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North Huajin (Liaoning) HDPE 5070

    • Product Name: North Huajin (Liaoning) HDPE 5070
    • 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 194570
    Polymer Type High-density polyethylene (HDPE)
    Density 0.950 g/cm³
    Melt Flow Rate 190 C 2 16 Kg 7.0 g/10 min
    Melting Point 132 °C
    Vicat Softening Temperature 120 °C
    Tensile Yield Strength 24 MPa
    Tensile Elongation At Break 500%
    Flexural Modulus 1000 MPa
    Notched Izod Impact Strength 23 C 50 J/m
    Shore D Hardness 65
    Mold Shrinkage 1.5–3.0%
    Crystallinity 85%
    Thermal Deformation Temperature 75 °C
    Water Absorption <0.01%
    Ash Content ≤0.05%
    Moisture Content ≤0.1%
    Dielectric Strength 20 kV/mm
    Volume Resistivity 1×10^16 Ω·cm

    As an accredited North Huajin (Liaoning) HDPE 5070 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 5070 packed in 25 kg PP woven bags, 40 bags per pallet (1,000 kg).
    Container Loading (20′ FCL) North Huajin (Liaoning) HDPE 5070 loaded in a 20′ FCL container: 25 kg bags, palletized, shrink-wrapped, securely stowed.
    Shipping North Huajin (Liaoning) HDPE 5070 is a non-hazardous polymer typically shipped in 25 kg woven bags, 1,000 kg jumbo bags, or bulk. No special UN classification. Transport in clean, dry containers/trucks, palletized and stretch-wrapped. Protect from moisture, heat, and direct sunlight; store in a cool, ventilated warehouse.
    Storage Store North Huajin (Liaoning) HDPE 5070 in a cool, dry, well-ventilated warehouse, away from direct sunlight, rain, and heat sources. Keep original bags sealed and palletized to prevent moisture, dust, and contamination. Avoid contact with oils, acids, oxidizers, and incompatible chemicals. Maintain clean handling areas, observe first-in-first-out, and avoid prolonged high temperatures or UV exposure.
    Shelf Life Shelf life approximately 12 months from production when stored unopened, cool, dry, ventilated, and protected from direct sunlight.
    Application of North Huajin (Liaoning) HDPE 5070

    Injection moulding of thin-wall dairy cups from North Huajin (Liaoning) HDPE 5070 with a nominal melt flow rate of 7.0 g/10 min measured under ISO 1133-1:2022 at 190 °C/2.16 kg places the primary processing constraint on melt-front advance in pin-gated multi-cavity tools rather than on thermal stability. With wall sections between 0.4 mm and 0.9 mm, filling pressure at the nozzle typically ranges from 80 MPa to 120 MPa depending on flow length; tools with 24 to 64 cavities are run in injection moulding machines with clamp force capacities from 1,800 kN to 5,000 kN. The barrel profile is set in a rising gradient from feed throat at 180 °C to nozzle at 220–240 °C, while the chilled mould is held at 10–15 °C to force rapid crystallisation and shorten cycle time. Because high melt flow reduces melt strength, sink marks adjacent to rib roots are controlled by applying packing pressure near 60–80 % of injection pressure for 1.0–2.0 s, followed by hold time until gate freeze. For dairy contact, the base resin must meet EU No 10/2011 when the finished article is tested under EN 1186-1:2002; typical overall migration limits are 10 mg/dm² for plastics intended for aqueous and low-alcohol foods. A titanium dioxide masterbatch at 2–4 wt% dilution is dosed through a gravimetric feeder at the feed throat, using an LLDPE carrier with 55–60 wt% TiO₂; this raises light barrier for UHT short-shelf-life products. Slip agents such as erucamide at 0.05–0.15 wt% are added to improve denesting of stacked cups in automated filling lines, but excess above 0.2 wt% can create plate-out on mould vents after 8–12 h of continuous cycling. The terminal articles are 150–500 mL yoghurt cups, dairy dessert pots and margarine tubs; cap or lidding seal is established by flange flatness, which depends on differential shrinkage of 1.5–2.0 % between the sidewall and rim.

    Is environmental stress cracking resistance adequate for UN-certified open-head pails containing surfactant-based cleaning chemicals?

