| HS Code | 352093 |
| Density | 0.93 g/cm3 |
| Tensilestrengthatyield | 17 MPa |
| Elongationatbreak | >300% |
| Tensilemodulus | 680 MPa |
| Charpynotchedimpactstrength | 100 kJ/m2 |
| Shoredhardness | 62 |
| Coefficientoffriction | 0.2 |
| Waterabsorption | <0.01% |
| Linearthermalexpansion | 200 x 10^-6 /K |
| Thermalconductivity | 0.41 W/m.K |
| Meltingpoint | 135 C |
| Maximumservicetemperature | 80 C |
| Minimumservicetemperature | -200 C |
| Dielectricstrength | 45 kV/mm |
| Volumeresistivity | >10^14 ohm-cm |
| Flammability | UL94 HB |
| Recycledcontent | 100% |
As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE ECO factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied in 25 kg sealed bags, Mitsubishi Chemical Advanced Materials UHMW-PE ECO is packaged in labeled, moisture-resistant industrial sacks. |
| Container Loading (20′ FCL) | 20′ FCL container loading for Mitsubishi Chemical Advanced Materials UHMW-PE ECO: palletized, shrink-wrapped, dry, secure, suitable for ocean freight. |
| Shipping | Mitsubishi Chemical Advanced Materials UHMW-PE ECO is a non-hazardous ultra-high molecular weight polyethylene product. Ship in clean, dry, covered containers or on pallets; protect from contamination, excessive heat, and UV. No special ventilation required. Follow standard material handling. Verify with SDS and carrier for specific requirements. |
| Storage | Store Mitsubishi Chemical Advanced Materials UHMW-PE ECO in a cool, dry, well-ventilated area away from direct sunlight, heat, flames, and strong oxidizers. Keep containers sealed, labeled, and clean; avoid moisture, dust, and physical damage. Maintain ambient temperature, stack securely to prevent deformation, and follow local regulations and supplier SDS recommendations. Use first-in, first-out stock rotation. Do not expose to ultraviolet light. |
| Shelf Life | Mitsubishi Chemical Advanced Materials UHMW-PE ECO has an indefinite shelf life when stored in original packaging, dry, away from direct sunlight and heat. |
In high-speed wrap-around case packing lines where product changeover cycles exceed 200,000 packs/month, Mitsubishi Chemical Advanced Materials UHMW-PE ECO is machined into guide rails, wear strips, and starwheel transfer pads. The material is specified under ISO 15527 for compression-moulded UHMW-PE sheet, with density verified between 0.92 g/cm³ and 0.95 g/cm³ per ISO 1183-1. Batch certificates for the ECO grade must confirm the viscosity number according to ISO 1628-3 in decalin at 135 °C because recycled feedstock variability affects chain length distribution and intramolecular entanglement density. The ECO designation must be documented under ISO 14021; the percentage of post-industrial regrind affects viscosity number and wear consistency. Expansion clearance is calculated using a linear thermal expansion coefficient of 1.5×10⁻⁴ K⁻¹; for a 20 K temperature rise, 0.7 mm to 1.0 mm of gap is allocated per linear metre. Undercounter bore holes are oversized by 0.5 mm to prevent buckling on bolted guide rails without slotted holes. For incidental dry food packaging contact, virgin UHMW-PE is listed under FDA 21 CFR 177.1520(c); the ECO grade requires separate migration testing under EU 10/2011 or applicable recycled-plastic FDA guidance because post-consumer regrind may introduce contaminants not covered by the virgin olefin clearance.
Machining for these components is performed on high-speed CNC routers using polished single-flute carbide bits at 18,000 rpm spindle speed and 2,500 mm/min feed. The low elastic modulus causes workpiece lifting in thin sections, so vacuum pods holding −0.8 bar minimum negative pressure are used for strips below 10 mm thickness. Burr-free edges require climb milling and a final pass of 0.1 mm; tools with 0.5 mm corner radius are selected to prevent breakout at bolt slots. Chain guide wear is measured by laser profile every 500 operating hours, with replacement triggered at 0.5 mm thickness loss. Finished parts include 25 mm wide guide rails with 6 mm bolt holes, 15 mm thick wear strips, and starwheel friction pads with Ra 0.8 µm surface finish.
