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LG Chem HDPE BE0400

    • Product Name: LG Chem HDPE BE0400
    • 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 273466
    Density 0.954 g/cm3
    Melt Flow Index 190c 2 16 Kg 0.35 g/10 min
    Tensile Strength At Yield 25 MPa
    Tensile Elongation At Break >600%
    Flexural Modulus 1000 MPa
    Notched Izod Impact Strength 100 J/m
    Vicat Softening Temperature 124 °C
    Heat Deflection Temperature 0 45 Mpa 70 °C
    Melting Point 133 °C
    Shore D Hardness 65
    Environmental Stress Crack Resistance Escr >1000 h
    Water Absorption <0.01%

    As an accredited LG Chem HDPE BE0400 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing LG Chem HDPE BE0400 is packaged in 25 kg polyethylene bags, with 40 bags per pallet, totaling 1,000 kg.
    Container Loading (20′ FCL) LG Chem HDPE BE0400 is securely loaded in 20′ FCL containers, typically in 25 kg bags, ensuring safe, efficient transport.
    Shipping LG Chem HDPE BE0400 is shipped as non-hazardous polyethylene pellets in 25 kg PP bags or 1,000 kg jumbo bags, palletized and stretch-wrapped. Transport in clean, dry, covered trucks or containers. Store cool, dry, away from direct sunlight, moisture, ignition, and contamination. No special dangerous-goods requirements apply.
    Storage Store LG Chem HDPE BE0400 in a cool, dry, well-ventilated warehouse away from direct sunlight. Keep original packaging sealed, palletized, and off the floor. Protect from moisture, heat, sparks, flames, and strong oxidizers. Avoid dust generation, punctures, and mechanical damage. Maintain segregation from incompatible materials and follow local regulations plus manufacturer SDS guidance. Use first-in, first-out stock rotation.
    Shelf Life Recommended shelf life for LG Chem HDPE BE0400 is 24 months in unopened original packaging, stored cool, dry, away from sunlight.
    Application of LG Chem HDPE BE0400

    Extrusion blow molding lines running LG Chem HDPE BE0400 for tight-head and open-top hazardous materials packaging are specified around accumulator-head machines rather than continuous shuttle equipment when shot volume exceeds 5 kg; the resin’s melt mass-flow rate of 0.4 g/10 min at 190 °C under a 2.16 kg load per ISO 1133-1:2022 and its density of 0.954 g/cm³ per ISO 1183-1:2019 define a high-viscosity parison with reduced sag on vertical drop, but also require screw torque and head pressure management in grooved-barrel extruders with L/D ratios between 24:1 and 30:1. The industry compliance framework is package-level: design-type testing under the UN Model Regulations Chapter 6.1, ADR Chapter 6.1, RID Chapter 6.1, and the IMDG Code Chapter 6.1; for a liquid with relative density ≤ 1.2, Packing Group II requires a drop test height of 1.2 m, while Packing Group III requires 0.8 m, and the filled package must not leak after impact. Because HDPE densities are below 1.0 g/cm³, the hydrostatic pressure test and stack test are run with a water-based simulant at 40 °C for design-type validation, with stack load calculated from identical packages stacked to a minimum height of 3 m. Formulation addition ratio for UN-certified containers is typically 100 wt% virgin BE0400; ultraviolet protection is obtained by dry blending 2.0–3.0 wt% carbon black masterbatch, while color adjustment and processing aid are held to 0.5–1.5 wt% total, and the total non-resin fraction is maintained below 3.5 wt% because higher external masterbatch loading reduces low-temperature drop impact and environmental stress crack resistance under ASTM D1693-15, Condition A. Production parameters on an 80–120 mm grooved-barrel extruder include melt temperature 180–210 °C, mold temperature 15–40 °C, clamp force 50–120 t, and parison programming with a die gap profile that thickens the pinch-off and neck shoulder; blow ratio is normally held between 2.5:1 and 3.0:1 to avoid localized thinning at the chime and sidewall. Although HDPE is not regarded as hydroscopic, surface moisture from storage in ambient relative humidity above 60% can produce splay in thick bottle necks; a hopper dryer at 70–80 °C for 1–2 h is applied only when condensation or bag damage is observed. Terminal product types include 3H1 plastics jerricans from 5 L to 60 L, 1H1 tight-head drums from 120 L to 220 L, and 1H2 open-top drums from 60 L to 220 L, each qualified with specified closure systems and gaskets because the complete packaging, not the resin alone, carries the UN marking.

