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NOVA Chemicals HDPE HE-Y449-A

    • Product Name: NOVA Chemicals HDPE HE-Y449-A
    • 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 280330

    As an accredited NOVA Chemicals HDPE HE-Y449-A factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing NOVA Chemicals HDPE HE-Y449-A is typically supplied in 25 kg polyethylene bags, with 1,000 kg bulk bags and bulk truck/railcar options available.
    Container Loading (20′ FCL) 20′ FCL container loaded with palletized 25 kg bags of NOVA Chemicals HDPE HE-Y449-A, shrink-wrapped and secured for ocean transport.
    Shipping NOVA Chemicals HDPE HE-Y449-A is shipped as non-hazardous polyethylene resin pellets in 25 kg bags, bulk bags, octabins, or bulk trucks/railcars. Keep containers closed, dry, clean, and away from heat, sunlight, and contaminants. No special DOT/IMDG/IATA hazard classification applies; follow local regulations and the SDS.
    Storage Store NOVA Chemicals HDPE HE-Y449-A indoors in a cool, dry, well-ventilated area, away from sunlight, heat, flames, and oxidizing agents. Keep original bags or containers closed, palletized, and off the floor to prevent moisture and contamination. Avoid excessive stacking and prolonged UV exposure. Maintain good housekeeping and first-in, first-out inventory. Do not store near incompatible materials or ignition sources.
    Shelf Life Typically stable for at least 24 months when stored unopened in a cool, dry, well-ventilated area away from sunlight and heat.
    Application of NOVA Chemicals HDPE HE-Y449-A

    In the closure and fitment moulding segment, HDPE HE-Y449-A is processed almost exclusively on high-cavitation hot-runner injection moulding systems, where valve-gate sequencing controls melt delivery to 48–96 cavities. The grade's melt mass-flow rate of 4.5 g/10 min under ASTM D1238 at 190 °C and 2.16 kg combined with a solid-state density of 0.949 g/cm³ under ASTM D792 positions it for short filling times in the thin tamper-evident band region. In a 2.2 g still-water closure run on a 48-cavity hot-runner system, barrel set points of 210–240 °C, mould temperatures of 8–16 °C, and peak injection velocities of 120–180 mm/s are typical, yielding cycle times between 4.5 s and 6.5 s. Gate diameters at the valve-gate tip are held to 0.6–0.9 mm; narrower gates create excessive shear heating and part-surface streaking, while wider gates extend gate-seal time and reduce cavitation balance. Tamper-evident slit bridges of 0.25–0.40 mm thickness require peak cavity pressures above 35 MPa to prevent short bridges and to maintain post-fill dimensional reproducibility. The closure body's flexural modulus contribution is anchored to a reported secant modulus of 1,180 MPa under ASTM D790; when paired with a dome thickness of 0.9–1.2 mm, this reduces ovalisation in capping chucks. For food-contact closure shells, the resin is evaluated under FDA 21 CFR 177.1520(c) olefin polymer provisions and under Regulation (EU) No 10/2011 with overall migration limits of 10 mg/dm² using EN 1186 methods; organoleptic threshold testing follows EN 1622 for water taint and odour. Moisture-related splay is not a dominant failure mode in this segment, but when granulated start-up purge is stored in open bins above 60% relative humidity, a 2 h hopper drying step at 80 °C is applied to maintain surface quality.

    What Constrains Gate-to-Freeze-Off Time in Thin-Wall Dairy Cup Moulds?

