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LyondellBasell HDPE L5440AS

    • Product Name: LyondellBasell HDPE L5440AS
    • 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 748430

    As an accredited LyondellBasell HDPE L5440AS factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing LyondellBasell HDPE L5440AS typically comes in 25 kg polyethylene bags, palletized and stretch-wrapped, or 1,000 kg bulk bags.
    Container Loading (20′ FCL) Standard 20′ FCL loading for LyondellBasell HDPE L5440AS: 25 kg bags, palletized, approximately 24.75 MT per container.
    Shipping LyondellBasell HDPE L5440AS is a non-hazardous high-density polyethylene resin. It is typically shipped in 25 kg bags, 500–1000 kg bulk bags, or bulk trucks/railcars. Store in a dry, cool area away from direct sunlight and ignition sources. Not classified as dangerous goods for transport.
    Storage Store LyondellBasell HDPE L5440AS in a cool, dry, well-ventilated area away from direct sunlight, heat, flames, and strong oxidizing agents. Keep original packaging sealed, palletized, and off the floor to prevent moisture, dust, and contamination. Avoid prolonged UV exposure. Maintain stable temperatures, use first-in, first-out rotation, and follow manufacturer’s stacking, shelf-life, and handling instructions.
    Shelf Life Recommended shelf life is 24 months when stored in original, unopened packaging, dry, cool, ventilated, and protected from direct sunlight.
    Application of LyondellBasell HDPE L5440AS

    On accumulator-head shuttle blow molding lines configured for 20–60 L UN-rated jerrican production, LyondellBasell HDPE L5440AS is run on extruders with 60–90 mm screw diameters and 24:1–30:1 L/D using barrier screws with shear mixing sections. Melt temperature at the die adapter is maintained between 180 °C and 210 °C, while the die head is held at 185–205 °C and the mold is cooled to 10–35 °C. Parison programming uses 30–100 point axial wall thickness curves to move material from the pinch-off zone into the shoulder and sidewall; the minimum sidewall is normally held at 1.2–2.5 mm depending on closure type and drop test classification. The process is sensitive to melt temperature drift below 175 °C because the pinch-off weld loses fusion strength and the Environmental Stress Crack Resistance of the weld zone can fall below the lot certification value. For packaging groups II and III hazardous liquids, type qualification is conducted under UN Model Regulations 6.1.5, 49 CFR 178.503, and ADR 6.1.5, which require closure-secured drop tests at -18 °C, an internal hydraulic pressure test at 100 kPa for 30 min, and a stack load test at 40 °C for 28 days. When the package is used for flammable liquids with a flash point below 60 °C, the antistatic performance of the inner surface is verified by IEC 61340-2-3; surface resistivity should remain below 1 × 10¹¹ Ω/sq at 23 °C and 50% RH, and charge decay from 1000 V to 100 V is measured by IEC 61340-2-1. The AS formulation is a migratory antistat system; it depends on ambient humidity to form a conductive surface layer, so dry winter operations below 15% RH can raise resistivity above the permitted limit and require humidification or re-formulation with a permanent conductive compound.

    ESCR measurements for production lots are run by ASTM D1693-15 condition B at 50 °C in 100% Igepal CO-630, with supplementary full notch creep testing by ISO 16770 when a more discriminating ranking is required by the end user. The pinch-off tail, bottom weld, and parting-line areas are the principal stress-crack initiation sites; these regions are produced with raised mold temperature and programmed extra wall thickness to reduce notch sensitivity. Regrind from post-industrial trim is typically incorporated at up to 20 wt%, but each increment above 10 wt% should be re-qualified because shear history degrades the antistat and raises the mobile fraction that can plate out on the die lips. Pre-drying is not required when pellet surface moisture is below 0.1 wt%; if condensation has occurred, a dehumidified hopper set at 80 °C for 2 h is used. The resin should not be held above 230 °C for more than 10 min because the antistat components volatilize and cause die lip plate-out, black specks, and loss of surface resistivity. Purging with a fractional-melt HDPE purge grade or acrylic purge compound is recommended between color changes.

    Test/controlStandard designationApplication-specific scope
    Drop impact at -18 °CUN 6.1.5.3 / 49 CFR 178.603Closure and shoulder weld integrity for hazard classes II and III
    Internal hydraulic pressure49 CFR 178.605 / ADR 6.1.5.6Bottle wall and handle pinch-off weld seal integrity
    Stack load49 CFR 178.606 / ISO 12048Warehouse stacking deformation and top load
    Surface resistivityIEC 61340-2-3Flammable liquid filling; upper control 1 × 10¹¹ Ω/sq at 50% RH
    ESCRASTM D1693-15 condition BStress crack resistance at pinch-off and sidewall notches

    What Limits Wall Thickness Uniformity in Sheet-Fed Thermoforming of Static-Dissipative Trays?

