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Indian Oil (IOC) HDPE G-LENE P36A003

    • Product Name: Indian Oil (IOC) HDPE G-LENE P36A003
    • 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 854572
    Polymer Type High Density Polyethylene (HDPE)
    Density 0.936 g/cm³
    Melt Flow Index 0.3 g/10 min (190°C/2.16 kg)
    Tensile Strength At Yield 18-20 MPa
    Elongation At Break >600%
    Flexural Modulus 700-800 MPa
    Vicat Softening Point 115-120°C
    Melting Point 130°C
    Environmental Stress Crack Resistance >1000 h
    Hardness 60 Shore D
    Water Absorption <0.01%
    Thermal Conductivity 0.4 W/m·K
    Coefficient Of Linear Thermal Expansion 1.2×10^-4 /°C
    Dielectric Strength 20 kV/mm
    Volume Resistivity >10^15 Ω·cm
    Minimum Required Strength Mrs 6.3 MPa
    Brittleness Temperature <-70°C
    Oxidative Induction Time >20 min

    As an accredited Indian Oil (IOC) HDPE G-LENE P36A003 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 P36A003 is typically packed in 25 kg polyethylene-lined bags, with 500 kg or 1000 kg jumbo bags available.
    Container Loading (20′ FCL) Indian Oil (IOC) HDPE G-LENE P36A003 loaded in 20′ FCL, 25 kg bags, palletized, shrink-wrapped, secured for export shipment.
    Shipping Indian Oil (IOC) HDPE G-LENE P36A003 is typically shipped as non-hazardous HDPE pellets in 25 kg PP bags or 1 MT jumbo bags, palletized and shrink-wrapped. Transport in clean, dry containers or trucks. Avoid moisture, direct sunlight, and heat. No dangerous goods class required; standard cargo documentation applies.
    Storage Store Indian Oil (IOC) HDPE G-LENE P36A003 indoors in a cool, dry, well-ventilated area, away from direct sunlight, heat, ignition sources, and strong oxidizers. Keep original bags tightly sealed on pallets to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and static buildup. Follow FIFO, use clean handling equipment, and close containers after use.
    Shelf Life Shelf life is 12 months from date of manufacture when stored in dry, ventilated conditions, away from direct sunlight and moisture.
    Application of Indian Oil (IOC) HDPE G-LENE P36A003

    Across multi-cavity injection molding lines producing returnable logistics crates, selection of a medium-flow HDPE grade such as IOC G-LENE P36A003 governs both cycle-time economics and post-mold dimensional stability. The grade designation carries a nominal melt flow index field of 36, which corresponds to an MFI of approximately 3.6 g/10 min under ISO 1133-1:2022 conditions at 190°C and 2.16 kg load, a specification that places the material within the processing window preferred for crates, totes, and logistics containers. Mold cavities in this sector are typically filled through direct sprue gating or hot-runner valve gates with orifice diameters of 4.0 mm to 8.0 mm, positioned to avoid knit-line convergence at load-bearing corner radii. Clamping units in the range of 800 to 2,500 tonnes are commonly specified, derived from a projected cavity area of 2,000 to 6,500 cm² multiplied by a melt pressure envelope of 35 to 60 MPa in the cavity. Melt temperatures are maintained between 200°C and 240°C, while mold temperatures in the range of 15°C to 25°C keep cycle times within 25 to 45 seconds for a 600×400 mm dairy crate geometry. Wall sections in load-bearing areas measure 2.5 mm to 4.0 mm, and rib thicknesses are held to 60% to 70% of the nominal wall to prevent sink marks exceeding 0.05 mm depth on visible surfaces.

    Dimensional tolerance control in this application sector is dominated by shrinkage anisotropy in the mold. HDPE injection grades exhibit total mold shrinkage in the range of 1.5% to 3.0% when measured per ISO 294-4, but differential shrinkage between flow direction and transverse direction is the source of post-mold corner lift and deck warp. Corner lift exceeding 1.0 mm at the crate base plane measured after 48 hours of ambient conditioning is typically rejected for automated palletizing systems, because stack instability propagates across an 8-high stacking configuration. Weld-line formation occurs wherever flow fronts recombine at mold insert pins, handle apertures, and lattice ribs. Tensile strength retention at weld lines for medium-flow HDPE ranges from 70% to 85% of the bulk material value tested per ISO 527-2, and this retention factor declines when fill speeds are reduced below 40 mm/s screw advance. Mold-filling simulation software paired with in-mold pressure transducers is used to verify that cavity pressure at weld-line positions exceeds 25 MPa, the threshold below which visible knit-line separation is observed at the base of vertical ribs.

