| HS Code | 996122 |
| Density | 0.98 g/cm³ |
| Water Absorption | <0.01% |
| Tensile Strength | 19 MPa |
| Elongation At Break | >200% |
| Tensile Modulus | 800 MPa |
| Shore D Hardness | 65 |
| Coefficient Of Friction | 0.15–0.20 |
| Abrasion Resistance | High; DIN 53516 ~80 mm³ |
| Thermal Conductivity | 0.41 W/m·K |
| Coefficient Of Thermal Expansion | 2.0 x 10^-4 /°C |
| Max Continuous Service Temperature | 80°C |
| Melting Point | 135°C |
| Dielectric Strength | 45 kV/mm |
| Volume Resistivity | >10^15 Ω·cm |
| Flammability | UL94 HB |
| Chemical Resistance | Excellent against acids, alkalis, and solvents |
| Food Contact Compliance | FDA and EU 10/2011 compliant |
As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE CERAM P 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, palletized and shrink-wrapped; each pallet contains 40 bags (1,000 kg total). |
| Container Loading (20′ FCL) | 20′ FCL loading for Mitsubishi Chemical Advanced Materials UHMW-PE CERAM P: palletized, shrink-wrapped, evenly distributed, secured, dry container, ambient conditions, non-hazardous. |
| Shipping | Mitsubishi Chemical Advanced Materials UHMW-PE CERAM P is supplied as non-hazardous solid polymer stock shapes. Ship in clean, dry, protective packaging via standard freight or parcel service. No dangerous goods classification; store away from heat, sunlight, and contamination. Maintain shipping documents and handle with normal industrial care. |
| Storage | Store Mitsubishi Chemical Advanced Materials UHMW-PE CERAM P in a cool, dry, well-ventilated area, away from direct sunlight, heat, flames, and strong oxidizers. Keep in original packaging, clean, dust-free, and supported flat to prevent warping. Avoid prolonged UV exposure, moisture, and contact with incompatible chemicals. Store at ambient temperature; do not stack excessively or subject to heavy loads. Maintain good housekeeping. |
| Shelf Life | Typically indefinite shelf life when stored cool, dry, in original packaging, away from UV, moisture, and contaminants; no degradation expected. |
Within poultry processing conveyor lines, removable wear strips machined from Mitsubishi Chemical Advanced Materials UHMW-PE CERAM P are installed along stainless steel chain guides at points where roller chain side plates contact return-track profiles. The base ultra-high-molecular-weight polyethylene permits lubricant-free operation; dynamic coefficient of friction measured under ASTM D1894 against polished 304 stainless steel typically falls between 0.10 and 0.15 for ceramic-filled UHMW-PE grades, but CERAM P-specific values should be confirmed from the current supplier datasheet. Food-contact clearance for the olefin matrix is governed by FDA 21 CFR 177.1520; the fabricator remains responsible for verifying that the finished machined article meets extractive limitations and conditions of use applicable to the intended food type and temperature. For European markets, compliance with EU Regulation (EU) No 10/2011 requires an overall migration limit of 10 mg/dm² in food simulants selected according to food category; the ceramic filler must be authorised under Annex I of the regulation and declared in the supporting documentation. CIP cycles with 1.0–2.0 wt% sodium hydroxide at 60°C are tolerated for short exposure, but prolonged contact with sodium hypochlorite above 200 ppm free chlorine at elevated temperature is not recommended because oxidative chain scission can increase surface micro-roughness and shorten wear life. Chemical resistance for a specific sanitizer blend should be evaluated under ASTM D543. Machined surfaces in wet zones are specified with Ra 0.8 µm maximum to reduce biofilm attachment. Sheet stock is produced in thicknesses from 10 mm to 100 mm by compression moulding at pressures above 10 MPa; ram extrusion produces profiles up to 2 m in cross-sections up to 200 mm. Machining is carried out on CNC routers with vacuum fixturing and air-blast cooling because coolant residues complicate dry food-contact validation. End products include return-track wear strips, conveyor guide rails, auger flights for dough handling, and timing screw liners.
