| HS Code | 336584 |
As an accredited Hanwha HDPE 8380 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Hanwha HDPE 8380 is supplied in 25 kg polyethylene-lined woven bags, palletized, with 40 bags per 1,000 kg pallet. |
| Container Loading (20′ FCL) | A 20′ FCL container loaded with Hanwha HDPE 8380 high-density polyethylene, 25 kg bags, palletized, shrink-wrapped, secured for ocean transport. |
| Shipping | Hanwha HDPE 8380 is a non-hazardous high-density polyethylene resin shipped as solid pellets in 25 kg bags, jumbo bags, or bulk liner trucks/containers. Store in a cool, dry, ventilated area away from sunlight, heat, and moisture. Standard freight applies; avoid package damage. Handle per SDS. |
| Storage | Store Hanwha HDPE 8380 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and strong oxidizing agents. Keep original bags or containers sealed, off the floor, and protected from moisture, dust, and contamination. Avoid excessive stacking or physical damage. Use first-in, first-out stock rotation. Maintain a clean handling area and follow local regulations and the safety data sheet. |
| Shelf Life | Hanwha HDPE 8380 shelf life: indefinite when stored unopened in original packaging, protected from direct sunlight, heat, and moisture. |
In thin-wall injection moulded dairy cups, margarine tubs, and single-serve food containers with nominal wall thickness from 0.35 mm to 0.60 mm, the processing window for Hanwha HDPE 8380 is governed by the interaction between fast crystallisation kinetics and the filling-pressure drop across the cavity. The melt-flow rate of 38 g/10 min under ISO 1133-1:2022 permits short injection times in multi-cavity stack tools, but the same flow class demands rigorous velocity profiling to avoid jetting at sub-runner transitions and flow hesitations at thin ribs. Melt temperature should be held between 190 °C and 230 °C, with mould temperature maintained at 15 °C to 30 °C through turbulent-flow conformal cooling circuits, because the high-density polyethylene matrix solidifies rapidly once the frozen-layer fraction exceeds approximately 20% of the cavity thickness. Published data for this specific configuration is limited; however, production-scale observations on similar high-flow HDPE grades indicate that melt temperature exceeding 240 °C for more than 5 min residence time can generate oxidation-related black specks and odour-active short-chain carbonyl compounds that are unacceptable for fatty food contact. Injection velocity should be set against a velocity-to-position profile rather than a single fixed speed, with initial filling velocities in the range of 80 mm/s to 150 mm/s depending on gate geometry and flow-length-to-wall-thickness ratio. Holding pressure between 50 MPa and 70 MPa is typically required to compensate for post-filling shrinkage without creating gate blush. Compliance for fatty food simulants under EU 10/2011 requires overall migration below 10 mg/dm² when tested with 3% w/v acetic acid, 20% v/v ethanol, and vegetable oil or 95% v/v ethanol according to EN 1186-1. Under FDA 21 CFR 177.1520(c), the olefin polymer must meet density and extractables limitations for non-alcoholic and alcoholic food-contact articles, and the converter must document that the stabiliser package is cleared for the intended food type.
| Wall thickness range | Melt temperature | Mould temperature | Hold pressure | Drying requirement |
|---|---|---|---|---|
| 0.35 mm–0.60 mm | 210 °C–230 °C | 15 °C–25 °C | 50 MPa–70 MPa | Surface moisture below 0.05% |
| 0.70 mm–1.50 mm | 190 °C–220 °C | 10 °C–30 °C | 40 MPa–60 MPa | Surface moisture below 0.05% |
| 2.00 mm–3.00 mm | 180 °C–210 °C | 10 °C–25 °C | 35 MPa–50 MPa | No pre-drying unless condensation is visible |
In beverage closure tools with 96 to 128 cavities producing 28 mm PCO 1881 or 38 mm neck finishes, the high spiral-flow length of Hanwha HDPE 8380 reduces peak injection pressure but also increases the risk of flash if parting-line maintenance is not tightened to the material’s low-viscosity fill behaviour. The tamper-evident band, often moulded at 0.15 mm to 0.25 mm nominal wall, is the controlling dimension for fill consistency; valve-gate timing must be sequenced so that the band fills before the main closure panel reaches final packing. Gate diameters between 0.6 mm and 1.0 mm are commonly used, with short nozzle-to-gate flow channels and no dead spots to prevent material stagnation. Screw L/D ratios of 20:1 to 24:1 and compression ratios of 2.0:1 to 2.5:1 are appropriate for this melt-flow class. Residence time at 200 °C to 220 °C should be kept below 8 min to avoid shifting the MFR beyond its specified tolerance under ISO 1133-1:2022. The bridge structures connecting the tamper-evident band to the closure skirt are critical stress-concentration points; slit-bridge cracking under top-load conditions can be evaluated with drop-impact testing according to ISO 7765-1 or tensile testing of moulded plaques under ISO 527-2:2012. Environmental stress cracking resistance in closure applications is sensitive to detergent and sanitising agents used on filling lines; screening should be performed using ASTM D1693 Condition B with 100% Igepal CO-630, although published data specific to this configuration is limited because ESCR is strongly influenced by mould cooling rate and gate orientation. Mould temperature for closures is typically held at 10 °C to 20 °C to freeze the thin band quickly and prevent ovality, while post-mould dimensional checks should reference ISO 294-3 for shrinkage and ISO 291 standard conditioning atmosphere.