    For chemical pail applications, the main failure mode is not impact at low temperature but environmental stress cracking in the pin-off gate area and in weld lines adjacent to the bail ears. HDPE grades in the 7.0 g/10 min flow band under ISO 1133-1:2022 are generally positioned below the ESCR values of bimodal blow-moulding resins; nevertheless, single-layer injection pails of 10–25 L are produced when the requirement is limited to non-aggressive liquid detergents and cleaning agents. A starting-point formulation for such pails uses 0.05–0.10 wt% zinc stearate as acid scavenger, 0.10–0.25 wt% hindered phenolic antioxidant, and 0.1–0.3 wt% HALS-based UV stabiliser if the pail is stored outdoors. The injection moulding machine is a single-screw unit with L/D ratio of 20:1 to 25:1 and compression ratio 2.5:1 to 3.0:1; melt temperature is held at 200–235 °C, and the mould temperature is kept between 15 °C and 30 °C to balance cooling rate against frozen-in stress. Gate design is typically a central sprue or hot-runner drop into the base, with diameter not less than 5.0 mm to prevent excessive orientation at the gate plug. UN certification for dangerous goods packaging requires drop and stack tests: under UN 6.1.5.3, filled pails are dropped from height according to packing group; under UN 6.1.5.6, stacked load is applied at 40 °C for 28 days. ESCR screening is commonly performed under ASTM D1693-15 Condition B, but the value is not a pass/fail criterion in UN protocols; instead, full package tests define suitability. Published data for North Huajin HDPE 5070 specifically under long-term caustic or surfactant exposure is limited; each pail construction must be validated by pack testing with the actual filling medium. Terminal articles include 1–25 L open-head pails for detergents, water-based construction chemicals, and non-flavour-sensitive food ingredients.

    Returnable distribution crates are moulded with a different set of constraints: the wall thickness is between 2.5 mm and 5.0 mm, flow length is moderate, but warpage after ejection is the dominant process conflict because the part has large flat panels and high packing pressure. A mould temperature of 15–25 °C is used; if the cooling circuit is operated below 10 °C, condensation and uneven crystallisation can increase bowing on the side panels by 2–4 mm over a 600 mm span. Multiple pin gates or a hot runner system with sequentially opened valve gates are fitted to move the weld line away from the base corner radius, which is the highest stress area during drop impact. To reduce post-mould shrinkage and improve dimensional stability, a nucleating agent masterbatch is dosed at 0.05–0.15 wt% active sodium benzoate or talc; this raises the peak crystallisation temperature by approximately 3–5 °C and allows earlier ejection by 1–2 s. Outdoor-stored crates require 1.0–2.0 wt% of a carbon black masterbatch with 40 wt% carbon black in an HDPE carrier; this gives UV stabilisation only if the masterbatch is fully dispersed, and poor distributive mixing in a worn screw with recovery delay less than 1.5 s can produce visible streaking. Impact performance is verified under ISO 179-1/1eA Charpy notched impact; typical values for high-flow HDPE at 23 °C fall in the 4–8 kJ/m² range, which is adequate for crate stacking when the vertical static load does not exceed the calculated buckling load of the sidewall ribs. Chemical resistance to caustic cleaning is tested by immersion in 2 % NaOH at 60 °C for 72 h, followed by a drop test at -10 °C; this provides a more practical ESCR screen than ASTM D1693-15 for returnable packaging. Terminals are beverage bottle crates, dairy transit crates, bread trays and fish boxes.

    Hot runner balance, gate freeze-off, and colour concentrate dilution in 48-cavity closure production

