| HS Code | 904681 |
| Density | 0.959 g/cm³ |
| Melt Flow Rate 190 C 5 Kg | 0.25 g/10 min |
| Tensile Stress At Yield | 23 MPa |
| Tensile Strain At Break | >600% |
| Flexural Modulus | 1100 MPa |
| Charpy Notched Impact Strength At 23 C | 15 kJ/m² |
| Charpy Notched Impact Strength At 30 C | 8 kJ/m² |
| Vicat Softening Temperature | 120 °C |
| Oxidation Induction Time At 200 C | >20 min |
| Carbon Black Content | 2.0-2.5% |
| Moisture Content | <0.02% |
| Mrs Classification | PE 100 / 10.0 MPa |
| Long Term Hydrostatic Strength | 10 MPa (50 years) |
| Hardness Shore D | 60 |
As an accredited INEOS HDPE ELTEX TUB125 N6000 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied in 25 kg polyethylene bags, stacked 40 bags per pallet (1000 kg), stretch-wrapped for transport. |
| Container Loading (20′ FCL) | 20′ FCL loaded with INEOS HDPE ELTEX TUB125 N6000 in 25 kg bags, palletized, shrink-wrapped, and securely strapped for shipment. |
| Shipping | INEOS HDPE ELTEX TUB125 N6000 is shipped as a non-hazardous thermoplastic resin in 25 kg polyethylene bags, stacked on pallets and shrink-wrapped. Transport in clean, dry trucks or containers, away from moisture, direct sunlight, heat, and contaminants. Keep bags sealed and pallets stable during handling and storage. No special dangerous-goods documentation required. |
| Storage | Store INEOS HDPE ELTEX TUB125 N6000 in a cool, dry, well-ventilated area, away from direct sunlight, heat, flames, and oxidizing agents. Keep in original sealed packaging or lined silos; protect from moisture, dust, and contamination. Stack pallets securely off the ground. Avoid prolonged high temperatures and use first-in, first-out stock rotation to preserve product properties. Follow SDS and local regulations. |
| Shelf Life | Shelf life is typically 2 years when stored in original unopened packaging, cool, dry, and away from direct sunlight. |
Municipal water transport through extruded polyethylene pressure pipe represents the highest-volume conversion route for INEOS HDPE ELTEX TUB125 N6000. The compound is supplied as a ready-to-run black pipe grade, eliminating the need for downstream carbon black masterbatch addition. In pressure pipe extrusion, the choice of screw configuration, barrel heating profile, die geometry, and cooling regime determines whether the finished pipe attains the PE100 minimum required strength of 10 MPa established under ISO 12162 and ISO 9080. On production lines producing outside diameters from 110 mm to 1 200 mm, grooved-barrel single-screw extruders with L/D 30:1–37:1 barrier screws are standard. The grooved feed section raises output stability with high-viscosity melt, but it also increases specific energy input; barrel temperatures are usually profiled between 180 °C and 210 °C, with die zones held at 210–220 °C. Melt temperatures above 240 °C initiate thermo-oxidative chain scission in the high-molecular-weight fraction, producing visible gel particles and surface pimples in the pipe wall. A melt pump before the spiral mandrel die isolates die-head pressure from screw pulsation. The die-head pressure is balanced across the spider legs; unbalanced flow creates a weak weld-line that later fails under long-term hydrostatic load. Vacuum calibration is typically run with spray cooling tanks staged from 60 °C to 20 °C. For thick-walled pipe above 40 mm wall thickness, production speed is governed by heat conduction through the polyethylene wall rather than extruder capacity. The die gap is generally set between 1.2 and 2.0 times the target wall thickness; a tight gap raises shear heating and molecular orientation, while an excessive gap produces wall-thickness variation and poor calibration control. Haul-off speed is slaved to ultrasonic wall measurement and weight-per-metre checks. The most frequent production-scale defect is eccentricity outside the tolerance band of ISO 11922-1, caused by mandrel deflection, uneven melt temperature, or inadequate spider-leg compensation. Finished pipe intended for potable water is tested under EN 12201-2, ISO 4427-2, and, for North American projects, NSF/ANSI/CAN 61. The terminal product is normally an SDR17 PN10 water main or an SDR11 PN16 service main, joined by butt fusion according to ISO 21307. Using the water design stress of 8.0 MPa at 20 °C, SDR17 yields PN10 and SDR11 yields PN16. Operational boundaries include avoiding continuous chlorine residual above 4 mg/L at 20 °C over a 50-year service life unless chlorine resistance has been validated under ASTM F2263. Reprocessed trim, if used, should be limited to 20 wt% and ground below 6 mm to avoid carbon black dispersion defects.
