| HS Code | 207880 |
| Density | 0.954 g/cm³ |
| Meltflowrate 190c 2 16kg | 0.2 g/10 min |
| Tensilemodulus | 1200 MPa |
| Tensilestressatyield | 28 MPa |
| Tensilestrainatyield | 9 % |
| Tensilestressatbreak | 30 MPa |
| Tensilestrainatbreak | >600 % |
| Flexuralmodulus | 1200 MPa |
| Charpynotchedimpactstrength 23c | 30 kJ/m² |
| Charpynotchedimpactstrength Minus30c | 8 kJ/m² |
| Shoredhardness | 62 |
| Vicatsofteningtemperature | 75 °C |
| Meltingtemperature | 130 °C |
| Crystallizationtemperature | 115 °C |
| Thermalconductivity | 0.4 W/m·K |
| Coefficientoflinearthermalexpansion | 1.5E-4 /°C |
| Volumeresistivity | >1E15 ohm·cm |
| Dielectricconstant 1mhz | 2.3 |
| Dissipationfactor 1mhz | 2E-4 |
| Waterabsorption 24h | <0.01 % |
| Environmentalstresscrackresistance | >1000 h |
| Brittlenesstemperature | < -70 °C |
| Oxygenindex | 18 % |
| Ul94flammabilityrating | HB |
As an accredited LyondellBasell HDPE GC 7260 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | LyondellBasell HDPE GC 7260 is supplied in 25 kg polyethylene bags, palletized and stretch-wrapped for secure transport. |
| Container Loading (20′ FCL) | Container Loading (20′ FCL): LyondellBasell HDPE GC 7260 palletized in 25 kg bags, stretch-wrapped, evenly distributed, securely braced for ocean transport. |
| Shipping | LyondellBasell HDPE GC 7260 is a non-hazardous polyethylene resin. It ships in 25 kg bags, bulk bags, octabins, or bulk trucks/railcars. Keep containers sealed, dry, and away from heat, sunlight, and ignition. No special DOT/IMDG placarding required; follow local handling and warehouse stacking rules. |
| Storage | Store LyondellBasell HDPE GC 7260 in a cool, dry, well-ventilated area away from direct sunlight, moisture, heat, sparks, flames, and strong oxidizers. Keep original bags or containers closed and palletized to prevent contamination and dust. Avoid prolonged UV exposure. Follow first-in, first-out inventory. No special temperature control is typically required under normal warehouse conditions. |
| Shelf Life | LyondellBasell HDPE GC 7260 shelf life is typically indefinite when stored cool, dry, sealed, away from UV, moisture, and contaminants. |
For UN-rated tight-head jerrican moulding, HDPE GC 7260 is processed on accumulator blow moulding lines equipped with grooved-barrel extruders of 80–100 mm diameter and 25:1–30:1 L/D ratio, sized for shot capacities from 1.5 kg to 5.0 kg. The high-molecular-weight bimodal architecture of the grade maintains parison sag resistance at melt temperatures of 185–215 °C, while the programmed die gap is typically set at 1.8–2.8 mm for 20-L bodies and opened to 3.5–4.5 mm at handle pinch-off zones. Blow air pressure in the 0.55–0.80 MPa range and mould cooling water at 15–30 °C produce wall thickness measurements of 1.2–2.3 mm at the sidewall and 2.0–2.8 mm at the bottom chime. The lower process limit is governed by cold pinching at the weld line: melt temperatures below 180 °C generate incomplete fusion at the mould parting line, while temperatures above 225 °C can degrade the stabiliser package and increase the incidence of surface splay and dimensional shrinkage. First-generation regrind is limited to 20–30 wt% by mass; higher regrind fractions reduce notched impact and shorten ASTM D1693-21 environmental stress-crack resistance because recycled granulate contains degraded stabiliser residues and lower melt strength. If the production hall exceeds 60% relative humidity, surface moisture on regrind flake is removed in a hopper dryer at 60–70 °C for 1–2 h, with drying temperatures above 80 °C avoided to prevent particle tack and additive migration. ESCR is evaluated on notched specimens under condition B; lot release and container certification often require F50 above 600 h when tested in 10% Igepal solution. The finished jerrican is tested under UN Model Regulations 6.1.5.3 and corresponding ADR/RID 6.1.5.3 clauses, including drop, leakproofness, hydraulic pressure and stacking as shown in the attached matrix. End products include 10 L, 20 L and 25 L tight-head containers for UN 3H1/Y packaging of solvent-based hydrocarbons, agrochemical diluents and Group II/III liquid reagents.
