| HS Code | 789834 |
| Material Type | Ultra-high molecular weight polyethylene (UHMW-PE) |
| Color | White / Arctic |
| Density | 0.93 g/cm³ |
| Tensile Strength | 20 MPa |
| Tensile Modulus | 800 MPa |
| Elongation At Break | >300% |
| Hardness | 62 Shore D |
| Charpy Notched Impact Strength | No break at 23°C |
| Coefficient Of Friction | 0.10-0.20 |
| Water Absorption | <0.01% |
| Thermal Conductivity | 0.41 W/m·K |
| Coefficient Of Linear Thermal Expansion | 15 x 10^-5 /°C |
| Maximum Continuous Service Temperature | 80°C |
| Minimum Service Temperature | -200°C |
| Dielectric Strength | 45 kV/mm |
| Volume Resistivity | >10^14 Ω·cm |
As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE ARCTIC 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 ARCTIC comes in 25 kg sealed bags, palletized and shrink-wrapped for safe transport. |
| Container Loading (20′ FCL) | 20′ FCL loading: Mitsubishi Chemical Advanced Materials UHMW-PE ARCTIC palletized sheets, strapped and loaded for optimal container space. |
| Shipping | Mitsubishi Chemical Advanced Materials UHMW-PE ARCTIC is shipped as a non-hazardous solid thermoplastic (sheets, rods, or profiles), typically palletized and wrapped. It is not classified as dangerous goods for transport. Keep dry, clean, and protected from UV/direct sunlight; avoid excessive heat and contamination. Secure loads to prevent deformation or surface damage. |
| Storage | Store Mitsubishi Chemical Advanced Materials UHMW-PE ARCTIC in a cool, dry, well-ventilated area away from direct sunlight, heat, flames, and strong oxidizers. Keep in original packaging, protected from dust, moisture, and physical damage. Avoid prolonged UV exposure and extreme temperatures. No special ventilation is normally required. Inspect containers periodically for damage or contamination, and follow local regulations. |
| Shelf Life | Mitsubishi Chemical Advanced Materials UHMW-PE ARCTIC shelf life is indefinite when stored dry, at room temperature, away from UV and contaminants. |
At the cold end of an LNG loading line, pipe saddles and wear pads machined from UHMW-PE ARCTIC absorb static and dynamic loads while the 316L stainless steel pipe contracts during cool-down from +30 °C to −162 °C. The polymer’s linear thermal expansion coefficient of approximately 1.9×10⁻⁴ K⁻¹ under ISO 11359-2 means that a 1,000 mm wear strip machined at +20 °C contracts 34 mm–36 mm when cooled to −162 °C. Consequently, slotted bolt holes are cut with a longitudinal allowance of 35 mm per linear metre, and fixed anchor points are placed at the centreline of each wear strip to avoid stress concentration at fastener holes. In production-scale LNG terminal retrofit work, 12 mm-thick UHMW-PE ARCTIC sheet is nested on a waterjet cutting table with 0.8 mm kerf compensation at 60,000 psi water pressure and 80-mesh garnet abrasive; edges are then cleaned with a single-flute router at 18,000 RPM to remove microcracks that would otherwise propagate at cryogenic service temperature. Material certification for LNG support pads requires ASTM D4020-18 classification PE-UHMW, density of 0.93 g/cm³–0.94 g/cm³, elongation at break not less than 350 % under ASTM D638, and Shore D hardness of 60–70 under ASTM D2240. Supplier test reports must include ISO 9001:2015 traceability and a REACH Article 33 declaration. Formulation addition ratio is 100 wt% UHMW-PE ARCTIC as the wear-facing solid body; dilution with HDPE is not permitted in saddle pads because notched Izod impact under ASTM D256-23e1 must remain no-break at −196 °C. Compression-molded sheets of 10 mm–50 mm thickness are annealed in a circulating air oven at 80 °C for 4 hours per 25 mm thickness to relax residual stress before machining. CNC milling uses polished carbide inserts with a 15° rake angle and 8° clearance angle, spindle coolant chilled to 10 °C, and feed rates of 0.2 mm/rev to keep interface temperature below the crystalline melting onset at 130 °C. Tool edge radius increase beyond 0.15 mm is the replacement threshold before surface fuzzing occurs. Terminal parts include trunnion support blocks, cryogenic pipe saddles, sliding wear strips under expansion loops, and deck support pads for LNG loading arms.
