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Mitsubishi Chemical Advanced Materials UHMW-PE STERRA

    • Product Name: Mitsubishi Chemical Advanced Materials UHMW-PE STERRA
    • 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 846720
    Material Type Ultra-high-molecular-weight polyethylene (UHMW-PE)
    Density 0.93 g/cm3
    Molecular Weight 5,000,000 g/mol
    Tensile Strength At Yield 20 MPa
    Tensile Modulus 700 MPa
    Elongation At Break 300%
    Notched Izod Impact Strength No break
    Shore D Hardness 64
    Coefficient Of Friction 0.15
    Water Absorption <0.01%
    Abrasion Resistance Excellent
    Melting Point 135 °C
    Maximum Continuous Service Temperature 80 °C
    Coefficient Of Linear Thermal Expansion 1.5 x 10^-4 /°C
    Thermal Conductivity 0.41 W/mK
    Sterilization Resistance Gamma, ethylene oxide, steam

    As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE STERRA 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 STERRA is supplied in 25 kg sealed, moisture-resistant bags, palletized and shrink-wrapped for industrial delivery.
    Container Loading (20′ FCL) Mitsubishi Chemical Advanced Materials UHMW-PE STERRA loaded in 20′ FCL dry container, palletized, shrink-wrapped, securely braced, stacked within weight limits.
    Shipping Transport Information: Mitsubishi Chemical Advanced Materials UHMW-PE STERRA is not regulated as dangerous goods. No UN number, proper shipping name, hazard class, or packing group is assigned. Ship in original packaging, keep clean and dry, avoid moisture, contamination, excessive heat, and UV. Observe local transport regulations.
    Storage Store Mitsubishi Chemical Advanced Materials UHMW-PE STERRA in a cool, dry, well-ventilated area, away from direct sunlight, heat, flames, and strong oxidizers. Keep in original packaging, protected from dust, oils, and solvents. Store flat or adequately supported to prevent warping. Avoid prolonged UV exposure and extreme temperatures. Do not stack heavy items on top. Maintain clean, ambient conditions.
    Shelf Life Mitsubishi Chemical Advanced Materials UHMW-PE STERRA has indefinite shelf life when stored cool, dry, clean, away from sunlight and contamination.
    Application of Mitsubishi Chemical Advanced Materials UHMW-PE STERRA

    In high-volume beverage filling lines, UHMW-PE STERRA guide rails are machined from compression-molded sheet rather than injection-molded sections. Compression molding is specified because the resin does not produce a measurable melt flow rate under ISO 1133-1:2022; conventional single-screw and twin-screw extrusion lines cannot develop the required melt pressure without risking chain scission. Sheets are pressed at 190 °C to 210 °C under 10 MPa to 15 MPa and cooled at 2 K/min to 5 K/min to reduce residual stress before CNC machining. The absence of a melting and re-solidification step in the component manufacturer’s plant means that finished tolerances are generated entirely by machining, and edge chipping is a known failure mode when cutting tools are run with insufficient coolant.

    For food-contact use, natural-grade STERRA is specified without pigments, lubricants, or processing aids. Under 21 CFR §177.1520, polyethylene homopolymers are permitted for use in contact with food under use conditions A through H, provided the end-test extraction limits are met for the applicable food type and temperature. Under Commission Regulation (EU) No 10/2011, the overall migration limit for plastic articles is 10 mg/dm², and verification must be conducted on the finished machined component, not only on the raw sheet. If the component is installed on dairy or meat processing equipment, the assembly must also meet the applicable 3-A Sanitary Standard for the machine class. Water absorption measured by ISO 62 is 0.01% after 24 h at 23 °C, which prevents dimensional change during wet sanitation.

