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LyondellBasell HDPE L4903

    • Product Name: LyondellBasell HDPE L4903
    • 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 809939
    Density 0.949 g/cm³
    Melt Flow Rate 0.35 g/10 min (190°C/2.16 kg)
    Tensile Modulus 1100 MPa
    Tensile Stress At Yield 26 MPa
    Tensile Strain At Break >600%
    Charpy Notched Impact Strength At 23 C 25 kJ/m²
    Charpy Notched Impact Strength At 30 C 8 kJ/m²
    Vicat Softening Temperature 75°C
    Melting Temperature 130°C
    Shore D Hardness 60
    Water Absorption <0.01%
    Thermal Conductivity 0.4 W/m·K

    As an accredited LyondellBasell HDPE L4903 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing LyondellBasell HDPE L4903 is typically supplied in 25 kg polyethylene bags, palletized and shrink-wrapped for industrial use.
    Container Loading (20′ FCL) 20′ FCL loaded with non-hazardous LyondellBasell HDPE L4903 high-density polyethylene pellets, 25 kg bags, palletized, net weight approx. 25 MT.
    Shipping LyondellBasell HDPE L4903 is shipped as non-hazardous polyethylene pellets, typically in 25 kg bags, bulk boxes, trucks, or railcars. Store in a cool, dry, ventilated area away from heat and sunlight. No DOT/IMDG/IATA hazard classification; use standard handling and spill cleanup to prevent pellet loss.
    Storage Store LyondellBasell HDPE L4903 in a cool, dry, well-ventilated area away from direct sunlight, heat, flames, and strong oxidizers. Keep original packaging closed to prevent moisture, dust, and contamination. Avoid extreme temperatures, physical damage, and incompatible materials. Do not expose to ultraviolet light or store near ignition sources. Use first-in, first-out rotation and consult the SDS and local regulations.
    Shelf Life LyondellBasell HDPE L4903 typically has a 24-month shelf life when stored unopened in a cool, dry area, away from direct sunlight.
    Application of LyondellBasell HDPE L4903

    LyondellBasell HDPE L4903 is processed on accumulator-head shuttle blow moulding lines producing 20 L to 60 L jerricans where UN 3H1 certification for liquid dangerous goods governs wall-thickness design and lot release testing. The material is run on single- or twin-station clamp equipment with a 24:1 L/D grooved-barrel extruder and a barrier screw with mixing elements sized for an output of 80–150 kg/h on a two-cavity 25 L tool. Melt temperature at the die is held at 190–220°C; die head zones are biased 5–10°C higher on the pinch-off side to prevent parison curl caused by thermal imbalance across the oval die. Head tooling diameter relative to the container finish is selected to yield die swell in the 25–40% range, and the die gap is adjusted from 1.2–2.5 mm depending on shot weight. Parison programming employs a 50–100 point wall-thickness curve, with a minimum sidewall thickness of 1.2 mm at the lower chime area; container drop testing to 49 CFR 178.603 after conditioning at -18°C exposes thinning at the pinch-off zone if the parison is under-programmed by more than 8–10% of nominal thickness. Clamp force for a two-cavity 25 L mould is specified in the 300–500 kN range, while blow air is delivered at 0.6–1.0 MPa through a needle that pierces the parison before mould closure. The blow mould is cooled with 10–25°C water circulated through side-core and bottom-pinch circuits, which sets the overall cycle to 75–110 s for a 25 L container; cooling time is not controlled by wall thickness alone but by the thermal conductivity of the mould steel and the position of the flash pocket. Flash is trimmed hot and directed to a dedicated granulation loop. The incorporation of the resulting post-industrial regrind is limited to 20–30 wt% for UN-rated packaging because ESCR measured under ASTM D1693, condition B, 10% Igepal CO-630 at 50°C degrades rapidly when the regrind fraction exceeds this threshold due to oxidative chain scission during repeated extrusion. The finished article is leak-tested at 20–30 kPa internal air pressure after surface treatment, and the flattened sidewall sample is subjected to the UN 3H1 stack test in accordance with 49 CFR 178.606; failure in service is most frequently observed as slow crack growth at the pinch-off weld line, a zone where the differential pressure between the mandrel side and the die side of the parison has not been levelled by proper ram profiling.

