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Celanese UHMW-PE 5523

    • Product Name: Celanese UHMW-PE 5523
    • 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 970764
    Density 0.930 g/cm³
    Bulkdensity 0.400 g/cm³
    Molecularweight 5.5 million g/mol
    Averageparticlesize 23 µm
    Meltingpoint 135 °C
    Crystallinity 45-50 %
    Tensilemodulus 700 MPa
    Tensilestrengthatyield 17 MPa
    Elongationatbreak 350 %
    Charpyimpactstrengthnotched 100 kJ/m²
    Shoredhardness 60
    Waterabsorption <0.01 %
    Coefficientoffriction 0.15
    Thermalconductivity 0.41 W/m·K
    Linearthermalexpansion 200 µm/m·°C
    Volumeresistivity >1e15 ohm·cm
    Dielectricstrength 45 kV/mm
    Maximumservicetemperature 80 °C

    As an accredited Celanese UHMW-PE 5523 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Celanese UHMW-PE 5523 comes in 25 kg multiwall paper bags, palletized and shrink-wrapped for safe transport and storage.
    Container Loading (20′ FCL) Celanese UHMW-PE 5523 is palletized in 25 kg bags, shrink-wrapped, and securely loaded into a standard 20-foot FCL dry container.
    Shipping Celanese UHMW-PE 5523 is shipped as a non-hazardous, inert solid in moisture-resistant bags or lined boxes on pallets. It is not regulated by DOT, IMDG, or IATA. Transport and store in a cool, dry, well-ventilated area away from heat, ignition sources, and direct sunlight. Keep containers sealed.
    Storage Store Celanese UHMW-PE 5523 in a cool, dry, well-ventilated area. Keep containers tightly closed, labeled, and off the ground. Protect from direct sunlight, heat, moisture, and strong oxidizing agents. Avoid dust generation and accumulation; keep away from ignition sources and use grounding/bonding where required. Do not smoke. Maintain good housekeeping and comply with local storage regulations.
    Shelf Life Celanese UHMW-PE 5523 has no specific shelf life; store cool, dry, away from direct sunlight for extended stability.
    Application of Celanese UHMW-PE 5523

    On ram-extrusion lines for beverage conveying, packaging transfer, and bottling machinery, Celanese UHMW-PE 5523 is fed as a free-flowing powder into a preheating barrel maintained at 150–180°C. Melt flow rate under ASTM D1238 is effectively zero for this polymer class; the material enters a viscoelastic plug-flow regime rather than conventional screw-driven melt pumping. The reciprocal ram forces the compacted powder through a die land at 180–220°C under 15–45 MPa ram pressure. The profile exits into a calibrator held at 80–120°C. Surface freezing is rapid, core crystallization is deliberately slow; insufficient cooling length produces internal voids, sink marks, and machining rejects. Batch-to-batch bulk density shifts above ±0.02 g/cm³ alter feed compaction and require ram stroke adjustment. Powder stored in unheated warehouses above 60% RH is pre-dried at 80°C for 2–4 h before hopper charging. Continuous processing temperature above 240°C accelerates oxidative chain scission, color shift, and gel-particle formation. The consolidated profiles are machined into chain guides, star-wheel inserts, feed screws for bottle unscramblers, dry-running conveyor rails, and wear strips. Food-contact applications require FDA 21 CFR 177.1520 and EU 10/2011 compliance. Abrasion resistance is evaluated under ASTM G65 dry sand/rubber wheel conditions; mass loss depends on machining finish and wheel load, and published data for this specific grade in this configuration is limited. Regrind addition above 10 wt% can destabilize compaction in the barrel and should be validated on the specific ram stroke profile.

    What Limits Sintered Pore Uniformity in Filter-Grade 5523?

    Pore uniformity in sintered 5523 parts is controlled by the as-supplied particle size distribution, mould-filling density, and sintering temperature. The powder is screened or air-classified to narrow the particle size band before closed-mould filling. Sintering occurs at 160–200°C under contact pressure of 0.5–5 MPa. Dwell time is scaled to wall thickness; cross-sections up to 25 mm commonly require 10–40 min. The process produces interconnected pores with bubble-point pore diameter measured by ASTM E128-99. Porosity is controlled in the 30–45% range for filtration plates, sparger tubes, pump inlet strainers, vent silencers, and membrane support layers. Higher porosity lowers back-pressure but reduces crush strength. Permeability is characterized by air flow per unit pressure drop using line-specific methods. Chemical resistance is broad at room temperature, but continuous exposure to aromatics, halogenated solvents, and strong oxidizers causes swelling, pore collapse, or oxidative attack. Load-bearing porous structures should not exceed 80°C in continuous service; creep in porous UHMW-PE is significantly higher than in solid profiles.

