −20 °C; values below 10 kJ/m² after UV aging are unacceptable for outdoor racking. TAISOX 8003 can meet this when the mould temperature is kept at 30–50 °C, which slows cooling and raises crystalline perfection in thick sections. The screw back pressure is set to 10–15 bar, and the melt temperature at the nozzle is 220–240 °C. Because wall thickness exceeds 6 mm, cycle time is controlled by the cooling rate; reduction of cooling time below 25 s produces sink marks and internal voids. Anti-slip inserts are overmoulded onto a filled thermoplastic elastomer; the substrate is preheated to 60–80 °C before TPE injection to ensure adhesion. A diatomaceous earth anti-slip filler masterbatch at 2–4 wt% is used for tread surfaces. End products include industrial pallet feet, rack load-bearing pads, and anti-skid inserts for export packaging. Fatigue under cyclic fork impact is evaluated with a 25 kg drop hammer at 0.5 m height for 100 cycles; the pass criterion is absence of crack propagation from the gate boss into the load-bearing web.

    Free Quote

    Competitive Formosa Plastics HDPE TAISOX 8003 prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please contact us at +8618136850665 or mail to admin@ascent-chem.com.

    We will respond to you as soon as possible.

    Tel: +8618136850665

    Email: admin@ascent-chem.com

    Inquiry

    Get Free Quote of Ascent Petrochem Holdings Co., Limited

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    Formosa Plastics HDPE TAISOX 8003 is a high molecular weight high density polyethylene supplied as pellet stock for blown film extrusion and selected thick-sheet converting. The grade is identified in the TAISOX HDPE product family and is specified by a nominal melt index of 0.30 g/10 min at 190 °C/2.16 kg when measured under ISO 1133-1:2022 and a nominal density of 0.953 g/cm³ when tested to ISO 1183-1:2019. The low melt index is associated with a high molecular weight distribution and long chain relaxation times, which provide the melt tension required to stabilize a blown film bubble at gauges below 20 μm and to support high-stalk processing on conventional high-density film lines. The resin is used in T-shirt grocery bags, vest carriers, thin-gauge industrial liners, and high modulus film applications in which stiffness contributes to handling and conversion speed.

    Because the density is in the upper portion of the polyethylene film range, film produced at 25 μm thickness from HMW-HDPE grades in this interval typically develops a secant modulus in the machine direction of 0.75–0.90 GPa and in the transverse direction of 0.65–0.80 GPa when evaluated under ASTM D882-18. The resulting film stiffness permits down-gauging relative to low density polyethylene; however, the trade-off is lower dart impact resistance than linear low density polyethylene alternatives at equal thickness. This balance is important in bag converting because the film must withstand transfer rollers, perforation, and seal-bar contact without excessive elongation.

    Representative resin properties for Formosa Plastics HDPE TAISOX 8003
    PropertyTest methodRepresentative value
    Melt index, 190 °C/2.16 kgISO 1133-1:20220.30 g/10 min
    DensityISO 1183-1:20190.953 g/cm³
    Tensile strength at yield, 50 mm/minISO 527-2:201228–30 MPa
    Elongation at breakISO 527-2:2012>600%
    Flexural modulus, tangentISO 178:20190.95–1.05 GPa
    ESCR, F50, 10% Igepal, 50 °CASTM D1693-15>500 h
    Vicat softening temperature, A50, 10 NISO 306:2022126–128 °C
    Peak melting temperature, DSCISO 11357-3:2018130–134 °C

    The values above are representative and are not intended to substitute for a certificate of analysis; lot-specific results may shift within the issuing specification window. HDPE of this class is not hygroscopic under normal storage, but surface condensation from cold-storage transfer into a warm high-humidity converting hall can introduce moisture that appears as bubble pinholes. Where ambient relative humidity exceeds 70%, hopper drying at 60–70 °C for 2–3 h is used to remove surface moisture and to reduce melt pressure fluctuations at the die lip.

    What Distinguishes TAISOX 8003 from Lower-Viscosity HDPE Film Grades?

    At equivalent die diameter and screw speed, the lower melt index shifts the extruder operating point toward higher backpressure and torque demand. On a 65 mm grooved-feed extruder with an L/D 30:1 barrier screw, comparative running records from high molecular weight HDPE film campaigns show that specific mechanical energy consumption is approximately 15–25% greater at 80 kg/h than for an HDPE film resin with a melt index of 1.0 g/10 min. The difference arises because the long relaxation times of the high molecular weight fraction limit shear thinning at the die lip; pressure drop through a 1.0 mm die gap can exceed 30 MPa. This pressure is a processing constraint rather than a material defect, and it requires screw designs with high mixing intensity and fixed grooved-feed bushings rather than smooth-bore feed throats.

    Melt fracture can occur when the melt temperature falls below 190 °C or when shear rate at the die lip exceeds 1,000 s⁻¹. The standard corrective step is to raise adapter and die set-points to 205–215 °C without exceeding 230 °C, above which the high molecular weight tail is susceptible to chain scission. The same melt strength that raises backpressure also improves bubble stability under high-stalk conditions, so the grade cannot be evaluated solely by extrusion throughput; conversion yield and gauge uniformity must be included in the cost model.

    Compared with metallocene-catalyzed medium density polyethylene film resins, TAISOX 8003 has higher density and therefore higher stiffness, lower intrinsic impact toughness, and a more pronounced machine-direction/transverse-direction property imbalance. Compared with conventional high-density blown film grades having melt indices of 0.7–1.2 g/10 min, the resin offers greater bubble stability at thin gauge but lower throughput per unit screw speed. The product selection decision typically follows the gauge target: films below 18 μm benefit from the high melt strength of TAISOX 8003, whereas thicker films in less demanding service can be produced with lower-viscosity HDPE grades at higher output.

