| HS Code | 480490 |
| Density | 0.93 g/cm³ |
| Molecular Weight | Approximately 5,000,000 g/mol |
| Tensile Strength At Break | 20 MPa |
| Elongation At Break | ≥300% |
| Tensile Modulus | 720 MPa |
| Charpy Notched Impact Strength | No break |
| Shore D Hardness | 62 |
| Dynamic Coefficient Of Friction | 0.15-0.20 |
| Water Absorption | <0.01% |
| Thermal Conductivity | 0.41 W/m·K |
| Coefficient Of Linear Thermal Expansion | 2.0 x 10^-4 /K |
| Melting Point | 135 °C |
| Maximum Continuous Service Temperature | 80 °C |
| Minimum Service Temperature | -200 °C |
| Dielectric Strength | 45 kV/mm |
| Volume Resistivity | >10^14 Ω·cm |
| Abrasion Resistance | Very high |
| Chemical Resistance | High resistance to acids, alkalis, and solvents |
As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE 1000 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Mitsubishi Chemical Advanced Materials UHMW-PE 1000 comes in 25 kg moisture-resistant bags, palletized with clear product labels. |
| Container Loading (20′ FCL) | 20′ FCL loaded with Mitsubishi Chemical Advanced Materials UHMW-PE 1000, palletized packaged units, dry container, ambient conditions, braced against shifting. |
| Shipping | Mitsubishi Chemical Advanced Materials UHMW-PE 1000 is shipped as non-hazardous, non-regulated polymer stock. Standard commercial freight is acceptable in clean, dry packaging. Secure pallets, since surfaces are slippery. Protect from contamination, sharp impacts, excessive heat, and prolonged UV exposure. No special hazardous-goods labels or documentation are required. |
| Storage | Store Mitsubishi Chemical Advanced Materials UHMW-PE 1000 in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and flames. Keep containers tightly sealed to prevent contamination, moisture, and UV degradation. Separate from strong oxidizing agents. Avoid prolonged high temperatures. No special ventilation is required under normal conditions; follow local regulations and the manufacturer’s safety data sheet. |
| Shelf Life | Indefinite when stored in original packaging, cool, dry, away from direct sunlight and contaminants; no known expiration under proper conditions. |
When a 30° sloped hopper discharging limestone or clinker at ambient temperature experiences ratholing and bridging across the outlet throat, the first external modification is often not a steeper wall angle but the installation of unfilled Mitsubishi Chemical Advanced Materials UHMW-PE 1000 liners over the existing mild steel or stainless steel substrate in thicknesses of 10–25 mm. The liner is specified as a consumable boundary layer, not a structural component; upstream chute sections are fabricated from 8–15 mm sheet and secured with countersunk stainless steel fasteners isolated from the powder stream by recessed counterbores because exposed bolt heads create local friction discontinuities. The material’s kinetic coefficient of friction against dry polished steel measured under ASTM D1894 is typically 0.10–0.22, while the static coefficient rises to approximately 0.15–0.25; those values permit gravity discharge at shallow inclination angles without vibratory assistance. Moisture content of the bulk solid shifts the friction curve upward, and the liner surface is therefore specified with a machined or skived finish of Ra 0.8–1.6 μm to avoid hydraulic drag at particle contact points. Thermal expansion must be accommodated in long chute runs because the linear coefficient of thermal expansion for UHMW-PE is approximately 1.5–2.0 × 10⁻⁴ K⁻¹, roughly 10–15 times that of carbon steel; slotted fastener holes are dimensioned to allow longitudinal expansion without buckling. The unfilled polymer grade requires no additive dispersion ratio and no compounding step beyond sheet pressing or profile extrusion from virgin feedstock. The terminal products are hopper discharge liners, chute side plates, screw conveyor trough liners, and impact pads at transfer points.
