| HS Code | 587798 |
| Productname | Mitsubishi Chemical Advanced Materials UHMW-PE 88 ESD |
| Materialtype | Ultra-high molecular weight polyethylene with ESD/conductive additive |
| Color | Black |
| Density | 0.94 g/cm³ |
| Tensilestrength | 20 MPa |
| Tensilemodulus | 700 MPa |
| Elongationatbreak | >300% |
| Hardnessshored | 60-62 |
| Surfaceresistivity | 10^6 to 10^9 ohm |
| Volumeresistivity | 10^6 to 10^9 ohm·cm |
| Thermalconductivity | 0.40 W/(m·K) |
| Coefficientoflinearthermalexpansion | 1.5 x 10^-4 /°C |
| Meltingpoint | 135 °C |
| Maximumservicetemperature | 80 °C |
| Waterabsorption | <0.01% |
| Coefficientoffriction | 0.10-0.20 |
| Abrasionresistance | High |
| Chemicalresistance | Good against acids, alkalis, and many solvents |
| Esdproperty | Electrostatic dissipative |
As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE 88 ESD 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 88 ESD is supplied as ESD sheets on wooden pallets, shrink-wrapped; quantity: one sheet per package. |
| Container Loading (20′ FCL) | Mitsubishi Chemical Advanced Materials UHMW-PE 88 ESD loaded in a 20-foot FCL, palletized, dry, secured for safe sea transport. |
| Shipping | Mitsubishi Chemical Advanced Materials UHMW-PE 88 ESD ships as a non-hazardous solid thermoplastic. Use clean, dry, sealed packaging to prevent contamination and moisture. No UN number, hazard class, or special transport labels are typically required. Store away from heat, sunlight, and ignition sources. Consult the SDS for specific handling and regulatory requirements. |
| Storage | Store Mitsubishi Chemical Advanced Materials UHMW-PE 88 ESD in a cool, dry, well-ventilated area, away from direct sunlight, heat, flames, and strong oxidizers. Keep in original sealed packaging to prevent moisture, dust, and contamination. Avoid UV exposure and contact with oils, solvents, or chemicals. Stack flat to prevent warping. Maintain moderate humidity to preserve ESD/antistatic performance. |
| Shelf Life | Indefinite shelf life when stored dry, clean, at room temperature, away from sunlight, heat, and contaminants; no expiration under proper storage. |
In front-end semiconductor tooling, CNC-machined vacuum wands, wafer combs, and pick-and-place nests are produced from Mitsubishi Chemical Advanced Materials UHMW-PE 88 ESD in lot sizes that typically range between 4 and 120 pieces. The material is specified because its surface resistivity, measured at 12% relative humidity and 500 V per ASTM D257, remains within 10⁶–10⁹ Ω/sq; this range satisfies static dissipative requirements under ANSI/ESD S20.20-2021 for process-required insulators used in electrostatic protected areas. Raw shape stock is supplied under ASTM D4020-18 for UHMW-PE molding and extrusion materials; the ESD modification is distributed throughout the section by compression molding. Machining uses a two-stage sequence: rough band sawing followed by three-axis CNC contouring with a 3-flute solid carbide end mill at 220–320 m/min cutting speed and 0.1–0.3 mm/tooth feed. A stress-relief interval of 24 h at 21–25°C separates roughing from finish boring; UHMW-PE thermal recovery after stock removal can otherwise open flatness deviations beyond 0.05 mm on a 150 mm square fixture. Final tolerances are defined by ISO 2768-mK; dowel-hole positional deviation is held below 0.10 mm. The finished nests contact bare silicon, wafer frames, and flexible PCBs without generating tribocharging above 100 V on a charged plate monitor in a 23°C, 12% RH cleanroom. Cleaning uses 70% isopropyl alcohol; aromatic or chlorinated solvents are avoided because they may swell UHMW-PE and produce a surface layer with altered resistance values. Chemical compatibility data for this specific ESD configuration is limited; therefore, any new solvent exposure route is verified by ASTM D257 surface resistance testing after 24 h immersion at 23°C.
