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Chevron Phillips Chemical HDPE 9640

    • Product Name: Chevron Phillips Chemical HDPE 9640
    • 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 304200

    As an accredited Chevron Phillips Chemical HDPE 9640 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 9640 is packaged in 25 kg polyethylene-lined bags, palletized and stretch-wrapped for shipment.
    Container Loading (20′ FCL) Chevron Phillips Chemical HDPE 9640 loaded into a 20′ FCL container, evenly distributed, secured, and braced for safe ocean transport.
    Shipping Chevron Phillips Chemical HDPE 9640 is a non-hazardous HDPE resin. It typically ships as pellets in 25-kg bags, 1,000-kg bulk bags, or bulk trucks/railcars. Keep dry, clean, and away from heat, moisture, and sunlight. No DOT hazardous shipping papers or placards required.
    Storage Chevron Phillips Chemical HDPE 9640 should be stored indoors at ambient temperature in a cool, dry, well-ventilated warehouse. Keep original packaging closed, palletized, and off the floor. Protect from direct sunlight, moisture, excessive heat, ignition sources, and strong oxidizers. Avoid contamination, physical damage, and dust accumulation. Use first-in, first-out rotation. Follow the manufacturer’s SDS and local regulations.
    Shelf Life Stable under normal storage conditions; no specific shelf life. Store in a cool, dry, well-ventilated area away from heat and sunlight.
    Application of Chevron Phillips Chemical HDPE 9640

    Injection moulding of Chevron Phillips Chemical HDPE 9640 into rigid open-head pails of 10 L to 30 L capacity begins with a melt temperature window of 200–240°C and a general-purpose screw having L/D 20:1 to 24:1 and compression ratio 2.5:1–3.0:1; the mould is maintained at 15–50°C to achieve rapid solidification without excessive surface haze on textured sidewalls. The nominal density of 0.964 g/cm³ ISO 1183-1 and melt flow rate of 0.40 g/10 min ISO 1133-1:2022 position the grade for thick-wall containers that require stacking strength and environmental stress-cracking resistance rather than thin-wall flow. During filling, injection velocity is profiled to avoid jetting at the gate; holding pressure of 60–80 MPa is applied for 6–10 s depending on wall thickness, and back pressure is set at 0.5–1.0 MPa to maintain homogeneous melt without shear overheating. A typical additive package for coloured pails contains 2–3 wt% LLDPE-based colour concentrate, 0.05–0.10 wt% hindered phenolic primary antioxidant, and 0.05–0.10 wt% phosphite-type secondary antioxidant; for UN-certified industrial pails, clean post-industrial 9640 regrind is limited to 20 wt% and each lot is subjected to ASTM D1693 Condition B environmental stress-cracking resistance testing before approval. Food-contact pails require verification against FDA 21 CFR 177.1520(c) 3.1a or 3.2a and EU Regulation (EU) No 10/2011 with overall migration below 10 mg/dm²; dangerous-goods pails require UN 1H2 qualification including drop impact at −18°C and stack load at 40°C. Production-scale defects include sink marks at handle bosses when holding pressure drops below 55 MPa and stress cracking at moulded-in logos if melt temperature exceeds 250°C, which reduces molecular weight and accelerates environmental stress-cracking resistance failure. Pre-drying is not normally required for sealed bags; however, condensation at relative humidity above 70% requires hopper heating at 50°C and a short drying run at 80°C for 2 h to prevent surface splay and voids in the pail bottom.

    What Controls Bottle Drop Impact at −29°C in Coextrusion Blow Moulding?

    Continuous extrusion blow moulding of Chevron Phillips Chemical HDPE 9640 into 0.5 L to 5 L agrochemical bottles is dominated by die swell behaviour at the accumulator head and by the coextrusion of an ethylene-vinyl alcohol barrier. The base layer is run at melt temperature 180–210°C; exceeding 220°C at the die pin creates low-molecular weight oxidation products that deposit on the mandrel and produce vertical die lines, while dropping below 170°C raises melt viscosity to a point where pinch-off welds exhibit incomplete fusion and fail the −29°C drop test described in ASTM D2463-15. A typical five-layer container structure places an EVOH barrier layer at 3–5 wt% of total wall thickness between two maleic anhydride-grafted polyethylene tie layers; the tie layers are run at 190–215°C to prevent gel formation, and the inner and outer 9640 skins provide stiffness and environmental stress-cracking resistance. Die gap is set at 1.5–2.5 mm, and blow pressure is held at 0.6–1.0 MPa to force the parison against a cooled mould at 10–25°C; pinch-off flash is trimmed after demoulding and reground separately from the barrier layer because mixed regrind causes unstable layer distribution. For ester-based agrochemical formulations, in-line fluorination of the blown container at 0.5–1.0 vol% fluorine in nitrogen is preferred over external barrier coatings, which delaminate at the pinch-off seam during stack compression. Compliance includes ADR/RID dangerous-goods transport certification for UN 3H1 packages and FDA 21 CFR 177.1520 or EU Regulation (EU) No 10/2011 where the bottle is used for food or potable water. Published F50 environmental stress-cracking resistance data for aggressive ester-containing formulations in this specific configuration is limited; chemical compatibility screening should be performed per ASTM D543 at 40°C for 30 days for each new formulation. An operational boundary is that processed regrind from fluorinated bottles must not be re-introduced into non-fluorinated food-contact layers.

