Products

INEOS HDPE ELTEX TUB131 N2010

    • Product Name: INEOS HDPE ELTEX TUB131 N2010
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    VTB
    Specifications
    HS Code 697666
    Polymer Type High-density polyethylene (HDPE)
    Grade Classification PE 100
    Color Black
    Density 0.959 g/cm³
    Melt Flow Rate 190 C 5 Kg 0.25 g/10 min
    Melt Flow Rate 190 C 2 16 Kg 0.05 g/10 min
    Tensile Stress At Yield 23 MPa
    Tensile Strain At Break >600%
    Tensile Modulus 1100 MPa
    Charpy Notched Impact Strength 23 C 20 kJ/m²
    Charpy Notched Impact Strength 30 C 8 kJ/m²
    Vicat Softening Temperature 125°C
    Oxidation Induction Time 200 C >20 min
    Carbon Black Content 2.0-2.5%
    Environmental Stress Cracking Resistance 10 Igepal F50 >1000 h
    Shore D Hardness 60
    Water Absorption <0.01%
    Thermal Conductivity 0.4 W/(m·K)
    Coefficient Of Linear Thermal Expansion 1.5E-4 /K
    Brittleness Temperature <-70°C
    Dielectric Constant 2.3
    Volume Resistivity >1E14 ohm·cm

    As an accredited INEOS HDPE ELTEX TUB131 N2010 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing INEOS HDPE ELTEX TUB131 N2010 comes in 25 kg polyethylene bags, typically palletized and shrink-wrapped for secure transport.
    Container Loading (20′ FCL) 20′ FCL: palletized 25 kg PE bags; typically 20 pallets/20 MT net. Non-hazardous HDPE pellets; keep dry and sealed.
    Shipping INEOS HDPE ELTEX TUB131 N2010 is a non-hazardous high-density polyethylene supplied as general cargo, typically in 25 kg bags, octabins, or bulk. Transport in clean, dry vehicles. Store away from direct sunlight, moisture, and ignition sources. Not classified as dangerous goods for shipping.
    Storage Store INEOS HDPE ELTEX TUB131 N2010 in original, sealed packaging in a cool, dry, well-ventilated area. Keep away from direct sunlight, heat, ignition sources, moisture, and oxidizing agents. Prevent contamination and static buildup. Stack pallets securely to avoid deformation. Use first-in-first-out rotation. Observe the manufacturer’s SDS and local storage regulations.
    Shelf Life Shelf life is 24 months when stored in original unopened packaging, dry, at temperatures below 40°C and protected from direct sunlight.
    Application of INEOS HDPE ELTEX TUB131 N2010

    Solid-wall pressure pipe extrusion from INEOS HDPE ELTEX TUB131 N2010 is run on grooved-feed single-screw extruders with L/D 30:1 to 36:1, barrier flights, and a spiral mandrel die sized for SDR 11, SDR 13.5, or SDR 17 dimensions. The natural grade requires a carbon black masterbatch addition of 5.0–6.0 wt% where the concentrate contains 40 wt% carbon black, yielding a final carbon black concentration of 2.0–2.5 wt% and a dispersion rating no worse than grade 3 under ISO 18553. The resulting black compound satisfies the UV stabilisation clause of ISO 4427-1:2019 and EN 12201-1 for outdoor potable water service. Melt temperatures measured at the adapter are held between 190°C and 215°C, with barrel zones set from 170°C in the feed throat to 205°C at the metering zone; operation above 220°C accelerates oxidative consumption of the stabiliser package and can produce melt fracture at elevated line speed. Vacuum calibration tanks with annular calibrators maintain outside diameter tolerances under ISO 4427-2:2019, while cooling water at 15–25°C and a die-to-first-calibrator gap of 40–90 mm stabilise the solidified shell. On production lines, feed-bridge bridging of carbon black masterbatch can generate local carbon black content below 2.0 wt%, visible as longitudinal striping and rejected by dispersion assessment under ISO 18553. A PE100 designation under ISO 12162 requires long-term hydrostatic strength extrapolation to 10 MPa minimum required strength at 20°C for 50 years on the pipe compound per ISO 9080; finished pipe is pressure-rated using a design stress of 8.0 MPa when the design coefficient C is 1.25. SDR 11 therefore corresponds to 16 bar and SDR 17 to 10 bar at 20°C. End products are straight pipes and small-diameter coils for drinking-water distribution mains, service connections, and buried trunk lines.

    What Limits Rapid Crack Propagation Acceptance in PE100 Gas Distribution Pipe?

