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Mitsubishi Chemical Advanced Materials UHMW-PE 88-2

    • Product Name: Mitsubishi Chemical Advanced Materials UHMW-PE 88-2
    • 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 201017

    As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE 88-2 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Mitsubishi Chemical Advanced Materials UHMW-PE 88-2 comes in a 1 kg sealed moisture-resistant bag with clear labeling for safe storage.
    Container Loading (20′ FCL) 20′ FCL loading: Mitsubishi Chemical Advanced Materials UHMW-PE 88-2, palletized polyethylene, securely stowed for ocean freight transport.
    Shipping Mitsubishi Chemical Advanced Materials UHMW-PE 88-2 is a non-hazardous UHMW polyethylene stock shape. Ship clean, dry, and in original packaging at ambient temperature. It is not DOT/IMDG/IATA regulated; no special ventilation or segregation required. Protect from UV, heat, oils, and contamination. Use standard freight and follow local transport regulations.
    Storage Store Mitsubishi Chemical Advanced Materials UHMW-PE 88-2 in a cool, dry, well-ventilated area. Keep containers closed, labeled, and away from direct sunlight, heat, flames, and strong oxidizers. Avoid prolonged UV exposure and excessive temperatures. Store flat to prevent distortion. No special ventilation is normally required. Follow local regulations and manufacturer guidance for safe handling and shelf life.
    Shelf Life Mitsubishi Chemical Advanced Materials UHMW-PE 88-2 shelf life is indefinite if stored cool, dry, and protected from sunlight, heat, and contaminants.
    Application of Mitsubishi Chemical Advanced Materials UHMW-PE 88-2

    Paraffin-plasticized wet-process extrusion for lithium-ion battery separator film consumes the largest single-segment volume of viscosity-average molecular weight 8.8 × 10⁶ g/mol UHMW-PE powder. The 88-2 grade is dry-blended with a hindered phenolic antioxidant at **0.10 wt%** and a phosphite processing stabilizer at **0.05 wt%** prior to first heat contact. Liquid paraffin with kinematic viscosity between **60 cSt** and **120 cSt** at **40°C** is injected into a co-rotating twin-screw compounder at **62 wt%** to **72 wt%** relative to total feed mass. Barrel temperature profile escalates from **140°C** at the feed throat to **205°C** at the flat-film die exit. The cast sheet is quenched on chill rolls held at **15°C** to **25°C** to arrest lamellar growth and preserve a uniform spherulitic precursor. Machine-direction stretching follows at a draw ratio of **4:1** to **6:1**, then transverse-direction stretching in a tenter frame at **6:1** to **8:1**, producing cumulative planar draw ratios between **24:1** and **48:1**. The paraffin is removed by counter-current extraction using methylene chloride or n-hexane in enclosed loop vessels. Residual plasticizer must fall below **0.5 wt%** before heat-setting. Thermal stabilization at **120°C** to **125°C** under controlled transverse shrinkage converts stretched fibrils into an interlamellar microporous network. Final separator film thickness for automotive-grade cells ranges from **5 μm** to **12 μm** as measured per **ASTM D374**. Gurley air permeability measured per **ASTM D726** typically lands between **200 s/100 mL** and **500 s/100 mL** for a **9 μm** film. Puncture resistance tested on **ASTM F1306** equipment returns values from **300 gf** to **500 gf** for separator grades, with lower values indicating insufficient web integrity and higher values signaling over-stretched, brittle webs. The ultra-high molecular weight suppresses chain disentanglement during the stretching sequence. This stabilizes the tie-chain population bridging adjacent lamellae and produces a shutdown onset of **130°C** to **135°C** with a melt-integrity plateau extending to **150°C** to **160°C** as determined by **ASTM D3418** differential scanning calorimetry at **10°C/min**. Battery-grade qualification protocols additionally require ionic conductivity of the electrolyte-filled membrane above **0.5 mS/cm** and electrochemical stability beyond **4.5 V** versus Li/Li+, both evaluated in coin-cell configuration with a 1 M LiPF₆ in EC/DEC electrolyte. Process control on continuous separator lines demands in-line beta-ray thickness gauging with closed-loop die bolt actuation to maintain thickness variation below **±0.5 μm** across **1,000 mm** web width. Published data for this specific 88-2 configuration in high-nickel cathode cell formats is limited; the above operating ranges derive from wet-process UHMW-PE separator production lines documented in patent filings and peer-reviewed coating science literature for molecular weight tiers above **8.0 × 10⁶ g/mol**.