For returnable distribution crates, folding storage bins, and small logistics totes, Hanwha HDPE 8380 is constrained by the inverse relationship between melt-flow rate and environmental stress crack resistance. The material’s high-throughput injection properties reduce fill pressure in deep-ribbed sidewalls, but the same molecular architecture lowers resistance to slow crack growth when long-term tensile stress is applied in the presence of detergent residues or condensed humidity. Any stacking load specification must be derived from ISO 899-1 tensile creep testing at 40 °C or 60 °C and not from short-term flexural modulus alone. The short-term flexural modulus of comparable high-flow HDPE grades is often reported in the range of 800 MPa to 1,100 MPa under ISO 178:2019, but this value does not predict creep deflection in a loaded crate stored in a warehouse at elevated ambient temperature. The load-bearing rib pattern should be designed so that the maximum calculated compressive stress in the sidewall does not exceed 4 MPa to 6 MPa under continuous load if long service life is required; published data for this specific Hanwha grade under constant tensile load conditions are limited, and processors must generate in-house creep curves before rating crates for stack heights above 2 m. Impact toughness at low temperature is a further boundary condition: notched Charpy impact testing according to ISO 179-1:2010 or notched Izod testing under ISO 180:2000 should be performed on specimens cut from the actual sidewall because rapid crystallisation in thick sections can produce lower impact values than moulded plaques. The use of regrind is permitted only when the percentage of post-industrial reprocessed material is kept below 20% by mass and the MFR shift under ISO 1133-1:2022 is recorded on each batch to prevent excessive viscosity reduction. External exposure requires a carbon black or hindered amine light stabiliser package; unpigmented HDPE 8380 should not be specified for prolonged outdoor UV exposure beyond 500 h under ASTM G154 Cycle 1 without weathering data.
A four-cavity storage crate tool running a 2+2 hot-to-cold runner split will show consistent part mass only if hold-pressure transfer is set against screw cushion, not timer. In this configuration, the first-stage filling speed is increased until the cavity-pressure rise at the end of fill becomes detectable through transducer curves, then the second-stage holding pressure is lowered to the minimum that suppresses sink marks on the bottom grid. Because the high melt-flow rate of HDPE 8380 enables lower injection pressure, the check ring must seal within 1 mm of screw position to avoid inconsistent shot weight. Mould temperature for open-crate geometries is normally set at 15 °C to 25 °C and the cycle is controlled by handling demoulding when the part reaches a surface temperature below 80 °C. Demoulding draft angles of 1.5° to 2.5° are recommended for textured sidewalls because the rapid crystallisation of this grade can increase ejection friction. For food-contact crates used in meat or dairy logistics, the finished article must be tested under EU 10/2011 with the actual food simulant, because mould release agents and external lubricants can alter overall migration and organoleptic properties. Cleaning validation for returnable crates should include repeated exposure to 0.5% sodium hydroxide solution at 60 °C for 30 min, followed by visual inspection for environmental stress cracking under ASTM D1693 or a bending-failure screening method.
The injection moulding of industrial pails and open-top containers from Hanwha HDPE 8380 is limited to non-aggressive contents and to wall sections where drop impact dominates over long-term chemical exposure. Pail bodies of 5 L to 25 L nominal capacity require the seal ring area to be packed sufficiently to prevent ovality below 0.5 mm across the diameter, because lid gasket seating and closure integrity are controlled by roundness at the rim. The high melt-flow rate reduces filling pressure in the seal-ring zone, but it also increases the risk of sink marks below the rim if the part is packed too early. Holding pressure should be applied only after the flow front has passed the rim, with a profile that decays from 60 MPa to 30 MPa over 2 s to 4 s. Drop testing for dangerous goods packaging is governed by the UN Recommendations on the Transport of Dangerous Goods, Model Regulations, Chapter 6.1.5, with conditioning at −18 °C for plastic packagings intended for liquids. Stacking tests under ISO 2234:2000 and leakproofness tests under ISO 16467:2003 must be performed on the finished article with the intended closure system. Impact failure in a pail body often initiates at the injection gate, especially when the gate diameter is below 1.5 mm; valve gates or submarine gates should be positioned away from the bottom corner radius. Mould cooling in the rim area should be designed for a mould temperature of 10 °C to 20 °C to suppress warpage, while the sidewall runs at 20 °C to 30 °C to allow adequate impact crystallinity. Published data for this specific grade in UN-certified pail configurations is limited; qualification requires batch-specific drop, stack, and leakproofness testing because high-flow HDPE grades differ in impact behaviour from conventional pail-grade polyethylene. Chemical compatibility screening should follow ASTM D543 immersion testing for the intended filling liquid, and aggressive oxidising agents should be excluded because high-flow HDPE can exhibit reduced stress crack resistance relative to low-melt-flow blow moulded alternatives.
