Products

North Huajin (Liaoning) HDPE K44-08-122

    • Product Name: North Huajin (Liaoning) HDPE K44-08-122
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications
    HS Code 385900

    As an accredited North Huajin (Liaoning) HDPE K44-08-122 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing North Huajin (Liaoning) HDPE K44-08-122 is packaged in 25 kg PP woven bags with PE liners, on 1,000 kg pallets.
    Container Loading (20′ FCL) 20′ FCL loading: North Huajin (Liaoning) HDPE K44-08-122 in 25 kg bags, generally 25 MT per container, loose loaded without pallets.
    Shipping North Huajin (Liaoning) HDPE K44-08-122 ships as non-hazardous polyethylene pellets in 25 kg PP woven bags or 1,000 kg jumbo bags, palletized, stretch-wrapped, and containerized. Transport by truck, rail, or sea; store dry, ventilated, away from heat and direct sunlight.
    Storage Store North Huajin (Liaoning) HDPE K44-08-122 in a cool, dry, well-ventilated warehouse away from direct sunlight, heat, moisture, and ignition sources. Keep original packaging sealed and pallets clean, dry, and stable; avoid overstacking. Prevent contamination with dust, water, oils, or strong oxidizers. Use appropriate handling equipment and follow local regulations and manufacturer guidelines. Do not expose to open flames or excessive temperatures.
    Shelf Life North Huajin (Liaoning) HDPE K44-08-122 has a recommended shelf life of 12 months under proper, cool, dry storage conditions.
    Application of North Huajin (Liaoning) HDPE K44-08-122

    Which Coextrusion Layer Order Preserves Parison Weld Strength Below a 3 µm EVOH Barrier Thickness?

    Multilayer blow molding of automotive fuel systems places North Huajin (Liaoning) HDPE K44-08-122 in the outer cap and inner lining layers of six-layer accumulator-head coextrusion machines because a melt flow rate of 0.8 g/10 min per ISO 1133-1:2022 at 190°C/5 kg and density of 0.944 g/cm³ support parison hang-time on shot weights from 3 kg to 10 kg. The layer formula in production is typically 55–65 wt% HDPE outer and inner layers, 25–35 wt% regrind, 1–2 wt% anhydride-grafted tie resin, and 2–3 wt% ethylene-vinyl alcohol barrier; the EVOH layer is maintained above 2.5 µm at pinch-off and corner radii because barrier thinning below this value increases permeation above 2 mg/day under SAE J1737 and CARB LEV III evaporative procedures. Compliance includes UN ECE R34 Annex 5 fire resistance, FMVSS 301 fuel system integrity, and EPA 40 CFR Part 86 evaporative emission limits; HDPE layers are tested for yield stress above 22 MPa per ISO 527-2 and low-temperature impact per ISO 179-1:2010 at -30°C. Downstream machinery comprises a six-layer accumulator-head coextrusion blow molder with HDPE extruder L/D 30:1–36:1, HDPE melt temperature 205–220°C, barrier melt temperature 190–205°C, mold temperature 10–15°C, blow pressure 0.8–1.0 MPa, and cycle time 90–180 s; post-mold operations include roboted flash removal, pressure decay leak testing at 30–50 kPa, and emission canister welding. Process boundaries include maximum EVOH residence time below 15 min to avoid gel formation and HDPE melt temperature not exceeding 220°C to prevent parison drawdown instability. Terminal products are gasoline and diesel fuel tanks from 35 L to 110 L, selective catalytic reduction urea reservoirs, and urea pump module shells.

