| HS Code | 747516 |
| Grade Name | Chevron Phillips Chemical HDPE 9352 |
| Polymer Type | High Density Polyethylene |
| Density | 0.953 g/cm³ |
| Melt Index | 0.35 g/10 min |
| Tensile Strength At Yield | 26 MPa |
| Tensile Strength At Break | 31 MPa |
| Elongation At Break | 600% |
| Flexural Modulus | 1240 MPa |
| Vicat Softening Point | 127 °C |
| Melting Point | 132 °C |
| Brittleness Temperature | < -70 °C |
| Environmental Stress Crack Resistance | > 1000 h |
| Hardness Shore D | 66 |
| Coefficient Of Linear Thermal Expansion | 1.2E-4 cm/cm/°C |
| Water Absorption | 0.01% |
| Dielectric Constant | 2.3 |
| Volume Resistivity | > 1E16 ohm·cm |
| Ul 94 Flammability Rating | HB |
As an accredited Chevron Phillips Chemical HDPE 9352 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Chevron Phillips Chemical HDPE 9352 is packaged in 25 kg polyethylene bags, palletized, and also available in 1,000 kg supersacks. |
| Container Loading (20′ FCL) | 20′ FCL loaded with palletized 25 kg bags of Chevron Phillips Chemical HDPE 9352, shrink-wrapped and secured for ocean transport. |
| Shipping | Chevron Phillips Chemical HDPE 9352 is a non-hazardous solid polyethylene resin. It typically ships in 25 kg bags, bulk bags, boxes, or bulk trucks/railcars. It is not DOT/IMDG/IATA regulated: no UN number, hazard class, or packing group. Store closed, dry, away from ignition sources. Avoid spills, as pellets can be slippery. |
| Storage | Store Chevron Phillips Chemical HDPE 9352 in a cool, dry, well-ventilated warehouse away from direct sunlight, heat, sparks, open flames, and UV light. Keep original bags or containers closed to prevent moisture, dust, and contamination. Palletize properly; avoid excessive stacking, punctures, or damage. Maintain moderate temperatures, good housekeeping, and first-in, first-out rotation. Follow the SDS and local regulations. |
| Shelf Life | Chevron Phillips Chemical HDPE 9352 has an indefinite shelf life when stored sealed, dry, away from sunlight, heat, and contaminants. |
In automotive stamping and assembly operations, returnable dunnage and cargo-floor panels are produced from Chevron Phillips Chemical HDPE 9352 by heavy-gauge sheet extrusion followed by plug-assisted vacuum thermoforming. The resin is typically fed as virgin pellets at 72–82 wt% of total feed, combined with 18–28 wt% clean in-house regrind from the same thermoformed trim loop, plus 2.0–3.0 wt% carbon black masterbatch compounded with hindered amine light stabilizers for interior UV exposure. A process-stabilizer masterbatch is added at 0.1–0.3 wt% to maintain melt viscosity during repeated regrind passes. Extrusion is carried out on a 90–120 mm grooved-bore single-screw extruder with a 30:1–33:1 L/D barrier screw, a static melt mixer, and a screen changer using 120–200 mesh screens. Melt temperature at the flat sheet die is maintained between 195 °C and 230 °C, with die-lip set openings from 3.2 mm to 5.5 mm for finished sheet calipers of 3.0–5.0 mm. The polished three-roll stack operates at 82–96 °C on the matte roll and 70–85 °C on the lower roll, producing controlled gloss and frozen-in orientation. In-line thickness scanning with caliper tolerance of ±0.15 mm is used because thermoforming draw uniformity depends on cross-machine gauge stability. Thermoforming is conducted on a sandwich heating system using ceramic infrared heaters at surface temperatures of 150–170 °C, measured by optical pyrometer. Plug-assisted forming with a 700–1,200 kN closing force and a syntactic foam plug moving at 0.5–0.9 m/s gives draw ratios up to 1:1.8 in ribbed dunnage pockets. Aluminum molds are temperature controlled at 65–85 °C, with vacuum levels of 25–40 kPa. Cycle times in production range from 45 s to 75 s depending on sheet thickness and draw depth. The main process conflict is sag in sheets wider than 2.0 m at forming temperature, which is addressed by differential upper/lower heater zoning and sag straps; excessive regrind above 28 wt% shifts low-shear viscosity and increases die-lip deposit generation, leading to transverse thickness bands in the formed part. Field data from production lines indicate that grinder dust extracted from trim edges must be dried to below 0.05 wt% moisture before reintroduction, otherwise surface splay and micro-voids appear across the formed part. Compliance for automotive interior cargo applications is commonly evaluated under FMVSS 302 for horizontal burn rate, SAE J369:2021 for polymeric interior parts, ASTM D638-14 for tensile yield, ASTM D790-17 for flexural modulus, and ASTM D648-18 for heat deflection temperature. REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU declarations are maintained where parts enter European assembly plants. The finished product types include trunk load floors, spare-tire well covers, seat-back panels, cargo tub liners, and foldable dunnage with mechanical fastening points, all produced in black or graphite grades to avoid visible scuffing during returnable logistics cycles.
