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Ensinger TECAFIL PSU natural - 1,75 mm - Filament Polysulfone

    • Product Name: Ensinger TECAFIL PSU natural - 1,75 mm - Filament Polysulfone
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 999575
    Product Ensinger TECAFIL PSU natural - 1,75 mm - Filament Polysulfone
    Manufacturer Ensinger
    Material Polysulfone (PSU)
    Color Natural
    Filament Diameter 1.75 mm
    Density 1.24 g/cm³
    Tensile Strength 70 MPa
    Elongation At Break 50%
    Tensile Modulus 2600 MPa
    Impact Strength 6 kJ/m²
    Glass Transition Temperature 185 °C
    Heat Deflection Temperature 174 °C
    Continuous Service Temperature 160 °C
    Water Absorption 0.3%
    Printing Temperature 360-400 °C
    Heated Bed Temperature 140-160 °C
    Drying Temperature 120 °C
    Drying Time 4 h
    Chemical Resistance Good against acids, bases, salts, alcohols; poor against aromatic hydrocarbons, ketones, chlorinated solvents

    As an accredited Ensinger TECAFIL PSU natural - 1,75 mm - Filament Polysulfone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing One 500 g spool of Ensinger TECAFIL PSU natural filament, sealed in a moisture-barrier bag with desiccant in a cardboard box.
    Container Loading (20′ FCL) 20′ FCL container loading: Ensinger TECAFIL PSU natural 1.75 mm polysulfone filament, palletized and secured for safe sea transport.
    Shipping Ensinger TECAFIL PSU natural 1.75 mm polysulfone filament ships as a non-hazardous, moisture-sensitive material. Each spool is vacuum-sealed with desiccant, cushioned, and packed in a sturdy carton. Standard parcel carriers apply; tracking included. Store dry, away from heat, UV, and impact. No special dangerous-goods documentation is required. Expedited shipping options may be available.
    Storage Store Ensinger TECAFIL PSU natural – 1.75 mm – Filament Polysulfone in a cool, dry, dark place, preferably in its sealed moisture-barrier bag with desiccant. Keep away from heat, direct sunlight, UV, dust, and chemical vapors. Recommended conditions: 15–25 °C, low humidity. Reseal after use and dry before printing if moisture is absorbed. Use airtight containers; avoid prolonged humid-air exposure.
    Shelf Life Store sealed in original packaging, dry at 15–25°C, protected from moisture and direct sunlight; unopened shelf life typically 24 months.
    Application of Ensinger TECAFIL PSU natural - 1,75 mm - Filament Polysulfone

    For single-use laparoscopic clip applicator prototypes made from TECAFIL PSU natural 1.75 mm filament, the amorphous resin is printed on an actively heated FFF system with chamber air temperature held at 165 °C ± 3 °C and a bed temperature of 170 °C. The glass transition at approximately 187 °C per ISO 11357-2 makes chamber operation below 140 °C a known failure point: interlaminar adhesion drops, and subsequent steam sterilisation at 134 °C for 18 min per ISO 17665-1:2006 produces delamination at hinge-wall intersections. The formulation addition is 100 wt% unfilled natural polysulfone; no plasticiser, impact modifier, or colourant is introduced because low-molecular-weight additives alter the extractables profile under ISO 10993-18 and complicate the biological evaluation plan required by ISO 10993-1:2018, clause 4.1. The printing process uses a 0.4 mm hardened steel nozzle, 0.15 mm layer height, extrusion multiplier 0.96–0.98, and print speed 30–40 mm/s; cooling fans are disabled to reduce residual stress at the applicator slot. On production-intent machines, a layer-start retraction of 0.8 mm at each toolpath transition has been linked to under-extrusion in thin clip arms, and the feedstock must be dried at 150 °C for 4 h to residual moisture below 0.02 wt% before printing. Terminal parts include sterilizable instrument cradles, clip applicator handles, and trocar alignment covers; post-cycle dimensional drift above 0.3 % at hinge bores after 20 steam cycles is considered nonconforming without mechanical reaming.