Typically, ram-extruded and machined wear strips and chain guides made from UHMW-PE 88 ESD are installed on modular plastic chain conveyors in PCB assembly lines. The mating chain is acetal or polypropylene; wear strip thickness is selected between 10 mm and 30 mm, with countersunk bolt holes on 150 mm centres. Density in the 0.93–0.95 g/cm³ range means a 3 m length of 20×30 mm guide weighs approximately 1.7–1.8 kg. Dry-running coefficient of friction against polished stainless steel is in the 0.15–0.25 range; manufacturers list useful continuous sliding velocities up to 0.8 m/s. Wear rate is governed less by matrix loss than by dissipative filler orientation after machining. As-cut surfaces are not accepted for high-cycle contact; a finish pass removing 0.3–0.5 mm per side is required to expose homogeneous dissipative domains and to remove fine fibrillation. Rails are stress-relieved for 48 h at 20–25°C before final sizing because UHMW-PE expands by approximately 0.20 mm/m/°C; a 5°C rise across a 3 m rail produces 3 mm linear movement if both ends are fixed. Installation uses one fixed and one slotted end with bolt clearance of 2–3 mm per metre. Electrical verification follows IEC 61340-5-1; resistance-to-ground is measured at 100 V and values outside 10⁴–10⁹ Ω trigger replacement of the segment. The end products are guide rails, wear shoes, and return chain supports used in solder paste printing, component placement, and optical inspection lines. Continuous service is limited to 80°C in dry air; above this threshold oxidative embrittlement progresses and dimensional change accelerates.
For bulk solids processed under minimum ignition energy conditions below 3 mJ, UHMW-PE 88 ESD is machined into hopper liners, chute liners, and screw conveyor trough inserts. The static dissipative range of 10⁶–10⁹ Ω/sq is selected because IEC TS 60079-32-1 identifies surface resistance below 1×10⁹ Ω as a practical criterion for avoiding propagating brush discharges in non-metallic liners. Liner thickness is chosen between 8 mm and 25 mm; impact zones with particle velocity above 3 m/s or bulk density above 800 kg/m³ use the upper thickness limit. Fastening uses countersunk thermoplastic bolts on a 12×12 cm grid for flat plates; chute radii below 500 mm are assembled from segmented flat plates rather than post-formed, because the zero-melt-flow behaviour of UHMW-PE limits conventional thermoforming. Grounding is achieved through metallic studs inserted at intervals of 1 m²; each stud-to-ground resistance is checked at 10 V and must remain below 1×10⁶ Ω. Water absorption below 0.02% after 24 h immersion per ISO 62 prevents humidity-induced dimensional change in outdoor hoppers; however, the material is not suitable for continuous exposure to hot fuming nitric acid or strong oxidizing acids, which degrade the UHMW-PE matrix and may destroy the dissipative network. End products include flour mill discharge chutes, sugar transfer hoppers, and aluminum powder screw troughs. The complete compliance matrix for these assemblies is summarised below.
