| HS Code | 588014 |
| Density | 0.962 g/cm³ |
| Melt Index | 0.45 g/10 min (190 °C/2.16 kg) |
| Tensile Strength At Yield | 31 MPa |
| Tensile Strength At Break | 25 MPa |
| Elongation At Break | 700% |
| Flexural Modulus | 1300 MPa |
| Notched Izod Impact Strength | 80 J/m |
| Hardness Shore D | 66 |
| Vicat Softening Point | 127 °C |
| Melting Point | 134 °C |
| Brittleness Temperature | -70 °C |
| Environmental Stress Crack Resistance | >1000 h |
| Thermal Conductivity | 0.35 W/m·K |
| Coefficient Of Linear Thermal Expansion | 1.2E-4 /°C |
| Specific Heat | 2.3 kJ/kg·K |
| Volume Resistivity | >1.0E+16 ohm·cm |
| Dielectric Constant | 2.3 |
| Dissipation Factor | 0.0002 |
| Water Absorption | <0.01% |
| Mold Shrinkage | 2.0-4.0% |
As an accredited Dow HDPE 10462N factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Dow HDPE 10462N is typically packaged in 25 kg bags, palletized and shrink-wrapped for industrial shipping. |
| Container Loading (20′ FCL) | Dow HDPE 10462N resin, packed in 25 kg bags on pallets, securely loaded into a clean, dry 20-foot FCL container. |
| Shipping | Dow HDPE 10462N ships as non-hazardous high-density polyethylene resin in 25 kg bags, stacked on pallets, stretch-wrapped, and transported by truck, rail, or sea container. Keep dry, avoid direct sunlight and extreme heat, prevent contamination, and store in a cool, dry area. No special dangerous-goods transport classification required. |
| Storage | Store Dow HDPE 10462N in a cool, dry, well-ventilated area. Keep containers sealed, labeled, and upright. Protect from direct sunlight, heat, moisture, and ignition sources. Avoid contact with strong oxidizing agents. Maintain clean floors to prevent pellet slip hazards. Follow first-in, first-out stock rotation and consult the SDS for specific local requirements. |
| Shelf Life | Dow HDPE 10462N has an indefinite shelf life when stored in a cool, dry, well-ventilated area away from direct sunlight. |
In industrial chemical container blow molding, HDPE 10462N is processed on single-screw shuttle lines with a grooved feed zone, screw diameter 60–75 mm, and L/D ratio 24:1–30:1. The nominal density of 0.962 g/cm³ measured by ASTM D792 and a melt flow rate below 0.1 g/10 min at 190 °C/2.16 kg per ASTM D1238 place the grade in the high-molecular-weight HDPE class, where parison sag resistance and environmental stress cracking resistance are governed by the high-molecular-weight fraction. A representative temperature profile from feed throat to die is 40–60 °C at the hopper zone, 170–190 °C in zone 1, 190–205 °C in zone 2, and 200–215 °C in the head and die. Melt temperature at the die exit is held between 200 °C and 220 °C; excursions above 240 °C initiate chain scission visible as gel streaks and black specks in the pinch-off seam. Die gaps for 5 L industrial containers are typically 2.0–3.0 mm, with axial parison programming of 10–40 points to compensate for preform sag and to concentrate wall thickness in the handle and bottom chime. Blow pressure is set at 0.50–0.70 MPa, mold coolant temperature at 10–25 °C, and cycle time is limited by the solidification of the pinch-off weld rather than by parison extrusion. In production, the dominant failure modes are incomplete pinch-off fusion at the tail, wall thinning in the handle bridge, and stress whitening at the parting line when the mold halves are misaligned by more than 0.2 mm. Batch-to-batch variation in melt flow rate of ±0.01 g/10 min is sufficient to shift parison sag by 5–10% on shuttle machines without closed-loop parison length control. For oxidizing agents, acids, and solvent-based formulations, chemical compatibility must be confirmed by immersion testing per ASTM D543; permeation of low-molecular-weight hydrocarbons through the nonpolar HDPE matrix requires either surface fluorination or a coextruded barrier layer in finished containers. Residual moisture above 0.1 wt% in regrind streams should be reduced by drying at 80 °C for 2 h before extrusion to prevent surface splay and weld-line porosity.