| Standard / Method | Scope | Application data point / limit |
|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymer food-contact clearance | Finished-article extractive limits and use conditions per regulation |
| EU 10/2011 | Plastics food-contact compliance | Overall migration limit 10 mg/dm² for general food contact |
| EU 1935/2004 | Framework regulation for food-contact materials | Article 3 safety and non-transfer requirements |
| REACH (EC) 1907/2006 | Chemical substance and SVHC declaration | No SVHC above 0.1 wt% per article unless declared |
| RoHS 2011/65/EU | Restricted substances in electrical and electronic equipment | Annex II limits apply only when specified by final equipment directive |
| ASTM D1894 | Dynamic coefficient of friction | 0.10–0.15 typical for filled UHMW-PE; grade-specific |
| ASTM D543 | Chemical resistance | Sanitizer and CIP immersion tests |
The mechanism is not surface lubrication; it is a reduction in adhesive wear at the neck-guide interface. On high-speed rotary filling lines running 30,000 to 60,000 bottles/h, PET bottle necks strike machined star wheel pockets during transfer from the infeed worm to the filler turret. The ceramic phase increases surface hardness and limits transfer of polyethylene wear debris onto bottle threads, which would otherwise appear as white scuff marks during preform reheating. Shore D hardness measured under ISO 868 for ceramic-filled UHMW-PE grades is generally 62–68 compared with 60–65 for unfilled UHMW-PE; the exact CERAM P value is grade-specific. Pocket radii are machined to ±0.05 mm, and bottle neck clearance is held between 0.2 mm and 0.5 mm to prevent crushing while limiting line-side scuffing. Ranking of materials for bottle transfer is performed with pin-on-disc tests under ASTM G99 using a 5 N load and 0.1 m/s sliding velocity against 316L stainless steel; published data for this specific configuration is limited and should not be extrapolated to line trials without verifying contact pressure and beverage condensation effects.
One process conflict is tool wear from the ceramic filler; tool life measured in linear metres cut per edge can drop by 30–50% compared with unfilled UHMW-PE depending on tool grade and feed rate. CNC machining therefore uses uncoated carbide or polycrystalline diamond tooling because conventional high-speed steel edges dull rapidly against the filler phase. Rotary star wheels are not injection-moulded; they are machined from extruded slab or compression-moulded round, so knit lines do not form. Thermal expansion in star wheel hubs requires tolerance allocation; a 500 mm star wheel with a CTE of 1.5×10⁻⁴ K⁻¹ can change diameter by 0.15 mm over a 20 K temperature swing. End products include rotary filler star wheels, neck guides, feed screws, transfer plates, and capping chute liners.
In dry bulk terminals handling granular fertilizer, soda ash, and zircon sand, ceramic-modified UHMW-PE liners are bolted to chute and hopper walls where ore flow transitions from sliding bed to cascading impact at velocities above 2 m/s. Abrasion resistance is evaluated using ASTM G65 Procedure A dry sand/rubber wheel at 130 N load; filled UHMW-PE generally shows lower volume loss than unfilled olefin liners, but CERAM P-specific volume loss data should be obtained from the supplier. Because UHMW-PE stock shapes are produced by compression moulding or ram extrusion rather than screw plastication, the high molecular weight of the base polymer is retained; melt flow index cannot be measured under ISO 1133 because the material forms a gel at processing temperature. Liner installation uses countersunk mechanical fasteners with slotted holes to accommodate thermal expansion; coefficient of linear thermal expansion for filled UHMW-PE grades is in the 1.2×10⁻⁴ to 1.8×10⁻⁴ K⁻¹ range, so a 3 m liner can expand approximately 4–5 mm over a 40 K temperature rise.
Unsupported liners should not be used in high-impact zones above 2 m drop height unless backed by steel plate; the ceramic filler increases hardness but does not convert UHMW-PE into a structural panel. Drilling UHMW-PE stock requires slow-helix twist drills with a 60°–90° point angle; soluble cutting oils should be avoided when subsequent adhesive bonding or food-contact use is specified. End products include silo liners, chute liners, belt skirting, chain drag flight liners, and bucket elevator discharge blocks.
