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Blue Polymers HDPE

    • Product Name: Blue Polymers HDPE
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications
    HS Code 377807
    Product Name Blue Polymers HDPE
    Manufacturer Blue Polymers
    Polymer Type High-Density Polyethylene
    Recycled Content Post-consumer recycled (PCR)
    Form Pellets
    Color Available in blue, natural, black, and custom colors
    Density 0.94-0.96 g/cm³
    Melt Flow Rate 0.2-1.0 g/10 min at 190°C/2.16 kg
    Tensile Strength At Yield 20-30 MPa
    Elongation At Break >500%
    Flexural Modulus 800-1200 MPa
    Notched Izod Impact 50-200 J/m
    Heat Deflection Temperature 60-80°C at 0.45 MPa
    Vicat Softening Temperature 120-130°C
    Melting Point 125-135°C
    Processing Methods Injection molding, blow molding, extrusion
    Typical Applications Bottles, containers, caps, closures, pipes, films
    Packaging 25 kg bags, 1000 kg octabins, bulk trucks
    Moisture Content <0.1%
    Bulk Density 0.55-0.65 g/cm³
    Compliance FDA, REACH, RoHS

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

    Packing & Storage
    Packing Blue Polymers HDPE is supplied in durable 25 kg moisture-resistant polyethylene-lined bags, securely palletized and shrink-wrapped for industrial shipment.
    Container Loading (20′ FCL) Standard 20′ FCL loaded with palletized Blue Polymers HDPE bags, shrink-wrapped, secured for safe international ocean transport and regulatory compliance.
    Shipping Blue Polymers HDPE is shipped as non-hazardous solid high-density polyethylene pellets. It is packaged in 25 kg bags, jumbo bags, or bulk, and transported in clean, dry trucks or railcars. Avoid moisture, UV, and ignition. Not DOT/IMDG/IATA dangerous goods. Keep containers sealed and secure. Follow local transport regulations and retain SDS.
    Storage Store Blue Polymers HDPE in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and open flames. Keep containers or bags tightly closed to prevent moisture, dust, and contamination. Use clean pallets and stack securely to avoid deformation or spills. Maintain good housekeeping and separate from incompatible chemicals. Follow local regulations and manufacturer recommendations.
    Shelf Life Stable under normal storage conditions; no specific shelf life. Keep dry, away from direct sunlight, heat, and incompatible substances.
    Application of Blue Polymers HDPE

    In PE100 pressure pipe extrusion, the processing window for high-density polyethylene with a bimodal molecular weight distribution is governed by melt temperature limits, shear history, and die swell control. The material is fed into a grooved-barrel extruder with an L/D ratio of 30:1 to 36:1 and a barrier screw to separate solid bed from melt. Melt temperature should be maintained between 190 °C and 225 °C; excursions above 235 °C accelerate oxidative chain scission and shift the molecular weight distribution toward lower chain entanglements, reducing slow crack growth resistance. Die head temperature is typically set 5 °C to 15 °C lower than the barrel discharge to control melt fracture. Melt pressure at the screen pack should be recorded, and a continuous pressure rise greater than 15 bar over an 8 h shift indicates gel accumulation or screen blinding. The extruder output rate must be aligned with cooling capacity because residual heat in the pipe wall above 80 °C at the vacuum calibration inlet causes inner surface deformation. Compliance with ISO 4427 and EN 12201 requires hydrostatic design stress derived from ISO 9080 testing; PE100 classification requires a minimum required strength of 10 MPa at 20 °C. Without an independent ISO 12162 designation for the specific Blue Polymers HDPE lot, a validated pipe compound specification is required. In practice, carbon black masterbatch addition of 2.0 wt% to 2.5 wt% is necessary for UV stabilization in exposed service, and dispersion should be verified by ISO 18553 microtome analysis rather than visual inspection.

    DesignationMinimum Required Strength per ISO 12162Hydrostatic Design Stress at 20 °CSDR 11 Pressure Rating
    PE808 MPa6.3 MPaPN12.5
    PE10010 MPa8.0 MPaPN16

    What Determines ESCR in Blow-Molded HDPE Containers for Aggressive Fluids?

