| HS Code | 457586 |
| Density | 0.964 g/cm³ |
| Melt Index 190 C 2 16 Kg | 0.35 g/10 min |
| High Load Melt Index 190 C 21 6 Kg | 35 g/10 min |
| Melt Flow Ratio | 100 |
| Tensile Strength At Yield | 29 MPa |
| Tensile Strength At Break | 34 MPa |
| Elongation At Break | 700% |
| Flexural Modulus | 1.24 GPa |
| Hardness Shore D | 66 |
| Vicat Softening Temperature | 127 °C |
| Brittleness Temperature | < -70 °C |
| Environmental Stress Crack Resistance | 1000 h |
| Melting Point | 134 °C |
| Thermal Expansion Coefficient | 1.2E-4 /°C |
| Dielectric Constant | 2.3 |
| Water Absorption | <0.01% |
As an accredited Chevron Phillips Chemical HDPE 9647T factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Chevron Phillips Chemical HDPE 9647T is supplied in 25 kg polyethylene bags, palletized for safe handling and storage. |
| Container Loading (20′ FCL) | Container Loading (20′ FCL) for Chevron Phillips Chemical HDPE 9647T: palletized 25 kg bags, shrink-wrapped, strapped, dry container, secured cargo. |
| Shipping | Chevron Phillips Chemical HDPE 9647T is a non-hazardous, solid polyethylene resin in pellet form. It typically ships in 25-kg bags, 1,000-kg bulk bags, or bulk trucks/railcars. No hazardous placards required. Store cool, dry, ventilated; protect from moisture, UV, heat, and contamination. Follow SDS and local regulations. |
| Storage | Store Chevron Phillips Chemical HDPE 9647T in a cool, dry, well-ventilated, indoor area away from direct sunlight, heat, sparks, flames, and strong oxidizers. Keep original packaging closed to prevent moisture, dust, and contamination. Use pallets, avoid excessive stacking, and maintain good housekeeping to prevent spills and slipping. Follow first-in, first-out rotation and avoid prolonged UV exposure. |
| Shelf Life | HDPE 9647T shelf life: typically indefinite when stored sealed in a cool, dry place, away from heat, sunlight, and contaminants. |
On accumulator-head extrusion blow moulding lines producing stackable jerrycans, 10–30 L open-head packagings and intermediate bulk container inner bottles, 9647T is processed at a melt temperature of 200–230 °C and a mould temperature of 10–35 °C. The melt flow rate of 0.70 g/10 min determined under ISO 1133-1:2022 at 190 °C/2.16 kg, combined with a density of 0.964 g/cm³ measured per ISO 1183-1:2019, places the grade in the high-stiffness blow moulding envelope. Accumulator-head clamp force is typically specified between 150 t and 450 t for shot volumes from 5 L to 30 L; the die bushing and mandrel are set to compensate for a parison diameter swell of 15–30 % relative to the annular die gap. Axial parison programming is applied to maintain a minimum programmed wall thickness of 1.8–2.5 mm in the top and bottom chime regions, where drop impact stress concentrates. Blow air pressure is held at 0.60–0.80 MPa; insufficient pressure below this range produces incomplete pinch-off weld formation at the tail flash. Finished containers are tested for column crush strength under ASTM D2659-21 and for drop impact resistance under ASTM D2463-15; no universal pass value exists because wall-thickness distribution and container volume dominate the result. For UN-rated packagings, closure torque retention and leakproofness after stacking must be validated on production articles according to the applicable transport packing instruction rather than on compression-moulded test plaques. Environmental stress cracking resistance is characterised per ASTM D1693-21 Condition B, 10 % Igepal CO-630, because stacked containers exposed to detergent-adjacent warehouse environments can develop sidewall cracks if an unbranched higher-density polyethylene is substituted. Processors should keep the melt front below 245 °C and limit accumulator residence time to 30 min at full operating temperature; excursions above this threshold reduce notched ESCR by thermal oxidation of the primary molecular chains.