| Regulatory domain | Standard or clause | Application boundary for 10462N |
|---|---|---|
| United States olefin polymer food contact | FDA 21 CFR 177.1520(c) 2.1 | Applicable only when no surface fluorination or regrind from non-food sources is used |
| European plastics food contact | Regulation (EU) No 10/2011, Annex I, Table 1 | Overall migration limit 10 mg/dm²; specific migration must be revalidated for barrier-treated articles |
| US dangerous goods packaging | 49 CFR 178.509 | Plastic drums and jerricans; wall thickness and drop/stack compliance depend on chemical sorption |
| UN dangerous goods packaging | UN Model Regulations, Chapter 6.1 | Packing Group I/II/III drop heights and hydraulic pressure tests defined by filled product density |
| Polyethylene material specification | ASTM D4976-12a | Cell classification for blow molding grade; grade-specific values from supplier certificate of analysis |
Accelerated environmental stress cracking in detergent bottle formulations is driven by the interaction between the bottle’s residual molded-in stress and the surfactant system in the fill. For HDPE 10462N, ESCR is commonly tested in 10% Igepal CO-630 at 50 °C per ASTM D1693; blow-molded parts with high orientation in the sidewall and deep draw areas frequently exhibit crack initiation at the pinch-off seam and at the transition from the shoulder to the sidewall. Top-load performance, measured at 23 °C and 50% relative humidity on a constant-speed compression tester per ISO 12048, becomes the limiting property when the bottle wall is weight-reduced below 0.55 mm on a 1 L bottle. The relationship between ESCR and top load is mediated by wall thickness distribution: axial parison programming that increases the shoulder and base thickness by 30–50% relative to the sidewall can preserve top-load capacity while reducing overall weight, but excessive local thickening increases cooling time and raises the risk of post-mold shrinkage. In high-speed rotary wheel lines, mold residence time is often 6–10 s; if the mold is opened before the part reaches 80 °C lower surface temperature, dimensional recovery after ejection leads to cap thread ovality. Processing with a blow-up ratio of 2.5:1–3.5:1 and a die land ratio of 10:1–15:1 yields a smooth parison surface and reduces melt fracture at high shear rates. Published data for 10462N-specific fluorination of detergent bottles is limited; fluorination is not normally required for aqueous surfactant formulations but becomes relevant when the fill contains essential oils, terpenes, or high-solubility solvents that can diffuse through the wall. The operational boundary is clear: aqueous detergent bottles should not be hot-filled above 60 °C without post-cooling fixtures because the low thermal conductivity of HDPE extends the cooling-limited cycle and increases sidewall sag.
When HDPE 10462N enters a shuttle or reciprocating-screw blow molder for automotive fluid containers, the primary material-performance boundary shifts to permeation of aliphatic hydrocarbons and low-temperature impact. Unmodified HDPE exhibits a permeability to non-oxygenated hydrocarbons that is unacceptable for many engine oil and fuel container formats; surface fluorination is therefore applied inline or post-mold, with reported barrier improvement factors for fluorinated HDPE ranging from 2 to 10 depending on fluorine uptake and treatment depth. Low-temperature drop impact is measured at -20 °C per ASTM D2463; containers with a wall thickness below 1.0 mm and sharp tangential transitions at the base edge can fail by brittle fracture when the resin’s low-temperature ductile-to-brittle transition temperature is approached. Windshield washer fluid bottles containing methanol require ESCR verification per ASTM D1693 because methanol acts as a stress-cracking agent on high-density polyethylene. Mold cooling at 10–20 °C with high-turbulence coolant flow is used to limit shrinkage and to maintain cap thread roundness; typical mold pressure decay profiles show that the part must remain in the mold until the internal air pressure drops from 0.50 MPa to below 0.15 MPa before ejection to prevent blow-out at thin sections. Engine oil containers are frequently produced at a blow-up ratio of 2.5:1–4.0:1, and the die gap is increased to 2.5–3.5 mm to compensate for parison sag across longer drop lengths. Production-scale experience on shuttle machines indicates that batch-to-batch variation in the high-molecular-weight fraction alters wall thickness distribution more than density variation, because the parison swell and sag behavior are sensitive to the molecular weight distribution tail. If the container is intended for aftermarket brake fluid or coolant concentrates, the compatibility of the fluorinated surface layer with glycol ethers and borate esters must be validated by immersion testing at 50 °C for 21 days; published data for this specific fluorinated 10462N configuration is limited.