| Standard designation | Test parameter | Acceptance limit | Reference condition |
|---|---|---|---|
| IEC TS 60079-32-1 | Surface resistance of non-metallic liner | <1×10⁹ Ω | 23°C, 30% RH |
| IEC 61340-5-1 | Resistance-to-ground of grounding stud | <1×10⁶ Ω | 100 V |
| ANSI/ESD S20.20-2021 | Surface resistance of dissipative material | 10⁴–10⁹ Ω | 12% RH, 500 V |
Because lithium-ion dry room fixtures require charge control below 50 V on exposed cell surfaces, vacuum-assisted cell stack grippers and separator tensioning rails are machined from UHMW-PE 88 ESD. The dry room environment is controlled to a dew point of -50°C or lower; the material’s water absorption below 0.02% after 24 h immersion per ISO 62 supports dimensional stability across desiccant-based drying cycles. The machined pockets for 18650 and 21700 cell handling use edge radii above 0.5 mm and side relief angles of 10–15° to avoid scoring cell shrink wrap. Rough milling runs at 1200–1800 rpm on a rigid machining centre; finish boring uses a 0.25 mm depth of cut and a polished carbide insert to prevent surface charging during machining. Residual stress is managed by alternating rough cuts on both faces and allowing 12–24 h between operations for thermal equilibrium. Finished nests are tested with a charged plate monitor at 100 V bias; charge acceptance below 50 V is used as an internal criterion. Published data for this specific configuration is limited; consequently, surface resistivity is verified on each production lot at 12% RH and 500 V per ASTM D257 rather than assumed from typical values. Direct contact with NMP-based electrode coating pastes is not used unless chemical compatibility is verified. Cleanroom wiping is restricted to 70% isopropyl alcohol or dry ionized air. The end products are cell stack grippers, formation tray nests, and separator guide fingers.
Within ISO 14644-1:2015 class 5 cleanrooms, fixtures for MEMS wafer bonding and sensor singulation are machined from UHMW-PE 88 ESD to prevent charging of exposed pyroelectric sensor elements. The service environment is 22±2°C and 40–50% RH in manual stations, while localized tooling near etchers and ovens may see relative humidity below 10%. Surface resistivity is therefore recorded at 12% RH rather than the common 50% RH laboratory condition. Machined fixtures are supplied as vacuum-fixtured pallets with flatness of 0.02 mm per 100 mm; final cutters are polished-flute carbide or high-speed steel with high clearance angles to prevent surface smearing. After machining, parts are conditioned for 48 h at the target humidity before final inspection. Inspection uses a surface-to-ground probe at 500 V per ASTM D257; point-to-point resistance is measured at 100 V and any location above 1×10⁹ Ω indicates filler depletion at the machined surface, so the fixture is re-machined or rejected. Cleanroom cleaning uses 70% isopropyl alcohol on low-lint wipers; dry wiping alone can generate localized charge and is not used on exposed sensor contact areas. The products are wafer boat handles, singulation nests, and bond tool pallets. The material is not moisture-sensitive, so pre-drying is not required; however, parts cold-soaked below 10°C must be stabilized at cleanroom temperature for 24 h before precision measurement.
When powdered ingredient handling introduces combustible dust risks in food packaging, conveyor components for flour, starch, and sugar transfer lines are fabricated from UHMW-PE 88 ESD only after review of food contact status. The carbon-based dissipative additive is not automatically covered by 21 CFR 177.1520 or EU 10/2011; components that operate as mechanical guides and do not become food contact surfaces are used, while direct contact positions require a batch-specific manufacturer statement. Guide rail thickness is generally 10–20 mm; wear strips are mounted with stainless steel bolts recessed 2 mm below the surface to prevent surface charge concentration at metallic edges. The dissipative characteristic is applied where dust deflagration risk assessments identify brush discharge potential under IEC 60079-10-2; sugar and starch dust clouds with fines below 75 µm can exhibit minimum ignition energies below 10 mJ, where published values vary with moisture and particle size distribution. Surface resistance after 1000 h at 40°C and 80% RH is checked per IEC 61340-5-1; resistance values are not expected to shift outside 10⁴–10⁹ Ω if surfaces are periodically cleaned with dry rags. Published data for this specific ESD configuration is limited; therefore, long-term direct food contact is not assumed. The material should not be exposed to chlorinated cleaning agents above 5% concentration or above 60°C without a chemical compatibility review. End products are rotary valve wear plates, guide rails, and inlet chute liners used in flour and sugar packaging units.
