| HS Code | 538660 |
| Density | 0.960 g/cm³ |
| Melt Index | 0.6 g/10 min |
| Tensile Strength At Yield | 30 MPa |
| Tensile Strength At Break | 25 MPa |
| Elongation At Break | 600% |
| Flexural Modulus | 1400 MPa |
| Vicat Softening Point | 127 °C |
| Brittleness Temperature | -70 °C |
| Environmental Stress Crack Resistance | >1000 h |
| Hardness Shore D | 66 |
| Thermal Conductivity | 0.45 W/m·K |
| Water Absorption | 0.01% |
As an accredited Chevron Phillips Chemical HDPE 9606 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Chevron Phillips Chemical HDPE 9606 is typically supplied in 25 kg polyethylene bags, palletized, or bulk containers. |
| Container Loading (20′ FCL) | 20′ FCL container loading of Chevron Phillips Chemical HDPE 9606, palletized resin bags, evenly distributed and secured for transport. |
| Shipping | Chevron Phillips Chemical HDPE 9606 is typically shipped as non-hazardous polyethylene pellets in 25 kg bags, 1,000 kg supersacks, or bulk trucks/railcars. Transport in clean, dry, closed containers; avoid moisture, contamination, direct sunlight, and ignition sources. Follow supplier SDS and local transport regulations. |
| Storage | Store Chevron Phillips Chemical HDPE 9606 in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, flames, and oxidizing agents. Keep original containers or bags closed to prevent moisture, dust, and contamination. Protect from physical damage and prolonged UV exposure. Maintain good housekeeping and use first-in, first-out stock rotation. Follow the SDS and local regulations. |
| Shelf Life | Stable under proper storage; use within 24 months of manufacture for optimal performance, kept cool, dry, sealed, and out of sunlight. |
On shuttle blow-moulding lines producing UN-rated tight-head drums and jerricans, Chevron Phillips Chemical HDPE 9606 is usually run at barrel temperatures of 170–205°C and a melt temperature of 190–205°C. The grade’s nominal density of 0.960 g/cm³ per ASTM D1505-20 and melt index of 0.60 g/10 min per ASTM D1238-20 Procedure A provide the stiffness needed for stacking while maintaining sufficient swell for uniform parison wall distribution; accumulator head temperatures are generally set at 200–210°C and parison programming is adjusted to thin the pinch-off region by 8–15% against the sidewall setpoint. In this downstream segment the critical process failure mode is cold-web splitting during mould closure when the parison is run below 185°C; conversely, surface gloss loss and odour generation appear when melt temperature exceeds 215°C because oxidative chain scission accelerates. A fluoropolymer processing aid is added at 200–500 mg/kg to suppress die-lip build-up and melt fracture at the parison die gap, particularly after 3–5 days of continuous production. UV-stabilized carbon black masterbatch is incorporated at 2.0–2.5 wt% for outdoor storage compatibility, and the antioxidant package is maintained at 0.10–0.25 wt% of the total compound. Terminal products—20–60 L jerricans, 120–220 L tight-head drums, and open-head drum liners—are qualified under UN Model Regulations Chapter 6.1, 49 CFR 178.509, and ADR 6.1.4; lot validation requires drop tests at -18°C under UN 6.1.5.3, internal pressure testing at 250 kPa for 30 min under UN 6.1.5.5, and ESCR screening per ASTM D1693-15e1 Condition B, with the specific F50 value cross-checked against the actual certificate of analysis because published data for 9606 in this exact configuration is not uniform across supply lots.
In production-scale trials on accumulator-head machines with 24:1 L/D grooved-feed extruders, the main bottleneck recorded is inconsistent pinch-off weld strength when regrind content exceeds 30 wt% because the regrind’s lower bulk density creates feed-bridging in the hopper and reduces melt strength at the weld line. The operational boundary is therefore set at 15–30 wt% dry, fine-particle regrind, screened to ≤ 6 mm particle size and stored below 60% RH; when ambient absolute humidity exceeds 12 g/kg dry air, hopper pre-warming at 70°C for 2 h is used to avoid pinholes. Extruder screw speeds of 40–70 min⁻¹ are typical; backpressure at the adapter is kept below 35 MPa to prevent excessive shear heating. Accumulator drop times are adjusted to keep parison hang time below 8–12 s depending on shot weight; field data indicate that longer hang times reduce die swell and produce thin sidewalls in the upper head region. Because the grade contains no intentionally added heavy metals, REACH 1907/2006 Annex XVII documentation is supplied via the safety data sheet, and SVHC content below 0.1 wt% is confirmed for European Article 33 declarations.