    UN codeContainer formPG II drop height for liquids with relative density ≤ 1.2Performance test basis
    3H1Plastics jerrican, non-removable head1.2 mUN Model Regulations Chapter 6.1
    3H2Plastics jerrican, removable head1.2 mADR Chapter 6.1
    1H1Plastics drum, non-removable head1.2 mADR Chapter 6.1
    1H2Plastics drum, removable head1.2 mIMDG Code Chapter 6.1

    When a Diesel Tank Is Blow Molded from BE0400: Process Window and Barrier Constraints

    Where BE0400 is selected as the structural polyethylene layer in a 40–160 L diesel fuel tank for off-highway equipment, generator sets, or marine auxiliary tanks, the production route is usually a six-layer coextrusion accumulator blow molding line if the tank must pass evaporative emission and chemical resistance tests beyond simple hydraulic pressure. The layer sequence is HDPE skin/adhesive/EVOH/adhesive/regrind/HDPE skin; BE0400 serves in the 20–30 wt% outer skin and the 20–30 wt% inner skin, post-industrial regrind from edge trim and start-up scrap is introduced at 25–40 wt%, adhesive tie layers at 1–2 wt%, and EVOH barrier at 2–3 wt%. This addition ratio is not fixed by the resin supplier but by the tank’s target permeation value under SAE J1737 or ISO 13775-1; monolayer tanks are limited to regional applications where the fuel vapor exposure is below the local emission threshold or where the tank is non-pressurized diesel storage rather than a vehicle fuel system. The compliance framework includes ECE R34 for approval of plastic fuel tanks on motor vehicles, FMVSS 301 for fuel system integrity and leakage after rear impact, SAE J1737 for material compatibility with diesel and aggressive oxygenated fuels, and ISO 13775-1 for high-temperature resistance of plastic fuel tanks. Because BE0400 has a melt mass-flow rate of 0.4 g/10 min under ISO 1133-1:2022, screw recovery time and head pressure are greater than in lower-viscosity blow molding grades; extruder rpm is set to match the accumulator fill time without exceeding 35 MPa melt pressure. Melt temperature is maintained between 200 °C and 230 °C in the HDPE skin layers, accumulator shot capacity is selected between 10 kg and 35 kg depending on tank volume, and the parison die gap is programmed with at least 20 points across the parison length to thicken corners, pin holes, and the filler neck boss. Clamp force is typically 150–300 t for a 100 L tank mold. Post-molding operations include hot-plate welding of filler neck and fuel pump flanges, leak testing with air at 0.3–0.5 bar under water, and drop testing of the complete tank at -40 °C for some OEM specifications. Published data for BE0400-specific weld line strength at high regrind fractions above 35 wt% is limited; processors must validate tensile yield at the weld under ASTM D638-22 because post-industrial regrind with EVOH and adhesive contamination can reduce impact and cause delamination at the pinch-off line. Monolayer BE0400 is not recommended for pressurized gasoline fuel systems in regions with low evaporative emission limits. Terminal products are diesel fuel tanks, hydraulic oil reservoirs, and auxiliary storage tanks with volumes from 40 L to 160 L installed in agricultural tractors, construction excavators, stationary generators, and marine auxiliary power units.

