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Dow HDPE 40E529

    • Product Name: Dow HDPE 40E529
    • 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 590298
    Productname Dow HDPE 40E529
    Polymertype High Density Polyethylene (HDPE)
    Density 0.952 g/cm3
    Meltindex 0.40 g/10 min at 190°C/2.16 kg
    Tensilestrengthatyield 25.5 MPa
    Tensilestrengthatbreak 30.3 MPa
    Elongationatbreak 600%
    Flexuralmodulus 1100 MPa
    Shoredhardness 66
    Vicatsofteningtemperature 126°C
    Environmentalstresscrackresistance >1000 h
    Brittlenesstemperature < -70°C
    Thermalexpansioncoefficient 1.2E-4 /°C
    Thermalconductivity 0.35 W/m·K
    Specificheatcapacity 2.3 kJ/kg·K
    Waterabsorption <0.01%
    Volumeresistivity >1E16 ohm·cm
    Dielectricconstant 2.3
    Dielectricstrength 20 kV/mm

    As an accredited Dow HDPE 40E529 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Dow HDPE 40E529 is typically packaged in 25 kg polyethylene-lined bags, palletized, or bulk containers for industrial use.
    Container Loading (20′ FCL) Container Loading (20′ FCL) for Dow HDPE 40E529: bagged polyethylene resin, dry conditions, secure stowage, even weight distribution, compliant documentation.
    Shipping Dow HDPE 40E529 is a non-hazardous high-density polyethylene resin supplied as pellets. It is not regulated for transport by DOT, IMDG, IATA, or ADR. Typical shipping: 25 kg bags, 1000 kg bulk bags/octabins, or bulk trucks/railcars. Store dry, cool, and away from ignition sources.
    Storage Store Dow HDPE 40E529 resin in a cool, dry, well-ventilated area away from heat, sparks, open flames, and direct sunlight. Keep original bags or containers closed to prevent moisture, dust, and contamination. Stack safely on pallets, avoid prolonged UV exposure, and maintain good housekeeping to prevent pellet spills. Do not store near strong oxidizers. Follow local regulations and supplier instructions.
    Shelf Life Typically 24 months from date of manufacture when stored cool, dry, and unopened in original packaging; verify with Dow datasheet.
    Application of Dow HDPE 40E529

    Extrusion blow molding of UN-certified agrochemical containers from DOW HDPE 40E529 is performed on continuous-extrusion shuttle machines with grooved-feed screws of 24:1 to 30:1 L/D and parison programming. The nominal density of 0.9529 g/cm³ (ASTM D1505) and nominal melt flow rate of 0.40 g/10 min (ASTM D1238, 190°C/2.16 kg) provide the melt strength required for 10 L to 60 L tight-head jerrycans while retaining top-load stiffness for stack stability. In production, die-zone temperatures are set from 175°C to 205°C, and melt temperature is held below 215°C because oxidized tails at the pinch-off weld produce pinholes after tail trimming. Blow air pressure of 0.7–0.9 MPa and mold recirculating water at 12–18°C are typical when sidewall thickness is kept at 1.2–1.6 mm and chime thickness at 3.0–3.8 mm. The main process conflict is the bottom pinch-off weld: parison temperatures below 195°C increase brittleness of the weld, while temperatures above 210°C allow excessive flash draw and reduce top-load performance. The finished container is conditioned at −18°C for drop testing under UN 6.1.5.3; stacking is conducted for 28 days at 40°C under a load corresponding to 3 m of identical packages, and leakproofness is verified at 30 kPa internal air pressure for 30 min under UN 6.1.5.4. For UV-stable agricultural-packaging formulations, 2.0–3.0 wt% carbon black masterbatch is introduced at the feed throat; dispersion is checked by ISO 18553, and poorly dispersed carbon black is rejected because agglomerates greater than 60 µm reduce weld seam elongation and shorten drop-test survival at low temperature.

