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North Huajin (Liaoning) HDPE A4009MFN1325

    • Product Name: North Huajin (Liaoning) HDPE A4009MFN1325
    • 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 179135

    As an accredited North Huajin (Liaoning) HDPE A4009MFN1325 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing North Huajin (Liaoning) HDPE A4009MFN1325 is packaged in 25 kg PP woven bags with PE liner; 1,000 kg jumbo bags available.
    Container Loading (20′ FCL) Container Loading (20′ FCL): North Huajin (Liaoning) HDPE A4009MFN1325, 25kg bags, palletized, shrink-wrapped, approx. 18–20 MT net per container.
    Shipping North Huajin (Liaoning) HDPE A4009MFN1325 is a non-hazardous HDPE resin, packed in 25 kg PP/PE bags, palletized or loose. Shipped by sea in 20-ft containers, typically 17–18 MT net. Not regulated as dangerous goods. Keep dry and away from direct sunlight.
    Storage Store North Huajin (Liaoning) HDPE A4009MFN1325 in a cool, dry, well-ventilated warehouse, away from direct sunlight, rain, moisture, heat, flames, and strong oxidizers. Keep original bags sealed and palletized; avoid contamination, UV exposure, and excessive stacking. Use first-in-first-out rotation. Maintain ambient temperatures and inspect packaging regularly. Do not store outdoors or near ignition sources.
    Shelf Life North Huajin (Liaoning) HDPE A4009MFN1325 typically has a 24-month shelf life when stored cool, dry, and in unopened original packaging.
    Application of North Huajin (Liaoning) HDPE A4009MFN1325

    Blow moulding of 10 L–30 L UN-rated jerricans from North Huajin (Liaoning) HDPE A4009MFN1325 begins with verification of density and high-load melt index against ASTM D1505-18 and ISO 1133-1:2022; the latter measurement is executed at 190 °C/21.6 kg because the grade is selected for sag resistance rather than standard 2.16 kg flow classification alone. Qualification panels are subjected to environmental stress crack resistance by ASTM D1693-15B Condition B in 100% Igepal CO-630 at 50 °C, with an internal F50 acceptance threshold of 60 h for agricultural chemical packagings; published data for this specific lot configuration is limited, so incoming lots are compared against a frozen reference lot under the same bend radius and notch depth. The extrusion blow moulding line uses a grooved feed throat and a barrier screw of 25:1–30:1 L/D, with barrel zones profiled from 180 °C at the feed section to 210 °C at the metering section and a die-head set point of 195 °C–210 °C. Pre-drying is not normally required below 60% relative humidity, but hopper drying at 70 °C–80 °C for 2 h is imposed when sacks have been stored in unheated warehouses in high-humidity coastal logistics. Parison programming is performed with at least a 64-point axial wall thickness controller; die swell is held between 1.4:1 and 1.6:1, pinch weld thickness is maintained above 80% of nominal sidewall, and mould close speed is set to avoid crush line cracking. UN certification for the finished jerrican follows ADR 6.1.5.2.4, IMDG 6.1.5.2.1, and ICAO TI 6;6.3; drop testing is conducted from 1.2 m for Packing Group II liquids or 1.8 m for Packing Group I liquids, stacking is assessed per UN 6.1.5.2.7 for 28 days at 40 °C, and leakproofness is verified by internal air pressure under UN 6.1.5.2.5. Typical end products are tight-head 10 L, 20 L, and 25 L jerricans for emulsifiable concentrate pesticides, hydrogen peroxide-based cleaners, and low-viscosity corrosive liquids.

    What limits environmental stress crack resistance in detergent bottle conversion?

    On single-station and double-station shuttle blow moulders producing 500 mL–5 L detergent and household chemical bottles, the limiting product property is not tensile yield but environmental stress crack resistance in the pinch weld and handle regions. A4009MFN1325 is processed at melt temperatures of 185 °C–205 °C, with blow air pressure between 0.6 MPa and 0.9 MPa, and mould wall temperatures maintained at 10 °C–25 °C to achieve cycle times in the 8 s–15 s range for a 1 L round bottle. The formulation at the extruder throat controls the stress crack behaviour: high-purity PE wax at 0.1 wt%–0.3 wt% may be used as an internal lubricant, while colour masterbatch is limited to 2 wt%–4 wt% and should be pre-dried at 80 °C for 3 h when moisture-sensitive pigments are present. Bottles are qualified by ASTM D1693-15B Condition A at 50 °C for surfactant resistance, notched Izod impact per ASTM D256-10(2018) at -20 °C for cold-chain distribution, and tensile yield per ASTM D638-14 at 50 mm/min on a Type IV specimen cut from the sidewall. Where the finished article is intended for incidental food contact, compliance is assessed under FDA 21 CFR 177.1520(c) and EU 10/2011 with specific migration testing for the colour masterbatch and processing aids; for household chemical use, the finished pack is labelled and tested under CLP Regulation (EC) No 1272/2008 for container compatibility. The pinch weld is the structural weak point, and mould maintenance programmes specify a minimum pinch weld thickness of 0.8 mm for 1 L bottles with a 30 g nominal part weight. End products include laundry detergent bottles, fabric softener containers, dish soap bottles, and non-fluorinated light-duty cleaner packs; aggressive solvent-based formulations should not be placed in monolayer HDPE bottles without fluorination or a barrier layer because solvent uptake accelerates crack propagation.

