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Chevron Phillips Chemical HDPE HHM3802

    • Product Name: Chevron Phillips Chemical HDPE HHM3802
    • 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 861419
    Product Name Chevron Phillips Chemical HDPE HHM3802
    Manufacturer Chevron Phillips Chemical
    Trade Name Marlex HHM 3802
    Polymer Type High Density Polyethylene (HDPE)
    Comonomer Hexene
    Density 0.938 g/cm³
    Melt Index 0.35 g/10 min (190 °C/2.16 kg)
    Tensile Strength At Yield 26 MPa
    Tensile Strength At Break 30 MPa
    Elongation At Break 600%
    Flexural Modulus 1100 MPa
    Escr >1000 h
    Vicat Softening Point 124 °C
    Brittleness Temperature -70 °C
    Hardness 65 Shore D
    Melting Point 130 °C
    Thermal Conductivity 0.45 W/m·K
    Specific Heat 1900 J/kg·°C

    As an accredited Chevron Phillips Chemical HDPE HHM3802 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Chevron Phillips Chemical HDPE HHM3802 comes in 25 kg polyethylene bags, 40 bags per pallet (1,000 kg total).
    Container Loading (20′ FCL) 20′ FCL container loading: Chevron Phillips Chemical HDPE HHM3802 in 25 kg bags, palletized, shrink-wrapped, and secured for safe export.
    Shipping Chevron Phillips Chemical HDPE HHM3802 is supplied as non-hazardous polyethylene pellets. It typically ships in 25 kg bags, 500–1,000 kg supersacks, or bulk trucks/railcars. Keep dry, ventilated, away from heat, ignition, and sunlight. Standard freight and local regulations apply; no special dangerous-goods handling is generally required.
    Storage Store Chevron Phillips Chemical HDPE HHM3802 in a cool, dry, well-ventilated area under cover. Keep original bags or containers closed, palletized, and off the floor. Protect from direct sunlight, moisture, excessive heat, and contamination. Avoid contact with strong oxidizers and ignition sources. Practice good housekeeping to control dust and slipping. Rotate stock using FIFO and observe recommended shelf life.
    Shelf Life Chevron Phillips HDPE HHM3802 has indefinite shelf life when stored sealed, dry, ventilated, away from UV, heat, and contaminants.
    Application of Chevron Phillips Chemical HDPE HHM3802

    On an accumulator-head shuttle blow molder producing 220 L tight-head or open-head drums, HHM3802 is processed at a die-head melt temperature of 210°C to 225°C. Barrel zones from feed to metering are typically stepped at 190°C, 200°C, 210°C, and 220°C with a 30:1 L/D grooved-feed extruder and hydraulically driven accumulator. Die gap is set between 2.0 mm and 3.5 mm; the head uses a diverging spiral mandrel to limit weld-line disruption. Because the resin has a low 2.16 kg melt flow rate and a 21.6 kg high-load melt flow index characteristic of high-molecular-weight HDPE, parison sag during accumulator transfer is the main control variable. Shot speed is set to keep total parison drop time below 8 s to 12 s for a 220 L drum preform; longer drop times produce measurable thinning in the upper body and chime area. Parison swell at the die exit is commonly 30% to 60%, requiring the preform die bush and mandrel to be undersized for the final drum diameter. 20-point to 30-point radial die-gap programming is used to add wall thickness at the chime and top curl; the programmed increase is typically 15% to 25% above nominal. Blow air pressure is 0.7 MPa to 0.9 MPa, mold coolant is maintained at 10°C to 30°C, and clamp force is selected to prevent flash separation at the pinch-off weld. Drop impact is run after conditioning at -18°C according to 49 CFR 178.603 for UN-type packaging; top-load strength is measured by ASTM D2659. Environmental stress-crack resistance is evaluated by ASTM D1693 Condition B; producers commonly set an F50 acceptance threshold above 1000 h for 2.0 mm notched specimens. For food-contact drum applications, the converter must verify olefin polymer compliance under FDA 21 CFR 177.1520(c) for the specific food type and conditions of use because the resin certificate alone does not constitute food-contact approval. Regrind from flash and rejected drums is introduced up to 30% by weight, but regrind that has undergone multiple heat histories can shift HLMI by 0.3 g/10 min to 0.8 g/10 min and alter the die-gap compensation required for constant wall thickness.

    What Limits Parison Layer Uniformity When EVOH Runs Against HHM3802 in Fuel Tank Coextrusion?

