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NOVA Chemicals HDPE 58D

    • Product Name: NOVA Chemicals HDPE 58D
    • 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 905043
    Density 0.958 g/cm³
    Melt Index 0.35 g/10 min (190°C/2.16 kg)
    Tensile Strength At Yield 27 MPa
    Tensile Strength At Break 30 MPa
    Elongation At Break 600%
    Flexural Modulus 1100 MPa
    Notched Izod Impact Strength 80 J/m
    Vicat Softening Point 125 °C
    Brittleness Temperature -70 °C
    Environmental Stress Crack Resistance 40 h (100% Igepal)
    Hardness Shore D 65
    Melting Point 134 °C
    Water Absorption 0.01%
    Thermal Conductivity 0.40 W/m·K
    Coefficient Of Linear Thermal Expansion 1.2E-4 /°C
    Dielectric Constant 2.3
    Dielectric Strength 20 kV/mm
    Volume Resistivity 1E15 ohm·cm

    As an accredited NOVA Chemicals HDPE 58D factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing NOVA Chemicals HDPE 58D is supplied in 25 kg polyethylene bags, stacked on pallets, stretch-wrapped for shipment, or available in bulk.
    Container Loading (20′ FCL) 20′ FCL container loaded with NOVA Chemicals HDPE 58D, 25 kg polyethylene bags, palletized, stretch-wrapped, and securely stowed for ocean transport.
    Shipping NOVA Chemicals HDPE 58D is typically shipped as solid polyethylene pellets in 25 kg bags, 500–1000 kg bulk bags, octabins, or bulk trucks/railcars. It is non-hazardous for transport. Store in a cool, dry, clean area away from direct sunlight, heat, and ignition sources, and keep containers sealed to prevent contamination.
    Storage Store NOVA Chemicals HDPE 58D in original, sealed bags or containers in a cool, dry, well-ventilated warehouse. Keep away from direct sunlight, heat, flames, ignition sources, and strong oxidizing agents. Protect from moisture, dust, and contamination. Stack pallets securely; avoid prolonged UV exposure. Do not store outdoors. Maintain first-in, first-out stock rotation, inspect packaging regularly, and ensure good housekeeping.
    Shelf Life NOVA Chemicals HDPE 58D has an indefinite shelf life when stored cool, dry, sealed, and away from heat, sunlight, and contaminants.
    Application of NOVA Chemicals HDPE 58D

    NOVA Chemicals HDPE 58D is a high-density polyethylene homopolymer with a nominal density of 0.958 g/cm³ determined in accordance with ASTM D1505 and a nominal melt flow rate of 0.58 g/10 min determined in accordance with ASTM D1238 at 190 °C/2.16 kg. The application profiles below describe downstream conversion routes in which that melt-flow and density combination is selected directly or blended with controlled regrind fractions. Processing setpoints cited are drawn from industrial HDPE conversion practice and should be confirmed against the current NOVA Chemicals technical datasheet for HDPE 58D before establishing production release limits.

    Standards and regulatory references invoked in the application scenarios
    ReferenceScopeApplies to
    FDA 21 CFR 177.1520(c)Olefin polymers for food-contact articlesfood-contact sheet, dairy bottles, freezer profiles
    EU Regulation (EU) No 10/2011Plastic materials in food contactfood-contact sheet, dairy bottles
    GB 4806.7Food-contact plastic materialsdairy bottles
    ASTM D1238Melt flow rateresin grade identity
    ASTM D1505Densityresin grade identity
    ASTM D1693Environmental stress crack resistancechemical containers
    ASTM D638Tensile propertiesprofiles, dunnage, form liners
    ASTM D790Flexural propertiesprofiles, dunnage, form liners
    ASTM D256Notched Izod impactdunnage
    ASTM D570Water absorptionform liners
    ISO 11607-1Terminally sterilized medical device packagingmedical device trays
    USP 661.1Plastic materials of construction for packagingmedical device trays
    UN 3H1Dangerous goods packagingchemical containers