    Extruded Sheet and Vacuum-Formed Dunnage: Thermoforming Window

    Sheet extrusion of Chevron Phillips Chemical HDPE 9640 into custom automotive dunnage and material handling trays is performed on a single-screw extruder with L/D 30:1 and a barrier screw, using melt temperature 210–230°C and a polished three-roll stack at 70–90°C. The sheet is run at thicknesses from 0.5 mm to 6.0 mm; roll gap is set 8–10% below the target sheet thickness to compensate for die swell and thermal shrinkage. For vacuum forming, sheet surface temperature must reach 160–175°C with a heating uniformity of ±5°C; below 155°C the sheet does not reproduce fine grain texture, and above 180°C the sheet sags excessively and produces variable wall thickness in deep-draw pockets. Mould temperature is held at 25–60°C and vacuum is applied at −0.08 MPa for 8–15 s depending on draw depth. Addition of 0.05–0.10 wt% fluoropolymer processing aid reduces die build-up during runs longer than 8 h; outdoor dunnage requires 2–3 wt% carbon black masterbatch for UV stabilisation, while indoor food trays omit colourant packages to avoid migration complications. Terminal products include thermoformed trays for automotive door modules, returnable dunnage for bumper fascias, and heavy-duty food display trays. Compliance for food-contact sheet requires verification under EU Regulation (EU) No 10/2011 with an overall migration limit of 10 mg/dm² and FDA 21 CFR 177.1520; automotive interior applications require VOC screening per VDA 277 and SAE J1756 to maintain total carbon emissions below 50 µgC/g. The operational boundary is that sheet cooled below 60°C before forming stores residual stress that causes warpage after thermoforming; sheet stored longer than 24 h in uncontrolled humidity should be pre-sagged and dried at 70°C for 1 h before forming.

    For agricultural drainage and subsurface stormwater reticulation, Chevron Phillips Chemical HDPE 9640 is extruded through a corrugator at melt temperature 190–220°C with a single-screw L/D 30:1 and a grooved feed throat. The formulation for UV-stable drainage pipe uses 2.0–2.5 wt% carbon black masterbatch; below 2.0 wt% carbon black, UV embrittlement can appear after 12 months of high-sun exposure, while above 3.0 wt% the increase in melt viscosity reduces throughput and lowers ring stiffness by interfering with crystallisation at the corrugator block. Pipe stiffness for corrugated HDPE is measured per ISO 9969 and typically falls between 30 kPa and 50 kPa at 5% deflection; ASTM F405 and ASTM F667 define material and workmanship requirements for agricultural and large-diameter corrugated polyethylene pipe. The parison enters the corrugator at a surface temperature of 170–190°C so that the forming blocks capture the melt without web thinning; if the surface temperature drops below 165°C, shark-skin melt fracture appears on the inner wall and bell-and-spigot joint sealing becomes unreliable. Terminal products include 4-inch to 24-inch agricultural drain tile, culvert liners, and underground stormwater retention cells. Public works specifications often require AASHTO M252 or AASHTO M294 pipe stiffness classes, and the finished product must be tested for brittleness after weathering according to ASTM D638-22 tensile yield at 0.5 mm/min. The operational incompatibility is with calcium carbonate filler above 1 wt%, which reduces environmental stress-cracking resistance and makes the pipe brittle at low-temperature installation.

    When 9640 Replaces Wood in Heavy-Duty Logistics Pallets

    Low-pressure injection moulding of Chevron Phillips Chemical HDPE 9640 into solid or structural-foam pallets operates at melt temperature 220–240°C and requires clamp force of 5–8 kN/cm² of projected area to prevent flash at the parting line. Because the grade has a medium molecular weight distribution, the injection unit should use a screw with L/D 20:1 and a non-return valve with clearances specified for high-density polyethylene; shot volume should not exceed 85% of barrel capacity, otherwise unmelted granules accumulate behind the check ring and cause short shots in the outer ribs. Structural-foam pallets use 6–8 wt% nitrogen gas or a chemical blowing agent masterbatch to reduce section density to 0.80–0.90 g/cm³ while retaining a flexural modulus above 1,000 MPa measured per ISO 178. Clean post-industrial 9640 regrind is incorporated up to 50 wt% for non-food logistics pallets; for export crates requiring ISPM-15 exemption, the material must be certified free of bark and soil contaminants. Stack load creep is evaluated under ISO 8611-1 at 40°C and 75% relative humidity; the allowable static load for an unsupported 1.2 m × 1.0 m pallet should not exceed 1,500 kg if racking is specified. Terminal products include returnable pallets, collapsible bulk containers, and dairy distribution boxes. The operational boundary is that continuous service above 60°C leads to unacceptable creep in unsupported racking; for freezer storage, notched Izod impact at −30°C must be re-qualified because HDPE shifts toward brittle fracture as the test temperature approaches −70°C.

    Thin-Wall Closure Performance Is Governed by Blend Viscosity Stabilisation

    Blending Chevron Phillips Chemical HDPE 9640 with high-flow HDPE at 20–30 wt% improves spiral flow in multi-cavity thin-wall closure tools while retaining sufficient environmental stress-cracking resistance for detergent and liquid soap closures. Injection melt temperature is held at 215–235°C, and the hot-runner manifold is balanced to ±2°C across cavities; a deviation greater than 4°C creates non-uniform seal ring geometry and intermittent torque failure on the filling line. Torque retention is measured per ASTM D2063; closures must maintain 1.0–1.5 N·m after 24 h at 40°C without stress whitening or cracked threads. Compliance for food-contact closures falls under FDA 21 CFR 177.1520 and EU Regulation (EU) No 10/2011; detergent closure compatibility is confirmed by ASTM D543 immersion at 50°C for 7 days.

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