Volute-type slurry pumps in phosphate and kaolin processing utilize wear plates and wear rings machined from CERAM P because the ceramic phase reduces the rate of internal clearance growth between the impeller shroud and casing wall. Internal recirculation through the front clearance is a primary wear driver; as the gap opens, pump efficiency falls and solids ingress accelerates. Cold clearance for UHMW-PE wear components is set larger than for metallic parts to allow for thermal expansion, using the expansion curve supplied by Mitsubishi Chemical Advanced Materials; grade-specific clearance calculations are required for slurry temperatures above 70°C. The compound is not intended for dry-running conditions; if the pump is started without flooded suction, frictional heat can melt the polymer surface even though the ceramic filler raises hardness. A conservative pressure-velocity limit of 0.07 MPa·m/s is commonly applied to rotating UHMW-PE bearing/clearance combinations, and pump wear plates remain below this threshold in properly flooded service. Chemical incompatibilities include strong mineral acids above 60°C and strong oxidizing agents, which attack the polyethylene matrix; ceramic filler does not make the grade acceptable for concentrated sulfuric acid above 80 wt%. Thick stock plates of 50 mm or 80 mm are face-milled under coolant to prevent heat build-up, and distributed clamping force is required because UHMW-PE stress-relaxes under point loads.
At plant scale, the main failure mode in slurry pump wear plates is not always abrasion of the sliding face but cavitation damage at the cutwater edge. Ceramic filler does not eliminate cavitation; if suction pressure falls below the pump NPSH margin, the polymer surface erodes with sharp pitting. System designers must hold NPSH available at least 0.5 m above NPSH required and keep the suction line flooded. End products include pump wear plates, wear rings, throat bushes, volute liners, and gland follower rings.
Dock fender pads cut from CERAM P sheet are attached to quay walls and berthing dolphins; moisture uptake per ASTM D570 remains below 0.01 %, and the low dynamic coefficient of friction under ASTM D1894 limits hull paint transfer without supplementary grease. The ceramic filler does not increase structural energy absorption; fender reaction loads are carried by the elastomeric fender core, and the UHMW-PE face pad is a replaceable wear surface only.
Pharmaceutical tablet presses and capsule fillers replace conventional bronze guide rails and chute liners with CERAM P components to eliminate metal-to-metal wear particles in the compacting zone. A standard food-contact compliance letter for UHMW-PE does not automatically provide USP <88> Class VI certification, and the grade is not specified for implantable or blood-contact use; end users must require grade-specific ISO 10993-5 and ISO 10993-10 test reports where cell-contact or skin-contact testing is mandated. Steam autoclave cycles above 121°C are not recommended because heat deflection temperature measured under ISO 75-2 for UHMW-PE remains below sterilization temperature, allowing load-bearing geometry to distort. Low-temperature cleaning with 70% isopropyl alcohol or hydrogen peroxide plasma is used for non-sterile cleanroom surfaces; repeated oxidative sterilants can increase surface haze and should be monitored by gloss measurement under ASTM D523. End products include tablet feed chutes, guide rails, punch seals, soft-gel drying trays, and vial transport wear strips.
Shuttleless loom sliders and guide bars fabricated from CERAM P are used where metal components generate noise and fiber-lubricant residues. Tensile yield strength measured under ASTM D638-14 for ceramic-filled UHMW-PE is typically 20–25 MPa; elongation at break is lower than unfilled UHMW-PE but remains adequate for snap-fit insertion into loom sley slots. Notched impact strength determined by ISO 180 double-notched specimens remains above 50 kJ/m² for many filled UHMW-PE grades, although end users should request CERAM P-specific values. The primary wear interface is the contact between the slider and the steel guide bar; ceramic filler reduces the transfer of polymer debris onto the guide surface, which in turn reduces tension spikes in the warp yarn. End products include loom pickers, shuttle guides, combing roller strips, winding machine sliders, and yarn guide blocks.
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Specified as Mitsubishi Chemical Advanced Materials UHMW-PE CERAM P, the grade is a ceramic-particle-filled ultra-high-molecular-weight polyethylene supplied through the manufacturer’s stock-shape programme as compression-moulded sheet, ram-extruded rod, and machined wear components. The base polymer belongs to the class defined by a melt mass-flow rate below 0.1 g/10 min at 190 °C under 21.6 kg and by a viscosity number above 2000 cm³/g when tested according to ISO 1628-3, classified under ISO 11542-1; the ceramic additive is dispersed in that matrix to alter the dry sliding response rather than to create a rigid structural ceramic-polymer composite. Supplier technical literature positions the product for unlubricated or water-lubricated guide rails, wear strips, chain guides, and star-wheel liners in bottling, packaging, and materials-handling lines. Because the ceramic phase modifies the cutting response, stock shapes are usually machined with carbide-tipped or polycrystalline-diamond tooling; high-speed-steel tools lose edge life rapidly.