    UN 3H1 packing groupMinimum drop heightTest method
    I1.8 m49 CFR 178.603
    II1.2 m49 CFR 178.603
    III0.8 m49 CFR 178.603

    What Limits Regrind Concentration in Fluorinated Solvent-Barrier Containers?

    In-line fluorination of HDPE L4903 blow moulded containers is applied when the packaged liquid is a toluene-, xylene-, or ketone-containing industrial solvent, because untreated HMW-HDPE exhibits a steady-state solvent permeation rate that exceeds the limits set by the shipper’s low-level VOC emission policy. The fluorination step is performed after moulding in a gas-phase reactor at a fluorine concentration of 0.5–2.0% by volume in nitrogen, with the container surface modified to a fluorine content of 5–20 μg/cm². Post-fluorination containers must be purged with dry air for a minimum of 12–24 h before storage because residual hydrogen fluoride adsorbs onto the internal surface and creates odour, pH, and label-adhesion problems. The regrind generated from the deflashing of fluorinated containers contains thermally labile C–F bonds at the fracture surface; when this material is compounded back into virgin L4903 at melt temperatures above 200°C, the shear heat in the extruder can liberate trace HF, which corrodes downstream screen packs, die lips, and mould vents. Blow moulders therefore limit fluorinated regrind to 10–15 wt% unless the line is fitted with acid-scavenging stabiliser masterbatches and vented barrel sections. The barrier performance of the resulting container is measured by gravimetric weight loss after storage at 40°C for 14 days, not by oxygen permeation alone. A 20 L jerrican made with a 12 wt% fluorinated regrind fraction typically retains a solvent permeation rate below 0.5 g/h per container for xylene at 40°C when compared with an unfilled virgin control; however, when the regrind content is raised above 18 wt%, lot-to-lot variability increases because the fluorine surface density is not evenly distributed on the granulate. Containers specified for DOT Packing Group II and III solvents must also pass the leakproofness test of 49 CFR 178.604 at 20–30 kPa and a 24 h stack load at 40°C; the stack load is calculated as the gross mass of the package multiplied by 1.8. This dual requirement forces the processor to set the parison thickness at the handle-web junction above 1.5 mm because fluorination lowers the coefficient of friction and can make the moulded handle more susceptible to stress whitening during side-load testing.

    When Diesel Exhaust Fluid Packaging Requires UV-Stabilised High-Stiffness HDPE

    For diesel exhaust fluid, the material contact provisions of ISO 22241-3:2019 exclude materials that leach monoethylene glycol or urea adducts into the fluid, and the packaging must withstand the -11.5°C freeze point of a 32.5 wt% aqueous urea solution without cracking. HDPE L4903 is formulated with 2.0–3.5 wt% of a compatible UV stabiliser masterbatch and 1.0–1.5 wt% carbon black masterbatch for outdoor storage; the carbon black dispersion must achieve an absorbance coefficient above 0.7 µm⁻¹ tested by a microtome film method to prevent UV-induced chain scission at the container’s shoulder. Bottle wall thickness is programmed from 1.5 mm at the base to 1.0 mm at the upper body, with an elliptical sidewall rib pattern that resists panel deflection under a top load of 800–1200 N per EN ISO 12048. The moulding process uses a parison programmer with 80–150 points, and the parison is inflated at 0.8–1.0 MPa through a calibrated blow pin; the blow pin is retracted after the container has reached 85–90% of full internal pressure to reduce inner-surface roughness. Freeze-thaw testing is conducted under a thermal cycle of -20°C for 16 h to 40°C for 8 h for 10 cycles, with the closure torque retained above 1.0 N·m. The finished 10 L DEF bottles are subjected to a stack test at 40°C for 28 days with a top load equivalent to the mass of a palletised unit load, because ISO 22241-3 requires transport stability without secondary wrap. The polymer’s ESCR measured under ASTM D1693, condition B, 50°C, 10% Igepal should remain above 100 h; in practice, a drop to 40–60 h is observed if the regrind fraction exceeds 25 wt% or if the mould temperature falls below 10°C during winter operation. The closure thread is designed with a 3 mm pitch and a 1.5-thread engagement to preserve torque release after the internal pressure rises to 10–15 kPa under solar exposure.