    Agricultural Chemical Packaging: Fluorination Timing and ESCR Control

    Solvent-based emulsifiable concentrates and certain water-dispersible granule container systems generate a packaging failure mode that is distinct from standard UN transport: the bottle wall may pass the UN drop test but lose barrier integrity over weeks because aromatics such as xylene or cyclohexanone diffuse through the HDPE and simultaneously attack the amorphous tie molecules responsible for stress crack resistance. The relevant compliance framework is ISO 16101:2004 for compatibility testing of polyethylene, fluorinated polyethylene, and coextruded plastics against dangerous goods, combined with the same UN Model Regulations Chapter 6.1 design-type test and, for crop protection product packaging, the FAO/WHO Guidelines on Pesticide Packaging where adopted by the registration authority. Formulation addition ratio for this application is usually 100 wt% virgin BE0400; a UV stabilizer masterbatch may be added at 1.0–2.0 wt% for outdoor storage in tropical distribution environments, but the total external masterbatch content is held below 3.0 wt% because the stress crack resistance measured under ASTM D1693-15, Condition A is reduced more by color concentrates with low-molecular-weight carriers than by the resin itself. Two production pathways dominate. In in-line fluorination, the bottle is blow molded in a closed mold, and a low-concentration fluorine/nitrogen mixture is introduced into the parison air or blow air so that the inner surface reacts during inflation; this yields a fluoropolymer-like inner layer with measurably reduced solvent permeation. In off-line fluorination, finished bottles are treated in a batch reactor after molding, which allows fluorine surface modification to be controlled by time, temperature, and gas concentration independent of blow molding cycle time. The blow molding step itself uses accumulator-head machines with melt temperature 180–210 °C, mold temperature 12–35 °C, and a blow ratio of 2.5:1–3.0:1; neck calibration is critical because agricultural chemical closures are induction-sealed and the sealing surface must remain dimensionally stable to prevent leakage at the cap. Terminal products are 1 L, 5 L, and 10 L HDPE bottles and jerricans for emulsifiable concentrates, soluble liquids, and adjuvants, with fluorination specified for oxygenated solvents and high vapor pressure formulations; low-temperature drop after fluorination should be validated because surface crosslinking can alter bottle shoulder impact properties at -18 °C.

    Returnable 19 L water dispenser bottles molded from BE0400 replace polycarbonate in cost-sensitive distribution channels where drop weight and caustic-wash warping are primary fleet-management concerns; the resin’s melt mass-flow rate of 0.4 g/10 min under ISO 1133-1:2022 gives the parison enough hang time for a large accumulator shot, but it also reduces screw recovery and requires a longer cycle than low-viscosity bottle grades. Regulatory compliance for direct-contact water packaging is migration-based: the European Union requires a declaration of conformity against Regulation (EU) 10/2011 with overall migration and specific migration limits for the antioxidant system used in the grade, and the United States framework is 21 CFR 177.1520 for olefin polymers in food-contact articles, though end-use additive compliance must be confirmed under the specific grade’s food-contact status. In practice, the contact layer is filled with 100 wt% virgin BE0400; colorant masterbatch is limited to 0.5–2.0 wt% and is placed in the outer layer or pre-color compounded resin is used, while slip agents, antistats, and external lubricants are not introduced because migration into stored water must remain below detection limits for taste and odor panels. The production line for returnable bottles is a single-station or dual-station accumulator blow molding machine with clamp force 50–120 t, mold temperature 12–30 °C, and a calibrated neck that is formed against a blow pin to create a seal for the dispenser cap; sidewall thickness distribution is controlled by parison programming across the long axis, with extra wall thickness at the shoulder and base because these are the zones most damaged during commercial washing and refilling. Terminal products are 18.9 L and 19 L returnable bottles for point-of-use water dispensers and 10 L and 20 L carboys for water delivery; since bottles are washed in hot caustic and rinsed with acid sanitizers, the critical long-term property is not initial tensile strength but environmental stress crack resistance under ASTM D1693-15 after multiple washing cycles.

    What Limits the Use of Recyclate in Bleach Bottle Extrusion?