Twin-sheet thermoformed returnable pallets and bulk containers require simultaneous melt strength for sag resistance, sufficient surface temperature for interfacial welding, and maintained environmental stress-crack resistance under repeated dynamic loading. In this process, HDPE 9352 is formulated at 65–80 wt% virgin pellets, 20–35 wt% clean post-industrial regrind, 2.0–2.8 wt% carbon black masterbatch, and 0.1–0.2 wt% antioxidant masterbatch. Twin-sheet lines are configured with two 33:1 L/D barrier-screw extruders feeding independent flat-sheet dies, each producing sheet 4–8 mm thick. The sheets are indexed into a twin-sheet clamp frame, heated to 155–170 °C surface temperature, and transferred to a two-sided aluminum mold at 60–85 °C. Vacuum levels of 25–40 kPa and mold closing pressure of 0.4–0.6 MPa fuse the top and bottom sheets at rib intersections and pinch points. Plug assist force is normally 600–1,000 kN and plug displacement speed is held below 0.4 m/s to avoid splitting the heated sheet at deep rib corners. The primary process conflict in regrind-loaded twin-sheet work is weld-line thinning at rib intersections when the melt-flow rate of the compounded feed drifts upward beyond 0.45 g/10 min under repeated regrind heat history. On production machines fitted with melt-pressure transducers at the die adapters, screw speed is adjusted to keep die pressure between 120 bar and 180 bar; pressures below 100 bar correlate with reduced interfacial contact and visible weld-line porosity in cross-sectional cut-ups. A secondary constraint is the moisture from regrind fluff stored in open bins; regrind is predried to <0.05 wt% moisture in hot-air hopper dryers at 80–90 °C for 4–6 h before extrusion. If moisture is not controlled, steam vaporization at the die lip disrupts sheet gloss and produces micro-voids that expand during thermoforming. Industry compliance for returnable pallets references ISO 8611-1:2011 for pallet load testing and ASTM D638-14, ASTM D790-17, and ASTM D256-10 for tensile, flexural, and notched Izod impact properties. Fire and logistics compliance may require EN 13501-1:2018 classification where used in European warehouses, together with REACH (EC) No 1907/2006 and RoHS 2011/65/EU declarations. The terminal products are closed-deck twin-sheet pallets, collapsible bulk containers, distribution tier sheets, and washable transit bases used in automotive, pharmaceutical, and consumer-goods closed-loop logistics networks.
| Process parameter | Heavy-gauge monolayer sheet | Twin-sheet returnable pallet | Data source/equipment |
|---|---|---|---|
| Nominal density | 0.953 g/cm³ | 0.953 g/cm³ | ASTM D1505-18 |
| Melt-flow rate | 0.35 g/10 min | 0.35 g/10 min | ASTM D1238-20, 190 °C/2.16 kg |
| Melt temperature range | 195–230 °C | 200–225 °C | Extruder head pressure transducer |
| Sheet thickness | 3.0–5.0 mm | 4.0–8.0 mm | In-line caliper scanner |
| Roll stack temperature | 82–96 °C | 80–95 °C | Chilled roll thermocouple |
| Forming sheet surface temperature | 150–170 °C | 155–170 °C | Optical pyrometer |
| Mold temperature | 65–85 °C | 60–85 °C | Mold thermocouple |
| Vacuum level | 25–40 kPa | 25–40 kPa | Forming vacuum gauge |
| Cycle time | 45–75 s | 80–150 s | Production batch cycle log |
| Plug assist force | 700–1,200 kN | 600–1,000 kN | Thermoformer hydraulic press |
Extruded HDPE 9352 sheet in 4.0–8.0 mm caliper is thermoformed into truck-bed liners, wheel-arch shields, and underbody protective panels for light trucks and off-highway vehicles. The feed stream consists of 75–85 wt% HDPE 9352 virgin resin, 15–25 wt% clean plant regrind generated from trim scrap, and 2.5–3.5 wt% UV-stabilized carbon black masterbatch, with 0.1–0.2 wt% processing aid where shear heating causes melt-temperature overshoot above 230 °C. Sheet extrusion uses a 90–120 mm extruder with 30:1–34:1 L/D, a flat sheet die with choker-bar adjustment, and a three-roll stack at 85–100 °C matte-side roll temperature. Caliper tolerance is held to ±0.20 mm because truck-bed liner forming draws the sheet across deep bed-rib geometries with draw depths of 80–150 mm. Thermoforming is done on a rotary four-station machine with top and bottom quartz heaters, sheet surface temperature 148–165 °C, and aluminum molds textured to mask scuffing. Forming vacuum is 25–35 kPa, mold temperature 70–85 °C, and cycle time 70–120 s. The competitive constraint in this application is cold-temperature impact retention after outdoor UV exposure; conditioning per ASTM D256-10 at -40 °C is required for wheel-arch shields, and production parts are tested after 1,000–2,000 h accelerated weathering under ISO 4892-3:2016. Formulators avoid post-consumer recyclate because melt-filtration residues and non-polyolefin contaminants generate surface pinholes over long production runs, particularly on high-draw sidewalls. Industry compliance references ASTM D638-14, ASTM D790-17, ASTM D648-18, and FMVSS 302 where cabin-side surfaces are involved. RoHS 2011/65/EU and REACH (EC) No 1907/2006 documentation is retained for fleet-equipment exports. The terminal products are truck-bed liners, tailgate protectors, wheel-arch liner panels, and underbody fuel-tank shields for original equipment and aftermarket programs.