High-speed bottling lines operating at 30,000–60,000 bottles/h impose continuous sliding contact between PET or glass containers and guide rails, neck guides, and transfer star pads; replacement of nylon-6 or acetal components with MCAM UHMW-PE 1000 is evaluated primarily through wear depth per 1,000 h and through compliance with food-contact migration limits. The raw sheet is stress-relief annealed at 100–110 °C for 1 h/10 mm of thickness prior to final contouring; no filler or plasticizer addition ratio is specified for the unfilled grade. Machining uses carbide-tipped tooling with positive rake angles of 10–15° and clearance angles of 8–12°, because the material’s high molecular weight produces a continuous chip that must be mechanically cleared; compressed air is preferred over flood coolant to avoid dimensional drift from thermal buildup. Fastening is mechanical only—adhesive bonding of UHMW-PE is not specified—and shoulder bolts are installed in slotted holes with a bolt-head pocket depth that allows thermal expansion without protruding into the bottle path. Clearance between rail and bottle is reset to 0.5–1.5 mm depending on bottle diameter and line speed; the specified wear limit before rail replacement is commonly 0.8 mm of profile loss. The material’s Shore D hardness measured under ISO 868 falls within 60–65, and tensile yield strength under ISO 527-2 is generally reported in the range 17–21 MPa. The terminal components are straight guide rails, curved neck guides, star wheel transfer segments, and screw infeed pads that operate without external lubrication in dry packaging environments.
| Standard or regulation | Test method | Condition | Limit or result |
|---|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymer specification | Food-contact article, E-G conditions | Complies as UHMW-PE homopolymer |
| EU Regulation 10/2011 | EN 1186-1 | Overall migration, aqueous and fatty simulants | 10 mg/dm² maximum |
| ISO 527-2 | Tensile test | 23 °C, 50 mm/min | Yield strength 17–21 MPa |
| ISO 868 | Durometer | Shore D, 15 s reading | 60–65 |
In submerged sludge scraper systems, chain tension and grit abrasion act simultaneously on wear shoes and guide rails, and the periodic dry running that occurs during basin dewatering removes the water film that would otherwise act as a boundary lubricant; nylon-6 components under these conditions fail by abrasive wear and hygroscopic dimensional growth, whereas MCAM UHMW-PE 1000 replacements are specified because water absorption under ASTM D570 is below 0.01% and the material does not undergo the same swelling-driven seizure. The unfilled grade requires no filler ratio and is machined from pressed sheet into draw-nose wear shoes, barrel-shaped scraper blade attachments, and split guide blocks that capture 316 stainless steel chain profiles; fastener pockets are counterbored and fitted with stainless steel hex-socket bolts, and the mating surface is notched to allow grit to escape rather than embed in the polymer. Installation geometry uses a running clearance of 2–3 mm between the wear shoe and the chain rail to accommodate thermal expansion, while the shoe is replaced at a wear depth of 6–8 mm to prevent the chain pin from contacting the metallic carrier. For potable-water contact in clarification basins, the specific grade and batch must be verified against NSF/ANSI 61 or local equivalents; published certification data for this exact MCAM grade in potable service is limited when the grade is ordered without certified lot testing. The terminal products are rectangular scraper wear shoes, chain guide blocks, and pivoting skimmer pads in municipal and industrial wastewater clarifiers.