    What Limits Unfilled PSU in Hot Concentrated Sulfuric Acid Geometries?

    In aqueous acid service, chemical resistance of printed unfilled polysulfone is controlled by layer-boundary permeability, not by the intrinsic resistance of a 3.2 mm injection-moulded plaque tested per ASTM D543-21. Printed parts with 0.20 mm layer height and 20 % infill may exhibit mass uptake that is geometrically higher than solid moulded coupons because the layer interface creates capillary paths; the actual multiplier must be established for each batch using product-specific immersion coupons. Dilute sulfuric acid below 40 % at 25 °C typically produces negligible mass change over 7 days; concentrated 96–98 % sulfuric acid at 80 °C initiates sulfonation, chain scission, and stress cracking in tensile zones above 10 MPa. The formulation addition ratio remains 0 wt% filler, 0 wt% plasticiser, and 0 wt% colourant; glass-fibre addition at 20 wt% is excluded in this wet chemical service because fibre-resin interfacial wicking increases attack along z-layers. Unfilled PSU tensile elongation is approximately 50 % per ISO 527-2 in dry as-moulded condition, but this value drops sharply after acid-induced chain scission. Downstream processing is performed at a melt temperature of 365–380 °C, chamber temperature 165 °C, and a 0.6 mm hardened nozzle to reduce shear heating; after printing, parts are cooled at 0.5 °C/min to 120 °C before removal to reduce residual stress and microcracking. Terminal components include centrifugal pump volute casings for pH 2–11 liquids, valve seats, distributor trays, and sparger nozzles. Published data for long-term FFF polysulfone behaviour in 60 % nitric acid at 60 °C remains limited, so qualification must include in-service exposure on production-intent equipment.

    Pharmaceutical Isolator Manifold Print Protocols

    Within pharmaceutical isolator lines, manifold prototypes are produced from TECAFIL PSU natural for upstream filtered air and buffer transfer points. The material is assessed under USP <661.1> for plastic materials of construction and FDA 21 CFR 177.1655 for polysulfone resins used in repeated-use drug and food contact; the printed part must be accompanied by an extractables study because layer fusion creates surface area and void volume not present in moulded test plaques. The formulation addition is 100 wt% unfilled PSU; if a colourant masterbatch is requested, its addition is limited to 2.0 wt% maximum and the final component is re-evaluated under USP <661.1> total extractables after 121 °C autoclave extraction, not assumed compliant from resin data alone. Production equipment includes an actively heated chamber at 165 °C and a 0.4 mm hardened steel nozzle; printing of fluid channels uses 0.15 mm layer height and 100 % infill to avoid closed-cell porosity that would retain hydrogen peroxide vapour or cleaning agents. Post-print annealing at 165 °C for 2 h in circulating air is carried out before final machining of O-ring grooves. Terminal part types include filter housing brackets, tubing clips, sample port manifolds, and sterile transfer adapters.

    Short-run air ducting replacements produced from TECAFIL PSU natural are assessed under FAR/CS 25.853 Part IV heat release rate using an OSU calorimeter because unfilled PSU at 3.0 mm thickness typically achieves UL 94 V-0; however, the printed geometry's skin-to-core porosity is the limiting variable in vertical burn testing. The formulation addition is 100 wt% natural unfilled PSU, with 0 wt% brominated flame retardant or phosphorus synergist, so wall sections thinner than 2.0 mm can fail the 60 s vertical burn due to thin-wall dripping unless the printed part is post-annealed at 165 °C for 2 h to heal layer boundaries. Printing uses a 0.5 mm nozzle and 0.15 mm layer height with chamber at 170 °C; flange distortion is controlled by 100 % infill and orienting the toolpath perpendicular to the flange plane. Terminal products include overhead air nozzle adapters, oxygen mask panel housings, and galley ventilation duct segments. Published FFF PSU cone calorimeter data per ISO 5660-1 is limited; aerospace qualification must derive peak heat release rate from production-intent panels, not from injection-moulded datasheet values.

