| HS Code | 871229 |
As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE SUPERPLUS 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 SUPERPLUS ships as one sheet per pallet, wrapped in film, edge-protected, banded, and labeled. |
| Container Loading (20′ FCL) | 20′ FCL container loaded with Mitsubishi Chemical Advanced Materials UHMW-PE SUPERPLUS, palletized and secured to prevent shifting during transport. |
| Shipping | Mitsubishi Chemical Advanced Materials UHMW-PE SUPERPLUS is shipped as a non-hazardous, non-regulated solid polymer. Use clean, dry, sealed packaging on pallets or in crates. No UN number, hazard class, or packing group required. Protect from UV, moisture, contamination, and impact; transport at ambient temperature. Follow applicable local and carrier rules. |
| Storage | Store Mitsubishi Chemical Advanced Materials UHMW-PE SUPERPLUS in a cool, dry, well-ventilated area away from direct sunlight, heat, flames, and strong oxidizers. Keep it in original packaging, protected from UV and contamination. Avoid excessive stacking or loading that may deform stock shapes. No special ventilation is normally required; follow local regulations and supplier guidance. Always store away from sharp objects. |
| Shelf Life | Mitsubishi Chemical Advanced Materials UHMW-PE SUPERPLUS: indefinite shelf life when stored dry, away from sunlight, heat, moisture; no expiration specified. |
In high-volume poultry and red-meat processing lines, Mitsubishi Chemical Advanced Materials UHMW-PE Superplus sheet stock is machined into guide rails, chain wear strips, and cutting-table inserts because the base resin meets the olefin polymer requirements of FDA 21 CFR 177.1520 and falls below the 10 mg/dm² overall migration limit under the aqueous, acidic, and low-alcohol food simulants of EU Regulation No 10/2011. Stress-relieved plate is used instead of as-extruded skinned sections because residual stress in thicker stock produces localised dimensional drift during alternating washdown and refrigerated cycles. A 1 000 mm rail subjected to a 30 K temperature swing from a chilled processing room to hot-water sanitation changes length by approximately 5.4 mm to 6.0 mm based on a published coefficient of linear thermal expansion of 1.8 × 10⁻⁴ K⁻¹ to 2.0 × 10⁻⁴ K⁻¹; therefore installation holes are slotted and bolted connections are not clamped rigidly across the full flange width. ISO 62 water absorption after 24 h immersion is typically below 0.01% by mass, so the dimension change originates almost wholly from thermal gradient rather than moisture uptake. Peracetic acid solutions of 1 000 ppm to 2 000 ppm and sodium hypochlorite solutions up to 10% are routinely used without embrittlement, but continuous exposure to oxidative sanitisers at surface temperatures above 80°C is not recommended because creep modulus falls and retained machining stress can relax into flatness errors exceeding 0.3 mm per 1 000 mm. On actual processing lines, machining uses cutting speeds of 120 m/min to 180 m/min, positive rake angles of 5° to 10°, and through-tool air cooling rather than soluble-oil flood coolant to avoid swarf clogging and surface waviness that can harbour biofilm.
| Standard / regulation | Test condition | Relevance to washdown food contact components |
|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymers for direct food contact | Base-resin conformity for cutting rails and wear strips |
| EU Regulation No 10/2011 | Overall migration limit, 10 mg/dm² | Compliance metric for dairy/meat washdown liquids |
| ISO 62 | 24 h immersion at 23°C | Confirms water absorption below 0.01% by mass |
| ASTM D638-14 | Type I specimen, 5 mm/min test speed | Tensile yield and elongation used to qualify plate batch before machining |
Star wheels and timing screws machined from UHMW-PE Superplus are centred on servo drives and keyed shafts in carbonated beverage and hot-filled juice lines. Peripheral speed at the star wheel root diameter is generally 0.4 m/s to 1.2 m/s, and bottle contact pressure is kept below 0.1 MPa, which is below the dry sliding pressure-velocity boundary of unfilled UHMW-PE at comparable speeds; clearance rather than wear governs reliability. A 500 mm diameter star wheel installed at 20°C and raised to a pasteuriser tunnel temperature of 70°C increases diameter by 4.5 mm to 5.0 mm. Pocket clearances specified at ambient temperature are therefore opened by the calculated diametral growth; otherwise the bottle transfer point binds and breaks bottles. Production-line maintenance records show binding events concentrate where heat is asymmetric, such as single-side tunnel discharge. The surface coefficient of friction against PET is approximately 0.12 to 0.20 dry, but condensation can reduce it below 0.10, which imposes a lower backpressure limit and can allow bottle slip through timing screws. Polygon shafts rather than single-key joints are specified because round keyways create sharp notches that reduce impact toughness; if a keyway is unavoidable, the keyseat root radius is kept above 0.5 mm and the motor torque limiter is set to avoid shear after 40°C soak. Adhesive attachment of star wheel segments is not permitted because the polymer’s low surface energy prevents reliable bonding; crevice-free mechanical attachment with countersunk stainless fasteners and flanged bushings is used instead. Hot-filled juice lines running at 85°C for intermittent periods require the star wheel pockets to be machined oversized by an additional 0.3 mm per 100 mm of radius. If the wheel is exposed to alkaline cleaning chemicals above 70°C for more than 2 h per shift, stress relaxation occurs at the clamping zone; therefore clamping force is checked with a digital torque wrench and retightening is scheduled after the first 72 h of operation.
