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Dow HDPE DMDA-6320 NT 7

    • Product Name: Dow HDPE DMDA-6320 NT 7
    • 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 488264
    Product Name Dow HDPE DMDA-6320 NT 7
    Polymer Type High Density Polyethylene (HDPE)
    Density 0.953 g/cm³
    Melt Index 190 C 2 16 Kg 0.35 g/10 min
    Tensile Strength At Yield 26 MPa
    Tensile Strength At Break 31 MPa
    Elongation At Break 800%
    Flexural Modulus 1100 MPa
    Notched Izod Impact 0.800 ft-lb/in
    Hardness Shore D 65
    Vicat Softening Temperature 124°C
    Brittleness Temperature < -70°C
    Deflection Temperature At 0 45 Mpa 70°C
    Melting Point 131°C
    Environmental Stress Crack Resistance Escr >1000 h
    Processing Method Blow Molding
    Form Pellets
    Color Natural

    As an accredited Dow HDPE DMDA-6320 NT 7 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Dow HDPE DMDA-6320 NT 7 is supplied in 25 kg polyethylene-lined bags, typically palletized as 55 bags per pallet.
    Container Loading (20′ FCL) 20' FCL container loading for Dow HDPE DMDA-6320 NT 7: palletized 25 kg bags, securely stowed, suitable for ocean freight.
    Shipping Dow HDPE DMDA-6320 NT 7 is a non-hazardous high-density polyethylene resin, typically shipped in 25 kg bags, octabins, or bulk trucks/railcars. Keep packaging sealed and pallets intact during transit. Store dry, away from heat, moisture, and UV. No special transport classification required; follow local and supplier handling instructions.
    Storage Store Dow HDPE DMDA-6320 NT 7 in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, and strong oxidizers. Keep original packaging sealed to prevent moisture, dust, and contamination. Palletize securely, avoid excessive stacking, use FIFO stock rotation, and observe shelf life. Do not store near food, feed, or incompatible materials.
    Shelf Life Typically 24 months from date of manufacture when stored unopened in original packaging under recommended cool, dry conditions.
    Application of Dow HDPE DMDA-6320 NT 7

    Dow HDPE DMDA-6320 NT 7 is specified in extrusion blow moulding and surface-modified fuel system applications where a melt index of 0.55 g/10 min at 190 °C/2.16 kg (ASTM D1238) and a density of 0.953 g/cm³ (ASTM D1505) define the processing envelope. Supplier-public datasets also identify flexural modulus in the range 1,400–1,500 MPa (ASTM D790) and environmental stress crack resistance exceeding 600 h under 100 % Igepal CO-630 (ASTM D1693) Condition B. The downstream segments below are separated by distinct compliance profiles, layer composition, processing bottlenecks, and finished article requirements. The table that follows is a compliance matrix only; it does not substitute for process-specific qualification on the converter’s own tooling.

    Application segmentCompliance anchorCritical test or exposureTypical article
    UN-certified industrial drums49 CFR 178.509, ADR/RID 6.1.5Drop at –18 °C, stack at 40 °C for 28 d30–220 L HDPE drums
    Automotive fuel tanksUNECE R34, US EPA 40 CFR Part 86, CARB LEV IIIWhole-tank SHED permeation, cold impact at –40 °C20–70 L fuel tanks
    Agricultural chemical containers49 CFR 178.509, ASTM D1693Xylene/cyclohexanone ESCR 72 h at 40 °C1–20 L bottles
    Food-contact water vesselsFDA 21 CFR 177.1520, EU 10/2011Overall migration 10 d at 40 °C5–20 L carboys

