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Chevron Phillips Chemical HDPE 9662

    • Product Name: Chevron Phillips Chemical HDPE 9662
    • 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 799648
    Density 0.962 g/cm³
    Melt Index 190 C 2 16 Kg 0.20 g/10 min
    Tensile Strength At Yield 26 MPa
    Tensile Strength At Break 30 MPa
    Elongation At Break >600%
    Flexural Modulus 1,200 MPa
    Notched Izod Impact At 23 C 80 J/m
    Vicat Softening Temperature 126°C
    Heat Deflection Temperature At 0 45 Mpa 74°C
    Environmental Stress Crack Resistance >1000 h
    Shore D Hardness 66
    Melting Point 131°C
    Thermal Conductivity 0.45 W/m·K
    Coefficient Of Linear Thermal Expansion 1.2E-4 /°C
    Water Absorption <0.01%

    As an accredited Chevron Phillips Chemical HDPE 9662 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Chevron Phillips Chemical HDPE 9662 comes in 25 kg (55 lb) polyethylene bags or 1,000 kg bulk bags.
    Container Loading (20′ FCL) Chevron Phillips Chemical HDPE 9662 loaded in 20′ FCL: 25 kg PE bags, palletized, shrink-wrapped, floor-loaded, secured in dry container.
    Shipping Chevron Phillips Chemical HDPE 9662 ships as non-hazardous high-density polyethylene pellets, not regulated by DOT/IMDG/IATA. Standard packaging includes 25-kg bags, supersacks, or bulk trucks/railcars. Keep dry, clean, and away from ignition sources; avoid moisture, contamination, and prolonged UV exposure. Use standard freight classification and maintain package integrity.
    Storage Store Chevron Phillips Chemical HDPE 9662 in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, and flames. Keep original packaging closed to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and excessive stacking. Use clean handling equipment and follow local regulations plus the manufacturer’s SDS for safe storage. Maintain ambient temperature; protect from impact and ignition sources.
    Shelf Life Stable under normal storage conditions; store cool, dry, and sealed. No specific shelf life when kept in original, unopened packaging.
    Application of Chevron Phillips Chemical HDPE 9662

    Chevron Phillips Chemical HDPE 9662 is charged to the extruder without predrying unless surface condensation is visible after outdoor storage; wet resin is purged in a hopper dryer at 60°C for 30 min to remove surface moisture. In accumulator-head extrusion blow molding of a 220 L open-head chemical drum, the extruder is configured as a 24:1 L/D single-stage barrier machine with a compression ratio of 2.8:1–3.2:1 and a grooved feed section held at 40–60°C. Zone set temperatures progress from 180°C at the throat to 215°C at the adapter. Melt temperature at the accumulator-head entry is held at 204–221°C; an immersion thermocouple is used to reject shots above 232°C because parison sag and high-molecular-weight fraction degradation become difficult to correct. The accumulator fills in 5–9 s at a head pressure of 24–32 MPa and a back pressure of 8–12 MPa. Parison wall thickness is programmed over 100 points, with die gaps from 2.5–12 mm to compensate for chime and shoulder thinning. Clamp force is set at 20–25 metric tons per linear metre of pinch-off line, blow air is regulated at 0.55–0.83 MPa, and the mold is cooled to 15–40°C. The blown shell remains in the mold for 90–180 s until the demolding temperature at the chime is below 70°C. Target wall thickness at the chime is 2.8–3.5 mm; the bottom tail is trimmed to 1.5–2.0 mm and the cut surface is inspected for a ductile pinch-off weld.

    Clean dry regrind from start-up purges and tail trim is screened through 120–250 µm mesh and limited to 10–20 wt% of the blend. Above 20 wt%, the blend is qualified by measuring environmental stress-crack resistance on pinch-off specimens under ASTM D1693 Condition B; acceptance is set at an F50 above 600 h. The terminal product is a UN-rated 220 L open-head or closed-head drum used for Packing Group II and III liquid chemicals. Qualification testing is carried out under 49 CFR Part 178 drop and stack schedules, and food-contact suitability for non-fatty aqueous products is evaluated under 21 CFR 177.1520. Incoming lot viscosity is confirmed by ASTM D1238 at 0.15–0.25 g/10 min (190°C/2.16 kg) and high-load melt index 5.5–6.5 g/10 min (190°C/21.6 kg); density is 0.960–0.964 g/cm³ under ASTM D1505.