    Large-capacity horizontal storage tanks of 120 L to 220 L are blow moulded from HDPE L4903 on stationary accumulator machines where the melt reservoir volume is 5–10 L and the shot repeatability is ±0.5 wt% of the target shot mass. The parison is extruded at a melt temperature of 180–210°C through a divergent die with a gap of 2.0–3.5 mm; because the parison is suspended for 25–45 s during transfer, the melt strength must be sufficient to limit sag to less than 15% of the initial parison length before mould closure. The processing window for the die temperature is deliberately kept within ±5°C of the setpoint because a 5°C upward deviation reduces melt viscosity and increases sag-driven wall-thickness variance at the tank dome. The mould is constructed with a 2-degree draft angle on the vertical walls to permit demoulding, and the tank is removed only after the inner surface temperature has fallen below 75°C. Wall thickness is profiled from 3.5 mm at the bottom pinch zone to 2.0 mm at the sidewall; profiles are verified by ultrasonic thickness gauging with a 5 MHz transducer rather than destructive sectioning. The finished tank is hydrostatically tested at 20 kPa internal pressure for 10 min and is also subjected to a 24 h stack load at 45°C with 1.8 times the intended gross mass. In agricultural water storage and industrial drainage containment, the limiting failure mode is not short-term burst but slow crack propagation from the pinch-off weld; this defect is minimised by offsetting the die pin 0.2–0.5 mm upward and by maintaining the bottom pinch land temperature at 15–20°C through a separate mould circuit.

    Agrochemical Container Durability and ASTM D1693 ESCR Screening

    Agrochemical organisers package emulsifiable concentrates, suspension concentrates, and oil-based adjuvants in HDPE L4903 jerricans where the container must survive cyclic exposure to aromatic hydrocarbon solvents and nonylphenol ethoxylate surfactants without stress cracking. The acceptance protocol uses ASTM D1693, condition B, 10% Igepal CO-630 at 50°C, with a required F50 value above 150 h for the virgin polymer and above 60 h for the moulded sidewall sample after 30 days of storage at 54°C with the agrochemical formulation. The polymer is not plasticised by the solvents, but the combination of internal pressure and hoop stress at the handle web causes a drop in ESCR if the sidewall thickness is below 1.3 mm. Blow moulding is performed with a parison programming curve that adds 15–20% extra thickness at the handle web, and the mandrel is cooled separately with 12–18°C water to freeze the pinch-off before the part is inflated. The agrochemical container is tested by an initial drop test at 1.2 m onto a steel plate at -18°C and a subsequent hydrostatic pressure test at 20 kPa for 30 min; the two sequential tests must be passed without leakage. The closure compatibility is verified by immersing the assembled closure and container neck in the formulation for 72 h at 50°C, and measuring torque release after 24 h; torque retention above 50% of the initial value is used as the production gate. Because pesticide labels frequently require a 5-year shelf life, the container’s UV package includes a hindered amine light stabiliser at 0.15–0.30 wt%; addition above 0.35 wt% can cause surface bloom in humid storage, which reduces label adhesive peel strength below 4 N/25 mm.

