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PetroChina Guangxi HDPE HS GC7260

    • Product Name: PetroChina Guangxi HDPE HS GC7260
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 131157
    Density 0.958 g/cm³
    Melt Flow Rate 0.08 g/10 min (190 °C, 2.16 kg)
    Tensile Strength At Yield 28 MPa
    Elongation At Break >600%
    Flexural Modulus 1200 MPa
    Vicat Softening Temperature 125 °C
    Brittleness Temperature -70 °C
    Environmental Stress Crack Resistance >1000 h
    Shore D Hardness 65
    Melting Point 130 °C
    Water Absorption ≤0.01%
    Volume Resistivity ≥1×10^16 Ω·cm
    Dielectric Constant 2.3
    Dielectric Strength ≥20 kV/mm

    As an accredited PetroChina Guangxi HDPE HS GC7260 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing PetroChina Guangxi HDPE HS GC7260 is typically packed in 25 kg woven polypropylene bags, 40 bags per pallet, totaling 1,000 kg.
    Container Loading (20′ FCL) 20′ FCL loads approximately 25 MT of PetroChina Guangxi HDPE HS GC7260 in 25 kg bags, loose without pallets.
    Shipping PetroChina Guangxi HDPE HS GC7260 is shipped as a non-hazardous solid polyethylene resin, typically in 25 kg PP woven bags, palletized and shrink-wrapped. It is not regulated for transport, with no UN number, hazard class, or packing group. Store dry, ventilated, away from heat and direct sunlight.
    Storage Store PetroChina Guangxi HDPE HS GC7260 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, sparks, and open flames. Keep original bags or containers sealed and palletized off the floor. Protect from moisture, dust, oils, and chemical contaminants. Avoid prolonged UV exposure and high stacking loads. Do not store outdoors. Maintain good housekeeping and observe local SDS requirements.
    Shelf Life PetroChina Guangxi HDPE HS GC7260 shelf life: 24 months when stored in original, unopened packaging, dry, cool, away from sunlight.
    Application of PetroChina Guangxi HDPE HS GC7260

    Extrusion blow-moulding of tight-head jerry cans from PetroChina Guangxi HDPE HS GC7260 is run on single-screw extruders with L/D ratios from 25:1 to 32:1, a barrier screw with a dispersive mixing section, and an accumulator head fitted with a diverging die gap of 1.8–2.5 mm. The melt temperature window is controlled between 180 °C and 210 °C, with the die head held at 190–210 °C and the blow mould surface at 10–25 °C. Blow air pressure is typically 0.6–0.8 MPa, and a 20 L tight-head jerry can runs a cycle of 60–90 s depending on wall thickness, cooling water temperature, and accumulator shot size. Dry colour masterbatch is metered at 2–3 wt% for carbon black concentrates, while processing aid masterbatch addition above 2 wt% is avoided because excessive fluoropolymer can delay pinch-off closure and produce tail flash stringing at the bottom weld line.

    Regulatory compliance is the dominant constraint. The UN 3H1 design type is validated under ADR 6.1.5 and IMDG packing instructions, with drop testing at 1.2 m for packaging group II, leakproofness at 30 kPa, hydraulic internal pressure at 100 kPa for 30 min, and stack testing for 28 days at 40 °C. Resin lot acceptance for hazardous liquids commonly requires environmental stress crack resistance per ASTM D1693 Condition B, 100 % Igepal CO-630 at 50 °C, with F50 not less than 100 h; many converters impose an internal target above 300 h because post-moulding cooling stress and pinch weld orientation reduce field ESCR by 20–40 % relative to compression-moulded plaques. The finished article must also comply with ISO 16101 for plastics compatibility testing or with the chemical compatibility provisions of ADR 4.1.1.6, using the specific filling liquid for 6 months at 23 °C and 40 °C. This is not a generic packaging test; nitric acid, chlorinated paraffins, and medium-chain mineral oils show distinct swelling and oxidation responses that require individual compatibility data.