| Test | Standard reference | Condition used for HDPE GC 7260 containers |
|---|---|---|
| Drop integrity | UN Manual 6.1.5.3.4; ADR/RID 6.1.5.3.4 | 1.2 m drop onto concrete impact surface, filled with water/glycol to specific gravity 1.2, conditioned 24 h at −18 °C |
| Leakproofness | UN Manual 6.1.5.3.2; ADR/RID 6.1.5.3.2 | Internal air pressure 20 kPa or water immersion; no visible leakage over 5 min |
| Hydraulic pressure | UN Manual 6.1.5.3.5; ADR/RID 6.1.5.3.5 | Minimum 100 kPa for 30 min without leakage or rupture |
| Stacking | UN Manual 6.1.5.3.6; ADR/RID 6.1.5.3.6 | 28 days at 40 °C under calculated stacking load; maximum vertical deflection recorded |
Industrial agricultural packagers have adopted HDPE GC 7260 for solvent-borne emulsifiable concentrate containers in which the outer HDPE layer must resist stress cracking from xylene, cyclohexanone and formulated surfactants while retaining UN drop integrity. Six-layer coextrusion blow moulding is configured as HDPE / regrind / tie / PA / tie / HDPE, with outer HDPE layers representing 25–35 wt% each and the polyamide barrier layer 2–4 wt% of the total parison. An alternative fluorinated monolayer construction uses gas-phase fluorination of the interior surface; published concentration-time profiles for a specific container geometry are limited because barrier performance is a function of bottle surface-to-volume ratio, fluorine concentration and exposure duration. Melt temperature for the HDPE layers is maintained at 190–215 °C, while the polyamide layer and tie resin are processed within their supplier-specified windows to avoid interfacial instability. The coextrusion die gap is kept between 1.5–2.5 mm, and interlayer thickness variation is controlled by servo-driven parison programming with ±0.2 mm wall tolerance at the shoulder and chime. High-load pigment masterbatches are added at 1–3 wt%; the carrier resin must be HDPE or LLDPE with sufficiently similar high-load flow to prevent weld-line delamination. Containers are qualified under UN 3H1/Y for liquids with specific gravity up to 1.4 and are subjected to chemical compatibility testing in accordance with UN Manual 6.1.5.2.5 using the actual packaged formulation for 6 months at 23 °C unless an approved elevated-temperature schedule applies. ESCR after container manufacture is checked by cutting specimens from the sidewall and conditioning under ASTM D1693-21 condition B; weld-line specimens are also cut across the pinch-off seam because this zone contains oriented, sheared material and is the primary crack initiation site. End products are 0.5 L, 1 L and 5 L narrow-mouth agricultural chemical bottles, jerrican-style pesticide containers and livestock pour-on packaging.
In continuous immersion service, marine aquaculture floats and pontoon components are blow moulded from HDPE GC 7260 with nominal wall thickness between 2.5 mm and 6.0 mm, depending on design pressure and intended buoyancy reserve. The critical quality parameter is the pinch-off weld, which is produced at the mould parting line and must be fully fused without a V-notch; an incomplete weld permits slow water ingress and reduces effective buoyancy by filling internal cavities. Carbon black is added at 2.0–2.5 wt% of a 40% carbon black masterbatch to achieve UV resistance under ISO 4892-2:2013 xenon-arc exposure with 0.51 W/m² at 340 nm and black-panel temperature 65 °C. HALS stabiliser is incorporated at 0.1–0.3 wt% when additional oxidative stability is specified for tropical mariculture. Impact resistance after weathering is measured under ISO 179-1:2023 Charpy notched conditions at −30 °C; the specification often requires notched impact above 15 kJ/m² after 2000 h of xenon-arc exposure, though published data for this specific grade in continuous seawater immersion remains limited. The upper continuous service temperature in air is constrained by the Vicat softening point of the grade; in direct sun, black surfaces can reach 55–65 °C, which remains below the softening range but contributes to creep under constant hydrostatic load. Permanent exposure to gasoline, diesel or chlorinated solvents is outside the operational boundary of HDPE GC 7260 because solvent uptake reduces notched impact and promotes environmental stress cracking at the pinch-off seam. End applications include 25 L to 200 L blow moulded floats, buoyancy chambers for mussel lines, and flotation collars for aquaculture cages.
