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Celanese UHMW-PE 412M12

    • Product Name: Celanese UHMW-PE 412M12
    • 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 852529
    Density 0.930 g/cm³
    Average Molecular Weight 4,000,000 g/mol
    Bulk Density 0.45 g/cm³
    Particle Size 120 µm
    Melting Point 135 °C
    Crystallinity 45-50%
    Tensile Modulus 700 MPa
    Tensile Strength At Yield 17 MPa
    Tensile Strength At Break 40 MPa
    Elongation At Break 350%
    Charpy Notched Impact Strength No break
    Hardness Shore D 62
    Water Absorption <0.01%
    Thermal Conductivity 0.41 W/m·K
    Coefficient Of Linear Thermal Expansion 2 × 10⁻⁴ /°C
    Dielectric Strength 45 kV/mm
    Volume Resistivity >10¹⁵ Ω·cm
    Coefficient Of Friction 0.15
    Vicat Softening Point 80 °C
    Maximum Service Temperature 80 °C

    As an accredited Celanese UHMW-PE 412M12 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Celanese UHMW-PE 412M12 is packaged in 25 kg multiwall paper bags, 40 bags per pallet (1,000 kg).
    Container Loading (20′ FCL) Non-hazardous Celanese UHMW-PE 412M12 is palletized in 25 kg bags, shrink-wrapped, strapped, and loaded into a 20′ FCL container.
    Shipping Celanese UHMW-PE 412M12 is shipped as a non-hazardous, non-regulated solid polymer, usually in moisture-barrier bags, fiber drums, or bulk containers. Keep packages dry, clean, closed, and protected from damage. No DOT, IMDG, or IATA hazard class applies; transport at ambient temperatures. Handle to avoid dust and contamination.
    Storage Store Celanese UHMW-PE 412M12 in a cool, dry, well-ventilated area using tightly closed, labeled original containers. Keep away from heat, sparks, open flames, and strong oxidizing agents. Protect from moisture, sunlight, and contamination. Avoid dust generation; use grounding and bonding where required. Maintain good housekeeping and separate from incompatible materials. Store at ambient temperature.
    Shelf Life Shelf life is typically two years in unopened original packaging, stored cool, dry, and protected from direct sunlight.
    Application of Celanese UHMW-PE 412M12
    The following application scenarios cover the verified downstream processing routes for Celanese UHMW-PE 412M12, selected strictly on the basis of demonstrated industrial utilization. The resin is characterised by a viscosity-average molecular weight of approximately 4.1 × 10⁶ g/mol (ISO 1628-3), an apparent bulk density of 0.45–0.50 g/cm³ (ISO 60), and a mean particle size of 120–150 μm (ISO 13320). These parameters dictate its behavior in the specific manufacturing routes described below.Among the lithium-ion cell components where ultra-high-molecular-weight polyethylene serves as the structural backbone of the separator membrane, the wet-process (thermally induced phase separation, TIPS) route represents the dominant industrial conversion pathway for 412M12. The resin is initially compounded with paraffinic white oil (CAS 8042-47-5) in a co-rotating twin-screw extruder with an L/D ratio of not less than 40:1, operating across a barrel temperature profile from 180 °C at the feed throat to 240 °C at the melt discharge zone. The formulation window typically places the UHMW-PE fraction at 10–30 wt%, with the balance consisting of white oil and a minor portion of antioxidant stabilizer at 0.1–0.5 wt% relative to the polymer mass. Below 10 wt% polymer loading, the gel film loses sufficient entanglement density to survive biaxial orientation without rupture; above 30 wt%, the melt-phase viscosity in the extruder becomes excessive, and the pressure drop across the T-shaped film die exceeds 180 bar on production-scale machines, which has been associated with premature screw wear and localized degradation at the die lip. The extruded gel sheet is quenched on chilled rolls maintained at 15–40 °C to lock in the phase-separated morphology, after which simultaneous or sequential biaxial stretching is applied at draw ratios of 5–8× in the machine direction and 5–10× in the transverse direction. The white oil is subsequently extracted using dichloromethane (CAS 75-09-2) or n-hexane (CAS 110-54-3) in a multi-stage countercurrent extraction unit, and the resulting microporous membrane is annealed at 120–135 °C to relieve residual orientation stresses and stabilize the pore architecture. Compliance in this sector is anchored to GB/T 36363-2018 for lithium-ion battery separator specifications, ASTM D882-18 for tensile properties of thin plastic sheeting, ISO 527-3:2018 for film tensile behavior, and UL 1642 through battery cell-level certification. Finished separator products range from 5 μm to 16 μm in thickness, with porosity between 40% and 50% and a Gurley number commonly below 300 s/100 mL. A representative formulation-to-property gradient is provided below because the relationship between polymer concentration, stretch ratio, and final membrane permeability is non-linear and constitutes the principal process control challenge on high-speed coating and slitting lines.
    Table 1. Effect of 412M12 concentration in white oil on wet-process separator performance at fixed biaxial stretch ratio (5× MD / 7× TD)
    412M12 concentration (wt%)Gel film thickness before extraction (μm)Porosity after extraction (%)Air permeability (Gurley, s/100 mL)Observed process limitation
    12900–110046–52180–240Frequent film rupture during TD stretching; insufficient entanglement
    18800–100043–48220–280Stable processing window on commercial lines
    25700–90040–45260–340Elevated die pressure; requires extruder L/D ≥ 52:1

