| HS Code | 314527 |
As an accredited Hengli Petrochemical (Dalian) HDPE HSGC7260 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Hengli Petrochemical (Dalian) HDPE HSGC7260 is packaged in 25 kg PP woven bags, stacked on pallets for bulk shipment. |
| Container Loading (20′ FCL) | Container Loading (20′ FCL): Hengli Petrochemical (Dalian) HDPE HSGC7260 in 25kg bags, palletized, shrink-wrapped, secured for ocean freight. |
| Shipping | Hengli Petrochemical (Dalian) HDPE HSGC7260, a non-hazardous polyethylene resin, ships from Dalian, China, in 25 kg PP woven bags or 1.5 MT jumbo bags, normally in 20' FCL containers. Store dry, cool, ventilated, away from sunlight and moisture. Loading depends on packaging and palletization; avoid punctures and prolonged UV exposure. |
| Storage | Store HDPE HSGC7260 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and strong oxidizing agents. Keep original bags or containers tightly closed to prevent moisture, dust, and contamination. Use pallets; avoid direct floor contact and observe good housekeeping. Avoid prolonged UV exposure, maintain ambient temperature, rotate stock, and follow local regulations. |
| Shelf Life | Store in a cool, dry, well-ventilated area away from direct sunlight; typical shelf life is 24 months in unopened original packaging. |
An accumulator-head extrusion blow moulding cell producing 200 L tight-head drums positions HSGC7260 as the wall material when the finished package must satisfy UN 1H1/Y1.8/100/ marking requirements for liquid dangerous goods. In production-scale trials the resin is discharged through an annular die with a programmed gap moving between 18 mm and 42 mm while the accumulator shot size remains within 8–12 kg; extruders used for this shot size commonly employ a barrier screw with L/D between 24:1 and 30:1 and a grooved feed section to stabilise output against shifts in regrind bulk density. Shooting at a melt temperature of 195–210°C at the die exit produces a parison with sufficient melt strength to resist sag until a lay-flat width of 600–650 mm is reached. Wall-thickness mapping with an ultrasonic grid on as-blown drums typically shows a coefficient of variation below 11% only when axial programming includes at least 12 discrete steps; a fixed-gap parison under identical conditions produces top-wall regions at 1.4–1.7 mm against a specified sidewall of 1.9–2.1 mm, and the resulting top-impact failures occur at the chime radius rather than in the body. The pinch-off weld at the bottom and the top chime closure are the primary mechanical discontinuities; if mould closure occurs while the weld-line temperature is below 190°C, interdiffusion across the flash boundary is incomplete and the drop-test failure mode changes from ductile hinging to brittle cracking at -18°C under UN 178.603. For high-density polyethylene of 0.957 g/cm³ density determined by ISO 1183-1:2019, the flexural modulus of the blown wall under ASTM D790 is sufficient to maintain stacking height, but the top-load performance should be verified against ASTM D642 because creep at 40°C can reduce effective column strength by up to 25–30% after 28 days. Pre-drying of virgin pellets is not required under normal warehouse conditions below 60% relative humidity; above that threshold, surface moisture can nucleate vapour pockets in the pinch zone and must be removed with a desiccant hopper at 70–80°C for 2 h before processing.
In a 1,000 L composite IBC inner bottle blown on a clamp force of 1,400–1,800 kN, the principal process constraint is the time between accumulator discharge and mould closure because this governs sag-driven necking in the upper third of the parison. With HSGC7260 at a nominal melt flow rate of 0.6 g/10 min under 2.16 kg and 190°C per ISO 1133-1:2022, the discharge-to-closure window should be held below 8 seconds; at 10–12 seconds the top section can thin from a programmed 3.0 mm to less than 1.8 mm, producing hydraulic-test leakage at the top frame gasket seat after the UN 31HA1 qualification cycle. A 12-point ultrasonic thickness grid across the cage span is used to correlate wall-thickness standard deviation with seal-face distortion; when the standard deviation exceeds 0.4 mm, the bottle typically fails the 100 kPa internal hydraulic pressure test for 10 min by cracking at the closure boss. The most effective countermeasure is radial parison programming with a wall ramp of at least 10 segments, thickening the bottom chime and the lower third of the sidewall where flexural strain in three-point bending under ASTM D790 exceeds 2% at full hydrostatic load. Blow air pressure is held at 0.5–0.7 MPa; below 0.5 MPa the cycle time extends and post-mould shrinkage at the top frame opening can exceed 2.0% after 48 h at 23°C. Blow pin design must avoid sharp transitions; a transition radius below 5 mm creates a high-shear zone that aligns the high-molecular-weight tail and reduces environmental stress crack resistance in 10% Igepal CO-630 at 50°C under ASTM D1693-15 Condition B. External mould release agents should be screened for phenolic and amine-functional components because residues can migrate into the pinch-off weld during repeated shots and accelerate oxidative chain scission in the weld zone after the cage is assembled.