    In sheet-fed thermoforming of ESD-safe component trays and tote bins, extruded sheet from L5440AS is processed at 0.8–4.0 mm thickness on contact-heat shuttle machines with ceramic or quartz heaters. The sheet core temperature must remain between 125 °C and 170 °C; below 125 °C the sheet exhibits webbing, corner thinning, and excessive spring-back after forming; above 170 °C the migratory antistat volatilizes from the sheet surface, producing surface defects and a temporary loss of charge decay that is not recoverable without 24–48 h of conditioning at 23 °C and 50% RH. Mold temperatures are held at 40–70 °C, and draw ratios are limited to 3:1 in deep pockets to prevent sidewall thinning below 0.5 mm. The formed trays are tested by ANSI/ESD S20.20 and IEC 61340-5-1 for use in ESD-protected areas; surface resistivity is measured by IEC 61340-2-3 at 23 °C and 50% RH and is normally maintained in the range 1 × 10⁶–1 × 10¹¹ Ω/sq, while charge decay from 1000 V to 100 V is checked periodically because the migratory antistat is consumable and can be removed by repeated wiping with polar solvents. A major production-line failure mode is edge trim dust re-entrained into the sheet; the dust is triboelectrically active and can produce surface resistivity readings that are misleadingly low. Processors therefore measure surface resistivity on cleaned, unconditioned surfaces and after 24 h conditioning in a desiccator at 15% RH to identify whether the antistat is surface-depleted or humidity-dependent.

    Formulation control for this application is dominated by the antistat concentration and its dilution by regrind. The as-supplied pellet should not be blended with non-antistatic HDPE above 20 wt% unless surface resistivity is re-validated at 12% RH; each addition of non-antistatic regrind reduces the surface-active additive reserve and shifts the humidity floor upward. Extrusion of the sheet is run on single-screw machines of 75–120 mm diameter and 30:1–34:1 L/D with a flat die and a vertical three-roll polishing stack. Barrel temperature profiles from 190 °C to 210 °C and die temperatures of 200–215 °C are typical; chill roll temperatures of 60–90 °C are selected by sheet thickness to control sag and gauge. If the roll stack temperature differential exceeds 10 °C, sheet curl develops and the downstream trim knives generate dust that contaminates the ESD surface. Terminal articles include matrix trays, kitting bins, tote boxes, and process trays for PCB assembly and device handling; these products are evaluated for outgassing by the end user because volatile antistat components can condense on optical surfaces in cleanrooms. Compliance is documented by RoHS 2011/65/EU Annex II screening, REACH SVHC statements, and halogen-free declarations when required by the assembler.

    Multi-trip separator boards for steel coil, glass, and aluminum sheet handling are fabricated from 2–6 mm extruded L5440AS sheet cut to panel sizes up to 1200 mm × 2400 mm; this is a thin-gauge sheet application that uses only a single-screw extruder with a flat die and a horizontal three-roll calender, and no coating, printing, or adhesive lamination is required. The boards are used as interleaving layers between metal coils or glass packs to prevent surface abrasion, and their performance is evaluated by compression set under load, thickness recovery after repeated loading, and gauge uniformity across the sheet width; edge trim is typically ground and re-introduced at up to 25 wt% without loss of the grade's flexural stiffness as measured by ISO 178.

    Blow-Molded Automotive Auxiliary Fluid Reservoirs and the ESCR-Weight Trade-Off

    Windshield washer fluid reservoirs and low-pressure auxiliary tanks are blow molded from L5440AS on automotive-capable shuttle or long-stroke blow molders with 70–110 mm extruder screws and wall-thickness programming. The reservoirs are designed for methanol-water washer fluid, detergent, and road de-icing fluid exposure; qualification includes ASTM D1693-15 condition A and condition B ESCR screening at 50 °C, because the surfactants in washer fluid are stress-cracking agents. Cold impact resistance is evaluated after conditioning at -30 °C by ISO 179-1/1eA or ISO 6603-2. Melt temperature is maintained at 180–210 °C, and mold temperature is held between 10 °C and 25 °C to reduce cycle time; however, mold temperatures below 8 °C can produce internal stress at the insertion points for pump grommets. The mounting boss regions are programmed with additional wall thickness to prevent creep under clamp load; wall thickness variation at the pump port is held below 0.3 mm to ensure seal integrity. Terminal parts include windshield washer reservoirs, auxiliary fluid bottles, and non-pressurized expansion chambers. The resin is processed as a monolayer with no filler or reinforcement; if molded parts are stored outdoors before assembly, a UV-stabilized package conforming to ISO 4892-3 is required. Continuous under-hood service above 65 °C is outside the recommended operating window because the modulus of HDPE decreases sufficiently that creep under hose-clamp loading can loosen the connection.

