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Dow HDPE DGDB-3485NT

    • Product Name: Dow HDPE DGDB-3485NT
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications
    HS Code 656353
    Density 0.9485 g/cm3
    Melt Flow Rate 190 C 5 0 Kg 0.35 g/10 min
    Tensile Strength At Yield 24 MPa
    Tensile Strength At Break 33 MPa
    Elongation At Break 700%
    Flexural Modulus 1000 MPa
    Vicat Softening Point 125 °C
    Brittleness Temperature < -70 °C
    Environmental Stress Crack Resistance Escr > 5000 h
    Hydrostatic Strength Classification PE100
    Minimum Required Strength Mrs 10 MPa
    Oxidation Induction Time Oit > 20 min
    Carbon Black Content 0%
    Moisture Content < 0.02%
    Bulk Density 0.55 g/cm3
    Melting Point 134 °C
    Hardness Shore D 65
    Color Natural
    Form Pellets

    As an accredited Dow HDPE DGDB-3485NT factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Dow HDPE DGDB-3485NT is typically packaged in 25 kg polyethylene bags, with 40 bags per pallet (1,000 kg total).
    Container Loading (20′ FCL) A 20′ FCL typically loads 20–22 MT of Dow HDPE DGDB-3485NT in 25 kg bags, palletized or loose.
    Shipping Dow HDPE DGDB-3485NT is a non-hazardous high-density polyethylene resin. It is not regulated for transport by DOT, IMDG, or IATA; no UN number, class, or packing group required. Ship in original sealed bags, octabins, or bulk containers, keeping dry and away from heat, sunlight, and contamination.
    Storage Store Dow HDPE DGDB-3485NT in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and open flames. Keep containers tightly closed to prevent moisture, dust, and contamination. Avoid extreme temperatures and prolonged UV exposure. Maintain clean, slip-resistant surfaces and follow the manufacturer’s SDS and local regulations. Use appropriate containment and handle in accordance with good industrial hygiene practices.
    Shelf Life Shelf life is 2 years from date of manufacture when stored in original packaging in a cool, dry, well-ventilated area.
    Application of Dow HDPE DGDB-3485NT

    Dow HDPE DGDB-3485NT enters extrusion blow molding operations at a nominal melt index of 0.30 g/10 min measured under ASTM D1238 / ISO 1133-1:2022 and a nominal density of 0.949 g/cm³ measured under ASTM D792 / ISO 1183-1. The primary downstream track is monolayer rigid container manufacturing on shuttle-type or long-stroke reciprocating screw machines. Equipment typically uses 20:1 to 24:1 L/D barrier screws with grooved feed sections. Melt temperature at the die head is held between 185 °C and 205 °C; sustained residence time above 220 °C produces localized gel formation and black specks in the pinch-off zone. Blow air pressure is set from 0.65 MPa to 0.85 MPa, while mold temperature is maintained between 10 °C and 20 °C with chilled water. The parison programmer is adjusted to deliver a sidewall thickness from 0.55 mm to 1.20 mm in the finished container, depending on capacity class and top-load requirement. Pinch-off insert geometry is machined to retain a residual flash thickness of 0.8 mm to 1.0 mm; thinner flash creates a notched parting line that cracks under filled-container drop impact. Surface moisture is controlled by hopper drying at 60 °C to 70 °C for 2 h when ambient relative humidity exceeds 60 %.

    Container-grade output in this track consists of 500 mL to 5 L bottles for bleach, liquid detergents, surface disinfectants, and automotive lubricants. For these end uses, the finished article is evaluated under ASTM D2463 for drop impact, ASTM D2659 for top load, and ASTM D1693 Condition B for environmental stress-crack resistance. Regrind from tail flash and deflashing is incorporated at 20 wt% to 30 wt%; ESCR-critical containers are limited to 25 wt% regrind. Compliance for household chemical use references FDA 21 CFR 177.1520(c) and EU 10/2011 where food-contact status is required for shared production lines. The material is not recommended for continuous hot-fill above 60 °C without repeated top-load verification under ASTM D2659 because HDPE modulus declines rapidly above the glass transition region and creep under vertical load becomes the limiting failure mode.

    ParameterMonolayer extrusion blow moldingCoextrusion blow molding with PCR core
    Melt temperature at die185–205 °C185–195 °C virgin skins; 180–185 °C PCR core
    Blow air pressure0.65–0.85 MPa0.70–0.90 MPa
    Mold temperature10–20 °C10–15 °C
    Regrind fraction20–30 wt%0–10 wt% in virgin skins
    Parison blow delay0.2–0.5 s0.1–0.3 s

    Recycled-content coextrusion requires split die-head melt temperatures and virgin skin layers