The substitution of conventional HDPE in impact-zone liners with UHMW-PE ARCTIC alters the failure mode from brittle cracking to ductile ploughing in low-temperature mining operations. In iron ore handling at surface temperatures between −35 °C and −45 °C, panels cut from 20 mm and 30 mm compression-molded sheet are installed as sacrificial wear liners on primary crusher dump pockets and transfer chute sidewalls. The dry-sand rubber-wheel abrasion loss under ASTM G65-16 Procedure A is reported by suppliers as below 150 mg at 2,000 revolutions for standard UHMW-PE grades; for this specific Arctic grade, published data for exact abrasion loss is limited, and incoming lots should be verified against an agreed AQL of 4.0 for density and Shore D hardness before release to fabrication. Formulation addition ratio is 100 wt% UHMW-PE ARCTIC in wear-facing panels; in hybrid liners with a 6 mm mild steel backing plate, the polymer panel functions as a monolithic wear element rather than an additive. When UHMW-PE is used as an additive to improve HDPE wear resistance in non-load-bearing applications, industrial loadings of 10 wt%–30 wt% are common, but published data for the Arctic grade in this diluted form is not available. On mine-site fabrication, panel blanks are cut with a panel saw using a triple-chip carbide blade with 80 teeth on a 300 mm diameter arbor, operating at 2,200 RPM and 0.05 mm/tooth feed. Holes for countersunk M12 fasteners are drilled with a 15° included-angle countersink and torqued to 20 N·m; hot-dip galvanized backing plates are pre-drilled with 14 mm holes to create a 2 mm annular gap around each bolt shank for thermal movement. Mining-specific compliance uses ASTM D4020-18, ISO 11542-1:2001, REACH Article 33, and RoHS Directive 2011/65/EU Annex II limits of 1,000 ppm lead and 100 ppm cadmium. Operational limitations are material-specific: counterbores less than 6 mm deep create fastener pull-through at impact energies above 2.5 kJ, so counterbores are specified at 8 mm deep with a 1.5 mm polymer shoulder. Terminal products include crusher dump-pocket liners, transfer chute liners, haul truck bed liners, and rotary breaker wear plates.
In sanitary frozen-food facilities operating at −30 °C to −40 °C, UHMW-PE ARCTIC is machined into chain guides, wear rails, and radius profiles for spiral freezers and tunnel freezers. Unlike acetal or nylon guides, the ultra-high-molecular-weight polyethylene grade does not absorb free water; water absorption is below 0.01 % under ASTM D570-24, which prevents dimensional change during steam-cleaning cycles that alternate between −30 °C and +90 °C. The food-contact compliance path requires that finished parts meet FDA 21 CFR 177.1520(c) 3.1 or 3.2 for olefin polymers, EU Regulation (EU) No 10/2011 with an overall migration limit of 10 mg/dm², and Regulation (EC) No 1935/2004 Article 3 traceability. Formulation addition ratio is 100 wt% UHMW-PE ARCTIC as a natural, unfilled polymer; no external lubricant is added because surface migration of lubricants would violate migration limits in fatty food simulant D2. Stock shapes are cut to width on a CNC router with vacuum hold-down; the cutting program uses climb milling to reduce chip re-welding. Edges are radiused to 3 mm using a rounding end mill, then finished with a 40-grit flexible abrasive pad to remove machine marks before cleaning. Contact with quaternary ammonium sanitizers at 500 ppm–1,000 ppm is acceptable; continuous contact with strong oxidisers above 5 % concentration is not recommended due to surface oxidation. Terminal products include chain guide rails for 12-inch pitch conveyor chain, return rail wear strips, product contact star wheels, and spiral freezer drum profiles.
Arctic-zone port fendering places simultaneous demands on low-temperature impact toughness, seawater absorption, and UV resistance on the face pad material. UHMW-PE ARCTIC is machined into fender pads for loop-type and panel-type fendering systems on ice-class berths and ferry terminals where ambient air temperatures reach −30 °C and water temperatures fall to −1.8 °C. The material’s notched Izod impact response at −40 °C is reported as no break under ASTM D256-23e1, which is the primary reason it replaces standard UHMW-PE grades that show surface stress whitening after repeated waterline impact cycles. Fender design should follow PIANC WG 33 guidance for panel pad coverage, but polymer-specific performance is not governed by a single marine material standard; supplier certification under ISO 9001:2015 and a REACH Article 33 declaration are required. Formulation addition ratio is 100 wt% UHMW-PE ARCTIC in the wear pad; in fender systems with a 25 mm elastomeric cushion layer, the UHMW-PE pad is mechanically fastened through vulcanized rubber to the steel panel, never adhesive-bonded, because the low surface energy of polyethylene prevents structural adhesive wetting. Pad plates are cut from 25 mm–50 mm thick sheet on a 5-axis waterjet with 1.2 mm kerf compensation, then drilled for M16 through-bolts with recessed T-slot nuts. If the parts are exposed to continuous daylight in high Arctic summer, the surface layer should be inspected annually for flaking because ultraviolet exposure may degrade the outer 50 µm–100 µm without compromising bulk toughness. Terminal products include dock fender pads, floating pontoon wear strips, pile guide liners, and ice-contact rub strips.