    Oxidation Resistance in Implant-Grade Compression Moulded Stock

    Orthopaedic bearings manufactured from UHMW-PE 88-2 powder require compliance with **ISO 5834-1** for virgin powder characteristics and **ISO 5834-2** for moulded forms. Compression moulding of acetabular liners and tibial inserts proceeds at platen pressures between **7 MPa** and **21 MPa** with mould temperatures from **190°C** to **220°C**. Cycle duration extends from **20 min** to **45 min** depending on preform geometry, driven by the low thermal diffusivity of the polymer. Premature ejection produces core voids and residual stress gradients detected by **ISO 5834-2** density measurements or micro-CT. Oxidation resistance is the critical boundary condition for this application. The powder is blended with vitamin E at **0.05 wt%** to **0.10 wt%** in stabilised grades prior to moulding; this antioxidant addition shifts the oxidation induction time measured per **ASTM D3895** beyond **40 min** at **200°C** in oxygen. Consolidated stock intended for gamma sterilisation at **25 kGy** to **40 kGy** per **ISO 11137-2** must be evaluated for post-irradiation oxidation index using **ASTM F2102** Fourier-transform infrared spectroscopy. The oxidation index limit commonly specified in implant supplier quality agreements is **≤ 1.0** after accelerated ageing per **ASTM F2003** for **14 days** in pressurised oxygen at **70°C**. Tensile properties on Type V specimens per **ASTM D638-14** must exceed **27 MPa** yield strength and **300%** elongation at break for bearing-grade material. Izod impact resistance per **ASTM F648** is referenced by implant OEMs as a fusion quality indicator; values below **70 kJ/m²** indicate insufficient inter-particle diffusion during moulding. Ram-extruded bar stock produced from the same powder family finds use in smaller joint systems and custom patient-specific devices. The processing boundary is sharper than in industrial moulding: barrel temperature excursions above **250°C** initiate thermo-oxidative chain scission that manifests as discolouration at the rod core and reduced **ASTM F2102** oxidation resistance. Incompatibilities include contact with cobalt-chromium alloys in modular junctions where crevice corrosion can liberate metal ions that catalyse polyethylene oxidation; impingement testing per **ISO 14243-1** in knee simulator configuration is therefore mandatory for cruciate-retaining designs. Traceability requirements impose lot-controlled powder blending records, mould parameter historians, and batch release certificates indexed to **ISO 13485** quality management systems.

    Ram extrusion of near-net-shape rod for subsequent machining into wear strips, chain guides, and bearing pads operates discontinuously. A reciprocating hydraulic ram compresses powder at **2 MPa** to **5 MPa** through a heated barrel maintained at **190°C** to **230°C**. The billet does not melt in a conventional sense. Particle skins reach the crystalline melting point and fuse at contact points while the low thermal conductivity of the polymer limits the heat penetration depth. Production rates on industrial ram extruders rarely exceed **2 m/h** for rod diameters above **50 mm**. Each ram stroke welds a fresh powder charge to the preceding billet face. Inadequate barrel temperature at the splice plane produces a "sinter weld" defect with local density below **0.92 g/cm³**; such discontinuities are rejected by ultrasonic inspection per **ASTM E114** or density gradient column per **ASTM D1505**. Acceptable rod stock exhibits density between **0.930 g/cm³** and **0.940 g/cm³**. Molecular weight retention is verified by **ASTM D4020** intrinsic viscosity measurement; a degradation drop greater than **10%** relative to powder feed disqualifies the batch. Machined components from this rod stock are then tested for wear factor per **ASTM D3702** on a thrust-washer tribometer at **0.5 MPa** and **0.5 m/s** sliding velocity against a polished steel counterface; steady-state wear factors below **2.0 × 10⁻⁶ mm³/N·m** are expected for unfilled UHMW-PE of this molecular weight class. A parallel route — compression moulding of slab stock followed by CNC routing — is preferred where sheet thickness exceeds **80 mm** or where twin-sheet forming of hopper liners is economically justified. The moulding route avoids the splice-plane risk inherent in ram extrusion but introduces its own constraint: cooling-rate asymmetry through thick sections generates residual stress that can cause post-machining warpage beyond **0.5 mm/m** if the slab is released from the cavity before core temperature falls below **80°C**.