The governing long-term failure mode for PE100 gas mains changes from ductile overload to rapid crack propagation when wall temperature falls toward 0 °C and the stored elastic energy in the pressurized pipe exceeds the crack arrest capacity. INEOS HDPE ELTEX TUB125 N6000 is converted into gas distribution pipe under ISO 4437-1:2020 and EN 1555-2, with ASTM D2513 and CSA B137.4 applied in North American jurisdictions. A gas design coefficient C of 2.0 reduces the allowable hoop stress to 5.0 MPa from the material’s MRS 10 MPa. This gives a maximum operating pressure of 10 bar for SDR11 and 6 bar for SDR17 at 20 °C. Gas pipe is commonly black with co-extruded yellow stripes, the stripe being laid down by a secondary extruder at 2–4% of total pipe wall mass. The stripe compound must be a compatible PE100 or PE80; an incompatible stripe creates an interfacial fusion plane that lowers butt-fusion joint strength. Fusion parameters follow ISO 21307:2017, with bead-up pressure typically held at 0.15 MPa after drag compensation and cooling intervals controlled by ambient temperature. Cold fusion is a documented field failure when interfacial pressure or soak time is insufficient. Long-term resistance is qualified by notched pipe testing under ISO 13479 at 80 °C and 4.0 MPa hoop stress, with PE100 grades expected to exceed 500 h before brittle failure. Rapid crack propagation is evaluated under ISO 13477 S4 at 0 °C; the pipe is pressurized and struck with a projectile, and pass values are thickness- and SDR-dependent. The critical pressure must exceed the maximum operating pressure by the product-standard margin. The finished product is used for gas mains, distribution spurs, and service laterals at operating pressures up to 10 bar. The grade is not qualified for gas containing appreciable liquid hydrocarbon condensates or for continuous service above 60 °C without case-specific derating.
Industrial process water and abrasive slurry transport impose demands that differ from municipal water because pressure retention is only one part of the design envelope. INEOS HDPE ELTEX TUB125 N6000 is extruded into thick-walled SDR13.6 and SDR11 pipelines for tailings return water, process water make-up, desalination feed, and wet-slurry transfer. The governing dimensional standards remain ISO 4427 and ISO 4065, but project specifications often add a chemical service coefficient and a wall-thickness allowance for erosive wear. On the extrusion line, the same grooved-barrel geometry and spiral mandrel dies are used; however, for slurry duty the pipe is frequently one SDR step heavier than the pressure calculation would indicate, because wall loss from abrasion is treated as a predictable maintenance factor. Jointing is by butt fusion or flanged connections, with electrofusion saddles for branch offtakes. Published grade-specific slurry erosion data for TUB125 N6000 is limited; therefore, industrial specifiers commonly run pilot loop trials with site slurry at flow velocities between 1.5 m/s and 3.0 m/s rather than relying on tabulated abrasion factors. The lower boundary prevents settling of coarse solids; the upper boundary limits erosive loss with hard angular particles. The finished product is a non-potable pressure pipeline rated at 20 °C using the same 8.0 MPa design stress, but pressure capacity is derated when the process stream exceeds 40 °C. Continuous service above 60 °C is not supported unless prolonged hydrostatic testing under ISO 9080 regression lines has been reviewed. Strong oxidizing acids, aromatic hydrocarbons, and liquid chlorinated solvents are outside the normal compatibility envelope; pilot exposure under static stress is required before long-term service.