Under dry sliding against stainless steel, unfilled UHMW-PE develops a transfer film on the counterface. The transfer film is often the rate-controlling factor: if it remains adherent, wear is low; if it oxidatively degrades, wear particles form. The ceramic filler in CERAM P modifies the surface energy of that transfer film and increases the hardness of the polymer surface layer. Manufacturer technical bulletins compare the grade with unfilled UHMW-PE under dry-sand rubber-wheel abrasion according to ASTM G65 Procedure A and under sliding wear against stainless steel with a fixed counterface roughness of 0.2 µm Ra. The ceramic grade is listed as producing lower volume loss per unit sliding distance, but the improvement is not uniform across all pressures. At contact pressures above 0.5 MPa, the wear differential narrows because subsurface fatigue in the UHMW-PE matrix controls material removal; at pressures below 0.2 MPa, the ceramic phase suppresses adhesive transfer more effectively. This threshold behavior is a process conflict: specifying CERAM P for high-load sliding without reducing the bearing stress can yield only marginal wear improvement over unfilled TIVAR 1000, while the higher filler hardness increases the abrasiveness of any wear debris generated. Supplier-published data for all pressure levels are limited; treat the 0.2 MPa transition as a design guideline rather than a guaranteed boundary.
| Specification gate | Standard or regulation | Typical acceptance criterion for CERAM P |
|---|---|---|
| Density | ISO 1183-1 | 0.94–0.98 g/cm³ |
| Shore D hardness | ISO 868 | 64–70 |
| Tensile yield stress | ISO 527-2 | 15–25 MPa |
| Dynamic coefficient of friction | ASTM D1894 | 0.10–0.18 against polished steel |
| Dry-sand rubber-wheel abrasion | ASTM G65 Procedure A | Lower volume loss than unfilled UHMW-PE reference |
| Food-contact base polymer | FDA 21 CFR 177.1520 | Lot-specific compliance certificate required |
| EU plastic food-contact migration | Regulation (EU) No 10/2011 | Overall migration limit 10 mg/dm² |
The values in Table 1 are representative acceptance ranges compiled from supplier documentation; they are not a substitute for the manufacturer’s lot-specific data sheet.
Compression-moulded sheet and ram-extruded profiles of CERAM P are not processed by conventional screw-injection moulding because the high molecular weight prevents useful melt flow. In plate form, the product is supplied in thicknesses from 10 mm to 120 mm, and machining is performed at low spindle speeds and low feed rates to limit local thermal expansion. Ceramic-filled polyethylene exhibits anisotropic residual stress after flame-heated or water-jet cutting; a stress-relief anneal below the Vicat softening temperature is common, but the manufacturer’s schedule for a specific lot should take precedence. Because the ceramic filler accelerates edge wear on uncoated carbide inserts, tool life is shorter than for unfilled UHMW-PE; the exact reduction depends on cutting speed and insert geometry and is not stated as a single ISO tool-wear figure. Dimensional inspection after machining should include thickness, flatness, and hole-position checks because the material continues to relax after the first skin cut.
Substitution is most defensible where external lubricants contaminate packaged food, where oil-filled UHMW-PE releases silicone or mineral oil into the line, and where cast nylon absorbs water and loses dimensional stability. Cast nylon 6 absorbs several weight percent of water after immersion, while unfilled UHMW-PE absorbs less than 0.01 wt% by ISO 62; this moisture differential is one reason the grade retains dimensional stability in wet bottling tunnels. Lubricant-filled UHMW-PE can show lower startup friction, but the oil phase migrates over time and leaves a surface film; CERAM P contains no liquid lubricant fraction, so wear reduction must come from the ceramic-polymer composite rather than from an exuding additive. In conveyor guide rail systems operating at line speeds of 0.5–2.0 m/s, polymer wear strips experience alternating edge loading from chain articulation. The ceramic grade is used there because the filler reduces edge cracking at the part contour, but the process limitation is that ceramic-filled material is harder than unfilled grades and can polish a stainless steel counterface to a roughness below the optimum transfer-film anchor range.