    What Governs Maximum Draw Ratio in Decalin-Based Gel-Spun Fibre Lines?

    Gel spinning of UHMW-PE 88-2 for high-tenacity technical yarn and ballistic fabrics begins with dissolution of the powder in decalin or paraffin at **130°C** to **150°C** under nitrogen purge. Solution concentration is held between **2 wt%** and **8 wt%**; lower concentrations produce finer gel filaments but raise solvent recovery cost sharply. The solution is extruded through spinnerets with capillary diameters from **0.5 mm** to **1.5 mm** into a water quench bath maintained at **5°C** to **15°C**. Rapid phase separation traps the polymer in a low-entanglement gel state, which is the structural precondition for ultra-drawing. The gel filament passes through an extraction train where decalin is displaced by n-hexane or heptane, then enters multi-stage hot drawing. First-stage draw at **120°C** applies a ratio of **5:1** to **8:1**; subsequent stages at **140°C** to **150°C** raise cumulative draw to **30:1** to **80:1** depending on molecular weight distribution and residual entanglement density. The upper draw ratio is governed by the critical strain to failure of the gel filament at each stage. Chain scission occurs when the local stress exceeds **350 MPa** to **400 MPa** in the drawing neck; this threshold is monitored by in-line tension sensors on each godet set. Fully drawn fibres achieve tenacity of **2.5 N/tex** to **3.5 N/tex** and tensile modulus of **80 N/tex** to **120 N/tex** as measured per **ASTM D885** for industrial yarns. Filament diameter ranges from **10 μm** to **25 μm**. Colour change during drawing indicates thermal degradation; the draw zone must therefore be inert-blanketed and residence time at temperatures above **140°C** limited to less than **30 s**. Solvent recovery rate is the dominant cost variable. A production line consuming **1,000 kg/h** of spinning solution requires solvent recovery efficiency above **98%** to avoid exceeding volatile organic compound emission limits set by local permitting frameworks. Fibre-grade powder must be free of gel particles above **50 μm**, which are detectable by pressure-rise measurements across a **20 μm** screen filter upstream of the spinneret pack.

    Sintered porous filter elements and fluidisation plates are manufactured from the 88-2 powder by gravity filling matched-metal moulds followed by thermal sintering in circulated hot air ovens. Particle size distribution governs pore architecture. A sieve fraction captured between **150 μm** and **250 μm** yields median pore diameters from **20 μm** to **40 μm** after sintering; finer fractions between **75 μm** and **150 μm** shift median pores to **5 μm** to **15 μm**. Oven setpoint is held at **165°C** to **195°C** for **30 min** to **90 min** depending on part cross-section. Temperature uniformity across the load must remain within **±5°C** to prevent density gradients between parts in the same batch. Sintered density lands between **0.60 g/cm³** and **0.80 g/cm³**, corresponding to void fractions of **20%** to **35%** as determined by **ASTM D2873** mercury porosimetry. The skin layer of each part develops a lower-porosity crust; this is removed or reduced by post-sintering surfacing operations where flow permeability demands a consistent pore gradient. Air permeability of a **10 mm** thick sintered plate typically falls between **2 m³/min/m²** and **8 m³/min/m²** at **98 Pa** differential pressure, measured per **ISO 4022**. Chemical resistance of the sintered part follows the parent polymer: continuous immersion in **30%** sulfuric acid or **10%** sodium hydroxide at **23°C** for **7 days** produces mass change below **0.1%** and no measurable dimensional swell. Service temperature is capped at **80°C** continuous in air; higher temperatures accelerate oxidative embrittlement detectable as reduced **ISO 179** Charpy impact values. Fluidisation plate applications require gas distribution uniformity with local flow deviation below **10%** across the active surface; this is verified by airflow mapping before shipment.

