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Indian Oil (IOC) HDPE G-LENE J43A002

    • Product Name: Indian Oil (IOC) HDPE G-LENE J43A002
    • 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 797628
    Polymer Type High Density Polyethylene (HDPE)
    Grade J43A002
    Density 0.943 g/cm³
    Melt Flow Index 0.2 g/10 min (190°C/2.16 kg)
    Melting Point 130-135 °C
    Vicat Softening Temperature 120-125 °C
    Tensile Strength At Yield 23-25 MPa
    Elongation At Break >600%
    Flexural Modulus 1000-1200 MPa
    Notched Izod Impact Strength 250-300 J/m
    Hardness Shore D 60-65
    Water Absorption <0.01%
    Environmental Stress Crack Resistance >1000 h
    Thermal Conductivity 0.4 W/m·K
    Dielectric Constant 2.3

    As an accredited Indian Oil (IOC) HDPE G-LENE J43A002 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 J43A002 packaging: 25 kg polypropylene woven bags with inner liner, palletized for transport.
    Container Loading (20′ FCL) IOC HDPE G-LENE J43A002 loaded in 20′ FCL as 25 kg bags, palletized/floor-loaded, securely stowed; approx. 18–22 MT per container.
    Shipping Indian Oil (IOC) HDPE G-LENE J43A002 is a non-hazardous thermoplastic polymer supplied as free-flowing granules. It is shipped in 25 kg PP woven bags or jumbo bags, palletized and stretch-wrapped, inside clean, dry containers or trucks. Protect from moisture, direct sunlight, and excessive heat; store in a cool, ventilated area.
    Storage Store Indian Oil (IOC) HDPE G-LENE J43A002 in a cool, dry, well-ventilated warehouse, protected from direct sunlight, rain, and moisture. Keep original bags sealed on pallets, away from heat, ignition sources, and strong oxidizers. Avoid contamination and prolonged UV exposure. Use first-in, first-out rotation and safe stacking. Maintain ambient temperature and good housekeeping.
    Shelf Life Typically 12 months from manufacture when stored unopened in a cool, dry, well-ventilated area, away from direct sunlight and heat.
    Application of Indian Oil (IOC) HDPE G-LENE J43A002

    In ventilated agricultural produce handling, injection-molded crates produced from IOC G-LENE J43A002 are processed on toggle-clamp machines with clamping force calculated at 0.5–0.7 t/cm² of total projected area; a four-cavity tool producing 600 mm × 400 mm × 280 mm stack-nest crates typically runs a 450–600 t clamp. The melt flow rate under ISO 1133-1:2022 is nominally 4.0 g/10 min and density under ISO 1183-1:2019 is 0.954 g/cm³, supporting wall sections of 2.2–3.1 mm without excessive injection pressure. Barrel zone settings are 180 °C, 200 °C, 210 °C, 220 °C; melt temperature is maintained at 200–230 °C; mold temperature is held at 15–35 °C; holding pressure is 40–60 MPa; cooling time is 12–20 s; screw speed is 60–100 rpm; back pressure is 4–8 bar. The formulation for outdoor export crates uses UV stabilizer masterbatch at a let-down ratio of 2–4 wt%, colour masterbatch at 2–3 wt%, and captive regrind not exceeding 20 wt% with virgin resin; higher regrind fractions are not recommended where corner impact strength must remain above threshold. Compliance for EU-bound produce crates is anchored to 94/62/EC heavy-metal limits, total Pb, Cd, Hg and Cr(VI) not exceeding 100 mg/kg, and to REACH Article 33 SVHC disclosure at 0.1 wt% threshold. When the crate contacts unpacked fresh produce, the converter verifies the resin lot against FDA 21 CFR 177.1520 olefin polymer conditions of use and EU 10/2011 overall migration limit of 10 mg/dm² for aqueous and dry food simulants. Post-mold shrinkage measured under ISO 294-4:2018 is 1.8–2.4%, which requires draft angles of 1.5–3° on sidewalls and relief angles of at least 1° on deep ribs to prevent ejection scuffing. Production-line failure modes include gate blush at the central sprue bushing when fill speeds exceed 120 mm/s and short shots near handle bosses when holding pressure drops below 35 MPa during switchover. End products include stack-nest logistics crates, ventilated produce boxes, and fishery totes used in cold-chain distribution.