    Test conditionStandard or clauseTypical technical requirement for 20 L tight-head can
    Drop impactADR 6.1.5.31.2 m drop at 18 °C, no leak
    LeakproofnessADR 6.1.5.430 kPa internal air pressure
    Hydraulic pressureADR 6.1.5.5100 kPa for 30 min
    StackADR 6.1.5.628 days at 40 °C
    CompatibilityADR 4.1.1.6 / ISO 16101Filling-specific immersion 6 months at 23 °C and 40 °C

    Process conflict: high molecular weight HDPE melt strength prevents parison sag but increases die swell and can produce uneven wall thickness in the handle and bottom chine areas. On rotary blow moulding machines, clamp speeds above 0.4 m/s can generate pinch-off flash with microporosity that fails hydraulic pressure testing. Wall thickness is programmed through the accumulator parison controller, with the chine and handle areas set 1.2–1.8 mm thicker than the nominal sidewall of 1.0–1.2 mm. Pre-drying is typically not required if the resin is stored below 60 % relative humidity; if surface condensation occurs, drying at 80 °C for 2 h is used. Regrind from the flash is limited to 25 wt% for UN-certified containers because higher recycled content shifts ESCR distribution and lowers drop impact resistance at sub-zero temperatures. Finished containers are tight-head jerry cans of 20–30 L, open-top pails of 10–25 L, and closure bosses with EPDM or expanded polyethylene gaskets.

    What Changes When the Same Resin Is Injection-Moulded into Agro-Logistics Pallets?

    Injection moulding shifts the failure mode from drop-impact puncture to flexural fatigue and weld-line cracking at the intersection of rib lattices. For agro-logistics pallets and reusable vegetable crates, PetroChina Guangxi HDPE HS GC7260 is processed at melt temperatures between 200 °C and 250 °C, with barrel zones profiled from 160 °C to 240 °C, injection pressure 70–120 MPa, holding pressure 50–80 MPa, and back pressure 0.5–1.5 MPa. Clamp force is set according to projected area, commonly 2–4 tonnes per cm² for pallet moulds; a 1,200 × 1,000 mm part may require clamp force above 30,000 kN. Screw L/D ratio is normally 20:1 to 24:1 with a check ring, and injection speed is staged to maintain a flow front velocity of 200–400 mm/s across the mould. Gate freezing is managed by holding time based on gate thickness squared divided by thermal diffusivity, conventionally 8–15 s for gates 2.5–4.0 mm thick.

    Mechanical acceptance follows ISO 527-2 for tensile yield, ISO 178 for flexural modulus, ISO 179-1 for notched Charpy impact at 23 °C and -30 °C, and ISO 75-2 for heat deflection temperature under 0.455 MPa. A processing conflict emerges from the resin’s crystallisation kinetics: cooling too quickly against the mould at 20 °C freezes orientation stress, producing warp as much as 1.5–2.5 % across the pallet deck after 48 h. Cooling too slowly at 60 °C increases cycle time and reduces productivity but lowers residual stress. Moulds are frequently run with conformal cooling channels maintaining surface temperature at 30–40 °C to balance flatness and impact toughness. Sink marks over bosses are controlled by keeping rib thickness ≤ 0.6 times adjacent wall thickness, with nominal wall thickness 4–6 mm for pallets and 2.5–3.5 mm for crates.

    Regrind discipline is more severe than in blow moulding. Outdoor agro-pallet converters limit post-industrial regrind to 20 wt% because repeated shear and heat history lower notched impact and ESCR. Contamination by polypropylene caps, film scrap, or paper labels above 3 wt% creates visible unmelted inclusions that nucleate cracks at rib intersections. Injection-moulded products for export must comply with REACH and RoHS 2011/65/EU; for food-contact crate use, the base resin must meet FDA 21 CFR 177.1520 or EU 10/2011 with migration testing per EN 1186 and EN 13130. The finished article is a flat deck pallet, a box pallet with runners, or a ventilated crate for vegetable harvesting, with forklift tine impact resistance verified by production-line field data at the entry blocks.

    Automotive washer reservoir blow moulding and long-term glycol exposure

    Washer reservoirs and coolant surge tanks made from PetroChina Guangxi HDPE HS GC7260 require a different validation profile from chemical packaging because the service environment contains 30–50 vol% methanol or ethanol, anionic surfactants, and occasional glycol carryover. The blow-moulding process uses a three-dimensional suction blow technique to form complex horseshoe-shaped tanks, with melt temperature held at 195–215 °C, mould surface temperature 15–30 °C, and parison wall thickness adjusted along the length to prevent thinning at the deepest draw. A typical 5 L washer bottle is blow-moulded at 0.7–0.9 MPa blow pressure with a cycle time of 45–70 s. The pinch seam at the tank perimeter is a known crack initiation site when the clamp edge is colder than 10 °C or when the tail flash is trimmed too aggressively.