    Typical incoming lot verification matrix for 220 L container production
    Measured attributeMethodAcceptance window
    Melt indexASTM D12380.15–0.25 g/10 min at 190°C/2.16 kg
    High-load melt indexASTM D12385.5–6.5 g/10 min at 190°C/21.6 kg
    DensityASTM D15050.960–0.964 g/cm³
    ESCR, 100% Igepal F50ASTM D1693 Condition B≥600 h

    What Limits Regrind Acceptance in Blow-Molded Agricultural Chemical Tanks?

    For 15–30 L handheld sprayer reservoirs and 50–200 L shuttle tanks, regrind acceptance is governed by weld-line environmental stress-crack resistance rather than by a simple shift in high-load melt index. Monolayer formulations use 100 parts HDPE 9662, 2–3 phr of a PE-based carbon black masterbatch, and 0.1–0.2 phr of a fluoropolymer processing aid to reduce die lip deposits at high shear. Clean trims and start-up purges are limited to 15 wt% in monolayer structures. A six-layer coextrusion sequence for an EVOH barrier tank consists of inner virgin HDPE 40%, tie 2.5%, EVOH 3%, regrind 30%, tie 2.5%, and outer virgin HDPE 22%. The outer and inner virgin layers are run on separate extruders with melt temperatures of 215–225°C; EVOH is dried to below 0.05 wt% moisture and processed in a dedicated 24:1 L/D screw. The blow mold is held at 18–35°C, and blow air is set at 0.65–0.85 MPa. The parison is extruded so that it hangs for 4–7 s before mold close; longer hang times increase lower-body sag and reduce the effective regrind ceiling. The pinch-off zone is the limiting region: a cold mold below 15°C freezes the weld surface before interdiffusion completes, and regrind above 20 wt% can narrow the processing window further. Containers are UN-marked 1H1/Y for Packing Group III products and are inspected by ultrasonic thickness at 12 circumferential points, with a minimum wall thickness of 1.8 mm for 50 L formats. Terminal products are backpack reservoirs, shuttle tanks, and handle assemblies used in contact with dilute aqueous fertilizer, surfactant, and crop-protection formulations.

    In vacuum thermoforming of 4–10 mm heavy-gauge sheet for returnable dunnage, HDPE 9662 is processed on a 90 mm extruder with a 30:1 L/D barrier screw and a gear melt pump. The melt pump discharge pressure is maintained at 8–14 MPa; oscillation is kept below ±0.5 MPa to limit gauge variation. The coat-hanger flexible-lip die is gapped at 1.2–2.0 times final sheet gauge, and the melt temperature at the die entry is 215–230°C. A three-roll stack with polished chrome rolls is operated at 70–90°C. Roll temperature below 60°C produces a frozen-in stress profile that appears as corner curl after trimming; roll temperature above 90°C increases output loss through sticking and reduces sheet clarity in unpigmented stock. The sheet line runs at 3–6 m/min for 4–6 mm stock and 2–4 m/min for 8–10 mm stock. A black UV-stabilized dunnage formulation uses 100 parts HDPE 9662 and 2–3 phr of a 40–50% carbon black masterbatch; natural or gray formulations use a hindered amine light stabilizer at 0.15–0.25 phr for outdoor exposure. Thermoforming is carried out at a sheet surface temperature of 132–149°C measured by infrared pyrometer, with a cast aluminum mold at 70–85°C and a vacuum draw of -0.08 MPa or stronger. Plug assist is used on parts deeper than 150 mm; plug penetration is set so that minimum corner wall thickness remains not less than 45% of the initial nominal gauge. Terminal products are dunnage trays, racking panels, and equipment covers used in tiered automotive logistics. If the formed tray is intended for non-fatty aqueous food-contact applications, migration or extraction testing under 21 CFR 177.1520 is required on the finished thermoformed article.