    Standard / regulationScopeVerification condition
    21 CFR §177.1520Olefin polymers in food-contact articlesEnd-test extraction limits by use condition A through H
    Commission Regulation (EU) No 10/2011Plastic food-contact materialsOverall migration 10 mg/dm²
    ISO 62Water absorption0.01% after 24 h at 23 °C

    Guide rails, star wheels, and timing worms operate continuously against stainless steel chains. Dynamic coefficient of friction against polished steel is measured by ASTM D1894 and falls in the range 0.10 to 0.20, but surface roughness of the stainless chain and line speed alter the value; the coefficient must be confirmed on the finished surface. Alkaline bottle-washing detergents are tolerated at 60 °C, while prolonged contact with peracetic acid at sanitising concentrations above 1000 ppm may embrittle the surface over repeated exposure cycles. Published data for STERRA under repeated oxidative washdown is limited. Terminal components include neck guide rails, star wheels, timing worms, capper chutes, and end-of-line laning guides.

    What Allows Sludge Scrapers to Run Unlubricated in Clarifier Basins?

    Rectangular clarifier chain-and-flight systems operate without oil or grease lubrication when wear shoes and scraper blades are machined from UHMW-PE STERRA. Water absorption is 0.01% per ISO 62, so the components do not swell or seize against steel rails. Sliding friction against submerged stainless steel remains low because the polymer surface adsorbs a thin water layer; static friction values measured by ASTM D1894 against polished steel are typically 0.10 to 0.20, but the submerged value must be confirmed on the finished surface roughness.

    Process water conditions in municipal clarifiers range from pH 6 to 9 with free chlorine residuals below 5 mg/L; STERRA is not selected for strong oxidising sludge contact where hypochlorite dosing exceeds this range. For potable water contact, NSF/ANSI/CAN 61 certification must be verified on the specific grade. The wear shoes are machined from compression-molded sheet with bolt-hole clearances 0.5 mm to 1.0 mm larger than fastener diameter to accommodate differential thermal expansion. Terminal components include non-metallic chain wear shoes, scraper flight blades, and return rail bearing blocks.

    Bulk Solids Discharge Liners: Wall Friction, Bridging, and Flow Function

    For silo and hopper discharge liners made from UHMW-PE STERRA, the dominant design variable is wall friction rather than tensile strength. Wall friction angle is not a single material property; it is measured with a Jenike shear cell according to ASTM D6128 at the relevant normal stress and moisture content. Published data for this specific grade in contact with wet lignite, hydrated lime, or filter cake is limited, so hopper design should not rely on generic tabulated values.

    Mechanical fixing is preferred over welding or adhesive bonding. The high melt viscosity of UHMW-PE prevents reliable hot-gas or extrusion welding, and the low surface energy of the sheet gives inconsistent adhesive peel strength. Liners are supplied in thicknesses from 12 mm to 25 mm and are installed with countersunk fasteners. A thermal expansion allowance of 2 mm/m to 3 mm/m is used at butt joints because the coefficient of linear thermal expansion is 1.7 × 10⁻⁴ K⁻¹ per ISO 11359-2, roughly one order of magnitude higher than carbon steel. This is the critical threshold: insufficient joint clearance causes liner buckling when ambient temperature rises from 0 °C to 40 °C.

    End products include hopper discharge liners, transfer chute sidewalls, conveyor skirting, and impact pads for transfer points. For abrasive ores, UHMW-PE is used where sliding abrasion dominates; it is not a replacement for hard ceramic tiles under high-velocity impact, where brittle ceramic or rubber-ceramic composites are more appropriate.

    Where centrifugal pumps handle acidic slurries, UHMW-PE STERRA is used for wear plates, casing liners, and gland rings. The polymer is resistant to continuous immersion in non-oxidizing acids and alkalis across pH 1 to 14 at 23 °C, but exposure to concentrated nitric acid, oleum, or chromic acid is not permitted. Continuous service in water is limited to 80 °C; above this temperature, oxidative chain scission accelerates and wear life decreases. Chemical resistance should be confirmed by ISO 175 immersion testing in the actual process fluid, because trace oxidants and elevated temperature alter the failure mode from abrasive wear to surface cracking.

