| HS Code | 447722 |
| Density | 0.954 g/cm³ |
| Meltindex | 8.0 g/10 min (190°C/2.16 kg) |
| Tensilestrengthatyield | 31 MPa |
| Tensilestrengthatbreak | 22 MPa |
| Elongationatbreak | 600% |
| Flexuralmodulus | 1400 MPa |
| Notchedizodimpact | 35 J/m at 23°C |
| Shoredhardness | 66 |
| Vicatsofteningpoint | 127°C |
| Heatdeflectiontemperature | 75°C at 0.45 MPa |
| Moldshrinkage | 1.5-3.0% |
| Processingmelttemperature | 200-260°C |
| Moldtemperature | 20-60°C |
| Waterabsorption | <0.01% |
| Dielectricconstant | 2.3 |
| Volumeresistivity | >1E16 ohm-cm |
As an accredited Dow HDPE 08454N factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Dow HDPE 08454N is typically supplied in 25 kg bags, palletized at 1,000 kg per pallet. |
| Container Loading (20′ FCL) | Dow HDPE 08454N, 20′ FCL: 25 kg bags on pallets, 55 bags/pallet, 18 pallets, total 24.75 MT net. |
| Shipping | Dow HDPE 08454N is a non-hazardous high-density polyethylene resin. It is shipped in 25 kg polyethylene bags, 1000 kg bulk bags, or octabins on pallets, stretch-wrapped. Transport by truck or container at ambient temperature. No UN number, hazard class, or packing group; not DOT/IMDG/IATA regulated. Protect from moisture and contamination. |
| Storage | Store Dow HDPE 08454N in a cool, dry, well-ventilated area, away from heat, ignition sources, and direct sunlight. Keep original packaging closed and off the ground on pallets. Protect from moisture, contamination, and strong oxidizers. Maintain good housekeeping to prevent dust buildup. Store separately from incompatible materials and follow SDS, local regulations, and first-in, first-out inventory practices. Do not smoke. |
| Shelf Life | Dow HDPE 08454N has no defined shelf life; store cool, dry, away from sunlight, moisture, and contaminants for indefinite stability. |
In monolayer extrusion blow moulding of stackable 1 L to 5 L industrial containers, the processing envelope for 08454N is bounded by a melt temperature of 180 °C to 210 °C and a die-head temperature of 185 °C to 205 °C. The melt flow rate of 0.45 g/10 min, measured per ISO 1133-1:2022 at 190 °C/2.16 kg, places the resin in the high-melt-strength domain needed for parison lengths exceeding 400 mm without excessive sag. Barrel temperature profiles on a 60 mm grooved-feed extruder having a length-to-diameter ratio of 24:1 to 30:1 and a barrier screw with a compression ratio of 2.8:1 to 3.2:1 are set in a flat or slightly reverse profile: feed zone 175 °C, compression zone 190 °C, metering zone 205 °C, so that screen-pack pressure remains between 20 MPa and 30 MPa during steady output. Multi-cavity clamp stations producing 2 L bottles with a shot weight of 45 g to 98 g require clamp forces of 80 kN to 150 kN, and blow air introduced at 0.6 MPa to 1.0 MPa expands the parison against a mould held at 10 °C to 25 °C; cycle time is 18 s to 35 s depending on wall thickness. A production-scale failure mode recorded on shuttle lines is parison sag exceeding 15 mm before mould closing when the hot-knife and pinch-off dwell time exceed the resin’s sag-rate threshold; the resulting lower pinch zone falls below 0.5 mm and causes hydraulic burst failure during drop testing under UN 6HA1/Y bottom-drop requirements. Die swell is 20% to 40%, so the die bushing outside diameter is selected at 0.75 to 0.85 times the finish outside diameter and the land length is held at 12 to 20 times the die gap to dampen melt memory. For rectangular or oblong containers, wall-thickness programming through a diverging conical mandrel with a stroke of 10 mm to 25 mm is required because corner thinning exceeds 0.3 mm when a constant die gap is used.
Environmental stress crack resistance of 08454N is specified by the resin producer as F50 > 600 h per ASTM D1693 in 100% nonylphenol ethoxylate at 50 °C; this baseline applies to packaging sequences with nonionic surfactants, but it does not extend to aromatic-solvent-borne emulsifiable concentrates. Aqueous alkaline formulations containing sodium hydroxide at 5% to 10% and sodium hypochlorite at 5% to 12% are normally tested by ASTM D543-21 for 30 days at 60 °C, with acceptance set at retained tensile elongation above 50% of the unexposed control; published data specific to 08454N under these exact formulation conditions is limited. Concentrates containing xylene, toluene, or aromatic hydrocarbon solvents at solvent fractions above 10% w/w are known to swell and reduce ESCR in the HDPE family, so qualification protocols require ASTM D543 immersion at 60 °C for 30 days with retained tensile elongation at break of at least 50% of the unexposed control. Oxygenated solvents such as methyl ethyl ketone and cyclohexanone are ordinarily excluded from monolayer HDPE containers at concentrations above 2% to 5%, while long-chain aliphatic hydrocarbons, crop oil concentrates, and paraffinic process oils below 15% generally produce less than 10% mass uptake under the same protocol. Because 08454N contains a stabilizer package intended for blow-moulding heat history, packaging of oxidizing agrochemical mixtures requires that the final container be evaluated for both stress cracking and oxidative embrittlement; the latter is assessed by tensile elongation retention following air-oven aging at 100 °C for 500 h per ISO 188.