    Why Does Closure Torque Retention Depend on Post-Mold Interference Verification?

    Closures molded from J43A002 for non-carbonated liquid bottles, pharmaceutical bottles, and agrochemical packs are produced in high-cavitation tools with 24–96 cavities, hot runner valve-gated drops, and unscrewing or stripper-plate ejection. Melt temperature is 200–240 °C; mold temperature is 8–18 °C; cycle time is 5–9 s; injection speed exceeds 150 mm/s; holding pressure is 35–50 MPa. The formulation for closures uses slip/antiblock masterbatch at 1–2 wt% and colour masterbatch at 1–3 wt%; filler or reinforcing additives are not used because they degrade thread dimensional stability and torque retention. Dimensional control of cap minor diameter is maintained within ±0.10 mm, and dome flatness is controlled within ±0.15 mm to avoid seal-ring leakage. Application and removal torque are measured under ASTM D3198-19; converter-specific upper and lower control limits apply since closure design, liner type, and bottle neck finish determine absolute torque values. For pharmaceutical closures, the resin lot is verified against USP <661.1> plastic packaging systems and Ph. Eur. 3.2.2 plastic containers; food-contact and beverage closures are supported by FDA 21 CFR 177.1520 and EU 10/2011 with overall migration not exceeding 10 mg/dm². Gate design uses valve-gate diameters of 0.8–1.2 mm; gate-freeze time should be shorter than holding time to prevent sink on the cap top deck. A production bottleneck observed on high-cavitation systems is inconsistent seal-ring compression when cold-runner edge gates freeze before packing is complete, producing ovality of 0.05–0.10 mm and intermittent leakers. End products include screw closures for edible oil, personal care, pharmaceutical syrup bottles, and agrochemical containers requiring tamper-evident bands.

    A 5-L open-head pail molded from J43A002 for low-viscosity cleaning concentrates and hydrocarbon-based lubricants demonstrates the grade's thick-wall flow-length capability at nominal wall thickness of 2.5–4.0 mm. Processing on 500–800 t injection machines uses melt temperature 190–220 °C, mold temperature 15–35 °C, holding pressure 50–70 MPa, cooling time 20–35 s, screw speed 70–110 rpm, and back pressure 6–12 bar. The formulation for industrial pails includes carbon black or UV masterbatch at 2–4 wt%, colour masterbatch at 2–4 wt%, and antistatic masterbatch at 1–2 wt% where solvent vapour atmospheres require static dissipation; regrind addition is permitted up to 30 wt% only when the finished package continues to pass qualification tests. Dangerous goods compliance for open-head pails is assessed under UN Chapter 6.1.5.4 through drop, stack, and leakproofness tests at packaging group II or III levels; multimodal transport requires conformity with ADR/RID, IMDG Code, and ICAO TI when applicable. Heavy-metal content for the package component is controlled under REACH Annex XVII and RoHS 2011/65/EU for electrical and electronic packaging interfaces. Post-mold wall-thickness variation measured by ultrasonic gauge should not exceed ±0.2 mm across the bottom corner radius; thinning below 2.0 mm at the pail rim is a known cause of stack deformation in UN stack tests. End products include 5–25 L pails for lubricants, paints, printing inks, cleaning concentrates, and light industrial chemicals.

    End sectorStandard designationParameter testedAcceptance or boundary
    Agricultural crates94/62/ECSum of Pb, Cd, Hg, Cr(VI)≤100 mg/kg
    Food contact containersEU 10/2011Overall migration in food simulants≤10 mg/dm²
    Pharmaceutical closuresUSP <661.1>Plastic packaging system suitabilityLot-specific additive and extractables verification
    Industrial pailsUN Chapter 6.1.5.4Drop, stack, leakproofnessNo rupture or leak at packaging group II or III
    ClosuresASTM D3198-19Application and removal torqueConverter-defined upper and lower control limits

