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Indian Oil (IOC) HDPE G-LENE I60A080

    • Product Name: Indian Oil (IOC) HDPE G-LENE I60A080
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications
    HS Code 919378

    As an accredited Indian Oil (IOC) HDPE G-LENE I60A080 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Indian Oil (IOC) HDPE G-LENE I60A080 supplied in 25 kg polypropylene woven bags with inner liner, palletized.
    Container Loading (20′ FCL) 20′ FCL container loaded with Indian Oil HDPE G-LENE I60A080 in 25 kg bags, palletized and shrink-wrapped, approximately 20 MT net.
    Shipping Indian Oil (IOC) HDPE G-LENE I60A080 is shipped as non-hazardous polymer granules in 25 kg PP woven bags with inner liners. Bags are palletized, stretch-wrapped, and transported in dry containers by road, rail, or sea. Keep dry and away from heat, sunlight, and moisture. No special hazardous shipping requirements apply.
    Storage Store Indian Oil (IOC) HDPE G-LENE I60A080 in a cool, dry, well-ventilated warehouse away from direct sunlight, heat, flames, and strong oxidizers. Keep original bags sealed, palletized, and off the floor to prevent moisture, dust, and contamination. Avoid prolonged UV exposure. Use first-in, first-out stock rotation, maintain good housekeeping, protect from physical damage, and follow the supplier’s SDS.
    Shelf Life Typically 12 months from manufacture when stored cool, dry, in original unopened packaging, away from direct sunlight and moisture.
    Application of Indian Oil (IOC) HDPE G-LENE I60A080

    Injection moulding of open-top industrial pails in the 5 L to 25 L range from Indian Oil HDPE G-LENE I60A080 uses a melt flow index of 8.0 g/10 min measured under ISO 1133-1:2022 at 190 °C/2.16 kg to balance short flow paths against collapse resistance at demoulding temperatures. On two-platen hydraulic presses with clamp forces between 5,000 kN and 9,000 kN for pail base diameters up to 320 mm, the grade is processed at melt temperature 215 °C–245 °C and mould temperature 15 °C–35 °C; peak cavity pressure during fill typically falls between 80 MPa and 100 MPa on machines equipped with screw diameters from 50 mm to 70 mm and L/D ratios of 20:1 to 22:1. Hold pressure is set at 60–80 MPa for 6–10 s on wall stocks of 3.0–4.0 mm to suppress sink marks at the gate boss and at rib intersections exceeding 25% of nominal wall thickness; hold time below 6 s permits premature gate freeze at the direct sprue and produces post-shrinkage depressions measurable under a surface comparator. The material’s density of 0.960 g/cm³ per ISO 1183-1:2022 gives moulded pails a stacking load that is normally verified at 23 °C and 50% RH after 48 h conditioning using compression platen crosshead speed 10 mm/min; the acceptance criterion on a 20 L pail is commonly 2,500 N without sidewall buckling, although the exact value depends on handle geometry and lid interlock design. Mould shrinkage measured under ISO 294-4:2018 on plaques 60 mm × 60 mm × 2.0 mm falls in the range 1.4–2.0%, and the gradient between rim and base must be held below 0.3% if ovality at the lid seat is to remain below 1.0 mm after demoulding. Virgin feedstock with moisture uptake below 0.01 wt% can be run without predrying, but regrind stored at relative humidity above 70% should be dried at 80 °C for 2 h to avoid surface splay; accumulated fines from granulator screens at 8 mm or coarser can carry static surface contamination into the melt and produce visible specks in unpigmented base resin.

    Table 1 records the working window used for two geometry classes; the values are production-floor ranges and do not remove tool-specific optimisation for gate positioning, hot-runner balance, or robot removal timing.

    ParameterThin-wall tubs 1.0–1.6 mmStructural crates 2.8–4.0 mm
    Melt temperature225–245 °C210–230 °C
    Mould temperature15–30 °C20–35 °C
    Peak injection pressure90–115 MPa75–95 MPa
    Hold pressure60–80 MPa55–70 MPa
    Hold time0.8–2.0 s6–12 s
    Back pressure0.4–0.8 MPa0.3–0.6 MPa
    Screw speed80–120 rpm60–90 rpm
    Cooling time before demould4–8 s14–18 s

    Why Do High-Web Crate Geometries Demand Balanced Gate Arrays Rather Than Centre Sprues?

