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Formosa Plastics HDPE 9001

    • Product Name: Formosa Plastics HDPE 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 330297
    Density 0.960 g/cm³
    Melt Index 0.9 g/10 min (190°C/2.16 kg)
    Tensile Strength At Yield 27.6 MPa (4000 psi)
    Tensile Strength At Break 20.7 MPa (3000 psi)
    Elongation At Break 600%
    Flexural Modulus 1.24 GPa (180,000 psi)
    Tensile Modulus 1.10 GPa (160,000 psi)
    Hardness Shore D 66
    Vicat Softening Point 125°C (257°F)
    Heat Deflection Temperature 71°C (160°F) at 0.45 MPa
    Brittleness Temperature < -70°C
    Environmental Stress Crack Resistance >1000 h
    Notched Izod Impact Strength 80 J/m (1.5 ft-lb/in)
    Water Absorption <0.01%
    Thermal Expansion 1.2E-4 /°C
    Specific Gravity 0.960

    As an accredited Formosa Plastics HDPE 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 9001 is packaged in 25 kg polyethylene bags, palletized for bulk industrial handling and shipping.
    Container Loading (20′ FCL) 20′ FCL: Formosa Plastics HDPE 9001, 25kg bags, palletized, shrink-wrapped, securely braced; approximately 22MT net weight for ocean freight.
    Shipping Formosa Plastics HDPE 9001 is shipped as non-hazardous polyethylene resin pellets, typically in 25 kg bags, 500–1,000 kg jumbo bags, or bulk containers. Store in a cool, dry area away from direct sunlight and moisture. No special DOT/IMDG hazard classification required. Handle to prevent bag damage and contamination.
    Storage Store Formosa Plastics HDPE 9001 in a cool, dry, well-ventilated area, away from direct sunlight, heat, ignition sources, and strong oxidizers. Keep original bags or containers sealed, palletized, and off the floor. Protect from moisture, dirt, and UV exposure. Avoid dust and static buildup. Do not stack excessively high. Use first-in, first-out stock rotation. Follow the SDS and local regulations.
    Shelf Life Formosa Plastics HDPE 9001 has an indefinite shelf life when stored sealed, dry, away from direct sunlight, heat, and contaminants.
    Application of Formosa Plastics HDPE 9001

    Formosa Plastics HDPE 9001 is a high-density polyethylene blow-moulding grade with a nominal density of 0.952 g/cm³ and a melt mass-flow rate of 0.05 g/10 min measured at 190 °C under 2.16 kg according to ASTM D1238-20. The high molecular weight distribution produces a high-swell, low-sag parison suited to accumulator-head blow moulding of large hollow parts, but it also limits screw recovery and requires controlled thermal management. The downstream scenarios below address industrial-scale conversion of HDPE 9001, including regulatory qualification, formulation ranges, production process parameters, and finished article categories. The grade is evaluated only where its environmental stress crack resistance, pinch-seam weld strength, and melt strength are directly relevant to the conversion route.

    Drums, Jerricans, and UN-Certified Large-Format Packaging

    Industrial converters processing HDPE 9001 for 20–30 L jerricans and 200–220 L drums select the grade for its melt mass-flow rate of 0.05 g/10 min under 2.16 kg at 190 °C and its high molecular weight distribution, which provide parison sag resistance during accumulator-head blow moulding. Formulation at the hopper combines HDPE 9001 with carbon black masterbatch at 1.5–2.5 wt%, antioxidant masterbatch at 0.1–0.3 wt%, and a fluoropolymer processing aid at 0.2–0.5 wt%. The carbon black loading is constrained at the lower end by the requirement for UV stability during stacked outdoor storage: below 1.0 wt% of carbon black, the mean time to surface embrittlement under 3,000 h QUV-B exposure drops below the two-year exterior storage threshold. At the upper end, loading above 3.0 wt% reduces pinch-seam cohesive strength by approximately 10–15% because carbon black agglomerates act as stress concentrators during the compression of molten parison walls; this failure mode appears in falling dart impact tests at −20 °C on drum seams rather than in tensile tests of sidewalls. For UN-certified chemical drums, the specified formulation is therefore 97.5–98.5 wt% HDPE 9001, 2.0–2.5 wt% of a 50% carbon black masterbatch, and 0.2–0.5 wt% processing aid; indoor clean-solvent drums may eliminate carbon black and use 0.05–0.10 wt% of the same masterbatch only for lot traceability colouring. Amine-based antistatic additives are avoided in HDPE 9001 drum formulations because they migrate to the parison surface and lower pinch-seam weld strength; static dissipation is achieved with conductive carbon black grades where required.