    Thin-Wall Dairy Container Fill Speeds, Gate Freeze and Switchover Control

    Thin-wall food containers such as dairy tubs, frozen dessert packs, and portion-control creamers molded from J43A002 require injection velocity above 200 mm/s, fill time below 0.4 s, and velocity-to-pressure switchover at 95–98% of total fill volume. Barrel temperatures are 205–235 °C; mold temperature is 8–18 °C; holding pressure is 30–50 MPa; cycle time is 4–8 s for wall sections of 0.7–1.5 mm. The formulation uses external lubricant masterbatch at 0.5–1.0 wt% to reduce demoulding force and colour masterbatch at 2–4 wt%; calcium carbonate or talc fillers are avoided because they reduce melt elongation and promote pinholes at thin corners. Gate design uses edge or pin gates of 0.8–1.5 mm diameter; gate-freeze time is set shorter than holding time to ensure sufficient packing without overpacking the cavity. Compliance for dairy applications rests on FDA 21 CFR 177.1520 olefin polymer provisions and EU 10/2011 overall migration limit of 10 mg/dm²; converters must also verify that the finished article meets organoleptic testing requirements under EN 1186-1:2002 where fatty food simulants are used. Wrinkle and flash defects occur when melt temperature exceeds 235 °C and mold temperature falls below 8 °C, producing inconsistent cavity filling and parting-line flash. End products include injection-molded dairy tubs, frozen dessert containers, creamer portion packs, and stackable food storage containers.

    When Colour Concentrate Loadings Exceed 5 wt% in Houseware Molding

    Houseware and institutional products molded from J43A002 include buckets, basins, waste bins, storage boxes, and janitorial caddies. The use of high colour concentrate loadings is a known source of unmelted pigment agglomerates, melt-pressure fluctuation, and reduced melt strength; loadings should not exceed 5 wt%, with typical masterbatch addition at 2–5 wt% and antistatic concentrate at 1–2 wt% where dust attraction is a concern. Melt temperature is 180–220 °C; mold temperature is 20–50 °C; holding pressure is 30–50 MPa; cooling time is 10–25 s; screw speed is 50–90 rpm. Post-mold shrinkage is 1.5–2.5% under ISO 294-4:2018, which requires rib thickness not exceeding 60% of adjacent wall thickness to avoid sink marks on appearance surfaces. Compliance for housewares sold into EU markets is anchored to REACH Annex XVII, RoHS 2011/65/EU, and EU 10/2011 for food storage articles; U.S. food-contact storage uses FDA 21 CFR 177.1520. Processing failures observed in production include jetting and surface streaking when masterbatch viscosity is mismatched with the base resin and melt temperature drops below 180 °C; ejector pin marks on stress-concentrated bases are minimized by maintaining pin diameters above 6 mm and draft angles above 1°. End products include household buckets, institutional waste bins, under-bed storage boxes, and cleaning caddies.

    Cold-Storage Dunnage Trays Fail Through Compression Creep Before Impact Cracking Appears

    Injection-molded dunnage trays, divider trays, and pallet top caps based on J43A002 operate in automated high-bay warehousing at temperatures as low as -20 °C. For a shot weight of 3–6 kg, processing uses melt temperature 190–230 °C, mold temperature 20–45 °C, holding pressure 40–60 MPa, cooling time 25–40 s, and overall cycle 45–70 s. Formulation for freezer-rated articles includes carbon black masterbatch at 2–4 wt%, UV stabilizer masterbatch at 2–4 wt%, and regrind content not exceeding 25 wt%; impact modifier addition is generally not required for HDPE dunnage trays when wall thickness is above 4 mm. Stack-load stability and compression behaviour are evaluated under ISO 8611-1:2021 test methods; cold-chain converters commonly specify maximum permanent set of 1.5 mm after 48 h of static loading at -20 °C. Compliance is governed by REACH, RoHS 2011/65/EU, and UN Chapter 6.1.5.4 only when trays are used as outer packaging for dangerous goods in combination packaging. Published data for this specific configuration is limited; load-deflection curves must be generated on production tools because gate position and rib geometry dominate creep response. End products include freezer dunnage trays, slip sheets, divider trays, and pallet top caps used in automated storage and retrieval systems.