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    Certification & Compliance
    More Introduction

    LyondellBasell HDPE L4903 is a high-molecular-weight, high-density polyethylene grade within the Alathon HDPE family. The resin is specified for extrusion blow moulding of rigid industrial packaging, where a balance of environmental stress crack resistance, melt strength, and low-temperature impact performance is required. Representative manufacturer-published values include a nominal density of 0.949 g/cm³ when tested to ASTM D1505 or ISO 1183-1 and a melt flow rate of 0.30 g/10 min at 190 °C/2.16 kg when tested to ASTM D1238 or ISO 1133-1. The melt flow ratio between 21.6 kg and 2.16 kg loadings is substantially higher than that of conventional injection moulding grades, indicating a broad molecular weight distribution intended for parison stability during large-part blow moulding.

    What causes parison sag instability in L4903 during large-part blow moulding?

    Parison sag in L4903 is governed by the coordinated effect of melt temperature, parison length, shot size, and the resin’s shear history in the blow moulder. On continuous shuttle machines with 60 mm to 90 mm extruders, barrel temperature profiles are commonly maintained between 180 °C and 210 °C, while the die head is held at 185 °C to 205 °C. At temperatures above 220 °C, the parison exhibits measurable length reduction before mould closure, particularly in containers with net parison lengths above 800 mm. This is a comparative weakness against low-melt-index HDPE grades having higher melt viscosity; however, L4903 compensates through elevated melt elasticity and adequate draw-down resistance when processed below 210 °C. Equipment operators commonly observe that sag becomes pronounced when accumulator pressure drops below 4 MPa during fast parison extrusion, because the polymer is subjected to lower stress relaxation and greater gravity-induced thinning. Pre-drying is not normally required unless condensed moisture forms on cold pellets after humid outdoor storage; if surface moisture is present, a drying step of 2 h at 80 °C in a desiccant hopper is applied to prevent surface splay and inconsistent parison tack.

    Molecular architecture differentiates L4903 from lower-molecular-weight HDPE blow moulding grades. The broad molecular weight distribution and intermediate density are reflected in creep resistance and environmental stress crack resistance that exceed those of standard 0.958 g/cm³ homopolymer blow moulding grades. In practice, this permits downgauging of drum walls when the container is exposed to surfactants, industrial cleaners, or agricultural chemicals. Published dynamic rheometry data for L4903 in the 0.1 rad/s to 100 rad/s frequency window is more limited than steady-shear capillary data, but the available high-load melt index and melt flow ratio indicate a high-viscosity terminal region and a shear-thinning profile suited to extrusion through converging die heads. Processors should not infer narrow-molecular-weight behaviour from the 0.30 g/10 min melt flow rate alone; the high-load melt index is more informative for extrusion blow moulding throughput calculations.

    Property Representative L4903 value Reference comparison range for a 0.958 g/cm³ HDPE blow moulding resin Test method
    Nominal density 0.949 g/cm³ 0.957–0.960 g/cm³ ASTM D1505 / ISO 1183-1
    Melt flow rate, 190 °C/2.16 kg 0.30 g/10 min 0.20–0.45 g/10 min ASTM D1238 / ISO 1133-1
    High-load melt index, 190 °C/21.6 kg 9.5 g/10 min 6–14 g/10 min ASTM D1238 / ISO 1133-1
    Tensile strength at yield 26 MPa 28–31 MPa ASTM D638 / ISO 527-2
    Flexural modulus 1,100 MPa 1,300–1,500 MPa ASTM D790 / ISO 178
    ESCR, 100 % Igepal CO-630, Condition B >300 h 40–150 h ASTM D1693

    The above values are representative technical data, not sales specification limits. The comparative range is drawn from typical density and ESCR relationships for general-purpose HDPE blow moulding resins, not from a single competing grade. L4903 therefore occupies a boundary position between high-stiffness homopolymer HDPE and low-density PE resins: it sacrifices a measurable portion of top-load strength relative to 0.958 g/cm³ grades while gaining resistance to detergent-induced cracking and slow crack growth. In drum manufacturing, this trade-off is relevant when a 220 L open-top drum requires both drop strength and chemical storage capacity. Wall thickness distribution, weld-line knit strength, and corner thickness remain design variables that cannot be replaced by resin substitution alone.

