| HS Code | 100661 |
As an accredited North Huajin (Liaoning) HDPE T60-800 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | North Huajin (Liaoning) HDPE T60-800 typically ships in 25 kg bags, 40 bags per pallet, 20 pallets per 40-foot container. |
| Container Loading (20′ FCL) | 20′ FCL container loading for North Huajin (Liaoning) HDPE T60-800: 25kg bags, approx. 17 MT net weight per container. |
| Shipping | North Huajin (Liaoning) HDPE T60-800 is typically shipped in 25 kg woven bags or 500–1000 kg jumbo bags, palletized and stretch-wrapped. It is transported by truck, rail, or sea in clean, dry containers. Store in a cool, dry, ventilated area, away from moisture, heat, and direct sunlight. Non-hazardous. |
| Storage | Store North Huajin (Liaoning) HDPE T60-800 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, and ignition sources. Keep original packaging sealed and palletized; prevent moisture, dust, and contamination. Avoid contact with strong oxidizers. Maintain ambient temperature, do not expose to prolonged UV, and rotate stock using first-in, first-out. Keep handling area clean, dry, and free of sharp objects. |
| Shelf Life | Typically 24 months when stored in a cool, dry, ventilated area, away from direct sunlight and moisture. |
Accumulator head extrusion blow moulding of 200-litre tight-head drums from T60-800 resin requires melt temperature control between 195°C and 225°C at the die head, with barrel zone setpoints ascending from 170°C at the feed throat to 215°C at the metering section on single-screw extruders configured with L/D ratios of 25:1 to 30:1 and compression ratios between 2.5:1 and 3.0:1. The accumulator head shot capacity in production-scale equipment ranges from 15 L to 25 L, delivering a parison of 9.0 kg to 10.5 kg per shot when producing tight-head drums with a tare mass of 8.5 kg to 9.5 kg. Parison programming across 20 to 30 discrete setpoints adjusts the annular die gap from 6 mm to 15 mm to compensate for parison swell ratios of 1.5:1 to 2.0:1 observed in production, concentrating wall thickness at the chime, shoulder, and bottom skirt regions where stacking loads and drop impact stresses localise. Industry compliance for dangerous goods packaging is governed by the UN Model Regulations Chapter 6.1, specifically design type testing under UN 6.1.5.3 for drop resistance at 1.2 m (Packing Group II) or 1.8 m (Packing Group I) at −18°C after conditioning for 24 h, hydraulic pressure testing under UN 6.1.5.4 at 250 kPa for 30 min, and leakproofness verification under UN 6.1.5.5 at 20 kPa internal air pressure. Formulation additions for standard industrial drum production use T60-800 at 97.0–98.5 wt% with carbon black masterbatch at 1.5–2.5 wt% (where UV resistance is specified for outdoor storage) or colour concentrate at 2.0–4.0 wt% for coded drum identification, plus processing aid at 0.05–0.10 wt% fluoropolymer to suppress melt fracture during high-shear parison extrusion. Downstream production employs accumulator head blow moulding machines with clamp forces between 800 kN and 1,500 kN, water-cooled aluminium moulds maintained at 10–15°C via chilled water circulation, blow air pressure of 0.6–0.8 MPa, and total cycle times of 180 s to 300 s incorporating parison drop, mould close, inflation, cooling, and ejection phases. End products include UN-certified 200L tight-head and open-head drums for solvent, lubricant, adhesive, and resin pellet transport, with filling masses up to 1.8 kg/L for Packing Group I liquids and maximum gross mass of 400 kg per drum under UN stack load testing per UN 6.1.5.6 at 40°C for 28 days.