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    Certification & Compliance
    More Introduction

    Indian Oil (IOC) HDPE G-LENE J43A002 is a high-density polyethylene injection moulding grade supplied in pellet form by Indian Oil Corporation Limited. The designation positions the material within the G-LENE HDPE portfolio: the J prefix denotes injection moulding, the numeric code 43 correlates with a nominal melt flow index of 4.3 g/10 min at 190 °C under 2.16 kg load, and the A002 suffix identifies the additive package and colour version. Published technical data for the exact suffix composition are limited, and lot-specific certificates of analysis should be consulted for antioxidant and stabiliser content.

    The primary specification anchors are melt flow index measured under ISO 1133-1:2022, density measured under ISO 1183-1:2019, tensile yield stress measured under ISO 527-2:2012, flexural modulus measured under ISO 178:2019, notched Izod impact measured under ISO 180/A:2000, and Vicat softening point measured under ISO 306:2022. The grade is not intended for blow moulding or blown film conversion because those operations require higher melt strength and lower melt flow than this injection moulding formulation provides.

    Property Test Method Typical Value
    Melt flow index at 190 °C, 2.16 kg ISO 1133-1:2022 4.3 g/10 min
    Density at 23 °C ISO 1183-1:2019 0.954 g/cm³
    Tensile yield stress ISO 527-2:2012 26 MPa
    Elongation at break ISO 527-2:2012 >800 %
    Flexural modulus ISO 178:2019 1000 MPa
    Notched Izod impact at 23 °C ISO 180/A:2000 5.5 kJ/m²
    Vicat softening point, A50 ISO 306:2022 124 °C
    Hardness ISO 868:2003 63 Shore D

    What Differentiates G-LENE J43A002 from Low-Flow Blow Moulding and High-Flow Injection Grades?

    The distinction between this grade and conventional blow moulding HDPE is measurable in melt flow index and extensional melt strength. Blow moulding resins designed for large-part extrusion blow moulding typically exhibit melt flow indices between 0.2 and 0.7 g/10 min under 2.16 kg at 190 °C. Those materials sustain parison integrity during open hang times and resist draw-down, but they demand elevated injection pressures and extended cycle times if misapplied in injection tooling. In contrast, G-LENE J43A002 flows at 4.3 g/10 min, enabling shorter fill times, lower clamp tonnage, and improved multi-cavity filling in rigid packaging geometries.

    Conversely, high-flow injection grades with melt flow indices above 6.0 g/10 min may reduce injection pressure further in wall sections below 0.8 mm, but that flow improvement is generally accompanied by reduced notched impact strength and lower environmental stress crack resistance. G-LENE J43A002 occupies the intermediate processing band in which thin-wall capability is subordinate to impact retention, stacking stiffness, and surface finish. Within the Indian Oil G-LENE HDPE range, direct numerical comparisons with adjacent J-series grades are not uniformly published; material substitution should be based on current certificates of analysis and moulded-part validation.

    Production-scale injection moulding of G-LENE J43A002 on hydraulically clamped machines in the 800 to 1500 kN clamp force range is performed with a general-purpose polyolefin screw having an L/D ratio of 20:1 to 24:1 and a compression ratio of 2.0:1 to 2.5:1. The barrel temperature profile from feed throat to nozzle is typically set between 180 °C and 210 °C, with the nozzle held at 210 °C to reduce stringing and drool. Mould temperatures are maintained between 20 °C and 40 °C. Shot volume should not exceed 70 % of barrel capacity to limit residence time, and melt residence time should not exceed 5 min at the recommended melt temperature. Extended hold times above 210 °C may produce discolouration and a shift in melt flow index due to thermo-oxidative chain scission.

    When Surface Moisture and Melt Residence Time Constrain Cycle Stability

    Although HDPE is not inherently hygroscopic, surface condensation on pellets stored at relative humidity above 60 % introduces sufficient water to generate splay, melt pressure fluctuation, and inconsistent shot weights. Pre-drying in a circulating-air hopper dryer at 80 °C for 2 hours is advisable when pellet surface moisture exceeds 0.1 % by weight, measured by thermogravimetric moisture balance. A desiccant dryer is not normally required unless cold pellets have been transferred from sub-zero storage into a warm shop floor, creating condensation on pellet surfaces.