    Pump liners are machined from compression-molded sheet or ram-extruded rod. Radial clearances are increased by 0.3 mm to 0.5 mm per 100 mm of liner diameter to compensate for thermal expansion relative to the pump casing. End products include slurry pump wear plates, casing liners, and impeller wear rings in reagent dosing and solvent transfer services.

    When UHMW-PE STERRA Is Evaluated for Orthopaedic Bearing Components

    Evaluation of UHMW-PE STERRA for implantable bearing surfaces begins with verification that the specific lot has been produced and tested under ISO 5834-2:2019, which covers compression-molded ultra-high-molecular-weight polyethylene for surgical implants. Tensile properties are measured on machined test specimens according to ASTM F648-21, and the resin supplier or converter must document traceability of the powder lot. The device manufacturer, not the material supplier, remains responsible for finished-device validation and regulatory submission.

    Compression-molded slabs are machined into acetabular cups, tibial inserts, and patellar components. Cleaning is performed with validated solvent or detergent cycles to remove machining lubricants; packaging is conducted in nitrogen or vacuum to limit oxygen uptake before sterilisation. Gamma irradiation or electron-beam irradiation is used for cross-linking only when specified by the implant design; otherwise, oxidation is monitored by infrared spectroscopy per ASTM F2102. The oxidation index is calculated from the absorbance ratio at 1718 cm⁻¹ relative to 1370 cm⁻¹, and acceptance limits are set by the device manufacturer. Published data for STERRA in highly cross-linked configurations is limited; physical property retention after accelerated aging per ASTM F2003 must be established for each sterilisation dose.

    Thermal expansion governs support pad design in LNG unloading lines

    In LNG unloading lines, UHMW-PE STERRA retains impact toughness at cryogenic temperatures, which makes it suitable for sliding supports. Notched impact testing per ASTM D256 does not produce a brittle failure at −196 °C; the material remains deformable while stainless steel pipes contract during cool-down. The design conflict is the mismatch in coefficient of linear thermal expansion: 1.7 × 10⁻⁴ K⁻¹ for UHMW-PE against approximately 1.6 × 10⁻⁵ K⁻¹ for austenitic stainless steel. Support pads are therefore installed with slotted holes or unbonded sliding surfaces to permit differential movement.

    End products include cryogenic pipe supports, sliding saddles, and temporary guide pads on LNG transfer systems. Natural-grade material is commonly selected for cryogenic service because no plasticiser or filler is required; black UV-stabilised grades are unnecessary in enclosed installations.

    When marine fender pads and dock rubbing strips are specified for continuous outdoor exposure, black UHMW-PE grades are selected because carbon black at 2 wt% to 3 wt% stabilises the surface against ultraviolet embrittlement. Natural or light-coloured grades are not recommended for continuous outdoor exposure. The components are cut from black compression-molded sheet, often in thicknesses of 25 mm to 50 mm, and through-bolted to steel fender frames. End products include dock rubbing strips, fender pads, and lock gate bearing blocks; saltwater absorption remains below 0.01% per ISO 62, and the low friction reduces hull-to-structure abrasion. Published data for STERRA in abrasive sand-entrapped ice contact is limited.

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    Certification & Compliance
    More Introduction

    Mitsubishi Chemical Advanced Materials UHMW-PE STERRA is an unfilled ultra-high-molecular-weight polyethylene (PE-UHMW) supplied as machinable plate, rod, and tube stock. The product is specified for sliding wear components, guide rails, star wheels, and low-temperature impact parts in packaging, pharmaceutical, and food-processing equipment. Representative unfilled PE-UHMW values for the grade class include a density of 0.93–0.94 g/cm³ per ISO 1183-1, a tensile yield strength of 20–25 MPa at 23 °C per ISO 527-2, and an elongation at break above 350%. Hardness typically falls between 62 Shore D and 66 Shore D per ISO 868. Water absorption after saturation at 23 °C is below 0.01%. The dynamic coefficient of friction against ground stainless steel is commonly 0.10–0.22, but the value varies with surface roughness, load, sliding velocity, and moisture. Since the polymer matrix is highly entangled, melt-flow index is not a usable specification; the product is not supplied as an injection-molding compound. The exact STERRA lot certificate should be reviewed for values that apply to a specific conversion campaign.