    For gas utility pipe extrusion, the resin is dry-blended with a compatible carbon black or yellow pigmented masterbatch to meet the identification requirements of ISO 4437-1 and EN 1555-1. Extrusion is performed on grooved-feed single-screw equipment, but melt temperature is reduced to 185–205°C and head pressure is monitored to limit shear heating above 210°C. Rapid crack propagation resistance is evaluated at 0°C using the S4 test method of ISO 13477; pipe producers verify that the measured critical pressure exceeds the maximum operating pressure multiplied by the safety factor specified in the regional gas distribution code, commonly 1.4–1.5. Published PE100 gas pipe technical assessments frequently report S4 critical pressure above 10 bar, but acceptance values remain operator-specific. The high slow crack growth resistance of the PE100 class, evaluated by notched pipe test ISO 13479, is relevant to butt-fusion and electrofusion joint integrity. Field joints are produced at 210±10°C with interfacial fusion pressure of 0.15 N/mm² after pipe-end planing. Gas pipes in outside diameters from 32 mm to 630 mm are supplied in straight lengths, with coils generally limited to diameters up to 90 mm. Outdoor storage capability is achieved with 2.0–2.5 wt% carbon black in the base pipe; yellow-striped pipes commonly use a black base with yellow co-extruded stripes to avoid UV embrittlement of the outer surface. Liquid LPG, high-aromatic hydrocarbons, and wet sour gas with free hydrocarbons are outside the continuous service envelope; the resin is specified for natural gas and town gas distribution only.

    Abrasive tailings, dredge discharge, and process slurry lines convert the same PE100 resin into thick-wall HDPE pipe where service pressure is retained through SDR 11, SDR 13.5, or SDR 17 dimensions and hydraulic transport velocity is maintained between 3 m/s and 6 m/s depending on particle size distribution and solids loading. Abrasion performance of high-density polyethylene derives from its viscoelastic response to particle impact; in fine silica slurries at near-ambient temperature, HDPE frequently exhibits lower cumulative wall loss than carbon steel, but no universal wear rate exists because wear depends on particle sharpness, velocity, pH, and slurry temperature. At sustained slurry temperatures above 40°C, pressure rating is derated using temperature coefficients from ISO 4427-1 or the pipe manufacturer’s certified long-term creep tables; above 60°C the resin is outside continuous service limits for pressure-bearing slurry lines. Extrusion of thick-walled slurry pipe requires internal cooling or extended multi-zone water spray cooling to avoid core crystallinity gradients that elevate residual stress. Barrel temperatures are set to a low profile of 165–195°C to increase melt strength and reduce gravitational sag in spiral-mandrel dies above 250 mm outside diameter. Pipe wall thickness at these SDRs may exceed 60 mm at diameters above 800 mm. Wall-thickness control systems using ultrasonic or laser gauges measure eccentricity at 0.5 mm resolution to hold dimensional stability. Downstream assemblies include flanged spools, mitered bends, and wear-resistant couplings; joints use electrofusion or butt fusion, with site pressure tests often conducted at 1.5× design pressure for 1 h according to project specifications.

    Reclaimed Water and Cycled Fertigation Solutions Pose Specific Oxidation Risks to Pipe Grade PE100

    Agricultural mains and pressurised irrigation headers employ the same extrusion dimension set of ISO 4427-2, but conversion is frequently optimised for long-run, fixed-diameter lines of 110 mm to 355 mm outside diameter. The pipe may be exposed to chlorinated surface water, reclaimed wastewater, and intermittent acid dosing for fertigation; these conditions alter the oxidative depletion rate of the antioxidant package more than standard cold potable water. Chlorine residual in irrigation water rarely exceeds 2–4 mg/L; when sodium hypochlorite injection points are installed within the main, localised free chlorine concentrations can reach 10 mg/L at the metering junction, requiring a dilution zone or chemical-resistant lined spool because the HDPE pipe wall is not immune to oxidative attack at elevated oxidant concentration. Small-diameter pipe is coiled at lengths of 500–1000 m for drip irrigation supply; larger mains are produced in 12 m straight lengths. The extrusion setup includes a gear pump to support high-speed operation, with melt temperature at 195–215°C; the spiral mandrel die is selected for wall-thickness uniformity below ±0.2 mm on 160 mm SDR 17 pipe. Finished articles are submains, hydrant laterals, and buried distribution lines for pressurised irrigation blocks.

    Mixed Acid-Sulfate Effluent Resistance Boundaries in Industrial Force Mains

    Pipe conversion for industrial effluent transfer differs from potable water practice because the converter controls carbon black dispersion to ISO 18553 and oxidative induction time to ISO 11357-6 at 210°C before release. HDPE pipe to ISO 4427-2 dimensions is installed for force mains carrying neutralised wastewater, dilute inorganic acids, alkalis, and sour water containing dissolved hydrogen sulfide. Published chemical resistance data and ISO/TR 10358 indicate that the resin is generally resistant to sulfuric acid up to 80 wt% at 20°C, sodium hydroxide up to 50 wt% at 20°C, and aqueous hydrogen sulfide at low partial pressure. Continuous exposure to nitric acid above 25 wt%, sodium hypochlorite above 10 wt%, aromatic solvents, or concentrated oxidising acids falls outside the rated service envelope. Industrial force main conversion often includes co-extruded outer layers for cable detection or customised blue and black identification. Spool lengths are commonly 100–200 m for plant tie-ins and outfall sections. Products include buried plant transfer lines, acid neutralisation tank overflow piping, and low-pressure outfall laterals.