    For blow-molded HDPE containers intended for aggressive fluids, environmental stress crack resistance is controlled by comonomer type, molecular weight distribution, and cooling rate during parison solidification. The forming window for high-molecular-weight Blue Polymers HDPE with an MFI of 0.3 g/10 min to 0.7 g/10 min under ISO 1133-1 conditions 190 °C/5 kg is narrower than for HDPE with MFI above 1.0 g/10 min because parison sag increases when melt strength is insufficient. Accumulator-head blow molding machines with a die gap of 1.5 mm to 3.0 mm and a die temperature of 160 °C to 190 °C are used to maintain uniform wall thickness in bottles up to 20 L. Mold temperature should remain below 25 °C to shorten crystallization time, but too rapid surface quenching locks in low-density skins with reduced ESCR. ESCR is evaluated by ASTM D1693 condition B in a 100 % Igepal CO-630 environment, and by the notched constant tensile load method of ISO 16770, which is more sensitive for slow crack propagation in high-molecular-weight resins. A stress crack resistance below 100 h in ASTM D1693 condition B is generally rejected in concentrated detergent or surfactant packaging specifications; published data for this specific Blue Polymers HDPE grade is limited, so lot testing is required. Post-consumer recyclate content above 15 wt% should be validated for ESCR retention because low-molecular-weight contaminants concentrate at tie-molecule intersections. Compliance for food-contact packaging must be verified by FDA 21 CFR 177.1520 section (c) 2.1 or 2.2 and EU Commission Regulation (EU) No 10/2011, with migration testing under worst-case temperature conditions. For packaging of strong oxidizing agents such as concentrated hydrogen peroxide above 10 wt%, the grade must be stabilized without heavy metal catalyst residues; transition metals above 1 ppm accelerate peroxide decomposition and stress crack formation. The final container must be designed with a minimum wall thickness of 0.8 mm at the pinch-off zone because that region experiences the highest strain during drop testing.

    Carbon black dispersion in high-density polyethylene geomembrane sheet governs ultraviolet aging and oxidative induction time because undispersed carbon agglomerates create localized stress concentrations and lower the activation energy for thermo-oxidative chain scission. Flat-die sheet extrusion or calender rolling of Blue Polymers HDPE is carried out with a melt temperature of 220 °C to 260 °C, and the polished roll stack is set at 80 °C to 110 °C to produce a wrinkle-free sheet with thickness tolerance within ±10 %. Welding by hot-wedge or hot-air fusion requires a wedge element temperature between 300 °C and 450 °C, yielding a seam interface temperature of 220 °C to 350 °C, and the optimum wedge speed is determined by peel separation tests on trial seams. The seam tensile strength, measured by ASTM D6392, must exceed 80 % of the parent sheet yield strength, and a 5.0 mm wide sacrificial edge behind the weld is discarded if oxidation discoloration is present. Oxidative induction time at 200 °C under ASTM D3895 is a critical release criterion; values below 100 min are not accepted for exposed lining service, while high-pressure OIT under ASTM D5885 at 150 °C gives a more sensitive indication of long-term antioxidant package stability. Carbon black content is maintained between 2.0 wt% and 3.0 wt%, and dispersion is evaluated by ISO 18553 with no individual agglomerate larger than 25 μm in the polished surface. For mining heap leach pads and brine evaporation ponds, the sheet must show no environmental stress cracking after 400 h in ASTM D5397 notched constant tensile load testing with a 10 % active strain. HDPE geomembrane should not be installed at ambient temperatures below −10 °C unless preheated, because crystalline phase stiffening increases the risk of brittle fold cracks during unrolling. The friction angle at the interface between textured sheet and nonwoven geotextile must be verified by ASTM D5321; textured surfaces are formed by embossed chill rolls or nitrogen-blown foaming and lose texturing if the contact pressure exceeds 4 bar during winding.

    When HDPE is Injection Molded into Industrial Pallets, Clamp Force Requirements Shift

    When Blue Polymers HDPE is injection molded into industrial pallets, the first process conflict appears between low viscosity for mold filling and high molecular weight for impact strength; high-flow HDPE with an MFI of 5 g/10 min to 20 g/10 min at 190 °C/2.16 kg fills long flow paths but sacrifices cold-brittleness resistance. The clamping force required is generally calculated as projected area multiplied by cavity pressure; for HDPE, cavity pressure between 25 MPa and 45 MPa is common, so a pallet with a projected area of 1.0 m² may require a clamp force of 2500 t to 4500 t depending on wall thickness and melt temperature. Melt temperature is set at 220 °C to 260 °C, and the mold surface is maintained at 10 °C to 30 °C; if the mold is too cold, weld lines at rib intersections fail at lower flexural stress due to incomplete molecular entanglement across the flow front. Injection speed should be profiled to prevent jetting near the sprue and to maintain a fountain flow front above 100 mm/s in thin ribs; if the flow front slows below 30 mm/s, premature freezing creates short shots and internal voids. Molding shrinkage of HDPE is anisotropic, typically 1.5 % to 3.0 % in the flow direction and 0.8 % to 1.5 % transverse, and pallet flatness after ejection requires post-mold cooling fixtures if warpage exceeds 5 mm per linear meter. Mechanical testing under ISO 527-2 and ISO 178 must account for the skin-core morphology generated by rapid cooling at the steel wall. Regrind levels up to 20 wt% are generally acceptable for non-food pallets if the regrind is obtained from the same production lot and sieved to remove fines below 1.0 mm. Incompatibility arises with polypropylene contamination above 3 wt%; this contamination causes delamination at internal weld planes and lowers impact resistance measured by ISO 179-1/1eA. The final pallet must bear a lot code and a density mark; a minimum rib thickness of 3.0 mm at the fork entry guarantees a safety factor above 1.5 under rated racking load if the base resin has a notched Charpy impact strength of at least 6 kJ/m² at −20 °C. Grade-specific processing is required because a shift in reactor comonomer distribution can alter the crystallization half-time and change required hold pressure by 10 bar even at identical MFI.