    When a 100-Point Parison Program Fails to Correct Handle Pinch-Off Thinning in 25 L Jerrican Production

    For 25 L UN-rated jerricans, thickness programming may still lose the handle weld because the blow mold halves compress the parison asymmetrically, and the thickening band must be placed with a positional accuracy of less than 10 mm along the parison length. HDPE 9662 is processed at a melt temperature of 205–218°C at the accumulator-head exit. The shot fill time is 5–8 s, and the parison is programmed across 100 radial points with a die gap range of 3–15 mm. The blow ratio is held between 2.5:1 and 3.0:1; lower blow ratios produce a heavy pinch-off, while higher ratios stretch the handle weld beyond the programmed thickness. The mold closes with 20–25 t per linear metre of pinch-off line, and the part is inflated at 0.55–0.75 MPa. In the handle area, the parison is thickened to 2.0–2.5 times the nominal wall of the body. After cooling, the handle pinch-off is scanned by ultrasonic thickness and the minimum weld plane thickness is held above 1.5 mm. A mold temperature of 15–30°C is used; below 15°C, the pinch-off surface freezes before high-molecular-weight interdiffusion, and under ASTM D1693 Condition B the handle weld can fail qualification. Above 221°C, sag carries the thickened band downward and the weld plane thins. The terminal product is a 25 L F-style or round jerrican for Packing Group III chemical liquids. Qualification includes a drop test at -18°C after 24 h conditioning and a stack test under 49 CFR 178.603 and 49 CFR 178.606. Parison line placement is verified by sectioning one article from each start-up purge after 2 h of continuous operation.

    For 25–300 L marine fuel tank shells, monolayer HDPE 9662 alone is not considered a hydrocarbon permeation barrier for ethanol-blended gasoline; the fabricated shell must be post-fluorinated or coextruded with EVOH. The blow molding line runs the HDPE at 204–221°C on a 20:1–28:1 L/D barrier screw with a grooved feed section. The mold is cooled with recirculating water at 10–25°C to produce a crystalline skin that reduces short-chain hydrocarbon diffusion but does not replace a dedicated barrier. In-line fluorination is performed with a 0.1–1.0% fluorine-in-nitrogen mixture at 60–90°C for 10–30 min; surface treatment is verified by FTIR-ATR, and the tank is purged with nitrogen until free fluorine is below 1 ppm. In a coextruded structure, the fuel-contact layer is virgin HDPE 2.5–3.0 mm, followed by tie, EVOH, tie, regrind, and outer HDPE layers. Regrind is not used in the fuel-contact layer; post-industrial regrind may comprise up to 20 wt% of the outer layer only. Final marine fuel assemblies are subjected to pressure-decay testing at 20–35 kPa for 5 min and permeation testing under EPA 40 CFR Part 1060 marine evaporative emission requirements. The terminal product is an under-deck fuel cell or auxiliary diesel reservoir. The operational boundary is that HDPE 9662 is not intended for continuous service with strong oxidizing acids, aromatic solvents, or chlorinated hydrocarbons; published data for this specific configuration is limited.

    Melt Pump Discharge Stability and Die Lip Crystallization in High-Sag Sheet Runs

    When HDPE 9662 is extruded into 5–12 mm sheet at low output, melt pump discharge pressure is controlled to ±0.3 MPa because wider oscillations are visible as gauge bands at the sheet edges. A 120 mm extruder with a 30:1 L/D barrier screw and compression ratio of 3.0:1 is operated at 40–60 rpm. The filtration package uses 60/100/60 mesh layers or 120–250 µm candle filters. Melt temperature at the die is held at 210–225°C, and the die lip is gapped initially at 1.1–1.5 times the target sheet thickness. A traversing beta gauge maps the sheet profile; thermal bolt adjustment maintains cross-web variation below ±2%. The roll stack is run at 70–90°C with turbulent water circulation; dead spots above 95°C produce differential gloss and can trigger die lip crystallization at the low-flow edges. Line speed is 2–5 m/min for 5–12 mm stock. The extruded sheet is converted into chemical-resistant fume hood duct liners, washdown equipment panels, and machined marine components. For chemical immersion applications, ASTM D543 coupons are tested in 10% hydrochloric acid and 10% sodium hydroxide at 23°C for 30 days; dimensional change and mass uptake are recorded against the converter’s internal limits. Where static dissipation is required, a conductive HDPE masterbatch is added at 5–8 wt% to obtain a surface resistivity below 10⁹ Ω/sq measured under IEC 60093.

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