    High-pH sodium hypochlorite formulations with available chlorine concentrations of 5.25–8.25% and pH 12–13 create an oxidative and stress-crack environment at the bottle shoulder, base fold, and handle pinch-off; these zones are the first to fail when the polymer matrix has been weakened by antioxidant depletion or incompatible recycled content. The applicable standard framework includes ASTM D1693-15 for environmental stress crack resistance, ASTM D256-23 for impact strength, 21 CFR 177.1520 when the bottle may contact a food-contact sanitizing solution in the United States, and Regulation (EU) 10/2011 when the article is placed on the European market. Formulation addition ratio is constrained by recyclate quality: 100 wt% virgin BE0400 is used for the contact layer in aggressive bleach packaging; post-industrial in-house regrind from natural or beige bottles may be reintroduced at up to 15 wt% in the middle layer if the bottle is coextruded, but post-consumer recyclate is excluded from the contact layer because unknown absorbed odorants and antioxidant depletion create unpredictable ESCR failure under ASTM D1693-15. Extrusion blow molding is usually conducted on a continuous shuttle machine for containers up to 5 L and on an accumulator machine for larger sizes; the melt temperature is set at 180–210 °C, the mold temperature at 10–30 °C, and the parison die gap is profiled to achieve a wall-thickness distribution of 0.6–1.2 mm in the shoulder and base while maintaining 0.4–0.8 mm in the sidewall. Terminal product types include 500 mL, 750 mL, 1 L, and 5 L bottles for liquid bleach, surface disinfectants, drain cleaners, and institutional hygiene products; compatibility with quaternary ammonium disinfectants should not be assumed from the HDPE grade alone because the surfactant system can accelerate stress cracking even when the pH is lower than bleach.

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    Certification & Compliance
    More Introduction

    LG Chem HDPE BE0400 is a high-density polyethylene injection-molding resin supplied under the LUTENE-H grade designation. The nominal density is 0.960 g/cm³ and the melt flow rate is 4.0 g/10 min when measured at 190 °C with a 2.16 kg load according to ASTM D1238 and ISO 1133-1:2022. The product is specified for rigid injection-molded articles in which an intermediate melt-flow path must be combined with high flexural stiffness, low moisture uptake, and predictable post-mold shrinkage. Production applications include open-top containers, transport crates, industrial pallets, caps, closures, and rigid houseware components. The grade is not intended for film extrusion, pipe extrusion, or blow molding, where high melt strength at low shear rates is required and the molecular architecture of BE0400 would limit process stability.

    From manufacturer-published typical property data, tensile yield strength is 29.4 MPa under ASTM D638 at 50 mm/min. Elongation at break is reported above 500%; flexural modulus is approximately 1,180 MPa under ASTM D790. Notched Izod impact strength at 23 °C is in the range of 5–8 kJ/m² under ISO 180/A, with specimen preparation and notch radius influencing the result. Shore D hardness is 63 under ASTM D2240 / ISO 868. Vicat softening temperature is 123 °C under ASTM D1525 using 10 N load. Differential scanning calorimetry under ASTM D3418 generally places the crystalline melting peak for this density class near 130–135 °C, and the crystalline fraction is typically above 70%. These values place BE0400 among high-stiffness, intermediate-impact HDPE injection grades. Because the density is near the upper end of the HDPE range, the material exhibits lower oxygen permeability and higher modulus than medium-density polyethylene grades, while the higher crystallinity also reduces environmental stress-cracking resistance in contacted chemical service.

    How Does BE0400 Compare Against Generic HDPE Injection Grades?

    Unlike high-flow HDPE resins with melt flow rates above 12 g/10 min, BE0400 retains a higher molecular weight and a different shear-viscosity profile for thick-section crate and pallet applications. Under injection shear rates, the melt viscosity at 230 °C is lower than that of blow-molding HDPE but higher than that of a 20 g/10 min thin-wall resin. Processing should be supported by supplier-generated viscosity curves rather than by a single melt-flow point; published data for this specific configuration is limited. Injection pressure requirements for multi-cavity molds are typically 60–90 MPa at the nozzle, with holding pressure maintained at 70–90% of peak injection pressure until gate freeze. A clamp-force requirement of 3–5 kN/cm² of projected cavity area is commonly used for this density class.