    TestReferenceConditionAcceptance criterion
    DropUN 6.1.5.31.2 m, −18°C, packing group II liquidNo leakage
    LeakproofnessUN 6.1.5.430 kPa, 30 minNo leakage, no permanent deformation
    Hydrostatic pressureUN 6.1.5.5100 kPa, 30 minNo leakage
    StackingUN 6.1.5.640°C, 28 days, 3 m equivalentNo sign of instability

    High-density polyethylene containers for agrochemicals also face internal pressure from vapor generation. A 20 L jerrycan with wall thickness 1.4 mm is filled to 98% brimful and subjected to hydrostatic pressure of 100 kPa for 30 min in line audits to detect microvoids at the pinch-off. Die-head pressure is held between 20 MPa and 25 MPa to minimize melt fracture at the parison surface. The recommended mold parting-line vent depth is 0.02–0.05 mm; deeper vents produce burr, shallower vents trap gas. Regrind from tail flash is incorporated at 20–30 wt% with edge trim; above 30 wt%, torque increases and shot-to-shot weight standard deviation rises from 0.4% to 0.8% in long runs, shifting drop-test performance because wall thickness distribution becomes less repeatable. Die and core pin alignment is inspected with feeler gauges before each shift; eccentricity greater than 0.1 mm at the annular gap produces an uneven parison and is corrected to avoid one-sided thinning in the chime.

    What Limits ESCR Performance in Household Hypochlorite Bottles?

    DOW HDPE 40E529 is blow molded into 500 mL to 5 L bottles for sodium hypochlorite solutions at 5–10% active chlorine. Bottle design and process setup are governed by environmental stress crack resistance because hypochlorite solutions behave as stress-cracking agents at the pinched weld and at molded-in sharp radii. The density of 0.9529 g/cm³ provides adequate stiffness and chemical resistance but reduces ESCR relative to lower-density PE copolymers; consequently, the lower sidewall thickness is maintained at or above 0.60 mm for a 1 L bottle, and the bottom radius is programmed to 1.0–1.2 mm rather than 0.8 mm. On four-cavity shuttle machines, the die gap is set at 1.8 mm, the parison length at 210 mm, and bottle weight at 32–35 g. Mold coolant temperature is held at 10–14°C; cooling below 8°C increases frozen-in orientation and reduces crack resistance. Samples are tested by ASTM D1693 Condition A using 100% Igepal CO-630 at 50°C; a failure time of 250 h is the minimum plant control limit for bleach bottles with 0.60 mm minimum wall thickness. Containers for sodium hypochlorite above 5% are classified as corrosive and require UN performance testing; leakproofness is retested after drop and stack because neck-finish stress cracking can occur under closure torque of 2.5–3.0 N·m. The closure liner must be free of amine-based additives because these can deactivate stabilizers and accelerate oxidative degradation at the seal area. In addition to the base resin, a 0.5–1.0 wt% HDPE-compatible oxidative stabilization masterbatch is sometimes added for bleach applications; this is not automatically required for other household chemicals and must be approved for food contact if the same line is used for food bottles.

    Regulatory migration testing for monolayer food-contact HDPE bottles produced from DOW HDPE 40E529 follows EU Regulation No 10/2011 with an overall migration limit of 10 mg/dm² using 10% ethanol and 3% acetic acid as simulants for aqueous and acidic foods. The grade is positioned within FDA 21 CFR 177.1520 3.1a/3.2a for olefin polymers; this permits use with non-fatty foods up to boiling-water conditions only when the end-use packaging is not subjected to temperatures above 100°C. For ESL dairy applications from 250 mL to 1 L, bottles are blown on reciprocating-screw machines with 6–10 cavities. Melt temperatures of 190–205°C are maintained at the die head, and cycle times of 9–14 s are obtained for a 500 mL bottle at 28–32 g. The blow mold is cooled with turbulent flow at 10–15°C; the mold parting line is vented with 0.02–0.05 mm deep microvents. Flame or corona treatment raises the HDPE surface energy from 31–34 mN/m to 44–48 mN/m for in-mold label adhesion, measured by test inks according to DIN 53364. HDPE 40E529 does not require hopper drying at ambient relative humidity below 60%; when regrind is stored in an unheated silo under high humidity, condensation on pellets causes local surface splay at the die exit. A hopper dryer at 65°C for 1–2 h removes surface moisture without measurable thermal degradation. The typical addition rate of clean, food-contact HDPE regrind from tail flash is 20–30 wt%; above this level, melt-pressure variation in the die head increases from ±0.5 MPa to ±1.2 MPa and parison length becomes less stable. The package is checked for top-load failure at 250 N empty and for drop impact at 4°C; no closure loosening is permitted.