    Accumulator-head blow moulding of 200 L L-ring drums from A4009MFN1325 requires a machine configuration distinct from small-container shuttle equipment. Shot weight is typically 12 kg–18 kg for a tight-head drum, and the accumulator-head machine is specified with a clamp force above 60 t per mould half to resist parison inflation pressure and maintain flash line tolerance. Barrel temperatures are profiled from 190 °C at the feed to 220 °C at the die head, and the die gap is set between 1.8 mm and 2.5 mm; parison length for a 200 L drum approaches 1.6 m–1.8 m, requiring axial wall thickness programming with 64–100 control points to thicken the chime and lower sidewall regions. Mould cooling is set at 12 °C–25 °C, and internal cooling air is introduced at 0.7 MPa–1.0 MPa after mould closure to reduce post-mould shrinkage. A central processing conflict is the trade-off between high melt temperature for low melt fracture and excessive sag, which produces thin walls near the top of the parison; the operator sets melt temperature as low as practical without sharkskin, monitors parison hang time, and adjusts the die gap and extrusion rate to maintain a swell ratio between 1.3:1 and 1.5:1. The finished drum is type-tested as UN 1H1 or 1H2 depending on head configuration, and the qualification matrix is reproduced below. Stacking is evaluated per UN 6.1.5.2.7 for 28 days at 40 °C with a superimposed load calculated for a stack height of at least 3.0 m; drop testing is conducted from 1.2 m for PG II liquids after conditioning at -18 °C for 24 h; leakproofness is verified under internal air pressure per UN 6.1.5.2.5; and hydraulic pressure is applied per UN 6.1.5.2.6. End products include 200 L tight-head L-ring drums for lubricant additives, water-based polymer dispersions, and industrial surfactants, as well as open-head 1H2 drums for solid but UN-regulated materials. Cold-weather transport performance is a known failure mode; drums conditioned at -20 °C are impacted on the chime and pinch weld zones using a modified ASTM D3029 impact procedure with a 5 kg tup because brittle fracture in the weld line is not captured by room-temperature drop testing alone.

    Qualification testStandard or methodTypical numerical criterion
    Drop testUN 6.1.5.2.4, ADR 6.1.5.2.41.2 m PG II at -18 °C, no leakage
    LeakproofnessUN 6.1.5.2.5Internal air pressure as specified, no leakage
    Hydraulic pressureUN 6.1.5.2.6Pressure as specified, no rupture
    StackingUN 6.1.5.2.728 days at 40 °C, no collapse
    ESCRASTM D1693-15BF50 > 60 h internal

    Co-extrusion blow moulding of multilayer agrochemical containers when EVOH barrier layers are introduced

    Multilayer containers for high-value agricultural actives and oxygen-sensitive formulations introduce layer distribution control that is substantially more complex than monolayer jerrican moulding. A six-layer structure consisting of virgin HDPE outer skin (35 wt%–45 wt%), post-industrial regrind (30 wt%–40 wt%), anhydride-modified tie resin (2 wt%–3 wt% per layer), EVOH barrier (3 wt%–5 wt%), tie resin, and virgin HDPE inner skin (20 wt%–25 wt%) is produced on a suction-blown six-extruder co-extrusion head; published data for A4009MFN1325 in this configuration is limited, so layer ratios are validated on the line by measured wall thickness maps rather than assumed from screw speed. EVOH is pre-dried to below 0.05% moisture with desiccant air at 80 °C for 4 h, and the tie resin is maintained at 200 °C–220 °C to promote chemical bonding to the EVOH. HDPE layers are extruded at 205 °C–220 °C, while the EVOH layer is held at 200 °C–215 °C to avoid degradation; the die head is operated at 205 °C–220 °C and the melt streams are co-injected into the same die gap to prevent layer breakup. Adhesion strength is measured by ASTM F904 on peeled coupons, with a minimum peel initiation value set by the converter. Layer-breakup instability occurs when the virgin and reprocessed HDPE streams differ in high-load melt index by more than 2 g/10 min; therefore the regrind stream is compounded to match virgin HLMI within ±1.5 g/10 min before feeding the co-extrusion head. Pinch weld delamination is evaluated by cutting the weld line, exposing the sample to 85% relative humidity for 72 h, and then subjecting the weld to peel loading on a tensile tester at 50 mm/min. End products include 10 L–20 L containers for fumigant precursors, emulsions, and oxygen-sensitive plant growth regulators. Regulatory documentation is aligned with EPA 40 CFR Part 156 for pesticide containment, UN 6.1.5, and CLP Regulation (EC) No 1272/2008.