Composite intermediate bulk container inner bottles for high-purity chemical distribution use HDPE GC 7260 as the blow moulded inner vessel within a galvanised steel or wire-mesh outer frame. The parison is extruded through a 90–120 mm grooved-barrel extruder with 30:1 L/D and an accumulator head with 10–25 kg shot capacity; wall thickness is programmed between 2.0 mm and 4.5 mm to meet UN 31H1/Y requirements for liquids with specific gravity up to 1.5. Process temperatures are set at 190–220 °C for the melt, with blow air pressure 0.50–0.75 MPa and mould temperature 10–25 °C. When the bottle is intended for food-contact or pharmaceutical ingredients, the finished article is assessed under FDA 21 CFR 177.1520 for olefin polymers and, where applicable, EU Regulation (EU) No 10/2011 overall migration limits of 10 mg/dm² for food simulants. For electronic-grade chemical distribution, extractables testing is performed with 18 MΩ·cm water at 40 °C for 7 days; metallic extractables are typically specified below 0.1 mg/L per element, although published data for this specific GC 7260 configuration is limited and must be generated on the finished bottle. The pinch-off at the base of the IBC inner bottle is a high-risk zone for stress cracking because the discharge valve area concentrates internal hydraulic load during stacking. Therefore, the bottle base is designed with a minimum radius of 5 mm at the pinch-off transition and is evaluated under ASTM D1693-21 condition B after sectioning from the base weld. Regrind from rejected IBC inner bottles is limited to 15–25 wt%; higher regrind fractions reduce high-load melt strength and create parison folds at the bottle shoulder. End products are 1000 L inner bottles for composite IBCs in chemical distribution, high-purity solvents and food-grade liquid handling.
| Part class | Melt temperature (°C) | Die gap (mm) | Blow air pressure (MPa) | Mould temperature (°C) | Nominal wall thickness (mm) |
|---|---|---|---|---|---|
| UN-rated jerrican 10–25 L | 185–215 | 1.8–2.8 | 0.55–0.80 | 15–30 | 1.2–2.3 |
| Agrochemical coextruded bottle 0.5–5 L | 190–215 | 1.5–2.5 | 0.50–0.75 | 15–30 | 1.0–2.0 |
| Aquaculture float 25–200 L | 185–210 | 2.0–4.0 | 0.50–0.70 | 10–25 | 2.5–6.0 |
| IBC inner bottle 1000 L | 190–220 | 2.0–4.0 | 0.50–0.75 | 10–25 | 2.0–4.5 |
| Automotive reservoir 2–5 L | 185–210 | 1.2–2.4 | 0.50–0.75 | 15–30 | 1.5–3.0 |
When coolant expansion tanks and windscreen washer reservoirs are hot-plate welded from HDPE GC 7260, the plate temperature is maintained at 210–230 °C because weld interface temperatures below 210 °C produce brittle joints with low tensile strength under ASTM D638-14 Type IV conditions. Heating time is set at 15–30 s for wall thickness 2.5–3.5 mm, followed by joining pressure of 0.10–0.30 MPa and cooling in the fixture for 60–120 s. Melt for blow moulding is kept at 185–210 °C, with die gap 1.2–2.4 mm and blow air at 0.50–0.75 MPa. Coolant expansion tanks are qualified by long-term immersion in 50:50 ethylene glycol/water at 95 °C for 1000 h, with tensile strength retention measured according to ISO 527-2:2012 at 50 mm/min; published data for this specific grade in pressurised automotive service is limited, so tank manufacturers conduct component-level pressure cycling at 1.0 bar to 1.4 bar and burst tests above 3.0 bar. HDPE GC 7260 is not selected for brake fluid reservoirs because glycol ether brake fluids extract antioxidant components and accelerate oxidative embrittlement; the operational boundary excludes direct contact with DOT 3/DOT 4 fluids. Washer fluid reservoirs are tested with methanol-water and surfactant mixtures at −20 °C to 60 °C cycling, with weld integrity checked by leak testing under 20 kPa internal air pressure. End products include 2 L to 6 L windscreen washer bottles, coolant expansion tanks and auxiliary fluid reservoirs.
