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PetroChina Dushanzi HDPE 5502

    • Product Name: PetroChina Dushanzi HDPE 5502
    • 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 917728

    As an accredited PetroChina Dushanzi HDPE 5502 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing PetroChina Dushanzi HDPE 5502 resin is packed in 25 kg woven bags, 40 bags per 1,000 kg pallet, or 20-ton container loads.
    Container Loading (20′ FCL) 20′ FCL loaded with PetroChina Dushanzi HDPE 5502 in 25 kg bags, palletized, shrink-wrapped; approx. 18–20 MT net per container.
    Shipping Shipping description for PetroChina Dushanzi HDPE 5502: high-density polyethylene pellets, non-hazardous, not regulated for transport. Packed in 25 kg bags or 1,000 kg jumbo bags; shipped as general cargo by truck, rail, or sea container. No UN number, hazard class, or special labels required. Keep dry.
    Storage Store PetroChina Dushanzi HDPE 5502 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, sparks, and open flames. Keep original bags sealed on pallets, off the floor, and protected from moisture, oils, and incompatible chemicals. Avoid prolonged UV exposure and excessive stacking. Maintain clean, dry conditions, good ventilation, and first-in-first-out stock rotation.
    Shelf Life PetroChina Dushanzi HDPE 5502 typically has a 24-month shelf life when stored dry, cool, ventilated, and protected from sunlight and moisture.
    Application of PetroChina Dushanzi HDPE 5502

    In 25 L to 100 L extrusion blow moulding cells producing monolayer tight-head containers for crop protection concentrates and lubricating oil additives, PetroChina Dushanzi HDPE 5502 is normally processed on accumulator-head machines with grooved-barrel extruders of 75 mm to 110 mm screw diameter and 24:1 to 30:1 L/D ratio, with a barrel temperature profile descending from 185 °C at the feed throat to 210 °C at the metering section and a head temperature held at 200 °C to 220 °C. Because the melt mass-flow rate of this grade class measured per ISO 1133-1:2022 at 190 °C and 2.16 kg typically occupies the 0.22 g/10 min to 0.30 g/10 min band, parison hang strength is adequate for a 40 L preform when the die bushing diameter is kept between 55 mm and 80 mm and the land length to die gap ratio is set from 8:1 to 12:1; die swell of 35% to 55% is then accommodated by the mould parting line and pinch-off geometry. Thickness programming is configured in three zones: the top shoulder is programmed 20% to 30% heavier than the nominal sidewall, the tail closure area 25% to 35% heavier, and the centre section thinned to the minimum certified wall, which for packaging group II liquid formulations is commonly 1.8 mm to 2.2 mm at the sidewall for a 60 L drum. Blow pressure is set at 0.6 MPa to 0.9 MPa, mould temperature is held at 20 °C to 35 °C by a chiller loop, and cycle time for a 2.3 kg to 2.6 kg part falls between 180 s and 250 s; the limiting thermal condition is the pinch-off weld, where residual flash thickness above 0.4 mm extends post-mould cooling and reduces stack stability. After conditioning at -18 °C for 24 h, containers are drop tested according to ASTM D2463-15 at a height derived from UN Model Regulations Chapter 6.1, and stress-cracking resistance under wetting agents is screened by ASTM D1693-21 Condition B. Drying is not required for the resin itself, but when silo-to-hopper temperature differentials exceed 18 °C, surface condensation on cold pellets can become a source of parison micro-bubbles, and the feed throat should be purged with dry air at 40 °C to 50 °C.

    What Limits Wall Section Uniformity in Tight-Head Drum Moulding with HDPE 5502?

    For 120 L to 220 L tight-head drums filled with water-miscible metalworking fluids, the dominant process conflict is not melt output but the radial wall thickness gradient after mould breathing and inflation; the accumulator head must deliver a parison of sufficient length and mass before the mould closes, and the programmed wall profile must compensate for differential stretch in the shoulder and chime zones. The accumulator shot capacity is usually specified between 8 L and 25 L, the push-out speed is set to 15 mm/s to 35 mm/s, and the parison die gap is adjusted from 1.8 mm to 2.6 mm to control swell. The wall thickness programming for a 200 L tight-head drum typically distributes mass as shown below.

