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Borealis HDPE HE1344

    • Product Name: Borealis HDPE HE1344
    • 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 276389
    Polymertype High Density Polyethylene (HDPE)
    Density 0.944 g/cm³
    Meltflowrate 13 g/10 min (190°C/2.16 kg)
    Tensilemodulus 1000 MPa
    Tensilestressatyield 22 MPa
    Tensilestrainatyield 10%
    Elongationatbreak >600%
    Charpynotchedimpactstrength23c 8 kJ/m²
    Charpynotchedimpactstrengthminus30c 4 kJ/m²
    Vicatsofteningtemperature 75°C
    Meltingtemperature 130°C
    Thermalconductivity 0.4 W/m·K
    Specificheatcapacity 1.9 J/g·°C
    Waterabsorption <0.01%
    Hardnessshored 60
    Dielectricconstant 2.3
    Dielectricstrength 20 kV/mm
    Volumeresistivity >10^14 ohm·cm

    As an accredited Borealis HDPE HE1344 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Borealis HDPE HE1344 is packaged in 25 kg polyethylene bags, palletized and stretch-wrapped for safe transport.
    Container Loading (20′ FCL) 20′ FCL loading: Borealis HDPE HE1344 in 25 kg bags, approximately 20–22 metric tons loose or 18–20 metric tons palletized.
    Shipping Borealis HDPE HE1344 is a non-hazardous polyethylene resin. It is typically shipped as pellets in 25 kg bags, octabins, or bulk containers, palletized and stretch-wrapped. Transport in clean, dry trucks or containers, avoiding moisture, heat, UV, and contamination. No dangerous-goods labeling required. Store cool, dry, and ventilated.
    Storage Store Borealis HDPE HE1344 in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, and open flames. Keep original containers or packaging closed, labelled, and protected from moisture, dust, and contamination. Separate from strong oxidising agents. Avoid release to drains, soil, or water. Use first-in, first-out stock rotation and maintain good housekeeping and ambient storage temperatures.
    Shelf Life Borealis HDPE HE1344 has a two-year shelf life when stored dry, unopened in original packaging, below 30°C, away from sunlight.
    Application of Borealis HDPE HE1344
    The extrusion blow molding of large-volume dangerous goods containers from Borealis HDPE HE1344 on accumulator-head machines requires precise control of parison geometry, thermal uniformity, and melt strength to meet UN certification mandates and long-term chemical containment integrity. The extruder barrel operates with a length-to-diameter ratio between **24:1** and **30:1**, with staged temperature profiling from **180°C** in the feed zone to **210°C** at the die head. High-load melt index characterization per **ISO 1133-1:2022** at **190°C** under **21.6 kg** load provides a more meaningful processing window indicator than the standard **2.16 kg** MFR for this grade family, as blow molding grades exhibit molecular weight distributions engineered specifically to resist parison sag during open-mold dwell. Die swell values ranging from **15%** to **35%** necessitate undersized die gap settings that anticipate radial expansion, with iterative startup adjustments required to stabilize wall thickness. Parison programming with **10-point** to **20-point** wall thickness control modulates accumulator head discharge rate to compensate for vertical parison weight distribution, with thicker wall sections programmed for lower container regions that bear hydrostatic load and drop impact stress. Mold clamping forces for **200 L** tight-head drums range from **250 kN** to **800 kN**, contingent on flash area, parting line geometry, and pinch-off design. Cooling times of **120 s** to **240 s** for nominal wall sections between **2.5 mm** and **5.0 mm** are governed by mold temperature settings of **10°C** to **25°C** and the thermal diffusivity of HDPE, approximately **0.13 mm²/s** to **0.16 mm²/s**. Post-mold volumetric shrinkage between **1.5%** and **3.0%** must be compensated in cavity dimensioning to maintain critical neck thread engagement, bung orifice geometry, and closure torque retention. Compliance with UN ADR 6.1.5.3 drop test requirements at **1.2 m** for Packing Group II containers conditioned at **−18°C** demands verified low-temperature impact toughness and ESCR performance exceeding **400 h** under **ASTM D1693-15** Condition B in **100% Igepal CO-630** with a failure criterion of **F50**. Hydrostatic pressure retention per UN ADR 6.1.5.5 at **250 kPa** for **30 min** without leakage confirms weld line integrity at the pinch-off zones and around molded-in bung threads.