    Long-term chemical resistance is evaluated by immersion at 60 °C in 50/50 vol% methanol/water per ISO 175, with tensile property retention and mass uptake recorded at 1,000 h. Environmental stress cracking is assessed separately under ISO 22088-3 using bent strips in surfactant media because methanol blends can accelerate ESCR in weld seams. The critical processing limit is contamination from EO/PO block copolymer release agents or silicone mould treatments; although these ease ejection, they migrate to the surface and reduce weld seam strength by up to 30 % in notched impact at -20 °C. Therefore, mould release is restricted to water-based stearate suspensions that are cleaned off before the first production shift. For OEM export, the finished reservoirs are validated under OEM-specific endurance cycles that combine ISO 175 chemical immersion at 60 °C with ISO 22088-3 bent-strip ESCR and with low-temperature drop impact at -30 °C per ISO 179-1; published data for this specific configuration is limited, so production lots are qualified by OEM-derived endurance cycles rather than by a single standardised test.

    Terminal articles include washer solvent tanks, coolant overflow bottles, and heavy-duty headlamp washer reservoirs. In tropical service, the reservoir wall must survive 95 °C short-term coolant overflow, which exceeds the 85 °C continuous temperature limit of unmodified HDPE. Verifying actual part performance requires heat ageing per ISO 188 at 100 °C for 7 days followed by impact and burst testing.

    When Extrusion Operators Push Screw Speed Above 80 min⁻¹ in Conduit Production

    For corrugated HDPE cable conduit, maintaining melt temperature below 215 °C and a die gap of 0.8–1.2 mm prevents the onset of sharkskin melt fracture when screw speed exceeds 80 min⁻¹ on 30:1 L/D grooved-feed extruders; the product is a smooth-bore or corrugated duct for underground electrical protection under IEC 61386.

    Fluorination, sulfonation, and post-treatment constraints in multilayer IBC liners

    Inline fluorination of blow-moulded HDPE IBC liners creates a surface fluorocarbon barrier that reduces solvent permeation relative to untreated HDPE by a factor of 4–10 for non-polar aliphatic hydrocarbons. The conditioning sequence exposes the 1,000 L liner to a fluorine-nitrogen gas mixture with fluorine content controlled between 0.5–2.0 vol% at ambient temperature for 30–120 s, followed by air purging to remove residual hydrogen fluoride; the barrier depth is commonly 50–200 nm, measured by cross-sectional XPS. The process is not simply a surface polish: overfluorination above 2.0 vol% or exposure beyond 180 s creates a brittle, discoloured inner surface that can delaminate under hydraulic flexing. PetroChina Guangxi HDPE HS GC7260 is used as the structural layer in a coextruded liner, with a virgin food-grade or fluorinated inner layer, regrind core, and EVOH or PA barrier layers in cases requiring oxygen barrier below 0.5 cm³/m²·day·atm.

    Regulatory documentation for fluorinated liners must include EU 10/2011 overall migration compliance for food contact, FDA 21 CFR 177.1520 for base olefin polymer, and REACH for fluorinated by-product restrictions. Sulfonation, an alternative treatment, is typically rejected for IBC liners in oxidizing service because residual sulfonic acid groups increase water absorption and secondary corrosion of metal valves. The critical cavity is the top closure boss: after fluorination, welding of threaded spouts must be completed before treatment or mechanical stress will initiate microcracks along the spout weld line. The finished component is a blow-moulded IBC liner of 1,000 L or 1,250 L capacity for high-purity solvents, insecticides, and printing ink intermediates. Batch-to-batch variation in fluorination thickness is controlled by gas flow totaliser readings and by periodic oxygen permeation tests using ASTM D3985 at 23 °C and 0 % RH.

    Cast sheet extrusion of PetroChina Guangxi HDPE HS GC7260 for thermoformed edible-oil and dairy packaging runs at melt temperatures of 190–230 °C, with a polished roll stack held at 60–90 °C to produce sheet thickness 0.4–1.2 mm. The sheet is subsequently thermoformed into shallow trays and tubs, where the critical processing variable is sag control during heating: at sheet temperatures above 155 °C, oriented stress relaxes and the sheet may tear; below 135 °C, the material does not form sharp radii and corner thinning exceeds 40 %. For direct food contact, the base resin must satisfy FDA 21 CFR 177.1520 for olefin polymers, EU Regulation 10/2011 with overall migration below 10 mg/dm² under EN 1186, and China GB 4806.6-2016. Recycled content is not introduced into the food-contact layer; converters use a two-layer sheet with virgin skins and a core layer containing post-industrial regrind up to 30 wt%, but only when the core is fully encapsulated and migration testing confirms compliance.