    Grooved-Feed Single-Screw Extrusion and PE80 Wall-Stress Control

    Solid-wall PE80 water supply pipe converts K44-08-122 under hydrostatic design conditions governed by long-term creep rupture testing and notched-pipe slow crack growth resistance. The formulation is 96–98 wt% K44-08-122, 2.0–2.5 wt% carbon black masterbatch with particle size 20–60 nm, and 0.1–0.3 wt% hindered phenol antioxidant; calcium carbonate filler is limited to 0.5 wt% maximum because higher loading accelerates slow crack growth in notched pipe tests under ISO 13479. Compliance is evaluated against ISO 4427-1:2019 and ISO 4427-2:2019 for polyethylene water supply pipe, ISO 12162 for PE80 classification with minimum required strength 8.0 MPa at 20°C and 50 years, and ISO 1167 for hydrostatic strength; published PE80 certification data specific to K44-08-122 remains limited and processor qualification is required before municipal tender submission. Extrusion is performed on a grooved-feed single-screw extruder with L/D 30:1–37:1, barrel zones at 190–215°C, die head temperature 200–210°C, vacuum calibration tank water at 20–40°C, and line speed 0.3–1.2 m/min for DN 110–400 mm pipe; wall thickness control is maintained within ±0.2 mm by ultrasonic scanning. Terminal products are municipal water distribution mains, industrial process water lines, and dewatering pipes operating at pressures up to 0.6 MPa for water at 20°C under PE80 classification.

    PE80 pipe compliance matrix for K44-08-122 solid-wall extrusion
    PropertyStandard designationConditionAcceptance criterion
    Hydrostatic strengthISO 116780°C, 4.0 MPaNo failure before 165 h
    Notched pipe slow crack growthISO 1347980°C, circumferentially notchedFailure time above 200 h
    Oxidation induction timeISO 11357-6200°CGreater than 20 min

    Extrusion blow molding of heavy-section industrial containers uses K44-08-122 as the primary monolayer wall material on accumulator-head machines rated for shot volumes above 15 L and clamp forces from 500 kN to 2,500 kN. The material’s melt flow rate of 0.8 g/10 min per ISO 1133-1:2022 at 190°C/5 kg and density of 0.944 g/cm³ provide parison sag control during slow accumulator-head cycles where melt residence time can reach 60–120 s before parison deployment. In closed-head drum production, the typical addition ratio is 96–98 wt% K44-08-122, 2–4 wt% carbon black or compatible color masterbatch, and 0.2–0.5 wt% processing stabilizer when back pressure exceeds 18 MPa; regrind may be reintroduced at 20–40 wt%, but UN-rated dangerous goods packagings require mill-test traceability and regrind homogenization to limit stack-test permanent deformation below 4 mm. Compliance for transport containers is governed by UN 1H1/1H2 qualification in the UN Manual of Tests and Criteria Part III, including drop testing at -18°C and hydraulic pressure testing at 100 kPa; food-contact containers additionally require FDA 21 CFR 177.1520(c) 3.1b and EU Regulation 10/2011 Annex I overall migration below 10 mg/dm². Downstream processing uses barrel temperature profiles from 180°C to 210°C, die head temperature 195–210°C, mold temperature 10–20°C, blow pressure 0.6–0.9 MPa, and parison programming with 20–100 points for L-ring drums; wall thickness is held between 2.5 mm and 6.0 mm. Operational boundaries include maximum melt temperature 220°C to avoid parison drawdown and maximum mold temperature 25°C to prevent handle weld-line failure. Terminal articles are 20–60 L UN-rated jerrycans, 120–220 L L-ring drums, open-top pails, and 1,000 L IBC inner containers.

