| HS Code | 935443 |
| Density | 0.945 g/cm³ |
| Melt Flow Index 190 C 2 16 Kg | 0.30 g/10 min |
| Tensile Strength At Yield | 24 MPa |
| Tensile Strength At Break | 30 MPa |
| Elongation At Break | >600% |
| Flexural Modulus | 1000 MPa |
| Izod Impact Strength Notched 23 C | 250 J/m |
| Vicat Softening Point | 124°C |
| Heat Deflection Temperature 0 45 Mpa | 75°C |
| Environmental Stress Crack Resistance F50 10 Igepal | >1000 h |
| Hardness Shore D | 60 |
| Water Absorption | <0.01% |
| Dielectric Constant 1 Mhz | 2.3 |
| Volume Resistivity | >10^16 ohm·cm |
| Dielectric Strength | 20 kV/mm |
| Thermal Conductivity | 0.38 W/m·K |
As an accredited Indian Oil (IOC) HDPE G-LENE E45A003 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Indian Oil (IOC) HDPE G-LENE E45A003 is supplied in 25 kg woven polypropylene bags, palletized for bulk industrial shipment. |
| Container Loading (20′ FCL) | 20′ FCL container loading: IOC HDPE G-LENE E45A003 in 25 kg bags, palletized, stretch-wrapped, securely stowed for safe ocean transport. |
| Shipping | Indian Oil (IOC) HDPE G-LENE E45A003 is a non-hazardous high-density polyethylene resin, typically shipped in 25 kg PP bags or jumbo bags on pallets. Transport in clean, dry trucks/containers, away from moisture, heat, and sunlight. No special dangerous-goods documentation required; store sealed at ambient temperature. |
| Storage | Store Indian Oil (IOC) HDPE G-LENE E45A003 in a cool, dry, well-ventilated warehouse at ambient temperature. Keep original bags sealed and palletized, off the floor, away from direct sunlight, moisture, heat, flames, ignition sources, and incompatible chemicals. Avoid prolonged UV exposure and excessive stacking. Use first-in, first-out rotation and maintain clean, dust-free handling areas. Inspect packaging for damage before storage. |
| Shelf Life | Typically 12 months from date of manufacture when stored in unopened bags, cool, dry, away from direct sunlight and contaminants. |
Continuous-feed extrusion blow moulding of Indian Oil (IOC) HDPE G-LENE E45A003 into 20–30 L UN-certified jerrycan bodies is specified only after a parallel evaluation of bottle weight, pinch-off integrity, and drop impact retention on a shuttle blow moulder equipped with an 80 mm screw of 24:1 L/D and a 2.5 kg accumulator head. The resin is characterised by a nominal melt flow index of 0.45 g/10 min at 190 °C/2.16 kg to ISO 1133-1:2022 and nominal density of 0.945 g/cm³ to ISO 1183-1:2019, which allows the parison to resist sag during the 8–10 s extrusion phase. Industry compliance for this packaging class is derived from UN Model Regulations Chapter 6.1, ADR Part 6.1, and IMDG Code for 3H1/3H2 packagings, while food-contact variants are qualified under FDA 21 CFR 177.1520 and Commission Regulation (EU) No 10/2011. Formulation addition ratios during commercial trials are maintained at 100 phr E45A003, 20–30 phr clean in-house regrind, 1.5–3.0 phr UV stabilizer masterbatch, and 0.5–2.0 phr carbon black or colour masterbatch depending on brand-owner opacity requirements. The downstream production sequence consists of screw plasticising at a melt temperature of 180–210 °C, accumulator filling, tooling with a die gap of 1.0–2.0 mm, servo-hydraulic parison programming over 64 axial points, mould closing at 150–300 kN clamp force, and internal blow air at 0.6–0.8 MPa. Terminal product types include stackable 20 L, 25 L, and 30 L jerrycans with 45 mm or 51 mm neck finishes for lubricant, agrochemical, and food commodity export markets. Field data from shuttle blow moulding lines indicate that when clean regrind exceeds 30 phr, bottom pinch-off thickness falls below 1.0 mm and ASTM D1693-15 Condition B environmental stress crack resistance drops below 200 h; this failure mode is most visible as microcrack formation at the pinch-off weld after 1.2 m drop testing at -18 °C, requiring regrind levels to be reduced or parison programming to be shifted toward the bottom closure.