    When DGDB-3485NT is used in multilayer containers incorporating post-consumer recycled HDPE, the resin is confined to the virgin skin layers rather than the core. A six-layer structure is typically specified as 0.4 mm outer virgin HDPE skin, 0.2 mm maleic anhydride grafted tie resin, 0.05 mm EVOH barrier layer, 0.2 mm tie resin, 0.6 mm PCR HDPE core, and 0.3 mm inner virgin HDPE skin. The EVOH layer therefore represents 3–5 wt% of total wall thickness and must remain continuous across the bottle sidewall, shoulder, and base. Because the melt index of DGDB-3485NT is 0.30 g/10 min and many filtered PCR sources operate between 0.6 g/10 min and 0.8 g/10 min, the extruder temperature set points are split to limit viscosity mismatch at the layer interfaces. Virgin skin extruders are held at 195 °C; the PCR core extruder is held at 185 °C. Die gap programming is asymmetric, with 1.0 mm at the pinch-off and 0.7 mm at the shoulder, to maintain outer-layer thickness above 0.3 mm. If the outer skin thins below 0.3 mm, EVOH moisture ingress from ambient humidity causes barrier-layer haze and interlayer adhesion loss. Total wall thickness for 750 mL to 10 L detergent concentrate and crop protection containers is maintained between 1.0 mm and 1.8 mm.

    Production-scale behavior on continuous coextrusion blow molding heads shows that layer-to-layer flow instability appears when the PCR core melt temperature exceeds the virgin skin by more than 10 °C. The core then pushes into the skin at the die land, producing wavy layer boundaries and localized thin spots. Equipment validation is performed using layer distribution analysis on sectioned bottle walls under optical microscopy. Finished containers are tested under ASTM D2463 for drop impact at -20 °C and under ASTM D1693 Condition A for stress-crack resistance of the virgin outer layer. Compliance for recycled-content structures references EU 2019/904 for recycled content targets and REACH for PCR feedstock quality. Published data for DGDB-3485NT in six-layer coextruded configurations is limited; pilot validation on a continuous extrusion blow molding head with at least 300 kg/h total throughput is required before commercial qualification.

    What limits drop impact performance in curved-shoulder bottle designs?

    Drop impact failure in curved-shoulder bottle designs is controlled primarily by the shoulder wall thickness distribution and the pinch-off weld integrity, not by the base resin itself. During blow molding, the parison is stretched unevenly; the minimum wall thickness in the shoulder radius must remain above 0.45 mm for drop tests at -20 °C under ASTM D2463 Method A. Top-load resistance is evaluated simultaneously under ASTM D2659 at 23 °C. On shuttle machines with 20:1 L/D barrier screws, the extruder barrel temperature profile is set in reverse sequence: feed zone 170 °C, compression zone 185 °C, metering zone 190 °C, head 190 °C, and die 185 °C. The parison is pre-blown after a delay of 0.2 s to 0.4 s; the pre-blow air volume is adjusted until the parison diameter expands to 70–85 % of the mold cavity diameter before final blow. A curved-shoulder design with a sidewall of 1.0 mm and a shoulder wall of 0.7 mm passes a 1.2 m drop height for a 500 mL HDPE bottle. If the shoulder wall falls below 0.5 mm, the faster cooling rate in that region reduces crystallinity and decreases dart impact resistance, producing shoulder fracture at the radius.

    The primary production-scale failure mode is pinch-off seam cracking when bottles are filled at 95–100 % net capacity. A tail flash thickness below 0.8 mm generates a sharply notched weld line that propagates along the parting line under hydraulic shock during filling. To address this, the mold pinch-off angle is machined to 25–35°, and the parison cutoff is synchronized with the mold close stroke. Mold venting at the shoulder radius is increased to 0.02–0.05 mm channel depth to prevent entrapped air from thinning the shoulder wall. Process control is narrow: a deviation of ±5 °C in die temperature shifts parison length by 2–4 %, which can move the shoulder wall outside the 0.55 mm to 0.75 mm acceptance window. In production, wall thickness distribution is measured every 2 h using a Hall effect thickness gauge on sectioned containers. The finished containers are 250 mL to 2 L curved-shoulder bottles for personal care and household trigger spray products. Compliance testing includes ASTM D256 for notched Izod impact on compression-molded plaques of the same lot and ASTM D638 for tensile yield, with the latter used as an incoming lot verification standard.

    Fluorination, sulfonation, and fluorine-modified HDPE barrier systems for agrochemical containers

    When DGDB-3485NT is converted into containers for xylene, toluene, or low-viscosity agrochemical concentrates, barrier treatment is applied during or after blow molding. In-line fluorination uses fluorine gas diluted in nitrogen to 0.5–2.0 vol% and injected into the parison during the blow cycle. The fluorine reacts with the polyethylene surface to form a fluorinated hydrocarbon layer 0.1–0.5 µm thick, reducing solvent permeation by a factor of 4 to 15 relative to untreated HDPE. Post-mold fluorination at 25–40 °C for 5–20 min achieves similar barrier improvement but requires subsequent nitrogen purging to remove residual fluorine species before closure application. Fluorination equipment must be designed with gas-handling interlocks because the reaction is exothermic and residual fluorine is both toxic and corrosive. Containers produced under these conditions are 1 L and 5 L narrow-neck bottles with closures meeting UN 3H1 requirements for liquids of Packing Group III. Permeation is measured under ASTM D2684 or ISO 16101:2019 for volatile organic compounds. The outside appearance is inspected for uniform fluorination using a sodium mirror test or surface energy measurement; the treated surface typically shows a dyne level above 40 mN/m.