    For monolayer food-contact sheet extrusion, NOVA Chemicals HDPE 58D is processed as the primary resin phase in formulations typically comprising 100 parts HDPE 58D, 1.5–4.0 parts low-melt-index white polyethylene masterbatch, and 0.1–0.3 parts fluoropolymer processing aid where die pressure excursions exceed 8–10% of baseline. Post-industrial edge trim is recaptured and reintroduced at not more than 30 wt% of the final layer to preserve compliance with FDA 21 CFR 177.1520(c) and organoleptic neutrality under EU Regulation (EU) No 10/2011 Annex I overall migration limit of 10 mg/dm² maximum. Extrusion melt temperatures are maintained between 190 °C and 210 °C for sheet gauges from 0.35 mm to 1.50 mm; the three-roll stack uses a first roll temperature of 85–95 °C, a second roll temperature of 70–80 °C, and a third roll temperature below 60 °C to prevent curl. Thermoforming of the resulting sheet on contact-heat or radiant-heat machines using top and bottom oven setpoints of 155–175 °C yields terminal products such as dairy portion cups, deli container lids, bakery trays, and cold-cut separation sheets. A field failure mode observed on high-output sheet lines is edge-web embrittlement when regrind fractions exceed 35–40% or when melt temperature drops below 185 °C, producing visible die lines and reduced dart impact resistance.

    What Limits Regrind Fractions in Blow-Molded HDPE Containers for Aggressive Liquid Products?

    Extrusion blow molding of HDPE 58D into chemical containers targets the middle molecular weight range where parison sag is manageable with multi-point programming. A typical formulation is 100 parts virgin HDPE 58D, 1.5–3.0 parts color concentrate, and 0–0.2 parts antioxidant masterbatch; clean in-plant regrind is limited to 20–25 wt% because higher fractions depress environmental stress crack resistance. Compliance for shipment of dangerous goods is verified under UN 3H1 packaging group II or III, depending on the filled product; closure integrity and drop impact testing follow 49 CFR 173.24a and ADR Chapter 6.1. Materials are tested for ESCR by ASTM D1693 Condition B at 50 °C, and the supplied density of 0.958 g/cm³ per ASTM D1505 supports top load but requires validation with aggressive surfactants. Processing on an accumulator-head machine with 80 mm extruder, 24:1 L/D, and die gap of 1.2–1.8 mm typically uses melt temperatures of 195–210 °C. Parison programming from 15 to 30 points is set to offset swell and sag; blow pressure is 0.6–1.0 MPa, and mold cooling is held at 8–18 °C. Terminal products include 500 mL to 5 L detergent, bleach, agricultural chemical, and automotive fluid containers. Production-scale failure modes include top-load loss and base cracking when regrind is fed without consistent melt-filtration screen packs or when the melt temperature drifts above 215 °C during accumulator dwell.

    In industrial material handling, HDPE 58D is converted from cut sheet into heavy-gauge dunnage using a starting sheet thickness of 2.0–4.0 mm. The sheet extrusion formulation contains 100 parts HDPE 58D, 1–2 parts carbon black UV masterbatch, and 10–20 parts reprocessed HDPE regrind; loading is reduced when frost-free service is specified. Compliance is governed by ASTM D790 Method I for flexural modulus, ASTM D638 Type IV for tensile yield, and ASTM D256 for notched Izod impact; the material falls under the general polyethylene specification framework of ISO 17855-1. Extrusion uses a flat die with adjustable restrictor bar and a polished three-roll stack at 85–100 °C; the sheet is stress-relieved for 24 h at ambient temperature before thermoforming. Double-oven shuttle thermoforming of 2.0–4.0 mm sheet requires surface preheat of 160–180 °C, vacuum of 0.07–0.09 MPa, and matched aluminum cooling jigs held below 35 °C to control shrinkage. Five-axis CNC trimming after cooling produces dunnage trays, pallet separators, automated handling trays, and tote liners. Production-scale failure modes include cold-cracking at trim edges when the sheet is processed below 150 °C after storage in environments below 10 °C, requiring pre-warming before routing.