    Environmental compliance programs in logistics container supply chains increasingly require incorporation of post-consumer recyclate to meet extended producer responsibility obligations. Compounding P36A003 with post-consumer HDPE from closed-loop crate recovery streams alters the property envelope, and the following comparative data set summarizes typical published ranges for medium-flow HDPE injection compounds at varying recyclate addition levels, with the caveat that published data for the specific P36A003 configuration with PCR is limited and supplier certificates of analysis should be referenced for production validation:

    Comparative property ranges for medium-flow HDPE injection grades compounded with post-consumer recyclate at increasing addition levels
    PropertyTest methodVirgin compound typical range25% PCR addition typical range50% PCR addition typical range
    Melt flow indexISO 1133-1:20223.0 to 4.5 g/10 min2.5 to 4.0 g/10 min2.0 to 3.5 g/10 min
    Tensile yield strengthISO 527-224 to 30 MPa22 to 28 MPa20 to 26 MPa
    Flexural modulusASTM D790900 to 1,200 MPa850 to 1,100 MPa800 to 1,050 MPa
    Notched Izod impact at 23°CISO 180/A4.0 to 7.0 kJ/m²4.5 to 8.0 kJ/m²5.0 to 9.0 kJ/m²
    ESCR, Igepal CO-630, Condition BASTM D1693> 50 hours F50> 40 hours F50> 25 hours F50
    Mold shrinkageISO 294-41.5% to 2.5%1.6% to 2.7%1.7% to 2.9%

    Stacking load performance of molded crates is evaluated per ISO 12048 or equivalent internal logistics standards that specify a 28-day compression test at 40°C with load factors representing the combined mass of filled containers in a 6-high to 10-high stack. A dairy crate with a tare weight of 1.8 kg supporting 7 fully loaded crates must sustain a static compressive load of approximately 140 to 180 kg without buckling of corner columns. Creep modulus data generated per ISO 899-2 for HDPE indicates a marked decline above 50°C, which imposes operational limits on sterilization tunnels where crates are washed at 65°C to 85°C. Exposure to sodium hydroxide cleaning baths at 1% to 2% concentration, commonly used in crate-washing lines, does not materially degrade tensile properties in short-term immersion testing per ISO 175, but repeated thermal-alkaline cycling accelerates oxidative degradation unless stabilization packages containing hindered amine light stabilizers and phenolic antioxidants are present at addition levels of 0.1 to 0.3 wt%.

    Does Closure Torque Retention Depend on Melt Flow Index or Molecular Weight Distribution?

    The closure molding sector imposes contradictory demands that cannot be resolved by melt flow index alone. Carbonated soft drink caps, still water closures, and dairy container lids require high-speed cavity filling on 48-cavity to 96-cavity tooling with cycle times compressed to 4 to 8 seconds, which favors higher MFI grades in the range of 2.5 to 5.0 g/10 min under ASTM D1238 conditions at 190°C/2.16 kg. The P36A003 designation, with its nominal 3.6 g/10 min MFI, sits within this processing window. However, closure manufacturers routinely specify molecular weight distribution parameters because torque retention after aging correlates more strongly with z-average molecular weight and comonomer distribution than with MFI alone. Application torque is applied at capping speeds of 200 to 600 rpm on continuous rotary cappers, and removal torque measured per ASTM D3198 for a 28 mm PCO neck finish must remain within 0.6 to 1.8 N·m over a 24-month shelf life under ambient warehouse conditions. Creep under capping load is quantified per ASTM D2990, with acceptable creep modulus retention at 1,000 hours exceeding 60% of the initial value at 23°C.

    Thread geometry integrity in injection-molded closures is sensitive to mold temperature. Mold temperatures are maintained at 10°C to 20°C to prevent thread tip distortion during ejection on unscrewing cores, and ejection forces are minimized through draft angles of 1.0° to 1.5° on the bore surface and 2.0° to 3.0° on the outer wall. Environmental stress cracking resistance is the dominant long-term failure mode in closures exposed to surfactant-bearing contents, and testing per ASTM D1693 Condition B using 10% Igepal CO-630 solution at 50°C is specified with an F50 failure time exceeding 30 hours for virgin material and 20 hours for compounds containing 15% post-industrial regrind. Organoleptic barrier requirements in the dairy and water sectors require compliance with FDA 21 CFR 177.1520 for olefin polymers and EU Regulation (EU) No 10/2011 with overall migration limits of 10 mg/dm² when tested per EN 1186-1 using food simulants specified in Annex III of the regulation. Published data for P36A003 organoleptic performance is limited, and closure converters must obtain supplier certificates for each production lot to confirm compliance under the specific filling line conditions, because residual catalyst content above 5 ppm titanium equivalent can affect taste and odor in low-odor packaging segments.