Multilayer blow moulded containers for organophosphate and pyrethroid agricultural concentrates use HSGC7260 as the structural outer skin and the inner product-contact layer only after compatibility testing under ASTM D543 with the specific solvent system. In a six-layer coextrusion setup—HDPE skin/adhesive/EVOH barrier/adhesive/regrind core/HDPE inner layer—the total wall thickness for a 1–5 L bottle is commonly 0.8–1.4 mm, with the EVOH layer held at 2–4% of total thickness to avoid flexural cracking at the shoulder after drop impact. Tie-layer selection is generally maleic anhydride grafted polyethylene, and the layer distribution must be measured by cross-sectional microscopy on a 20-point grid because a barrier-layer shift of more than 0.05 mm toward the outer wall raises water vapour ingress at the adhesive interface and can reduce shelf-life by permitting permeation of 2,4-D ester or chlorpyrifos formulations through the sidewall. When the container is conditioned for 28 days at 40°C, the pre-diffusion of aggressive hydrocarbon carriers into HDPE lowers the yield stress measured by ISO 527-2 by approximately 10–15%, although published data for this specific grade and solvent pair are limited. The neck and closure finish are typically injection-moulded or machined in a separate step; welding to the blow-moulded shell is not recommended below 200°C because low-temperature welds exhibit tensile weld factors below 0.7 when the welded seam is pulled perpendicular to the weld under ISO 527-2. For UN 1H1/Y1.4 approval, the assembled pack must survive drop and stacking tests, and the most frequent failure in production audits is cap-thread detachment caused by mould flash at the parison pinch line exceeding 0.2 mm, so flash trimming and bore calibration should be completed before filling lines. After trimming, the pinch-off zone should be inspected under 10× magnification for microvoids longer than 0.1 mm because such voids channel aggressive solvents into the adhesive layer and reduce the bottle's environmental stress crack resistance under ASTM D1693-15.
Service-fluid containers for diesel exhaust fluid manufactured from HSGC7260 are evaluated against the material compatibility provisions of ISO 22241-3:2019 because any leaching of polymer additives into the 32.5% urea solution can precipitate downstream SCR catalyst poisoning. In monolayer blow moulded bottles of 5–20 L, the wall thickness is normally maintained at 1.2–2.0 mm; a lower thickness at the pinch seam promotes permeation of urea solution through microvoids and produces crystalline deposits outside the closure after 6 months at 23°C. The pinch-off weld is the most demanding zone because the residual stress orientation at the flash line increases the diffusive path for water vapour, and a thickness below 1.0 mm in that zone is associated with cap-seal leakage under the 100 kPa top-load and inversion requirements of ISO 22241-3. HSGC7260 should be processed without post-consumer regrind in this application unless the regenerated fraction is produced from the same service-fluid bottle line and tested for total organic carbon release; mixing with general HDPE household scrap is not acceptable under the contamination limits of ISO 22241-3. Extractor-plate testing in a heated water bath at 60°C for 72 h should demonstrate no visible turbidity, and the urea solution's alkalinity after contact should remain within the specification for AUS 32. The die-head and accumulator temperatures should not exceed 210°C because higher thermal exposure shifts the molecular weight distribution toward low-molecular-weight species that are more readily extracted into the aqueous urea phase; processors operating above that setpoint have observed higher total organic carbon values in the 72 h leachate, although published data for this specific resin are limited. Closure torque retention after 100 application and removal cycles should be checked with a calibrated torque meter because thread flank wear below 0.05 mm reduces seal stability and permits air ingress that promotes urea crystallisation at the neck.
Rotomoulding-grade HDPE is more common than blow moulding for very large tanks, but accumulator-head blow moulding of 50–200 L water tanks in HSGC7260 is commercially feasible when the part design avoids ribs sharper than 15° draft and when boss inserts are heated above 60°C before moulding. The governing long-term failure mechanism is slow crack growth at the parting line under intermittent hydrostatic pressure cycles from 0 kPa to 250 kPa; this mode is more severe than short-term burst because the crack propagates through tie-chain-depleted zones in the pinch weld. Wall-thickness specifications for potable-water tanks typically require a minimum of 2.0 mm at the sidewall and 3.0 mm at the base radius, with the base radius measured by a coordinate measuring machine at 6 positions around the circumference. Contact compliance with food-contact regulations is evaluated under FDA 21 CFR 177.1520(c) 3.1 and 3.2 for olefin polymers, and where European supply is intended under EU Regulation (EC) No 1935/2004 with migration testing according to EU 10/2011. The resin should not be applied in direct ultraviolet exposure without carbon-black or hindered-amine stabilisation, because unprotected HDPE tanks at 50°C ambient develop surface microcracks within 12–18 months and lose enough molecular weight at the surface to reduce the strain at break measured by ISO 527-2 below 50% of the as-moulded value. For outdoor installations, a 2–3 wt% carbon-black masterbatch is usually dry-blended at the throat; the dispersion must be checked by a 25× optical microscope because agglomerates larger than 0.02 mm can initiate brittle failure at the waterline.
Where a non-regulated household storage container is produced in a closed-loop blow moulding plant, incorporation of up to 20 wt% of clean post-industrial HSGC7260 regrind is a well-established practice; the only mandatory control is melt filtration through a 80–120 mesh screen pack to remove gel particles larger than 0.2 mm that would otherwise open pinholes in the pinch-off weld.
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