The controlling factor in bulk solids liner specification is wall friction angle φw measured against the specific stored material. UHMW-PE ECO panels are inserted in cement, fly ash, and calcium carbonate silos only after Jenike shear data are obtained under ASTM D6773 or ASTM D6128. Published wall friction angles for UHMW-PE against dry limestone are typically below 15°; when moisture content exceeds 2 wt%, the wall friction angle rises steeply and mass flow collapses into funnel flow. Because published data for recycled-content UHMW-PE ECO under consolidated bulk solids are limited, pilot hopper inserts with 10 mm sheet are tested before full silo retrofits. Panel thickness is selected using unsupported span: 12 mm sheet for 300 mm span, 20 mm for 600 mm span, and 30 mm for 900 mm span on steep cone sections. Bolt spacing is set at 150–200 mm on vertical walls and 100 mm on hopper inclines; countersunk stainless steel washers are recessed 1 mm below the liner surface to prevent product hang-up.
Static discharge on non-conductive UHMW-PE liners is managed by grounding metallic studs and keeping the surface resistivity below 10⁹ Ω per IEC TS 60079-32-1. Where combustible dust is present, the installed liner assembly must satisfy ATEX 2014/34/EU category 2/3D equipment requirements. Wear of liner panels is monitored by ultrasonic thickness gauging at 36 points per panel; replacement is triggered when remaining thickness falls below 6 mm. The ECO grade must be checked for carbonised regrind particles, because a single conductive inclusion can create a spark path in high-dust-load silos. End products include hopper cone liners, chute plates, and transition gaskets.
Where reciprocating sludge scrapers in municipal clarifiers cycle across concrete basin walls, UHMW-PE ECO is machined into replaceable blade edges, chain guide blocks, and bearing shoes. The application is less sensitive to food-contact compliance but demands resistance to abrasive grit and hydrated lime conditioning. Wear rate is evaluated under ASTM G65 dry-sand/rubber-wheel abrasion; batches with hardness below 62 Shore D per ISO 868 are rejected for high-grit primary sludge service. Blade edge profiles are supplied with a 45° chamfer and a 2 mm blunt tip to reduce concrete spalling. Replacement strip thickness is set at 12–20 mm with bolt spacing every 150–300 mm; stainless steel flange bolts are torqued to 15–25 N·m into pre-drilled anchor holes, with 3 mm oversize bolt holes to allow thermal expansion. Thermal expansion allowance along a 6 m basin length is 9–12 mm at a 20 K temperature rise.
Waterjet cutting is used for parts up to 50 mm thickness to avoid melt chip recutting on conventional saws; post-machining edges are scraped with a cabinet scraper to remove fuzz. For wastewater wetted parts, NSF/ANSI 61 potable-water certification is not claimed, and the ECO grade must be assessed under REACH for continuous immersion service. Published long-term hydrolysis resistance data for recycled UHMW-PE in chlorinated wastewater are limited; therefore, six-month immersion coupons are retained for each batch. Terminal components include 20 mm thick scraper tips, 40 mm wide chain guide blocks, and settling tank flight shoes with 10 mm mounting shoulders.
Replacing cast nylon 6 change parts with UHMW-PE ECO requires recalculation of running clearance because the linear thermal expansion coefficient of UHMW-PE is roughly twice that of nylon 6. For PET bottle lines running 60,000 bottles/h, guide rail clearance is set 0.2–0.4 mm greater than bottle diameter; on radius sections the inside rail is relieved 0.5 mm over a 300 mm arc to prevent cap hang-up. All food-contact surfaces are machined to Ra 0.8 µm max per ISO 4287; labels are protected by a 2×45° chamfer at rail entry. For beverage contact enclosures, the base olefin polymer falls under FDA 21 CFR 177.1520(c), but ECO recycled content requires migration testing under EU 1935/2004 good manufacturing practice and secondary suitability confirmation. The grade is not specified for direct hot-fill contact above 80 °C because creep modulus declines and dimensional stability is insufficient for timed change parts.
Machining of multi-cavity change parts is carried out on a vertical machining centre with vacuum plate and PCD tooling; spindle speed is limited to 8,000 rpm to prevent heat-induced growth, with flood coolant absent because water absorption is negligible but oil mist kept below 5 mg/m³. Guide rail fixation uses M8 captive fasteners torqued to 8 N·m. Finished parts include timing worms, transfer guides, and starwheel pocket liners. Batch-to-batch colour variation in ECO regrind must be inspected under D65 lighting before assembly, because non-uniform appearance on clear PET bottle contact surfaces can trigger optical inspection rejects.
