| HS Code | 488537 |
| Density | 0.954 g/cm³ |
| Melt Index 190 C 2 16 Kg | 0.20 g/10 min |
| High Load Melt Index 190 C 21 6 Kg | 20 g/10 min |
| Environmental Stress Crack Resistance F50 100 Igepal | >1000 h |
| Tensile Strength At Yield | 26 MPa |
| Tensile Strength At Break | 30 MPa |
| Elongation At Break | >600% |
| Flexural Modulus | 1400 MPa |
| Vicat Softening Temperature | 127 °C |
| Melting Temperature | 134 °C |
| Brittleness Temperature | < -70 °C |
| Hardness Shore D | 65 |
| Water Absorption | <0.01% |
| Thermal Conductivity | 0.44 W/m·K |
| Coefficient Of Linear Thermal Expansion | 1.2E-4 /°C |
As an accredited Chevron Phillips Chemical HDPE CL-200YB factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Chevron Phillips Chemical HDPE CL-200YB is packaged in 25 kg (55 lb) bags, with 40 bags per pallet. |
| Container Loading (20′ FCL) | 20′ FCL loaded with 25 kg bags of Chevron Phillips Chemical HDPE CL-200YB, palletized, shrink-wrapped, and strapped for ocean shipment. |
| Shipping | Chevron Phillips Chemical HDPE CL-200YB is a non-hazardous, solid polyethylene resin. It ships in 25-kg bags, bulk bags, or bulk trucks/railcars. Not regulated for transport by DOT, IMDG, IATA, or ADR. Store in a cool, dry, clean area away from moisture, heat, and direct sunlight. |
| Storage | Store Chevron Phillips Chemical HDPE CL-200YB in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and strong oxidizing agents. Keep bags or containers closed, clean, and palletized off the ground. Avoid moisture, contamination, and excessive stacking. Maintain ambient temperature and use first-in, first-out stock rotation. Consult the SDS for detailed handling and local requirements. |
| Shelf Life | No specific shelf life; stable under normal conditions when stored cool, dry, well-ventilated, and away from heat and ignition sources. |
In UN 1H1 blow moulding of large industrial drums and closed-head jerricans, Chevron Phillips Chemical HDPE CL-200YB is processed as a high-molecular-weight hexene-copolymerised high-density polyethylene with a nominal density of 0.956 g/cm³ under ASTM D1505-18 and a melt flow index of 0.20 g/10 min at 190°C/2.16 kg per ASTM D1238-20. The density contributes top-load and hydrostatic-pressure resistance in sidewalls of 1.5–2.5 mm, while the hexene branches raise environmental stress-crack resistance to a published Condition A F50 above 600 h when tested under ASTM D1693-15. The blow-moulding operation on an accumulator-head platform with 24:1–30:1 L/D barrier screws and grooved feed sections should maintain accumulator melt temperature at 190–205°C and die temperature at 195–215°C; melt temperatures below 188°C produce parison shark-skin and wall-thickness scatter, while residence-time oxidation above 220°C degrades ESCR and raises gel counts. A 200 L open-head drum tool typically requires 9–11 kg shot weight, 10–12 MPa accumulator pressure, and 60–80 mm/s push-out speed to limit parison drop time to 8–12 s. Blow pressure of 0.6–0.8 MPa with mould water at 8–15°C gives cycle times of 90–140 s; however, mould temperatures below 6°C increase cooling-rate-dependent crystallinity in the lower sidewall and reduce low-temperature ductility at the gate-to-chime transition.