    Qualification under UN 1H1 and 1H2 packaging is performed to 49 CFR 178.509 and ADR chapter 6.1. The design-type test sequence includes a 1.8 m drop at −18 °C with fill specific gravity 1.9, hydrostatic pressure of 250 kPa for 30 min, and a stacking load applied for 28 days at 40 °C. For HDPE 9001, environmental stress crack resistance is the decisive resin property because sidewalls and pinch seams are continuously exposed to surfactant-containing or oxidizing liquid cargoes. Measured per ASTM D1693 condition B using 10% Igepal CO-630 at 50 °C, 100% virgin HDPE 9001 typically yields F50 values above 300 h; the incorporation of 15–20 wt% internal regrind lowers F50 by approximately 15–25% and cannot be used for higher-risk UN fillings unless the converter re-qualifies the specific blend. The pinch seam is also tested by sectioning and tensile pull at 23 °C across the weld; seam efficiencies below 80% of the parent wall are rejected because drop impact at low temperature typically initiates at the pinch-off tail.

    Accumulator-head shuttle blow moulding of HDPE 9001 drums uses screw diameter 90–120 mm, extruder L/D 24:1–30:1, and shot capacity 15–40 kg. Barrel profile is 170 °C at the feed throat, 185 °C in the compression zone, 195–200 °C in the metering zone, and 200–210 °C at the adapter and die head. The die gap is set at 1.2–1.8 mm; die swell for this grade is high, commonly 70–90% at shear rates of 10–100 s⁻¹, so the initial parison diameter must be smaller than the final drum neck diameter by the swell factor. Parison programming uses 40–60 points, with added wall thickness around the top curl, bottom chime, and pinch seam; a nominal 3.0 mm average sidewall for a 208 L closed-head drum requires programmed thickness values of 4.5–6.0 mm at the chime and 2.5–2.8 mm in the cylindrical sidewall to meet wall-distribution tolerances of ±0.4 mm. Mold temperature is maintained at 10–30 °C, blow air at 0.6–0.8 MPa, and cycle time for a 10–12 kg part is 180–240 s. Screw recovery limits overall output: with 100 rpm and a 30:1 L/D screw, HDPE 9001 processes at 150–220 kg/h, and excessive residence time at 210 °C above 45 min can shift the carbonyl index and reduce environmental stress crack resistance. Regrind moisture is controlled to ≤0.05% before re-extrusion when high ambient humidity exceeds 60% RH, as residual moisture produces parison pinholes and weakens pinch-seam consolidation.

    End-product categories in this scenario are closed-head 208 L UN 1H1 drums, open-head 220 L UN 1H2 drums, 20–30 L UN 3H1 jerricans, and 5 L laboratory containers without UN marking. The moulded drum body may be combined with a separate injection-moulded HDPE closure and a rolled steel ring; the closure seal is tested at 40 °C with a 30 min inversion and internal pressure of 25 kPa for UN 1H1 liquids. Large-format IBC bottles are excluded from this scenario because the part weight and wall-thickness distribution require a separate processing window.

