| HS Code | 951512 |
| Density | 0.93 g/cm³ |
| Molecular Weight | 5.5 million g/mol |
| Bulk Density | 0.45 g/cm³ |
| Average Particle Size | 150 µm |
| Melting Temperature | 130-135 °C |
| Crystallinity | 45-50% |
| Tensile Modulus | 700 MPa |
| Tensile Strength At Yield | 17 MPa |
| Elongation At Break | >300% |
| Charpy Notched Impact Strength | 100 kJ/m² |
| Water Absorption | <0.01% |
| Coefficient Of Friction | 0.1-0.2 |
| Thermal Conductivity | 0.42 W/mK |
| Shore D Hardness | 60-65 |
| Vicat Softening Temperature | 80 °C |
As an accredited Celanese UHMW-PE 4550 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Celanese UHMW-PE 4550 is packaged in 25 kg multi-wall paper bags, 40 bags per pallet, shrink-wrapped. |
| Container Loading (20′ FCL) | Celanese UHMW-PE 4550 loaded into 20′ FCL containers under dry conditions, palletized, and securely stowed for ocean transport. |
| Shipping | Celanese UHMW-PE 4550 is shipped as a non-hazardous, non-regulated solid polymer, typically in moisture-barrier bags, drums, or boxes. Keep dry, clean, and away from excessive heat or sunlight. No UN number, hazard class, or transport placards are normally required; follow the manufacturer’s SDS and local rules. |
| Storage | Store Celanese UHMW-PE 4550 in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and open flames. Keep containers tightly closed, clearly labeled, upright, in original packaging or suitable sealed containers. Avoid contact with strong oxidizing agents. Minimize dust generation and accumulation; use proper grounding and ventilation. Maintain good housekeeping. Protect from moisture and contamination. |
| Shelf Life | Typically stable indefinitely when stored in a cool, dry, well-ventilated area away from direct sunlight, heat, and ignition sources. |
In wet-process lithium-ion battery separator production, GUR 4550 is metered into a paraffinic process oil suspension at a polymer solids level of 10–30 wt%. This loading is not arbitrary. Below 10 wt% cast film lacks sufficient gel strength to survive transverse direction stretching without fibril fracture; above 30 wt% the pressure drop across a 52:1 L/D co-rotating twin-screw dissolving extruder increases non-linearly, and barrel temperatures above 190 °C are required to maintain a homogeneous melt phase. The resulting residence time distribution shifts upward, and the probability of oxidative chain scission increases in the presence of dissolved oxygen unless a nitrogen blanket is maintained on the feed throat and the slurry mixing tank headspace. Production-scale lines operating at 1.0–1.6 m cast width have shown that die lip build-up and gel-particle count, rather than raw polymer variability, are the main causes of downstream winding rejects. The extruder and melt pump are arranged with a slot die land gap of 0.3–0.8 mm; film is quenched on a chill roll at 15–25 °C, extracted in counter-current baths using a 60:40 w/w n-hexane/paraffin mixture or methylene chloride, stretched uniaxially or biaxially at draw ratios between 5:1 and 10:1, and heat-set at 115–125 °C under transverse dimensional constraint. Residual extraction solvent is driven below 0.5 wt% before heat setting; solvent recovery operates in closed-loop mode to meet site emissions limits. Material handling for separator grades is governed by ISO 9001:2015 clause 8.4 and, where the separator enters automotive cell manufacturing, IATF 16949:2016 first-party process control requirements. Powder specification is checked against ASTM D4020-18, film tensile verification follows ASTM D882-18, and porosity plus pore size are measured via ISO 15901-1:2019 mercury intrusion porosimetry. The finished separator is further screened under UL 2580 cell-level abuse protocols only after lamination with ceramic-coated substrates. GUR 4550 is used in the resulting microporous separator film of 9–25 µm thickness, which is slit and wound for use in lithium-ion pouch, prismatic, and cylindrical cells.
The substitution changes shear and elongational rheology in the dissolving extruder, not merely melt viscosity. Fibre-grade trials with GUR 4550 in white mineral oil at 5–15 wt% solids show that the spin line can tolerate head draw ratios above 40:1 only when die-hole roughness is below 0.4 µm Ra and spinneret pack pressure remains below 250 bar. At higher pressure, melt fracture at the spinneret exit generates gel strands with surface flaws that become filament breaks in the first heated drawing stage. The gel filament is quenched in water at 5–20 °C, extracted in n-hexane at 50–60 °C, and drawn in 3–4 stages at temperatures from 120 °C to 150 °C. Total draw ratios of 40:1–60:1 produce filaments in the 30–40 cN/dtex tenacity range when measured according to ASTM D3822-14. For cut resistance, the knitted or woven fabric is evaluated against ANSI/ISEA 105-2016; for ballistic unidirectional laminates, performance is tested under NIJ 0101.06. The extrusion of the 5–15 wt% GUR 4550 solution is carried out on a co-rotating twin-screw dissolving extruder with a length-to-diameter ratio of 48:1–60:1, followed by a gear pump and spinneret. Production records identify air-gap instability—not polymer de-entanglement—as the primary bottleneck when extrusion throughput is pushed beyond 0.8 g/min/hole. The terminal product is a high-tenacity multifilament yarn used in cut-protective gloves, high-modulus ropes, and ballistic unidirectional prepregs. Compliance for textile naming is maintained under ISO 2076:2021, and the base polymer is specified to ASTM D4020-18.