Parison programming with 64- to 100-point radial control is required for 220 L containers. The die gap is typically set at 0.8–1.2 mm at the neck, widened to 2.0–2.6 mm at the chime, and narrowed again at the cut line. Ultrasonic wall-thickness mapping of production drums shows the gate-to-chime transition frequently thins to 2.5–2.9 mm against a 3.2 mm programmed sidewall; this is the primary drop-test failure zone. At −18°C, CL-200YB retains sufficient ductility to produce hinge tearing rather than brittle fragmentation, provided the bottom pinch-off flash is trimmed to a land width of 6–8 mm and flash thickness below 0.4 mm. Drop testing under 49 CFR 178.603 for Packing Group I at 1.8 m and −18°C passes with no rupture or leak after three drops when pinch-off notching is controlled. Hydrostatic qualification under 49 CFR 178.605 at 250 kPa for 30 min requires no leakage and no permanent distortion; measured sidewall deflection in CL-200YB drums is commonly 2–3%, but thin spots below 2.0 mm can creep beyond 5% and fail the test. The following qualification matrix applies to CL-200YB drums destined for dangerous-goods service:
| Qualification test | Standard | Condition | Required acceptance for CL-200YB drum |
|---|---|---|---|
| Drop test | 49 CFR 178.603 | PG I, 1.8 m, −18°C | No rupture or leakage after three drops |
| Hydrostatic pressure | 49 CFR 178.605 | 250 kPa, 30 min | No leakage, permanent deformation <5% |
| Leakproofness | 49 CFR 178.604 | 20 kPa, 10 min | No leakage |
| Stacking | 49 CFR 178.606 | 40°C, 28 days | No buckling, tipping, or leakage |
Clean internal flash and off-spec trimmed material from CL-200YB can be reintroduced as regrind at 25 wt% when dried at 80°C for 2 h and sieved to ≤6 mm; at this addition, elongation at break decreases by 4–6% and parison programmer offsets of +0.15 mm at the sidewall are needed to maintain wall distribution. For food-contact jerrican formats, 21 CFR 177.1520(c) 3.2a and EU Regulation No 10/2011, Article 12 are the applicable positive-list and migration-limit references.
On 20–30 L jerrican tooling with a through-handle core, the parison is split and rejoined at two vertical knit lines in the handle root. Weld strength in CL-200YB is determined more by the temperature of the recombined melt at contact than by programmed thickness alone. The weld factor, defined as the ratio of weld-line tensile strength to unwelded tensile strength, is 0.85–0.88 at 20°C when the handle core is held at 10–12°C. If the core temperature drifts to 20–22°C during continuous cycling at 70 s per part, the weld factor falls below 0.75 at −18°C under ISO 527-2:2012. This thermal drift is the main batch-to-batch variable in UN drop-test failures of jerrican handles. Production lines should maintain core cooling flow at 12 L/min; at 6 L/min the core temperature rises by 8–10°C within 4 h.
Programmed thickness at the handle root must be 4.0–5.5 mm, approximately 1.5× the nominal sidewall. The pinch-off land width is set to 6–8 mm, with flash thickness below 0.35 mm after deflashing. Weld-line tensile specimens cut perpendicular to the knit line and tested at 23°C fail in the bulk material when the weld factor exceeds 0.90; below 0.75, failure is brittle and initiates at the weld toe. Regrind use in jerrican handle zones should be limited to 15 wt% because each additional 10 wt% regrind addition lowers the −18°C weld factor by approximately 0.04. A 1.2 m Packing Group II drop test under 49 CFR 178.603 at −18°C is a practical release test for handle weld integrity when full UN certification is not required for a non-dangerous-goods jerrican.
Six-layer co-extruded automotive fuel tank shells use CL-200YB as the substrate and outer layer because the grade resists parison sag during formation of 8–12 kg multi-layer shot weights on 65–80 mm extruder sets. In the typical structure from outer to inner layer—HDPE virgin, regrind, tie, EVOH, tie, HDPE—the layer targets are 1.0–1.5 mm outer CL-200YB, 0.8–1.2 mm regrind, 0.08–0.12 mm tie, 0.15–0.25 mm EVOH, 0.08–0.12 mm tie, and 1.0–1.5 mm inner CL-200YB. Melt temperatures are maintained at 195–205°C for HDPE, 190–200°C for tie resin, and 205–220°C for EVOH; the die is held at 200–210°C. A six-screw accumulator head with 24:1–28:1 L/D extruders provides throughput of 450–600 kg/h. Parison drop times of 11–14 s and blow pressure of 0.6–0.8 MPa produce a 2.5 mm average shell wall, with layer-thickness verification by ultrasonic scanning of cut sections.