    Liner integration presents a secondary processing constraint in closure manufacture. Induction-sealed liners composed of PE/EVA foam laminates are inserted in-mold or post-mold, and the sealing groove must be molded flat within 0.10 mm total indicated runout to ensure uniform induction heating. Slit-die capillary rheometry is performed on incoming resin lots to verify consistent shear viscosity at shear rates between 100 s⁻¹ and 1,000 s⁻¹, because lot-to-lot viscosity variations exceeding ±8% at the processing shear rate produce measurable cavity pressure fluctuations above 5 MPa and corresponding weight variability outside ±0.15 g on a 2.5 g closure. Hot runner systems with internally heated probes are preferred over externally heated manifolds in this sector to minimize residence time below 5 minutes and prevent chain-scission-induced viscosity drift during production interruptions lasting longer than 15 minutes.

    Thin-wall food packaging compounds require flow length-to-wall thickness ratios exceeding 180:1 when filling multi-cavity tubs and deli containers with nominal wall thicknesses from 0.5 mm to 1.2 mm. The P36A003 nominal MFI of 3.6 g/10 min is at the lower boundary for ultra-thin-wall margarine tubs where an MFI of 5.0 to 8.0 g/10 min is more typical, but the grade remains processable in thin-wall container formats with wall thicknesses above 0.9 mm when injection speeds are increased to 150 to 400 mm/s screw advance rates. Fill time for a 300 mm flow path at 1.0 mm wall thickness is compressed to 0.3 to 0.8 seconds to prevent premature freeze-off of the flow front. Cavity filling pressure reaches 60 to 120 MPa, and clamp force requirements on 16-cavity to 64-cavity stack molds fall within 150 to 500 tonnes. Mold temperature is maintained at 10°C to 20°C, because elevated mold temperatures slow crystallization kinetics and extend cycle time without measurable improvement in impact strength for HDPE homopolymer grades.

    Post-mold warpage in thin-wall containers arises from through-thickness variation in cooling rate and residual stress distribution. Containers molded at wall thicknesses below 1.0 mm exhibit out-of-plane rim deviation when residual stress exceeds 3 MPa in the hoop direction, measured by layer-removal technique or thermal stress relaxation testing. Stiffening ribs on the container base must not exceed 40% of nominal wall thickness to avoid sink marks visible through labeling film. In-mold labeling with polypropylene label film is compatible with HDPE substrate when the label film has been corona-treated to a surface energy exceeding 38 dynes/cm, and the label must withstand the 200°C to 240°C melt temperature without blistering. Regarding food contact compliance, the following matrix summarizes the applicable regulatory framework for HDPE thin-wall containers sold into European and North American markets:

    Regulatory compliance checklist for HDPE thin-wall food contact packaging
    JurisdictionRegulation or standardTest designationCompliance threshold
    United StatesOlefin polymers for food contactFDA 21 CFR 177.1520Conformity with specified density, extractable fraction, and end-use limitations
    European UnionPlastic materials in food contactEU Regulation (EU) No 10/2011 with EN 1186 series migration testingOverall migration limit of 10 mg/dm²
    European UnionSpecific migration of heavy metalsEN 1186-1, EN 13130 seriesIndividual metal limits per Annex II of (EU) No 10/2011
    CanadaPolymers for food packagingHealth Canada Division 23 of the Food and Drugs ActNo objection letter with migration limits equivalent to US FDA 177.1520
    GlobalGood manufacturing practice for food contact materialsISO 22000 prerequisite programsDocumented traceability from resin lot to finished container

    Drop impact performance of thin-wall HDPE containers is measured per ASTM D5276 as the 50% failure height from a 1.0 m reference drop onto a steel plate. Containers with wall thickness below 0.8 mm exhibit brittle fracture at -5°C to -10°C when subjected to impact velocities above 4.4 m/s corresponding to a 1.0 m drop. This limitation constrains the use of P36A003 in frozen-food thin-wall formats where low-temperature impact requirements below -20°C are specified, and converters in that segment typically switch to lower-density polyethylene grades or impact-modified polypropylene. The operational boundary for thin-wall applications using P36A003 is therefore defined by a minimum service temperature of approximately -10°C under impact loading and a minimum wall thickness of 0.9 mm for structural integrity.