For injection-moulded open-head pails, lids and industrial crates, HDPE 9606 is processed in a different envelope than blow moulding; barrel temperatures range from 210°C at the feed section to 230°C at the nozzle, with mould temperatures held at 20–30°C to balance shrinkage and sidewall flatness. The melt index of 0.60 g/10 min requires a direct gate or diaphragm gate with a minimum land length of 0.8–1.2 mm and a gate diameter not less than 60% of the nominal sidewall thickness; otherwise freeze-off at the gate produces incomplete packing and a visible sink at the pail centre. Clamp tonnage is calculated from the projected area of the pail and lid stack, typically 0.6–0.8 kN/cm² of moulded area; a 25 L pail with a 700–800 cm² projected area commonly falls in the 5,500–7,000 kN clamp force range. Compliance for food-contact pails is assessed under 21 CFR 177.1520(c) and EU Regulation 10/2011 with overall migration below 10 mg/dm² after 10 days at 40°C in 3% acetic acid and 10% ethanol simulants; industrial pails follow UN 6.1.4 where required for solids or non-hazardous liquids. A mould-release slip masterbatch based on erucamide is dosed at 0.05–0.10 wt% of active amide to permit denesting of stacked pails, but levels above 0.15 wt% are avoided because migration to the gate-weld area reduces hot-tack strength and increases environmental stress cracking sensitivity under stacking load.
Process audits on hydraulic injection machines with 20:1 L/D barrier screws indicate that injection speed should be profiled rather than constant: a fast initial fill of 60–80 mm/s to minimize premature freeze-off, followed by a reduced pack phase of 20–30 mm/s for 4–6 s and hold pressure of 60–80 MPa for 6–8 s. Backpressure is limited to 0.5–1.0 MPa to avoid viscous heating; screw rpm is set at 40–80 min⁻¹ to provide sufficient plastication without exceeding a melt temperature of 235°C. The terminal products—5–25 L open-head pails, tamper-evident lids, and stackable industrial crates—are tested for top-load strength at 23°C and 50°C; a typical acceptance threshold for a 20 L pail is deformation under 250 kg top load not exceeding 5 mm after 24 h. Incompatibility is observed when unpigmented 9606 is blended with more than 3 wt% of polypropylene-based colour masterbatch or recycled caps; the dispersed PP phase enlarges at injection welds and reduces ESCR by more than 40% in ASTM D1693-15e1 testing, so lot screening is mandatory when changing masterbatch sources or re-work streams.
In heavy-gauge sheet extrusion for thermoformed agricultural fenders, equipment covers and battery trays, HDPE 9606 is run on a 30:1 L/D single-screw extruder with a barrel profile from 180°C to 210°C and a melt temperature of 195–210°C. The formulation for exterior agricultural parts typically includes a hindered amine light stabilizer at 0.2–0.5 wt%, a phenolic antioxidant at 0.1–0.3 wt%, and a UV-stabilized colour concentrate at 1.5–2.5 wt%; in-house regrind is added at 20–40 wt% but its melt index must be re-measured per ASTM D1238-20 Procedure A and held within 0.05 g/10 min of virgin resin to prevent sheet gauge variation. The sheet die is set to produce 3–10 mm thickness, and a three-roll polish stack operates at 70–95°C with a polished roll surface temperature difference of ≤ 3°C across the face to avoid differential shrinkage. During thermoforming, the sheet surface temperature is maintained at 130–140°C; infrared pyrometer scanning is used because sag below 2% of sheet width causes local thinning at corners while sag above 6% creates webbing in female cavities. Terminal parts such as tractor fenders, sprayer tank covers and battery trays are validated for low-temperature puncture impact per ISO 6603-2 at -30°C; when the part is used inside a vehicle cabin, flammability testing under ISO 3795 or FMVSS 302 must show a burn rate not exceeding 100 mm/min, and the supplier must provide the 9606 lot certificate to support REACH 1907/2006 and RoHS 2011/65/EU documentation for electrical-adjacent installations.
Field production records identify two recurrent process boundaries in this segment. Sheet gauge variation increases when the chill-roll gap is set below 70% of the die gap; this overcompresses the melt bank and increases edge trim waste by 15–20%. Regrind above 40 wt% lowers melt elasticity enough to cause sag during thermoforming; processors therefore limit closed-loop regrind and re-introduce a stabilizer masterbatch at 0.05–0.10 wt% with every 20 wt% regrind increment. HDPE 9606 does not require desiccant drying for standard sheet extrusion, but when stored in unheated warehouses with dew point above 15°C, a hopper pre-heat at 70°C for 2 h prevents surface splay and pinholes at the sheet edges.