    Why Does the Entanglement Network Prevent Standard Melt Flow Index Measurement?

    PE-UHMW grades such as STERRA exhibit a viscosity number in decalin at 135 °C above 2000 mL/g. A melt mass-flow index per ISO 1133-1 is generally not reported because melt viscosity can exceed 10⁸ Pa·s. This precludes conventional single-screw plastication and injection molding. Stock shapes are manufactured by ram extrusion or compression molding. Ram extrusion lines for UHMW-PE stock shapes operate with barrel temperatures in the 180–230 °C range and compaction pressures from 30 MPa to 60 MPa; compression molding uses platen temperatures near 200–220 °C and pressure maintained through cooling to control shrinkage. The conversion window differs from PE-HD: uniform heating is required because the polymer has low thermal conductivity and a melt viscosity that does not drop to conventional melt-processing levels. Thick sections cooled too rapidly can carry residual stresses, and stress relief below 80 °C may be applied before final dimensioning. Extended residence time above 260 °C should be avoided because oxidative chain scission can reduce localized molecular weight.

    In dry-running conveyor applications, UHMW-PE STERRA is machined into wear strips, chain guides, and transfer plates that slide against stainless steel without continuous lubrication. The pressure–velocity limit for continuous unlubricated contact is generally bounded near 0.07 MPa·m/s; a higher contact-pressure and sliding-velocity product generates frictional heat faster than the polymer can dissipate it. Intermittent operation or external water lubrication can extend the allowable range, but the mating steel surface must be passivated because water trapped under the polymer can promote crevice corrosion. Counterface flatness is more important than high surface polish: a stainless steel surface with roughness below 0.8 µm Ra reduces adhesive transfer, while sharp edges from weld spatter can cut the polyethylene. In abrasive environments, comparative dry-sand rubber-wheel testing according to ASTM G65 normally positions unfilled PE-UHMW below the volume loss of PE-HD. STERRA-specific values should be verified from the supplier because published data for this exact grade are limited.

    When Low-Temperature Impact and Acid Resistance Define the Specification

    UHMW-PE STERRA retains Charpy impact performance below 0 °C; ISO 179-1/1eA tests on comparable unfilled PE-UHMW frequently produce partial or no-break results. This behavior supports use in cold-store chain guides, cryogenic transfer rails, and pump wear rings where PE-HD may become notch-sensitive. Chemical resistance at room temperature covers dilute mineral acids, alkali solutions, and neutral brine streams. Strong oxidizing acids—concentrated nitric acid or sulfuric acid above 80% by weight—can attack the polymer and should be excluded from the specification. Continuous service in hot water above 80 °C is not recommended unless deflection is restrained; heat deflection temperature at 0.45 MPa is typically 65–80 °C per ISO 75-2. Autoclave sterilization at 121 °C will produce dimensional relaxation and should be validated for the actual component geometry.

    Machining of UHMW-PE STERRA is closer to high-speed woodworking or soft-metal machining than to hard-thermoplastic machining. The linear thermal expansion coefficient of 1.7–2.0×10⁻⁴ K⁻¹ per ISO 11359-2 means a 1000 mm guide rail machined at 20 °C will expand by approximately 5–6 mm when exposed to a 50 °C washdown environment; bracket clearances must absorb this movement. Drying is not required for machining, but condensation from cold storage should be removed before measurement. Roughing followed by a stabilization interval of 24–48 h in still air reduces dimensional drift before finishing cuts. Tolerances are usually set per customer drawing rather than a fixed standard, because the high expansion coefficient makes tight tolerances valid only at a stated reference temperature. Welding by hot-gas or butt fusion is possible, but weld strength is below parent material and should be derated for load-bearing wear components.

