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LyondellBasell HDPE 50-4052

    • Product Name: LyondellBasell HDPE 50-4052
    • 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 686878
    Density 0.950 g/cm³
    Melt Index 40 g/10 min (190°C/2.16 kg)
    Tensile Strength At Yield 26.0 MPa
    Tensile Strength At Break 22.0 MPa
    Elongation At Break 1000%
    Flexural Modulus 1.10 GPa
    Notched Izod Impact 0.500 ft-lb/in
    Vicat Softening Point 125 °C
    Brittleness Temperature -70 °C
    Hardness Shore D 65
    Melt Temperature 200 - 250 °C
    Mold Temperature 20 - 60 °C

    As an accredited LyondellBasell HDPE 50-4052 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing LyondellBasell HDPE 50-4052 is supplied in 25 kg polyethylene bags, typically 55 bags per pallet, stretch-wrapped for shipment.
    Container Loading (20′ FCL) 20′ FCL container loaded with LyondellBasell HDPE 50-4052 resin in 25 kg bags, palletized, shrink-wrapped, and securely strapped for export.
    Shipping LyondellBasell HDPE 50-4052 is a non-hazardous high-density polyethylene resin. It is not regulated for transport by DOT, IATA, IMDG, or ADR. Ship in sealed bags, bulk bags, boxes, or bulk containers. Keep dry and away from heat, sunlight, and ignition sources. Ensure containers are closed and labeled with product identification.
    Storage Store LyondellBasell HDPE 50-4052 in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, and open flames. Keep containers or bags closed to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and strong oxidizers. Use first-in, first-out inventory. Store at ambient temperature. Protect from physical damage. Maintain clean handling areas to prevent pellet spills and slipping hazards.
    Shelf Life Typically 24 months from manufacture when stored unopened in original packaging, cool, dry, away from direct sunlight and moisture.
    Application of LyondellBasell HDPE 50-4052

    What Defines the Upper Melt Temperature Limit for Extrusion Blow Moulding of 50-4052?

    LyondellBasell HDPE 50-4052 is specified by the manufacturer with a nominal melt flow index of 0.50 g/10 min at 190°C under ASTM D1238 and a nominal density of 0.952 g/cm³ under ISO 1183-1, and these two values define the processing window in extrusion blow moulding far more tightly than the generic category “HDPE” suggests. The upper melt temperature limit is not fixed by thermal stability alone but by the onset of parison sag on continuous shuttle and reciprocating screw machines; a melt temperature above 210°C at the die head produces measurable thinning in the lower parison region and shifts wall-thickness distribution outside the operational tolerance of ±0.2 mm on a 0.8 mm target wall. Barrel set points of 160°C in the feed zone, 180°C in the compression zone, 195°C in the metering zone, and 200°C at the die are typical for a single-screw extruder with an L/D ratio between 24:1 and 30:1 and a barrier screw with compression ratio 2.2:1 to 2.8:1. The die gap is normally held between 1.2 mm and 2.0 mm, and blow pressure is set from 0.6 MPa to 1.0 MPa with blow time between 12 s and 25 s. Mould temperature is maintained at 10°C to 20°C because higher cavity temperatures extend cycle time without improving drop resistance. Food-contact grades of 50-4052 require compliance with 21 CFR 177.1520(c) for olefin polymers and with EU 10/2011 overall migration limits of 10 mg/dm²; colour concentrates must themselves be food-contact listed and are typically added at 2.0 wt% to 4.0 wt% in a polyethylene carrier with melt index matched to the base resin to avoid flow instabilities at the die lip.