Bulk material handling installations in iron-ore, coal, and copper processing use UHMW-PE Superplus as sacrificial chute liners, hopper liners, and apron feeder side wear plates. The selection depends on the coefficient of friction against wet fines being lower than carbon steel by a factor of 2 to 3, which reduces hang-up in bins; the material is not an impact pad for severe angular-particle impingement. In transfer chutes where particle velocity exceeds 4 m/s and impact angle exceeds 45° from horizontal, ceramic-backed rubber or chromium carbide plate is placed at the point of first contact, while UHMW-PE is installed on sliding zones downstream. Liner thickness is commonly 25 mm to 50 mm for abrasion zones and 50 mm to 100 mm where occasional impact occurs; published data for this specific configuration is limited, so full-scale wear trials determine replacement frequency. Installation uses stud-welded stainless pins with countersunk holes and slotted polymer apertures to allow thermal movement. A 2 000 mm liner cycled between -30°C and +35°C changes length by 23 mm to 26 mm, which is larger than the motion absorbed by typical bolted joints, so staggered slot lengths must be designed from a fixed central point rather than from a single edge. Bolting through round holes near the edge causes stress cracking within months of service. Natural Superplus is used where wet material provides charge dissipation; antistatic or carbon-loaded grades are specified only where conveyed material carries an explosive dust hazard. For coal handling where an explosive dust hazard is identified, a carbon-filled UHMW-PE grade is used because natural grades exhibit surface resistivity above 10¹² Ω.
Rectangular primary and secondary clarifiers use UHMW-PE Superplus wear pads, chain slippers, and sprocket idlers submerged in water containing 2 000 mg/L to 8 000 mg/L suspended solids and intermittent chlorine residuals from 0.5 mg/L to 5 mg/L. The failure mode is not chemical attack; it is creep. When a stainless chain link bears on a polymer slider at 20°C, continuous bearing stress should not exceed 3.5 MPa if replacement intervals are to remain above 5 years; published data for this specific configuration is limited, so site trials on rectangular collector mechanisms monitored thickness loss with ultrasonic gauging. The polymer’s 24 h water absorption under ISO 62 is below 0.01% by mass, but hydrogen peroxide or hypochlorite shock dosing at 10% to 15% during offline cleaning oxidises the surface layer, raising surface roughness from Ra 0.8 µm to Ra 1.6 µm after repeated cycles. Surface roughness above Ra 1.6 µm increases chain vibration and accelerates fatigue wear on the stainless pin. Strong mineral acids above 30% concentration, especially warm nitric acid, are not recommended for continuous immersion because oxidative degradation reduces near-surface molecular weight. Sprocket hubs are machined with a clearance fit of 0.15 mm to 0.25 mm on the shaft and clamped with split hubs; press fits are avoided because creep under load allows stress relaxation and eventual loosening.
Forming board tops, suction box covers, and foil blades machined from UHMW-PE Superplus are installed on paper machine wet-end structures where the synthetic forming fabric runs at 600 m/min to 1 200 m/min. The polymer is selected because its sliding surface against polyester forming fabric develops a water-lubricated friction level of approximately 0.05 to 0.10, reducing wire drag and drive energy compared with ceramic-to-fabric contacts. The critical machining specification is flatness, not surface hardness. Suction box covers are stress-relieved before rough machining, then finish-machined with a vacuum slot pattern and checked on a granite surface plate; flatness deviation is held to 0.08 mm per 1 000 mm because a wavy cover generates uneven vacuum levels across the sheet. Vacuum levels in low-vacuum boxes typically range from 10 kPa to 60 kPa. Because the wet-end temperature can rise from 20°C at installation to 60°C during operation, a 4 000 mm suction box cover changes length by 28.8 mm to 32.0 mm; mounting bolt holes are slotted and the covers are pinned at the centre to prevent walking. Natural UHMW-PE foil blades are not used in high-load applications above 80°C sustained temperature, where creep would cause contact-line distortion. Surface finish is specified as Ra 0.4 µm to Ra 0.8 µm on the fabric side; rougher surfaces abrade the fabric, while polished surfaces below Ra 0.2 µm can create stick-slip.