    Parison zoneProgrammed wall thicknessMoulded wall after inflationFunctional requirement
    Top shoulder4.5 mm to 6.0 mm3.0 mm to 4.0 mmStacking load and closure torque
    Sidewall centre3.0 mm to 4.0 mm1.8 mm to 2.5 mmWeight minimum and drop impact
    Bottom chime5.0 mm to 7.0 mm3.5 mm to 5.0 mmSide impact and roll stability
    Pinch-off tail6.0 mm to 10.0 mm5.0 mm to 8.0 mmWeld strength after deflashing

    The pinch-off weld is the primary failure location in UN drop tests when the melt temperature at the die exit falls below 195 °C; at low head temperatures, the two melt fronts have insufficient residual heat for interdiffusion, and the weld line exhibits a V-shaped notch with depth of 0.3 mm to 0.8 mm. Tooling geometry should therefore maintain a pinch-off compression ratio of 2.5:1 to 4.0:1 at the seam, with the mould close speed reduced in the final 10 mm of stroke to allow flash material to flow radially without excessive shear heating. On production-scale accumulator-head lines, the parison drop time for a 200 L article is controlled between 45 s and 80 s; longer drop times induce thinning at the chime, while shorter drop times transfer insufficient mass to the pinch-off and produce a brittle tail weld. Published data for this specific configuration is limited, but industrial practice with high-molecular-weight HDPE indicates that the mould must also be vented at the shoulder and bottom to prevent trapped air from creating blow-through defects at inflation pressures above 0.8 MPa.

    When HDPE 5502 is run as the structural layers in a six-layer coextrusion blow moulding line for aromatic hydrocarbon and oxygenated solvent formulations, the layer stack is normally arranged as inner HDPE, tie resin, polyamide 6, tie resin, post-industrial regrind, and outer HDPE with masterbatch. The polyamide barrier layer is held to 2% to 5% of total wall thickness because polyamide melts at 235 °C to 250 °C, while HDPE is processed at 200 °C to 220 °C; a thicker barrier layer increases the interfacial temperature gradient and produces localised flow-induced crystallisation at the tie-HDPE boundary. The tie resin is a maleic-anhydride-grafted polyethylene with a wetting layer thickness of 8 µm to 12 µm; if the film thickness falls below 5 µm, adhesion failure in tape peel tests is observed after exposure to the filled solvent. Layer distribution is controlled by adjusting each extruder’s mass throughput to match die residence time; an MFR mismatch above 3:1 between adjacent melt streams has been observed to trigger interfacial instability at the parison surface, which appears as longitudinal waviness and is then transferred into the bottle wall. During continuous operation of a 3-layer or 6-layer die head, low-level purge of the polyamide side at 0.5 kg/h to 1.5 kg/h prevents stagnation and gel generation; however, published data for this exact HDPE 5502 coextrusion configuration is limited, and the values above are derived from general commercial practice with high-molecular-weight HDPE carriers. After moulding, containers for oxygenated solvents are tested by a 14-day storage test at 40 °C with the filled product and by residual wall thickness measurement at the shoulder, where the outer HDPE skin may thin to 1.4 mm if the die gap distribution is incorrect.

    UN 3H1 Packaging Compliance and ESCR Measurement for Oxygenated Reagent Carriage

    Certification of HDPE 5502 tight-head packagings under UN 3H1 design type for liquid reagents requires design-type testing in parallel with material lot acceptance, because environmental stress cracking resistance is a function of both resin architecture and moulded-in stress. The material and packaging test matrix below summarises the core determinations used on production lots and on finished packagings.