    Accumulator-head production of 220 L L-ring drums uses the low melt flow of 50-4052 as the primary control against parison sag during shot sizes of 3.0 kg to 5.5 kg. The parison programmer is configured with 20 to 45 thickness points, and the minimum programmed wall at the lower chime is set 0.4 mm to 0.6 mm thicker than the sidewall to compensate for axial stretch. Machine clamp force for a 220 L drum normally lies between 1,000 kN and 2,500 kN, while the hydraulic accumulator discharge time must be kept below 0.8 s to prevent folding and cold-core pinch-off defects. Drop impact qualification for UN single-layer packages follows UN 1H1/Y1.9/100 protocols with conditioning at -18°C for 24 h and drops onto a rigid impact surface; a sidewall thickness of 2.0 mm to 3.0 mm is typical for standard liquids up to specific gravity 1.9. Environmental stress crack resistance is measured under ASTM D1693 Condition B in 100% Igepal CO-630 at 50°C, and the raw resin specification generally requires no failure before 100 h. In regrind-containing layers, a practical limit of 20 wt% to 30 wt% of post-industrial trim is set because higher regrind fractions raise gel counts and degrade the notched ESCR response without altering melt flow sufficiently to trigger measurable process changes. Hot-fill resistance is not a strength of HDPE 50-4052; continuous service above 60°C under headspace pressure can lead to creep and stack deformation, so the material is restricted to ambient or intermittently warm liquid storage unless structural reinforcement is used.

    Application SectorMelt/Forming TemperatureTool/Calibration TemperatureKey Control Variable
    Extrusion blow moulding180°C–210°C10°C–20°CParison sag ≤ ±0.2 mm wall drift
    Industrial drum blow moulding190°C–205°C10°C–25°CDrop impact at -18°C
    Potable water tank blow moulding190°C–205°C10°C–20°CPinch-off delamination
    Sheet extrusion210°C–230°C70°C–100°CRoll differential
    Thermoforming125°C–135°C sheet surface50°C–70°C mouldPlug speed 0.5 m/s–0.8 m/s
    Corrugated non-pressure pipe200°C–220°C at die15°C–25°C waterMelt pressure variation ±0.3 MPa

    When 50-4052 Is Substituted for Bimodal HDPE in Monolayer Potable Water Tank Production

    When a potable water tank manufacturer replaces a bimodal HDPE with 50-4052, the critical shift is not the melt temperature but the reduced melt-strength plateau at high shear. A twin-station shuttle machine with accumulator head and parison programming must maintain die temperature within 190°C to 205°C and melt pressure below 30 MPa because higher pressure accelerates sharkskin on the parison surface, which is transferred to the inner wall and can obscure contamination detection. The mould close speed is set to 150 mm/s to 250 mm/s, and the pre-clamping pause is limited to 0.5 s to 1.0 s to prevent premature contact between the hot parison and cold cavity. Wall-thickness distribution is programmed to produce 2.5 mm to 4.5 mm on the bottom and 2.0 mm to 3.0 mm on the sidewall for a 100 L to 200 L tank. Potable water contact compliance is controlled through NSF/ANSI 61 and BS 6920; the formula avoids amine-based antistatic additives because their migration into standing water produces sensory failures at loadings above 0.1 wt%. UV stabilization for outdoor tanks is typically provided by a 2.0 wt% to 3.0 wt% hindered amine light stabilizer masterbatch or a 2.0 wt% to 2.5 wt% carbon black concentrate; carbon black dispersion is evaluated according to ISO 18553. The most common failure mode in this substitution is not cracking but pinch-off delamination at the base, so the melt temperature at the pinch region is kept at the upper end of the band and the pinch design is widened by 0.5 mm to 1.0 mm. Published data for this specific substitution configuration is limited, but field reports from accumulator-head lines indicate that a die gap increase of 0.3 mm to 0.5 mm is required to maintain part weight when switching from a higher-melt-flow blow moulding grade.

    Sheet extrusion of 50-4052 on a single-screw line with flex-lip die and vertical three-roll stack requires differential roll temperatures rather than a single set point. The melt temperature at the die lip is held between 210°C and 230°C, while the die gap is set 0.6 mm to 1.2 mm to produce sheet thickness from 0.5 mm to 6.0 mm. The top roll is maintained at 85°C to 95°C, the middle roll at 90°C to 100°C, and the lower roll at 70°C to 80°C; this arrangement controls curl and residual stress without generating surface haze on food-contact sheet. Roll speed is set to match line speed with a draw ratio below 1.1:1 between die gap and final sheet thickness because higher draw ratios impart orientation that causes anisotropic thermal expansion in downstream thermoforming. In thermoforming, the sheet surface is heated to 125°C to 135°C, and the forming air pressure or vacuum is applied at -0.08 MPa to -0.09 MPa with a plug speed between 0.5 m/s and 0.8 m/s. Trim scrap is normally reintroduced at 15 wt% to 25 wt%, and gel counts measured by screen pack must remain below 10 particles/m² for visible surface defects. Food packaging produced from this sheet falls under FDA 21 CFR 177.1520 and requires migration testing under EU 10/2011; residual monomer and catalyst neutralization by the resin manufacturer are the primary compliance variables, not the sheet extrusion parameters themselves. For medical packaging, biocompatibility is not a resin property but a finished-device requirement, so 50-4052 sheet must be evaluated under ISO 10993-1 after gamma or ethylene oxide sterilization, and gamma doses above 25 kGy can increase yellowness index by more than 2.0 units without post-stabilization.