Food-contact status for polyolefin stock shapes is governed by FDA 21 CFR 177.1520 for the base polymer and by European Regulation (EU) No 10/2011 for overall migration. The ceramic filler in CERAM P is included in the manufacturer’s food-contact statement only when the specific final article and additive lot are covered by the issued compliance certificate. A purchasing specification should require the certificate and list the permitted use categories, because not all ceramic-filled UHMW-PE grades produced by other manufacturers meet the same migration limits. The grade is not intended for repeated steam sterilization at 121 °C; continuous exposure to saturated steam softens the matrix and increases creep. Cleaning with sodium hypochlorite solutions up to 5000 ppm free chlorine is commonly used for UHMW-PE surfaces, but the ceramic filler can retain surface residues more than the unfilled polymer, so rinse validation is required for aseptic packaging.
Manufacturer bulletins place the sliding wear application window for UHMW-PE grades below 0.05–0.10 MPa·m/s dry at 20 °C; the ceramic-modified grade extends the wear life within that window but does not convert the material into a high-PV bearing thermoplastic. Counterface roughness is the controlling independent variable. For stainless steel counterfaces, a roughness of 0.15–0.6 µm Ra is normally specified; below 0.1 µm Ra, the transfer film may not anchor and wear can increase, while above 0.8 µm Ra, the counterface asperities act as cutting tools on the polymer surface. Tests according to ASTM G65 Procedure A show that the ceramic phase lowers the volume loss per unit abrasive mass, but the wear debris is harder than unfilled UHMW-PE debris and can accumulate in unflushed dead zones. In equipment with enclosed chain cases, debris removal must be designed for; otherwise third-body abrasion dominates and the ceramic benefit disappears. Published data for this specific configuration is limited, but the greatest payback occurs where mild water lubrication is present, because water carries ceramic-laden debris away from the contact zone.
Thermal expansion of UHMW-PE is 1.8–2.0 × 10⁻⁴ K⁻¹ in the service range −20 °C to 60 °C, and ceramic reinforcement does not reduce this to the level of aluminum or steel. Long wear strips must therefore be installed with slotted bolt holes or expansion gaps; a 3 m strip heated from 20 °C to 40 °C may expand by approximately 12 mm if linear thermal expansion is taken as 2.0 × 10⁻⁴ K⁻¹. This calculation is a first approximation; actual expansion depends on filler loading, crystallinity, and restraint. Compression-moulded sheet also exhibits planar anisotropy because the moulding direction influences orientation of the ultra-high-molecular-weight chains. Dimensional change after machining is therefore not isotropic, and parts requiring flatness below 0.5 mm/m should be stress-relieved before final finishing.
The ceramic filler in CERAM P is not equivalent to glass-fibre reinforcement. Glass-filled UHMW-PE can be more abrasive to stainless steel and is generally not selected for food-contact guide rails because fibre ends increase counterface wear. Carbon-fibre-filled UHMW-PE can reduce thermal expansion and improve dimensional stability, but the carbon phase increases electrical conductivity and may create a visible black wear-debris stream. Lubricant-filled UHMW-PE lowers startup friction, but the oil phase can migrate and alter the adhesion of labels or adhesives in packaging lines. The ceramic-filled grade occupies a middle position: higher hardness than unfilled UHMW-PE, lower counterface abrasion than glass-filled grades, and no liquid lubricant exudation. However, the ceramic phase does not improve resistance to strong oxidizing acids; chromic acid, concentrated sulfuric acid, and free chlorine at elevated temperature attack the polyethylene backbone regardless of filler. For immersion in strong oxidizing acids above room temperature, the unfilled polyolefin is already outside its recommended range, and the ceramic filler does not establish protection.
Specification for CERAM P should include lot-level density by ISO 1183-1, Shore D hardness by ISO 868, and a supplier wear-data sheet if sand-slurry or pin-on-disc comparison is required. Since the product is supplied in stock shapes rather than as a single defined compound with an identical ceramic size distribution across all production campaigns, lot-to-lot variation in machining response and wear rate can occur. Procurement documents should therefore fix the acceptable density and hardness ranges, require a compliance certificate for the intended food-contact use, and state the counterface roughness and PV limit of the actual installation. Without those boundary conditions, a material substitution based only on the CERAM P trade name can replicate neither the laboratory wear ranking nor the service life observed on a controlled production line.