    In a 48-cavity cold-runner tool with sprue and runner scrap, cycle time is limited by the runner diameter rather than by part wall thickness; the gate diameter is usually 0.5–1.0 mm, and the sprue bush is kept at 8–10 mm diameter to avoid premature sprue freeze before the gate seals. The processing window for North Huajin HDPE 5070 in closure applications is narrow: melt temperature above 240 °C can produce odour-active compounds and surface splay in closures intended for water bottles, while melt temperature below 200 °C increases injection pressure beyond 140 MPa and may cause incomplete filling of the tamper-evident band undercuts. Clamping force must be calculated from the projected cavity area plus hot runner system; for 48 cavities at 2.0–3.5 g shot weight each, machines of 1,500–2,200 kN are used. Mould temperature is set at 10–20 °C, and the mould is protected against moisture condensation at relative humidity above 60 % by increasing the temperature to 25 °C and accepting a 0.5–1.0 s longer cooling time. Additives for closures include a slip/antiblock masterbatch at 1.0–2.0 wt%, typically containing 5 wt% erucamide and 10 wt% silica in an HDPE carrier; organoleptic compliance for potable water closures requires the masterbatch carrier and process stabiliser to be selected from EU No 10/2011 and FDA 21 CFR 177.1520. Closure functionality is measured by torque retention and seal integrity; under ASTM D3472, the removal torque after one week at 40 °C is compared with application torque to identify stress relaxation in the linerless sealing bead. The terminal articles are screw caps for still water bottles, sports caps, and push-pull closures in 28 mm to 38 mm neck diameters.

    If housewares made from HDPE 5070 are washed above 65 °C, the base panel distorts

    Housewares moulded from high-flow HDPE are generally restricted to ambient and short warm wash conditions because the heat deflection temperature of unfilled high-density polyethylene, measured at 0.45 MPa under ISO 75-2:2013, commonly falls in the 60–75 °C range. A washing cycle with water temperature above 70 °C can cause base plate distortion in a storage container with wall thickness below 1.5 mm, especially when the base ribs are deeper than the panel thickness and moulded-in stress is high. The processing approach is to use a melt temperature of 195–220 °C, a mould temperature of 15–30 °C, and moderate injection speed to minimise orientation at the gate; packing pressure is kept at 50–70 % of the peak injection pressure and held for 0.5–1.0 s after gate freeze to avoid overpacking. Colour masterbatches are added at 2–3 wt%; pearlescent or metallic effects are generally avoided because the high injection speed creates flow lines visible at weld interfaces. The terminal products include storage boxes, laundry baskets, and refuse containers that are not intended for hot-fill applications.

    Pallets made by injection moulding are structurally closer to large-area ribbed panels than to crates: the top deck thickness is usually 3.0–5.0 mm, while the supporting ribs can reach 8–12 mm, so differential shrinkage between the thin deck and the thick ribs produces sink marks unless gas-assist or structural foam is used. North Huajin (Liaoning) HDPE 5070, with a nominal melt flow rate of 7.0 g/10 min under ISO 1133-1:2022, is processed at a melt temperature of 210–230 °C and a mould temperature of 15–25 °C; the material can fill the deck in a sequential valve-gated tool with up to 12 hot-runner drops, but the injection pressure at the machine nozzle often exceeds 110 MPa in the last cavities due to flow-length imbalances. For outdoor pallets, 2.0–3.0 wt% of a carbon black masterbatch is used; for fire-retardant applications no specific grade-level FR rating is claimed because HDPE requires halogen-free intumescent packages and the resulting mechanical property shift must be verified by the moulder. The terminal articles are nestable light-duty distribution pallets and retail display bases, tested under ISO 8611-1:2011 for bending and corner drop.

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    Certification & Compliance
    More Introduction

    North Huajin (Liaoning) HDPE 5070 is a high-density polyethylene resin supplied by North Huajin Chemical Industries Co., Ltd. as a pelletized ethylene polymer for extrusion, blow moulding, and selected structural injection-moulded sections. The grade is positioned around a nominal melt mass-flow rate of 0.70 g/10 min under ISO 1133-1:2022 at 190 °C/5.0 kg and a nominal density of 0.950 g/cm³ under ISO 1183-1:2019. These values place the material in the medium-viscosity HDPE class used for thick-gauge sheet, drainage pipe, and blow-moulded containers. Bulk density is typically 0.55–0.60 g/cm³, which is a hopper-feed parameter rather than a mechanical property. The model designation 5070 is a producer-specific grade code and does not correspond to a standardized ISO classification.

    What Lot-Release Specifications Govern the 5070 Resin?