    Thin-wall dairy cups, portion pack inserts, and deli containers moulded from HE-Y449-A are constrained less by plastication capacity than by gate-to-freeze-off time and the associated packing window. At wall stock of 0.35–0.60 mm and flow length-to-thickness ratios from 150:1 to 280:1, the resin must remain molten long enough for packing pressure to propagate through the solidified layer without exceeding the thermal degradation ceiling. In this segment, melt temperatures are generally held at 220–250 °C, while chilled water mould temperatures of 6–12 °C are used to strip heat; the practical lower bound is set by condensation and mottling on polished core surfaces. Injection velocity profiles are staged with an initial high-velocity segment of 150–220 mm/s to outrun premature freeze-off, followed by a reduced packing segment at 25–45 MPa cavity pressure. Gate thickness between 0.45 mm and 0.70 mm is maintained because freeze-off below 0.3 s after switchover results in unrelieved sink marks around the gate boss. Part ejection is validated with mould-open time short enough to prevent reheat bending; automated side-entry robots with vacuum cups and active de-misting are used when cycle time falls below 3.8 s.

    Regulatory frameworkCited provisionTest methodBasis
    United StatesFDA 21 CFR 177.1520(c)Finished-article extractives and end-use conditionsUse conditions A–H
    European UnionRegulation (EU) No 10/2011EN 1186 seriesOverall migration < 10 mg/dm²
    European UnionRegulation (EC) No 1907/2006 Annex XVIIChemical restriction screeningSVHC candidate list

    Hot-fill upstream conditions above 80 °C are excluded because the Vicat softening point of 127 °C under ASTM D1525 and the 72 °C HDT under ASTM D648 leave narrow safety margins under head-space vacuum and lid-closure load. For cold-fill dairy dessert cups, sidewall deflections are controlled by rim-stacking ribs rather than by increased part mass; a rim cross-section of 1.0–1.3 mm with a 0.8 mm inner fillet is sufficient when the mould is fitted with valve gates that sequence from the centre gate to the rim gates to avoid weld-line side-entry failures.

    For open-head industrial pails and tight-head inserts, the critical processing boundary is not flow length but the interaction between cooling time, sidewall crystallinity, and environmental stress-crack resistance. Nominal sidewall thickness of 1.8–2.2 mm in a 5 L to 20 L pail requires cooling times of 18–28 s, with mould temperatures of 10–25 °C and melt temperatures of 220–250 °C; the dominant failure mode on high-speed lines is warpage after lid sealing when the sidewall is demoulded with excessive residual stress. Peak injection pressure at the screw tip is typically 80–120 MPa, with a switchover position set at 6–8 mm of cushion and a packing stage of 40–60 MPa for 3–5 s. Bucket handle lugs and lid-retaining beads are processed with core-out or gas-counterpressure to avoid hollow sections, and the top rim is thickened to 2.5–3.0 mm to withstand stacking load. For hazardous-goods pails requiring UN packaging certification, design-type tests under ADR/RID/IMDG include a drop test from 1.2 m for Packing Group II and a 28-day stacking test at 40 °C; the requirement is not met by raw material selection alone, because weld-line integrity at the gate and handle insert zones dominates drop survival. Published data for this specific grade under 100% Igepal ASTM D1693 Condition A is limited, and therefore aggressive surfactant-containing liquids, especially those adjusted above pH 9 or containing high nonylphenol-ethoxylate fractions, require pre-qualification with the actual filled product. Where permeation resistance to hydrocarbons or flavour compounds is required, the pail surface is post-fluorinated to reduce weight loss below 0.5 g/m²·day in hydrocarbon barrier tests; the resin itself is not a barrier grade.

    Crate and Tote Moulding: Packing-Pressure Decay, Rib Core Shift, and Low-Temperature Impact