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LyondellBasell HDPE GC 7260, marketed as Hostalen GC 7260, is a bimodal high-density polyethylene blow moulding grade produced on a Hostalen slurry cascade. The manufacturer’s published datasheet specifies a melt flow rate of 0.30 g/10 min at 190 °C under a 2.16 kg load when measured according to ISO 1133-1 and a density of 0.959 g/cm³ when measured according to ISO 1183-1. The product is intended for rigid blow-moulded packaging in the 5 L to 60 L range, particularly industrial chemical canisters, automotive fluid containers, and jerrycans for aggressive liquid formulations. The bimodal molar mass distribution concentrates short-chain branching in the high-molecular-weight fraction, which raises environmental stress crack resistance relative to monomodal HDPE of similar density. Published tensile property values include a tensile stress at yield of 28 MPa and a tensile modulus of 1100 MPa under ISO 527-2, together with a Charpy notched impact strength of 14 kJ/m² at 23 °C under ISO 179-1/1eA. These specifications position GC 7260 for containers that must combine stacking stiffness at wall thicknesses of 1.5 mm to 4.0 mm with resistance to stress cracking from surfactants, oils, and dilute alkalis.
Conventional monomodal HDPE distributes comonomer statistically across all chain lengths. At densities above 0.955 g/cm³, the crystalline fraction increases and the tie-molecule concentration between lamellae declines, causing environmental stress crack resistance in many monomodal grades to fall below 100 h in 10% Igepal at 50 °C under ASTM D1693-B. Hostalen GC 7260 is polymerised in a two-reactor cascade in which the low-molar-mass fraction is generated first at high hydrogen partial pressure and low comonomer concentration. The high-molar-mass fraction is produced subsequently with controlled comonomer incorporation, producing tie chains that bridge adjacent lamellae. This structural separation decouples stiffness from environmental stress crack resistance: the lightly branched low-molar-mass fraction contributes crystallinity and modulus, while the comonomer-rich high-molar-mass fraction contributes impact strength and stress-crack resistance. The resulting combination of 0.959 g/cm³ density with an F50 environmental stress crack resistance above 600 h under ASTM D1693-B is not generally achievable in a monomodal resin of equivalent melt flow rate.
Published mechanical benchmarks for GC 7260, as compiled from the manufacturer’s technical datasheet, are presented in Table 1. The values are typical values, not sales specifications, and may vary with production campaign and specimen preparation. Blow-moulded article properties depend on parison orientation, wall-thickness distribution, and cooling rate.
| Property | Test method | Typical value |
|---|---|---|
| Melt flow rate | ISO 1133-1 | 0.30 g/10 min |
| Density | ISO 1183-1 | 0.959 g/cm³ |
| Tensile stress at yield | ISO 527-2 | 28 MPa |
| Tensile strain at yield | ISO 527-2 | 9% |
| Tensile modulus | ISO 527-2 | 1100 MPa |
| Charpy notched impact at 23 °C | ISO 179-1/1eA | 14 kJ/m² |
| Charpy notched impact at -30 °C | ISO 179-1/1eA | 6 kJ/m² |
| Environmental stress crack resistance, F50, 10% Igepal, 50 °C | ASTM D1693-B | >600 h |
| Vicat softening temperature, A50 | ISO 306 | 129 °C |
| Shore D hardness | ISO 868 | 62 |
| Water absorption, 23 °C/50% RH | ISO 62 | <0.01% |
The combination of high tensile modulus and moderate notched impact at sub-zero temperature is operationally significant. Containers moulded from GC 7260 can bear higher top load per ISO 12048 than monomodal grades of the same wall thickness, but the pinch-off seam remains the limiting feature in drop impact at -18 °C. Seam integrity is governed less by the resin alone than by pinch-off geometry, mould close speed, and compression cooling; published data for specific tooling configurations is limited.