Closed-loop geothermal systems convert INEOS HDPE ELTEX TUB125 N6000 into SDR11 pipe for vertical boreholes, horizontal ground loops, and pond heat exchangers. The pipe is produced under dimensional standards commonly based on ISO 4427 or EN 12201, while installation in Canada is covered by CSA C448 and U.S. projects reference local mechanical codes for ground-source heat pump loops. The circulating fluid is typically an aqueous propylene glycol solution at 20–30 vol%, sufficient for freeze protection to approximately -10 °C to -15 °C. Concentrations above 40 vol% reduce specific heat capacity and increase viscosity, raising circulation pumping energy without improving freeze protection proportionally. The pipe is joined into U-bend sections by butt fusion or socket fusion using ISO 21307 procedures; field pressure tests are completed after loop insertion and before grouting. The limiting service parameter is continuous fluid temperature. At 20 °C the pipe retains the water design stress of 8.0 MPa, but at 40 °C standard PE100 derating reduces the allowable pressure well below the 20 °C rating; designers must apply the derating table from the selected product standard, typically EN 12201-1 or ISO 4427-1. Above 60 °C, the 50-year hydrostatic strength regression curve is no longer considered conservative for standard PE100 geothermal applications, and the material is not recommended for continuous loops at this temperature. Thermal expansion of the pipe wall is approximately 0.15–0.20 mm/(m·K), so loops are installed with slack or serpentine routing to accommodate contraction during off cycles. Field failure modes observed in poorly installed loops include kinking at the borehole base, fusion bead deformation during U-bend assembly, and stress cracking at scratches caused by cable ties or clamps. The terminal product is a pressure-tight closed-loop heat exchanger operating at mean brine temperatures from -5 °C to 35 °C. The pipe is not suitable for open loops carrying untreated high-iron groundwater unless filtering and periodic fouling control are provided; mineral-oil heat transfer fluids and ammonia are outside the normal compatibility range.
Force-main and rising-main service exposes the pipe to intermittent pump-generated surges that are superimposed on normal operating pressure. INEOS HDPE ELTEX TUB125 N6000 is converted into SDR17 or SDR21 pipe for municipal sewage force mains and industrial effluent transfer, with AWWA C906-21 and ASTM F714 used in the water and wastewater sector and EN 12666-1 used in European pressure sewer applications. Wall-thickness control during extrusion is tightened because eccentricity beyond the tolerance band of ISO 11922-1 increases localized strain and accelerates brittle crack initiation at the thin wall. The same grooved-barrel spiral mandrel process is used, but downstream calibration sleeves are adjusted to maintain roundness because pump and vacuum cycling can impose negative-pressure transients. The material’s slow crack growth resistance under cyclic fatigue is not captured by a simple static PN rating; surge analysis must include pump start/stop frequency, valve closure time, and air release. Peak surge may exceed steady pressure by 2–4 bar when fast-closing valves are installed without dampening. Motorized valve closure times below 5 seconds are a common cause of water hammer; closure times above 10 seconds or surge vessels reduce peak pressure. The terminal product is a buried force main joined by butt fusion or electrofusion, designed for a 50-year service life. Service limitations include continuous wastewater temperature above 45 °C, which requires derating under the governing pressure standard, and shock exposure to aggressive industrial effluents such as solvent-laden wastewater. Grade-specific fatigue crack propagation data under this loading waveform is limited, so long pump start-stop cycles should be validated by notched pipe testing under ISO 13479 or its equivalent.