At 35% post-consumer regrind loading, the ESCR floor of the finished container is reduced because the regrind contains previously oxidized surfaces, residual fill chemicals, and recycled resin of lower molecular weight. The blended feedstock must be processed through a melt filtration screen pack of 80–120 mesh to remove paper labels, aluminum seal remnants, and black specks that otherwise accumulate at the die land and create parison weld lines. Moisture control is more stringent than for virgin processing: regrind flake exposed to ambient air above 60% relative humidity can reach 0.2–0.5 wt% moisture, requiring a vacuum-assisted vented or hopper-dried system at 80–90 °C for 2–4 h. In shuttle blow molding, the use of 35% regrind typically reduces the effective melt strength of the blend by 10–20%, which is observed as parison sag acceleration on long drop lengths and as thinning in the base pinch-off region. The agrochemical container must still meet UN Packing Group II drop-test requirements from 1.2 m after filling at nominal capacity, so the minimum wall thickness may need to be increased from 0.90 mm to 1.05–1.10 mm relative to virgin 10462N. Residual pesticides and herbicides in the PCR stream must be controlled below the analytical detection limits specified by the collection scheme because the HDPE matrix can absorb and re-release low-molecular-weight active ingredients. Published data for this specific blend ratio in 10462N is limited; the ranges above reflect production starting points for high-molecular-weight HDPE with post-consumer regrind in extrusion blow molding rather than a supplier-validated formulation.
Industrial pails and small drums molded from 10462N in 10–20 L formats require pinch-off weld strength sufficient to survive drop impacts without leaking at the tail or the handle ears. On shuttle machines with clamp forces below 40 t, the limiting defect is not the clamp force itself but the localized pressure at the pinch-off insert; a blunt insert radius above 0.5 mm produces a weak weld because the melt front folds rather than fuses. The table below lists representative process envelopes for high-molecular-weight HDPE shuttle blow molding; they are starting references and must be adjusted to the actual part geometry and machine hydraulics.
| Container volume | Die gap | Blow pressure | Mold coolant temperature | Minimum wall thickness |
|---|---|---|---|---|
| 1 L | 1.5–2.0 mm | 0.45–0.60 MPa | 10–20 °C | 0.60 mm |
| 5 L | 2.0–3.0 mm | 0.50–0.70 MPa | 10–25 °C | 0.90 mm |
| 20 L | 3.0–4.0 mm | 0.55–0.75 MPa | 10–25 °C | 1.20 mm |
The pinch-off weld is formed when the two mold halves compress the parison tail; a melt temperature below 200 °C at the die exit leads to inadequate fusion and a visible parting line crack after cooling. At die temperatures above 225 °C, the flash at the pinch-off seam becomes so soft that tail ejection and automatic deflashing systems leave ragged remnants, increasing manual finishing. For 20 L drums, a parison length of 900–1,200 mm is extruded, and the sag from the upper die to the closed mold must be compensated by axial programming that shifts 40–60% of the material into the bottom chime and top rolled edge. Mold cooling at 10–25 °C with turbulent flow is maintained to achieve a cycle time of 50–80 s for 20 L thinnest-wall sections. UN certification for dangerous goods in Packing Group II requires a drop height of 1.2 m and a hydraulic pressure of 100 kPa for plastic packaging; the finished pail must also pass a stack test at 40 °C for 28 days without permanent deformation exceeding 10% of the original height. Because 10462N is a high-density grade, the pail surface has increased stiffness and measurable abrasion resistance, but the low melt flow rate increases back pressure in the extruder and reduces plasticating capacity by 10–15% compared with lower-molecular-weight HDPE grades.
In closed-loop chemical container take-back schemes, reclaim streams containing 10462N and fractional-melt HDPE are processed through vacuum-assisted vented extruders at barrel temperatures 170–210 °C to strip residual moisture and low-boiling contaminants before the melt enters the accumulator head. Because 10462N has a low melt flow rate, the reclaim blend creates a higher extruder torque at screw speeds above 60 rpm; production equipment with a fixed-speed drive may require a reduction in throughput of 15–25% relative to virgin compound. Acidic residue from the original fill must be neutralized or washed from the flake before extrusion because residual hydrochloric acid or sulfuric acid accelerates hydrolytic chain scission at the die lips and produces black specks. In blow molding the reclaim stream, a screen changer with 60–100 mesh screens is inserted to protect the die entrance; this adds 3–7 MPa of back pressure depending on screen loading. The resulting containers are suitable for non-food chemical applications and industrial waste packaging when the reclaim is segregated by source and tested for ESCR per ASTM D1693 on each lot. Because the molecular weight distribution of the reclaim is broader than that of virgin 10462N, parison swell increases by 10–20% at the same die gap, and the die gap must be reduced by 0.2–0.5 mm to maintain the target wall thickness. Batch-to-batch variation in the reclaimed pellet feedstock produces bottle weight fluctuations of ±2–5% if the extrusion line does not have gravimetric dosing of regrind and virgin pellets. This is the operational boundary: reclaim streams from unknown sources are not suitable for food-contact or pharmaceutical packaging because the migration history of the previous fill cannot be fully reconstructed, even if the final polymer blend meets the migration limits of Regulation (EU) No 10/2011.
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