    Production qualification follows IATF 16949 PPAP documentation, and the resin supplier's PPAP submission includes lot-to-lot MFR and density data by ISO 1133-1 and ISO 1183. Dimensional capability studies are performed with coordinate measuring machines, and the critical-to-function dimensions at the pump port and bracket snap fits are controlled by SPC. The OEM material specification may require odour, fogging, and total volatile organic compound testing per VDA 278 or similar; because the AS additive package contains low-molecular-weight migratory components, fogging test limit values must be confirmed against the specific reservoir geometry and exposure cycle. Failure to document antistat surface bloom can result in false rejection of the part for appearance issues, even though the surface film is required for static dissipation.

    When IBC Inner Bottles Require Surface Resistivity Below 1 × 10¹¹ Ω/sq for Flammable Liquid Filling

    For 1000 L and 1250 L composite intermediate bulk containers used in flammable liquid logistics, the 6–10 kg inner bottle is blow molded from L5440AS on high-output accumulator machines with 90–150 mm screw diameters and shot capacity sufficient for a 15 kg shot. The bottle wall is 2–3 mm thick, and the tooling uses internal cooling circuits supplied with water at 8–15 °C to minimize post-mold shrinkage at the top frame sealing surface. The antistatic requirement is specified because the IBC is filled with solvents or process liquids with flash points below 60 °C or because the filling area is zone-classified for flammable atmospheres. Inner surface resistivity is measured by IEC 61340-2-3 at 23 °C and 50% RH and controlled below 1 × 10¹¹ Ω/sq; charge decay from 1000 V to 100 V is also measured. The IBC itself is type-approved as a composite packaging under UN Model Regulations Chapter 6.5, and the drop, stacking, and leakproofness tests are carried out on the complete IBC with the bottle installed in its steel cage. The bottle is not assessed as a stand-alone UN packaging; its performance depends on the cage geometry and base support. The blow molding process must avoid any internal weld line near the top valve opening; the parison programming curve places additional wall thickness at the valve boss to permit thread forming and gasket sealing. Surface treatment by corona or flame is sometimes used to raise surface tension for label adhesion, but such treatment consumes the surface antistat layer; after treatment, the surface must be re-conditioned for at least 24 h at 23 °C and 50% RH and re-tested by IEC 61340-2-3 before the bottle is released. In dry winter warehouses at RH below 15%, the antistat cannot maintain a conductive surface layer, and charge may accumulate during filling; therefore, operators either humidify the filling hall or use a permanent conductive compound for such conditions.

    Formulation and regrind control in IBC production are more severe than in small packagings. The use of post-industrial regrind is limited by the antistat concentration; no more than 20 wt% non-antistatic regrind is introduced without a documented re-validation at 12% RH and 23 °C. The bottle must also resist environmental stress cracking from the packaged liquid; ASTM D1693-15 condition B and ISO 16770 full notch creep testing are conducted on production lot samples, because the top frame interface and the bottom foot geometry create notch points. Chemical compatibility testing is carried out by ISO 175 for each new filling liquid; aromatic hydrocarbons, chlorinated solvents, and strong oxidizing acids can cause swelling or stress cracking and may require an alternative barrier structure or an inner surface treatment. Purging and startup procedures use a fractional-melt HDPE purge to remove degraded antistat from the die and accumulator; holding melt temperature above 230 °C during tool changes accelerates additive degradation and produces carbon-like plate-out on the die lips. Terminal products include IBC inner bottles for solvent distribution, intermediate bulk containers for paints and inks, and returnable containers for flammable liquid storage in chemical warehousing.

    Extruded Sheet Stock for Chemical-Resistant Launder Covers and Baffle Plates in Wastewater Treatment

    Wastewater treatment plants use 5–12 mm thick extruded L5440AS sheet for fabricated launder covers, weir plates, and baffle plates in clarifiers and equalization basins. The sheet is produced on single-screw extruders with flat dies and polished roll stacks, then cut by CNC routers and welded by heated-tool butt welding or hot-air extrusion welding according to DVS 2207-1. The welded joints are qualified by tensile testing per ISO 527-2. The service environment includes 10 wt% sodium hydroxide, 30 wt% sulfuric acid, and sodium hypochlorite solution up to 5 wt% at ambient temperature; chemical resistance is confirmed by ISO 175 immersion testing with mass change below 1% after 28 days for these media. The material is not suitable for continuous exposure to 20 wt% nitric acid or strong oxidizers above 40 °C, nor for chlorinated hydrocarbons, which cause swelling and ESCR. Fabricated covers are mechanically supported to limit deflection to 1/100 of the span under a 2 kPa distributed load, a design criterion often used for pedestrian access. The sheet is usually pigmented grey or black with a color masterbatch at the supplier's recommended let-down ratio; for outdoor service, a UV-stabilized masterbatch is used and weatherability is tested by ISO 4892-3. Terminal products include launder covers, scum baffles, clarifier weir plates, and partition plates in chemical dosing tanks.

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