    When Host-Pipe Buckling Drives Liner Design, SDR and External Hydrostatic Pressure Are Decisive

    Long strings of solid-wall HDPE liner are butt-fused at the factory or remote site, then inserted into deteriorated concrete, steel, or clay host pipes. The liner is specified by outside diameter against host internal diameter, with SDR 26, SDR 32.5, or SDR 41 wall configurations depending on groundwater head and annular void condition. Buckling resistance of the installed liner is evaluated using the standard unconstrained collapse equation for a viscoelastic cylinder; the long-term modulus for PE100 is taken from ISO 9080 test data, not short-term tensile modulus. Liner dimensions are produced to ASTM F714 or ISO 4427-2 outside diameter and wall thickness tables, depending on regional project specification. Controlled winding radius for coiled liners is typically not less than 20× outside diameter to avoid kinking. End use includes gravity and low-pressure sewer rehabilitation where the host pipe is structurally compromised; grouting of the annulus or external head control is required for thin-wall liners.

    Free Quote

    Competitive INEOS HDPE ELTEX TUB131 N2010 prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please contact us at +8618136850665 or mail to admin@ascent-chem.com.

    We will respond to you as soon as possible.

    Tel: +8618136850665

    Email: admin@ascent-chem.com

    Inquiry

    Get Free Quote of Ascent Petrochem Holdings Co., Limited

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    INEOS HDPE ELTEX TUB131 N2010 is a high-density polyethylene extrusion grade supplied as natural pellets for pressure pipe manufacturing. The material is classified as PE100 under ISO 12162 because the lower predictive limit for hydrostatic strength at 20°C and 50 years is not less than 10.0 MPa. The polymer architecture is bimodal; the high-molecular-weight fraction contributes slow crack growth resistance, while the low-molecular-weight fraction reduces melt viscosity and improves processability. Published datasheet values include a melt flow rate at 190°C/5.0 kg of 0.23 g/10 min under ISO 1133-1 and a natural-pellet density of 0.958 g/cm3 under ISO 1183-1. Intended finished pipes are specified under ISO 4427, EN 12201, and ISO 4437 after conversion into black or colored compounds. Because the natural grade does not contain carbon black, converters add carbon black masterbatch at 2.0–2.5 wt% where UV resistance is required for exposed service.

    What molecular architecture underpins the PE100 hydrostatic classification?

    The critical distinction between PE80 and PE100 is not short-term stiffness alone but the long-term hydrostatic strength established by ISO 9080 test populations. For ELTEX TUB131 N2010, the bimodal molecular weight distribution increases the concentration of tie molecules connecting lamellae in the semicrystalline matrix. This delays slow crack growth from scratches, inclusions, and point loads, which is the dominant long-term failure mode in water distribution pipe. The low-molecular-weight fraction permits lower melt pressure and higher output in grooved-feed single-screw extrusion without sacrificing the high-molecular-weight fraction required for hydrostatic life. Short-term datasheet values include a tensile stress at yield of 24 MPa under ISO 527-2, tensile strain at break above 600%, flexural modulus of 1100 MPa under ISO 178, and Charpy notched impact strength of 22 kJ/m2 at 23°C under ISO 179-1/1eA. These short-term values do not replace hydrostatic design basis data for wall-thickness calculation.

    Representative physical and mechanical properties for the natural grade, as published in the manufacturer’s technical datasheet, are summarized below. These values are typical and do not constitute a full procurement specification or lot-certification guarantee.

    PropertyTest methodTypical value
    Melt flow rate, 190°C/5.0 kgISO 1133-10.23 g/10 min
    Density, natural pelletISO 1183-10.958 g/cm3
    Tensile stress at yieldISO 527-224 MPa
    Tensile strain at breakISO 527-2>600%
    Flexural modulusISO 1781100 MPa
    Charpy notched impact strength, 23°CISO 179-1/1eA22 kJ/m2
    Charpy notched impact strength, −30°CISO 179-1/1eA10 kJ/m2
    Vicat softening temperature A50ISO 306128 °C
    Shore D hardnessISO 86862
    Hydrostatic design basis, 20°C, 50 yearsISO 9080 / ISO 1216210.0 MPa (PE100)

    Thermal degradation is the dominant processing risk in grooved-feed pipe extrusion