Because toy and juvenile product components are classified by mouth-contact probability rather than material volume, Hanwha HDPE 8380 can be used only after the finished article meets the applicable element migration limits and organic chemical restrictions. Under EN 71-3:2019+A1:2021, the material falls within Category III when it is not likely to be mouthed heavily but remains subject to migration limits for 19 elements; typical controlling values include lead below 160 mg/kg, cadmium below 17 mg/kg, and mercury below 94 mg/kg in the dried test portion. The relevant analytical methods for migration are specified in EN 71-3 and require particle size reduction below 0.5 mm and acid extraction under defined time-temperature conditions. For the United States, the applicable framework is the Consumer Product Safety Improvement Act, with phthalate restrictions in Section 108 and total lead content limits under 16 CFR 1303. The moulding process itself must be documented to prevent contamination from external lubricants or colourants that are not cleared for toy-contact use. Because HDPE 8380 is often coloured with custom masterbatch, each masterbatch component must be evaluated under EU 10/2011 if the toy is also food-contact or under EN 71-9 for organic chemical requirements. Thermal-oxidative stabilisers in the base resin must not contain substances listed in the REACH Candidate List of substances of very high concern above the communication threshold of 0.1% by mass. The small-part test under ASTM F963 or EN 71-1 remains a geometric requirement, but material ductility influences breakage mode when a component is dropped from the prescribed height. Notched impact testing should be performed on finished-component samples under ISO 179-1:2010 at −20 °C to verify that the grade does not become brittle in cold climates. The table below summarises the compliance matrix for toy-bound HDPE 8380.
| Application boundary | Applicable regulation | Analytical method | Controlling value |
|---|---|---|---|
| Element migration | EN 71-3:2019+A1:2021 | Acid extraction and ICP-MS | Lead 160 mg/kg, cadmium 17 mg/kg |
| Organic chemical safety | EN 71-9 | Solvent extraction | Substance-specific limits |
| Lead in surface coating | 16 CFR 1303 | CPSC-CH-E1003-09.1 | Lead 90 mg/kg |
| Phthalates | CPSIA Section 108 | CPSC-CH-C1001-09.3 | 0.1% per restricted phthalate |
| RoHS | Directive 2011/65/EU Annex II | IEC 62321-5 | Lead 1,000 mg/kg, cadmium 100 mg/kg |
Once cold-chain returnable totes are exposed to repeated high-humidity defrost cycles, the practical performance limit of Hanwha HDPE 8380 is defined by condensation-driven stress cracking at ribs and by impact retention after sub-zero conditioning. These totes are commonly injection moulded with wall thicknesses from 1.5 mm to 3.0 mm, and the high melt-flow rate permits filling of deep corner ribs without excessive clamp pressure. However, the same molecular structure may exhibit reduced low-temperature impact toughness when compared with medium-flow HDPE grades, so notched Charpy data under ISO 179-1:2010 at −20 °C should be generated from actual sidewall sections rather than from standard flat plaques. Mould temperature for cold-chain totes is often raised to 25 °C to 35 °C to improve impact strength and reduce frozen-in orientation, but this increases cycle time and can raise warpage if the cooling layout is uneven. The part should be designed with a minimum radius at the intersection of the sidewall and bottom of 2 mm to avoid a notch that accelerates crack initiation under repeated stacking loads. If the tote is to be washed in industrial tunnel washers, the detergent concentration, wash temperature, and drying temperature must be validated by immersion testing under ASTM D543 and by environmental stress cracking screening under ASTM D1693 Condition B. Published data specific to HDPE 8380 in this cold-chain configuration is limited because the stress crack response depends strongly on the colour concentrate, regrind fraction, and cooling rate; a production trial with 100 cycles of wash-and-freeze exposure is the only reliable qualification route for long-return logistics programmes.
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