    Test or standard designationRequired condition for HDPE 9001 UN drumConsequence of failure
    49 CFR 178.509Drop 1.8 m at −18 °C with fill specific gravity 1.9Rejection of design type; no UN 1H1/1H2 marking
    ASTM D1693 condition BF50 ≥ 100 h for virgin HDPE 9001Increased risk of sidewall stress cracks in surfactant-containing cargoes
    ASTM D638-14Pinch-seam tensile efficiency ≥ 80% of parent wallLow-temperature drop impact failure along pinch seam
    49 CFR 178.509Hydrostatic 250 kPa for 30 minLeakage or permanent deformation above permitted tolerance

    When HDPE 9001 is selected as the outer skin and regrind carrier in six-layer coextruded automotive fuel tanks, the conversion problem is dominated by layer-stability and permeation requirements rather than general mechanical strength. The layer structure is commonly outer HDPE 9001 at 25–35 wt%, outer tie at 1–2 wt%, EVOH barrier at 1.5–2.5 wt%, inner tie at 1–2 wt%, regrind at 20–40 wt%, and inner HDPE 9001 at 25–35 wt%; carbon black or pigment is added to the outer HDPE layer at 1.0–2.0 wt% for UV protection. A separate post-mould treatment may be specified: fluorination of the inner surface at 2.0–8.0 g/m² for diesel fuel systems, or sulfonation for certain heavy-duty tanks. HDPE 9001 alone is not accepted as a sufficient hydrocarbon barrier for gasoline under current CARB LEV III and EPA Tier 3 evaporative emission constraints; unmodified monolayer walls are not used in passenger vehicle fuel systems, and permeation verification is performed according to SAE J2659.

    Regulatory compliance for this application includes ECE R34 for fire resistance, US EPA 40 CFR Part 86 evaporative emission methods, CARB LEV III, and SAE J2659 as the hydrocarbon permeation method. The finished tank is tested for pressure cycling between 10–50 kPa for 10,000 cycles, 24 h leak retention at 40 °C, and a −40 °C drop impact after conditioning. HDPE 9001 in the outer skin must not contain migrated carbon black particles that could compromise weld surface integrity; the outer layer is also subjected to 2,000 h xenon-arc exposure under SAE J2527 with a maximum ΔL* colour shift of 3.0. Layer ratios are established on the converter’s proprietary die-head tooling, and published data for exact layer-thickness distribution with HDPE 9001 in six-layer fuel tank structures is limited.

    Six-layer coextrusion blow moulding of fuel tanks uses extruder diameters of 90–120 mm for HDPE outer and inner layers, 60–90 mm for regrind, 40–60 mm for tie layers, and 30–50 mm for EVOH. Melt temperatures are 200–215 °C for HDPE 9001, 190–210 °C for EVOH, and 195–215 °C for the tie resin. The die gap is 2.0–3.0 mm, and parison programming uses 150–300 points. The pinch seam is the highest failure risk because EVOH and tie layers must be completely captured within the weld; any exposed barrier layer at the seam creates a leakage path. Blow air pressure is 0.8–1.2 MPa, mold cooling is 8–15 °C, clamp force is 1000–2500 kN, and total cycle time is 120–180 s. The regrind stream from HDPE 9001 fuel tanks is dried to ≤0.05% moisture and screened at 2 mm before re-extrusion; higher moisture content increases parison pinholes and reduces EVOH adhesion. Viscosity mismatch between HDPE 9001 and the EVOH grade must be kept within a melt-flow ratio of 1.5:1–2.5:1 at 210 °C to avoid encapsulation defects and layer-thickness drift at the die gap.

    Produced articles are gasoline tanks of 40–80 L for light-duty vehicles, diesel tanks of 80–200 L for commercial and off-road vehicles, and marine fuel tanks of 20–100 L. These tanks are not produced as monolayer HDPE 9001 structures; the grade appears in the skin and regrind layers, and its high molecular weight supports parison wall-thickness control during large-part coextrusion.

    LayerTypical weight fractionTarget thickness rangeFunction
    Outer HDPE 900125–35 wt%1.5–3.0 mmImpact skin and UV protection
    Outer tie1–2 wt%0.05–0.10 mmAdhesion to EVOH
    EVOH1.5–2.5 wt%0.02–0.05 mmHydrocarbon barrier
    Inner tie1–2 wt%0.05–0.10 mmAdhesion to EVOH
    Regrind20–40 wt%0.8–2.0 mmRecycled HDPE 9001/tie/EVOH
    Inner HDPE 900125–35 wt%1.5–3.0 mmFuel contact layer

    What Processing Window Preserves Drop Impact Integrity in 1,000-Liter IBC Inner Bottles?