In automated cold-store warehouses, rack column protectors and guide rails made from low-density polyethylene fail by puncturing at forklift impact speeds above 1.5 m/s after fewer than 100 cycles at −25 °C. UHMW-PE ARCTIC, substituted at the same 20 mm thickness, fails by ductile deformation rather than fragmentation; the acceptance test for a prototype is 300 impacts at 2.0 m/s with a 2,000 kg pallet load, recording no through-crack. The threshold is supported by ISO 6603-2:2023 puncture impact testing at −25 °C. Industry compliance under EN 15635:2008 for storage systems requires rack protection devices to be bolted at the base, mechanically anchored, and not degrade under fire; the polymer must also meet ASTM D4020-18 for material traceability. Formulation addition ratio is 100 wt% UHMW-PE ARCTIC; no regrind is used in impact-critical column protectors because process regrind from CNC dust lowers molecular weight and can reduce puncture energy at low temperature. If regrind is used in non-structural strips, reprocessing is limited to 10 wt% and must come from clean, segregated production scrap. Cutting is done with panel saws and CNC routers; holes are pre-drilled 1 mm oversize. Edge chamfers of 2 mm at 45° prevent spalling. The protectors are assembled with M12 galvanized hex bolts and nyloc nuts torqued to 40 N·m; no adhesives or heat staking are used. Terminal products include rack column protectors, pallet rack guide rails, dock bumper strips, and cold-store door track guides.
Superconducting magnet cryostats and liquid helium research systems require thermal isolation components that survive repeated cooling to −269 °C. UHMW-PE ARCTIC is specified for support blocks and alignment pins in cryostat frames where compressive strength at service temperature must be verified by ISO 604 testing; published data for this specific grade at −269 °C is limited, and design allowable stress should be established lot-by-lot before cryogenic qualification. The material’s low thermal conductivity of approximately 0.4 W/m·K is used to limit conductive heat leak into the cryostat, and the high notched impact retention prevents glass-like fracture during cool-down transients. Formulation addition ratio is 100 wt% UHMW-PE ARCTIC; no filler or glass reinforcement is used because thermal expansion mismatch between filler and matrix would create microvoids at cryogenic temperature. Machining is performed on 15 mm–40 mm compression-molded blocks using a 3-axis CNC mill with flood coolant at 8 °C, internal corner radii not smaller than 1.5 mm, and a finishing pass of 0.2 mm radial depth to avoid sub-surface microcracking. Compliance for research equipment material acceptance typically includes ASTM D4020-18, ISO 11542-1:2001, REACH Article 33, and RoHS Directive 2011/65/EU Annex II. Terminal products include cryostat support blocks, alignment pins, thermal break spacers, and non-magnetic positioning rails.
| Scenario | Primary material standard | Regulatory or end-use reference | Addition ratio |
|---|---|---|---|
| LNG pipe supports | ASTM D4020-18 | REACH Article 33 | 100 wt% monolithic wear element |
| Mining chute liners | ASTM D4020-18 | RoHS 2011/65/EU Annex II | 100 wt% wear-facing panel |
| Frozen-food conveyor chain guides | FDA 21 CFR 177.1520 | EU 10/2011 overall migration 10 mg/dm² | 100 wt% natural unfilled polymer |
| Marine fendering | ISO 9001:2015 | PIANC WG 33 | 100 wt% wear pad |
| Cold-store rack protection | ASTM D4020-18 | EN 15635:2008 | 100 wt% virgin or max 10 wt% segregated regrind |
| Cryogenic research supports | ASTM D4020-18 | ISO 11542-1:2001 | 100 wt% unfilled polymer |
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Product identification begins with the stock shape designation Mitsubishi Chemical Advanced Materials UHMW-PE ARCTIC, a low-temperature modified ultra-high molecular mass polyethylene supplied as compression-moulded sheet, ram-extruded rod, and machined components. The base polymer is classified as PE-UHMW under ISO 11542-1:2001 because the molar mass exceeds 1×10⁶ g/mol. Melt-viscosity values for this molecular weight class at 190°C are reported above 1×10⁵ Pa·s, a regime that prevents single-screw and twin-screw plasticating extrusion as a primary conversion route. Stock shapes are consolidated by pressure-assisted sintering or ram extrusion, and the ARCTIC modification is distributed through the matrix rather than applied as a coating. Density determined by ISO 1183-1 falls in the range 0.93 g/cm³ to 0.95 g/cm³, and water absorption is below 0.01% under ISO 62. Shore D hardness is typically between 60 and 65 under ISO 868. The grade is supplied without internal lubricant fillers that characterize sliding-modified UHMW-PE, and it is not crosslinked. Food-contact suitability is not automatic; compliance must be confirmed against FDA 21 CFR §177.1520 or EU 10/2011 using the specific lot certificate.