    Bottle crate tooling constructed with structural webbing between cell partitions creates a melt-flow problem that cannot be compensated by raising injection pressure alone. I60A080 is injected into high-web crates with wall thicknesses of 2.8–3.5 mm and projected areas between 0.28 m² and 0.38 m² using toggle-clamp machines rated from 10,000 kN to 15,000 kN; the melt temperature is reduced to 210–230 °C and the mould is held at 20–35 °C so that the long flow path does not degrade the material before the knitting zones meet. A single centre sprue on a 600 mm side dimension generates a flow-length-to-thickness ratio above 180:1 and leaves low gloss, weak matter at the peripheral corners; instead, four to six valve-gated drops of orifice diameter 3.0–4.0 mm are positioned on symmetry planes at the webbing intersections to keep flow length below 120 mm per branch. When weld lines form downstream of the partitions, tensile strength retention is measured by cutting ISO 527-2:2012 type 1A specimens perpendicular to the knit line and comparing them with un-welded web specimens; plant evaluations on mineral-filled HDPE grades frequently record retention of 72–80%, and unfilled I60A080 should be validated for the specific gate spacing because narrow web widths below 6 mm can lower retention to the 65% level. Warp is controlled by balancing core and cavity heat transfer so that the mould temperature differential does not exceed 5 °C across the webbing intersections; a differential above 5 °C produces post-ejection bow beyond 3 mm per 600 mm side length when measured on a flat granite plate with a height gauge. Cooling time for 3.0 mm sections follows the thermal diffusivity of HDPE near 0.15 mm²/s; demoulding at 90 °C surface temperature usually requires 14–18 s of in-mould time after gate seal. Stack compression is followed by ISO 604 at 10 mm/min and 23 °C, with typical minimum requirements for beverage crates of 2,000–2,500 N; the load must be recorded after 24 h because HDPE yield stress relaxes immediately after demoulding and rejects based on pre-annealed data fail to reflect real stacking behaviour.

    Thin-Wall Food Storage Tubs, Flow Length Capability, and −20 °C Impact Retention

    At wall sections between 1.0 mm and 1.6 mm, I60A080 is processed on high-speed tub lines with screw diameters of 35–50 mm, L/D ratios of 22:1, and check-ring tip clearance set to 0.05 mm or less to minimise melt cushion drift during short-fill spikes. Injection velocity is staged from 150 mm/s to 250 mm/s at the screw, producing peak cavity pressure of 60–75 MPa; a second-stage hold of 50–65 MPa lasting 0.8–1.6 s must be maintained until the gate, usually a semicircular edge gate of 1.5–2.0 mm width, is sealed. If hold pressure is released before gate freeze, the wall cross-section remains unstable and the tub shows sink bands across the base grid; these bands are detectable with a profilometer when depth exceeds 20 µm. Freezer impact sets the lower melt-temperature limit: running below 225 °C to shorten cooling time may reduce frozen-in orientation and low-temperature toughness, so dart impact at −20 °C per ISO 6603-2 should be checked after 72 h conditioning. With wall 1.4 mm, a failure energy below 3.5 J often corresponds to excessive shear heating or to pigment masterbatch loadings above 5 wt% that act as notch initiators at the base radius. Environmental stress crack resistance for dishwashing liquid and food oil contact is evaluated using ASTM D1693 condition A with 100% Igepal at 50 °C; F50 values below 30 h suggest residual surface stress from high ejection speed or incorrect draft angles below 0.5°. Mould temperature control is set at 15–30 °C, and the core-to-cavity differential is maintained below 3 °C to prevent warpage in rectangular lids with diagonal span above 200 mm.

    For polyolefin over-cap and screw closure tooling in the 28 mm to 38 mm diameter range, I60A080 is processed at melt temperature 215–235 °C on presses with clamp force 1,200–2,500 kN; the low clamp-force requirement allows multi-cavity moulds with 16–32 cavities to be run on compact hydraulic units without exceeding 2,000 kN of total force. The tamper-evident pilfer band hinge is the first site of stress cracking; it is moulded as a series of bridges 1.0 mm wide and 0.6–0.8 mm thick that must be filled at high shear without burning, so injection velocity is set to 100–180 mm/s and the gate land is held at 0.8 mm to avoid stringing during sprue break. Torque retention is verified by applying closures to glass or HDPE preforms at 1.8–2.5 N·m and measuring removal torque after 24 h at 60 °C; removal torque below 0.6 N·m indicates stress relaxation across the knurl thread or excessive mould-release additive in the compound. Bridge rupture strength is tested in axial compression at 10 mm/min using a digital torque fixture; the pilfer band bridges of I60A080 should withstand 80 N or more before break to prevent inadvertent teething during automated capping. Atmospheric stress cracking of closure shells around the knurl root is quantified by exposing fastened closures to 10 wt% Igepal CO-630 at 50 °C for 48 h; cracks longer than 0.5 mm at the thread root indicate overpacking or an unbalanced cavity fill. Because closures are thin and solidification is rapid, the screw cushion should be kept between 3 mm and 5 mm; cushion variation greater than 1 mm produces weight deviations above 0.3% and inconsistent dimensional stability at the tamper bridge.