    Intermediate bulk container inner bottles manufactured from HDPE 9001 are not simply scaled-up drums; the 1,000 L part weight of 25–40 kg imposes longer parison hang times and lower cooling rates, which shift the acceptable melt temperature window downward relative to 200 L drum production. Design-type qualification under UN 31HA1 requires a 1.6 m drop at −18 °C after water filling, hydrostatic pressure testing for 30 min, and stacking stability. For HDPE 9001, the base corner and valve boss are critical zones; wall thinning below 2.5 mm in the bottom corner reduces low-temperature drop resistance by approximately 40% compared with a uniform 3.5 mm wall. The grade is therefore processed with a narrower melt-temperature range than drum-grade HDPE because the parison must carry a 25–40 kg mass without excessive sag or fold-over at the bottom pinch line.

    Formulation for outdoor IBC inner bottles is HDPE 9001 at 97.0–98.0 wt%, carbon black masterbatch at 2.0–2.5 wt%, antioxidant masterbatch at 0.1–0.3 wt%, and processing aid at 0.2–0.5 wt%. If the IBC is used for light-protected chemical distribution, carbon black loading is held at the upper end. For potable water IBCs, NSF/ANSI 61 is not automatically satisfied by the resin alone; the converter must include only listed masterbatch systems and validate the assembled IBC as a finished water-contact article. Regrind from IBC bottle production is limited to 10–15 wt% for chemical IBC inner bottles and is excluded from potable water IBC layers unless separately qualified.

    Typical machine specification for 1,000 L IBC bottles is accumulator-head blow moulding with extruder diameter 120–150 mm, L/D 30:1–36:1, shot capacity 50–100 kg, die gap 2.0–3.5 mm, and parison programming 100–200 points. Melt temperature is set at 195–205 °C at the die; running above 210 °C creates parison sag and reduces wall thickness at the top shoulder by 15–20%. Mold temperature is 8–15 °C, blow air is 0.5–0.7 MPa, and cycle time is 360–600 s for a 30 kg bottle. Internal cooling with air or mist at 0.3–0.5 MPa reduces cycle time but must not chill the parison below 80 °C before full expansion, because premature solidification traps thickness variation and creates weld-line displacement at the valve boss. Screw recovery remains a throughput constraint: machines below 30:1 L/D may fail to deliver a homogeneous melt at 80–100 rpm, and the resulting pressure fluctuation appears as visible flow lines in the base corner after demoulding.

    End products are 1,000 L and 1,250 L inner bottles for steel-cage IBCs, 820 L top-drain IBC bottles, and 500 L compact IBCs. The bottles are used for chemical distribution, oil field additives, and non-food liquid handling where the outer steel cage provides stacking load capacity. The resin is selected for its melt strength and environmental stress crack resistance, not for dimensional tolerance alone; wall-thickness mapping of the base and top corners is performed on every new parison programme using ultrasonic gauging.

    In agricultural chemical packaging, shelf-storage contact with emulsifiable concentrates and xylene-based solvents exposes the container wall to environmental stress cracking that is not captured by standard short-term density or melt flow testing. Containers are qualified under UN 3H1/Y1.4/100 for liquid pesticides, US EPA 40 CFR 156.140, and FAO Manual on Development and Use of FAO Specifications for Pesticides for container compatibility. Dry granular products use monolayer HDPE 9001 at 98.0–99.0 wt% with colour masterbatch at 1.0–2.0 wt% and antioxidant at 0.05–0.10 wt%. Liquid products require coextruded structures: inner HDPE 9001 at 35–45 wt%, inner tie at 1–2 wt%, EVOH at 1.5–3.0 wt%, outer tie at 1–2 wt%, regrind at 30–50 wt%, and outer HDPE 9001 at 20–30 wt%, with carbon black or pigment in the outer layer at 1.0–2.0 wt%. The EVOH layer is positioned in the outer half of the wall to limit water plasticisation from the aqueous pesticide phase; moving it within 0.1 mm of the inner surface can reduce oxygen barrier retention below 50% after 12 months of shelf storage.