    Test categoryStandard or clauseConditionThreshold or reference value
    Melt mass-flow rateISO 1133-1:2022190 °C / 2.16 kg0.22 g/10 min to 0.30 g/10 min
    DensityISO 1183-1:2019Immersion in water at 23 °C0.953 g/cm³ to 0.958 g/cm³
    ESCR F50ASTM D1693-21Condition B, 10% Igepal CO-630, 50 °CAbove 600 h for this resin class
    Drop impactUN Model Regulations Chapter 6.1Drop height by packing group and in-use densityNo leakage after 1 h observation
    LeakproofnessUN Model Regulations Chapter 6.120 kPa internal air pressure for 5 minNo leakage
    StackingUN Model Regulations Chapter 6.140 °C for 28 days under equivalent stack massNo rupture or top-load collapse

    The ESCR threshold is not a resin-only property; sharp moulding lines, rapid cooling at the flash split, and excessive pin pressure can initiate craze propagation even when the moulded wall thickness is within specification. For this reason, cut plaques from sidewall and pinch-off sections are tested according to ASTM D1693-21 after container moulding, and the F50 value is interpreted only as a comparative lot-control point, not as a service-life prediction under concentrated oxygenated reagents. Published data for this specific grade lot in 3H1 oxygenated-reagent service is limited, and design-type approval should be repeated when the supplier process, regrind fraction, or closure system changes. The operational boundary is particularly narrow when the fill formulation contains hydrogen peroxide above 10%; sustained contact at temperatures above 40 °C accelerates stress cracking at moulded-in stresses above the critical stress threshold, and such formulations should be qualified by package-specific testing rather than by the base resin ESCR value alone.

    In closed-loop post-industrial regrind operations, off-spec bottles, trim and start-up purgings are ground on a blade mill with a 10 mm screen and blended with virgin HDPE 5502 at 20% to 30% by mass for the outer and middle layers of non-food containers. A gravimetric batch blender with load-cell feedback is set to a batch tolerance of ±0.5% on the regrind fraction, because higher variance shifts the melt flow rate of the mixed feed and alters the programmed parison length. After five re-extrusion cycles, the melt mass-flow rate of the recycled fraction may shift from 0.25 g/10 min toward either 0.35 g/10 min by chain scission or below 0.20 g/10 min by oxidation-induced branching, depending on the intensity of the prior heat history; for this reason a capillary rheometer is used to confirm a shear viscosity at 100 s⁻¹ and 230 °C within ±15% of the virgin control before the regrind is returned to the extruder hopper. Gel contamination from polymer degradation is controlled by a screen pack of 60/100/60 mesh at the breaker plate of the regrind extruder; screen changes at intervals above 20 t of processed material must be logged because excessive gels appear on the inner surface of blow-moulded bottles as fish-eyes when the regrind fraction exceeds 30%. The regrind loop is not permitted in the inner layer of UN-certified containers unless the certification test series has included the same regrind fraction; published data for this specific configuration is limited, and a new design-type test is required when the regrind source changes.

    ESCR-Driven Material Selection in Diesel Exhaust Fluid and Windshield Washer Reservoirs

    The same high-molecular-weight HDPE has been applied to blow-moulded automotive reservoirs such as windshield washer bottles and diesel exhaust fluid tanks where the failure mode is not base material elongation but environmental stress cracking at weld lines and insert bosses under hood temperatures. Parts are moulded with wall thicknesses of 1.5 mm to 3.0 mm on shuttle or accumulator-head machines with clamp forces from 60 t to 180 t; the mould must maintain a leakage-critical pinch-off at the reservoir seam, and the article is leak-tested by dry air at 30 kPa to 50 kPa after trimming. Heat soak testing is typically conducted at 90 °C for 24 h in air, while coolant contact is tested in a 50:50 glycol-water mixture at 85 °C for 500 h; the ESCR requirement under ASTM D1693-21 is then confirmed on compression-moulded plaques cut from the production bottle. The resin’s low melt flow rate contributes to high parison sag resistance when a long cylindrical preform is blown into a flat reservoir shape; however, this also means that spiral-flow traces, knit lines around breathing vents, and flash traps are processing-induced weaknesses that must be verified by a 200 kPa burst test on a hydraulic pressure tester. Published data for the specific HDPE 5502 lot in this application is limited, and OEM approval is based on part tests more than resin-datasheet values; the material should not be exposed to concentrated brake fluid, which swells semicrystalline polyethylene and causes weight gain above 5%.

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