    Semiconductor Wet Bench Qualification Establishes Ionic Leaching Limits

    Under SEMI F57-0301 wet bench qualification, wafer handling jigs, insulators, and CMP slurry cassette guides produced from TECAFIL PSU natural require control of metal ion extractables because sodium and potassium surface residues can transfer during wafer processing. The feedstock is used at 100 wt% unfilled PSU with no antistatic or metallic masterbatch; if a colourant or tracer is added at 1.0 wt% maximum, a lot-specific hot deionised water extraction under SEMI F57-0301 is required because printed layer contact area is larger than moulded practice. Processing includes drying at 150 °C for 4 h to residual moisture below 0.02 wt%, printing at 375 °C melt temperature with chamber at 170 °C, and post-print annealing at 165 °C for 2 h in a clean oven. Terminal parts include wafer transport combs, wet bench fixture plates, and CMP retaining ring prototypes; RoHS Directive 2011/65/EU Annex II and REACH SVHC screening apply to all supplied components at assembly level.

    Application sectorCompliance standard / methodKey conditionProcess implication
    Medical device prototypesISO 10993-1:2018, ISO 17665-1:2006134 °C steam, 18 minBiological evaluation plan and post-cycle dimensional inspection required
    Chemical fluid handlingASTM D543-2140 % sulfuric acid, 25 °CLayer-boundary immersion coupons required
    Pharmaceutical isolator componentsUSP <661.1>, FDA 21 CFR 177.1655121 °C autoclave extractionExtractables study on printed geometry required
    Aerospace ductingFAR/CS 25.853 Part IV3.0 mm thicknessOSU heat release from printed panels required
    Semiconductor wet benchSEMI F57-0301, RoHS 2011/65/EUHot deionised water extractionNo metallic masterbatch; lot-specific ion extraction
    Dry food contactEU 10/2011, EN 1186-1:2002, FDA 21 CFR 177.165510 mg/dm² overall migrationRepeated-use condition only; dry particulate below 80 °C

    In dry food powder transport, conveyor scraper blades and valve plugs use TECAFIL PSU natural at 100 wt% unfilled with no plasticizer; EU Regulation (EU) No 10/2011 overall migration limit of 10 mg/dm² must be verified per EN 1186-1:2002, and FDA 21 CFR 177.1655 applies to polysulfone resins used for repeated-use articles. Printing is performed with a 0.6 mm nozzle and 0.2 mm layer height; terminal scrapers are limited to dry particulate service below 80 °C. Published data for high-fat dairy contact above 100 °C is limited.

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    Certification & Compliance
    More Introduction

    Ensinger TECAFIL PSU natural – 1,75 mm – Filament Polysulfone is an unfilled amorphous polysulfone filament supplied on 1.75 mm diameter spools for fused filament fabrication. The base polymer is designated PSU under ISO 1043-1 and belongs to the polyarylsulfone family. The natural grade contains no filler or pigment and produces a translucent appearance. Because the polymer chain contains sulfone and isopropylidene groups, the material exhibits a glass transition temperature near 187 °C and a heat deflection temperature of approximately 174 °C under 1.80 MPa when tested according to ISO 75-2 method A. TECAFIL PSU does not show a melting endotherm; solid-state stiffness and creep resistance are controlled by the amorphous glass transition rather than by crystallinity. This characteristic differentiates the product from semi-crystalline PEEK and polyamide filaments, where crystallization history influences shrinkage, chemical resistance, and post-extrusion dimensional change. The filament is intended for high-temperature fused filament fabrication platforms with a hot end capable of sustained operation at 350 °C to 390 °C, a heated bed at 120 °C to 160 °C, and an actively heated build chamber. Melt viscosity is high relative to PLA and PETG, so direct-drive extruders with hardened steel or brass nozzles of 0.4 mm diameter are common industrial configurations; larger nozzle diameters reduce extrusion backpressure.