    Corrugated HDPE drainage pipe and cable conduit extrusion exploits the resin’s low-sag melt behavior at the corrugator gap and its vacuum-forming conformity for structured-wall geometries. The formulation is 95–97 wt% K44-08-122, 2.0–2.5 wt% carbon black masterbatch for ultraviolet resistance, 0.1–0.3 wt% hindered phenol antioxidant, and 0.5–1.0 wt% process lubricant to prevent melt fracture at die gaps below 1.0 mm. Compliance is evaluated under ISO 21138-1 for corrugated pipes in stormwater and cable protection, EN 13476-3 for structured-wall pipes, and ASTM F2648/F2648M for agricultural drainage; ring stiffness tests follow ISO 9969 with minimum values above 8 kN/m² for SN8 class, and oxidation induction time is measured per ISO 11357-6 at 200°C. The production line consists of a grooved-feed single-screw extruder with L/D 30:1–36:1, barrel zones at 180–210°C, head temperature 195–215°C, and a two-stage vacuum corrugator with mold block temperatures 15–25°C; vacuum settings of -20 to -40 kPa are required to form corrugations without root-diameter thinning, and line speed is limited to 0.5–2.0 m/min for pipe diameters 300–1,200 mm. Process constraints include a maximum melt temperature of 215°C to prevent blocking at the corrugator inlet and a minimum mold block temperature of 15°C to avoid surface pitting. Terminal products include perforated agricultural drain lines, twin-wall stormwater retention chambers, cable protection conduits, and buried drainage culverts.

    Flat-sheet extrusion and twin-sheet thermoforming convert K44-08-122 into thick-gauge industrial dunnage, battery housings, and reusable logistics platforms. The addition formula is 92–96 wt% K44-08-122, 3–6 wt% ultraviolet-stabilized color masterbatch, and 1–2 wt% processing aid when die lines appear on sheets above 4 mm; moisture content is maintained below 0.02 wt% before extrusion because high back-pressure sheet lines above 20 MPa amplify melt-pressure fluctuations. Relevant compliance for load-bearing dunnage is ASTM D638-14 for tensile properties, ASTM D790-17 for flexural modulus, ISO 899-2 for creep in flexure, ISO 8611-1 for pallet load rating, and FDA 21 CFR 177.1520 for non-fat food contact when specified. The extrusion chain includes a single-screw extruder with L/D 30:1–34:1, a flat die with restrictor bar and flexible lip, and a three-roll calendering stack with roll temperatures 60–80°C producing sheet thickness 2–12 mm; twin-sheet thermoforming then uses matched aluminum tools at 60–80°C, sheet surface temperature 165–185°C, and forming air pressure 0.5–0.8 MPa to produce hollow double-wall panels. Operational boundaries include a maximum sheet surface temperature of 185°C to prevent bilayer sag collapse and a minimum tool temperature of 60°C to avoid premature freeze-off at seam welds. Terminal products are twin-sheet pallets with static loads above 1,000 kg, automotive fender liners, machinery covers, and industrial battery boxes.

    Technical Blow Molded Reservoirs and Ducts Demand Tighter Dimensional Tolerance Than Industrial Drums

    Technical blow-molded components such as automotive HVAC ducts and fluid reservoirs use the same low-sag parison characteristics of K44-08-122 but require tighter dimensional tolerance and secondary welding performance compared with large industrial containers. In these applications the resin fraction is 90–96 wt%, with 2–4 wt% carbon black or custom color masterbatch and 0.2–0.5 wt% processing stabilizer; up to 10 wt% regrind from trimmed parison flash is introduced after dust removal and melt homogenization. Compliance is driven by ISO 179-1:2010 Charpy impact, ISO 527-2 tensile, and FMVSS 302 flammability acceptance for interior materials when ducts enter occupant compartments; coolant reservoir testing includes pressure cycling at 150–250 kPa and thermal aging at 105°C for 500 h per automotive tier specifications. The typical production cell uses a shuttle blow molder with L/D 24:1–30:1, parison programming for wall thickness 2–5 mm, mold temperature 10–20°C, blow pressure 0.6–0.8 MPa, and cycle time 45–90 s; for air ducts, lost-core or three-dimensional blow molding may be required to prevent wall thinning below 2 mm at bend outer radii. Process incompatibilities include flash regrind exceeding 15 wt% in duct components due to increased weld-line brittleness and mold release residues above 0.1 g/m² causing surface adhesion defects. Terminal products are washer fluid reservoirs, coolant overflow bottles, automotive air ducts, industrial ventilation ducts, and agricultural chemical tanks with molded inserts.

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