    Oxygen and oil resistance define the operational boundary. Unmodified HDPE has an oxygen permeability coefficient near 1,800–2,500 cm³·mm/(m²·day·atm) at 23 °C and 0 % RH, which limits ambient shelf life for oxidation-sensitive edible oil to less than 6 months unless a coextruded EVOH layer or fluorination treatment is added. In practice, the thermoformed tray is used for packaged oil bottles, confectionery inserts, and short shelf-life dairy snacks, not for direct long-term bulk oil storage. The finished trays are die-cut in-line, with scrap rates kept below 5 % by controlling roll stack temperature and sheet gauge variation to ±0.05 mm; published data for this specific configuration is limited, so line qualification includes oxygen permeation at 23 °C and 50 % RH and overall migration after 10 days at 40 °C per EU 10/2011.

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    Certification & Compliance
    More Introduction

    PetroChina Guangxi HDPE HS GC7260 is a bimodal high-density polyethylene pressure-pipe resin produced at the Guangxi petrochemical complex. The grade is positioned in the PE100 class under ISO 12162:2009, with a minimum required strength of 10.0 MPa at 20°C extrapolated to 50 years according to ISO 9080:2022. The bimodal molecular weight distribution separates a lower-molecular-weight fraction that provides shear thinning during extrusion from a high-molecular-weight fraction that contributes slow crack growth resistance and rapid crack propagation resistance. The HS designation identifies the high-stiffness, high-sag-resistance pipe extrusion package within the Guangxi HDPE range; the exact additive package and lot traceability must be verified against the certificate of analysis. The material is normally supplied as a black compound with carbon black content from 2.0 wt% to 2.5 wt% measured by ISO 6964:2019, providing UV stabilisation for outdoor storage and buried service.

    What Limits the Melt Processing Window in Large-Diameter Pipe Extrusion?

    On grooved-feed single-screw extruders with barrel L/D of 30:1 to 36:1 and compression ratio of 2.5:1 to 3.5:1, the practical melt temperature window for GC7260-class material lies between 190°C and 220°C. A typical barrel set-point progression is 180°C in the feed zone, 190°C in the compression zone, 200°C in the metering zone, and 210°C at the die head. Melt temperatures below 190°C produce unmelted high-molecular-weight inclusions that appear as surface micro-bumps on the pipe wall and can initiate point-loading failure in hydrostatic testing. Melt temperatures above 230°C accelerate consumption of the phenolic-phosphite stabiliser package, lowering the oxidative induction time measured by ISO 11357-6:2018 and reducing long-term hydrostatic strength after extrusion. Die-head melt pressure should remain above 15 MPa to promote homogenisation of the high-molecular-weight fraction and below 35 MPa to avoid excessive shear heating and screen-pack wire deflection. On lines producing pipe above 315 mm outside diameter, melt pressure variation greater than ±1.5 MPa is associated with short-term wall-thickness oscillation. Pre-drying is unnecessary when residual surface moisture is below 0.05 wt%. If storage relative humidity exceeds 60% RH, a desiccant hopper dryer set to 80°C for 2–4 h with air dew point ≤ -30°C is recommended before extrusion.

    Indicative lot-averaged property values for the black pressure-pipe compound, based on the licensed Hostalen GC7260 baseline and subject to certificate-of-analysis limits, are shown below.

    PropertyTest methodIndicative value
    Melt flow rate at 190°C/5 kgISO 1133-1:20220.20–0.30 g/10 min
    DensityISO 1183-1:20190.958–0.962 g/cm3
    Tensile stress at yieldISO 527-2:201224–26 MPa
    Tensile strain at breakISO 527-2:2012>600%
    Flexural modulusISO 178:20191100–1300 MPa
    Carbon black contentISO 6964:20192.0–2.5 wt%
    Oxidative induction time at 210°CISO 11357-6:2018>20 min
    Hydrostatic strength at 20°C/100 h/12.4 MPaISO 1167-1:2019No failure
    Notched-pipe slow crack growth at 80°C/4.6 MPaISO 13479:2022>500 h