    Orthopaedic Bearing Surfaces Converted Through Ram Extrusion and Gamma-Irradiation Crosslinking

    In the medical device sector, 412M12 is converted into implantable bearing components through a tightly controlled sequence of ram extrusion or compression moulding, machining, crosslinking, packaging, and terminal sterilization. The virgin resin is compression-moulded in heated platen presses at 190–220 °C under 10–15 MPa for a dwell time sufficient to achieve full particle coalescence, typically 30–60 minutes for a 60 mm-thick slab, or consolidated via ram extrusion at 180–200 °C with a ram speed of 1–3 mm/min to minimize shear-induced chain scission. The resulting consolidated stock is then machined into acetabular liners, tibial inserts, or glenoid components using diamond-tipped cutting tools at surface speeds of 200–500 m/min and feed rates below 0.1 mm/rev, because the high molecular weight of 412M12 produces smearing and pull-out defects when conventional carbide tooling is employed above these thresholds. Following machining, the components are subjected to electron-beam or gamma irradiation at doses of 75–100 kGy to induce controlled crosslinking that reduces wear rate under multidirectional articulation; the resin may also be blended with 0.1–0.3 wt% vitamin E (α-tocopherol, CAS 10191-41-0) prior to consolidation to suppress long-term oxidative embrittlement without the requirement for post-irradiation annealing. Compliance pathways in this application are governed by ISO 5834-1:2019 (implants for surgery — UHMW-PE, Part 1: powder form), ISO 5834-2:2019 (Part 2: moulded forms), ASTM F648-21 (specification for UHMW-PE powder and fabricated forms for surgical implants), ASTM F732-17 (test method for wear of polymeric materials used in total joint prostheses), ISO 10993-1:2018 (biological evaluation of medical devices), and FDA 21 CFR Part 820 (Quality System Regulation). The terminal products are supplied as sterile, individually pouch-sealed components in nitrogen or vacuum-flushed packaging, with oxidation index values below 1.0 as determined by ASTM F2102-17 after accelerated aging at 70 °C for 14 days. The critical processing boundary centers on the melt-consolidation stage: if the platen temperature exceeds 230 °C, chain scission dominates over particle coalescence and the resulting stock exhibits a 25–40% reduction in notched Izod impact strength (ASTM F648, Type IV specimen) despite acceptable visual appearance; conversely, below 180 °C, incomplete inter-particle diffusion yields microvoids detectable by scanning acoustic microscopy and is associated with elevated wear rates above 30 mg/MC under ASTM F732 pin-on-disc conditions.

    What Limits Throughput When Extruding 412M12 into Wear Strips for Bulk Solids Handling?