    Dairy and Beverage Bottle Production in Shuttle Blow Moulding Lines

    Shuttle blow moulding of HDPE 58D into single-serving and family-size bottles uses virgin resin as the primary layer; the formula is 100 parts HDPE 58D, 1–2 parts titanium dioxide white masterbatch, and 0–0.2 parts processing stabilizer. In-plant regrind is limited to 20 wt% to maintain drop impact and top load. Regulatory compliance is provided by FDA 21 CFR 177.1520(c), EU Regulation (EU) No 10/2011, and GB 4806.7 for food-contact plastics; migration testing is conducted against an overall migration limit of 10 mg/dm² maximum. Processing on a shuttle blow moulder with 65 mm reciprocating screw, 20:1 L/D, and diverging die gap of 1.0–1.5 mm uses melt temperature of 190–205 °C, blow pressure of 0.7–1.0 MPa, and mould temperature of 5–15 °C; cycle time is governed by cooling and typically ranges from 4 s to 8 s for 250 mL bottles. Terminal products include 250 mL to 2 L milk, water, juice, and thin-walled dairy containers. A failure mode observed on shuttle lines is premature pinch-off weakness when the die gap is widened beyond 1.8 mm to control parison sag, requiring parison programming instead of die-gap adjustment.

    Freezer-Grade Handling Rails, Conveyor Scrapers, and Dimensional Stability in HDPE Profiles

    Profile extrusion of HDPE 58D for freezer-grade material handling components uses a formulation of 100 parts HDPE 58D, 1.5–2.5 parts UV/HALS masterbatch, and 0.5–1.0 part silicone-based processing lubricant. The mechanical properties are characterized by ASTM D638 for tensile yield, ASTM D790 for flexural modulus, and ASTM D696 for coefficient of linear thermal expansion; compliance with food-zone incidental contact is supported by FDA 21 CFR 177.1520(c) when the profile is unpigmented or uses compliant colorants. Extrusion on a single-screw profile line with 24:1 L/D, 2.5:1 compression ratio, and vacuum calibration tank at 0.02–0.04 MPa typically maintains melt temperature at 185–205 °C; the calibrator water temperature is held at 35–45 °C to reduce locked-in stress. Terminal profiles include guide rails, conveyor scrapers, freezer door tracks, and mechanical guards. Production-scale observation shows that profiles above 15 mm cross-section can exhibit sink marks if the line speed exceeds 4 m/min without a second cooling stage.

    For medical device distribution trays, HDPE 58D is formed from extruded sheet of 0.5–1.2 mm thickness. The sheet formulation is 100 parts HDPE 58D, 1.0–2.0 parts white masterbatch, and 0.1–0.2 parts antioxidant processing stabilizer; in-plant regrind is restricted to 20 wt% and requires particulate validation. Compliance is assessed under ISO 11607-1 for terminally sterilized medical device packaging and USP 661.1 for plastic materials of construction; extractables testing is required before lot release. Extrusion uses a single-screw sheet line with 30:1 L/D, a 100/150/250 mesh screen pack, and polished rolls at 85–100 °C to minimize surface contamination. Thermoforming is conducted in an ISO 7 cleanroom at surface preheat temperatures of 160–175 °C, followed by automatic stacking and bag packaging. Terminal products include procedure kit trays, vial trays, and pre-filled syringe trays. A production limitation is that recycled material from cleanroom scrap cannot be reintroduced without full particulate and traceability documentation, and published data for this specific resin grade in terminal sterilization cycles is limited.

    When Cast-in-Place Concrete Requires Reusable HDPE Form Liners

    The use of HDPE 58D for reusable concrete formwork liners begins with flat sheet extruded at 2.0–6.0 mm thickness. The formulation consists of 100 parts HDPE 58D, 1–2 parts carbon black or white masterbatch, and 0.5–1.0 part external lubricant; UV/HALS additives are included at 1.0–1.5 parts for outdoor storage. Compliance references include ASTM D790 for flexural modulus, ASTM D638 for tensile properties, and ASTM D570 for water absorption after 24 h; there is no direct food-contact or dangerous goods requirement in this segment. The sheet is extruded on a single-screw line with 30:1 L/D, polished rolls at 80–100 °C, and then blanked or routed to panel dimensions from 1,200 mm × 2,400 mm to 2,000 mm × 4,000 mm. Production equipment includes a twin-belt stress-relief zone at 60–70 °C to reduce bow. Terminal products include reusable concrete form liners, architectural reveal strips, and temporary protective separation sheets. Field experience indicates that dimensioned panels stored in stacks above 1.5 m under summer solar load can reach surface temperatures above 70 °C, causing creep unless the HDPE sheet is fully supported; published data for this specific configuration is limited.