    In six-layer coextrusion blow molding for automotive fuel tanks, HHM3802 is placed in the outer and inner HDPE layers, separated from an ethylene-vinyl alcohol copolymer barrier by maleic anhydride grafted polyethylene tie layers. The resin’s function in this structure is low-temperature impact resistance, environmental stress-crack resistance, and pinch-off weld integrity, not hydrocarbon barrier performance. The EVOH layer thickness is usually 1% to 3% of total wall thickness, tie layers 1% to 2%, and the HDPE layers make up the remaining 95% to 97%. Melt temperature for the HDPE channels is held at 210°C to 230°C; the EVOH channel is limited to 195°C to 215°C because residence time at the interface above 225°C causes gel formation and layer-thickness striation. The coextrusion head is a spiral mandrel system with independently controlled temperature zones. Lower HDPE melt temperature of 210°C improves layer stability but reduces parison weld strength, while higher HDPE temperature improves pinch-off integrity but risks EVOH degradation. Parison programming for the tank shell modulates die gap by 50% to 60% of maximum opening to maintain wall thickness between 3.0 mm and 8.0 mm; the pinch-off zone is deliberately thickened because it experiences the highest orientation and weld stress. Mold temperature is 10°C to 25°C; blow pressure is 0.7 MPa to 1.0 MPa. Drop impact at -40°C and fuel permeation screening per SAE J1737 are common but OEM-specific; there is no single published pass limit. HHM3802 contributes to low-temperature crack resistance, but does not provide the hydrocarbon barrier. If regrind from trimmed tank flash exceeds 20% to 30% in the regrind-HDPE layer, parison swell and viscosity may shift enough to create thin spots at tank corners. Batch-to-batch HLMI drift above 0.5 g/10 min from the qualified baseline requires re-establishing the parison profile on a sacrificial preform before production is resumed.

    Slot-die extrusion of 1.8 mm to 4.0 mm high-molecular-weight HDPE sheet for returnable dunnage, layer pads, and chemical-containment trays uses a 30:1 L/D single-screw extruder with a barrier screw, screen changer, gear pump, and flexible-lip sheet die. Melt temperature at the die is controlled to 200°C to 230°C; pump inlet pressure and die pressure differential are maintained to keep gauge variation within ±3%. The three-roll polishing stack is set at 80°C to 95°C on the top roll and 70°C to 85°C on the middle and bottom rolls. Roll temperatures below 70°C produce high residual stress and can cause sheet curl after trimming; temperatures above 95°C cause gloss loss and transfer defects. HHM3802 sheet shows a flexural modulus of 800 MPa to 1000 MPa per ASTM D790 and tensile yield stress of 24 MPa to 28 MPa per ASTM D638. Thermoforming is performed with sheet surface temperature at 165°C to 180°C; the sheet is heated by ceramic or quartz ovens and surface temperature is verified with an IR pyrometer set to an emissivity of 0.92. At 160°C or below, semi-crystalline HMW-HDPE spring-back produces corner cracks and poor part definition. At 185°C or above, sag becomes excessive and wall-thickness distribution deteriorates in plug-assisted forming. Plug speed is set to 200 mm/s to 400 mm/s; plug material is syntactic foam or POM-C heated to 60°C to 80°C. Mold temperature is held at 40°C to 60°C. Twin-sheet thermoformed pallets and dunnage join two sheets at a compression pinch-off; the weldline is validated by shear and drop-height testing, not by visual inspection alone. Chemical-contact trays and battery trays require ESCR verification via ASTM D1693 Condition B; typical in-house acceptance is F50 above 500 h, but the base resin usually exceeds 1000 h when not contaminated with degraded regrind. Thermoforming skeletons and edge trim are reintroduced at 20% to 40% only after passing melt-flow, density, and color stability checks.

    Corrugated Drainage Pipe Vacuum Calibration, Perforation and Hydrostatic Exclusions

    Corrugated HDPE drainage pipe based on HHM3802 is extruded on a twin-screw corrugator with melt temperature at the die of 200°C to 220°C. The corrugator uses moving mold blocks under vacuum to form annular corrugations and a smooth inner liner; vacuum level is maintained at 0.02 MPa to 0.05 MPa below atmospheric, with block cooling water at 30°C to 60°C. Low vacuum or low melt temperature below 195°C produces springline wall thinning and collapsed corrugations; excessive vacuum or melt temperature above 225°C creates liner cavitation and surface roughness. Pipe stiffness is measured at 5% deflection according to ASTM D2412; AASHTO M294 Type S and related ASTM F2306 specifications commonly set a minimum pipe stiffness of 320 kPa for standard diameters, although project specifications may require 420 kPa or 550 kPa in high-load installations. HHM3802 contributes to stiffness through flexural modulus and part section, not through pressure rating; corrugated drainage pipe manufactured from this resin is not a pressure pipe and is not qualified under ISO 9080 or ISO 1167 long-term hydrostatic regression. Perforated drainage pipe is punched or drilled in the corrugation valley; the perforation introduces stress concentration and is a potential crack-initiation site in soil containing detergents or oxidizing residuals. Therefore the purchase specification generally includes ESCR per ASTM D1693 Condition B with F50 above 1000 h, and brittle failure at field temperatures of -18°C to -30°C is controlled by the resin’s brittleness temperature below -75°C per ASTM D746. In-line ultrasonic wall inspection verifies inner liner thickness and corrugation depth; offline ring stiffness is confirmed by load-deflection curves rather than by caliper checks alone. Regrind from corrugator start-up and trim is limited to 30% because higher regrind levels reduce cold-temperature ductility and increase pipe stiffness variability.