    In high-output pipe lines using grooved-feed single-screw extruders with L/D 30–40, the melt temperature is controlled between 190°C and 230°C. Below 190°C, the high-molecular-weight fraction remains insufficiently fused, increasing melt pressure at the breaker plate and producing helical flow instabilities at the die entry. Above 230°C, thermo-oxidative chain scission reduces the high-molecular-weight fraction, and the resulting loss of slow crack growth life is not recoverable by downstream cooling. The barrel is typically configured with a grooved feed section to maintain solids conveying against head pressures of 20–35 MPa. A melt pump after the screen changer reduces pressure pulsation and decouples die pressure from screw speed. Screen packs of 80–120 mesh layered over coarse backup screens remove oxidized gels and foreign particulates; a clean pack normally contributes 5–10 MPa pressure drop depending on throughput. Die land length and die gap are set for a drawdown ratio between 1.5:1 and 2.5:1. Excessive drawdown can orient residual stress near the pipe wall and increase the risk of environmental stress cracking after installation. Vacuum calibration tanks operating at −0.2 to −0.6 bar and spray cooling at 20–40°C are used downstream. For wall thicknesses above 20 mm, stepped temperature profiles in the cooling bath are required to avoid excessive residual stress or dimensional instability. HDPE is not hydrolytic, but surface condensation during warehouse temperature cycling can produce splay and internal voids; drying at 80°C for 2 hours is applied when pellets have visible surface moisture or have been stored at relative humidity greater than 60%.

    Selection of PE100 over PE80 alters pressure ratings under ISO 4427-1. The design stress for water at 20°C is 8.0 MPa for PE100 using a service coefficient C=1.25, compared with 6.4 MPa for PE80. A PE100 pipe with SDR 17 has a nominal pressure of PN10; a PE80 pipe of the same SDR 17 has a nominal pressure of PN8. Therefore, PE100 permits either a higher operating pressure or a reduced wall thickness for the same pressure class. The comparison is summarized below.

    Design parameterPE80PE100
    Minimum required strength, ISO 121628.0 MPa10.0 MPa
    Design stress for water, C=1.256.4 MPa8.0 MPa
    Nominal pressure at SDR 17PN8PN10
    Relative wall thickness for equivalent pressureHigherLower
    Hydrostatic design reference life at 20°C50 years50 years

    Drinking water contact and regulatory certification burden

    Finished pipe based on ELTEX TUB131 N2010 is intended for potable water service only after conversion into compounds meeting the applicable national health requirements. The resin itself is not a finished drinking water article. European potable water pipes are tested under EN 12201 for dimensions, hydrostatic strength, and organoleptic migration limits. Compliance with migration limits requires the converter to control carbon black masterbatch purity, antioxidant carryover, and process temperature because oxidation by-products formed above 230°C can contribute to taste and odor failure. Long-term chlorine resistance is not specified by EN 12201; it is evaluated through accelerated test protocols such as ASTM F2263 at chlorine concentrations from 0.5 to 2.0 mg/L and elevated temperature. Published data for this specific grade under continuous chlorinated water exposure is limited, so accelerated chlorine testing on finished pipe is required before a utility accepts the product.

    For gas distribution pipe, rapid crack propagation resistance is a pipe-system property rather than a resin property alone. ISO 4437 requires full-scale S4 testing under ISO 13477 for pipes above specified diameter and pressure classes. The critical pressure depends on wall thickness, stress concentration, and temperature. A PE100 resin with high melt strength and notched impact toughness can provide rapid crack propagation resistance at 0°C when finished pipe dimensions meet ISO 4437-1 requirements. The N2010 grade is not classified as PE100-RC. PE100-RC grades are differentiated by additional resistance to point loads and notched pipe slow crack growth, verified by ISO 13479 and specifications such as PAS 1075. If crack-resistant installation without sand bedding is specified, the converter should select a resin with an explicit PE100-RC classification.

    When PE100-RC resistance is specified, an alternative grade selection is required

    ELTEX TUB131 N2010 differs from older PE80 pipe resins in hydrostatic design basis and molecular architecture. PE80 grades typically require thicker walls for the same service pressure because the design stress is lower. Compared with PE100-RC grades, the present product is positioned for conventional trench installation and general pressure pipe service where point-load resistance is not the primary specification. The low melt flow rate of 0.23 g/10 min under 5.0 kg load distinguishes the grade from high-MFR injection molding HDPE resins, which are unsuitable for thick-wall pressure pipe because of inadequate slow crack growth resistance and lower melt strength. Within the Eltex TUB family, subgrades may differ in melt flow rate, density, and carbon black content for specific pipe dimensions or extrusion speeds. Published comparative data among Eltex TUB subgrades is limited, so substitution into an existing pipe formulation should be validated by hydrostatic testing under ISO 1167 rather than assumed from nominal PE100 classification alone.

    Top