    Monolayer and closed-loop regrind drums and UN-certified jerricans constitute the largest-tonnage application for DMDA-6320 NT 7. Production is carried out on accumulator-head extrusion blow moulding machines with extruder L/D ratios of 24:1 to 30:1, barrier screws, and head tooling sized to deliver shot volumes from 5 kg to 30 kg. The base formulation is 100 wt% virgin DMDA-6320 NT 7. Post-industrial regrind from trimmed flash and rejected containers is incorporated at 10–20 wt% only when the flake is dry, screened below 4 mm, and free of aluminium foil or label adhesive. Although polyethylene is not hygroscopic, condensation on cold flake at relative humidity above 80 % can introduce surface moisture and should be removed in a hopper dryer at 70 °C for 1–2 h before extrusion. The parison is programmed in 20–50 discrete points to shift wall thickness from the sidewall to the pinch-off and shoulder zones; sidewall thickness is typically 2.0–2.5 mm, while the bottom corner is thickened to 3.0–4.0 mm. Barrel temperatures are maintained between 170 °C and 195 °C, and the die head is held at 195–205 °C. Mould temperature is controlled at 10–20 °C to stabilise the inner surface and reduce post-mould shrinkage. Drop impact performance after filling is more dependent on weld-line integrity at the pinch-off than on the resin tensile properties. Compliance for dangerous goods packaging is a design-type test conducted on the finished container under 49 CFR 178.509 and ADR/RID 6.1.5; the resin alone is not certified. A 3H1 jerrican in the 20–25 L class is preconditioned at –18 °C with an aqueous antifreeze fill, dropped from a height determined by specific gravity and packaging group, leak tested, and stacked for 28 days at 40 °C. Terminal products are tight-head and open-head drums ranging from 30 L to 220 L, used for acetic acid, sodium hypochlorite, and water-based polymer emulsions. Published data for specific ESCR values at the 220 L size are limited, but the 3H1 qualification remains the controlling test.

    What Limits Extensional Viscosity and Parison Sag in 20 L Fuel Tank Blow Moulding with DMDA-6320 NT 7?

    In automotive fuel tank conversion, the low melt index of 0.55 g/10 min raises parison hang strength but also increases viscous heating and back pressure. The critical processing conflict is between running hot enough to dissipate shear and cold enough to limit parison sag below 5 % over the hang time of 8–15 s. Barrel profiles are typically 170 °C in the feed zone, 185–195 °C in compression and metering zones, and 195–210 °C at the head and die. Accumulator-head machines with shot capacities of 5–12 kg are preferred, and the die gap is set between 1.8 mm and 3.5 mm to control parison thickness and die swell. The rheological characteristic governing process stability is the zero-shear viscosity, which is high enough to prevent drawdown but temperature-sensitive enough that a 3 °C head-temperature drift can produce a visible shift in part weight distribution. Layer composition in six-layer coextrusion for low-emission tanks uses DMDA-6320 NT 7 as the inner and outer cap layers combined with a maleic anhydride-grafted polyolefin tie resin and an EVOH barrier layer. The thickness distribution is generally 10–15 % inner HDPE, 1–3 % tie, 1–3 % EVOH, 2–4 % tie, 40–55 % regrind, and 20–35 % outer HDPE. The inner HDPE layer must not contain recycled material unless validated for fuel exposure. Permeation compliance is anchored to whole-tank SHED testing under federal evaporative emission limits found in US EPA 40 CFR Part 86 and CARB LEV III. Mechanical approval of the tank under UNECE R34 includes a –40 °C cold impact on the filled tank, a fire resistance test, and a pressure cycle test. Terminal parts are 20–70 L fuel tanks with wall thicknesses of 2.5–4.0 mm and punched or moulded-in filler neck inserts. Published experimental data for parison sag of this exact grade in automotive tooling are limited, but the processing window is derived from in-line weight distribution studies on accumulator-head equipment.

    Agricultural chemical containers impose simultaneous stress cracking, creep, and permeation loads from aromatic solvents and surfactant packages. Continuous shuttle blow moulding lines running DMDA-6320 NT 7 for 1–20 L returnable and single-use packs operate at melt temperatures of 185–195 °C, with a lower bound of 180 °C to avoid unmelts and an upper bound of 200 °C to avoid molecular weight reduction that would depress ESCR. The formulation often includes 2–4 wt% of a UV stabilizer masterbatch and 1–2 wt% of a colour or slip concentrate, depending on pack colour and capping friction requirements. The wall thickness is 0.8–1.5 mm; the pinch-off weld at the bottom is typically 1.2–1.8 mm after trimming and must be leak-tested with air at 30–40 kPa for 10–20 s. The controlling compliance is 49 CFR 178.509 for UN-certified 3H1 packaging when the container holds dangerous goods, but the more severe agricultural market qualification requires a 72 h storage test at 40 °C with xylene, cyclohexanone, and nonylphenol ethoxylate mixtures. ESCR is evaluated upstream by ASTM D1693 Condition B in 100 % Igepal CO-630 at 50 °C, with acceptance typically above 600 h. The terminal products are litre-scale HDPE bottles, coextruded containers with fluorinated barriers for highly permeating actives, and closed-loop returnable crop protection packs with UV stabilisation for 3–5 year outdoor service. The main incompatibility in this segment is the addition of high levels of post-consumer recyclate, which reduces weld-line strength and ESCR; recyclate use is therefore limited to 0–10 wt% unless full UN qualification of the recycled containing article is repeated.