    Primary application contexts include functional prototypes, chemical-resistant fixtures, fluid manifolds, medical device housings, and laboratory equipment subjected to repeated steam or chemical disinfection. The unfilled natural grade is selected when translucency is required or when filler-induced nozzle abrasion and filled-anisotropy are unacceptable. Published mechanical values for TECAFIL PSU are typically generated on injection-moulded test plaques rather than on fused-filament parts. Values obtained from printed components vary with raster orientation, extrusion multiplier, interlayer porosity, chamber temperature, and post-print annealing. Therefore, datasheet values should be treated as upper bounds unless parts are printed with fully dense shells and low interlayer void content.

    What Distinguishes Unfilled PSU from PEI and PEEK in High-Temperature Filament Extrusion?

    Unfilled PSU occupies a processing temperature band below polyetherimide and polyetheretherketone but above commodity styrenics and aliphatic polyesters. Its heat deflection temperature of 174 °C is lower than typical unfilled PEI at 200 °C to 210 °C and unfilled PEEK at 260 °C to 280 °C. As a result, PSU can be processed on moderate-cost high-temperature FFF systems, but it is not a direct substitute for PEEK in continuous load-bearing service above 180 °C. Compared with PEI, PSU generally shows lower tensile strength and flexural modulus but improved resistance to hot-water hydrolysis and steam-autoclave stress cracking in many fluid-contact applications. Compared with PEEK, PSU shows lower chemical resistance in aggressive aromatic solvents, ketones, and chlorinated hydrocarbons, but requires lower extrusion temperatures and reduced chamber heating. Compared with PLA, PETG, and ABS, PSU offers higher heat deflection temperature and lower creep at elevated temperature, but requires higher bed and chamber temperatures and stricter moisture control.

    PropertyTest methodTypical published value for unfilled PSU
    DensityISO 1183-11.24 g/cm³
    Tensile strengthISO 527-270 MPa
    Tensile modulusISO 527-22.4 GPa
    Elongation at breakISO 527-25 % to 7 %
    Flexural strengthISO 178105 MPa
    Flexural modulusISO 1782.6 GPa
    Heat deflection temperature A, 1.80 MPaISO 75-2174 °C
    Vicat softening temperature B50ISO 306185 °C
    Water absorption, 24 h at 23 °CISO 620.30 %

    The single-point values in the table are not FFF part performance data. At 0.15 mm to 0.25 mm layer height and high chamber temperature, xy-direction tensile strength can approach injection-moulded values only when interlayer fusion is complete. Z-direction properties are usually lower because layer interfaces are regions of reduced polymer-chain diffusion. Design allowables for printed load-bearing components should therefore be determined by destructive testing according to ISO 527-2 with specimens cut parallel and perpendicular to the build plane.

    When a Heated Chamber Is Absent, Edge-Lifting and Warp Risks Increase

    During deposition, the upper layers cool below the glass transition while the lower layers remain hotter. If the chamber is below 80 °C, the thermal gradient across a large-footprint part can generate interlaminar and interfacial stress sufficient to separate the part from the build sheet. The risk scales with build-plate dimensions because the temperature difference between the deposited layer and the part core increases with footprint. Closed-chamber systems are preferred because they maintain a more uniform part temperature during the print. A chamber temperature of 90 °C to 120 °C reduces the difference between the deposited layer and the part core and lowers z-direction thermal strain. Polyetherimide or polyimide build sheets are used because adhesion must survive bed temperatures of 120 °C to 160 °C; untreated glass or low-temperature polymer sheets are generally insufficient for large PSU parts.

    Extrusion settings are material-, nozzle-, and chamber-specific. A starting window for a 0.4 mm hardened steel nozzle is extruder temperature 350 °C to 380 °C, bed temperature 140 °C to 160 °C, chamber temperature 90 °C to 120 °C, and print speed 20 mm/s to 40 mm/s. Because PSU is amorphous, no holding time is required for crystallisation; however, the part should remain in the chamber until the chamber cools below 100 °C to reduce warping. Layer height of 0.15 mm to 0.25 mm and extrusion multiplier of 1.00 to 1.05 are typical, but calibration with a single-wall test cube is necessary because backpressure and die swell vary with nozzle wear.

