| HS Code | 397545 |
As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE HPV FG factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied in 25 kg polyethylene-lined paper bags, palletized and shrink-wrapped for safe transport and storage. |
| Container Loading (20′ FCL) | 20′ FCL is loaded with palletized bags of Mitsubishi Chemical Advanced Materials UHMW-PE HPV FG, securely braced for ocean shipment. |
| Shipping | Mitsubishi Chemical Advanced Materials UHMW-PE HPV FG is a non-hazardous solid polyethylene. For shipping, it is not regulated as dangerous goods; no UN number, hazard class, or placards are required. Package in clean, dry, sealed containers and protect from moisture, contamination, and excessive heat. |
| Storage | Store Mitsubishi Chemical Advanced Materials UHMW-PE HPV FG in a cool, dry, clean, well-ventilated area. Keep in original, closed packaging, off the floor, away from direct sunlight, heat, flames, and strong oxidizers. Protect from moisture, dust, and contamination. Avoid prolonged UV exposure. Maintain good housekeeping; no smoking. Follow local regulations and SDS. Use first-in, first-out stock rotation. |
| Shelf Life | Shelf life is indefinite when stored in original packaging, cool, dry, and away from direct sunlight, UV, and ignition sources. |
Mitsubishi Chemical Advanced Materials UHMW-PE HPV FG is supplied as compression-moulded and ram-extruded stock shapes. The grade is an ultra-high molecular weight polyethylene homopolymer. The FG designation covers direct and indirect food-contact compliance under FDA 21 CFR 177.1520 and EU Regulation (EU) No 10/2011. The HPV designation is the supplier’s high pressure–velocity grade for dry-running and elevated contact-load environments. The polymer is not processed on conventional screw plasticating lines. The zero-shear melt viscosity above 135 °C exceeds 10⁸ Pa·s. Stock shapes are therefore produced by compression moulding or dual-ram extrusion. Downstream conversion is restricted to CNC machining, water-jet cutting, and, in thin sections, thermal bending. The scenarios below are restricted to established food, beverage, pharmaceutical, and dry bulk handling sectors. Each scenario identifies a distinct compliance path, dimensional configuration, conversion procedure, and terminal component set.
| Standard / Regulation | Clause / Method | Test condition / limit | Recorded position |
|---|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymer specification | Polyethylene homopolymer food-contact article | Conforms |
| EU Regulation (EU) No 10/2011 | Annex I overall migration | Simulants A, B, C; limit 10 mg dm⁻² | Pass |
| ASTM D4020-18 | Type 1 Class 2 | Molecular weight >3.1 × 10⁶ g mol⁻¹ | Pass |
| ASTM D638-14 | Type IV tensile specimen | Tensile yield 20–25 MPa | Pass |
| ISO 178:2019 | Three-point flexure | Flexural modulus 800–1,000 MPa | Pass |
| ISO 1183-1:2019 | Method A | Density 0.93–0.94 g cm⁻³ | Pass |
In multi-lane PET bottling lines, buffer-table guide rails and filler star wheels operate at container throughput between 12,000 and 36,000 bottles per hour. The neck finish side load is taken by rail faces under continuous duty. Acetal and stainless steel surfaces generate black wear debris when the line operates dry. UHMW-PE HPV FG is machined into rail sections with a thickness of 25 mm and a working height of 100 mm. The rail-to-bottle clearance is maintained at 2.0 mm to 3.5 mm. The conversion method is three-axis CNC routing with single-flute carbide compression bits. The spindle speed is set between 2,000 min⁻¹ and 3,500 min⁻¹. The feed rate is set at 0.08 mm per tooth to 0.12 mm per tooth. No liquid coolant is permitted on the workpiece. The helix angle is kept below 10° to reduce upward lift. Mounting slots are milled as M6 countersunk holes at 150 mm pitch. The unsupported span deflection at 40 °C remains below 0.3 mm. The food-contact compliance path is FDA 21 CFR 177.1520 and EU Regulation (EU) No 10/2011. Overall migration in 10% ethanol and 3% acetic acid simulants is below 10 mg dm⁻². The HPV selection is driven by the dry-running pressure–velocity demand. The conventional unmodified UHMW-PE PV ceiling is often cited in supplier wear literature at 0.07 MPa·m s⁻¹. The HPV product is specified where the application exceeds that boundary but remains below the supplier-defined continuous service limit. The upper surface temperature is 80 °C. Above this value the Shore D hardness falls from 68 to below 60. The terminal components are bottle guide rails, timing star inserts, filler casing liners, and buffer-table wear strips.
Dairy filling and capping lines use the material for rotary filler timing star wheels and change-part guides. The components are in direct contact with milk, whey, and fermented dairy products at 2 °C to 30 °C. Sheet stock of 20 mm thickness is specified. The machining protocol calls for a final product-contact surface finish of Ra 0.8–1.0 µm. This finish is produced with a polycrystalline diamond finishing pass at 4,000 min⁻¹. Mounting bores are reamed to H7 tolerance for pinned alignment on the filler carousel. The component replaces stainless steel and acetal. The direct compliance basis is FDA 21 CFR 177.1520 and EU Regulation (EU) No 10/2011. In United States dairy plants the part is also accepted under 3-A Sanitary Standards based on cleanability and the absence of crevices or surface voids. The process constraint is the clean-in-place cycle. Repeated exposure to quaternary ammonium chloride solutions above 0.2% active concentration at 60 °C induces microcrazing on stressed mounting edges. The upper CIP temperature is therefore fixed at 60 °C. The terminal components are rotary filler timing star wheels, cap stabilizer guides, and bottle neck support discs.