Periodically, food processing plants replace stainless steel star wheels on rotary filling monoblocs with UHMW-PE ECO to reduce glass impact damage and container chipping. The machined starwheel pockets are cut with a depth equal to 55–60 % of container diameter and a lead-in chamfer of 3 mm; pocket spacing tolerance is held to ±0.05 mm over a 400 mm pitch circle because timing error excursions above this value will shear PET bottle necks at 120 rpm. Wear in the pocket bottom is monitored with a comparator fixture; replacement is triggered when pocket depth increases by 0.3 mm. Compliance for food equipment is evaluated under ISO 14159 hygiene requirements and material compliance under FDA 21 CFR 177.1520(c) or EU 10/2011 with overall migration below 10 mg/dm². However, ECO-grade recycled content precludes automatic blanket compliance; each batch is tested for specific migration of post-consumer contaminants.
Parts are rough-cut on a bandsaw, then finish-machined on a 5-axis router at 10,000 rpm and 1,200 mm/min feed using single-flute polished carbide; vacuum fixture pressure is held at −0.6 bar minimum. Stress relief is conducted for 4 h at 80 °C in a vented oven for parts thicker than 25 mm, followed by slow cooling at 10 K/h to prevent post-machining curl. End products include feed screws, timing worms, and starwheel pocket sets.
In marine fender facing service, the replacement of virgin UHMW-PE sheet with recycled-content ECO grade introduces a verification burden on sliding abrasion and impact toughness. Dock fender pads are bolted to steel sub-structures with M20 fasteners on 300 mm centres; bolt holes are drilled 3 mm oversize and countersunk 4 mm below the pad surface to accommodate in-plane movement. Panel thickness is selected according to berthing energy; published data for this specific ECO configuration under marine cyclic loading are limited, so prototype pads are tested under ISO 527-3 tensile and ISO 6603-2 puncture impact before fleet deployment. Because UHMW-PE is non-conductive, static dissipation is not required for low-flow water contact; however, greasing of the sliding face is prohibited because it attracts grit and accelerates three-body abrasion under 0.5 Hz berthing cycles.
Sheets are cut using a panel saw with a triple-chip blade at 3,000 rpm; edges are broken with a 1 mm radius router. The ECO grade must be checked for delamination or unmelted regrind inclusions via ultrasonic scanning at 5 MHz before machining. Terminal products are fender facing pads, rubbing strips, and transition chamfer plates. The olefin polymer itself is not regulated as marine equipment, but the complete fender assembly may need to satisfy DIN EN 1993-1-8 for steel connection design and applicable port authority energy absorption calculations.
| Segment | Material verification | Critical standard | Compliance boundary |
|---|---|---|---|
| Packaging guide rails | Density 0.92–0.95 g/cm³ | ISO 1183-1 | FDA 21 CFR 177.1520(c) |
| Silo liner | Wall friction angle below 15° for dry solids | ASTM D6773 | ATEX 2014/34/EU |
| Sludge scraper | Hardness ≥62 Shore D | ISO 868 | REACH immersion assessment |
| Bottle handling | Surface finish Ra 0.8 µm | ISO 4287 | EU 1935/2004 |
| Food machinery starwheel | Overall migration <10 mg/dm² | EU 10/2011 | FDA 21 CFR 177.1520(c) |
| Marine fender facing | Puncture impact resistance | ISO 6603-2 | DIN EN 1993-1-8 |
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Mitsubishi Chemical Advanced Materials UHMW-PE ECO is an ultra-high molecular weight polyethylene stock-shape grade that incorporates recycled UHMWPE feedstock in a formulation intended for machined wear components. The material is classified under ISO 11542 as UHMW-PE through a viscosity number of at least 2000 ml/g; virgin UHMWPE resins used in comparable grades typically have weight-average molecular weights exceeding 1,000,000 g/mol. The ECO designation indicates that post-industrial or post-consumer UHMWPE regrind is co-processed with virgin resin; the exact recycled fraction is lot-specific and is disclosed in batch documentation. Available semi-finished forms include compression-moulded sheet, ram-extruded rod, and machined parts produced from stock blocks. The material is directed at low-friction, abrasive-wear applications in packaging, food-processing, dry bulk handling, and water treatment, where solid polymer components operate without external lubrication.