    Pipe Extrusion Melt Homogeneity and Die Drool Thresholds

    Non-pressure corrugated drainage pipe and conduit produced from 50-4052 is processed on a single-screw extruder with a grooved feed section and L/D ratio of 30:1 to 33:1. Barrel temperatures are set from 180°C at the feed throat to 205°C at the metering zone, and the die head is held at 200°C to 220°C; melt pressure at the screen changer should not exceed 35 MPa because the resulting shear heating narrows the residence-time distribution and promotes die lip oxidation. Corrugator speed is adjusted between 0.5 m/min and 3.0 m/min depending on pipe diameter from 100 mm to 800 mm, and vacuum calibration is set to -0.03 MPa to -0.05 MPa. Outdoor grades require a carbon black loading of 2.0 wt% to 2.5 wt% with dispersion rated category 1 or 2 under ISO 18553; insufficient dispersion creates microcracks that propagate under long-term soil loading. Oxidation resistance is verified by oxidative induction time under ASTM D3895 at 200°C, with a minimum OIT of 20 min for buried drainage applications. The material is not marketed as a PE100 or PE80 pressure pipe resin; therefore it must not be used for pressurized water or gas distribution systems where ISO 9080 hydrostatic strength reference curves and ISO 4427 dimensioning are legally required. Melt homogeneity is checked by melt pressure variation of ±0.3 MPa at the die entry; larger oscillation indicates unmelt in the grooved feed zone or screw wear. Die drool accumulation at the die lip is controlled by maintaining die lip temperature below 220°C and by using a fluoropolymer processing aid at 200 ppm to 400 ppm based on total polymer mass; higher processing aid levels do not improve die lip cleanliness but can reduce joint integrity in fabricating connected fittings.

    Compliance AreaStandard or ClauseTest Condition / LimitApplication Trigger
    US food contact21 CFR 177.1520(c)Olefin polymer specificationFood packaging bottles and sheet
    EU food contactEU 10/2011Overall migration 10 mg/dm²Food-contact articles exported to EU
    Drinking waterNSF/ANSI 61, BS 6920Leachate screeningPotable water tanks
    Outdoor pipeISO 18553Carbon black dispersion category 1–2Corrugated drainage pipe
    Oxidation resistanceASTM D3895OIT ≥ 20 min at 200°CBuried pipe
    Electrical/electronicsRoHS 2011/65/EU Annex IIPb, Hg, Cd, Cr(VI), PBB, PBDEConduit
    REACHRegulation (EC) No 1907/2006SVHC ≤ 0.1 wt%All articles
    Medical packagingISO 10993-1Finished-device testingGamma/EtO sterilized packaging

    A Narrow Melt Flow Classification Creates Recyclate Blending Boundaries

    Coextruded packaging applications frequently blend 50-4052 with post-industrial recyclate or post-consumer HDPE to reduce virgin resin content. The melt flow of the virgin material at 0.50 g/10 min under ASTM D1238 sets the practical blending ceiling: adding more than 30 wt% of a 0.9 g/10 min to 1.2 g/10 min recycled stream lowers the blend melt flow above 0.65 g/10 min, which is sufficient to produce measurable parison sag and a shift in container wall-thickness distribution. Conversely, incorporating 10 wt% to 20 wt% of a 0.30 g/10 min high-molecular-weight recyclate raises die head pressure by 2 MPa to 4 MPa and can reduce melt fracture onset without improving ESCR. Each recyclate lot must be tested under ASTM D1238, ASTM D1693 Condition B, and ASTM D746 brittleness temperature before blending, because non-polyethylene contaminants such as polypropylene caps remain solid at the barrel temperature and create gel-type defects. The finished article remains subject to the original compliance obligations: food-contact packaging under 21 CFR 177.1520 and EU 10/2011 must use only food-contact-compliant recyclate and must document migration under EU 10/2011 Annex III; electrical conduit applications must meet RoHS 2011/65/EU Annex II restricted substance limits for lead, mercury, cadmium, hexavalent chromium, PBB, and PBDE. Under REACH, any article containing a substance of very high concern above 0.1 wt% must be notified to ECHA. The processing window narrows further when regrind is added because the effective heat history raises the melt flow index by 0.02 g/10 min to 0.04 g/10 min per pass; therefore regrind content is capped at 20 wt% in monolayer bottles and at 50 wt% in the core layer of three-layer coextrusions where the outer skins remain virgin 50-4052.