In cryogenic valve internals, LNG transfer-arm wear pads, dry-coupling bearings, and guide rails in freezing storage systems, impact appears as short-duration contact loads at surface speeds below 0.5 m/s and at temperatures down to -196°C. Moisture pick-up is negligible, which reduces the risk of ice expansion damage in close-tolerance assemblies. Because the material is unfilled and electrically insulating, cathodic protection interaction with steel substrates is avoided. Published data for this specific component configuration is limited, so pre-qualification at the minimum service temperature is recommended when notch-like geometrical transitions are present.
Cold fracture in PE-UHMW commonly initiates at machined notches, seal grooves, retaining-ring slots, or sharp corners where stress concentration exceeds the local cohesive strength. Unmodified PE-UHMW retains a useful degree of low-temperature ductility because the high molar mass creates a dense entanglement network, but notched specimen behaviour becomes increasingly sensitive as the temperature approaches the lower end of the service envelope. The ARCTIC modification is designed to reduce this notch sensitivity and shift the ductile-to-brittle threshold downward. Qualification uses ISO 179-1/1eU unnotched and ISO 179-1/1eA notched Charpy methods; for low-temperature modified PE-UHMW, manufacturer data show no break in unnotched Charpy specimens at -196°C, while notched values are lot-dependent and must be read from the certificate. Because the modification is not a plasticizer, it is not expected to migrate to the surface or produce volatile outgassing. This distinguishes the product from externally lubricated or silicone-containing UHMW-PE grades where lubricant migration can alter friction after washing or low-temperature exposure.
Continuous service below -100°C changes the design emphasis from wear control to contraction management. The linear coefficient of thermal expansion for PE-UHMW is typically published between 1.3×10⁻⁴ K⁻¹ and 2.0×10⁻⁴ K⁻¹ under ISO 11359-2. A 1000 mm length machined at 23°C can contract by approximately 30 mm to 44 mm when equilibrated at -196°C, assuming isotropic cooling and no external constraint. If the part is bolted to a 316L stainless steel frame, the polymer contraction is an order of magnitude greater than the metal contraction, and fixed bolt holes can produce radial cracks around fasteners. In LNG transfer-arm pads and cryogenic guide strips, the standard countermeasure is slotted mounting holes and single-sided clearance to allow unrestricted contraction. The low thermal conductivity of UHMW-PE, typically 0.40 W·m⁻¹·K⁻¹ to 0.50 W·m⁻¹·K⁻¹, makes the material effective as a low-temperature contact surface but prevents it from acting as a thermal bridge. Full-scale thermal cycling of complex assemblies is required because published numerical thermal stress data for this specific multi-bolt configuration are limited.
Machining procedures depart from those used for filled acetals and glass-reinforced polyamides. Carbide-tipped or polycrystalline diamond tools with positive rake angles and polished chip surfaces are preferred because UHMW-PE does not form brittle segmented chips. Turning speeds below 300 m/min and milling speeds below 150 m/min reduce the risk of local surface melting; compressed air removes chip wraps and avoids water-based coolant interference. Pre-drying is unnecessary below 60% RH because water absorption is below 0.01% under ISO 62. Hot-gas welding and butt-fusion welding are possible with PE-UHMW rod; butt-fusion uses heating plate temperatures between 200°C and 230°C and a defined cooling phase under applied pressure. Welded joints in high-molar-mass PE-UHMW generally exhibit weld factors below 0.7 unless post-weld annealing is performed. Thread forming is not recommended; metal inserts or through-bolts reduce stress concentrations and allow proper preload. Compressive creep is significant and follows ISO 899-1 or ASTM D2990 protocols; bolted joint preload must be calculated from stress-relaxation data rather than initial torque alone.