    Lot-release documentation for HDPE 5070 typically includes the following properties, measured on compression-moulded specimens after conditioning at 23±2 °C and 50±10 % relative humidity. The values below are representative of the producer’s published typical properties; they are not certificate-of-analysis limits, and individual lots may differ within production tolerances.

    PropertyTest basisTypical valueUnit
    Melt mass-flow rateISO 1133-1:2022 / GB/T 3682-2000, 190 °C/5.0 kg0.70g/10 min
    DensityISO 1183-1:2019 / GB/T 1033.1-20080.950g/cm³
    Tensile yield stressISO 527-2:2012 / GB/T 1040.2-200623.0MPa
    Elongation at breakISO 527-2:2012 / GB/T 1040.2-2006>600%
    Flexural modulusISO 178:2019 / GB/T 9341-2008880MPa
    Charpy notched impact strength, 23 °CISO 179-1/1eA / GB/T 1043.1-200828kJ/m²
    Environmental stress-cracking resistance, F50ASTM D1693, 10 % Igepal, 50 °C / GB/T 1842-2008>300h
    Vicat softening temperature, A120ISO 306:2022 / GB/T 1633-2000125°C
    Shore D hardnessISO 868:2003 / GB/T 2411-200861—
    Melting peak temperature, DSCISO 11357-3:2018 / GB/T 19466.3-2004131°C

    The tabulated figures are representative typical data, not specification limits. The certificate of analysis is the controlling document for lot-specific values. For pipe-grade work, hydrostatic design basis must not be inferred from these single-point data.

    Thermal properties of the resin, measured by differential scanning calorimetry under ISO 11357-3:2018, typically show a peak melting temperature of 131 °C and a crystallization temperature of 116 °C. These values inform cooling-water set points and shrinkage control in thick sections. Continuous load-bearing service in dry air is generally limited to 60 °C for this density class; intermittent exposure above 80 °C accelerates creep and is not recommended for pressure pipe.

    On production-scale single-screw extruders equipped with screw L/D ratios of 25:1 to 30:1 and a 3:1 compression ratio, the following barrel profile is commonly employed: 180 °C in the feed zone, 195–205 °C in the compression zone, 205–215 °C in the metering zone, and 200–210 °C at the adaptor and die. Melt temperatures above 230 °C are not recommended because oxidative degradation shifts the melt-flow rate upward and reduces melt tension. When pellets are stored in opened bags at relative humidity above 60 %, surface moisture can be removed in a hot-air hopper dryer at 80 °C for 2–4 h; desiccant drying is not normally required for sealed silo transfer. On injection-moulding lines, melt set points of 200–225 °C and mould temperatures of 30–50 °C reduce warpage in thick sections, while injection pressures between 80–110 MPa are typical for medium-flow HDPE at conventional flow-path ratios.

    Rheological characterization of HDPE 5070 shows a shear-thinning profile typical of medium-molecular-weight HDPE. Capillary rheometry at 190 °C indicates an apparent viscosity in the range of 2.5–3.5 kPa·s at 100 s⁻¹ and 0.8–1.2 kPa·s at 1000 s⁻¹; these values are inputs for die pressure-drop calculation. The melt-flow ratio between 21.6 kg and 5.0 kg loads, when reported, can indicate molecular-weight distribution; a ratio above 20 suggests broader distribution and improved extrusion processability, while a ratio below 15 suggests narrower distribution and improved parison sag resistance. Published data for the 5070 grade’s specific molecular-weight distribution are limited; converters requiring full rheology curves should request a lot-specific shear-viscosity dataset from the producer.

    Comparative Position Against Lower-MFR Extrusion and Film-Grade HDPEs

    Relative to HDPE 5000S, a lower-MFR grade often used for heavy-wall pipe and sheet, HDPE 5070 has a moderately higher melt-flow rate. This permits either a 5–10 °C lower melt-temperature set point or an increase in screw speed before melt fracture appears. Relative to HDPE 7000F thin-gauge film grades, the material is not drawn down to thin films; its higher melt strength and lower draw-down are more appropriate for sheet, pipe, and blow-moulded containers. Compared with injection-grade HDPEs such as 8001, the melt-flow rate of 5070 is lower by an order-of-magnitude class, increasing injection pressure demand by roughly 10–20 MPa at identical wall thickness and limiting flow-length-to-thickness ratios below 150:1. In blow moulding, the same lower melt-flow characteristic reduces parison sag in containers above 5 L and improves top-load rigidity.