    Wet-Process Microporous Membrane Lines: When 5523 Is a Candidate for Microporous Film

    Wet-process microporous membrane lines place 5523 in a solvent-rich environment unlike dry powder processing. The polymer is compounded with paraffin oil or mineral oil at 140–200°C, cast through a slot die, cooled into a gel film, and then biaxially stretched. High molecular weight is required for melt strength during transverse-direction draw; without sufficient chain entanglement the film ruptures at draw ratios above 3 in the transverse direction. Solution concentration is adjusted based on intrinsic viscosity and die pressure. Industrially, UHMW-PE loadings in mineral oil are commonly maintained within 10–25 wt%, but the specific optimum for 5523 must be determined on the line because published data for this exact grade are limited. After stretching, the plasticizer is extracted with methylene chloride or heptane. Residual oil must be reduced to below 0.1 wt% to prevent pore blocking and electrolyte wetting defects. The membrane is then heat-set. Thermal shutdown is a safety function. The PE porosity collapses at approximately 130–135°C, increasing impedance. Meltdown occurs above 150–160°C, so separator line controls must not laminate at temperatures that compress this safety window. Porosity is measured by liquid absorption method; Gurley air permeability is measured with a Gurley densometer under line-specific conditions. Film tensile properties are measured under ASTM D882.

    For Thick Stock Shapes, Cooling Rate Is the Process Boundary

    Thick-walled compression-moulded stock made from 5523 powder is consolidated in heated platens. Moulds are charged and preheated under pressure at 200–210°C. Consolidation pressure is held at 5–15 MPa. Soak time is calculated at 20–30 min per 10 mm of part thickness. Sections above 60 mm are instrumented with internal thermocouples to confirm core temperature. Cooling under pressure at 5–10°C/min to below 50°C prevents warpage and vacuum-void formation. Cooling rates above 15°C/min produce differential crystallinity across the section; the skin freezes while the core contracts, creating internal tensile stress that appears during machining. Consolidated blocks are converted into chain guides, chute liners, die wear plates, and food-machinery components. Qualification is made against ASTM D4020-18 and ISO 21304-2. Density measured by ISO 1183-1 remains within 0.93–0.94 g/cm³. Tensile yield strength under ASTM D638-14 is typically no less than 21 MPa for unfilled UHMW-PE stock, but part-specific values depend on fusion quality. Published data for this specific 5523 configuration is limited; incoming powder certificate of analysis and internal fusion testing are used to set release limits.

    A different set of obligations applies when 5523 is converted into implantable stock shapes for orthopaedic components. The powder must be consolidated in vacuum or inert gas. Atmospheric oxygen leads to chain scission and increases oxidation index. ISO 5834-2 and ASTM F648 govern the powder, consolidated form, and machined implant blanks. Type tests include density per ISO 1183-1, tensile per ISO 527-2, and impact per ISO 11542-2 or ASTM F648. The consolidated stock must not show fusion defects, voids, or inclusions when examined by light microscopy at 25× or higher. Gamma irradiation at 25–50 kGy is used for crosslinking to reduce wear. Post-irradiation remelting or annealing is required to quench free radicals; otherwise oxidative degradation occurs during shelf storage. Accelerated aging per ASTM F2003 evaluates oxidation index and mechanical property retention. Not all 5523 lots meet implant requirements. Only validated lots with full traceability, ISO 13485 documentation, and implant-grade test reports are acceptable. Published performance data for 5523 in this exact implant configuration is limited, so process validation at the converter level is mandatory.

    Food-Contact Components and EU 10/2011 Migration Limits

    Food-contact components produced from 5523 are governed by both US and EU frameworks. Under FDA 21 CFR 177.1520, olefin polymers may be used in contact with food provided the finished article meets extractables limits and is free of substances imparting odor or taste. Under EU 10/2011, overall migration must not exceed 10 mg/dm² for plastic materials in contact with food. Specific migration limits depend on additives. Unfilled UHMW-PE typically has no plasticizer, but antioxidants or processing aids must be listed and controlled. Compliance is validated with food simulants: 10% ethanol, 3% acetic acid, and vegetable oil or isooctane depending on food type. The conversion process must avoid contamination by non-food-grade oils, mould-release sprays, or regrind from non-food applications. Dry-running conveyor parts made from 5523 may be used in bakeries, meat processing, and beverage lines. Continuous service temperature under load should not exceed 80°C. For fatty food contact, oil absorption and swelling are negligible at room temperature, but published data for this specific grade and machined surface finish is limited.

    Compliance matrix for 5523 application routes
    ApplicationStandard or test methodProcess variableOperational boundary
    Ram-extruded guidesFDA 21 CFR 177.1520; ASTM G65Die land temperature180–220°C
    Sintered filter mediaASTM E128-99Sintering temperature160–200°C
    Wet-process separatorASTM D882Residual plasticizer<0.1 wt%
    Compression moulded stockASTM D4020-18; ISO 21304-2Cooling rate5–10°C/min
    Orthopaedic stockISO 5834-2; ASTM F648Irradiation dose25–50 kGy
    Food contactEU 10/2011; FDA 21 CFR 177.1520Overall migration10 mg/dm²

    Gel-spinning trials with 5523 require a solvent system based on decalin or paraffin oil at 150–180°C. The polymer is dissolved at low concentration, typically 5–15 wt% depending on molecular weight and solvent viscosity. The solution is extruded through a multi-hole spinneret, quenched through an air gap and water bath, and drawn to draw ratios of 30–60. The as-spun gel filament contains solvent. Extraction with n-heptane or dichloromethane and subsequent hot drawing produce high-tenacity UHMW-PE fiber. Fiber tensile properties are tested by ASTM D885. Published data for 5523 in gel-spun fiber configuration is limited. The high molecular weight can increase chain entanglement and filament tenacity, but it also raises solution viscosity and gel-fiber handling difficulty.

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