Chemically resistant 60–210 L tight-head drums are converted from E45A003 on accumulator blow moulding platforms with 15–40 L head capacity, where the dominant process conflict is the simultaneous requirement for sufficient parison wall thickness in the top chimb area and rapid cooling at the bottom pinch-off. Compliance for hazardous chemical transport requires qualification as UN 1H1 drums under UN Model Regulations Chapter 6.1, ADR Part 6.1, and IMDG Code, with drop testing according to 6.1.5.3 at 1.8 m for Packing Group I or 1.2 m for Packing Group II depending on product relative density, and hydrostatic pressure testing according to 6.1.5.6. The compound ratio is established at 100 phr E45A003, 15–25 phr closed-loop regrind from trimmed pinch-off flash, 1.5–2.5 phr carbon black masterbatch, 0.05–0.15 phr hindered phenolic antioxidant, and 0.5–1.0 phr polyethylene wax as external lubricant to reduce melt fracture at the diverging die lips. Production takes place at melt temperatures of 180–210 °C, with mould cooling at 10–25 °C, blow air pressure of 0.5–0.7 MPa, and clamp force between 1,200 kN and 2,500 kN; internal cooling posts or compressed air pulsation are used to reduce cycle time from 90 s for 60 L drums to 180 s for 210 L drums. Terminal product types include open-head and tight-head drums in 60 L, 120 L, and 210 L formats for solvent, corrosive, and polymer intermediate distribution, with optional fluorination or sulfonation surface treatment for permeation control. Field experience on accumulator lines shows that bottom weld line cracking under 1.8 m drop testing is the most frequent qualification failure when reclaim resin contains residual oil contamination or when the mould temperature exceeds 25 °C because the pinch-off weld remains above 60 °C at demoulding; the corrective action is to limit regrind to ≤25 phr, increase cooling time by 15–20 s, and select a narrower die gap near 2.0 mm to shift wall thickness away from the flash pocket.
Low-temperature burst retention in blow moulded diesel exhaust fluid (DEF) reservoirs is not controlled solely by nominal tensile yield stress; the limiting variable in production is the residual melt temperature at the pinch-off weld during mould closing. E45A003 is processed on three-dimensional blow moulding equipment with servo-driven parison manipulation and vacuum suction in the mould cavity, allowing the preform to be placed into the closed tooling without generating a full-length pinch-off seam. Compliance for this application includes ISO 22241-1:2019 for diesel exhaust fluid quality and materials compatibility, ISO 22241-4:2019 for refill interfaces, and vehicle-level vibration/thermal cycling tests specified by heavy-duty engine manufacturers. Formulation addition ratios are maintained at 100 phr E45A003, 1.0–2.0 wt% carbon black masterbatch to block ultraviolet oxidation in engine compartments, 0.5–1.5 phr hindered amine light stabilizer masterbatch, 0.05–0.1 phr fluoropolymer processing aid to suppress melt fracture at the die lips, and ≤25 phr clean regrind derived from deflashed tank flash; amine-based additive masterbatches are avoided because they can leach into aqueous urea solution and increase ammonia odour after thermal ageing. The conversion line operates at 190–210 °C melt temperature, 0.8–1.0 MPa blow air pressure, 20 °C mould temperature, and hot plate welding of spigots and sensor bosses at 220 °C with 0.4–0.6 MPa weld pressure. Terminal product types include 10–20 L DEF reservoirs, urea delivery tanks for off-road machinery, and demineralized water bottles for selective catalytic reduction systems. Batch failure observations indicate that burst pressure drops below 300 kPa when the pinch-off seam temperature at mould closure is below 140 °C or when regrind contains oxidized skin from previous tank flash; published data for E45A003 in diesel fuel tank service is limited, and this grade is not recommended for gasoline fuel tanks without fluorination or sulfonation because hydrocarbon permeation would exceed current evaporative emission limits.