    Sulfonation with 10–20 wt% sulfur trioxide in dry air forms a cross-linked surface layer and improves barrier to nonpolar solvents, but is less common for small HDPE containers because of spent acid handling and surface discoloration risk. Fluorinated containers must not be regrind blended into virgin DGDB-3485NT without comprehensive recycling process validation. Fluorine-modified polymer can generate acidic thermal degradation products in the extruder, which accelerates metal corrosion in screw and barrel surfaces and reduces long-term melt stability. The operational boundary for regrind is 0 wt% unless a dedicated fluorinated-container recycling study has demonstrated no acidic outgassing under 200 °C processing. Finished agrochemical containers are also subjected to closure torque retention testing and permeation testing at 40 °C for 28 days to simulate warehouse storage in tropical climates.

    Pharmacopoeial conformance of high-density polyethylene containers requires formulation control and extraction assessment rather than simple resin compliance. Dow HDPE DGDB-3485NT is processed into 100 mL to 1 L bottles for oral solid and topical formulations using dedicated extrusion blow molding cells with closed resin conveying and HEPA-filtered cooling air. Regrind is excluded or capped at 10 wt% when the bottle is intended for direct contact with drug product; many drug master files specify 0 % regrind in the product-contact layer. Melt temperature is kept below 200 °C to minimize low-molecular-weight degradation products that contribute to non-volatile residue. Each production lot is tested under USP <661.1> for plastic packaging systems, Ph.Eur. 3.1.3 for polyethylene materials, and FDA 21 CFR 177.1520(c) where food-contact declarations are also required. The bottles are evaluated for heavy metals, total ash, and extractable organic carbon using the extraction solvents specified in Ph.Eur. 3.1.3.

    Moisture vapor transmission rate is assessed at 23 °C and 85 % RH according to ASTM F1249 using a MOCON Permatran-W 3/34 module; specimens are conditioned for 48 h before testing. Wall thickness for pharmaceutical containers is maintained between 0.8 mm and 1.2 mm. Finished products include oral solid dose containers, liquid cough syrup bottles, and topical wash bottles. The grade should be verified against the current Dow safety data sheet and regional pharmacopoeial monographs for specific drug-contact configurations, because additive composition and migration behavior can vary between production campaigns. Terminal container testing under USP <671> for moisture permeation and USP <661.1> for physicochemical testing is performed when the container is marketed as a drug packaging system.

    Application trackCompliance referenceTest methodTypical condition or limit
    Household chemical monolayer containersFDA 21 CFR 177.1520(c), EU 10/2011ASTM D1238, ASTM D1693Regrind limited to 25–30 wt%
    Recycled-content coextruded containersEU 2019/904, REACHASTM D2463, ASTM D1693Drop impact at -20 °C
    Pharmaceutical packagingUSP <661.1>, Ph.Eur. 3.1.3ASTM F1249, USP <671>Regrind 0–10 wt%, melt < 200 °C
    Agrochemical fluorinated barrier containersUN 3H1, ISO 16101:2019ASTM D2684Permeation at 40 °C, 28 days

    When short-cycle injection blow molding is specified for 50 mL cylindrical bottles

    Short-cycle injection blow molding of small cylindrical bottles with DGDB-3485NT is possible but constrained by the melt index of 0.30 g/10 min. Compared with injection blow molding grades rated at 1.0–2.0 g/10 min, this resin generates higher injection pressure drop in the hot runner manifold and slower cavity filling. Injection temperatures are raised to 210–230 °C; at the upper limit, residence time must be kept below 10 min to avoid molecular weight reduction and loss of environmental stress-crack resistance. The injection blow mold is configured with a three-station rotary table, core rod temperature controlled at 90–120 °C, and preform mold cooling at 10 °C. Preform wall thickness is 2.0 mm to 3.5 mm, and final blow air pressure is 0.7–1.0 MPa. Finished containers are 50 mL to 250 mL cylindrical or oval bottles for pharmaceutical and personal care products. Weight distribution is monitored by sectioning preforms at 30 min intervals, with a maximum wall variation of ±0.2 mm permitted across the preform circumference.

    Published data for DGDB-3485NT in injection blow molding is limited. A pilot run on a Jomar or Uniloy injection blow molding machine is required to establish pressure drop across the manifold, gate freeze behavior, and core rod release surface finish. If injection pressure exceeds 150 MPa at 230 °C, the short shot rate in the preform shoulder becomes the limiting process variable. In such cases, the grade is not an efficient substitute for a purpose-designed injection blow molding HDPE with a melt index above 1.0 g/10 min. Containers produced in this configuration are evaluated under USP <661.1> and FDA 21 CFR 177.1520(c) when used for oral solid dispensing or topical liquids.

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