    Sintering Window and Internal Air Temperature in Rotomolded Chemical Storage Tanks

    Rotational molding of Blue Polymers HDPE chemical storage tanks requires a stable plateau between melting and thermal degradation, and this plateau is referred to as the sintering window. HDPE powders with an MFI of 3 g/10 min to 6 g/10 min at 190 °C/2.16 kg and a particle size distribution with 90 % passing 500 μm are standard. The mold is heated in a forced-air oven at 280 °C to 320 °C until the internal air temperature reaches 190 °C to 220 °C; if the internal air temperature remains below 185 °C, the powder particles do not fully coalesce and pinhole leakage occurs at the tank wall. If the internal air temperature exceeds 230 °C, the resin near the mold surface degrades, producing a visible yellow layer and reducing impact resistance. The rotational speed ratio is set between 4:1 and 10:1 around the major and minor axes, and the biaxial rotation must be adjusted to prevent powder accumulation in corners with a wall thickness deviation greater than 20 %. After oven heating, the mold is cooled in forced air, and the cooling rate determines the crystalline morphology; rapid cooling increases toughness but produces more residual stress, while slow cooling improves dimensional stability but lowers environmental stress crack resistance. The chemical resistance of the rotomolded tank is evaluated by ASTM D543 for the specific stored fluid, and the tank wall must pass ASTM D1998 hydrostatic and impact testing. For outdoor service, the HDPE must contain 2.0 wt% to 3.0 wt% UV stabilizer, and the outer surface should show no whitening after 1000 h of accelerated weathering under ISO 4892-2. Polyethylene rotomolding tanks for potable water must comply with FDA 21 CFR 177.1520 and NSF/ANSI 61; grades that contain mold release agents above 0.05 wt% may fail organoleptic testing. A common processing failure on production lines is the formation of bridging voids in the wall when the powder is too coarse or when the mold rotates too slowly during the melt coalescence stage; these voids act as leak paths under hydrostatic pressure. The minimum wall thickness for a 5000 L tank with a specific gravity of 1.2 for the stored chemical is determined by the long-term creep modulus, not by the short-term tensile yield strength. Published data for this specific Blue Polymers HDPE configuration is limited, so a full-scale prototype must be tested for thickness distribution and weld line integrity.

    In closure injection molding, Blue Polymers HDPE with an MFI of 8 g/10 min to 30 g/10 min at 190 °C/2.16 kg is processed at melt temperatures of 200 °C to 250 °C and mold temperatures of 5 °C to 15 °C to achieve cycle times below 8 s for 28 mm caps. The gate design is critical: a hot-tip gate with a diameter of 0.8 mm to 1.2 mm prevents cold slug formation, while a sub-gate into the tamper-evident band reduces secondary trimming. Thread unwind resistance is governed by the cooling time and the depth of the thread undercut; premature ejection before the skin temperature falls below 75 °C causes thread deformation. For gas-tight closure systems, HDPE caps must be tested under ASTM D3078 for vacuum bubble leaks with a failure limit of no bubbles at 60 kPa. Stress cracking of closures is assessed by ASTM D1693 or by torque retention tests under elevated temperature; common closure specifications require retention of at least 60 % of initial removal torque after 14 days at 50 °C. Pigmentation with high-loading inorganic pigments above 2.0 wt% can nucleate HDPE and reduce mold shrinkage, so dimensional stability must be verified against ISO 527-2 tensile modulus and ISO 1133-1 melt flow after compounding. Recycling of edge trim up to 10 wt% is acceptable if the regrind is dry; pre-drying at 80 °C for 2 h is required for resin stored at relative humidity above 60 %, even though HDPE is not highly hygroscopic, because surface moisture causes silver streaks in the gate area. Food-contact closures must satisfy EU Regulation (EU) No 10/2011 overall migration limits of 10 mg/dm², and organoleptic neutrality must be checked by sensory panel because unsaturated monomers from recycled content may taint bottled water.

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