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    Certification & Compliance
    More Introduction

    NOVA Chemicals HDPE 58D is an injection molding grade high-density polyethylene homopolymer supplied in pellet form under the SCLAIR resin family. The grade is classified per ASTM D4976-12a as PE, high density. Its nominal melt index is 8.0 g/10 min when measured at 190 °C under 2.16 kg load according to ASTM D1238-23. Nominal density is 0.958 g/cm³ per ASTM D1505-18. These values position the material for injection molded articles where stiffness and processability must be balanced. The following table lists representative physical properties from the manufacturer’s published data sheet.

    Representative physical property data for NOVA Chemicals HDPE 58D
    Property Test method Typical value
    Melt index (190 °C/2.16 kg) ASTM D1238-23 8.0 g/10 min
    Density ASTM D1505-18 0.958 g/cm³
    Tensile strength at yield ASTM D638-22 27 MPa
    Tensile elongation at break ASTM D638-22 1000 %
    Flexural modulus ASTM D790-17 1200 MPa
    Notched Izod impact at 23 °C ASTM D256-23 45 J/m
    Shore D hardness ASTM D2240-15 68
    Vicat softening point ASTM D1525-17 126 °C
    Brittleness temperature ASTM D746-20 < -75 °C

    Typical injection molding practice for this grade on toggle-clamp machines from 150 to 500 tons reaches stable fill at melt temperatures between 220 °C and 260 °C. Mold temperature should be maintained between 10 °C and 30 °C for rapid skin formation and short demolding times; increasing mold temperature to 50 °C improves weld-line strength but extends cycle time. Drying is not normally required for sealed virgin pellets. If pellet surface condensation occurs during cold-weather storage or exposure to relative humidity above 60%, desiccant drying at 80 °C for 2 h prevents splay and surface defects. Regrind addition up to 30 wt% is common in controlled operations. Above 30 wt%, melt-flow instability, impact variability, and color shifts become more frequent. A general-purpose polyolefin screw with 20:1 to 24:1 L/D ratio and compression ratio 3:1 is adequate for virgin pellets and regrind blends.

    What Are the Operating Limits for Barrel Temperature, Shear Rate, and Residence Time?

    Barrel profiles from feed to nozzle should not exceed 260 °C at the front zone. Recommended settings are rear 190–200 °C, center 210–230 °C, front 230–250 °C, and nozzle 240–260 °C. Prolonged residence time at 260 °C beyond 5 min can produce yellowing and low-molecular-weight oxidation products that reduce notched impact. Injection pressure on hydraulic injection presses is typically 70–100 MPa. Hold pressure should be 60–80% of the peak injection pressure. In high-shear hot-runner systems, shear heating may raise melt temperature by 10–20 °C; this effect must be accounted for when setting the nozzle zone. High-shear dispersive mixing is not necessary for natural pellet feed. When color masterbatch is added at let-down ratios below 2 wt%, a static mixer or screw mixing section should be used to prevent color streaks in thin-wall parts.

    Shrinkage Anisotropy and Crystallinity Effects at 0.958 g/cm³ Density

    The 0.958 g/cm³ density corresponds to a highly crystalline homopolymer matrix. Mold shrinkage measured per ASTM D955-21 on 3 mm injection molded plaques is generally 1.5–2.0% in the flow direction and 1.8–2.5% in the transverse direction. Differential shrinkage between directions is usually 0.2–0.6 percentage points. This anisotropy must be controlled through gate location and cooling-channel layout. Large flat surfaces such as lids and crate bottoms can bow if cavity-surface temperatures vary by more than 10 °C across the part. Demolding before the surface temperature falls below 70 °C may increase post-mold warpage. The material’s Vicat softening point of 126 °C supports short cooling times, but the high crystallinity also reduces room-temperature ductility compared with medium-density copolymers. Tooling for this grade should use draft angles of 1.0° minimum for deep-cavity pails and crates to prevent ejection scuffing.