In 1000 L intermediate bulk container inner bottle manufacturing, the constraint on T60-800 processing is predominantly accumulator head refill capacity, not melt strength, since the bimodal molecular weight distribution of the Hostalen slurry-process grade provides sufficient parison sag resistance for shot masses of 15 kg to 17 kg at melt temperatures up to 220°C. Production-scale machines deployed for this application require clamp forces of 1,500 kN to 3,000 kN, extruder outputs of 400 kg/h to 700 kg/h, and accumulator head volumes of 30 L to 50 L to ensure that head refill completes before the previously moulded bottle has cooled sufficiently for demoulding. Formulation for IBC inner bottles specifies T60-800 at 98.0–99.0 wt%, UV stabiliser masterbatch at 0.15–0.35 wt% (HALS chemistry), and processing aid at 0.05–0.10 wt% to reduce die build-up during extended production runs exceeding 8 h; some manufacturers add 0.5–1.5 wt% colour concentrate for grey or blue tinting to mask UV-induced discolouration during multi-year outdoor exposure. Compliance testing for IBC inner bottles follows UN 31H1 design type approval, including bottom lift test per UN 6.5.4.4, top lift test per UN 6.5.4.5, stacking test per UN 6.5.4.6 at 1.8 × maximum permissible gross mass for 24 h at 40°C, leakproofness per UN 6.5.4.7 at 20 kPa, hydraulic pressure test per UN 6.5.4.8 at 100 kPa for 10 min, and drop test per UN 6.5.4.9 from 1.2 m onto a rigid, non-resilient surface. Production process specifics include parison programming with 30 to 50 thickness setpoints to compensate for parison sag over the 2 m to 2.5 m parison length, mould cooling at 8–12°C using high-flow chillers rated at 30 kW to 50 kW per mould half, and cycle times of 480 s to 900 s dictated by wall thickness sections from 3 mm in the sidewall to 8 mm at the top and bottom corners. End product configurations include 1000 L and 1250 L inner bottles for steel-frame or composite-frame IBC assemblies used in hazardous chemical transport, pharmaceutical intermediate handling, and food-grade liquid storage where FDA 21 CFR 177.1520(c) olefin polymer compliance is documented for T60-800 base resin.
When T60-800 is specified as the virgin HDPE skin layer in six-layer automotive fuel tank co-extrusion, the production challenge shifts from monolayer parison programming to interlayer viscosity matching across six extruders feeding a single co-extrusion accumulator head. The six-layer structure typically comprises virgin HDPE outer skin (10–15% of wall thickness), maleic anhydride grafted polyethylene adhesive (1.5–2.5%), EVOH barrier layer (2.0–3.0%), second adhesive layer (1.5–2.5%), regrind layer (30–50%), and virgin HDPE inner skin (30–40%). Melt viscosity matching is critical because the T60-800 virgin layers and the regrind layer (containing 20–40 wt% EVOH and adhesive contaminants) must maintain viscosity ratios within 0.7:1 to 1.3:1 at the co-extrusion die temperature of 210–230°C to prevent interfacial instability and layer thickness variation exceeding ±15% specification limits. Formulation for the virgin skin layers uses T60-800 at 99.0–99.5 wt% with carbon black masterbatch at 0.5–1.0 wt% for UV protection and conductivity modification to meet electrostatic dissipation requirements during refuelling; no processing aid is typically required because the bimodal molecular weight distribution provides sufficient melt strength for 6-layer parison stability. The regrind layer is compounded from post-industrial trim scrap generated at 15–25 wt% of total extrusion output, requiring a dedicated regrind extruder with vented barrel and vacuum degassing to remove moisture absorbed by EVOH. Industry compliance for automotive fuel tanks is anchored to ECE R34 Annex 5 for fire resistance (fuel tank exposure to direct flame for 60 s followed by 60 s residual flame), SAE J1737 for hydrocarbon permeation measurement with a limit of 0.2 g/m²/day for complete fuel systems, and ASTM D638-14 Type IV for tensile property verification at 23°C and −40°C. Production equipment includes co-extrusion blow moulding machines with six extruders (two primary HDPE extruders of 90–120 mm screw diameter, two adhesive extruders of 45–60 mm, one EVOH extruder of 35–50 mm, one regrind extruder of 60–90 mm), accumulator head volume of 10–20 L, clamp force of 1,200–2,500 kN, and cycle times of 180–360 s per tank. Post-moulding operations include robotic deflashing, cooling fixtures maintaining dimensional tolerance of ±1.5 mm on mounting surfaces, leak testing at 30–50 kPa internal air pressure, and permeation testing on production samples per SAE J1737. End product types include 40 L to 120 L automotive fuel tanks for passenger vehicles and light commercial vehicles, diesel exhaust fluid (DEF) tanks requiring ISO 22241-1:2022 material compatibility, and auxiliary fuel tanks for off-highway equipment.