    What Limits Environmental Stress Crack Resistance in HDPE Chemical Containment?

    Environmental stress crack resistance in HDPE blow molded containers is governed by the density of intercrystalline tie molecules, crystalline lamellae thickness distribution, and the cooling rate history imposed during mold contact. When a container wall is subjected to biaxial tensile stress from internal pressure or drop impact while simultaneously exposed to surfactant or oxidizing media, microvoids initiate at amorphous phase boundaries where tie-molecule density is locally depleted. Crack propagation follows a craze-to-fracture sequence that is accelerated by stress concentration at surface scratches, weld lines, and abrupt wall thickness transitions. The **ASTM D1693-15** bent strip test under Condition B with **100% Igepal CO-630** at **50°C** remains the most widely specified ESCR verification method for dangerous goods packaging, though the test is notched-specimen dependent and exhibits known statistical dispersion. HDPE blow molding grades with broad bimodal molecular weight distributions typically achieve **F50** values above **400 h** in **100% Igepal**, whereas unimodal grades with equivalent density may fail below **50 h** under identical conditions. The comonomer type and short-chain branching distribution directly influence tie-molecule formation; butene-based copolymers generally exhibit lower ESCR than hexene-based copolymers at equivalent density, a difference attributable to ethyl versus butyl branch exclusion from lamellar folding. Processing history modifies ESCR independent of resin architecture; rapid quenching from melt temperatures above **200°C** suppresses crystallite perfection and increases tie-molecule trapping, while slow cooling in thick sections promotes lamellar thickening and reduces resistance. Extrusion blow molding of HE1344 at melt temperatures above **220°C** for extended residence times initiates thermo-oxidative chain scission that measurably lowers ESCR, a degradation pathway detectable through melt index drift exceeding **10%** from virgin values. Inclusion of post-consumer recyclate at levels beyond **15 wt%** introduces carbonyl oxidation products and residual low-molecular-weight fractions that act as crazing initiators, requiring ESCR re-validation on finished containers per **ASTM D1693-15** rather than extrapolation from virgin resin data.The inner bottle component of composite intermediate bulk containers is produced on high-output continuous shuttle or rotary blow molding machines where parison ejection rate and mold indexing speed dictate throughput limitations. The extruder typically operates with a grooved-feed section to stabilize solids conveying at screw speeds between **40 rpm** and **90 rpm**, with melt temperature maintained between **185°C** and **205°C** to balance melt strength against cycle time. Deflashing of IBC inner bottle flash at the top and bottom pinch-off zones generates regrind streams that are reintroduced at controlled ratios not exceeding **20 wt%** to avoid melt index drift and die head pressure instability. The vertical load-bearing column of the composite IBC frame transfers stacking forces through the outer steel or polypropylene cage, leaving the inner bottle primarily responsible for hydrostatic containment rather than structural support. Wall thickness distribution in the inner bottle is programmed with maximum thickness at the bottom corner radii where drop impact stress concentrates, while mid-body walls are maintained at **1.8 mm** to **3.0 mm** to minimize material consumption. The UN drop test for the complete IBC assembly per UN ADR 6.5.4.4 requires the filled container to withstand **1.2 m** impact at **−18°C** without leakage, a requirement that exposes the combined effect of bottle ESCR, weld line strength, and corrugated outer cage energy absorption. Leak detection after drop testing is conducted per UN ADR 6.5.4.8 using **0.2 bar** internal air pressure with bubble testing at all welds and fitting interfaces. Batch-to-batch variation in swell ratio, melt index, and die swell from the resin supplier can shift the parison programming baseline, necessitating on-line wall thickness mapping via ultrasonic gauging to maintain the programmed profile within **±0.2 mm** of target.