Installation without open trench converts the extruded pipe into a structural element subjected to axial pulling, bending, and external abrasion simultaneously. INEOS HDPE ELTEX TUB125 N6000 is butt-fused into long strings before horizontal directional drilling pullback, slip-lining through host pipes, or pipe-bursting replacement. The governing design calculation for HDD pullback force is ASTM F1962; the allowable tensile stress is derived from the long-term hydrostatic design basis and temperature, and practitioners commonly cap PE100 tensile stress at 10 MPa for 20 °C pulls, though the selected calculation standard and project-specific safety factors take precedence. The minimum bending radius during pullback is usually 40 times the outside diameter for SDR11 and may be reduced to 30 times the outside diameter for thin-walled SDR17 pipe, but exceeding the recommended radius produces kinking and local wall thinning at the neutral axis. In slip-lining, buoyancy forces in the annulus require temporary ballasting or water filling; external scuff depth must not exceed 10% of wall thickness before insertion because deeper scratches become slow crack growth initiation sites. Pipe bursting introduces direct contact with fragments of the host pipe; pulled strings require cut-resistant pull heads and sacrificial wear sleeves. The terminal product is a reinstated pressure main under roads, rail lines, river crossings, or existing sewers. Published data for this specific grade under project-specific HDD load cases is limited, so pre-qualification on a fused joint sample is warranted when pull lengths exceed 500 m or pullback forces approach the calculated allowable load.
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INEOS HDPE ELTEX TUB125 N6000 is a bimodal high-density polyethylene pipe resin intended for pressure pipe extrusion. The grade is classified as PE 100 under ISO 12162, with an extrapolated minimum required strength of 10.0 MPa at 20°C for a 50-year service life evaluated according to ISO 9080. The resin is manufactured with controlled molecular weight distribution and comonomer placement that delays the onset of brittle fracture under sustained hoop stress relative to conventional unimodal HDPE. In pipe form, it is used in water distribution, industrial effluent, pressure sewer, and certain gas-free liquid transport systems where long-term hydrostatic integrity and slow crack growth resistance govern service life. The TUB125 designation identifies the pipe extrusion segment, while the N6000 suffix denotes the natural resin formulation that is subsequently converted into black or coloured pipe compound by the pipe manufacturer. Published batch release data should be obtained from the INEOS certificate of analysis because pipe certification is compound-specific and depends on the carbon black masterbatch, extrusion history, and pipe wall thickness.
Under ISO 9080, pipe-grade HDPE is subjected to internal pressure testing at multiple temperatures, typically 20°C, 60°C, and 80°C, with failure times ranging from less than 1 h to more than 8,000 h. The standard constructs a stress-rupture regression that separates ductile failure at high hoop stress from brittle failure at lower stress. For ELTEX TUB125 N6000, the PE 100 classification requires the lower confidence limit of the long-term hydrostatic strength at 20°C to be not less than 10.0 MPa after 50 years. The practical consequence is that a pipe with SDR 11 can sustain a nominal pressure rating of PN 16 when the design coefficient accounts for service temperature and fluid. The resin’s bimodal architecture is the key variable: the high-molecular-weight fraction raises the density of tie molecules bridging adjacent lamellae, while the low-molecular-weight fraction allows the melt to be processed at realistic extrusion backpressures. In quality-control terms, the melt flow rate measured at 190°C with a 5 kg load is approximately 0.25 g/10 min, but that value alone is insufficient to verify PE 100 performance; the ratio of high-load to low-load melt flow rate and the slow crack growth test response are more diagnostic.
Molecular architecture differentiates this grade from older unimodal chromium oxide HDPE. In a unimodal reactor, short and long chains are produced simultaneously, and the comonomer is distributed statistically; much of the short-chain branching resides in low-molecular-weight fractions where it contributes little to tie-molecule formation. The bimodal process used for TUB125 N6000 separates polymerisation into stages that generate a low-molecular-weight high-density fraction and a high-molecular-weight fraction containing 1-butene or 1-hexene. During crystallisation, the high-molecular-weight chains form tie molecules that span amorphous regions between lamellae. This elevates resistance to slow crack growth and reduces notch sensitivity in butt-fusion welds. In extrusion, the low-molecular-weight fraction provides shear thinning, lowering apparent viscosity at the high shear rates encountered in the die land and spider legs. The grade therefore exhibits a broader processing window than a single-reactor resin of equivalent density.