    When Replacing ABS in Household Articles with a Lower-Cost Polyolefin

    The substitution calculus in household injection molding weighs tooling compatibility, warpage tolerance, and per-unit cost against the mechanical properties of incumbent styrenic resins. HDPE G-LENE P36A003 is a candidate where stiffness and surface hardness requirements allow a modulus shortfall of 40% to 60% relative to medium-impact ABS, measured per ISO 178 flexural modulus testing. A standard 10 L bucket molded from P36A003 at a wall thickness of 2.0 mm to 2.5 mm weighs approximately 250 to 350 g, depending on handle lug geometry and rim reinforcement. Mold temperature in household article production is held between 15°C and 30°C, with the upper bound reserved for high-gloss cosmetic surfaces where mold surface replication improves measurably above 25°C due to delayed crystallization at the polymer-mold interface. Notched Izod impact resistance per ISO 180/A at 23°C falls in the range of 4.0 to 7.0 kJ/m² for medium-flow HDPE, but at -20°C this value declines to 2.0 to 3.5 kJ/m², which is the critical design boundary for outdoor household articles such as laundry baskets left on unheated balconies during winter months.

    Vicat softening temperature testing per ISO 306 method A50 at 10 N load and 50°C/h ramp yields values of 118°C to 128°C for HDPE homopolymer injection grades, a thermal stability characteristic that permits hot water filling up to 80°C without permanent deformation in buckets and washbasins. Masterbatch color addition in the range of 2.0 to 5.0 wt% is standard for household articles, but carbon black loadings exceeding 2.5 wt% reduce tensile yield strength by 5% to 10% and must be compensated through increased wall thickness or rib reinforcement. In-mold labeling is widely used for decorated household articles, with polypropylene label films heat-sealed to the HDPE substrate during mold filling; adhesive-free fusion is achieved only when the label's PP surface layer melts at a temperature within the 160°C to 180°C range, which is compatible with the P36A003 melt stream entering the cavity at 200°C to 240°C. Handle attachment in bucket molding incorporates molded-in lugs with through-holes for galvanized steel wire handles of 3.0 mm to 4.0 mm diameter, and the lug root fillet radius must exceed 2.0 mm to prevent notch-initiated cracking under a 15 kg lifting load tested per 10,000 cycles in accelerated service simulation.

    Pallet molding operations running solid, low-pressure structural foam, or gas-assisted equipment on clamping units of 1,500 to 3,500 tonnes represent the largest tonnage downstream segment for medium-flow HDPE. Shot sizes for standard 1,200×1,000 mm pallets range from 15 to 40 kg depending on deck thickness and rib architecture, with solid molded pallets consuming 18 to 25 kg of resin per unit at a top deck thickness of 4.0 to 6.0 mm and bottom deck thickness of 3.0 to 4.0 mm. Structural foam pallets using chemical blowing agents at addition levels of 0.5 to 1.5 wt% (sodium bicarbonate or azodicarbonamide-based systems) reduce part weight by 10% to 20% while maintaining top deck rigidity, but the foaming reaction generates a viscosity reduction window that requires precise shot size control within ±1.5% of the nominal shot weight. Cycle times for solid-molded pallets fall in the range of 45 to 90 seconds, whereas structural foam pallets extend to 90 to 180 seconds due to cooling time required for foam stabilization.

    Rib design in pallet molding is governed by the ratio of rib thickness to nominal wall thickness. At rib-to-wall ratios above 0.7, sink marks on the top deck surface become visibly detectable and interference with pallet jack wheel entry occurs at deck flatness deviations exceeding 2.0 mm across a 300 mm span. Gas-assisted injection molding creates hollow rib sections with effective wall thicknesses of 4.0 to 6.0 mm around a continuous gas channel, and this technique requires nitrogen gas injection at pressures of 10 to 30 MPa with secondary gas penetration phase timing controlled to ±0.5 seconds. Load rating certification for pallets is governed by ISO 8611, which specifies racking load tests, fork tine tests, and unit-load stacking. A typical HDPE pallet must demonstrate a permissible static racking load of 800 to 1,200 kg and a dynamic pallet jack load of 1,000 to 1,500 kg at 23°C, but these rated values decline by 20% to 30% when tested at 40°C due to creep modulus reduction in polyethylene.

    Dimensional stability after demolding is the dominant process failure mode in pallet production. Total mold shrinkage for pallet-grade HDPE compounds ranges from 1.8% to 3.2% measured per ISO 294-4, and the long flow paths inherent in pallet tooling (800 to 1,500 mm) create flow-direction shrinkage anisotropy that causes bowing of the top deck. Cooling jigs or forced-air cooling stations at 20°C to 25°C for 10 to 20 minutes post-demolding are used to hold pallet flatness within ±4.0 mm across the diagonal. UV stabilization for outdoor pallet storage follows the same additive chemistry as crate manufacturing, with HALS-based packages at 0.2 to 0.4 wt% and carbon black at 2.0 to 3.0 wt% for black pallets; accelerated weathering per ISO 4892-2 with 1,000 hours xenon-arc exposure demonstrates a tensile strength retention above 80% when these additive loadings are employed. Published weathering data for P36A003 in pallet configurations is limited, and outdoor converters should verify performance through standardized weathering protocols before committing to multi-year pallet warranty terms.