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    Certification & Compliance
    More Introduction

    LyondellBasell HDPE 50-4052 is a high-density polyethylene resin positioned for injection moulding of thin-wall rigid packaging, caps, closures, housewares, and general-purpose technical articles. The grade is supplied as free-flowing pellets and is controlled by the producer’s lot-specific certificate of analysis. Representative published documentation associates the 50-4052 designation with a nominal density class of 0.950 g/cm³ when tested under ISO 1183-1 at 23 °C and a melt flow rate of 4.0 g/10 min at 190 °C under 2.16 kg load using ISO 1133-1. Typical mechanical reference points include a tensile stress at yield near 23 MPa tested at 50 mm/min under ISO 527-2/1B, flexural modulus in the range of 900–1,050 MPa under ISO 178, and notched Charpy impact strength at 23 °C of 4–6 kJ/m² under ISO 179-1/1eA. These values are not specifications; the certificate of analysis prevails for production qualification.

    Does the 50-4052 Designation Map to a Medium-Flow Injection Moulding Envelope?

    The melt flow rate places HDPE 50-4052 in a medium-flow processing window that reduces injection pressure requirements relative to fractional melt blow moulding grades while retaining sufficient molecular weight for stiffness and impact resistance. Under production-scale conditions, a melt temperature between 210 °C and 250 °C is used, with 230 °C as the common set point for balanced flow and stabilizer retention. Lower barrel temperatures below 200 °C increase melt viscosity, promote short shots in flow-length-to-wall-thickness ratios above 150:1, and may transfer unmelted particles into the cavity. Sustained operation above 270 °C accelerates oxidative chain scission, visible as surface splay, yellowing, or loss of notched impact strength.

    For thin-wall multicavity tools, the resin is typically processed with injection velocities of 100–200 mm/s, holding pressures between 40 MPa and 70 MPa, and back pressure from 0.5 MPa to 1.0 MPa. The holding time is governed by gate freeze-off, not by a fixed timer; premature release before gate sealing produces sink marks and dimensional drift. Mould temperatures of 10–30 °C are standard. Higher mould temperatures up to 50 °C improve surface gloss and weld-line strength but extend cycle time and may increase moulded-in shrinkage variation.

    Process Instability Sources in Thin-Wall Tooling and Barrel Conditioning

    Injection moulding machines running HDPE 50-4052 should be equipped with a general-purpose polyolefin screw having an L/D ratio of 20:1 to 24:1 and a compression ratio of 2:1 to 3:1. Screw and non-return valve wear alter shot-to-shot cushion consistency. Production-scale observations indicate that check-ring leakage of 3–5% of stroke volume in medium-flow HDPE produces shot mass variation sufficient to destabilize flash-free operation in close-tolerance closures. A stable cushion of 5–8 mm is maintained to damp pressure fluctuations at the screw tip.

    HDPE 50-4052 does not normally require predrying when stored in sealed containers at ambient relative humidity below 60%. Surface condensation or wet regrind at higher humidity introduces moisture that appears as silver streaking and reduced tensile strength. Under such conditions, drying at 80 °C for 2–4 h in a desiccant dryer is required before processing. The resin should not be combined with oxidizing agents, halogenated flame retardants, or certain amine-containing additive packages without thermal stability validation, because degradation by-products can corrode tool surfaces and contaminate downstream recycling streams.

    Shot capacity should be maintained between 30% and 70% of barrel capacity to limit residence time. Extended residence beyond 15 min at 250 °C is a known boundary for odour formation and molecular weight reduction in high-density polyethylene grades of this melt-flow class. Idle periods should therefore trigger barrel temperature setback to 150 °C or purge cycles with low-MFR polyethylene.