Extruded heavy-duty sheet produced from E45A003 is converted into thermoformed material handling trays through a calendering line in which die-lip melt temperature and roll-stack temperature act together to determine sheet flatness and vacuum forming shrinkage. The required compliance framework references ASTM D4976-12a for polyethylene moulding and extrusion materials, ASTM D790-17 for flexural modulus, and ASTM D638-14 for tensile yield stress, with load-bearing requirements set by specific automotive or logistics end-user stacking tests. The formulation is set at 100 phr E45A003, 20–40 phr post-industrial sheet skeletal regrind, 0.5–2.0 phr UV stabilizer masterbatch for outdoor storage, and 0.5–1.5 wt% antistatic masterbatch when trays are used adjacent to electronic components; an external processing aid is added at 0.1–0.3 phr only where melt pressure exceeds 25 MPa at the screen changer. The downstream process employs a 90–120 mm single-screw extruder with 30:1 L/D, gear pump, and a slot die adjusted to 1.5–3.0 mm die gap, followed by a three-roll calendering stack at 70–90 °C, thickness measuring by beta gauge, and rotary or inline vacuum forming at approximately 165 °C sheet surface temperature. Terminal product types include 1200 mm × 1000 mm dunnage trays, nestable tote trays, and thermoformed platform liners for returnable logistics loops. Production observations show that sheet warpage in thermoformed trays becomes measurable when roll-stack temperature differential exceeds 5 °C between top and bottom rolls, and that recycled sheet concentrations above 40 phr reduce melt strength enough to cause sag in the flat-sheet loop; both failure modes are controlled by closed-loop gauge monitoring and by limiting total recycled content during high-draw thermoforming of tray corners deeper than 50 mm.
For oriented HDPE tape production, E45A003 is cast into a water-quenched film on a single-screw extruder before being slit into 2–5 mm tape widths and subsequently drawn to induce molecular orientation. Industry compliance for the resulting woven fabric is anchored to ISO 21898 for flexible intermediate bulk containers used to transport non-hazardous goods, with tensile property verification conducted to ASTM D882-18 on the oriented tape substrate. The formulation is maintained at 100 phr E45A003, 1.0–2.0 phr UV stabilizer masterbatch, 0.3–0.8 phr titanium dioxide masterbatch for opacity and weatherability, 0.2–0.5 phr calcium stearate as a process lubricant, and 0.1–0.3 phr antioxidant; internal film trim and start-up waste are reintroduced at ≤25 phr only after melt filtration through a 60-mesh screen pack. The production sequence runs from a water-quenched cast film line with a melt temperature of 200–230 °C, through slitting and a hot-air stretching oven at 100–130 °C, with a draw ratio of 6:1–10:1, followed by annealing at 110–120 °C and 2–5% relaxation. Terminal product types include woven fabrics for flexible intermediate bulk containers, tarpaulin substrates, and industrial wrapping textiles. Field data from tape lines show that fibrillation increases sharply when the draw ratio exceeds 10:1 or when casting film thickness varies by more than ±5%; published data for E45A003 in oriented tape extrusion specifically is limited, so converter qualification is required before commercial conversion.The high melt viscosity of E45A003 necessitates a dedicated barrier screw and low-quench water turbulence when the resin is converted into monofilament for industrial netting and marine rope, because diameter consistency depends on stable melt pressure upstream of the spinneret. Compliance for this downstream use is typically tied to ISO 1140:2021 for polyethylene fibre ropes, plus buyer-specific knot-strength retention tests and marine exposure protocols. Formulation addition ratios are set at 100 phr E45A003, 1.5–2.5 phr UV stabilizer masterbatch, 0.5–1.0 phr titanium dioxide or colour masterbatch, 0.1–0.3 phr calcium stearate, and 0.1–0.2 phr antioxidant; recycled monofilament from broken filaments or edge trim is used only when filtered through a 40-mesh screen and limited to ≤20 phr. Processing is performed on a 45–65 mm extruder with 24:1 L/D, a water quench bath controlled at 30–40 °C, a hot-air drawing oven at 100–120 °C, and a draw ratio of 7:1–10:1, with final annealing before winding onto spools. Terminal product types include monofilament ropes, aquaculture netting, filter support mesh, and concrete reinforcing fibre. Operational limitations are significant: water bath temperatures above 45 °C reduce orientation and lower knot strength, while draw ratios above 10:1 increase filament break frequency to more than 5 breaks per hour on a 48-filament line; published data for E45A003 in monofilament service is limited, and commercial qualification requires a dedicated draw resonance study before full-scale extrusion.