    Automotive non-appearance parts manufactured from medium-flow HDPE occupy the cabin, under-hood, and under-body domains where chemical resistance outweighs surface finish requirements. Windshield washer fluid reservoirs are a representative application: the part is blow-molded from parisons extruded from the same resin family, or injection-molded in two halves and hot-plate welded, with wall sections of 2.0 mm to 3.5 mm and a total capacity of 3.0 L to 6.0 L. Chemical compatibility of HDPE with washer fluid is governed by ISO 175 immersion testing in 50:50 methanol-water solutions at 60°C for 120 hours, with mass change specified not to exceed 1.0% and tensile strength retention above 75%. The crystallinity content of HDPE, typically 60% to 75% as measured by differential scanning calorimetry per ISO 11357-3, provides the barrier function that prevents permeation losses exceeding 0.5 g/month in sealed reservoir testing. Low-temperature impact resistance is tested per ISO 180/A at -30°C, and notched Izod values above 2.0 kJ/m² are required to pass OEM-specific storage impact testing at cold-soak conditions.

    Air filter housings and air intake ducts represent a second automotive sub-sector where HDPE competes with glass-reinforced polypropylene. The dimensional tolerance regime is tighter than in logistics applications: boss-to-boss hole patterns on filter housings must maintain ±0.5 mm over a 400 mm span to ensure bolt-hole alignment with stamped steel brackets. Post-mold shrinkage in this application is controlled through mold temperatures of 30°C to 50°C — higher than in packaging segments — to promote crystallization before ejection and minimize post-mold contraction in service. Calibration of dimensional capability on production runs follows IATF 16949 statistical process control requirements with Cpk indices exceeding 1.33 for critical characteristics. Chemical resistance to common automotive fluids is verified by immersion testing in engine oil at 125°C for 168 hours, brake fluid at 23°C for 72 hours, and battery acid (37% sulfuric acid) at 23°C for 168 hours, with mass change limits below 2.0% for oil and below 30% for battery acid immersion per the relevant OEM material specification. Published data specific to P36A003 in automotive media immersion is limited, and tier suppliers should qualify the grade through the relevant OEM approval workflow rather than relying on generic HDPE chemical resistance tables.

    Industrial Pail Wall Distribution and UN Drop-Test Certification Pathways

    Injection-molded pails in the 5 L to 25 L capacity band are produced on high-cavitation tooling with accumulator-assisted hydraulics to maintain uniform cavity pressure at the extreme flow-length-to-thickness ratios inherent to deep-draw cylindrical geometries. A 20 L pail with a nominal wall thickness of 2.0 mm to 3.0 mm and a height of 320 mm presents a flow path length exceeding 600 mm from gate to rim, and the wall thickness distribution around the circumference must be maintained within ±0.15 mm to prevent thin-spot failures during drop testing. Core-cooling channels are bored to follow the cylindrical contour at a standoff distance of 15 mm to 20 mm from the molding surface, with coolant flow velocities of 2.0 to 4.0 m/s in the turbulent regime (Reynolds number exceeding 4,000) to maintain heat flux uniformity. Melt temperature is set at 210°C to 240°C, and the mold temperature is split-cooled — 15°C to 20°C on the core to control cycle time, and 25°C to 35°C on the cavity side to improve surface finish on the exterior wall.

    The regulatory pathway for pails and drums intended for dangerous goods transport is defined by the UN Model Regulations, Chapter 6.1. Packaging performance certification requires a drop test at 1.8 m height for packing group II (substances with a relative density above 1.2) and 1.2 m for packing group III (relative density ≤ 1.2), performed after conditioning the design-type sample at -18°C for 24 hours for polyethylene containers. The pail must be filled to 98% of brimful capacity with water containing 1 wt% surfactant (non-ionic wetting agent) for cold-conditioned drop testing, and after impact the pail must not leak or separate at the lid interface. Stacking stability for UN-certified pails requires a 28-day test at 40°C with a superimposed load equivalent to the combined mass of identical packages stacked to a height of 3.0 m, calculated per the formula specified in Chapter 6.1.5.5 of the UN Model Regulations. Leakproofness testing per ISO 16104 is conducted at 30 kPa internal air pressure with the closure secured, and no bubbles may be detected when the pail is submerged in water.