    In rheometer characterization, capillary measurements under ASTM D3835 at 190–230 °C are used to generate shear-viscosity master curves. The melt flow index alone is insufficient because it characterizes a single low-shear-rate point; gate shear rates in injection molding typically range from 10³ s⁻¹ to 10⁵ s⁻¹, where power-law behaviour dominates. The flow behaviour index for HDPE in this range is generally between 0.35 and 0.50, depending on molecular-weight distribution. Published data for BE0400 specific to Cross or Carreau model parameters is limited and should be obtained from the supplier before mold-filling simulation.

    On production-scale injection machines with 20:1 to 24:1 L/D general-purpose screws, the melt temperature is typically set between 190 °C and 230 °C. The feed throat should remain below 40 °C to prevent pellet bridging. Mold temperatures of 20–60 °C are sufficient for dimensional control, but higher mold temperatures reduce molded-in stress at the expense of longer cycle time. Because HDPE is non-hygroscopic, pre-drying is not required when original packaging is intact; if sacks have been stored at relative humidity above 60% or moved from cold storage into a heated production hall, surface condensation should be removed by hopper drying at 60–70 °C for 1–2 h. Barrel residence above 300 °C causes chain scission and should be avoided. Screw recovery should begin after the cooling timer expires; melt cushion should be maintained at 3–6 mm for consistent shot-weight control.

    Screw peripheral speed is normally 0.1–0.3 m/s and back pressure is maintained at 5–10 bar; higher values raise melt temperature and are unnecessary unless color concentrates require additional dispersion. Residence time at melt temperature should be kept below 5 min when possible. Longer residence produces discoloration and loss of tensile elongation.

    For a multi-cavity crate mold with a projected cavity area of 0.12 m², the resulting clamp force requirement is approximately 3,600–6,000 kN. Shut-off nozzle systems are preferred over open nozzles to reduce drool during screw retraction. The resin shows moderate orientation-induced shrinkage anisotropy; post-mold linear shrinkage is commonly observed in the 1.5–2.5% range in the flow direction and 1.0–2.0% transverse, depending on wall thickness, mold temperature, and gate location. Mold-core draft angles of 1–2° are normally sufficient for demolding, but textured surfaces require an additional 1° per 0.025 mm of texture depth. Parting-line vents should be 0.02–0.03 mm deep for HDPE; insufficient venting causes diesel effect and burn marks at flow fronts.

    Injection speed profiles are usually set with a fast first-stage fill to 90–95% of the part volume, followed by a controlled transition to packing pressure. Excessive first-stage velocity may create gate blush or melt fracture at gate lands below 1.0 mm. Edge-gate configurations typically require land lengths of 0.8–1.5 mm and gate thicknesses of 50–70% of the wall thickness to avoid early freeze or jetting. Hot-runner manifold and nozzle temperatures are maintained between 210 °C and 230 °C, and thermal uniformity across nozzle tips should be verified before sampling. Tool steels with high thermal conductivity, such as beryllium-copper inserts, are used for thick sections to prevent sink marks; cooling circuits should maintain temperature differences across cavities below 5 °C to control warpage.

    If Rigid Wall Sections Require Simultaneous Impact and ESCR

    When environmental stress-cracking resistance is evaluated under ASTM D1693, the higher density and crystallinity of BE0400 place it below medium-density and bimodal HDPE grades in long-term chemical exposure. Published data for this specific grade under ASTM D1693 is limited; however, the general relationship between density and ESCR is well established for polyethylenes. Where containers are exposed to surfactants, alcohols, or household cleaning concentrates at elevated temperature, a lower-density HDPE or a bimodal heavy-plate grade should be screened unless part geometry limits stress concentrations. Sharp internal corners, weld lines, and gate vestiges act as stress risers and reduce the practical ESCR of any injection-molded HDPE.

    Compared with a 0.945 g/cm³ medium-density polyethylene, BE0400 provides higher creep resistance and lower oxygen permeability but lower ESCR and notch toughness at low temperature. The balance favors rigid transport crates, pallets, and trays where contact is intermittent and load-bearing stiffness dominates over chemical exposure. For continuous contact with strong oxidizing acids, aromatic hydrocarbons, or halogenated solvents, HDPE grades are not recommended without chemical compatibility testing because swelling and environmental stress cracking may occur.