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Indian Oil Corporation Limited supplies HDPE G-LENE E45A003 as a high-density polyethylene extrusion resin for thin-gauge blown film and related tubular processes. The grade carries a nominal melt flow index of 0.45 g/10 min at 190 °C/5.0 kg under ASTM D1238 and a nominal density of 0.945 g/cm³ under ASTM D1505. The low melt flow index restricts melt flow under load, while the HDPE backbone provides a crystalline structure that raises tensile yield and lowers water vapor permeation relative to low-density film resins.
On single-screw extruders with screw diameters from 45 mm to 90 mm and L/D ratios of 24:1 to 32:1, the resin is processed at melt temperatures of 180 °C to 210 °C. A die gap of 0.8–1.5 mm and a blow-up ratio of 3:1–5:1 are used to balance bubble dimensions. When die gaps fall below 0.6 mm, melt pressure can exceed 35 MPa on smooth-bore barrels, accelerating screw and barrel wear. Grooved-feed extruders are preferred when regrind levels exceed 20% because they maintain solids conveying with lower feed-temperature sensitivity.
Moisture uptake is not a primary handling concern for HDPE. However, if pellets are stored in unheated silos and transferred at ambient temperatures below 15 °C while hopper throat humidity exceeds 60% RH, condensation on pellet surfaces can generate splay and bubble instability. A hopper dryer at 70 °C for 2 h removes surface moisture before extrusion under such conditions.
Melt temperature and die pressure must be controlled within narrow limits. Below 175 °C the melt may not homogenize completely in short-barrel machines, producing unmolten specks and thickness variation. Above 220 °C, oxidative chain scission can reduce bubble strength, especially at hopper residence times beyond 30 min. A melt-tight temperature profile with barrel zones from 170 °C to 205 °C and an adaptor and die at 195–210 °C is used on production lines.
Frost line height is normally maintained between 6 and 10 die diameters. Lower frost lines reduce haze but can lower machine-direction tear and increase blocking; higher frost lines allow greater crystallinity but can reduce transverse-direction dart impact. Production-scale observation on similar high-molecular-weight HDPE film lines indicates that a frost line deviation of ±50 mm can shift haze and dart impact by 10–15%. Published data specific to E45A003 for this comparison is limited.
Severe melt fracture appears as sharkskin or herringbone roughness on the film surface. It is controlled by increasing die temperature, opening the die gap, reducing output, or adding fluoropolymer processing aid at levels from 200 ppm to 800 ppm. Processing aid addition must be verified for food-contact status when used in packaging applications.
Comparative properties for 25 µm blown film are shown below for E45A003 and general LDPE/LLDPE film classes. Values are representative of published film-grade data and should be confirmed against the IOCL certificate of analysis and converter-specific film test data.
| Property | Test Method | E45A003 HDPE | LDPE Film Class | LLDPE Film Class |
|---|---|---|---|---|
| Density | ASTM D1505 | 0.944–0.948 g/cm³ | 0.918–0.925 g/cm³ | 0.916–0.940 g/cm³ |
| Tensile yield, MD | ASTM D882 | 22–25 MPa | 8–12 MPa | 10–15 MPa |
| Elongation at break, MD | ASTM D882 | 500–700% | 200–400% | 500–800% |
| Dart impact, F50 | ASTM D1709A | 70–100 g | 50–100 g | 100–200 g |
| WVTR, 25 µm, 38 °C, 90% RH | ASTM E96 | 3.5–5.5 g/m²/day | 12–18 g/m²/day | 12–18 g/m²/day |
The tensile yield values reflect the higher crystalline fraction of HDPE. The moisture barrier improvement is directly relevant in cereal liners, snack-film laminates, and extrusion-coated pouches where desiccant loading can be reduced. The low-temperature dart impact range of E45A003 is below typical LLDPE levels; converters must perform end-use drop tests under ASTM D5276 before using it in frozen-food packaging.
LDPE film grades process at lower melt temperatures and exhibit higher neck-in during extrusion coating; E45A003 is not designed for extrusion coating of paperboard at line speeds above 200 m/min because its higher melting point and melt strength can produce edge wavering and poor adhesion without chemical primers. LLDPE grades provide higher puncture resistance and often allow down-gauging in heavy-duty sacks, but they require higher extruder torque and are more sensitive to melt fracture. E45A003 occupies the high-stiffness, low-moisture-permeability segment with moderate impact and pronounced tear anisotropy.
