| HS Code | 997554 |
| Density | 0.93 g/cm3 |
| Bulk Density | 0.45 g/cm3 |
| Average Particle Size | 150 µm |
| Molecular Weight | ≥3.5 × 10^6 g/mol |
| Melting Point | 130-135 °C |
| Crystallinity | 45% |
| Tensile Modulus | 700 MPa |
| Tensile Strength At Yield | 17 MPa |
| Tensile Strength At Break | 32 MPa |
| Elongation At Break | 300% |
| Flexural Modulus | 800 MPa |
| Charpy Notched Impact Strength | 100 kJ/m2 |
| Izod Notched Impact Strength | 1.6 J/cm |
| Shore D Hardness | 62 |
| Coefficient Of Friction | 0.15 |
| Abrasion Resistance | 100 mm3 |
| Water Absorption | 0.01% |
| Thermal Conductivity | 0.42 W/m·K |
| Coefficient Of Linear Thermal Expansion | 200 µm/m·°C |
| Dielectric Constant | 2.3 |
| Dielectric Strength | 45 kV/mm |
| Volume Resistivity | 1e15 Ω·cm |
| Flammability | UL94 HB |
| Limiting Oxygen Index | 17% |
| Maximum Continuous Service Temperature | 80 °C |
| Vicat Softening Point | 80 °C |
As an accredited Celanese UHMW-PE 4130 CR factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Celanese UHMW-PE 4130 CR is packaged in 25 kg PE-lined paper bags, 40 bags per 1000 kg pallet. |
| Container Loading (20′ FCL) | Celanese UHMW-PE 4130 CR, palletized and shrink-wrapped, securely loaded into a dry 20′ FCL container for export shipment. |
| Shipping | Celanese UHMW-PE 4130 CR ships as a non-hazardous, non-regulated solid powder/pellet in moisture-barrier bags, fiber drums, or bulk sacks. It requires no special transport classification; protect from moisture, heat, and contamination. Follow local regulations and retain the SDS for handling and storage. |
| Storage | Store Celanese UHMW-PE 4130 CR in a cool, dry, well-ventilated warehouse at room temperature. Keep original containers sealed and palletized off the floor, away from direct sunlight, moisture, dust, ignition sources, strong oxidizers, acids, and bases. Protect from excessive heat and contamination. Use first-in, first-out stock rotation. No special ventilation is required under normal storage. |
| Shelf Life | Shelf life: Stable; store cool, dry, sealed, away from heat, moisture, and UV light. No specific expiration reported. |
In lithium-ion separator casting, UHMW-PE 4130 CR is suspended at solids concentrations between 10 wt% and 30 wt% in a high-boiling paraffin oil or decahydronaphthalene system, with the lower bound dictated by gel-state melt strength and the upper bound by slot-die pressure rise in a corotating twin-screw extruder with L/D 25–36; typical commercial practice for 9–16 µm separators concentrates in the 12–20 wt% band. Extrusion temperatures from 180 °C to 230 °C are used, followed by quenching on a chilled casting drum before the oil phase is removed with n-hexane or methylene chloride and the film is subjected to sequential biaxial orientation. Melt filtration between the extruder and the slot die is set to remove agglomerates larger than 50–100 µm, and the slot-die gap is generally held between 0.5 mm and 1.0 mm depending on target film thickness. Machine-direction stretch ratios are commonly reported in the 5–7× range and transverse-direction ratios in the 4–6× range, though published data for this specific grade on commercial synchronous stretchers is limited and must be qualified against the cell manufacturer’s Gurley number, MacMullin number, and pore-size specification. Heat-setting downstream is usually run at 100–125 °C to balance porosity, Gurley number, and shutdown response; increasing heat-setting temperature above roughly 110 °C reduces Gurley number and improves dimensional stability but can delay shutdown onset and increase transverse-direction shrinkage. Separator-level mechanical testing follows ASTM D882-18 for thin-film tensile modulus and strength, porosity is characterized by mercury intrusion according to ISO 15901-1:2016 or by equivalent separator converter methods for pore-size distribution, and cell-level safety qualification falls under UL 1642, IEC 62660-3:2022, and UN 38.3 for transport. Terminal product classes include 9–16 µm base separators for prismatic, cylindrical, and pouch lithium-ion cells, frequently as uncoated or ceramic-coated structures in which the base UHMW-PE layer must remain dimensionally stable during aqueous alumina or boehmite coating and subsequent calendering.