    When Migration Limits Override Cycle-Time Gains in Polyolefin Food Packaging

    Food-contact conversion of I60A080 shifts control from melt delivery to compliance of intentionally added substances and their reaction products. Under EU Regulation (EU) No 10/2011, overall migration from the moulded article is limited to 10 mg/dm² when using food simulants 10% ethanol, 3% acetic acid, and 50% ethanol for aqueous, acidic, and alcoholic product categories; the testing time and temperature are selected from the standard’s food contact conditions, with a common accelerated condition of 70 °C for 2 h for short-term reusable tubs. In the United States, FDA 21 CFR 177.1520(c) covers olefin polymers, and the grade’s compliance is meaningful only when no excluded pigments, release agents, or post-consumer scrap are introduced into the feedstock. Antistatic additives based on ethoxylated amines can raise total carbon migration and should be avoided at loadings above 0.2 wt% unless the specific formulation is cleared for the target simulant; glycerol monostearate at 0.5–1.0 wt% is preferred for demoulding in food tubs because its migration footprint is lower under fatty food simulant D2. Release agent reduction below 0.3 wt% can widen the food-contact window, but may produce ejection drag on tall pails with draft angles below 1°, raising cycle-time variability. Migration compliance data should be generated on actual shot-weight parts rather than on compression-moulded plaques because high-shear injection can lower the molecular weight of the skin layer and change surface extraction behaviour; the difference in overall migration between core and skin can be as high as 15% under aggressive 95% ethanol simulant for low-viscosity HDPE.

    Regulation / standardTest or clauseLimitApplication note
    EU Regulation (EU) No 10/2011Overall migration10 mg/dm²Use actual moulded surface area; do not substitute compression-moulded sheet data.
    FDA 21 CFR 177.1520Olefin polymer clearanceConditions of use B through HExcludes non-cleared colourants and post-consumer scrap.
    REACH (EC) No 1907/2006SVHC declaration0.1% w/wConfirm absence of listed phthalates and metal-bearing pigments.
    RoHS 2011/65/EURestricted substancesPb 1000 ppm, Cd 100 ppmApplies to electrical and electronic packaging components only.
    TPCH model legislationPackaging heavy metalsSum Pb, Cd, Hg, CrVI 100 ppmRelevant for export packaging and returnable logistics articles.

    Under sustained underbonnet temperature excursions, I60A080 is used in injection-moulded automotive washer system brackets, sensor housings, and battery cell spacers where continuous temperature does not exceed 75 °C and peak exposure remains below 90 °C. The material should be stabilised with a heat package suitable for ISO 188 oven ageing at 100 °C for 500 h if underbonnet peaks approach the upper limit; unstabilised or lightly stabilised lots lose more than 50% of initial tensile elongation after 200 h at 100 °C when measured on ISO 527-2:2012 type 1A specimens. Chemical compatibility with washer fluid concentrate at 40% glycol and 10% methanol is assessed by immersion for 500 h at 60 °C, followed by ISO 179-1:2010 Charpy notched impact at 23 °C; retained impact below 4 kJ/m² on a 4 mm specimen indicates surface plasticisation or oxidative chain scission. Connector flanges and threaded bosses should use rounded root radii not less than 0.5 mm because HDPE is notch sensitive in fatigue; cyclic pressure testing of washer reservoirs at 0.5 Hz between 0 MPa and 0.15 MPa for 10,000 cycles has been used to detect weld-line microcracking before production release. Published data for I60A080 after specific coolant mixture exposure is limited, so lot-specific retention testing per ISO 22088-1 is required before substituting it for a purpose-built automotive HDPE.

    Post-industrial HDPE regrind derived from I60A080 is compounded with virgin resin for horticultural trays, nesting logistics trays, and thin-wall transport sleeves; recycled content up to 25 wt% is normally absorbed without changing the extrusion screw back pressure requirement beyond 0.4–0.6 MPa. The melt flow index of the blend shifts with regrind lot: clean fract-grade flake at 25 wt% raises viscosity only slightly, but repeated heat histories can reduce melt flow from the virgin value of 8.0 g/10 min to between 6.8 g/10 min and 7.5 g/10 min under ISO 1133-1:2022. To control fluctuation, the flake is screened through a 100 µm melt filtration circuit or dry-screened at 3 mm before blending, and online melt pressure at the injection nozzle is held within ±0.5 MPa of the virgin baseline. Trays with wall thickness 1.5–2.0 mm and flow length 250 mm should not contain more than 30 wt% regrind without adding a stabiliser top-up; notched impact per ISO 179-1/1eA at 23 °C may fall below 5 kJ/m² above that threshold, and tray corner cracking during automated stack stripping becomes detectable. Use of I60A080 as a base for reuse streams is limited by melt stability: multiple passes through a 200 °C–230 °C injection barrel lower the oxidation induction temperature, so thermal stability after three passes should be confirmed by differential scanning calorimetry using ISO 11357-6:2018 oxidative induction time at 200 °C; OIT below 20 min indicates that fresh stabilizer is required before the batch is converted into frost-exposed horticultural trays.

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