In heavy-gauge thermoforming of 9647T sheet for returnable dunnage trays, twin-sheet pallets and automotive door-liner blanks, the sheet is extruded at 210–240 °C through a barrier screw with 30:1 L/D and a flexible-lip sheet die with an initial die gap of 0.6–1.2 mm for final thicknesses between 4 mm and 12 mm. The three-roll stack is controlled at 80–100 °C on the polished middle roll and 70–90 °C on the lower roll to reduce differential shrinkage. At the forming station, top and bottom quartz or ceramic heaters are zoned; with sheet above 4 mm, applying equal top and bottom heat flux causes the upper surface to reach 160–175 °C while the core remains below the optimum forming range and the lower surface becomes tacky. This condition produces non-uniform wall distribution at the four corners of deep-draw trays. Therefore the top heater bank is operated at 50–65 % of the bottom bank output, and the sheet surface temperature is verified with a non-contact infrared pyrometer before entering the form station. For twin-sheet forming of logistics pallets, the upper and lower sheets are independently preheated to 165–175 °C, transferred with pin-chain frames, and fused at the perimeter and internal kiss-off bosses under clamping pressure of 0.4–0.7 MPa. The high density of 0.964 g/cm³ reduces creep deflection under long-term static load compared with lower-density HDPE sheet, but the converter must verify creep modulus under ISO 899-2 at the intended warehouse temperature because pallet deflection is time-dependent. Machined holes and snap-fit details in thermoformed 9647T parts are evaluated for notch sensitivity using ISO 179-1/1eA Charpy impact on specimens cut from the formed wall rather than from edge trim. Published data for 9647T in twin-sheet pallet geometry is limited; therefore destructive testing of first-article pallets under ASTM D1185-98a or the relevant distribution cycle must be used for performance qualification. Drying is normally unnecessary when indoor storage humidity is below 60 % RH; if visible condensation is present, the granulate is dried for 2–4 h at 70–80 °C to prevent splay at the die lip.
Sheet stock fabricated from 9647T for chemical storage tanks and scrubber housings is cut, routed, and hot-gas welded for polyolefin shell construction in corrosive-service exhaust ducting. Hot-gas hand welding is performed with a 60° V-groove butt configuration for sheet thickness above 8 mm, a root gap of 0.5–1.0 mm, and a round HDPE welding rod of 3–4 mm diameter. Nozzle outlet temperature is maintained at 300–350 °C, with airflow of 40–60 L/min; welding speed is adjusted to produce a bead width of 1.5–2.0 times the rod diameter. Extrusion welding is specified for long straight seams with a melt temperature of 220–240 °C. Weld qualification follows DVS 2207-4 for heated-tool and hot-gas welding of polyolefin sheets; bend tests on 180° weld specimens are performed after 24 h conditioning at 23 °C ± 2 °C. The 0.964 g/cm³ density of 9647T increases resistance to wall deflection under hydrostatic head compared with 0.945 g/cm³ HDPE, but it also raises notch sensitivity in welded corners. Therefore the shell design requires internal corner radii of at least 12 mm, and all weld stops are ground to remove surface oxidation before restarting. Minimum service temperature for shell components under impact loading is governed by the ductile-to-brittle transition of notched welds; published data for 9647T at -30 °C is limited, so Charpy impact screening per ISO 179-1/1eA on welded specimens is required before outdoor winter operation. The grade is not inherently flame retardant; where fume extraction ducting penetrates fire-rated walls, the installation must comply with local mechanical and smoke-toxicity requirements and may require external intumescent wraps or a separate fire damper. Design stress for vertical cylindrical tanks is evaluated under ASTM D1998-15 for polyethylene upright storage tanks; full-thickness wall samples from the first fabricated shell are used for hydrostatic pressure testing rather than laboratory plaques.