Pipe extrusion of TUB125 N6000 is typically conducted on single-screw extruders with grooved-feed or barrier screws and L/D ratios from 30:1 to 37:1. The melt temperature measured at the die entry is maintained between 200°C and 230°C. At temperatures below 190°C, melt fracture and surface sharkskin can appear, especially at output rates above 400 kg/h on 75 mm grooved-feed machines; above 240°C, the stabiliser package undergoes accelerated consumption and the risk of oxidation during long die residence time increases. Die head pressures in the range of 15 MPa to 30 MPa are common, depending on pipe diameter and tooling. The screw should provide dispersive mixing rather than distributive mixing alone, because carbon black masterbatch agglomerates must be reduced below the 20 µm detection threshold specified in ISO 18553 for pressure pipe assessment. A screen changer with 60/80/100 mesh packs is often used, but excessive backpressure can raise melt temperature beyond the target. Moisture absorption is negligible; pre-drying is not normally required unless condensation has formed during cold storage.
Typical published physical properties for the natural resin are summarised in the following table. The values are representative and are not specification limits; they may shift after carbon black compounding. Pipe manufacturers should verify batch-specific values against the certificate of analysis and the requirements of EN 12201-1 for PE 100 pipe materials.
| Property | Test method | Reported typical value | Unit |
|---|---|---|---|
| Density at 23°C | ISO 1183-1 | 0.959 | g/cm³ |
| Melt flow rate, 190°C / 5 kg | ISO 1133-1 | 0.25 | g/10 min |
| Tensile stress at yield | ISO 527-2 | 25 | MPa |
| Elongation at break | ISO 527-2 | >600 | % |
| Flexural modulus, 1% secant | ISO 178 | 1000 | MPa |
| Charpy notched impact strength, 23°C | ISO 179-1/1eA | 24 | kJ/m² |
| Vicat softening temperature | ISO 306/A50 | 128 | °C |
| Oxidative induction time, 210°C | ISO 11357-6 | >20 | min |
Carbon black is introduced by the pipe manufacturer to provide ultraviolet screening and weathering resistance. For black pressure pipe conforming to EN 12201-1, the carbon black content must be in the range of 2.0 wt% to 2.5 wt%; dispersion assessed according to ISO 18553 must show no agglomerates larger than 20 µm that could act as stress concentration points. The recommended masterbatch carrier should be a compatible HDPE or LLDPE with a melt index higher than the base resin, typically 5 g/10 min to 20 g/10 min at 190°C, to promote wetting and distribution. High-shear dispersive mixing is required; distributive screw elements alone are not sufficient. Poor dispersion is not reliably detected by melt flow rate testing because carbon black can increase viscosity modestly, and tensile yield may remain within specification while slow crack growth resistance deteriorates. Batch-to-batch control therefore relies on microtome sections and optical microscopy rather than homogeniser-based tests. In outdoor storage, this compound achieves the UV stabilisation required for normal above-ground installation, but long-term direct sunlight exposure is not advised unless the pipe is covered or coloured.
The key differentiation between TUB125 N6000 and conventional unimodal HDPE is observed in notched pipe testing. In ISO 13479, a notched pipe is subjected to sustained hydrostatic pressure at 80°C; brittle failure before a specified time indicates inadequate slow crack growth resistance. For PE 100 materials, the acceptance time is typically not less than 500 h at the required hoop stress, but many bimodal grades exceed 1,000 h under the test condition. The full notch creep test of ISO 16770 is more sensitive; it measures time to brittle failure in a pre-notched specimen under constant tensile load at elevated temperature. The high-molecular-weight fraction of TUB125 N6000 increases the density of tie molecules, delaying crack propagation along lamellar boundaries. At high stress, failure remains ductile and is governed by yield; at low stress, the failure mode shifts to brittle. The position of the ductile-brittle transition is a more discriminating quality parameter than density or melt flow rate. A resin with identical density and MFR but manufactured with a unimodal distribution may show a ductile-brittle transition at a shorter time and fail the notched pipe requirement.