Where three-layer containers incorporate post-consumer recyclate in the core, 08454N is assigned to the outer and inner skins because its 0.45 g/10 min melt flow rate permits a viscosity ratio of 0.8 to 1.2 against PCR core materials having melt flow rates of 0.3 g/10 min to 0.6 g/10 min and densities of 0.945 g/cm³ to 0.960 g/cm³. The skin layers are maintained at 0.30 mm to 0.50 mm per side on a total wall thickness of 2.0 mm to 2.5 mm, while the PCR core carries 0.8 mm to 1.6 mm; this structure is produced on a three-layer accumulator-head machine with individual melt pumps holding melt temperatures within 10 °C of one another at the die entrance to prevent flow-instability lines and localized thickness variation. Plant-scale coextrusion lines processing this configuration record core breakthrough at the pinch-off when the core viscosity exceeds 1.4 times the skin viscosity; the resulting discontinuity fails hydrostatic leakproofness tests at 125 kPa for 30 min under 49 CFR 178.604 and also produces cap-seat warpage after 24 h shrinkage. PCR core feedstock is limited to extrusion-grade HDPE with melt filtration through 60 to 120 mesh screen packs and a residual moisture content below 0.02% by Karl Fischer titration; polar contaminants from label adhesives, cap liners, or polypropylene closures above 2% by mass cause delamination streaks and should be rejected through NIR sortation before compounding. The virgin skins provide ESCR and pinch-off toughness, but the core contribution to overall ESCR is not equivalent to monolayer 08454N; published data for this specific three-layer configuration is limited, and stack-load creep testing at 40 °C for 28 days per ASTM D2990 is required when more than 30% PCR is used.
Coolant recovery reservoirs blow moulded from 08454N operate as non-pressurized or pressure-limited vessels in the 90 °C to 110 °C intermittent temperature range, with a continuous under-hood service ceiling cited at 65 °C to 75 °C for unstressed load-bearing regions. The reservoir body is typically produced at a nominal wall thickness of 2.0 mm to 3.0 mm, and the pinch-off zone is designed to exceed 2.5 mm because a parting-line leak under thermal cycled pressure of 110 kPa occurs at thin pinch lands. Mould surface temperatures of 20 °C to 30 °C are used to reduce residual thermal stress at the insert bosses, and post-mould trimming is followed by annealing at 60 °C for 1 h to 2 h; without annealing, coolant exposure under ASTM D543-21 at 90 °C reveals that boss cracks initiate at stress concentrations within 50 h to 100 h when produced with tight metal insert tolerances. Tensile yield strength after 500 h hot-air aging at 100 °C is evaluated by ISO 527-2, and the acceptance criterion is retention of at least 70% of original yield strength; elongation at break can fall below 100% under the same aging protocol even when yield retention remains acceptable. Long-term coolant contact is limited to ethylene glycol-water mixtures of 30% to 60% by volume; organic acid technology coolants that generate pH excursions above 9.5 reduce ESCR relative to neutral media, and at pH above 10 at 90 °C a compound-specific immersion protocol is required rather than reliance on the resin datasheet alone.
On accumulator-head lines, incoming resin lot release protocols for 08454N involve a three-point control chart for melt flow rate, density, and ESCR because batch-to-batch drift in melt flow rate of more than 0.05 g/10 min from the nominal 0.45 g/10 min value is associated with parison sag variation and inconsistent pinch-off thickness on multi-cavity tools. Twin-bore capillary rheometry at 190 °C across apparent shear rates of 100 s⁻¹ to 1000 s⁻¹ shows shear viscosity decreasing with a power-law index of 0.45 to 0.60, and the Arrhenius activation energy for viscous flow for this molecular weight range lies between 25 kJ/mol and 28 kJ/mol; these parameters are used to calculate pressure drop through spiral mandrel die-head tooling and to limit extruder screw speed to 70 min⁻¹ on a 60 mm grooved-feed machine before melt temperature overshoot above 220 °C triggers oxidation and melt-fracture streaks. Density is controlled at 0.954 g/cm³ by ISO 1183-1, with a lot acceptance band of ±0.002 g/cm³ because lower density shifts the top-load capacity of 1 L containers downward by 15 N to 25 N per 0.001 g/cm³ under ASTM D2659 compressive testing at 23 °C. ESCR acceptance is performed on notched bent strips per ASTM D1693, with F50 values needed above 600 h; lots falling between 400 h and 600 h are restricted to non-stress-cracking package contents because the safety margin against pinch-off ESC failure drops below the level required for UN 6HA1/Y tight-head containers.
For closures, fitments, and barrier layers in packaging that may come into incidental contact with food, 08454N falls under olefin polymer provisions of 21 CFR 177.1520 only when the specific production lot is covered by the resin manufacturer’s compliance documentation; the published datasheet for this industrial grade may not include a USP <661.1> or EU Regulation (EU) No 10/2011 migration monograph, so use in primary food contact must be qualified through specific migration testing of the finished article under EN 1186-1 and EU 10/2011 Annex III simulant D1 (50% ethanol) at 60 °C for 10 days. For industrial packaging of dangerous goods, the relevant certification path is UN 6HA1/Y for plastics jerricans and UN 6HA2/Y for plastics drums, with performance tests covering top lift, drop, leakproofness, hydraulic pressure, and stack load as prescribed in 49 CFR 178.604 through 178.606; 08454N-based containers tested to these categories are limited by the creep behaviour of the resin, so a stack test at 40 °C for 28 days should use a compression load calculated from product density and a minimum safety factor of 1.5. Extractables testing for industrial solvents is performed with simulants chosen from the actual filling substance; for anhydrous liquid formulations, an alternative test at 40 °C for 10 days is used only when the active substance is not classified as a strong oxidizer or aromatic solvent. The absence of a resin-level food-contact statement for 08454N in informal distributor documentation is a regulatory boundary arising from missing monograph certification rather than from polymer degradation.
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