    Comparative categories for product selection
    PropertyTAISOX 8003Medium molecular weight HDPE film resin, typicalHDPE blow molding resin, typical
    Melt index, 190 °C/2.16 kg, ISO 1133-1:20220.30 g/10 min0.70–1.20 g/10 min0.35–0.50 g/10 min
    Density, ISO 1183-1:20190.953 g/cm³0.950–0.956 g/cm³0.952–0.956 g/cm³
    Tensile yield, ISO 527-2:201228–30 MPa30–32 MPa28–31 MPa
    ESCR, ASTM D1693-15>500 h150–300 h250–400 h
    Processing emphasisHigh-stalk blown film, high melt strengthConventional film output, lower torqueAccumulator blow molding, parison control

    The comparative ranges are supplied as general technical orientation and are not a specification for any single named grade. Published data for specific commercial grades must be checked against the issuing supplier’s product data sheet and certificate of analysis.

    When a 25 μm T-Shirt Bag Film Is Converted on High-Stalk Lines

    Typical blown film conditions for a 25 μm T-shirt bag film on a high-stalk line include barrel temperatures of 190–210 °C, adapter and die temperatures of 210–220 °C, die gaps of 1.0–1.4 mm, blow-up ratios of 3.5–4.5:1, and frost line heights of 600–900 mm. Output rates depend on die diameter and cooling configuration; on a 250 mm die with dual-lip air ring cooling, production rates in the range of 80–120 kg/h are common for high molecular weight HDPE film grades. Internal bubble cooling can extend output stability at the upper end of this range, but it requires more aggressive frost line control to prevent bubble oscillation.

    Published film data for this exact resin are limited in open literature; therefore, the following film performance ranges are drawn from production films based on HMW-HDPE grades with the same intermediate density and are used as process capability references rather than guaranteed values. At 25 μm gauge, machine-direction tensile yield is typically 30–35 MPa and transverse-direction tensile yield is typically 25–30 MPa under ASTM D882-18. Ball-drop impact values measured by ASTM D1709-16a Method A commonly fall between 120 g and 160 g. Elmendorf tear testing under ASTM D1922-15 exhibits a strong orientation effect, with machine-direction tear usually 10–25 g and transverse-direction tear usually 300–500 g; the precise ratio depends on blow-up ratio and frost line height.

    This tear anisotropy is not eliminated by the resin; it is a consequence of high molecular orientation in the machine direction. Bag converters manage the imbalance through tooling design and through orientation of the finished bag so that handle tear loads are applied along the transverse direction where tear resistance is highest. Perforation depth and blade sharpness on conversion lines must be monitored because the high molecular weight film has a greater tendency to split from a small notch than from a clean cut.

    Mechanical Performance and Converting Behavior in Bag Applications

    The environmental stress crack resistance of the resin, measured under ASTM D1693-15, is above 500 h in 10% Igepal solution at 50 °C. This property is relevant in industrial liners and refuse sacks that contact fatty, soapy, or mildly oxidizing liquids. In thin-gauge bag film, the film surface is normally modified with slip and antiblock masterbatch during extrusion because the base resin is not supplied with those additives at levels sufficient for high-speed conversion. Static and blocking control are adjusted by adding a masterbatch containing erucamide or oleamide at letdown ratios between 1% and 3%, depending on required coefficient of friction and seal-bar response.

    Extrusion operations that blend 30–50% post-industrial regrind require attention to gel content and melt pressure variation. Because the high molecular weight grade retains viscosity, regrind with repeated heat history can elevate gel count and create fisheyes in film thinner than 15 μm. Screen packs of 80–100 mesh and short residence time are used to reduce these defects. At shutdown, purging with a lower-viscosity HDPE grade helps prevent residual gel build-up in the die lip and in the helical mandrel channels.

    Processing Boundaries and Additive Constraints

    The practical lower processing temperature for this high molecular weight HDPE is approximately 190 °C. Below this threshold, melt pressure rises rapidly, torque limitations are reached earlier, and the film may show sharkskin at the die lip. The upper processing boundary is approximately 230 °C; extended exposure above this temperature can reduce molecular weight and lower bubble stability. The resin is significantly more torque-limited than high melt index grades, so extruders with worn screw elements or reduced feed-throat cooling may not achieve the same output as lower-viscosity HDPE on the same line.

    Incompatibility with strongly acid-generating additive packages should be assumed at severe processing conditions; high melt residence time with certain halogenated flame retardants or acid-functional masterbatches can promote chain scission and film defects. HDPE of this type is generally suitable for applications requiring olefin polymer compliance under FDA 21 CFR § 177.1520, but converters must verify the specific conditions of use and any migration limits applicable to the finished article. The grade is not designed for pressure pipe extrusion, injection molding, or rotational molding; those applications require different molecular weight, melt flow, and additive packages within the HDPE product range.

    The product should be stored in a dry, covered area, away from direct sunlight and sources of heat. Ambient storage below 40 °C is used to prevent pellet agglomeration and to maintain consistent feed into the extruder. When transtainer or silo transfer introduces temperature difference, the resin should be allowed to reach ambient temperature before opening to avoid condensation on the pellet surface.

    Formosa Plastics HDPE TAISOX 8003 is therefore specified by three primary material parameters: a nominal melt index of 0.30 g/10 min, a nominal density of 0.953 g/cm³, and a high molecular weight distribution sufficient for stable high-stalk blown film at thin gauge. The operational boundary is defined by the torque and pressure demands of the resin rather than by a narrow degradation window; this distinguishes it from lower-viscosity film grades and from high stiffness injection molding HDPE grades in the same density range.

    Top