    Automotive Fluid Reservoir Drop Impact and Weld Line Requirements at −40°C

    Windshield washer reservoirs, coolant expansion tanks, and diesel exhaust fluid reservoirs are blow molded from HDPE grades that must maintain impact toughness at ambient and low temperatures while resisting chemical attack from contained fluids. The governing test standard for automotive fluid reservoirs is **ISO 16750-3** for mechanical loads, supplemented by OEM-specific drop impact specifications at **−40°C** from heights of **0.5 m** to **1.0 m** onto concrete. HDPE HE1344 processed at melt temperatures between **185°C** and **210°C** produces reservoirs with notched Charpy impact energy exceeding **6 kJ/m²** at **−30°C** per **ISO 179-1:2023**, though published data for this specific grade configuration is limited. The critical failure mode in blow molded reservoirs is not the base material impact toughness but the weld line integrity at the pinch-off zone and at insert overmolding interfaces. Pinch-off weld strength is maximized when the parison temperature at mold closure exceeds **200°C** and the mold flash gap is maintained between **0.08 mm** and **0.15 mm** to generate sufficient compression of the molten parison edge. Coolant reservoirs containing ethylene glycol-water mixtures at **50%** concentration exhibit stress cracking when the molded-in thread inserts generate residual hoop stress; the combined effect is evaluated per **ASTM D1693-15** after immersion in the service fluid at **60°C** for **500 h**. Diesel exhaust fluid reservoirs present a more aggressive environment, as urea solutions crystallize at temperatures below **−11°C**, generating volumetric expansion that imposes hydrostatic stress on container walls. Design modifications incorporate ribbed exterior geometry and increased corner radii to distribute stress away from weld line zones.Potable water storage tanks blow molded from HDPE grades intended for food contact applications require formulation verification against migration limits specified in **EU Regulation 10/2011** and **US FDA 21 CFR 177.1520**. The compliance evaluation for large-diameter storage vessels includes overall migration testing per **EN 1186-1:2002** with **3% acetic acid**, **10% ethanol**, and olive oil simulants at **40°C** for **10 days**, yielding overall migration values below **10 mg/dm²** for HDPE conforming to the regulation. Specific migration of residual ethylene monomer is assessed per **EN 13130-1:2004**, with detection limits below **0.5 mg/kg** achievable using headspace gas chromatography. The organoleptic requirements of potable water applications impose additional constraints on the extrusion blow molding process, as thermal degradation products generated from extended residence time at melt temperatures above **220°C** impart detectable off-flavors that persist through repeated rinse cycles. Large-diameter cylindrical tanks with wall thicknesses between **3 mm** and **10 mm** exhibit non-uniform crystallinity through the wall cross-section, with the inner surface quenched against the mold developing lower crystallinity than the slow-cooled core. This crystallinity gradient affects both permeation resistance and the susceptibility to chlorinated water stress cracking, a phenomenon documented in **ISO 9080:2012** for pressure pipe applications and extending to storage tank service when free chlorine residuals exceed **1 ppm**. Tanks installed in outdoor service must additionally resist UV-induced embrittlement; carbon black loading at **2%** to **2.5%** by weight per **ISO 4892-3:2016** UV exposure testing provides adequate weathering protection for a service life exceeding **10 years**.

    When Post-Consumer Recyclate Incorporation Approaches 30 wt% in Accumulator-Head Blow Molding