In sintered filtration tubes, porosity from UHMW-PE 4130 CR is governed less by platen pressure than by the particle size distribution of the incoming powder and the sintering dwell time. A two-fraction dry blend is common, for example 70 parts of a 100–150 µm D50 cut combined with 30 parts of a 250–350 µm cut, charged without plasticizer or binder; finer fractions below 80 µm raise bubble point but reduce permeability, whereas coarse fractions above 400 µm produce channeling and reduce mechanical integrity. The powder is poured into female molds, vibrated to settle, and heated at 170–190 °C under 5–15 MPa for 30–120 min depending on wall thickness, a window deliberately below the full melt point of the resin to avoid total coalescence. Production-scale audits of cylindrically molded filter tubes show that a D50 shift of roughly 25 µm can alter air permeability by more than 20%; incoming powder lots are therefore screened and segregated for critical filter lots. For industrial filter elements installed in hydraulic or recirculating lube circuits, multipass filtration performance is tested according to ISO 16889:2022, density comparison follows ISO 1183-1:2019, and material designation follows ISO 21304-1:2019 for UHMW-PE moulding and extrusion materials. Where the sintered component contacts potable water, NSF/ANSI/CAN 61 certification applies to the finished component, not the base resin alone. Terminal products include fine-bubble aeration discs and tube diffusers for wastewater treatment, pneumatic mufflers and silencers, vacuum table plates, and depth filter tubes for low-viscosity chemical service, provided the operating temperature remains below the onset of oxidative degradation and the medium does not contain strong hydrocarbon solvents that swell the porous matrix.
Compression-molded sheet from UHMW-PE 4130 CR is machined into guide rails, star wheels, curve tracks, and scraper blades for bottling and packaging lines; the formulation is normally 100 wt% virgin resin with no plasticizer and, where mold release is needed, 0.1–0.3 phr calcium stearate as a processing aid that must remain below the migration limits stated in EU 10/2011 Annex III and FDA 21 CFR 177.1520(c) for olefin polymers. The molding process uses platen pressures from 10 MPa to 20 MPa at 190–210 °C, followed by cooling under pressure at 10–15 K/min until core temperature falls below 80 °C to minimize warpage; improper cooling produces frozen-in stress that later releases as dimensional change during hot water washdown. Because UHMW-PE has a continuous load-bearing temperature well below its peak melting point, the same sheet is limited to continuous food-line temperatures below 80 °C, and repeated steam sanitization above 90 °C tends to cause localized flattening or loss of machined flatness. Standards applicable to the finished parts include FDA 21 CFR 177.1520(c), EU 10/2011 Annex III with overall migration testing using the food simulants and contact conditions specified for the intended food type, and 3-A Sanitary Standards when the wear strip is integrated into dairy or meat processing where cleanability must be demonstrated. Terminal product categories include conveyor guide rails, star wheel inserts, chain wear strips, and scraper blades used in high-speed packaging, brewery pasteurizer chains, and meat processing conveyors, where the main field failure modes are abrasive wear against stainless steel and loss of tension in mounting holes, not toxicological nonconformance.
When gel spinning UHMW-PE 4130 CR, the resin is dissolved at 5–10 wt% in decalin or a narrow-cut paraffin oil, extruded through a spinneret at 170–200 °C, quenched to form gel filaments, extracted to remove residual solvent, and hot-drawn at 120–150 °C to total draw ratios between 30× and 50×. The resin concentration in the spinning solution is inversely related to drawability: lower concentrations allow higher draw ratios and therefore higher tenacity, but they reduce spinline stability and raise solvent recovery cost; higher concentrations above 12 wt% generate gel filaments prone to brittle fibrillation during the final hot-draw stage because the entanglement density before drawing remains too high. The production bottleneck on commercial gel-spinning lines is usually the extraction stage, where residual spinning solvent above roughly 100 ppm in the dry yarn introduces plasticization that shifts the final hot-drawing temperature window and can create intermittent yarn breakage. Products include cut-resistant glove knits tested under EN 388:2016 and ANSI/ISEA 105-2016, high-tenacity braided ropes and slings qualified under EN 1492-4:2004, and lightweight tension members in synthetic fiber cables. Tensile properties are routinely verified by ISO 2062:2009 on drawn yarns and ISO 2307:2019 on finished ropes; published experimental data for 4130 CR specifically in gel spinning is limited compared with dedicated fiber grades, so spinline parameters require pilot validation before transfer to production.