Across PCB buffer stations between solder paste printers and pick-and-place machines, roller sleeves machined from UHMW-PE 88 ESD are press-fitted over stainless steel shafts. Interference is set between 0.03 mm and 0.07 mm; shaft surfaces are knurled to prevent circumferential slip under repeated indexing. The material provides surface resistivity in the 10⁶–10⁹ Ω/sq range, limiting board voltage below 100 V during transfer. Sleeve outer diameters are finish-turned after shrink fitting to keep runout below 0.05 mm total indicator reading. Thermal expansion of 0.20 mm/m/°C means a 10°C rise across a 500 mm sleeve segment produces 1 mm interference change; press fits are calculated at the upper service temperature, not at ambient. Rollers are tested with a charged plate monitor after 24 h at 12% RH. Drag force against PCB edge glass-epoxy is validation-specific; a calibrated load cell with 0.5 N resolution measures board drag on the target conveyor. The rollers are cleaned with dry ionized air or 70% isopropyl alcohol; wet chemical cleaning is limited to approved solvents. Published data for total mass loss of this ESD grade is limited; semiconductor applications with outgassing budgets require lot-specific certification from the manufacturer. End products are roller sleeves, idler rollers, and buffer station transfer rollers for printed circuit board assembly.
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Mitsubishi Chemical Advanced Materials UHMW-PE 88 ESD is an electrostatic-dissipative ultra-high molecular weight polyethylene product supplied as compression-molded sheet, ram-extruded rod, and machined profiles. The base polymer is classified as ultra-high molecular weight polyethylene under ISO 11542-1, with viscosity-average molecular weight typically above 1.5×106 g/mol; the 88 designation is supplier-specific and identifies the ESD-modified grade within the UHMW-PE portfolio. The dissipation mechanism is achieved by a dispersed conductive network throughout the polymer matrix, not by an externally applied antistatic layer. Under ASTM D257-14, surface resistivity is controlled within 106–109 Ω/sq, which places the material in the static-dissipative range defined by ANSI/ESD S20.20-2021 for materials requiring charge bleed-off to ground. The product is intended for semiconductor contact components, electronics assembly fixtures, conveyor guide rails, packaging machine change parts, and dry sliding pads where tribocharging must be managed without sacrificing the abrasion tolerance of UHMW-PE.
Because UHMW-PE 88 ESD relies on a bulk conductive network rather than a hygroscopic ionic surface, the electrical performance is largely insensitive to ambient humidity. Water absorption after 24 h immersion is below 0.01% by ISO 62:2008, so absorbed moisture cannot dominate the charge decay mechanism. In dryroom environments operating below 30% RH, where antistatic grades based on migrating surfactants often become insulative, the dissipative network remains within the 106–109 Ω/sq envelope after grounding. Consistent electrical performance requires a direct path to ground through conductive fasteners, metallic support rails, or grounding straps; the polymer alone will bleed charge only when the part is grounded. Lot-to-lot surface resistivity can shift with compounding dispersion, and procurement specifications should fix upper and lower resistivity limits instead of accepting a single nominal value.
In automated semiconductor wafer transport positions, electrostatic discharge protection is required across a wide temperature and humidity window. UHMW-PE 88 ESD is machined into guide rails, bearing pads, alignment fixtures, and end-effector contact surfaces; the material’s low moisture uptake prevents the dimensional growth associated with nylon-based ESD grades under fluctuating cleanroom humidity. Pin-on-disk screening using polished 100Cr6 steel counterfaces and 0.5 m/s sliding speed shows wear behavior controlled by the inherent UHMW-PE matrix; published supplier data for the exact 88 ESD grade is limited for specific wear factors, so application-specific wear screening under ASTM G99-17 is required. Charge decay measurements per ANSI/ESD STM11.12-2021 should be performed on finished machined parts because surface roughness and cleaning agents can alter the initial decay response.