Rotational moulding shops processing T60-800 for marine floatation devices and dock fenders operate under a fundamentally different thermal cycle than blow moulding, with mould internal air temperature reaching 260–280°C during the curing phase and peak internal pressure not exceeding 100 kPa in biaxially loaded tooling. Published data for this specific configuration is limited, though the bimodal molecular weight distribution demonstrates adequate flow behaviour at the low-shear conditions characteristic of rotational moulding (shear rates below 10 s⁻¹). Formulation for marine applications requires elevated UV stabiliser loading: T60-800 at 97.5–98.5 wt%, HALS masterbatch at 0.3–0.5 wt%, and carbon black at 1.5–2.5 wt% to achieve weathering resistance validated per ISO 4892-3:2016 (fluorescent UV lamp exposure for 2,000 h with 80% minimum retained elongation) and ASTM D256-23 for notched Izod impact at −20°C exceeding 20 kJ/m². Industry compliance for marine floatation devices references ISO 12402-7:2020 for materials used in personal floatation devices and ASTM F852-19 for gasoline fuel system components where incidental hydrocarbon contact may occur. Production process specifics employ cast aluminium or fabricated steel moulds insulated to maintain uniform wall thickness of 5–10 mm, oven residence times of 25–40 min depending on mould mass and wall section, and cooling rates controlled at 5–10°C/min to minimise warpage in enclosed geometries. End product types include cylindrical and spherical mooring buoys with foam-filled cores (closed-cell expanded polystyrene or polyurethane with density of 30–50 kg/m³), floating dock modules rated for 50–300 kg distributed load per module, and marine fender shells with wall thickness up to 15 mm for harbour and canal installations.
Agrochemical packaging manufactured from T60-800 addresses a specific failure mode: environmental stress crack initiation at the pinch-off weld line where xylene, cyclohexanone, and aromatic solvent blends in formulated pesticide products exert swelling stress on the semi-crystalline polyethylene matrix. The ESCR of T60-800 measured per ASTM D1693-15 Condition B in 100% Igepal CO-630 at 50°C provides a laboratory correlation to field performance, with failure times exceeding 300 h considered the minimum threshold for solvent-containing agrochemical formulations. Formulation for agrochemical jerry cans and drums specifies T60-800 at 97.0–100 wt% with no filler and no plasticiser, as plasticiser migration into aggressive solvent systems reduces ESCR by 30–50% in accelerated testing; colour masterbatch addition at 0–3.0 wt% is selected from polyolefin-based carriers to avoid introducing low-molecular-weight species that act as stress-crack accelerants. Industry compliance for agrochemical packaging falls under UN 6.1 for dangerous goods containment (many pesticide formulations classified as Packing Group II or III), FAO Specification Guidelines for pesticide container integrity, and ASTM D543-21 for chemical resistance evaluation using immersion in representative solvent mixtures at 23°C and 50°C for 7 days to 28 days. The production process for small and medium agrochemical containers (1 L to 60 L) utilises shuttle blow moulding machines with clamp forces of 100–500 kN, extruder L/D of 24:1 to 28:1, and cycle times of 30–120 s; for 200 L agrochemical drums, the process parameters align with standard 200L drum production previously described but with reduced regrind allowance (maximum 10 wt% regrind, as regrind thermal history degrades ESCR by 15–25%). End product types include 1 L, 5 L, 10 L, 20 L jerry cans with UN-marked closures, 60 L open-head containers for granular formulations, and 200 L drums for bulk liquid concentrate transport; all configurations require closure torque retention tests per UN 6.1.3.8 and child-resistant closure verification where specified by national pesticide regulations.