    Stress cracking resistance is the limiting performance parameter in pail applications where contents include surfactant formulations, industrial cleaning agents, or detergent slurries. ESCR testing per ASTM D1693 Condition B with 10% Igepal CO-630 aged at 50°C is specified with an F50 failure time exceeding 50 hours for virgin P36A003-based compounds, and this requirement escalates to 100 hours when the pail is designated for agricultural chemical packaging under FAO/WHO specification guidelines for pesticide containers. The stress concentration at handle attachment lugs is the critical initiation site: lug fillet radii below 1.5 mm generate notch amplification factors above 2.0, reducing the effective ESCR service life by an order of magnitude. Mold-filling simulation with pressure-gradient analysis at the lug region must demonstrate a local cavity pressure above 35 MPa to guarantee sufficient packing and eliminate micro-void formation that accelerates crack initiation under service load. Published ESCR data for P36A003 in UN-certified pail configurations is limited, and container manufacturers must verify performance on production-intent tooling with actual filling chemistry rather than relying solely on laboratory Igepal screening tests, because the correlation between laboratory F50 values and field performance in detergent service is non-linear below 75 hours F50.

    Lid sealing performance in pail applications depends on dimensional control of the rim sealing surface and the mating closure profile. The rim sealing surface must maintain no more than 0.4 mm total out-of-roundness on a 320 mm diameter pail opening, and the sealing lip must be flash-free to prevent capillary leakage paths. Tamper-evident rings are integrally molded and must fracture at a consistent tear force of 40 to 80 N when tested per the pail manufacturer's internal specification, with no partial ring retention that would compromise the evidence of opening. Injection pressure profiling during pail molding requires a three-stage profile: initial filling at 80 to 120 MPa, packing at 40 to 60 MPa maintained for 4 to 6 seconds, and a controlled decompression ramp to prevent post-filling screw advance oscillations that cause rim thickness variation. Weight consistency in pail production is monitored through in-line checkweighing with tolerance limits of ±1.0% of nominal shot weight, corresponding to approximately ±10 g on a 1,000 g pail body.

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    Certification & Compliance
    More Introduction

    Indian Oil (IOC) HDPE G-LENE P36A003 is an injection-molding grade of high-density polyethylene with a nominal melt mass-flow rate of 36 g/10 min at 190 °C under a 2.16 kg piston load, measured in accordance with ISO 1133-1. The nominal density is 0.960 g/cm³ when tested under ISO 1183-1. The product is supplied as pelletized feedstock for thin-wall and multi-cavity injection molding, where high-shear cavity-filling behavior under injection pressure above 60 MPa governs process capability more directly than low-shear MFR. The grade is used in short-cycle applications requiring dimensional stability after demolding, including caps, closures, thin-wall housewares, and industrial pails. Published data for long-term environmental stress-crack resistance under ASTM D1693 in this specific grade is limited; parts exposed to aggressive surface-active liquids require molding trials at service temperature and strain.

    Because the high MFR is achieved through a controlled molar mass distribution, the trade-off includes reduced chain-entanglement density when compared with bimodal HDPE pipe grades. As a result, notched impact and stress-crack resistance fall below the values expected in low-MFR blow-molding or pipe grades. This does not imply a manufacturing defect; it establishes a design boundary for part geometry and chemical service.

    What Are the Most Relevant Specification Limits for Injection Molders?

    Machine-side acceptance typically focuses on the following measured properties. Melt mass-flow rate controls the ability to fill thin sections without excessive injection pressure. Density affects part weight, shrinkage, and sink-mark tendency. Flexural modulus determines short-term load-bearing capacity under ISO 178. Notched impact strength under ISO 180/A indicates crack-initiation resistance at gate vestiges and weld lines. Vicat softening temperature under ISO 306/A50 provides a comparative value for short-term thermal resistance under contact heating.

    Typical values reported for the grade under laboratory injection-molded specimen preparation are summarized below. These values are engineering references and do not replace batch-specific certificates of analysis.

    PropertyTest methodTypical value
    Melt mass-flow rate (190 °C/2.16 kg)ISO 1133-136 g/10 min
    DensityISO 1183-10.960 g/cm³
    Tensile stress at yieldISO 527-227 MPa
    Elongation at breakISO 527-2>50%
    Flexural modulusISO 1781400 MPa
    Notched Izod impact at 23 °CISO 180/A4.0 kJ/m²
    Vicat softening temperatureISO 306/A50126 °C
    HardnessISO 86866 Shore D

    The Vicat softening temperature of 126 °C is a short-term thermal resistance value. It does not define a continuous-use temperature limit, which for unstressed HDPE articles is commonly below 65 °C and is further reduced under load.