    Coextrusion blow moulding of 1–10 L bottles uses continuous shuttle or reciprocating screw machines with extruder diameter 50–80 mm, L/D 24:1–28:1, die gap 1.0–1.5 mm, melt temperature 190–205 °C, mold temperature 5–10 °C, and blow air 0.5–0.7 MPa. Wall thickness is 0.8–1.5 mm for 1 L bottles and 1.5–3.0 mm for 10 L jerricans. The EVOH layer is inspected by microtome cross-section at 400× magnification; any discontinuity at the pinch seam or handle weld disqualifies the bottle for UN 3H1 liquid packaging. The process boundary for HDPE 9001 in this application is set by the need to maintain EVOH layer continuity at the weld: melt temperature below 190 °C produces incomplete weld penetration, while above 205 °C the EVOH layer can thin below 0.02 mm and lose barrier function.

    Finished articles are 1 L, 5 L, and 10 L herbicide, fungicide, and insecticide containers, as well as 20 L twin-neck pour-back crop protection containers. They are supplied with induction-sealed closures and are tested for bottle-closure integrity at 40 °C for 14 days with the specific formulation. The recycle stream from these bottles is segregated from food-grade HDPE because residual solvent vapour in the regrind can migrate to the outer surface during subsequent processing.

    Long-Cycle ESCR Governs Stationary Chemical Storage Tank Qualification

    Stationary blow-moulded storage tanks made from HDPE 9001 are specified for outdoor storage of sodium hypochlorite solutions, sulfuric acid at ambient temperature, and agricultural water because the grade’s high molecular weight imparts the environmental stress crack resistance needed for continuous hydrostatic load and thermal cycling. Qualification is to ASTM D1998-21 for polyethylene upright storage tanks; tanks used for potable water require additional certification under NSF/ANSI 61 and/or AS/NZS 4020, although published third-party certification for HDPE 9001 under NSF/ANSI 61 may be limited and must be confirmed with the specific converter. Chemical compatibility is assessed by immersion testing according to ASTM D543-20, with the stored chemical at its maximum anticipated service concentration and temperature. For sodium hypochlorite storage, the service boundary is ≤15% active chlorine at ambient temperature; higher concentrations or elevated temperatures increase the rate of oxidative chain scission and reduce the resin’s long-term hydrostatic strength.

    Typical outdoor formulation is HDPE 9001 at 97.0–98.0 wt%, carbon black masterbatch at 2.0–2.5 wt%, and antioxidant masterbatch at 0.1–0.3 wt%. For tanks holding drinking water, the carbon black masterbatch must be replaced with an NSF/ANSI 61 listed masterbatch at the same use ratio. No regrind above 10 wt% is used in the sidewall because regrind lowers environmental stress crack resistance by 10–20% and increases the probability of slow crack growth failure at the base weld line. The pinch seam is not normally a structural weak point in vertical cylindrical tanks because the base is formed as a continuous wall section; however, any weld line at the top flange must be evaluated for chemical resistance because weld-induced morphology differs from the surrounding blown wall.

    Processing is by accumulator-head blow moulding with shot capacity 30–120 kg, screw diameter 100–150 mm, L/D 28:1–36:1. Melt temperature is 195–205 °C, die gap 2.0–4.0 mm, mold temperature 10–25 °C, and blow air 0.5–0.8 MPa. Wall thickness is 4–8 mm for 250–1,000 L tanks, with thicker regions at the base and top flange. Cycle times range from 300–600 s. The low melt flow rate of HDPE 9001 requires a high-torque extruder; screw recovery at 80–100 rpm limits output to 150–250 kg/h, and accumulators smaller than 50 L may not provide a stable parison for thick-walled tanks. If the parison is interrupted during discharge, the resulting knit line can become a slow crack growth initiation site under continuous hoop stress.

    Finished products are vertical cylindrical storage tanks of 120 L, 220 L, 500 L, and 1,000 L with flat or conical bottoms, as well as tapered tanks of 60–120 L for agricultural chemical mixing. The tanks are not stackable under load as moulded; steel or PE stands are used where bottom drainage is required. The selection of HDPE 9001 for stationary tanks is driven by the need to maintain stress crack resistance after prolonged contact with oxidising aqueous solutions, rather than by short-term tensile or flexural properties.

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