    Selected downstream qualification methods and typical acceptance criteria for HHM3802
    Downstream segmentQualification standardTypical industrial acceptance criterion
    Blow-molded 220 L drum49 CFR 178.603 drop at -18°C; ASTM D1693 Condition BNo leakage after drop; F50 > 1000 h
    Automotive fuel tank HDPE layerSAE J1737 permeation screening; OEM drop at -40°COEM-specific limits; no leakage after impact
    Thermoformed dunnage or trayASTM D790; ASTM D638; ASTM D1693 Condition BFlexural modulus 800–1000 MPa; tensile yield 24–28 MPa; F50 > 500 h
    Corrugated drainage pipeAASHTO M294; ASTM D2412; ASTM D1693 Condition BPipe stiffness at 5% deflection ≥ 320 kPa; F50 > 1000 h
    Containment or geomembrane sheetGRI GM13 density; ASTM D5397; ASTM D3895Density ≥ 0.940 g/cm³ for GM13; SP-NCTL and OIT per project specification
    Heavy-duty blown filmASTM D882; ASTM D1709; ASTM D1922Film gauge 15–100 µm; dart drop and tear values set by end-use specification

    Oxidative induction time measured on compression-molded HHM3802 coupons according to ASTM D3895 at 200°C is a routine quality gate for extruded containment sheet, but the resin’s density of approximately 0.938 g/cm³ per ASTM D1505 places it below the 0.940 g/cm³ minimum density commonly required by GRI GM13 for high-density geomembrane. Therefore, HHM3802 is not normally specified as the sole resin for a GM13 geomembrane. It appears in containment-liner sheet only when the project specification explicitly permits a density below 0.940 g/cm³ or when the converter dry-blends the resin with a higher-density HDPE to produce a compounded density of 0.940 g/cm³ to 0.955 g/cm³. Flat-die extrusion for such liner sheet uses a 120 mm to 150 mm grooved-feed single-screw extruder, a gear pump, and a textured embossing roll at 60°C to 90°C; the texture is intended to increase interface friction angle and improve extrusion-weld adhesion. Wedge welding and extrusion fillet welding are the standard joining methods, with peel separation measured by ASTM D6392 and shear rupture by ASTM D1004. The lower density of the resin reduces flexural modulus and puncture resistance compared with 0.945 g/cm³ to 0.950 g/cm³ HDPE grades; therefore, a nonwoven geotextile cushion is specified over angular subgrades. Stress cracking in service is evaluated with notched constant tensile load per ASTM D5397, and carbon black dispersion is checked by ASTM D5596 for UV-stabilized formulations. Published data for long-term chemical resistance of HHM3802 in this specific blended liner configuration is limited; end users must conduct immersion screening under EPA 9090A or ASTM D5747 with the actual leachate or process chemical, rather than relying on generic HDPE compatibility tables. Regrind loading above 20% has been associated with weld rejection variation when carbon black dispersion is poor, so incoming regrind is tested for melt flow and OIT before being returned to the sheet line.

    When 15 µm to 100 µm Blown Film Replaces Cast Liner Extrusion in Heavy-Duty Sack Applications

    HHM3802 can be extruded on high-molecular-weight HDPE blown-film lines with a 50 mm to 75 mm grooved-feed extruder, a low-pressure spiral mandrel die, and a dual-lip air ring when the film is specified for heavy-duty sacks, industrial liners, or paper/plastic laminates requiring puncture tolerance rather than film clarity. Die temperature is set at 200°C to 225°C, blow-up ratio is held at 2.0:1 to 4.0:1, and stalk height is maintained at 6 to 10 die diameters. Film gauge is typically 15 µm to 100 µm. Tensile properties are measured according to ASTM D882, dart drop impact according to ASTM D1709, and Elmendorf tear according to ASTM D1922. At comparable gauge, 0.938 g/cm³ density HMW-HDPE film tends to exhibit lower secant modulus but higher tear and puncture tolerance than 0.950 g/cm³ HDPE film, which is why this resin is selected for rough-surface filled sacks. Die-lip melt temperatures below 190°C produce shark-skin melt fracture and frost-line instability. Above 230°C, the bubble becomes less stable and gauge bands appear, especially with internal bubble cooling. Published optimization data for this specific resin on IBC-equipped HMW-HDPE blown-film lines is limited; start-ups are therefore optimized by bubble-stability trials rather than by direct transfer from cast-film settings. Anti-block and slip masterbatch loadings of 2% to 5% are adjusted based on film-to-film coefficient of friction measured per ASTM D1894. Edge-trim regrind is returned at 10% to 25%; higher regrind levels increase gel spec counts and lower dart drop, and heavy-duty sack converters often impose a maximum gel spec rating based on visual inspection. For paper/plastic laminates, total energy drop is measured according to ASTM D4272 in addition to ASTM D1709 because the laminate construction changes the puncture response of the HDPE ply.

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