    Under capillary rheometry per ISO 11443, high-MFR HDPE exhibits shear-thinning but lower zero-shear viscosity than lower-MFR grades. In a production-scale mold with short gates, shear rates in the gate can exceed 10,000 s−1. At such shear rates, the viscosity difference between a 36 g/10 min grade and a 20 g/10 min grade narrows; therefore, part design and gate dimensions can matter more than MFR alone. Processors should not use MFR as the sole predictor of fill pressure. Flow-length and wall-thickness limits should be confirmed through short-shot studies on the target tool rather than calculated only from melt-flow index.

    On a production-scale injection molding machine equipped with a general-purpose polyolefin screw of 20:1 L/D and compression ratio between 2.5:1 and 3.5:1, the grade is processed within a melt temperature band of 190 °C to 230 °C. Mold temperature from 10 °C to 40 °C is maintained for rapid solidification. Back pressure above 0.5 MPa is generally avoided to limit shear heating and screw-recovery variation. Because high MFR reduces melt viscosity, injection pressure requirements are typically lower than those for HDPE grades in the 4–12 g/10 min MFR class. Smaller screw diameter or poor non-return-valve sealing will produce shot-to-shot variation that is independent of melt flow class; process capability studies on the specific press are required before serial production.

    Melt Temperature, Screw Geometry, and Cycle-Time Constraints

    Because the melt temperature range is bounded at the lower end by freeze-off at the gate and at the upper end by oxidation, discoloration, and odor, the processing window requires monitoring of residence time and screw speed. In machines with screw diameter greater than 45 mm and cycle time below 10 s, recovery time should be measured against shot weight; a high-flow HDPE can reach shot-weight recovery quickly but may produce unmelted or non-homogeneous material if the screw is too shallow or the feed throat is misaligned. Screw-speed settings above 150 min⁻¹ may create shear heating, especially when combined with excessive back pressure.

    If pellets have been exposed to relative humidity above 60% for more than 24 h, surface moisture can produce splay and internal voids. Pre-drying in a desiccant hopper dryer at 75 °C to 80 °C for 2 h is recommended. HDPE does not require hydrolysis-resistant drying; the target is surface-moisture removal rather than pellet-core moisture reduction.

    Specimen preparation should follow ISO 294-1; tensile specimens type 1A under ISO 527-2; flexural modulus at 2 mm/min test speed under ISO 178; notched Izod type A under ISO 180/A; density by displacement or density-gradient column under ISO 1183-1. These preparation conditions reduce, but do not eliminate, the influence of mold cooling on crystallinity and shrinkage.

    HDPE with density 0.960 g/cm³ has a higher crystalline fraction than low-density polyethylene, producing linear mold shrinkage in the range of 1.5% to 3.0%, with flow-direction anisotropy influenced by gate location and holding pressure. Lower mold temperatures accelerate solidification but may reduce surface gloss and increase internal stress. Differential cooling and optimal packing reduce warpage; adding nucleating agents or pigments can increase shrinkage and produce sink marks in thick sections.

    Regrind addition up to 20% by weight is commonly practiced in non-food applications, but melt-flow shift and color consistency must be monitored. Repeated regrind cycles increase oxidative degradation and may reduce notched impact and ESCR. A practical maximum of 3 regrind cycles is often used, but published data for P36A003 in multi-cycle regrind service is limited. Food-contact regrind use must comply with regional recycled-content and migration rules.

    Storage in sealed, moisture-barrier bags is recommended. Open bags should be consumed within 48 h under high humidity and kept in hoppers with desiccant dryers when ambient dew point exceeds 15 °C. Pellet fines generated during conveying should be minimized; fines can cause inconsistent feeding and voids.

    For thin-wall multicavity molds, valve-gated hot-runner systems reduce gate-vestige problems, but valve pin velocity must not induce shear heating. Edge gates and submarine gates can freeze quickly because the melt is low-viscosity; gate land length should be as short as allowed by mold steel strength. Gate diameter below 0.6 mm may create jetting and high shear, especially with filled or colored versions.

    When Thin-Wall Applications Push Standard HDPE Beyond Its Flow Limits

    Standard HDPE injection grades with MFR between 4 g/10 min and 12 g/10 min are common in crates, pallets, and heavy-wall industrial parts. When nominal wall thickness drops below 1.5 mm and flow-length/wall-thickness ratio exceeds 250:1, such grades often require elevated melt temperature and high holding pressure, which can produce warpage, sink marks, or core shift. P36A003 is formulated to shift the practical lower wall-thickness boundary downward, but this is achieved through reduced melt strength and lower environmental stress-crack resistance. The grade is therefore not a direct substitute for lower-MFR HDPE in parts with aggressive chemical exposure or high sustained load.