Port infrastructure and movable bridge machinery use UHMW-PE Superplus bearing pads, guide blocks, and sliding surfaces between steel interfaces where seawater or chloride-containing de-icing runoff excludes conventional bronze and nylon parts. Seawater immersion does not hydrolyse the polymer, and the low water absorption under ISO 62 means thickness does not swell sufficiently to close designed clearances. The operational boundary is compression set under long-duration static load. For a pad stressed to 10 MPa at 20°C under intermittent wave loading, creep accumulates faster than short-term ISO 815 compression set data would predict because wetting and drying cycles allow locked-in compression set to accumulate. Dock fender faces are therefore not machined to flat plates with direct bolt contact; they are backed with elastomeric cushions or spring washers that absorb 0.2 mm to 0.5 mm of polymer thickness loss before metallic contact occurs. At low tide the polymer transitions from submerged to atmospheric exposure; UV surface oxidation is limited unless the pad is directly exposed to sunlight for years, but above-water applications specify a carbon-black-filled UHMW-PE grade instead of natural Superplus to limit chain scission. When chloride concentration exceeds 10 000 mg/L and the polymer is cathodically protected, no galvanic corrosion occurs because the material is an insulator, but local pH can rise above 12 around steel cathodes and long-term alkalinity exposure should be considered when selecting backup plates. Sliding pads in ship launch ways are regularly lubricated with seawater or steam; dry slide against steel generates interface temperatures above 70°C, which softens the polymer surface and increases wear rate. Launch operations therefore wet the contact interface continuously until the hull is fully afloat.
Chemical metering pump heads and rotary valve seats are machined from UHMW-PE Superplus for sodium hypochlorite, ferric chloride, alum, and dilute sulphuric acid service at ambient temperature. The polymer withstands continuous immersion in pH 2 to pH 12 solutions without measurable hydrolysis, but organic solvents and aromatic hydrocarbons soften the amorphous phase at elevated temperature; any elastomeric seal that releases plasticising oil is replaced because oil migration into the polymer can reduce dimensional stability. Sealing faces are not cut from extruded stock with a rough skin; they are flycut from compression-moulded plate to avoid porosity, then lapped flat to 0.005 mm per 25 mm before installation. Because the polymer has a low thermal conductivity of approximately 0.40 W/(m·K), frictional heat at sealing faces is not conducted away rapidly, so face pressure and rubbing speed are limited to keep interface temperature below 60°C. A DN 100 valve body at 40°C must allow for 0.36 mm to 0.40 mm diametral growth if ambient assembly was at 20°C; the valve seat may otherwise bind when returned to service after hot cleaning. Bolt preload is maintained with stainless Belleville washers because the polymer relaxes under sustained compressive strain. Published data for this specific configuration is limited, so lip seal squeeze is validated by pressure testing at 1.5 times rated body pressure rather than by numerical modelling alone. For sodium hypochlorite metering, the seat is exposed to off-gassing at the suction side; gas bubbles collapse at local pressure drops and can cause surface pitting if aerated stock is not degassed. The pump head is therefore operated with flooded suction rather than suction lift.
Pharmaceutical tablet packaging machines replace metal timing screws and guide rails with UHMW-PE Superplus because the material can be machined to a burr-free finish and avoids metal-to-tablet impact marks. The polymer is not inherently sterile; it is cleaned with 70% isopropanol or hydrogen peroxide vapour at ambient temperature. The critical process risk is solvent interaction: repeated isopropanol wiping at 60°C can induce stress crazing at sharp corners, so machined components have radiused edges above 0.5 mm. Surface roughness is specified at Ra 0.4 µm or better on tablet contact faces because cleaning validation swabs show that surfaces above Ra 0.8 µm retain higher quaternary ammonium residues after rinsing. Dimensional tolerance on timing screw root diameter is held to ±0.05 mm because too tight a root causes tablet breakage and too loose a root causes feed gaps. The low coefficient of friction against gelatine capsules can be below 0.10, which under some high-speed sorting conditions reduces capsule orientation reliability; tapered pockets are therefore used instead of straight-walled pockets. Published data for this specific configuration is limited, so installation qualification uses high-speed camera verification at 300 to 600 units/min.
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