    Moisture control before extrusion is a pressure-dependent processing requirement. Polysulfone absorbs water at 23 °C to approximately 0.30 % by mass after 24 h and higher at saturation; at melt temperatures above 350 °C, residual moisture hydrolyses the polymer or flashes at the nozzle, producing splay, voided interlayer boundaries, and diameter swell. The filament should be dried at 120 °C to 140 °C for at least 4 h in a desiccant or vacuum dryer until residual moisture falls below 0.05 %. Spools exposed to relative humidity above 60 % for more than 24 h should be re-dried before extrusion. Sealed storage with desiccant is required for batch-to-batch consistency.

    Thermal, Mechanical, and Chemical Resistance Limits for Fluid-Handling and Autoclave Applications

    The sulfone backbone provides hydrolytic stability and resistance to hot water, dilute acids, and aliphatic alcohols, which is why PSU is used in fluid-handling and laboratory equipment. However, PSU is not universally solvent-resistant. Ketones, chlorinated hydrocarbons, aromatic solvents, and some esters can cause stress crazing or environmental stress cracking. Exposure to acetone, methylene chloride, or methyl ethyl ketone is a known incompatibility. Steam autoclave exposure at 134 °C for 4 min according to ISO 17665 is generally tolerated by fully dense PSU parts, but FFF porosity can retain water and cause delamination or pressure burst during autoclave heating. Polysulfone resin grades may be compliant with FDA 21 CFR 177.1655 for repeat-contact food-use applications when processed under appropriate conditions; compliance of the final printed part is not automatic because surface roughness, residual stress, and contact geometry can alter extraction behaviour. For medical applications, ISO 10993-5 cytotoxicity testing must be conducted on the finished fused-filament part, not on the raw filament alone.

    Filament typeHeat deflection temperature AExtrusion temperatureHeated bedBuild chamber requirement
    Unfilled PSU174 °C350 °C to 390 °C120 °C to 160 °C80 °C to 120 °C active chamber recommended
    Unfilled PEI200 °C to 210 °C370 °C to 410 °C120 °C to 160 °C110 °C to 130 °C active chamber recommended
    Unfilled PEEK260 °C to 280 °C400 °C to 430 °C160 °C to 220 °C150 °C to 200 °C active chamber required
    PLA50 °C to 60 °C195 °C to 220 °C20 °C to 60 °Cnot required

    Compared with glass-filled or mineral-filled polysulfone filaments, the natural unfilled grade eliminates filler and reduces nozzle abrasion, but it also provides lower modulus and higher thermal expansion. Compared with PPSU, the polysulfone product has lower impact strength and lower heat deflection temperature, but it is generally available at lower material cost and requires a moderately lower extrusion temperature. Published data for the specific configuration of TECAFIL PSU natural as printed on high-temperature FFF equipment is limited; qualification should therefore include z-direction tensile testing, autoclave cycling, and chemical immersion tests on the same print parameters intended for production.

    On an FFF platform with a 0.4 mm hardened steel nozzle, direct-drive extruder, polyimide build sheet, and active chamber held at 100 °C, the natural PSU filament is typically run with a nozzle set point of 365 °C and a bed set point of 150 °C. The first layer is deposited at 15 mm/s with an extrusion multiplier of 1.10 to ensure adhesion; subsequent layers are printed at 30 mm/s. Under these conditions, xy-direction tensile bars from fully dense infill can reach 60 MPa to 70 MPa, while z-direction tensile bars often remain below 30 MPa unless the part is annealed at 165 °C for 2 h. The main processing failure modes observed on high-temperature FFF cells are nozzle blockage from degraded material, surface splay from wet filament, and edge-lifting from premature chamber opening. These failure modes are reduced by operating at the lower end of the extrusion temperature window, purging after each job, and verifying moisture loss during drying.

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