    The following comparison uses representative published data for unfilled PE-UHMW, unmodified PE-HD, and a filled UHMW-PE reference. Values are not lot-specific to STERRA unless the supplier certifies them.

    PropertyTest methodUnfilled UHMW-PE classPE-HDFilled UHMW-PE reference
    DensityISO 1183-10.93–0.94 g/cm³0.94–0.96 g/cm³1.05–1.20 g/cm³
    Tensile yield strengthISO 527-220–25 MPa22–30 MPa18–23 MPa
    Elongation at breakISO 527-2>350%>100%<50%
    HardnessISO 86862–66 Shore D65–69 Shore D60–65 Shore D
    Heat deflection temperature at 0.45 MPaISO 75-265–80 °C70–90 °C85–120 °C
    Linear thermal expansionISO 11359-21.7–2.0×10⁻⁴ K⁻¹1.1–1.3×10⁻⁴ K⁻¹0.5–1.0×10⁻⁴ K⁻¹

    Relative to PE-HD, UHMW-PE STERRA offers lower dry sliding friction and higher abrasion resistance; relative to filled UHMW-PE, the unfilled grade retains higher elongation and higher impact resistance. The trade-off is lower modulus and greater thermal expansion. Cross-linked UHMW-PE can withstand higher contact temperatures and improved creep resistance but often shows reduced machinability and higher notch sensitivity. Unfilled PE-UHMW is typically evaluated first for food-contact and pharmaceutical components, provided pigment and processing aid composition is confirmed. For high-load static applications, the low modulus and high creep of unfilled UHMW-PE require larger bearing areas or metallic load distribution plates. Selection should not rely on hardness alone; wear rate, thermal expansion, and mating-surface compatibility are the controlling variables.

    Chemical Compatibility Matrix and Stock Shape Availability

    Material selection for food-contact and pharmaceutical use requires a compliance matrix that distinguishes the base polymer from additives or processing aids. Unfilled PE-UHMW in machined stock shape can fall under FDA 21 CFR 177.1520 and, for EU applications, plastic food contact materials under (EU) No 10/2011 when migration testing confirms end-use conditions. For pharmaceutical contact, ISO 10993-1 biocompatibility evaluation is not automatically satisfied by base resin compliance; it must be performed on the finished machined component because machining residues and surface finish contribute to the biological risk assessment. Lot-specific REACH and RoHS statements should be requested for the exact STERRA stock shapes. The product is generally supplied in natural white or black variants; non-natural pigments and reprocessed content can alter compliance and should be specified explicitly.

    Regulatory frameworkApplicable scopeLimiting condition
    FDA 21 CFR 177.1520Olefin polymers in food contactMigration testing under intended end-use; maximum extractables based on use conditions
    (EU) No 10/2011Plastic food contact materialsOverall migration limit 10 mg/dm² unless a specific measure applies
    REACHSVHC contentLot confirmation required
    RoHSHomogeneous material restrictionsUnfilled PE-UHMW typically below lead, mercury, cadmium, and Cr(VI) thresholds; halogenated additives must be excluded

    In wet pharmaceutical or food-processing environments, the most significant operational boundaries are dimensional change above 60 °C washdown temperature and the risk of entrapment at mating surfaces. Chlorinated cleaning agents and oxidizing sanitizers can be acceptable for short contact periods; however, prolonged exposure to hypochlorite solutions at elevated temperature can embrittle the surface. Components made from UHMW-PE STERRA should not be installed in continuous contact with aluminum or copper alloys in acidic cleaning regimes because the metallic counterpart may corrode more rapidly than the polymer wears. Published data for STERRA-specific wet-wear performance under clean-in-place cycling are limited; field trials should define replacement intervals.

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