Material selection in LNG and industrial gas service normally requires a documented compliance file. The following matrix summarises the relevant baselines for the product; it is not a substitute for lot-specific certification, because colourants, processing aids, and batch composition can change regulatory status.
| Standard or Regulation | Designation | Endpoint |
|---|---|---|
| ISO 11542-1:2001 | PE-UHMW moulding and extrusion materials | Classification and designation |
| ASTM D4020-18 | UHMW-PE moulding and extrusion materials | Specification, density, viscosity |
| ISO 179-1:2010 | Charpy impact | Notched and unnotched low-temperature toughness |
| ISO 527-2 | Tensile properties | Yield stress, elongation at break |
| ISO 868 | Shore D hardness | Surface hardness |
| ISO 62 | Water absorption | Moisture uptake |
| FDA 21 CFR §177.1520 | Olefin polymers | Food-contact base polymer |
| EU 10/2011 | Plastics in food contact | Migration compliance |
| RoHS 2011/65/EU | Hazardous substances | Electrical and electronic equipment restriction |
The cryogenic service envelope is not a single number. The material is used at -196°C for low-contact-pressure wear pads, but allowable surface pressure decreases as temperature decreases because polymer softening is less effective and creep under load increases at longer times. For continuous immersion in neutral water at 60°C, the polymer remains chemically stable but creep accelerates; design stress should be reduced. The grade is not recommended for continuous exposure to concentrated nitric acid above 20% or chlorinated solvents. In strongly oxidising environments, published chemical resistance data for PE-UHMW are available, but interaction with mechanical stress can cause environmental stress cracking; testing per ASTM D1693 may be required for critical load-bearing parts.
Chemical resistance for the ARCTIC grade follows the same broad framework as unmodified PE-UHMW, with the main difference being greater resistance to stress-cracking at low temperature rather than a change in solvent resistance. At 23°C, the material resists most dilute acids, alkalis, and saline solutions. At temperatures above 40°C, some oils, aliphatic hydrocarbons, and organic solvents can soften the surface and reduce compressive modulus under sustained load. Aromatic hydrocarbons and chlorinated solvents are not recommended. In cryogenic service, chemical degradation is less common than condensation icing and freeze-thaw stress; the low-surface-energy surface reduces ice adhesion, but it does not eliminate ice accumulation in rotating couplings. The unfilled nature of the product means there are no glass fibres to wick moisture or cause abrasive wear against soft metal counterfaces. In food-related cryogenic conveying, the final component must be confirmed against EU 10/2011 migration limits and FDA 21 CFR §177.1520; these clearances are not automatically transferred from base resin to machined components.
At low temperature, polyoxymethylene homopolymer tends to become brittle and can fail by sudden crack propagation in impact-loaded seats below -40°C. Nylon 6 absorbs moisture and loses dry-state impact strength below -20°C; moisture-conditioned nylon shows more ductility but poor dimensional stability in freezing environments. Metals such as 316L stainless steel have high thermal mass, promote condensation, and may gall in unlubricated cryogenic sliding. UHMW-PE ARCTIC has a lower density and lower dry sliding kinetic coefficient of friction against rolled steel, commonly in the range 0.10 to 0.25 under light load in ASTM D1894 tests. Against standard PE-UHMW, the ARCTIC grade is chosen when low-temperature impact and notch resistance are the controlling failure modes; it is not an abrasion-specific grade and should not be selected only for sliding wear. If the load-bearing surface operates in continuous dry sliding at ambient temperature, an internally lubricated UHMW-PE may be more appropriate. For cryogenic impact, the comparison shifts back to ARCTIC because the internal lubricant does not improve low-temperature fracture resistance.
Dry sliding at the cryogenic surface is limited by heat generation and creep even when the environment is cold. For UHMW-PE, the limiting pressure-velocity product is commonly below 0.10 MPa·m/s for continuous unlubricated service against polished steel at ambient temperature; at cryogenic temperature, the allowable PV is usually lower because the polymer is stiffer and less able to dissipate frictional energy. No universal PV limit can be assigned to ARCTIC without knowing counterface roughness, load intermittency, and thermal boundary conditions. Published data for this specific grade under cryogenic sliding are limited; therefore, prototype testing is required when contact pressure exceeds 5 MPa or sliding speed exceeds 0.5 m/s. Creep in PE-UHMW follows time-dependent nonlinear deformation; long-term compressive modulus at 23°C is a fraction of the short-term value, and the difference increases with temperature. ISO 899-1 compressive creep curves should be used for joint preload and clearance calculations. Metal backing or distributed washer plates are used to reduce cold flow and maintain flatness in large-area wear pads.