| Application segment | Formulation / addition ratio | Core processing route | Primary standards and test methods |
|---|---|---|---|
| Lithium-ion battery separator | 10–30 wt% UHMW-PE in paraffin oil; typical 12–20 wt% | Gel extrusion 180–230 °C, solvent extraction, biaxial stretch 5–7× MD / 4–6× TD | ASTM D882-18, ISO 15901-1:2016, UL 1642, IEC 62660-3:2022 |
| Sintered filtration / aeration | 100 wt% powder; particle-size blend 70:30 | Cold pack, sinter 170–190 °C, 5–15 MPa, 30–120 min | ISO 16889:2022, ISO 21304-1:2019, NSF/ANSI/CAN 61 |
| Food-contact wear strips | 100 wt% virgin; optional 0.1–0.3 phr calcium stearate | Compression mold 190–210 °C, 10–20 MPa, slow cool 10–15 K/min | FDA 21 CFR 177.1520(c), EU 10/2011 Annex III, 3-A Sanitary Standards |
| Gel-spun high-tenacity yarn | 5–10 wt% in decalin/paraffin oil | Spin 170–200 °C, extract, hot-draw 120–150 °C, 30–50× | EN 388:2016, ANSI/ISEA 105-2016, ISO 2062:2009, ISO 2307:2019 |
| Dry-running bushings / wear plates | Neat or 1–3 wt% MoS2 / 2–5 wt% graphite | Twin-screw compounding, compression mold 190–210 °C, 10–20 MPa | ISO 21304-1:2019, ASTM D4020-18, ISO 527-2:2012 |
| Paper machine dewatering elements | 100 wt% virgin, no filler | Compression mold 190–210 °C, anneal 100–120 °C, machine flatness 0.05 mm/m | ISO 21304-1:2019, ISO 178:2019, FDA 21 CFR 177.1520(c) when relevant |
Unlike food-contact wear strips, unlubricated rotating and sliding service in water treatment plants, conveyor systems, and mineral handling uses compression-molded UHMW-PE 4130 CR fabricated into bushings, thrust washers, pump wear plates, and chain guides. The polymer is processed neat in most cases, although solid lubricants such as molybdenum disulphide at 1–3 wt% or graphite at 2–5 wt% may be incorporated when the application requires reduced start-up friction or antistatic dissipation; these filled compounds are typically produced by twin-screw compounding followed by compression molding, not by direct dry blending at the press. Molding conditions follow the same 190–210 °C platen range and 10–20 MPa pressure as unfilled board, but the presence of particulate lubricants narrows the safe cooling window because differential shrinkage between filler and matrix increases residual stress at part edges. Testing on production-scale dry-running bushing lines indicates that the dominant field failure is not abrasive wear but creep loss of interference fit; at loads above about 10 MPa compressive stress, the material’s apparent modulus at room temperature is insufficient to maintain a press-fit under continuous load. Compliance is governed primarily by dimensional and material standards, including ISO 21304-1:2019 for UHMW-PE moulding and extrusion materials, ASTM D4020-18 for specification of virgin UHMW-PE, and ISO 527-2:2012 tensile testing where value differences between compression-molded and machined specimens must be reported. Terminal products include pump wear plates for water and light slurry service, conveyor idler bushings, agricultural chain guides, and thrust washers in submersible equipment, all with the operational boundary that continuous service above 80 °C or exposure to strong oxidizing acids should be avoided without qualification testing.
Because stock temperatures in high-speed paper, board, and tissue machine wet ends rarely exceed 60 °C, UHMW-PE 4130 CR can be machined into suction box covers, forming board strips, deflectors, foil profiles, and doctor blade holders with a stable wear plateau. The formulation used for these parts is normally 100 wt% virgin compression-molded sheet without fillers because hard particulate fillers scratch the moving forming fabric and accelerate wire wear. Processing begins with compression molding of thick slabs at 190–210 °C and 10–20 MPa, followed by stress-relief annealing at 100–120 °C for 4–8 h and precision machining to a flatness tolerance of 0.05 mm/m; excursions during cleaning shutdowns above 90 °C can change the final surface flatness and alter drainage uniformity. Ceramic counter-faces of alumina or zirconia are specified to reduce wire wear, and the UHMW-PE part is sacrificial in that tribological pairing, with field audits from board machines reporting that the polymer cover is replaced at predetermined wear limits rather than after catastrophic fracture. Compliance is drawn from ISO 21304-1:2019 for material designation and ISO 178:2019 for flexural modulus used in unsupported span calculations between T-bar mounts; food-contact standards are not normally required unless the paper machine is producing direct food-contact packaging, in which case FDA 21 CFR 177.1520(c) and EU 10/2011 Annex III apply to the finished machine component only if polymer transfer to the sheet is demonstrated to be absent. Terminal product types include suction box covers, forming board strips, foil blades, deflectors, and dry-end wear strips, all machined from the same compression-molded slab to reduce inventory of multiple resin grades.
Competitive Celanese UHMW-PE 4130 CR prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please contact us at +8618136850665 or mail to admin@ascent-chem.com.
We will respond to you as soon as possible.
Tel: +8618136850665
Email: admin@ascent-chem.com
Flexible payment, competitive price, premium service - Inquire now!