Because ultra-high molecular weight polymers derive their wear and impact behaviour from chain entanglement rather than from crystalline morphology alone, reprocessing history directly affects property retention. The recycled UHMWPE fraction may carry residual oxidation from prior thermal processing, which reduces chain length and lowers tensile elongation relative to virgin UHMWPE. Published typical values for recycled-content UHMWPE place density at 0.93 g/cm³ to 0.94 g/cm³ under ISO 1183-1, with 24 h water absorption below 0.01% under ISO 62. Tensile yield strength determined by ISO 527-2 is commonly 14 MPa to 17 MPa, while elongation at break is typically 150% to 250%. Shore D hardness under ISO 868 falls between 58 and 63. Dynamic coefficient of friction against polished steel measured by ASTM D1894 is normally 0.10 to 0.15, comparable to virgin UHMWPE. Oxidative induction time may be shorter in recycled lots, indicating reduced thermal-oxidative stability and supporting conservative service-temperature selection in warm applications. The recycled grade may show reduced lot-to-lot consistency in impact resistance; batch-specific test certificates should be requested for critical components.
| Property and test method | UHMW-PE ECO typical range | Virgin UHMWPE reference range |
|---|---|---|
| Density, ISO 1183-1 | 0.93–0.94 g/cm³ | 0.93–0.94 g/cm³ |
| Tensile yield strength, ISO 527-2 | 14–17 MPa | 17–20 MPa |
| Elongation at break, ISO 527-2 | 150–250% | 300–450% |
| Shore D hardness, ISO 868 | 58–63 | 60–65 |
| Unnotched Charpy impact, ISO 179-1/1eU | No break | No break |
| Dynamic coefficient of friction, ASTM D1894 | 0.10–0.15 | 0.10–0.15 |
| Water absorption, ISO 62 | <0.01% | <0.01% |
These ranges are not guaranteed limits. Published data for a specific recycled feedstock configuration may fall below the lower tabulated value, particularly where post-consumer regrind contains mixed colour or extended thermal exposure. Published data for this specific ECO configuration under standardised abrasive-slurry testing is limited; generic UHMWPE abrasion data should not be used for design validation without end-use wear testing.
In dry bulk handling and bottling lines, UHMW-PE ECO is machined into chain-guide profiles, wear strips, star wheels, and chute liners operating at sliding speeds below 1.0 m/s and bearing pressures under 2.0 MPa. These figures reflect common industrial practice for long service life without forced lubrication; allowable pv values are temperature- and roughness-dependent. Production-scale failure modes include edge smearing during high-speed machining, dimensional relaxation after contouring, and accelerated wear when rough mating surfaces exceed 0.8 µm Ra. CNC routers with carbide tooling, high spindle speed, low feed force, and compressed-air cooling reduce frictional heat and burr formation. Stress-relief annealing at 120°C for 1 h per 25 mm of thickness is specified for thick-section parts to control residual stress before final machining. In bottling conveyor systems, the material replaces metallic guides and reduces container damage; wear transfer to polycarbonate and PET containers is lower than with acetal or nylon guides.
UHMW-PE cannot be processed by conventional injection moulding or single-screw extrusion because the molten polymer has no practical flow under standard melt-index conditions. The high melt viscosity requires compression moulding or high-pressure ram extrusion; screw plastication produces excessive shear heating and chain scission. Compression moulding programmes for UHMW-PE ECO typically specify plateau temperatures between 200°C and 230°C; extended residence above 240°C accelerates thermo-oxidative degradation and yellowing. Consolidation pressure in compression moulding is commonly ramped to 2.5 MPa to 7.0 MPa depending on section thickness. Ram extrusion of rod and profile stock avoids screw-induced molecular degradation but requires precise pressure control; inadequate back-pressure produces porous cores and weld lines. Water absorption is below 0.01%, so pre-drying is generally unnecessary, but condensation on cold stock should be removed before heating. Thick sections above 50 mm require core-temperature monitoring because UHMWPE thermal conductivity is approximately 0.40 W/m·K, and low thermal diffusivity extends heating time. Machining practice uses high-positive-rake carbide inserts with rake angles of 10° to 15° and generous clearance to avoid compressing the low-modulus surface. Dimensional inspection after roughing and after cooling is required because thermal expansion of UHMWPE is approximately 1.5 × 10⁻⁴ K⁻¹ to 2.0 × 10⁻⁴ K⁻¹; a temperature rise of 20°C on a 500 mm segment can produce 1.5 mm to 2.0 mm dimensional growth.