    If a Blow Moulded Water Storage Vessel Requires FDA 21 CFR 177.1520 Verification

    Food-contact and potable water containers made from DMDA-6320 NT 7 are not automatically covered by a resin certificate unless the converter confirms the base resin, masterbatch, processing aids, and finished article migration behaviour. The relevant compliance chain starts with FDA 21 CFR 177.1520 for olefin polymers and, in the European Union, Regulation (EU) No 10/2011 with overall migration limits of 10 mg/dm². Processing is performed at the lower end of the blow moulding envelope: feed zone 170 °C, transition 180–185 °C, metering 185–190 °C, and die head 190–195 °C. Melt residence time above 180 °C should not exceed 4 min to limit oxidative degradation and the formation of off-taste compounds. Rework content is limited to 10–15 wt% of the same food-grade lot and must be free of dust, label fragments, or previous chemical fill residues. The parison is programmed for a nominal wall thickness of 1.0–2.0 mm, and the mould is chilled to 8–15 °C to shorten cycle time and reduce crystallinity-related stress cracking. Terminal products are 5–20 L carboys, dispenser bottles, and lightweight water storage vessels. The operational limitation is that DMDA-6320 NT 7 is not an ultra-high-molecular-weight polyethylene; sustained hydrostatic pressure at elevated temperatures above 60 °C may lead to creep rupture of unsupported sidewalls. Published data for long-term hydrostatic strength of this specific grade are limited, so pressure service should be restricted to atmospheric or vented storage.

    Barrier Surface Fluorination and Permeation Control in HDPE Fuel Tanks

    Inline fluorination of blow-moulded fuel tanks changes the surface composition of DMDA-6320 NT 7 from polyethylene to a fluorinated hydrocarbon layer. The monolayer formulation before treatment is 100 wt% DMDA-6320 NT 7, with no regrind on the inner surface unless specifically validated for fuel contact. Fluorine concentrations of 0.5–1.5 vol% in nitrogen carrier are applied during blow moulding at pressures of 0.3–0.6 MPa for 10–60 s, depending on tank surface area and required permeation reduction. The penetration depth is typically 5–15 nm, measured by X-ray photoelectron spectroscopy. This treatment reduces hydrocarbon permeation by 1–2 orders of magnitude; published data for specific configurations are limited, but the certification pathway requires whole-tank SHED testing under US EPA 40 CFR Part 86 and CARB LEV III. The final component is typically a 35–70 L tank with a wall thickness of 2.5–4.0 mm and a fluorinated surface that must be handled with ventilation to avoid exposure to hydrogen fluoride byproducts. The operational boundary is that the fluorinated surface must be allowed to off-gas under controlled air exchange before secondary operations such as label adhesion or bracket welding; otherwise localised adhesion failure can occur at the pinch-off and insert regions.

    Household Cleaner Bottles Demand Simultaneous ESCR, Closure Torque Retention, and Pigment Dispersion

    The conversion of DMDA-6320 NT 7 into household and institutional cleaner bottles is a shorter processing window than industrial drums but is sensitive to neck finish and closure torque retention. Extrusion blow moulding lines with single or dual parison heads produce 500 mL to 5 L bottles at wall thicknesses of 0.6–1.2 mm. The base resin is modified with 1–2 wt% colour masterbatch and 0.5–1 wt% processing aid or mould release where tooling requires. The die head is held at 190–200 °C, and the mould temperature is 10–15 °C for gloss and dimensional stability. The critical test for the neck is application torque of 1.5–3.0 N·m on polypropylene closures, after which no stress whitening or radial crack should appear over 24 h at 23 °C. Drop impact is evaluated by ASTM D2463-15 on bottles filled with water at room temperature; because the resin has a density of 0.953 g/cm³, it provides higher top load and sidewall stiffness than conventional medium-density blown bottles. The main compliance issue is not dangerous goods transport but retailer specified cyclic compression and label panel flatness; the bottles must withstand top load of 250–500 N without buckling. Terminal products are trigger spray bottles for hypochlorite bleach, fabric softener packs, and institutional dispenser containers. The operational boundary is that contact with quaternary ammonium disinfectants can accelerate stress cracking if the container is moulded at too low a melt temperature; therefore, the weld line and tail flash zones are inspected with polarised light for residual orientation.

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