LNG loading arm swivels and cryogenic ball-valve service at −196 °C require seat rings machined from MCAM UHMW-PE 1000 where polytetrafluoroethylene seat rings fail by creep and polyoxymethylene seals exhibit brittle fracture under impact. Polymer ductility at cryogenic temperature is the specifying criterion; UHMW-PE retains elongation at break above 100% when measured under ASTM D638 at −196 °C in several published datasets, though published data for this exact Mitsubishi Chemical Advanced Materials grade under full cryogenic instrumentation is limited. Machining is performed at ambient temperature with a dimensional allowance compensating for cool-down contraction: the linear coefficient of thermal expansion from 23 °C to −196 °C is approximately 1.5–2.0 × 10⁻⁴ K⁻¹, producing a linear reduction of roughly 4–5% over a 50 mm sealing surface, and the seat ring is therefore machined with an interference fit that dissipates as the component reaches operating temperature. The terminal configuration is a flat annular seat retained in a metallic groove, usually with a backup ring to control extrusion; sealing contact stress is applied by the ball and the upstream pressure differential, and no adhesive bonding is used because differential contraction between polymer and stainless steel would peel the bond line. Operational limits include thermal cycling and high-pressure gas decompression; UHMW-PE grades are not specified for rapid decompression service unless tested per NORSOK M-710 or equivalent customer-specific RGD protocols. The terminal products are cryogenic ball-valve seats, stem bushings, and lantern rings in loading arms and small-bore transfer valves.
Across paper machine wet ends, suction box covers operating at fabric speeds above 800 m/min generate continuous frictional heating and abrasive contact with polyester forming fabrics; the use of MCAM UHMW-PE 1000 as the cover material reduces fabric drag and avoids ceramic or hard rubber cover failure modes encountered during fabric changes. The cover blank is CNC contoured from 20–40 mm thick sheet, and vacuum slots are milled as tapered or straight slots with slot width held to ±0.1 mm because slot geometry controls both dewatering capacity and sheet marking. The kinetic coefficient of friction against polished steel under ASTM D1894 is 0.10–0.22, but fabric-to-cover friction in a wet end is machine-specific and published values for this exact grade against polyester forming fabrics are limited. The cover is bolted to the suction box through counterbored holes, and bolt pockets are machined deep enough to prevent exposed metal from contacting the fabric after the first 1–2 mm of cover wear. The vacuum slot area is maintained within a slot-area-to-cover-surface ratio of 0.35–0.50 depending on machine speed and furnish; after regrind, slot depth and open area are reset to maintain dewatering capacity. The terminal products are suction box covers, foil strips, and transfer box liners that extend forming fabric life in publication-grade, packaging-grade, and tissue machines.
Centrifugal chemical pumps handling dilute sodium hydroxide or hydrochloric acid at temperatures below 40 °C use volute liners and impeller spacers machined from MCAM UHMW-PE 1000 as non-metallic wet-end replacements for cast iron or PTFE-lined components. Chemical resistance of UHMW-PE is broad for neutral, acidic, and alkaline aqueous solutions at ambient temperature, but the material is not specified for strong oxidizing acids such as concentrated nitric acid or for aromatic hydrocarbons that reduce molecular weight through swelling and stress cracking; selection is therefore made against ISO/TR 10358 chemical resistance data for the specific concentration and temperature. Machining of the volute liner requires a radial allowance for thermal swelling, typically 0.3–0.6% of nominal diameter when the pumped fluid temperature is held below 40 °C, and the impeller spacer is machined with a running clearance of 0.5–1.0 mm to prevent bound seizure at the volute tongue. The unfilled grade is used without fiber reinforcement because glass-fiber fillers reduce chemical resistance and increase wear of the mating shaft sleeve; no plasticizer or filler addition ratio is required, and the terminal components are installed as drop-in wet-end parts. The pump casing remains the metallic pressure boundary, and the UHMW-PE liner is mechanically retained by the casing bolts, not adhesively bonded, so that the liner can be replaced at a wear depth of 1.5–2.0 mm before impeller contact. The terminal products are volute liners, impeller spacers, casing wear rings, and suction covers in chemical transfer pumps.