    Incompatible additives should be excluded from the melt stream. Chlorinated paraffins and certain halogenated flame-retardant packages may generate acidic decomposition products that reduce oxidation induction time and corrode screw and barrel surfaces. Organic peroxides used for viscosity breaking should not be introduced above 0.1 % without technical approval, because uncontrolled chain scission can lower impact strength below the published notched Izod value of 5.5 kJ/m². Colour masterbatches and processing aids selected downstream may shift apparent melt flow index by ±0.3 g/10 min and should be qualified with lot-specific testing before final tool approval.

    Mould Cooling, Shrinkage Compensation, and Clamp Tonnage

    For injection tooling design, isotropic mould shrinkage for G-LENE J43A002 is typically 0.018 to 0.025 mm/mm depending on wall thickness, gate proximity, and packing pressure. This shrinkage range is lower than that of many high-density pipe or blow moulding grades in the same density class because the higher melt flow index permits more uniform packing and stress relaxation. Cooling calculations should use a reference no-flow temperature of 130 °C and a specific heat of 2.25 kJ/(kg·K); published pressure-volume-temperature data for this exact grade are limited, so characterisation is recommended for critical dimensional applications.

    Clamp tonnage requirements are approximated by multiplying projected area by 0.35 to 0.45 kN/cm² for open-close moulds. Thin-wall sections below 1.2 mm, long flow lengths, and poorly vented cavity geometries can raise the required clamp force to 0.60 kN/cm². Insufficient clamp force produces flash at parting lines; excessive clamp force may deform deep draw cores and reduce venting efficiency, contributing to gas trapping and short shots.

    Regulatory assessment is controlled by the base olefin polymer status. Food-contact suitability must be verified by the final article manufacturer under IS 10146 for India, 21 CFR 177.1520 for the United States, and Commission Regulation (EU) No 10/2011 as amended for the European Union. Compliance with the RoHS Directive 2011/65/EU as amended by (EU) 2015/863 requires lot-specific testing for lead, cadmium, mercury, hexavalent chromium, polybrominated biphenyls, and polybrominated diphenyl ethers, as well as the four restricted phthalates DIBP, DBP, BBP, and DEHP. The base grade does not contain intentionally added heavy metals, but colour masterbatches and processing aids selected downstream may affect final article compliance. For potable water contact, migration testing under IS 9845 or equivalent should be performed on the finished moulded article at the intended surface-to-volume ratio and contact duration.

    Failure Modes and Operational Boundaries in Rigid Packaging Moulding

    In stacked crate and pail production, the primary failure modes observed are environmental stress cracking near sharp corners, weld-line brittleness at opposing gates, and cycle-related warpage when mould temperature gradients exceed 10 °C. Gate design should avoid opposing flow fronts in load-bearing walls because weld-line strength in semicrystalline HDPE is intrinsically below that of isotropic material. The exact weld-line retention for G-LENE J43A002 must be confirmed on moulded plaques under ISO 527-2:2012; published data for this specific configuration are limited. Multiple hot drops, valve gates, or sequential valve gate control reduce weld-line severity but may increase manifold residence time and require additional thermal stabilisation.

    When regrind is added, the proportion should not exceed 20 % by weight for load-bearing crates, and regrind granule size should be controlled to 6 mm maximum to prevent screw bridging and melt temperature instability. Melt temperature should not exceed 240 °C during purging or start-up. After shutdown, the barrel should be purged with a polyolefin purge compound or virgin HDPE of similar melt flow to prevent cross-contamination from degraded material.

    For applications involving prolonged ultraviolet exposure, a UV-stabilised masterbatch should be selected, and the final article should be tested under ISO 4892-2:2013 for colour change and ISO 527-2:2012 for retained tensile yield after exposure. The base grade does not contain a high level of carbon black and should not be regarded as a long-term outdoor weathering resin without additional stabilisation. For articles in contact with detergents, essential oils, or polar surfactants, environmental stress crack resistance testing under ASTM D1693-15 or ISO 22088-2:2006 is required on the actual wall thickness; published data for J43A002 under concentrated surfactant loading are limited, making finished-part certification necessary.

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