Elmendorf tear values for HDPE film are strongly anisotropic. Machine-direction tear may fall in the range of 0.15–0.30 N, while transverse-direction tear may reach 1.0–2.0 N for 25 µm film tested under ASTM D1922. This anisotropy must be considered when notch-sensitive articles such as envelope windows and agricultural mulch anchors are designed; orientation can be partly balanced by lowering the blow-up ratio to 2:1–3:1 or by increasing frost line height.
Optical properties are another differentiator. E45A003 film is not a high-clarity resin. Haze values for 25 µm film typically exceed 30% under ASTM D1003, while LDPE film can be less than 5%. Applications requiring transparent display film should not substitute E45A003 even though it has higher gauge stiffness.
In printed packaging, surface treatment is required. Untreated polyethylene film has a wetting tension below 31 mN/m; corona discharge is used to raise surface energy to 38–44 mN/m for solvent-based inks and 40–46 mN/m for water-based inks, measured under ASTM D2578. Treatment decay is slower for HDPE than for LDPE at ambient storage, but re-treatment is advised after storage beyond 30 days.
Bag-making equipment benefits from the film’s bending stiffness. On bottom-seal bag machines running at 120–200 bags/min, the higher stiffness reduces folding misregistration by 15–25% compared with LDPE film of the same gauge, based on converter-reported data but not a controlled method. Sheeter and perforation lines should use hardened knives to avoid rapid blade wear from the higher crystalline density.
Agricultural silage and mulch liners made from E45A003 require UV stabilization. The base resin does not contain a high-loading UV stabilizer package and will embrittle after extended outdoor exposure if natural resin is used. Silage film exposed for more than 3 months should incorporate carbon black masterbatch at 2–4% by weight or a UV stabilizer package validated under ISO 4892-2 for the intended service life.
High-density film produces lower oxygen and water vapor transmission than LDPE in silage liners, but puncture resistance is reduced at equal gauge. For puncture-critical agricultural applications, film made from E45A003 should be tested under ASTM D5748 for protrusion puncture and compared with LLDPE-based coextruded structures. When E45A003 is used as the outer layer of a two-layer or three-layer coextruded liner with LLDPE as the inner layer, the combined structure can retain moisture barrier while improving dart impact.
The mechanical requirements of automated baler film and mulch application differ. Baler film requires elongation at break above 500% in both directions; E45A003 meets this in typical laboratory tests, but field failures can occur if film is slit or perforated without adequate radius on cutting edges. Perforation burrs act as stress concentrators and reduce tear initiation energy.
G-LENE E45A003 is not intended for injection moulding or for blow moulded bottles. Its melt flow index of 0.45 g/10 min is too low for thin-wall injection moulding on standard hydraulic clamps, where spiral flow lengths may be reduced by 20–40% compared with injection-grade HDPE grades of melt flow index 8–20 g/10 min. Blow moulding of small bottles is possible only in specialty high-shear equipment; standard dairy-bottle platforms require melt flow index values above 1.0 g/10 min for rapid parison extrusion.
Environmental stress-crack resistance is measured under ASTM D1693 using Igepal CO-630 at 50 °C or 100% concentration. High-molecular-weight HDPE grades with broad molecular weight distribution typically exhibit ESCR values beyond 100 h. Published ESCR data for E45A003 is limited; compatibility testing under ASTM D543 is required for surfactants, agricultural chemicals, or oxygenated solvents because stress cracking depends on molded stress, temperature, and chemical concentration. Stress-crack failures appear as fissures perpendicular to stress at molded corners and sidewalls.
Clean in-house regrind can be incorporated up to 20% when the extruder and die are cleaned and the regrind is free of degraded gel particles. The use of post-consumer recyclate is not covered by IOCL grade certification and must be tested under relevant packaging regulations. Edge trim accumulation should be ground and re-extruded within 48 h to avoid dust contamination and moisture pickup.
Food-contact compliance is governed by the base polymer and the specific additive package. As an olefin polymer, HDPE G-LENE E45A003 is considered within the scope of FDA 21 CFR 177.1520(c) for food-contact use when the finished article meets extraction limits. For European Union applications, finished films must be tested for overall migration under EU Regulation 10/2011 and its amendments using the appropriate food simulants. The grade is not formulated with phthalate plasticizers, and compliance with RoHS Directive 2011/65/EU for heavy metals should be confirmed by the converter.