Coextruded sheet for horticultural flood-floor trays uses a 15–25 wt% virgin capping layer based on HDPE 9352 and a 75–85 wt% core layer derived from washed post-industrial HDPE regrind. The cap layer is extruded at 2.0–3.5 mm total sheet caliper, with the cap thickness controlled between 0.3 mm and 0.6 mm to restrict warpage and maintain chemical resistance. The multilayer sheet is produced on a feedblock coextrusion line with a primary extruder for the regrind core at 90–120 mm and a secondary cap extruder at 45–60 mm. Melt temperatures are held at 195–220 °C for the HDPE 9352 cap layer and 180–210 °C for the regrind core to limit viscosity mismatch at the feedblock. Flat-die sheet is polished on a three-roll stack at 80–95 °C, then thermoformed on in-line continuous formers at 150–165 °C surface temperature into trays with drain channels and stacking lugs. The critical process failure occurs when the regrind core contains residual moisture or detergent contamination from washing; out-gassing at the die lip creates interfacial delamination between cap and core. Therefore, post-industrial regrind is predried to <0.05 wt% moisture and melt-filtered through 100–150 mesh screens before entering the core extruder. The combined feed formulation for the entire sheet is 50–70 wt% HDPE 9352 equivalent resin content when calculating the virgin cap mass balance, but the core layer itself may contain 80–100 wt% clean regrind with a small 1–3 wt% compatibilizing masterbatch where mixed-color regrind sources are used. Compliance for agricultural trays generally references ASTM D638-14 for tensile, ASTM D790-17 for flexural, ASTM D256-10 for notched Izod, and ASTM D570-98 for water absorption. Recycled content declarations follow ISO 14021:2016 where specified by crop-assurance programs. REACH (EC) No 1907/2006 and RoHS 2011/65/EU compliance is maintained for export to European greenhouse operators. The terminal finished products are planting flood trays, nursery shuttle trays, propagation flats, and floor drainage panels for climate-controlled glasshouses.
In motive-power lead-acid battery assembly and stationary battery-room maintenance, HDPE 9352 is converted into acid-spill containment trays, under-cell liners, and washdown sumps by sheet extrusion and low-draw vacuum forming. The compounding ratio is conservative: 90–98 wt% HDPE 9352 virgin resin, 2–3 wt% carbon black masterbatch, and 0–10 wt% certified same-grade regrind, with the lower regrind range specified where trays are in direct contact with 30–40 wt% sulfuric acid at ambient temperature. Chemical resistance is evaluated by immersion under ASTM D543-20 for 7–30 days, with a required tensile strength retention of at least 90% for static containment service. Extrusion uses a 75–100 mm extruder with 30:1 L/D, die-lip opening 2.5–4.0 mm, and roll-stack temperature 80–95 °C. Thermoforming into trays uses surface temperatures of 148–162 °C, mold temperatures of 70–85 °C, and low draw ratios below 1:1.4 to reduce residual stress near drain outlets. After forming, trays are annealed at 85–95 °C for 30–60 min on dimensionally constrained fixtures; this reduces stress-cracking initiation around thermoformed corner radii where ASTM D1693-21 condition B ESCR testing is used for lot acceptance. The main operational boundary is incompatibility with strong oxidizing acids and aromatic solvents at elevated temperature; battery trays are not recommended for nitric acid or hot alkaline cleaning above 60 °C unless specifically tested. Compliance documentation includes REACH (EC) No 1907/2006, RoHS 2011/65/EU, and, for packaged battery shipments, the applicable UN dangerous goods packaging provisions where completed packagings are certified under the UN 4H2 plastics packagings code or equivalent national regulation. Terminal products are acid containment trays, battery rack liners, spill decks, and sump inserts for motive-power and stationary energy-storage installations.
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