Profile extrusion of 9647T into chain-wear strips, conveyor guide rails, marine fendering facings and dock impact pads is performed on single-screw extruders with a 24:1 to 30:1 L/D barrel, breaker plate screen packs of 60/80/100 mesh, and calibrator plates machined to final profile dimensions. Melt temperature is set at 195–220 °C; the calibration water temperature is held at 20–40 °C to prevent surface sink marks in solid sections above 20 mm. A Shore D hardness of 68 measured per ASTM D2240-15 and the high density of 0.964 g/cm³ provide abrasion resistance in sliding contact with dry granular media. However, sliding wear is not an intrinsic material property; it depends on counterface roughness, pressure-velocity conditions and particle hardness. For comparative ranking, tests are conducted under ASTM G133-05 or ASTM G99-17 against the specific counterface material, and the results from one quarry operation cannot be transferred without adjusting for abrasive particle moisture. Machining of extruded profiles is carried out with carbide-tipped saw blades at 800–1200 m/min cutting speed and a positive rake angle of 5–10°; water or air cooling is used to prevent melting at the kerf. Bolt-and-slot connections are preferred over welded connections for marine fendering because stress cracking around weld heat-affected zones in saltwater splash conditions can be accelerated by cleaning agents. For outdoor weathering, the grade contains no long-term UV stabilizer package unless otherwise stated; service life in direct sunlight requires carbon black masterbatch addition or a coextruded UV-stabilized cap layer, with weathering performance validated under ISO 4892-2 accelerated exposure rather than assumed from short-term visual appearance.
Outdoor recreational and agricultural panels fabricated from 9647T sheet are thermoformed or post-formed by heated-tool bending at a surface temperature of 160–175 °C. Typical components include tractor fender liners, livestock pen partitions, golf course retention boards and playground wear decks. Bending requires a minimum inside radius of 3 times the sheet thickness to prevent stress whitening at the outer fiber; mechanically fastened panels are drilled with relief angles of 15–20° and de-burred because cut edges concentrate point stresses. The flexural modulus of high-density polyethylene in this density range is typically in the 1.3–1.4 GPa band under ISO 178:2019, which provides panel stiffness but also reduces cold-impact flexibility relative to medium-density polyethylene. Panels intended for food-contact use in dairy barns or processing rooms are assessed under FDA 21 CFR 177.1520(c) 3.1a/3.2a and EU Regulation 10/2011 for overall migration and specific migration, but the converter must verify compliance on the finished article under the intended time-temperature and food-simulant conditions. The antistatic or conductive variants used in grain-handling equipment require separate additive masterbatches and are not within the standard 9647T datasheet envelope. Cutting and routing dust is controlled because fine polyethylene particles present a dust explosion hazard under NFPA 654 or equivalent local dust hazard standards when suspended in air at sufficient concentration. No statement is made that 9647T is suitable for continuous immersion in strong oxidizing acids without chemical resistance testing; the user must test coupon samples per ASTM D543-21 for the actual process stream at maximum service temperature.
For manufacturers certifying finished articles for food-contact, transport packaging or weathered outdoor service, the resin datasheet alone does not constitute article compliance. The matrix below identifies the principal verification routes relevant to fabricated 9647T parts in the applications described. Values and requirements are applied to finished articles, not pellets.
| Application contact regime | Reference standard or regulation | Typical required demonstration |
|---|---|---|
| Food-contact panels and equipment | FDA 21 CFR 177.1520(c) 3.1a/3.2a; EU Regulation 10/2011 | Overall migration, specific migration, organoleptic screening on finished article |
| UN-rated industrial packagings | 49 CFR Part 178; applicable transport packing instruction | Drop, stack, leakproofness and closure torque retention on production articles |
| Welded chemical storage tanks | ASTM D1998-15; ASTM D543-21 | Hydrostatic pressure, weld bend, chemical immersion coupon testing |
| Outdoor weathered profiles and panels | ISO 4892-2 | Accelerated UV exposure with colour change and retained tensile impact evaluation |
| Wear and abrasion service | ASTM G133-05 or ASTM G99-17 | Comparative wear rate against specific counterface material and pressure-velocity condition |
In all welded, thermoformed and blow-moulded applications, first-article validation is performed on production tooling because molecular orientation, weld fusion and wall-thickness distribution change the result relative to compression-moulded test plaques. Lot-to-lot variation in melt flow rate of ±0.05 g/10 min and density of ±0.002 g/cm³ does not normally require process setpoint changes on accumulator-head blow moulding lines, but sheet thermoformers should verify sheet sag depth at the oven exit and adjust upper heater output when changing batch. Material stored in outdoor silos may absorb surface moisture; regrind levels are maintained below 20–25 % unless the extruder is equipped with a vented barrel because higher regrind content raises melt pressure and can produce black specks at the die. Processors should not combine 9647T with acid-functional polyolefin adhesives at melt temperatures above 230 °C without checking for odour generation; published data for this specific configuration is limited.
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