Compliance documentation for UHMW-PE ECO is colour- and food-contact-status dependent. Natural, unfilled UHMWPE is commonly assessed under FDA 21 CFR 177.1520(c) and EU Regulation 10/2011; recycled-content grades may require additional end-use migration testing because feedstock provenance affects extractable content and contaminant profile. Lot-traceable certifications are issued against REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU Annex II. For pharmaceutical or cleanroom short-term contact, ISO 10993-1 biocompatibility evaluation may be requested, but the recycled content excludes use in implantable or long-term body-contact applications. Pigmented, reprocessed, or filled batches should not be assumed to carry food-contact conformity unless explicitly stated on order documentation.
Replacing virgin UHMWPE with the ECO grade in bearing and guide-rail retrofits is generally feasible where the original design retains at least a 20% tensile-yield margin and continuous service temperature remains below 80°C. The recycled material may exhibit greater lot-to-lot variation in tensile elongation and abrasion loss, so critical sliding pads should be validated under end-use sliding velocity and loading rather than by density alone. Comparative material behaviour is summarised in the following table.
| Material and test condition | UHMW-PE ECO typical value | Virgin UHMWPE typical value | HDPE typical value | PA 6 cast typical value | POM-C typical value |
|---|---|---|---|---|---|
| Density, ISO 1183-1 | 0.93–0.94 g/cm³ | 0.93–0.94 g/cm³ | 0.95 g/cm³ | 1.14 g/cm³ | 1.41 g/cm³ |
| Tensile yield strength, ISO 527-2 | 14–17 MPa | 17–20 MPa | 20–25 MPa | 75–85 MPa | 60–70 MPa |
| Continuous service temperature, general guidance | 80°C | 80°C | 65°C | 85–100°C | 100°C |
| Dynamic coefficient of friction, ASTM D1894 | 0.10–0.15 | 0.10–0.15 | 0.20–0.30 | 0.30–0.40 | 0.25–0.35 |
| Moisture absorption, 24 h immersion | <0.01% | <0.01% | <0.01% | 1.5–2.0% | 0.20% |
Compared with HDPE, UHMW-PE ECO provides markedly better abrasive-wear resistance and impact toughness but lower stiffness and creep resistance; its wear life in sliding contact is typically longer than HDPE whenever abrasion dominates. Compared with cast PA 6 or POM-C, UHMW-PE ECO has lower moisture swelling and lower dry friction, but lower compressive strength and lower maximum continuous service temperature. UHMW-PE ECO should not be specified in contact with strong oxidising acids, aromatic hydrocarbons, or chlorinated solvents; prolonged exposure causes swelling and oxidative attack. In outdoor service, unstabilised UHMW-PE ECO is susceptible to UV embrittlement and should be specified only with carbon-black UV stabilisation.
In wastewater scraper blades, sludge trough liners, and chain-supported flight bars, the ECO grade is used where low friction and resistance to wet abrasive slurries are required. Components in these applications are usually machined from compression-moulded sheet with thicknesses of 10 mm to 50 mm; fastening should use counterbored through-holes with oversized washers to allow differential thermal movement. The coefficient of linear thermal expansion in the range of 20°C to 100°C is approximately 1.5 × 10⁻⁴ K⁻¹ to 2.0 × 10⁻⁴ K⁻¹, which is higher than steel by roughly an order of magnitude. This imposes constrained expansion in long wear strips; expansion gaps of 3 mm to 5 mm per metre are commonly provided in outdoor or washdown installations. Field experience on sludge scraper lines indicates that edge chamfering reduces local stress at guide-rail transitions and prevents chipping when chain slack creates impact.
In marine fender pads and dock face bearings, UHMW-PE ECO is used as a low-friction interface between vessel hull structures and steel guide frames. The material does not absorb water and retains dry sliding behaviour during immersion; marine growth may still occur on the surface. The ECO grade is not inherently UV-stable; black grades with carbon black are specified for exposed marine service. Under cyclic bearing pressures of 1.0 MPa to 2.0 MPa, creep deformation is temperature-dependent; pad thickness should be selected to keep compressive stress below the apparent yield point at the maximum dock temperature.