    Low-temperature impact is an additional boundary. High-density PE grades in this density class can exhibit ductile-to-brittle transition behaviour that is influenced by notching and part thickness. Published data for BE0400 specific to low-temperature impact is limited; however, notched specimen tests under ISO 180/A should be conducted at the lowest service temperature if the part experiences drop loads. Unnotched impact testing is often less representative of injection-molded parts with sharp gate vestiges.

    Mechanical, Thermal, and Flow Compliance Matrix

    PropertyMethodTypical ValueUnit
    DensityASTM D1505 / ISO 1183-10.960g/cm³
    Melt flow rateASTM D1238 / ISO 1133-1:20224.0g/10 min
    Tensile yield strengthASTM D638 / ISO 527-229.4MPa
    Elongation at breakASTM D638 / ISO 527-2>500%
    Flexural modulusASTM D790 / ISO 1781,180MPa
    Notched Izod impact, 23 °CISO 180/A6.0kJ/m²
    Shore D hardnessASTM D2240 / ISO 86863—
    Vicat softening temperatureASTM D1525 / ISO 306/A50123°C

    The values in the matrix are manufacturer-published typical values, not release specifications. Lot-specific certificates should be requested for food-contact, pharmaceutical, or automotive quality systems. The melt flow rate is determined on dried pellets; moisture content below 0.05% is typical for unopened packaging. The notched Izod value represents 23 °C testing only and should not be extrapolated to low-temperature impact.

    In regulatory documentation, BE0400 is supplied as a general-purpose polyolefin grade. Conformance to REACH registration obligations and RoHS hazardous-substance restrictions should be verified through the supplier’s certificate of compliance for the specific production lot. Food-contact suitability may be evaluated under FDA 21 CFR 177.1520 for olefin polymers when the finished article is manufactured under appropriate conditions; end-use migration requirements depend on wall thickness, temperature, and food type. No statement in this document replaces a lot-specific compliance letter.

    When hot-runner systems are used, manifold and nozzle temperatures are maintained between 210 °C and 230 °C, and gate diameters below 1.0 mm may cause shear-induced degradation at high injection speeds. Shut-off nozzle systems are favored over open nozzles to reduce drool during screw retraction. Production-scale observations indicate that hold-time adjustments after gate freeze do not compensate for dimensional variation caused by uneven mold cooling, so mold-circuit balance should be confirmed with thermal imaging. Pellet handling systems should maintain silo residence below 35 °C where possible; static charge accumulation during vacuum conveying may cause pellet clustering and bridging. Grounding and controlled humidity near 40–60% RH reduce handling defects.

    Compared with lower-density HDPE grades in the 0.940–0.950 g/cm³ range, BE0400 has an elevated flexural modulus and reduced oxygen permeability, but the higher crystallinity increases shrinkage and lowers resistance to environmental stress cracking. The grade therefore occupies a narrow application window: it is selected for structural injection parts where stiffness and cycle-time efficiency are more important than continuous chemical exposure. In contrast, low-flow blow-molding HDPE grades with melt flow rates below 0.5 g/10 min are selected for heavy-walled containers and pipe where melt strength and ESCR dominate.

    Regrind from sprues and rejected parts may be reintroduced up to 30% in non-critical applications if the regrind is dry and free of dust. Higher regrind levels increase viscosity variability and should be evaluated for MFR and elongation loss. Published data for BE0400 specific to regrind cycling is limited.

    For applications with prolonged exposure to aggressive liquids, chemical compatibility testing under ASTM D543 is recommended. The resin is not designed for outdoor UV service unless adequately stabilized; unpigmented parts exposed to continuous sunlight exhibit surface embrittlement unless carbon black or hindered amine stabilizers are incorporated. Processing limits for BE0400 are defined by melt temperature, residence time, and gate shear; operations outside those boundaries shift the property profile unpredictably.

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