    Thermoformed Dairy Cups from Extruded HDPE Sheet

    On single-screw sheet lines with barrier screws and flex-lip dies, DOW HDPE 40E529 is extruded into 0.8–1.5 mm sheet for thermoformed dairy cups and portion packs. Melt temperature at the flat die is kept at 200–210°C, while the polished roll stack runs at 85–95°C to control post-shrinkage. The resulting sheet has a density of 0.9529 g/cm³, which provides high stiffness at low thickness but narrows the forming window relative to lower-density polyethylenes. Infrared pyrometers must hold sheet surface temperature at 138–148°C; below 132°C, the material tears at the plug-assist corners, and above 150°C, sag becomes severe enough to disturb the forming pattern. Plug-assist thermoforming is used with a plug temperature of 55–65°C and a mold temperature of 30–50°C. For a 0.9 mm starting sheet, sidewall thickness typically thins to 0.28–0.35 mm and bottom corner to 0.22–0.25 mm; a minimum corner thickness of 0.20 mm is enforced because lower values produce stress-whitening under ASTM D638 tensile loading at 500 mm/min. Up to 30 wt% post-consumer HDPE regrind from clear milk bottles is introduced into the sheet layer; above this, melt-pressure variation across the die exceeds ±4 bar, producing die lines that become cracking sites after cup sidewall flexing. The formed cups are tested for leakage by vacuum decay at −20 kPa and for stacking strength at 40°C for 24 h. Compliance for dairy contact is maintained under EU Regulation No 10/2011 and FDA 21 CFR 177.1520 when the recycled layer is separated from the food-contact surface by a virgin HDPE layer or when the recycled material is food-contact approved.

    When Blow Molded HDPE Dunnage Replaces Steel in Wet Logistics

    Accumulator-head extrusion blow molding machines with shot capacities of 30–45 kg and clamp forces from 250–400 t produce dunnage platforms and divider boards from DOW HDPE 40E529 in protein processing and wet logistics operations. The combination of 0.40 g/10 min melt flow rate and 0.9529 g/cm³ density gives the parison enough hot melt strength to support 5–8 kg shots without excessive drawdown. The main process bottleneck is cooling: wall sections of 8–12 mm require cycle times of 180–240 s. Mold cooling circuits use chilled water at 8–12°C with turbulent flow; when mold surface exceeds 25°C, post-mold warpage above 3 mm/m is observed after 48-hour conditioning. However, sub-8°C mold temperatures generate a frozen skin that traps interior shrinkage voids, reducing flexural fatigue life. The parison blowing sequence uses a 15 s pre-blow delay and pre-blow pressure of 0.4–0.5 MPa to seat the material against the mold before final blowing at 0.8–1.0 MPa. Dunnage platforms are washed with hot water at 82°C and alkaline detergents; HDPE 40E529 withstands these conditions without stress cracking when minimum wall thickness stays above 6 mm. USDA non-porous surface criteria are met by avoiding foaming agents and by polishing mold surfaces to 0.2–0.4 µm Ra. Published data for this specific heavy-wall configuration is limited; the values above reflect standard accumulator blow molding practice for fractional-MFR HDPE and should be confirmed in line trials for DOW HDPE 40E529.

    Die Land Length, Neck Ovality, and Closure Integrity in Personal Care Bottles

    DOW HDPE 40E529 is blown into 100 mL to 1 L personal care bottles on multi-station shuttle machines with high-pin neck calibration. The controlling parameter is die land length: a land length of 12–16 times the annular gap is required to stabilize die-head pressure and prevent eccentric parison extrusion. Neck diameter tolerance of ±0.10 mm is maintained for screw-neck finishes when shot-to-shot weight variation is below 0.5%. To reach this, melt pressure at the die head is held between 18 MPa and 22 MPa, and extruder speed is limited to 85–95% of maximum continuous screw output. The parison profile is programmed to concentrate material at the base and shoulder radii, where closure torque of 2.2–2.8 N·m and top-load stacking create stress. In post-mold finishing, corona treatment at 2.0–2.5 kW and 8 m/min line speed raises surface energy for screen printing and label adhesion; treated surfaces are checked with ASTM D3359 cross-cut tape pull and ISO 2409 classification. Personal care bottles are blow molded in clean-room environments with filtered air; mold vents are cleaned every 8 h to prevent surface contamination. Compliance is assessed under EU Regulation No 1223/2009 for cosmetic packaging, USP <661.1> for plastic packaging, and EU Regulation No 10/2011 where the same container may contact cosmetic formulations. No external lubricants are used; processed parts must pass residual lubricant testing before filling.

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