    Pharmaceutical blow moulding with A4009MFN1325 shifts the control point from structural mechanics to extractables and particle burden. Cleanroom extrusion blow moulding is carried out in an ISO 14644-1:2015 Class 8 or Class 7 environment with filtered blow air at 0.4 MPa–0.8 MPa and melt temperatures of 185 °C–205 °C; the screw and die head are purged between colour changes and lot changes to reduce black speck and gel counts, and regrind is excluded unless the finished product monograph permits closed-loop reuse of the same certified resin. Blow air is passed through a 0.22 µm sterilizing-grade filter and the cooling water circuit is maintained at 10 °C–15 °C to limit microbial growth. The conversion process is validated against USP <661.1> and USP <661.2> for plastic packaging systems, while biological reactivity is assessed by USP <87> in vitro and USP <88> in vivo where the dosage form is an injectable or ophthalmic. Elemental impurities are screened according to ICH Q3D with an inductively coupled plasma mass spectrometry method, and total organic carbon is measured in aqueous extracts under USP <643> if the container holds water for injection. End products include 20 mL–500 mL diagnostic reagent bottles, oral liquid containers, and effervescent tablet tubes; this grade is not considered suitable for large-volume parenteral primary packaging without a dedicated qualification because the lot-to-lot high-load melt index and additive package are not controlled to pharmacopoeial monographs for such use.

    If post-consumer reclaim is incorporated at 25 wt% in UN-rated packaging, which rheological shifts require re-qualification?

    Replacing 25 wt% of virgin A4009MFN1325 with post-consumer reclaim changes the melt flow distribution before it changes the short-term tensile properties. The recycle stream is selected from clear or lightly coloured HDPE detergent and dairy bottles, hot-washed, extruded through melt filtration screens of 80 mesh, 120 mesh, and 200 mesh, and pelletized to a bulk density above 0.55 g/cm³. The mixture is dosed with twin gravimetric feeders to hold the PCR fraction within ±1.5 wt%. Quality control on compounded material includes high-load melt index per ISO 1133-1:2022, density per ISO 1183-1:2019, ESCR per ASTM D1693-15B Condition B, and notched Izod impact per ASTM D256-10(2018) at -20 °C. A shift in HLMI outside the range established during the original UN design type test invalidates the design type approval because wall thickness distribution and pinch weld integrity are melt-viscosity-dependent; re-certification of the packaging as UN 1H1 or 1H2 is required under UN 6.1.5. The converter must also monitor regrind odour, because hot-washed PCR retains trace polar contaminants that can generate off-odours in aqueous consumer formulations. End products are non-food technical containers where the end customer has accepted 25% PCR content under EN 15343:2007 traceability procedures and the packaging remains in compliance with EU Directive 94/62/EC and REACH 1907/2006. Published data for this specific blend is limited, so each supplying recycler is qualified through a three-batch comparison against virgin resin at the same head temperature and die gap.

    Automotive washer reservoirs and under-hood fluid vessels: heat ageing, weld line strength, and coolant resistance

    Blow moulded under-hood reservoirs produced from A4009MFN1325 are evaluated against heat ageing in ethylene glycol/water coolant, washer solvent, and hot air. The part is formed on a 3D blow moulding machine with servo-controlled parison positioning and a melt temperature of 205 °C–220 °C; the mould is maintained at 15 °C–25 °C, and blow air is supplied at 0.8 MPa–1.0 MPa to force material into convoluted pinch geometries. Weld line strength is tested by cutting a Type I tensile bar across the weld line and comparing failure stress with the bulk material per ISO 527-2:2012; the internal limit is usually a weld line retention above 80%. Coolant resistance is screened by immersion in 50% ethylene glycol at 88 °C for 168 h, followed by tensile and mass change measurements; washer solvent compatibility is checked by immersion in 50% methanol at 40 °C for 72 h. The finished reservoir is leak-tested at 30 kPa internal air pressure under water, and the filler neck is subjected to insertion-force cycling with the OEM closure. Regulatory documentation includes material reporting per GADSL and REACH Article 33 for SVHCs, with flammability characterised to FMVSS 302 where the part is in passenger compartment proximity. End products include windscreen washer reservoirs, coolant expansion bottles, and non-pressurised hydraulic fluid reservoirs. Published data for A4009MFN1325 in under-hood chemical exposure is limited; component-level validation under the OEM thermal cycle specification is mandatory before series release.

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