| Property | Test method | UHMW-PE 88 ESD typical published range | Unfilled UHMW-PE reference |
|---|---|---|---|
| Density | ISO 1183-1:2019 | 0.94 g/cm³ | 0.93–0.94 g/cm³ |
| Tensile stress at yield | ISO 527-2:2012 | 17–21 MPa | 20–23 MPa |
| Elongation at break | ISO 527-2:2012 | 200–300% | 300–400% |
| Shore D hardness | ISO 868:2003 | 60–64 | 62–66 |
| Water absorption after 24 h | ISO 62:2008 | <0.01% | <0.01% |
| Surface resistivity | ASTM D257-14 | 106–109 Ω/sq | >1012 Ω/sq |
| Volume resistivity | IEC 62631-3-1:2016 | 106–109 Ω·cm | >1014 Ω·cm |
Table values should be interpreted as representative supplier literature values for conditioned specimens at 23 °C and 50% RH; sheet or bar stock above 20 mm thickness may show slightly lower yield stress due to slower compaction. The ESD grade typically displays reduced elongation at break relative to unfilled UHMW-PE because the conductive particulate network acts as stress concentrators. The drop in mechanical ductility is the primary trade-off for the static-dissipative function, and it becomes more apparent at sharp internal corners. For structural calculations, tensile modulus in the range 600–800 MPa is a practical design assumption, but finite-element simulation should use the supplier-certified modulus for the purchased lot.
Transition from unfilled UHMW-PE to 88 ESD in production machining usually does not require spindle or tooling changes, but the conductive modifier may generate slightly higher tool edge wear on carbide inserts. Production job shops using 120° clearance-angle carbide insert mill cutters at surface speeds under 300 m/min report acceptable edge life when climb milling is used. Deep pocket routing must be cooled with air blast or light coolant; flood coolant is acceptable because the grade does not absorb water, but coolant residues must be removed from ESD surfaces before installation. Compared with an unfilled UHMW-PE component, the static-dissipative part should be handled with latex or nitrile gloves to avoid insulating oil films before assembly. The black color is imparted by the conductive system; optical sorting and color-coded line change parts should not rely on color contrast alone.
Ram extrusion of UHMW-PE 88 ESD is slower than extrusion of conventional high-density polyethylene because the ultra-high molecular weight resin does not flow under ordinary melt pressure; the process is pressure-assisted sintering rather than melt pumping. Die temperatures in the range 180–200 °C and back pressures above 15 MPa are typical for high-density ram-extruded UHMW-PE, although exact settings depend on press size and profile cross-section. Published processing data for the 88 ESD grade specifically is limited; production-scale trials should map the effect of cooling rate on skin-to-core resistivity. Non-uniform cooling can produce a graded conductive network, with lower surface resistivity at the quenched surface and higher resistivity in slow-cooled core sections.
When compared with ESD polyoxymethylene copolymer, UHMW-PE 88 ESD exhibits lower flexural modulus and lower dry-slip friction but higher elongation before break and improved impact resistance in cold environments. ESD POM-C is frequently selected for precision gears and small snap fits because it machines with tighter dimensional stability and can be injection molded, while 88 ESD is selected for large wear plates, chain guides, and high-impact conveyor components. Compared with ESD PTFE compounds, the UHMW-PE grade shows lower initial cost per unit volume and higher load-bearing capacity at room temperature, but it cannot support continuous service above 80 °C, whereas some ESD PTFE grades tolerate 260 °C. The selection boundary is therefore thermal and dimensional, not solely electrical.
Operational boundaries include continuous air service temperature below 80 °C under no mechanical load; above this limit, oxidative chain scission accelerates and tensile impact strength falls. The material is not suitable for prolonged exposure to concentrated oxidizing acids such as 98% sulfuric acid or 65% nitric acid, which attack polyolefins and can degrade both the matrix and the conductive network. For food-contact or medical device use, the ESD grade must be qualified against EU 10/2011 and FDA 21 CFR 177.1520; the conductive modifier can change migration behavior relative to unfilled UHMW-PE, and the supplier’s food-contact statement should be obtained before specification. Temporary surface contamination from isopropyl alcohol or ethanol cleaning can leave insulating residues if not fully evaporated, so resistivity should be rechecked after cleaning on finished parts.