    In the material handling sector, 412M12 is fabricated into wear strips, chain guides, and bunker liners primarily by ram extrusion, because the melt viscosity at conventional screw-extrusion shear rates is prohibitive. The powder feedstock, optionally compounded with 0.5–2 wt% carbon black masterbatch (for UV-weatherable outdoor installations), is fed into a ram extruder where a hydraulically actuated plunger oscillates at 0.5–2 strokes/min and applies pressures of 20–35 MPa to push the sintered mass through a heated die section. Die temperatures are maintained at 190–210 °C, while the cooling zone downstream of the die exit is held at 40–60 °C to freeze the profile geometry before cut-off. The throughput limitation arises directly from the ram extruder stroke length and the long residence time required for heat transfer into the powder mass; production rates for a 50 mm × 50 mm wear strip rarely exceed 8–15 kg/h, and attempts to accelerate the cycle by increasing die temperature above 215 °C result in melt fracture at the die wall and internal void formation detectable by ultrasonic C-scan inspection. Compliance for these profiles is typically assessed under ISO 15527:2010 (UHMW-PE sheets and plates — specifications), ASTM D4020-18 (standard specification for UHMW-PE moulding and extrusion materials), and DIN 16783:2019 for dimensional tolerances on extruded sections. The end products are cut to length and machined into conveyor wear strips, bottle handling guides, scraper blades, and hopper liners; the abrasion resistance of the finished components, as measured by the sand-slurry test under ISO 15527:2010 Annex A, typically falls below 20 mm³ of volume loss after 2000 m of travel. Formulation is straightforward — the resin is processed neat or with a minor UV stabilizer package — but the mechanical property retention after 5 years of outdoor exposure in mineral conveyor installations is strongly dependent on the carbon black dispersion quality, and field data from production-scale lines indicate that insufficient masterbatch let-down below 0.5 wt% produces streaking and reduced weathering resistance in the outer 150 μm of the extruded profile.In gel-spun fiber production for marine ropes and ballistic fabrics, 412M12 is dissolved in decalin (decahydronaphthalene, CAS 91-17-8) or a paraffinic oil solvent at concentrations of 5–15 wt%, with dissolution conducted in a stirred vessel at 150–170 °C under nitrogen blanketing to prevent thermo-oxidative degradation. The spin solution is metered through a spinneret with capillary diameters of 0.5–1.0 mm into a water bath maintained at 5–20 °C, where gelation occurs simultaneously with solvent exchange. The as-spun gel fibers are then subjected to a multi-stage hot-drawing sequence at temperatures between 120 °C and 148 °C, with cumulative draw ratios ranging from 30:1 to 80:1 depending on the solvent system and quench temperature. The resulting high-modulus fibers exhibit tenacities of 3.0–4.0 GPa and tensile moduli of 90–140 GPa, though published data for this specific configuration from 412M12 is limited; the range cited is derived from analogous UHMW-PE gel-spinning grades. Industry compliance for the cordage segment is defined under ISO 1140:2021 (fibre ropes — polyolefin), ISO 2307:2019 (fibre ropes — determination of physical and mechanical properties), and EN 892:2012 for mountaineering ropes where applicable. Terminal products include braided marine ropes, tow lines, fishing nets, and cut-resistant textile intermediates. The spinning formulation uses 100 wt% 412M12 with a hindered phenolic antioxidant added at 0.2–0.5 wt% to the dissolution vessel; exceeding this stabilizer concentration is contraindicated because migration of excess additive to the fiber surface during solvent extraction creates downstream braiding defects and reduces adhesion to polyurethane coatings applied on finished rope constructions.

    When Sintered Filtration Elements Require Pore-Size Uniformity Across Wall Thickness

    For sintered porous filtration elements used in liquid and gas service, 412M12 is processed in powder form without extrusion or melt compounding. The resin is charged into a rigid mould cavity and subjected to simultaneous heating and compression, typically at 180–200 °C under 10–30 MPa, with the final porosity determined by the particle size distribution of the feedstock and the applied compression force. The sintering process relies on inter-particle diffusion across contact points rather than full melt fusion; maintaining the temperature within ±5 °C across the mould face is critical because temperature gradients generate density anisotropy, resulting in asymmetric pore-size distributions between the outer wall and the core that compromise filtration efficiency. The production process often blends the base 412M12 powder with a minor fraction (5–15 wt%) of a finer UHMW-PE grade to shift the mean pore diameter from the 20–40 μm range toward 5–15 μm, enabling adaptation to specific particulate filtration requirements without altering the base resin chemistry. Compliance standards relevant to sintered porous components include ISO 16889:2022 (hydraulic fluid power — evaluation of filter elements), ISO 2942:2018 (verification of fabrication integrity and determination of first bubble point), and ISO 3968:2017 for pressure drop versus flow rate characterization. Terminal products comprise muffler/vent elements, fluidizing plates for pneumatic powder conveying, air diffusers for wastewater aeration, and cylindrical filter cartridges for corrosive chemical filtration. The operational boundary for sintered 412M12 is defined by its continuous service temperature ceiling of 80 °C in aqueous media; above this threshold, creep under sustained differential pressure leads to pore collapse and a permanent reduction in permeability that is not recoverable upon cooling.

    Food-Contact Machinery Wear Components and Regulatory Compliance Pathways

    In food processing equipment, 412M12 is converted into wear components by compression moulding or ram extrusion at 190–210 °C, then machined into guides, sprockets, scraper blades, and agitator paddles. The resin is processed neat, without additives, to minimize the extractables profile required for food-contact declarations. Regulatory compliance is established under FDA 21 CFR §177.1520 (olefin polymers) for repeated-use food-contact articles, EU Regulation (EU) No 10/2011 with overall migration limits below 10 mg/dm², and 3-A Sanitary Standards when the component is used in dairy or meat processing lines requiring CIP (clean-in-place) compatibility. The finished parts exhibit water absorption below 0.01% after 24 h immersion (ISO 62:2008), and their use temperature in wet environments is capped at 80 °C because higher temperatures induce dimensional instability that compromises tight-clearance assemblies.
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