    The substitution of virgin HDPE with post-consumer recyclate in large-part extrusion blow molding introduces processing discontinuities that scale nonlinearly with recyclate loading. At recyclate fractions between **10 wt%** and **15 wt%**, the dominant effect is a slight increase in melt pressure and a measurable narrowing of the die swell range, attributed to reduced elastic recovery of the recycled fraction's shorter average chain length. At **30 wt%** recyclate loading, accumulation of polypropylene contamination from caps and closure residuals, typically present at **2%** to **5%** in commingled HDPE bales, creates interfacial voids that serve as crack initiation sites in drop impact testing. The melt filtration stage upstream of the accumulator head becomes mandatory at this loading, with mesh screens of **60 mesh** to **100 mesh** employed to remove particulate contaminants; screens finer than **100 mesh** cause unacceptable pressure drop across the breaker plate and premature screen change cycles. Gel counts in filtered recyclate streams measured per **ISO 11357-6:2018** thermal analysis show oxidized fractions with carbonyl index values exceeding **0.2**, correlating with reduced ESCR in finished containers. Batch-to-batch variance in recyclate melt index requires on-line adjustment of barrel temperature profiles and screw speed; high-load melt index variation of **±15%** between recyclate lots shifts parison sag behavior measurably, demanding recalibration of parison programming points. The compounding of recyclate with virgin HE1344 on a twin-screw extruder with **L/D 36:1** and atmospheric degassing at screw speeds between **200 rpm** and **400 rpm** homogenizes the melt stream sufficiently to restore process stability. The extruder head pressure at **30 wt%** recyclate typically increases by **10%** to **25%** over virgin processing, an increase attributable to the lower melt index and contamination-induced flow restriction. Finished container testing under **ASTM D256-23** notched Izod at **23°C** shows impact strength retention above **80%** of virgin values when recyclate quality meets specified contaminant limits, while **−18°C** impact retention drops to between **60%** and **75%**, necessitating drop test re-verification for cold-fill service applications.The following table summarizes the processing parameter gradients typically employed for accumulator-head extrusion blow molding of HDPE HE1344 in large-container applications:
    Processing StageZone 1Zone 2Zone 3AdapterDie HeadMold
    Temperature range170–185 °C185–195 °C195–205 °C190–200 °C190–205 °C10–25 °C
    Pressure range——15–25 MPa—10–18 MPa0.6–0.9 MPa blow air
    Screw speed40–80 rpm for accumulator-head machines; 25–60 rpm for continuous shuttle
    The compliance verification matrix for chemical containment and potable water applications produced from HDPE HE1344 is presented below:
    Regulatory StandardTest Method DesignationConditionRequirement
    UN ADR 6.1.5.3Drop test1.2 m, −18 °C, Packing Group IINo rupture or leakage
    UN ADR 6.1.5.5Hydrostatic pressure250 kPa, 30 minNo leakage
    UN ADR 6.1.5.6Stacking load40 °C, 28 daysDeformation within permitted limits
    ASTM D1693-15ESCR Condition B100% Igepal CO-630, 50 °CF50 ≥ 400 h
    ISO 1133-1:2022HLMI190 °C, 21.6 kgProcess window matched to machine configuration
    EU 10/2011Overall migration3% acetic acid, 40 °C, 10 days≤ 10 mg/dm²
    The thermoforming of HDPE sheet extruded from blow molding grades presents gauge uniformity challenges that originate at the die exit and propagate through the roll stack. Sheet lines processing HE1344-family material typically utilize flexible-lip coat-hanger dies with manual or automatic lip adjustment bolts spaced at **25 mm** to **50 mm** intervals across the web width. Melt temperature at the die exit is maintained between **200°C** and **215°C** to ensure sufficient draw-down capability while preventing excessive edge bead that requires trim recycling. The three-roll polishing stack operates with a first roll temperature of **80°C** to **95°C**, a center roll at **70°C** to **85°C**, and a final chill roll at **40°C** to **60°C** to control sheet crystallization and minimize curl. Cross-web thickness variation on sheets extruded to nominal gauges of **3 mm** to **8 mm** is maintained within **±3%** using gravimetric feed and automatic die bolt adjustment; excursions beyond **±5%** produce selective thinning during thermoforming at feature corners, leading to part rejection under **ISO 11833-2:2000** dimensional stability testing. The thermoforming window for HDPE sheet is narrow relative to amorphous polymers, as the crystalline melting range between **125°C** and **135°C** produces an abrupt transition from rigid to molten behavior. Sheet surface temperatures between **160°C** and **180°C** are required for forming cycles of **15 s** to **30 s**, with infrared heating elements tuned to emit in the **3 μm** to **3.5 μm** wavelength band where HDPE exhibits strong absorption. Published data for the specific thermoforming behavior of HE1344 in sheet applications is limited; extrusion processors typically validate the forming window through trial runs on plug-assisted machines with mold temperatures of **20°C** to **50°C**.
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