Melt temperature control is the primary variable governing parison hang strength and environmental stress crack resistance retention. On an accumulator-head blow moulding machine with a grooved-feed extruder of 80 mm screw diameter and 25:1 L/D, barrel settings are typically 180–210 °C, with the die head maintained at 190–205 °C. At melt temperatures above 220 °C, thermally induced chain scission in the high-molar-mass fraction reduces parison hang strength and can lower the final environmental stress crack resistance of the moulded article. At melt temperatures below 180 °C, unmolten high-density domains may persist from the feed zone, producing surface roughness and weak pinch-off welds. The practical processing window is therefore approximately 10 °C narrower than that of a monomodal HDPE of comparable melt flow rate; this is a key limitation when converting existing lines.
Screw configuration also influences melt homogeneity. A barrier screw with a compression ratio of 2.0:1 to 2.5:1 and a grooved feed section extending 3–4 D is commonly specified. Published production data on an 80 mm grooved-feed extruder at 25:1 L/D indicates die head pressures of 20–30 MPa at output rates of 60–90 kg/h; these values are equipment-specific and should not be extrapolated without scale-up verification. The high-molar-mass fraction produces pronounced shear thinning, with complex viscosity falling by roughly an order of magnitude between 0.1 rad/s and 100 rad/s; published data for this specific grade is limited, but measurements on the same resin class support this behaviour.
In aggressive chemical packaging, environmental stress crack resistance testing under ASTM D1693-B is only a screening indicator. Final containers must be tested with the actual fill formulation and closure geometry. GC 7260 is used in blow-moulded containers for surfactant-based cleaners, crop-protection chemicals, and oil-based automotive fluids. Stress-crack resistance decreases with increasing aromatic hydrocarbon or oxidising-agent concentration. At fill temperatures above 40 °C, service life can be shortened in formulations containing alkylbenzenesulfonic acids or hypochlorite bleach. Published GC 7260-specific accelerated ageing data for these formulations is limited; qualification must therefore be performed at the container level. Because HDPE moisture absorption is below 0.01% at 23 °C and 50% relative humidity per ISO 62, pre-drying of virgin resin is not required unless wet regrind exceeds 20% by weight. Regrind from fluorinated or sulfonated containers must not be reintroduced without testing, because polar surface treatment residues can disrupt melt homogeneity and reduce weld strength.
Regulatory classifications for GC 7260 follow the base resin’s REACH registration and do not intentionally include substances of very high concern. The material is not a medical or food-contact grade unless the converter obtains a written compliance letter from the producer; suitability under EU Regulation 10/2011 and FDA 21 CFR 177.1520 must be established on the finished article. For industrial container design, verification typically includes top-load testing per ISO 12048 and drop impact at -18 °C; these tests are performed on the final moulded article, not on test plaque specimens. RoHS compliance for heavy metals should be confirmed with the current product declaration.
Transferring an existing monomodal HDPE tooling line to GC 7260 requires compensation for higher die swell and melt strength. The die gap is typically opened by 0.2–0.5 mm compared with a monomodal grade of equivalent melt flow rate. Melt temperature is reduced by 5–10 °C to avoid excessive parison sag and to preserve the stress-crack resistance of the high-molar-mass fraction. On a 60 L jerrycan tool with a projected area of approximately 0.4 m², clamp force can be reduced by roughly 10–15% because the bimodal resin fills the cavity at lower hydraulic pressure; published data for this specific tool configuration is limited. Cycle time is governed by cooling of the pinch-off seam and may increase by 5–10% if the mould cooling circuit is not balanced, because the high-density crystalline network releases more heat of fusion per unit wall thickness during solidification.
The higher die swell also affects parison programming. In comparison with monomodal grades of the same density, GC 7260 often requires a flatter parison programmer curve to maintain uniform wall distribution. The upper draw-down ratio should not exceed 3.5:1 for 20–60 L containers; beyond this limit, wall thinning at the bottom corners can reduce drop impact at -18 °C. Published application data for 220 L drums is limited; the grade is generally not recommended for very large-part blow moulding because the required parison weight exceeds the hang-strength capability of conventional accumulator heads.
Blow moulders running 20–60 L open-head and tight-head drums in GC 7260 report that the grade processes best when the parison programmer is set to maintain a draw-down ratio below 3.5:1. The pinch-off seam of a tight-head jerrycan must be compression-cooled to ensure a minimum weld thickness of 1.5 mm; otherwise drop impact at -18 °C can initiate crack propagation at the seam. Published application data for 220 L drums is limited; the grade is generally not recommended for very large-part blow moulding because the required parison weight exceeds the hang-strength capability of conventional accumulator heads.