Monolayer HDPE fuel tanks at 2.5 mm wall thickness exhibit hydrocarbon permeation of 12–20 g/m²/day at 40°C under SAE J1737, exceeding current EPA 40 CFR Part 86 and CARB evaporative emission limits. Therefore, the tank must be surface-treated or co-extruded. Post-mould fluorination with fluorine/nitrogen at 0.5–2.0 vol% fluorine for 1–3 min creates a 10–30 μm fluorinated inner zone and reduces permeation to 0.8–2.5 g/m²/day. Sulfonation with SO₃ lowers permeation to 0.5–1.5 g/m²/day but requires neutralization with aqueous ammonia; residual acidity accelerates chain scission at the pinch-off weld. EVOH co-extrusion can reduce permeation below 0.1 g/m²/day, but layer symmetry must be maintained to prevent part warpage and delamination. Homologation of the finished tank includes ECE R34 fire resistance and FMVSS 301 fuel system integrity; CL-200YB contributes ductile response in rear-impact and rollover conditions, while the barrier system controls diffusive hydrocarbon losses.
Large blow-moulded tanks from CL-200YB in 1,000–5,000 L formats are produced on accumulator-head machines with programmed wall thicknesses of 6–14 mm; at 10 mm nominal wall, freeze-off exceeds 60 s and total cycle time reaches 15–20 min. After demoulding, integrally moulded filling ports, outlet bosses, and vent collars are welded by hot-gas welding with HDPE rod at a gas temperature of 300–350°C. A weld factor of 0.8–0.9 is achievable when the base material is preheated to 60–70°C. Weld certification under DVS 2207-1 requires tensile testing across the weld with failure in the parent material; for tanks at 2,500 L and above, a weld factor below 0.75 at −10°C is rejectable.
CL-200YB is suitable for continuous contact with non-oxidizing agricultural formulations, but specific chemical resistance must be verified by ASTM D543-21 immersion at 23°C and 50°C for 30 days, with tensile elongation retention of ≥80% as the acceptance criterion. Sodium hypochlorite at 10 wt% reduces elongation at break by more than 50% within 200 h and falls outside the recommended service envelope for this grade. Outdoor weathering of the YB stabilization system is assessed under ASTM D2565-23; after 1,500 h, tensile elongation retention of ≥75% is the accepted field-exposure benchmark. Tanks intended for potable water or food contact require confirmation against 21 CFR 177.1520 and EU No 10/2011 positive-list compliance for the finished welded assembly.
Thermoformed secondary containment trays, spill decks, and dunnage are direct downstream conversions of CL-200YB sheet extruded at 3–12 mm thickness; a 6 mm tray is formed at 165–175°C with plug-assist ratio 1.2:1 and leak-tested under ASTM D1998-21 at ambient temperature.
Blow-moulded marine floats, pontoon modules, and dock fenders from CL-200YB have wall thicknesses of 8–15 mm; after moulding, parts are foam-filled with closed-cell polyurethane at a fill pressure not exceeding 0.03 MPa to prevent water ingress after puncture. The governing test for low-temperature service is instrumented puncture at −20°C; CL-200YB sections of 10 mm thickness typically absorb 25–35 J under ISO 6603-2:2023 before cracking. A brittle failure below 20 J at the same thickness indicates excessive cooling rate, surface moisture on incoming pellets, or insufficient melt homogenization. The incoming resin moisture limit is 0.03 wt%; although HDPE is not hygroscopic, condensation on pellets stored in outdoor silos causes surface splay and porosity in thick sections.
Weathering resistance of the YB stabilization package is verified after 2,000 h of ASTM D2565-23 exposure; tensile elongation retention of ≥75% is maintained with the addition of 2.0–2.5 wt% carbon black masterbatch. Metal inserts for chain attachment are avoided in dock floats: differential thermal expansion between HDPE at 1.0–1.3 ×10⁻⁴ m/m/°C and stainless steel at 1.7 ×10⁻⁵ m/m/°C creates interfacial shear stresses of 6–10 MPa over a 30°C temperature swing, which exceeds the microcrack threshold at the insert boundary. Through-wall HDPE lugs hot-plate welded after moulding are the preferred load path for anchor chains and fender lines.
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