| Attribute | INEOS HDPE ELTEX TUB125 N6000 | Unimodal PE80 reference | PE100-RC reference |
|---|---|---|---|
| Classification | PE 100 | PE 80 | PE 100-RC |
| Minimum required strength | 10.0 MPa | 8.0 MPa | 10.0 MPa |
| Molecular weight distribution | Bimodal, comonomer in high-molecular-weight fraction | Broad unimodal, statistical comonomer placement | Bimodal, enhanced slow crack growth resistance |
| Density | ~0.959 g/cm³ | ~0.945–0.950 g/cm³ | ~0.958–0.961 g/cm³ |
| MFR, 190°C / 5 kg | ~0.25 g/10 min | ~0.7 g/10 min | ~0.2–0.3 g/10 min |
| Notched pipe test response at 80°C | Exceeds typical PE100 threshold | Lower threshold | Extended beyond standard PE100 |
| Primary installation constraint | Standard sand bedding required | Lower pressure rating | Resists point loads and aggressive bedding |
Chemical resistance of polyethylene pipes depends on the combination of density, molecular weight, and comonomer type. ELTEX TUB125 N6000 is suitable for continuous contact with potable water, dilute acids, alkalis, and salt solutions at ambient temperature. The material is not recommended for strong oxidising media such as concentrated nitric acid or halogens at elevated temperature, and aromatic hydrocarbons and chlorinated solvents reduce hoop stress capacity by plasticization. For potable water applications, the final pipe must meet national or international hygiene requirements such as EN 12201-5, DVGW W270, KTW-BWGL, or NSF/ANSI 61; these approvals are conferred on the pipe system rather than on the raw resin alone. The manufacturer should not infer compliance from the resin datasheet unless the pipe formulation and extrusion line have been tested.
Electrofusion and butt-fusion welding are the primary joining methods for pipe made from TUB125 N6000. The resin’s broad molecular weight distribution provides a stable melt pool during butt fusion, with recommended interfacial pressure in the range of 0.15 MPa to 0.18 MPa after the fusion bead forms, following ISO 21307. Weld bead geometry should be inspected for rolled-back edges and centre-line notches; a double bead that is rounded and symmetric indicates that melt displacement occurred under controlled pressure. Excessively high interfacial pressure can squeeze out too much molten resin, producing a cold joint at the bead root. In electrofusion, the low melt flow rate reduces the tendency for melt flow into the wire zone, but the generator must apply the energy specified by the fitting manufacturer. Because the material is PE 100, the cooling time must be extended relative to PE 80; demoulding or restraint removal before the bead reaches ambient temperature can introduce residual stress at the fusion zone.
Compared with PE 100-RC grades, TUB125 N6000 does not claim the same resistance to point loads and aggressive installation without sand bedding. PE 100-RC materials are specifically formulated to withstand slow crack growth under sharp rock impingement and may pass the full notch creep test at higher stress or longer duration. TUB125 N6000 is a conventional PE 100 pipe grade and should be installed in accordance with standard trench preparation and bedding practices. If the pipe is used in trenchless installation or pipe bursting, the designer should verify the allowable tensile pull force and external point load against the pipe’s SDR and the resin’s notched slow crack growth performance.
In-house regrind from clean pipe scrap can be added at levels up to 10 wt% without loss of pressure rating, provided the regrind is dry, not degraded, and generated from the same compound. Higher ratios require hydrostatic testing because gel content and oxidative induction time may be affected. The use of post-consumer recyclate is not covered by the PE 100 classification and must be validated separately under EN 12201-1.
Because hydrostatic testing requires long failure times, pipe manufacturers rely on faster batch release tests to monitor lot-to-lot consistency. The melt flow rate under a 5 kg load is not sufficient to detect subtle shifts in molecular weight distribution. Gel count, measured by film casting or pipe section microscopy, is a sensitive indicator of crosslinked or oxidised material. For TUB125 N6000, gel count specifications are pipe-plant specific. The spiral flow test in a grooved plate is sometimes used to detect high-viscosity tails that affect surface finish. None of these tests replaces the ISO 1167 hydrostatic proof test on finished pipe, but they allow early detection of reactor or extrusion faults. The certificate of analysis should report density, MFR, oxidative induction time, and carbon black dispersion for the pipe compound.