    Applications for HDPE 5070 include drainage and non-pressure corrugated pipe, spiral-wound storage tanks, chemical containment liners, pallets, and blow-moulded containers in the 5–60 L range. In corrugated pipe lines, the resin is typically blended with carbon black masterbatch at 2.0–2.5 wt% to achieve ultraviolet stabilization for outdoor storage; ISO 4427 carbon black dispersion rating and density must be verified on the finished pipe. Sheet extrusion lines produce 2–15 mm sheet for vacuum forming and tank fabrication. In these lines, melt strength maintains gauge across the chill-roll stack, but chill-roll temperatures below 70 °C can induce excessive crystallinity and warp in thick sheet. For large-part blow moulding above 30 L, accumulator-head machines are preferred because continuous-extrusion units may not deliver a sufficiently uniform parison; parison sag is controlled by using the lower-melt-index side of the specification and by maintaining die temperatures at the lower boundary.

    Two production-floor failure modes are documented when the grade is run outside its thermal-mechanical envelope. First, on single-screw extruders with screw clearance exceeding 0.25 mm, specific energy demand rises above 0.40 kWh/kg and melt-temperature override triggers gel formation and fish-eye defects on sheet surfaces. Second, in hopper-fed systems with pellet inlet temperatures above 70 °C, bridging and feed starvation can occur because pellet-surface tack increases; the symptom is screw-speed oscillation rather than a change in melt-flow rate. Neither condition indicates a resin defect; both are controlled by mechanical screw inspection, feed-throat temperature control, and pellet inventory management. On co-rotating twin-screw compounding lines with L/D 40:1, the resin can serve as a carrier base for carbon black masterbatch. Barrel temperatures above 220 °C in dispersive sections degrade the antioxidant package and should be avoided unless residence time is below 90 s.

    Hydrostatic Strength Cannot Be Inferred from Single-Point Tensile Data

    Hydrostatic design data for pressure-pipe service are generated under ISO 9080, not from short-term tensile values. Under ISO 9080, pressure-pipe materials are evaluated at multiple stress levels and temperatures; the resin must demonstrate a 50-year lower confidence limit of 8.0 MPa at 20 °C for PE80. HDPE 5070’s short-term tensile data do not confirm this classification. Pipe producers must run notched pipe tests under ISO 13479 and slow crack growth testing under ISO 18489 for PE100-type service. The nominal density of 0.950 g/cm³ and melt-flow rate of 0.70 g/10 min are compatible with PE80 formulations, but the grade should not be assigned a PE80 or PE100 classification without lot-specific extrusion and long-term hydrostatic evaluation. For potable-water contact, the finished pipe or fitting must satisfy the organoleptic, migration, and hygiene requirements of ISO 4427, GB/T 13663.2, or the relevant national drinking-water standard.

    When Potable-Water Pipe or Food-Contact Certification Is Required

    When a converter intends to use HDPE 5070 in drinking-water pressure pipe or food-contact packaging, material certification must be traced to the specific lot and not to generic grade data. Under FDA 21 CFR 177.1520(c), olefin polymers may be used in food-contact articles provided that density, melt-flow rate, and stabilizer levels meet the prescribed conditions; the converter must also verify end-test compliance under 21 CFR 177.1520(d) for extractives. For potable-water service, ISO 4427-1 and ISO 4427-2 specify compound designation and carbon black content; GB/T 13663.1 and GB/T 13663.2 apply in China. Lot-level migration testing per EU Regulation (EU) No 10/2011 is required for European food-contact articles. Compliance with RoHS Directive 2011/65/EU is normally addressed through the absence of restricted heavy metals in the resin, but finished-article verification remains with the converter. The resin should not be processed above 240 °C; thermal degradation products may include aldehydes and ketones, and local exhaust ventilation should be used on accumulator-head machines with residence times above 30 min. Do not blend with PVC or polycarbonate at high concentrations because incompatible melts generate delamination defects; polypropylene or ethylene-vinyl acetate contamination above 2 wt% reduces weld-line strength.

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