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Mitsubishi Chemical Advanced Materials UHMW-PE 1000 is a virgin ultra-high-molecular-weight polyethylene supplied as compression-molded sheet, ram-extruded rod, and machined stock shapes. The material is positioned as the high-molecular-weight member of the supplier’s standard UHMW-PE product family, with a nominal average molecular mass typically reported at 9 × 106 g/mol. This value places the grade above the ASTM D4020-18 ultra-high-molecular-weight classification threshold of 3.1 × 106 g/mol and far above conventional high-density polyethylene. Under ISO 1133-1:2022, no measurable melt flow index is obtained because the chain entanglement network inhibits ordinary melt flow. The practical consequence is that UHMW-PE 1000 is processed by ram extrusion or compression molding, not by conventional screw plastication or injection molding.
Compared with UHMW-PE 500, the 1000 designation represents a higher entanglement density and therefore greater abrasion resistance and impact toughness in most published wear and Charpy test comparisons. The trade-off is increased resistance to melt-phase consolidation and a corresponding preference for grade 500 in less demanding sliding applications where faster machining and lower stock shape cost are weighted more heavily. Natural and black stock shapes are commonly available; the natural grade is generally referenced for food-contact and chemical-handling service, while the black grade incorporates carbon black for improved outdoor weathering and ultraviolet screening.
The material’s typical continuous service temperature range is quoted as -200 °C to 80 °C for lightly loaded conditions. The lower limit is not a brittle-failure threshold in the sense observed with acetal or nylon; UHMW-PE 1000 retains ductile behavior at cryogenic temperatures. The upper limit reflects progressive loss of stiffness and creep resistance rather than abrupt melting.
The manufacturer’s typical published data for unfilled natural UHMW-PE 1000 include a density of 0.93 g/cm³ determined to ISO 1183-1, water absorption of <0.01% after 24 h according to ISO 62, and a tensile yield stress of 17 MPa when measured to ISO 527-1/-2. The tensile strain at break is reported as >200% at 23 °C, with a tensile modulus of 680 MPa. Shore D hardness is approximately 60 under ISO 868, while ball indentation hardness is near 30 MPa according to ISO 2039-1. The Charpy impact strength of compression-molded specimens is commonly reported as no break at 23 °C under ISO 179-1/1eU conditions; this impact response is one reason the material is used in railway bolster pads, marine rubbing strips, and impact blocks.
The coefficient of linear thermal expansion is approximately 1.2 × 10-4 K-1. Components machined from stock shapes therefore require clearance calculations when ambient temperature variation exceeds 20 °C. Electrical insulation values are high but surface charge accumulation can occur. Published volume resistivity is typically 1014 Ω·cm or above, and surface resistivity exceeds 1012 Ω; this behavior is relevant to conveyor components in dusty environments where static discharge management may require conductive fillers or external grounding.
The Vicat softening temperature is published near 80 °C under ISO 306. Because mechanical properties decline as the material approaches this range, load-bearing applications should be supported by thermal analysis of the actual operating cycle rather than by a single temperature limit.
Because the polymer’s melt viscosity is several orders of magnitude higher than that of standard HDPE, compression molding of UHMW-PE 1000 sheet is normally carried out at 190–210 °C under a specific pressure of 5–10 MPa. The charge is held at temperature until the powder particles coalesce, then cooled under full pressure to below 60 °C before demolding. In production-scale ram extrusion of rod, the practical output rate is limited by frictional heat rather than by screw recovery; surface melt fracture and concentric internal cracks are the principal process defects observed when ram speed or die land length is outside the material’s thermal relaxation window. The material is not compatible with conventional screw plastication or injection molding because the powder compacts into a plug and generates excessive torque before a flowable melt is achieved.
After consolidation, the stock shape is machined with high-positive-rake tooling and polished chip flutes. Continuous chip evacuation is required to prevent local melting at the cut surface. Water absorption below 0.01% means that pre-drying is normally unnecessary; however, condensation on cold stock moved into a heated machining room should be removed before clamping and cutting to avoid dimensional variation.