    Environmental Stress Crack Resistance and Chemical Exposure Boundaries Are Not Uniform Across HDPE Homopolymer Grades

    HDPE 58D is a homopolymer and therefore has lower environmental stress crack resistance than medium-density copolymers with higher comonomer content. Under ASTM D1693-15, Condition B, 100% Igepal CO-630, published data for this specific configuration is limited; homopolymers in this density range commonly show F50 values below 10 h. The grade should not be specified for long-term contact with strong oxidizing acids, aromatic hydrocarbons, or high-temperature surfactant packages unless molded-part testing demonstrates adequate service life. In bleach-containing detergent packaging, static ESCR plaque data do not capture weld-line stress concentration; instrumented or full-container testing is required. Amine-based stabilizer packages should be avoided where downstream odor or color stability is critical. Metal stearate acid scavengers are generally compatible and do not interfere with injection molding of this grade.

    When HDPE 58D Is Substituted for Fractional-Melt Copolymer in Pail and Crate Applications

    Substitution of a fractional-melt copolymer with HDPE 58D reduces melt viscosity and permits lower injection pressure, shorter fill time, and improved cavity filling in thin-wall regions. The higher melt index of 8.0 g/10 min also corresponds to lower molecular weight than fractional-melt grades, which can reduce notched impact and ESCR. A pail molded from fractional-melt copolymer may exhibit ductile puncture failure at low temperatures, while HDPE 58D may transition to brittle failure at a higher temperature. For such substitutions, instrumented drop-weight testing per ASTM D3763-23 should be performed on molded pails at -20 °C, 0 °C, and 23 °C. Cycle time may improve due to higher melt flow, but cooling capacity and ejection speed often become the limiting factors. On a 350-ton toggle press, cycle-time reductions of 5–10% have been reported in crate tools after processing conditions are rebalanced; published data for this specific configuration is limited. This product should not be used as a direct drop-in replacement without verifying part performance under the end-use load and temperature conditions.

    Rheologically, the melt exhibits shear-thinning behavior typical of linear polyethylene. The melt flow ratio between 21.6 kg and 2.16 kg loads is not consistently published in the public data sheet for HDPE 58D; processors requiring capillary viscosity data for hot-runner balancing should request a shear-viscosity curve from the supplier. Published data for extensional viscosity of this specific grade is limited.

    Typical processing parameter ranges for NOVA Chemicals HDPE 58D
    Parameter Range Unit
    Melt temperature 220–260 °C
    Mold temperature 10–30 °C
    Injection pressure 70–100 MPa
    Hold pressure 60–80% of injection pressure %
    Drying temperature 80 °C
    Drying time 2 h
    Maximum melt residence time at 260 °C <5 min
    Screw L/D 20:1–24:1 —
    Compression ratio 3:1 —
    Mold surface temperature before ejection <70 °C

    For food-contact applications, the final article should be evaluated under FDA 21 CFR 177.1520 for olefin polymers and, where applicable, EU Regulation 10/2011. The base resin is typically supplied with a regulatory statement covering food-contact compliance; however, compliance depends on processing conditions, colorants, and end-use temperature. REACH and RoHS documentation should be verified with the supplier for the specific production lot. No statement in this document replaces the supplier’s regulatory certificate.

    Like most unstabilized HDPE homopolymers, HDPE 58D is not suitable for prolonged outdoor weathering without sufficient UV stabilization. The base resin may contain a standard antioxidant package but should not be assumed to contain long-term UV stabilizers. Outdoor applications require additional carbon black or hindered amine light stabilizer masterbatches, and the additive must be validated for dispersion and retention of impact properties.

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