For porous filter plates and tubular sparging elements, GUR 4550 is dry-pressed as a 100 wt% polymer phase. No binder is introduced because pressureless sintering relies entirely on inter-particle diffusion at the powder surface. The powder is specified to ASTM D4020-18, and bulk density is controlled under ASTM D1895-96 to reduce charge-to-charge packing variation. The powder is screened into fractions between 63 µm and 315 µm; larger fractions produce median pore diameters of 40–150 µm, while finer fractions yield 20–60 µm pores. The filled tool is sintered in a forced-air or nitrogen oven at 200–220 °C for 25–45 min depending on wall thickness, with a heating ramp of 1–2 K/min and cooling below 0.5 K/min to prevent differential shrinkage. A documented process failure is edge cracking caused by cooling too rapidly from the crystalline solidification window; for parts above 40 mm cross-section, cooling below 0.3 K/min is typically enforced. Gas permeability and bubble point are tested under ISO 29463-1:2021 for air filtration and ASTM F316-03 for membrane pore size characteristics, while food-contact status is covered by FDA 21 CFR 177.1520 and EC 10/2011. The finished porous media serve as industrial filter plates, aeration diffusers in wastewater treatment, and hydrophobic vent elements for electrolyte-tight enclosures.
GUR 4550 is molded in polished steel tools at 210–230 °C under 4–8 MPa hydraulic pressure. The powder charge is calculated to produce 100 wt% virgin UHMW-PE slab, with an optional antioxidant addition of 0.05–0.3 wt% for thick sections that experience repeated grinding heat. A dwell time of 15–25 min per 10 mm finished thickness is used, followed by controlled cooling at 0.5–1.0 K/min. Processing audits of 600 mm × 600 mm tooling consistently show that non-uniform platen temperature, not powder quality, is the largest source of density variation across slab stock; measured density according to ISO 1183-1:2019 falls below 0.925 g/cm³ in the corners if cooling water channels are not balanced. Abrasion resistance is characterized by ISO 15527:2018 sand-slurry wear, and tensile yield is measured using ASTM D638-14 Type IV specimens machined from the slab. The dynamic coefficient of friction against polished stainless steel is 0.10–0.22 when tested under ASTM D1894-14. The material meets olefin polymer food-contact provisions under FDA 21 CFR 177.1520 and EC 10/2011, making it suitable for direct contact with packaged beverage containers. The cut slab is converted into chain guides, star wheels, wear strips, and chute liners for bottling, packaging, and bulk handling lines.
Under this condition, GUR 4550 is fed as a pre-dried powder into a horizontal or vertical ram extruder. Pre-drying at 80 °C for 2–4 h is enforced when storage relative humidity exceeds 60%, because moisture above 0.03 wt% creates steam pockets in the sintered centre of rods larger than 40 mm diameter. The barrel temperature is maintained between 190 °C and 230 °C, while the ram compresses the powder charge at 20–40 MPa. Production-scale records from 65 mm horizontal machines indicate that hopper bridging—caused by the powder's low bulk density and cohesive flow character—is the main daily operating fault; this is typically corrected with dry-air padding and pneumatic vibratory hoppers, not by changing polymer grade. The process fuses the powder through quick compression heating and back-pressure at the die land, producing rod, tube, and profile stock with a density of 0.930–0.940 g/cm³ when tested to ISO 1183-1:2019. For high-load applications, the extruded stock is machined into pump wear rings, guide rollers, bearing bushings, and scraper blades. Mechanical acceptance testing follows ASTM D4020-18 for the base material, ISO 11542-1:2019 for designation, ASTM D638-14 for tensile properties, and ISO 178:2019 for flexural modulus. The formulation remains 100 wt% GUR 4550 with no processing aid; calcium stearate at 0.05–0.1 wt% is used only where powder conveying equipment is known to induce static charge.
In thermally induced phase separation hollow-fibre spinning, GUR 4550 is dosed at 15–35 wt% in a high-boiling diluent such as dioctyl phthalate or soybean oil; the molten solution is extruded through an annular die at 160–190 °C into a water quench bath. The quench imposes a spinodal decomposition, and subsequent extraction with isopropanol removes the diluent to leave a microporous wall of 0.1–0.5 µm pores. The dope is pre-filtered through a 25 µm screen before the metering pump; bypassing this stage leads to spinneret plugging within 2 h at start-up. Production machines with 24 or 36 fibres per spinneret exhibit bore collapse unless the lumen quench flow is balanced to within ±5% across the die face. Hollow-fibre membranes are tested under ISO 29463-1:2021 for air filtration and ASTM F316-03 for pore-size integrity; food-contact extraction tests follow EC 10/2011. The product is assembled into membrane contactors and gas transfer modules for industrial water deaeration, air humidification, and alkaline electrolyte degassing.
Competitive Celanese UHMW-PE 4550 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!