For flour, sugar, salt, and powdered beverage conveying, screw conveyor trough liners are machined from 10 mm to 15 mm thick UHMW-PE HPV FG sheet. The thickness is selected against screw diameter. A 200 mm diameter screw uses a 10 mm liner. A 300 mm diameter screw uses a 15 mm liner. The radial clearance between the screw flight edge and the liner face is held at 1.5 mm to 2.5 mm. The gap accommodates thermal expansion at 60 °C. The conversion procedure starts with the sheet cut into trapezoidal blanks. The blanks are CNC-routed with a 90° V-bit to produce bend grooves at 300 mm spacing. The liner is folded to the trough radius. The minimum bend radius is maintained above 20 times the sheet thickness to avoid stress whitening. Mounting holes are countersunk for M8 stainless steel bolts at 200 mm intervals. The food-contact compliance is established under FDA 21 CFR 177.1520 and EU Regulation (EU) No 10/2011. The HPV grade is specified only where wheat flour or powdered sugar forms a dry abrasive film on steel troughs. For crystalline salts with moisture above 5%, the liner functions as a corrosion-isolating layer. For powders with particle hardness above Mohs 5, published data for this specific configuration is limited. The upper continuous service temperature is 80 °C. The lower service temperature is -150 °C. The terminal components are screw conveyor trough liners, discharge chute liners, and hanger bearing saddles.
In poultry portioning and meat transfer systems, the machined workpiece serves as a plow block and bone-in breast guide. The raw-contact environment is held at 0 °C to 4 °C. Sheet stock of 12 mm or 20 mm thickness is selected according to frame span. CNC routing is followed by cryogenic deburring because UHMW-PE chips wrap around rotating tools and reduce batch reliability. The mounting holes are reamed to H7 tolerance for stainless steel shoulder bolts. The product-contact surface is finished to Ra 1.6 µm to limit protein adhesion. Compliance is established by FDA 21 CFR 177.1520. In United States meat and poultry plants, the installation must also satisfy USDA FSIS sanitation requirements for non-absorbent, cleanable surfaces. The component is not intended for direct cutting-blade contact. Direct blade contact requires a cutting-board grade or a filled polymer approved for that contact condition. The wash-down boundary is defined as sodium hypochlorite solution above 0.5% active chlorine at 50 °C. Repeated exposure at that concentration causes surface oxidation and microcracks on stressed mounting edges. The terminal components are transfer guides, plow blocks, and bone-in breast guides.
In pharmaceutical packaging halls, tablet dedusters and sorting machines use guide segments that transfer coated tablets from the press to the blister line. Replacement of hardened steel or anodised aluminium with UHMW-PE HPV FG reduces surface marking on coated tablets. The guide segments are machined from 30 mm diameter rod stock. The spindle speed is set at 1,500 min⁻¹ to 2,500 min⁻¹ with HSS tools and a 0.1 mm nose radius. The track width tolerance is held at +0.1 mm / -0 mm. The component is an indirect repeat-use article in pharmaceutical packaging equipment. The compliance foundation is FDA 21 CFR 177.1520 for olefin polymers. The cleanroom compatibility is controlled by the absence of surface porosity and the machined edge quality. The polymer has a density of 0.93–0.94 g cm⁻³ per ISO 1183-1:2019. The flexural modulus is between 800 MPa and 1,000 MPa per ISO 178:2019. The tensile yield strength is between 20 MPa and 25 MPa per ASTM D638-14. These values place the guide segment in the semi-rigid class. The component is used only below 80 °C. Above this temperature the flexural modulus declines non-linearly and the track width changes by more than 0.1 mm. The terminal components are tablet deduster guide segments, blister transfer guides, and sortation star wheels.
Brewery packaging lines use the polymer in wet container handling. The fill hall has relative humidity above 70% and intermittent contact with beer spray and line lubricants. The stock shape is 15 mm thick sheet. The machined part is stress-relieved by heating at 80 °C for 2 h per the supplier’s dimensional stabilization protocol. This reduces post-machining dimensional drift to below 0.1%. The part is fixed with stainless steel through-bolts at 150 mm intervals. The compliance standard is FDA 21 CFR 177.1520. The upper service temperature is limited to 60 °C because line lubricants containing potassium hydroxide at pH above 10 accelerate surface degradation. The terminal components are keg dock runner guides, bottle lane dividers, and conveyor side guides.
In laminated dough and sheeted bakery lines, the material is machined into scraper blades that contact dough with moisture contents between 30% and 45%. The blade stock is cut from 6 mm to 10 mm thick sheet. The edge is machined to a 15° included angle with a flat land of 0.5 mm. The edge contacts the steel roller at a line load of 0.2 N mm⁻¹ to 0.5 N mm⁻¹. The compliance foundation is EU Regulation (EU) No 10/2011 for fatty and dry simulated foods. Overall migration in the specified simulants is below 10 mg dm⁻². The process stability issue is not the wear rate but the creep of the blade edge under continuous line load. The HPV grade has a lower creep rate than standard UHMW-PE at 40 °C; the supplier technical datasheet reports creep modulus values, but published data for this specific configuration is limited. The blade is fastened with M5 stainless steel bolts at 100 mm intervals. The upper operating temperature is 80 °C. The terminal component is the dough scraper blade and the return pan liner. Incompatibility: exposure to diacetyl and butter flavour concentrates above 2% by mass has been reported to plasticize the surface over multiple production shifts.
Fish processing lines in cold rooms at 2 °C to 8 °C use the material for fillet guide rails and ice conveyor wear strips. The stock is 8 mm sheet. The machining operation uses compressed air cooling because liquid lubricants are not permitted in the food hall. The rail gap is set at 1 mm. The compliance basis is FDA 21 CFR 177.1520. The terminal components are fillet guide rails and ice conveyor wear strips. The wash-down temperature is limited to 60 °C.
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