    When Bulk Material Handling Requires Slip Facies in Hopper and Silo Interfaces

    Compression-moulded UHMW-PE 88-2 sheet in thicknesses from **10 mm** to **100 mm** is fabricated as bolt-in liners for hoppers, chutes, silo discharge cones, and railcar unloading surfaces. The processing route applies heat and pressure in daylight presses at **150°C** to **180°C** under **5 MPa** to **10 MPa** for durations scaling with sheet thickness at approximately **3 min/mm**. Slow cooling at **1°C/min** to **5°C/min** through the crystallisation range minimises residual stress. The functional requirement driving material selection in this segment is the unlubricated coefficient of friction against coal, iron ore fines, limestone powder, or wood pellets, measured per **ASTM D1894** at values between **0.12** and **0.20** on a polished steel counterface. Dynamic friction remains below **0.25** even after **2,000 h** of simulated abrasive service. Abrasion resistance is quantified by **ASTM G65** dry-sand rubber-wheel testing; volume loss for unfilled UHMW-PE of this molecular weight class typically falls between **120 mm³** and **200 mm³** after a **2,000 m** sliding distance at **130 N** load, versus **800 mm³** to **1,200 mm³** for **ASTM A36** structural steel under the same conditions. Food-contact compliance follows **21 CFR 177.1520** for olefin polymers, with extraction limits of **0.5 mg/in²** in heptane and **0.5 mg/in²** in xylene; batch documentation must demonstrate mould release agents are absent or classified food-grade. One processing conflict arises with polyethylene grades containing internal lubricants or metallic stearates: those additives migrate to the sheet surface and can contaminate product streams in pharmaceutical or food-handling lines. The 88-2 grade, when specified as natural virgin material without additives, avoids this migration issue. Jointing and fastening practice uses flat-head countersunk bolts with polymer washers to prevent particle hang-up; bolt torque must not exceed **25 N·m** for **M10** hardware to avoid stress whitening around the drilled holes. Drilling is performed with high-helix, low-friction tooling at cutting speeds below **50 m/min**; higher speeds generate local melt adhesion on the tool that degrades hole-wall quality.

    Valve Seat and Pump Impeller Service Boundaries in Chemical Processing

    Chemical process pumping and valve applications for UHMW-PE 88-2 parts include valve seats, stem packing rings, impeller wear rings, and casing liners for centrifugal pumps handling abrasive slurries or corrosive liquors. The key operational boundary is thermal: continuous service is restricted to **−30°C** to **80°C** in aqueous media and **−50°C** to **80°C** in dry gas service. Above **80°C** in the presence of dissolved oxygen, oxidative degradation accelerates and impeller tip clearance growth exceeds **0.1 mm** per **1,000 h** in slurry service. Published data for this specific grade in concentrated sulfuric acid above **80%** at temperatures exceeding **60°C** is limited; qualifying trials with immersion coupons per **ISO 175** are required before specifying the material for hot strong-acid duty. Cavitation resistance measured per **ASTM G32** against 316L stainless steel shows UHMW-PE to exhibit lower mass loss under equivalent cavitation intensity, which is the primary reason this material replaces metal wear rings in high-suction-energy pump designs. Impeller wear components machined from ram-extruded rod or compression-moulded block require dimensional stability inspection after annealing at **100°C** for **1 h** per **ISO 27996**; shrinkage exceeding **1%** indicates incomplete stress relief and mandates re-annealing before installation. Chlorinated solvents, strong oxidising acids above ambient temperature, and aromatic hydrocarbons cause either swelling beyond **5%** mass uptake or surface attack and are excluded from service life predictions.

    Compliance and test matrix for implant-grade UHMW-PE 88-2 consolidated stock
    Property or RequirementTest MethodTypical Specification Range
    Yield tensile strengthASTM D638-1421–27 MPa
    Ultimate elongationASTM D638-14300–450%
    Izod impact (notched)ASTM F64870 kJ/m² minimum
    Oxidation index after ageingASTM F2102 / ASTM F2003≤ 1.0
    DensityASTM D15050.930–0.940 g/cm³
    Powder purity (virgin)ISO 5834-1No recycled content
    Gamma sterilisation doseISO 11137-225–40 kGy
    Comparative processing route characteristics for UHMW-PE 88-2 across downstream segments
    Processing RouteTypical ThroughputMax SectionCritical Defect ModePrimary End Product
    Wet-process extrusion + biaxial stretch200–600 kg/h5–12 μm filmPin-hole formationBattery separator
    Compression moulding5–50 kg/cycle100 mm sheetCore void / fusion defectOrthopaedic bearings, liners
    Ram extrusion1–10 kg/h300 mm rodSinter weld at splice planeWear strips, pump internals
    Gel spinning50–500 kg/h10–25 μm filamentDraw-line chain scissionTechnical yarn, ballistic fabric
    Sinter moulding1–20 kg/cycle50 mm plateDensity gradientPorous filter element
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