    Accumulator-head die gap, decompression and wall-thickness mapping constraints

    For accumulator-head machines producing containers in the 20 L to 220 L range, L4903 is typically processed with die gap settings from 0.8 mm to 1.5 mm, depending on target parison weight and die diameter. Decompression after each shot is held between 0.5 mm and 1.2 mm to prevent post-extrusion drool without inducing air entrapment in the next parison. Excessively rapid decompression, especially above 2 mm/s, can draw air into the melt front and produce pinholes or circumferential weld defects. Blow pin calibration pressure for thin-wall parts is generally set between 0.4 MPa and 0.8 MPa, while blow air temperature is not directly controlled on many single-station shuttle machines. Mould temperatures from 10 °C to 25 °C are typical for dimensional stability, with lower temperatures used to reduce cycle time but at the expense of impact resistance in corners and pinch-off zones.

    Because L4903 has a broad molecular weight distribution, parison programming is used to compensate for die swell and sag. Wall-thickness mapping shows that the lower parison region should be programmed thicker than the upper region when moulding tall containers, because gravity-induced thinning is more severe in the final 20 % of parison length. Parison thickness transducers based on ultrasonic measurement are preferred over contact callipers for closed-loop control. In production-scale observations, wall-thickness standard deviation can be maintained below 0.15 mm on a 2.5 mm nominal sidewall when programming is combined with stable melt pressure. Without accumulator pressure correction, batch-to-batch variation in off-line melt flow rate is an insufficient predictor of wall uniformity because it does not capture die swell and melt relaxation variations originating from upstream regrind addition.

    Chemical compatibility testing for L4903 containers is conducted under conditions that represent the intended filling environment. Resistance to 55 % phosphoric acid, 10 % sodium hydroxide, and nonionic alkylphenol ethoxylate solutions is frequently evaluated by ASTM D1693 ESCR testing or by filled-container storage trials at 40 °C. The resin demonstrates lower notch sensitivity than conventional chromium-catalysed HDPE with similar nominal density, but the improvement is not unlimited. Containers exposed to strong oxidizers, aromatic hydrocarbon solvents, or ester-based solvents may still fail through environmental stress cracking if high hoop stress is retained at moulded-in stress concentrations. Regulatory compliance must be verified against the current certificates of conformity: not all production campaigns of L4903 carry identical food-contact or pharmaceutical packaging status. REACH and RoHS compliance are normally stated at the product-family level, but the applicable food-contact citation may require resin-specific confirmation under FDA 21 CFR 177.1520 or the relevant national migration standard.

    When purging shifts from L4903 to a narrow-molecular-weight injection moulding grade

    Transition purging from L4903 to a narrow-molecular-weight injection moulding HDPE requires a high-back-pressure displacement sequence because the viscosity mismatch is pronounced. A purging compound based on a low-density polyethylene carrier with 10 wt% to 20 wt% inorganic abrasive is typically introduced after the hopper is emptied and before the target resin is loaded. Screw speed is kept below 40 min⁻¹ and back pressure is increased to 1.5 MPa to 2.5 MPa to raise residence time and shear cleaning at the root of the screw. The target narrow-MWD resin should not be introduced until the melt temperature has been lowered to 190 °C to 200 °C and extrudate colour is free of black specks. Failure to complete the transition is observed as hard lumps of unmelted high-molecular-weight fraction in the purging extrudate and subsequent gate blockage in injection moulding nozzles. Incompatibility with certain peroxide masterbatches or pro-degradant additives should be assumed unless compatibility data is provided; free-radical generators can shift molecular weight distribution and reduce ESCR independently of the original resin grade.

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