    Shrinkage anisotropy in HDPE 50-4052 follows the orientation state produced during rapid cavity filling. Flow-direction shrinkage under ISO 294-4 is commonly observed in the range of 1.5–2.5%, while transverse shrinkage is lower, generally 1.0–2.0%, when the mould is held at 20 °C. Differential shrinkage increases with higher injection velocity and lower holding pressure. Thin-walled lids and closures moulded from the grade can exhibit ovality exceeding 0.5 mm on diameters of 100 mm if gate placement concentrates orientation along one axis. Tooling corrections require graduated cooling, not merely extended holding time. Dimensional acceptance testing should be conducted after conditioning at 23 °C and 50% relative humidity for at least 24 h, because semicrystalline polyethylene continues to densify after ejection. Published data for this specific configuration is limited for very high-speed stack-tool closures, so initial production trials should measure shrinkage on an eight-cavity family tool rather than relying solely on plaque data.

    Regulatory Compliance and Food-Contact Assessment Matrix

    Compliance claims depend on the finished article, additive formulation, and the geographical market. The grade should be supported by a supplier declaration of conformity for the intended use. The following matrix lists the principal frameworks that converters must verify before commercial release.

    Compliance checklist for HDPE 50-4052 in food-contact and general industrial applications
    Assessment area Reference standard or regulation Typical condition or limit
    Overall migration in food-contact plastics EU Regulation 10/2011 10 mg/dm² total migration
    US olefin polymer food-contact compliance FDA 21 CFR 177.1520 Extractive limits per clause and conditions of use
    General food-contact framework Regulation (EC) 1935/2004 Finished article must not endanger human health
    Chemical registration and SVHC screening REACH EC 1907/2006 Substances of very high concern below applicable thresholds
    Hazardous substance restriction in electrical/electronic equipment RoHS 2011/65/EU Lead, mercury, cadmium, hexavalent chromium, PBB, PBDE limits

    For food-contact use, the overall migration limit of 10 mg/dm² under EU plastic food-contact regulation assumes aqueous, acidic, alcoholic, and fatty simulants selected according to the actual contact conditions. Most polyolefin articles require testing only in the appropriate simulant, not all simulants simultaneously. Extractives under 21 CFR 177.1520 are method-dependent and temperature-dependent, so a blanket claim without specifying the food type and use condition is not technically valid. Converters must also verify that pigments, masterbatches, regrind sources, or processing aids added to HDPE 50-4052 do not introduce non-compliant substances at the finished part level.

    When HDPE 50-4052 Replaces Fractional Melt Blow Moulding or Film Resins

    When a converter considers substituting HDPE 50-4052 for a fractional melt blow moulding grade, the processing difference is immediate: the melt flow rate of 4.0 g/10 min at 2.16 kg indicates lower molecular weight and lower melt strength than a typical high-molecular-weight blow moulding resin with a melt flow rate below 1.0 g/10 min under the same load. On extrusion blow moulding accumulator heads, the lower melt strength produces parison sag, gauge thinning, and difficulty maintaining consistent top-load strength in bottles. The narrow molecular weight distribution that benefits injection moulding flow also reduces die swell, which alters pinch-off weld quality and handle wall thickness in extrusion blow moulding tools.

    Compared with film grades, HDPE 50-4052 is not optimized for blown-film bubble stability or dart impact energy. Film grades often contain a broader molecular weight distribution and higher molecular weight fraction to balance bubble expansion against strain hardening. Injection moulding grade HDPE 50-4052 lacks that strain-hardening plateau, so substitution into film processes typically results in gauge variation and low tear resistance. Conversely, the grade’s medium-flow molecular architecture provides practical advantages in injection moulding: lower injection pressure in thin-wall sections, faster cycle time through reduced cooling load, and more uniform filling of multicavity hot-runner systems than a fractional melt grade. The trade-off appears in stress crack resistance and long-term hydrostatic performance, where high-molecular-weight and bimodal pipe or blow moulding grades are superior. The grade is therefore not a drop-in replacement for pressure pipe, large blow moulded containers, or film structures without revalidation of the part performance limits.

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