In dry-running conveyor wear strips, chain guides, screw conveyor hangers, and chute liners, UHMW-PE 1000 is selected to lower drive power and reduce metallic wear debris. The dynamic coefficient of friction against polished steel is system-dependent but typically falls between 0.15 and 0.20; no single standard value covers all surface finishes because roughness, contact pressure, and sliding velocity shift the frictional response. Published abrasion resistance values rank the material above HDPE and UHMW-PE 500 in sand-slurry and dry particulate wear tests. The Charpy impact response, reported as no break at 23 °C under ISO 179-1/1eU, permits use in impact pads where metallic or ceramic liners would spall.
Continuous dry sliding is nevertheless limited by frictional heat accumulation. Because the material softens near 80 °C, qualification trials on the specific conveyor geometry are normally required to determine the local contact temperature. Published data for long-duration high-load dry sliding of this specific stock shape configuration are limited; wear life is strongly influenced by shaft surface finish, load per projected area, and ambient heat removal.
In marine fendering and lock-gate rubbing strips, UHMW-PE 1000 is used for its combination of low friction against steel hull plate and high impact toughness at low temperatures. In paper machine forming boards and suction box covers, the material’s negligible water absorption limits hygroscopic swelling and helps maintain machined clearance. For dry bulk handling, the wall friction coefficient is not a material constant; it must be measured with the actual particulate solid at the design moisture level because the bulk solid’s cohesion dominates the sliding angle.
In food-contact and chemical-handling service, the natural unfilled grade is evaluated against the instrument matrix below. The material is not inherently UV-stable; prolonged outdoor exposure can embrittle the natural surface unless the black carbon-black-filled variant is specified. Strong oxidizing acids, halogens, and hot aromatic hydrocarbons attack UHMW-PE 1000 at rates that increase with concentration, temperature, and tensile stress. Continuous immersion in concentrated nitric acid or hot chlorinated solvents is not recommended. The principal compliance references for stock shapes supplied in North America and the European Union are summarized in the following table.
| Standard or regulation | Application scope | Applied condition |
|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymers intended for food contact | Natural grade; compliance of black or colored variants must be verified |
| EU Regulation (EU) No 10/2011 | Plastic materials and articles intended to contact food | Overall migration limit and specification testing apply to finished articles |
| REACH Regulation (EC) No 1907/2006 | Chemical registration and substances of very high concern | Stock shape supplier declaration applies; review article-specific duties |
| RoHS Directive 2011/65/EU | Restriction of hazardous substances in electrical and electronic equipment | Relevant only when the machined component is incorporated into EEE within the directive scope |
Because colorants, fillers, and reprocessed content can alter migration behavior, the food-contact compliance statements apply to the natural virgin grade only. The black UV-stabilized grade and any recycled-content product must be reviewed separately under FDA 21 CFR 177.1520 colorant and recycling provisions or the applicable European migration rules.
If the application involves sustained compressive stress above 60 °C, UHMW-PE 1000 should be compared with HDPE or a filled UHMW-PE because creep under constant load is greater than that of HDPE at equal stress. In cryogenic service, the material retains ductility at temperatures as low as -200 °C, which makes it preferable to acetal and nylon in cold-room and liquefied-gas handling applications. Where the only requirement is low friction in clean, non-abrasive service, PTFE exhibits lower frictional coefficients than UHMW-PE 1000, but the UHMW-PE grade provides substantially higher abrasion resistance and often lower machined-part cost.
Against UHMW-PE 500, the 1000 grade offers higher impact toughness and wear life but typically requires slower consolidation and more attentive machining because of its higher entanglement density. Against standard HDPE, UHMW-PE 1000 provides greater abrasive wear resistance and lower sliding friction, but lower tensile yield strength and greater cold flow under sustained load. Against acetal and nylon, UHMW-PE 1000 offers lower moisture absorption and better low-temperature toughness, but lower stiffness and lower continuous-use temperature in load-bearing situations. The selection between UHMW-PE 1000 and other grades therefore depends on the dominant failure mode: abrasive wear, impact loading, creep, temperature, chemical exposure, or food-contact compliance.