For vertical storage vessels exceeding 3000 L, single-shot blow moulding of T60-800 becomes impractical due to accumulator head capacity limits, and manufacturers transition to sectional fabrication where blow-moulded cylindrical shell sections of 1000–2000 L volume are joined by hot-plate butt-fusion welding. The welding window for T60-800 requires hot-plate temperature of 210–230°C, heating time of 30–60 s per 10 mm of wall thickness, changeover time not exceeding 3 s, and joining pressure of 0.15–0.30 MPa maintained during the cooling phase until weld bead temperature drops below 80°C. Weld integrity verification follows DVS 2207-1 for heated tool butt welding of thermoplastics, with bend test specimens prepared from production welds and subjected to 180° bending without crack initiation in the weld zone; additionally, ASTM D1998-21 governs design, fabrication, and testing of polyethylene upright storage tanks including hydrostatic testing at 1.5 × design head for 24 h and visual inspection for stress whitening at weld interfaces. Formulation for chemical storage vessels prioritises long-term hydrostatic strength retention: T60-800 at 98.0–99.5 wt%, carbon black at 2.0–3.0 wt% for UV screening (required when vessels are installed outdoors in direct sunlight), and processing aid at 0.05–0.10 wt%; flame-retardant additives are expressly avoided because halogenated and phosphate-based FR systems reduce ESCR by 40–60% and compromise the 15–25 year design service life. The production process comprises blow moulding of shell sections on accumulator head machines with clamp forces of 2,000–4,000 kN, CNC trimming of weld preparation surfaces to achieve parallelism within 0.5 mm across the joint face, hot-plate butt fusion per DVS 2207-1, and post-weld annealing at 60–80°C for 2–4 h to relieve residual stresses. Industry compliance includes ASTM D1998-21, EN 12573-1:2000 for welded static non-pressurised thermoplastic tanks, AS/NZS 4766:2020 for polyethylene storage tanks in Australia and New Zealand markets, and ISO 20848-3:2018 for plastics drum and container compatibility where applicable. End product types include vertical cylindrical storage tanks from 1000 L to 10000 L for sodium hypochlorite (at concentrations up to 15%), sulphuric acid (up to 98% at ambient temperature), ferric chloride, and other water treatment chemicals where the chemical resistance data for HDPE per ISO/TR 10358:2021 confirms compatibility; rectangular and cylindrical dosing tanks for water treatment plants; and double-wall containment vessels with interstitial leak detection ports.
| Drum zone | Distance from top chime (mm) | Die gap setting (mm) | Target wall thickness (mm) | Function |
|---|---|---|---|---|
| Top chime | 0–40 | 14.0–15.0 | 3.2–3.5 | Handle load transfer, closure torque absorption |
| Shoulder transition | 40–120 | 11.0–13.0 | 2.5–3.0 | Drop impact energy dissipation per UN 6.1.5.3 |
| Body mid-section | 120–500 | 8.0–9.0 | 1.8–2.2 | Hydrostatic pressure retention per UN 6.1.5.4 |
| Bottom transition | 500–560 | 11.0–12.5 | 2.5–3.0 | Stacking load distribution per UN 6.1.5.6 |
| Bottom chime | 560–600 | 13.5–15.0 | 3.0–3.5 | Forklift and pallet contact reinforcement |
| Pinch-off weld | Bottom centre | — | 3.5–4.0 | Flash compression zone; ESCR verification per ASTM D1693-15 |
| Test | Standard designation | Condition | Pass criterion |
|---|---|---|---|
| Bottom lift | UN 6.5.4.4 | Load = 1.25 × MPGM, lift from bottom for 5 min | No permanent deformation affecting transport safety |
| Top lift | UN 6.5.4.5 | Load = 2 × MPGM, lift from top for 5 min | No permanent deformation |
| Stacking | UN 6.5.4.6 | 1.8 × MPGM, 24 h, 40°C | No leakage or deformation |
| Leakproofness | UN 6.5.4.7 | 20 kPa internal air pressure | No leakage |
| Hydraulic pressure | UN 6.5.4.8 | 100 kPa, 10 min | No leakage, no rupture |
| Drop test | UN 6.5.4.9 | 1.2 m onto rigid surface | No leakage after impact |
| ESCR verification | ASTM D1693-15 | Condition B, 100% Igepal CO-630, 50°C | F50 failure time > 300 h |
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