    Beverage crates, logistics totes, and vented stack/nest containers moulded from HE-Y449-A usually carry nominal wall stock of 2.5–4.0 mm and intersecting ribs that drive differential shrinkage. Shrinkage anisotropy is controlled by packing-pressure decay profiling; cavity pressure is held at 40–60 MPa for 2–4 s, then stepped down in 10 MPa increments over 3–5 s to avoid overpacking at the rib root. On a 1,200–2,500 kN toggle clamp injection moulding machine with a cold-runner manifold, melt temperatures of 225–250 °C and mould temperatures of 12–25 °C are applied; the lower mould-temperature limit is dictated by sink marks at the handle bosses, and the upper limit by cycle-time extension beyond 35 s. Melt-flow length from centre gate to perimeter can exceed 350 mm, requiring four-valve-gate sequential opening when wall thickness falls below 2.5 mm, otherwise freezing at the flow front produces surface splay and weld-line weakness. Low-temperature impact is evaluated with ASTM D256 notched Izod; when crates are used in cold-chain logistics at -20 °C, a minimum notched Izod value of 35 J/m is generally used as an internal acceptance threshold, and if the raw resin does not meet this after regrind processing, the fill speed is reduced and the melt temperature raised 5 °C to shift molecular orientation away from the notch-sensitive plane. Outdoor exposure requires a UV-stabilised masterbatch at 2–4 wt% containing hindered amine light stabilisers and, for black crates, 0.5–1.0 wt% carbon black; accelerated weathering per ISO 4892-2 cycle 1 for 1,500 h is commonly used to screen colour shift and impact retention, though published data for this specific grade after weathering is limited.

    Textured houseware surfaces impose a different constraint: etch depth, draft angle, and release force intersect with HDPE shrinkage and low surface hardness. Storage totes, laundry baskets, and home organisation trays moulded from HE-Y449-A frequently use chemically etched cavity textures of 25–75 µm, which demands draft angles of at least 1° per 0.025 mm texture depth to prevent scuffing and ejection drag. The coefficient of friction against a polished steel core is reduced when the tool includes an incremental ejection stroke of 3–5 mm with mould-open delay rather than relying solely on elevated mould temperature; ejection force data from stripper-plate systems shows that textured surfaces above 60 µm can require ejection forces 15–25% higher than polished counterparts. For a typical 1.5–2.0 mm wall home-storage tray, melt temperature is set at 220–240 °C, mould temperature at 12–20 °C, and holding pressure at 30–45 MPa; cycle time is constrained more by texture replication than by heat transfer because insufficient cavity pressure at the end of fill leaves micro-texture valleys incompletely formed. Gate placement is moved to the base plane rather than the rim to reduce visible flow marks on the textured exterior, and valve gates are preferred over edge gates when surface grain depth exceeds 50 µm. In electroplated or high-gloss inserts used as highlights, the resin's low melt temperature window reduces insert washout, but published data for this specific grade with in-mould labelling films is limited. Consumer articles in this segment must comply with REACH candidate-list screening for SVHCs and, where the article has a toy-like shape or is marketed for children, EN 71-3 migration limits for heavy metals; the resin must be blended with compliant colour concentrates because the base grade is not supplied with the finished-colour compliance package.

    When Post-Consumer Recyclate Blends Shift Melt Viscosity and Extractives Testing

    When post-consumer recycled high-density polyethylene is blended with HE-Y449-A at ratios above 15 wt%, the resulting melt-pressure trace on an injection moulding machine changes non-negligibly: screw recovery time increases, and first-stage injection pressure rises by 5–15% because the rheological blend is broader in molecular-weight distribution and may contain fractional-melt fractions from upstream blow-moulded scrap. Filtration levels before the melt accumulator should target 60 mesh or finer when the PCR stream includes detergent-bottle flake, but screen-pack retention can remove stabiliser and slip additives, so melt temperatures should not exceed 240 °C to limit additional carbonyl formation and yellowing. If the PCR content rises above 30 wt%, shut-off nozzle wear becomes measurable and check-ring leakage can begin to destabilise cushion control; therefore, the moulding cell should monitor screw cushion variability at ±0.5 mm and the shot weight coefficient of variation at ±0.2% or tighter. In food-contact applications, the blend does not inherit virgin compliance automatically; under Regulation (EU) 2022/1616, recycled plastics used in food-contact articles require either a suitable decontamination technology approval or novel technology status, and an extractives/migration assessment following EN 1186 must be carried out on the finished article, not only on the input flake. Published data for this specific virgin grade in PCR blends is limited; therefore, dimensional stability, impact retention, and odour migration must be evaluated per formulation rather than predicted from melt-flow ratio alone.

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