In stiff blown film for heavy-duty sacks, construction debris sheeting and monolayer vapour barriers, HDPE 9606 is processed through a grooved-feed extruder with 25:1 L/D and a die diameter of 150–250 mm. The annular die gap is held at 1.2–1.6 mm, with a blow-up ratio of 3.5:1 to 4.0:1 because a lower BUR produces insufficient transverse orientation and a higher BUR destabilizes the bubble at the high melt tension of this grade. Melt temperature at the die is kept at 195–215°C; frost line height is positioned at 8–10 die diameters above the die face to maximize orientation without causing bubble flutter. The film formulation adds erucamide slip at 500–800 mg/kg, synthetic silica antiblock at 1,500–3,000 mg/kg, and carbon black masterbatch at 2.0–2.5 wt% when outdoor UV resistance is specified; carbon black dispersion is checked by ISO 18553 or ASTM D5596 microscopy on a 20 µm pressed film, because undispersed agglomerates above 30 µm initiate pinholes in 75–150 µm construction film. Terminal applications include 915 mm layflat heavy-duty sacks with a minimum tensile strength of 25 MPa in machine direction and 22 MPa in transverse direction per ASTM D882-18, and a Dart impact of at least 150 g per ASTM D1709-16a Method A for 50 µm film; these values are references for 0.960-density HDPE and must be confirmed on the specific line. Compliance for building films references EN 13984 for vapour control layers when the product is marketed in the EU, and the grade’s base polymer status under 21 CFR 177.1520(c) is relevant where sack applications may contact dry food, but specific food-contact clearance must be obtained from the supplier for each final film structure.
On a production line with a 90 mm grooved-feed extruder, throughput is controlled by the high backpressure of the die; operators maintain a specific output of 0.8–1.2 kg/h per mm of die circumference and keep melt pressure below 45 MPa to prevent excessive shear heating. The primary field failure in this segment is bubble instability from high regrind; regrind film is limited to 15–25 wt% and is re-pelletized or densified because fluffy film scrap has a bulk density below 0.30 g/cm³ and causes feed starvation. When carbon black film is produced, the extruder and die are purged with a cast acrylic or HDPE purge compound for 30–45 min before switching back to unpigmented film; carbon black carryover in a clear film lot appears as grey streaks and lowers the lot’s visual grade under ISO 11501. The grade’s moisture absorption is negligible, but surface condensation on cold pellets from outdoor silos can form microbubbles at 215°C; pre-warming to 60–70°C for 1–2 h is recommended when the pellet surface temperature is below the atmospheric dew point.
For non-pressure corrugated drainage tubing and cable-protection duct, the high stiffness of HDPE 9606 is used to meet ring stiffness without increasing wall thickness; the process is a continuous corrugator with vacuum-formed blocks, fed by a 24:1 or 30:1 L/D single-screw extruder. Barrel temperatures are set from 180°C to 215°C, the die-head temperature is controlled at 200–215°C, and the corrugator block temperature is maintained at 10–25°C with closed-loop recirculating water. The pipe formulation incorporates carbon black masterbatch at 2.0–2.5 wt% to achieve a carbon black content of 2.0–3.0%, with antioxidant package at 0.20–0.35 wt%; an external lubricant system is avoided because excessive external lubrication causes corrugator block sticking and poor weld formation at the corrugation fold. The melt must retain enough strength to bridge the vacuum slots between corrugator blocks; if melt temperature falls below 195°C, the parison tears at the fold, while above 215°C the melt sags into the block valleys and produces short ribs. Compliance for this segment includes ASTM F405 for corrugated polyethylene drainage tubing, AASHTO M294 for roadway underdrain, and EN 13476 for structured-wall piping where applicable; the finished pipe is tested for ring stiffness to ISO 9969 and carbon black dispersion to ISO 6964.
Field measurements on a 120 mm corrugator line show that the practical wall thickness window for 9606 is 0.8–1.5 mm in the inner wall and 0.6–1.2 mm in the corrugated profile; below this range, vacuum drawdown becomes unstable and pinholes form at the corrugation tips, while above it cooling time limits line speed and increases power consumption. The regrind content from cut-to-length waste is limited to 15–25 wt%, screened to ≤ 5 mm and re-dried at 70°C for 2 h if stored outdoors; wet regrind produces surface porosity at the folds. HDPE 9606 is not recommended for pressure-rated pipe service under ISO 4427 PE 80/PE 100 classifications, because the grade is not certified as a pipe resin; its utility in this segment is confined to gravity-flow drainage and protective conduit where the application specification permits high-density polyethylene with the supplied property data. Terminal products include 100–300 mm internal-diameter agricultural drain, 150–300 mm cable duct, and twin-wall culvert liners.
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