    Blow-molding HDPE grades in the same brand line are specified at MFR below 1.0 g/10 min; using P36A003 in extrusion blow molding would produce severe parison sag and loss of wall-thickness control. Conversely, injection molding with blow-molding grades would require higher pressure and may cause gate blush. Film grades with MFR below 1.5 g/10 min also have high melt strength; P36A003 is unsuitable for blown-film bubble stability because of its low melt strength and low draw resonance resistance. Compared with polypropylene homopolymer injection grades, HDPE P36A003 generally shows lower flexural modulus and better low-temperature ductility, but material selection must be based on datasets generated under ISO 527-2 and ISO 180/A at the actual service temperature.

    In multi-cavity closure tools with hot-runner gate diameters between 0.8 mm and 1.2 mm, gate freeze-off is controlled primarily by mold cooling. If cooling-water temperature is maintained at 10 °C and turbulent flow reaches 2.5 m/s in drilled channels, cycle-time constraints are usually governed by part ejection stiffness rather than fill time. Published data for P36A003 in this exact tooling configuration is limited; tooling trials should map ejection temperature against part wall temperature and crystallinity-induced shrinkage.

    In electric injection molding machines, closed-loop velocity control allows fill times from 0.2 s to 0.8 s for thin-wall parts; hydraulic machines with slower servo response can produce short shots if switch-over position is too early. The material’s rapid freezing requires a fast velocity profile and precise switch-over to holding pressure. If switch-over is late, high packing pressure may create flash because the melt viscosity is low. Tool maintenance is critical because even 0.05 mm parting-line clearance can fill at lower pressure with high-MFR HDPE than with a 12 g/10 min grade.

    For flow simulation of thin-wall components, viscosity models should be fitted to capillary rheometry data rather than using only MFR. Pressure-dependent viscosity and thermal conductivity affect short-shot predictions in long-flow paths. Simulation with density 0.960 g/cm³ and crystallinity-dependent shrinkage should be calibrated against short-shot and pressure-drop studies on the intended tool.

    The material resists aqueous acids, alkalis, and many polar solvents at ambient temperature. In non-polar hydrocarbons, chlorinated solvents, and surface-active agents, stress-crack initiation can occur at high strain. Swelling in mineral oil or toluene can reduce dimensions and tensile strength; specific immersion testing must follow ISO 175 or ASTM D543. Published data for P36A003 under specific chemical exposure is limited; actual chemical-service claims require part-level testing.

    Applications are concentrated in thin-wall food containers, dairy tubs, overcaps, personal-care caps, appliance housings, and structural pails. Closure applications require retention after prolonged storage; HDPE provides low water vapor transmission, but odor and taint migration must be evaluated with the specific colorant and additive package. The grade is also used as a high-flow blending component with lower-MFR HDPE to adjust flow and impact balance; this is a converter-specific formulation and is not a direct recommendation from the resin producer.

    Regulatory Boundaries Are Conditional on Finished-Article Migration Testing

    Food-contact suitability under Indian and EU jurisdictions depends on additive composition, colorants, and overall migration testing. HDPE base polymers can be evaluated under FDA 21 CFR 177.1520 for olefin polymers and IS 10141 for positive-list compliance, provided the final article meets overall migration limits under EU Regulation (EU) No 10/2011. The grade may be used to manufacture repeated-use food-contact articles only if migration testing on the finished article is performed. For medical or pharmaceutical packaging, ISO 10993-1 and USP <87>/<88> evaluations are additional; no automatic certification should be assumed from the resin producer.

    REACH compliance requires that all monomers and additives are registered. RoHS recast Directive 2011/65/EU restricts lead, mercury, cadmium, hexavalent chromium, PBBs, and PBDEs; typical HDPE grades do not contain these substances, but certification must be obtained from the resin producer for each lot or product family. The grade may not be automatically suitable for direct food contact in all jurisdictions because the burden of compliance falls on the finished-article manufacturer.

    Under sustained load, high-MFR HDPE grades generally show lower environmental stress-crack resistance than low-MFR counterparts. Failures observed in high-flow HDPE injection molding include sink marks over thick ribs, weld-line cracking in multi-gated parts, and gate blush from excessively high melt temperature. Reducing mold temperature or injection speed may improve surface appearance but can increase internal stress. First-stage injection speed should be characterized through ISO 294-1 specimen preparation and then confirmed on the production tool. No representation is made for continuous exposure to strong oxidizing acids, aromatic solvents, or high-energy radiation without specific aging studies.

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