    If Slow Crack Growth Resistance Is the Limiting Design Parameter

    Buried pressure pipe failures are frequently governed by slow crack growth originating from installation scratches, backfill stone indentation, or pipe surface inclusions. The bimodal comonomer placement in GC7260 creates a high-molecular-weight tie-molecule network that bridges adjacent crystalline lamellae. Under ISO 13479:2022 notched-pipe testing at 80°C and 4.6 MPa hoop stress, the resin is specified not to fail before 500 h. This requirement exceeds the typical acceptance threshold for PE80 and is the practical differentiation in applications where long design lifetimes are required. The same high-molecular-weight fraction that provides slow crack growth resistance also reduces melt-flow index, so extrusion lines must be equipped with grooved-feed sections and screen-pack filtration of 60–100 mesh to remove carbon black agglomerates without starving the metering zone. In addition, rapid crack propagation resistance is evaluated by ISO 13477:2019 on the extruded pipe; published data for this specific PetroChina configuration is limited and must be generated on the actual pipe dimensions.

    Differences from Chromium-Catalysed Unimodal Resins

    The structural distinction is reactor architecture and catalysis. Unimodal chromium-catalysed HDPE has a broad molecular weight distribution but limited control over short-chain branching placement, which restricts the simultaneous optimisation of density and slow crack growth resistance. GC7260 uses a low-pressure slurry bimodal process that separates molecular weight and comonomer incorporation. The result is a density of 0.958–0.962 g/cm³ with slow crack growth resistance that is not attainable at equivalent density in a typical unimodal resin. In extrusion, the bimodal grade shows greater shear thinning at 100 s⁻¹ and 200°C, reducing motor torque relative to a unimodal resin of similar zero-shear viscosity. The high-molecular-weight fraction increases die swell by approximately 2–5% compared with unimodal HDPE tooling, so die diameter and calibration sleeve clearance must be adjusted accordingly. Against higher-melt-flow PE100 grades rated at 0.5–0.7 g/10 min under ISO 1133-1:2022, GC7260 provides greater sag resistance in thick-wall pipe above 630 mm outside diameter but delivers lower output on pressure-limited extruders. It is therefore suited to large-diameter, thick-wall pressure pipe rather than high-speed small-diameter tubing.

    Design parameterUnimodal PE80Bimodal PE100 GC7260Operational consequence
    MRS per ISO 121628.0 MPa10.0 MPaThinner wall at equal pressure rating
    Melt flow rate at 190°C/5 kg0.4–0.8 g/10 min0.20–0.30 g/10 minLower throughput on pressure-limited lines
    Density0.945–0.950 g/cm30.958–0.962 g/cm3Higher pipe stiffness
    Notched-pipe slow crack growth at 80°C/4.6 MPaOften <500 h>500 hLonger design life under point loads
    Sag resistance in large-diameter thick-wall pipeLowerHigherImproved concentricity-control margin above 630 mm

    Sag resistance becomes limiting above 630 mm outside diameter.

    On commercial lines producing 630 mm outside diameter SDR 11 pipe, sag is controlled by melt strength and vacuum calibration uniformity. The high-molecular-weight fraction of GC7260 increases elongational viscosity at low strain rates, reducing gravitational flow after the die exit. Calibrator vacuum should be maintained at -0.06 MPa to -0.08 MPa for such diameters; insufficient vacuum produces eccentricity and inner-surface waviness. Production records commonly show that die-head pressure fluctuations above ±1.5 MPa lead to wall-thickness variation exceeding 2.0% of nominal thickness. For large-diameter pipe, residual shrinkage measured after 24 h at 23°C is typically 1–2%, requiring haul-off speed compensation. The grade is not intended for injection moulding, blow moulding, or film production because its high viscosity and high molecular weight are specifically configured for pipe extrusion.

    Regulatory compliance for the finished pipe remains the obligation of the converter. The resin's compliance with potable-water contact regulations must be demonstrated on the extruded pipe by migration testing per EN 12873-1:2014 or GB 9685-2016, depending on the destination market. For gas distribution, pipe must meet GB 15558.1-2015 or EN 1555-1:2010. Carbon black dispersion must be graded by ISO 18553:2021; low dispersion levels create agglomerates that reduce impact strength and accelerate crack initiation. The resin is not recommended for continuous exposure to strong oxidising acids, aromatic hydrocarbons, or chlorinated solvents because of environmental stress cracking. Continuous operating temperature limits for pressure service are generally 60°C for water and 40°C for gas under application standards; higher temperatures require a derating factor and may exceed the thermal stability envelope of the stabiliser system.

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