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Essentium TPU 90A Additive Manufacturing Filament

    • Product Name: Essentium TPU 90A Additive Manufacturing Filament
    • 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 939600
    Product Name Essentium TPU 90A Additive Manufacturing Filament
    Material Type Thermoplastic Polyurethane (TPU)
    Shore Hardness 90A
    Tensile Strength 35 MPa
    Elongation At Break 500%
    Density 1.20 g/cm³
    Flexural Modulus 80 MPa
    Tear Strength 90 kN/m
    Compression Set 25%
    Nozzle Temperature 220-250 °C
    Bed Temperature 40-60 °C
    Diameter 1.75 mm / 2.85 mm
    Net Weight 1 kg
    Color Black, Natural
    Drying Temperature 80 °C
    Drying Time 4 hours

    As an accredited Essentium TPU 90A Additive Manufacturing Filament factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing One 1 kg spool of Essentium TPU 90A Additive Manufacturing Filament in a sealed moisture-barrier bag with desiccant and labeled box.
    Container Loading (20′ FCL) 20′ FCL container loaded with palletized Essentium TPU 90A Additive Manufacturing Filament spools, moisture-barrier wrapped and secured for ocean transport.
    Shipping Essentium TPU 90A Additive Manufacturing Filament is shipped as a non-hazardous, non-regulated article. It is packaged in sealed spools with desiccant, protected from moisture, UV, and physical damage. No UN number, hazard class, or special transport requirements apply. Follow standard handling and store in a cool, dry environment.
    Storage Store Essentium TPU 90A Additive Manufacturing Filament in a cool, dry, well-ventilated area away from direct sunlight, heat, and incompatible materials. Keep it in its original sealed packaging or an airtight dry box with fresh desiccant. Maintain low humidity, ideally below 20% RH, at 15–25°C. Reseal promptly after use; protect from moisture, dust, and UV exposure. Ensure containers are clean, labeled, and tightly closed.
    Shelf Life 12 months from manufacture when stored unopened in original packaging at 15–25°C, away from moisture, heat, and direct sunlight.
    Application of Essentium TPU 90A Additive Manufacturing Filament

    Orthotic footbed production on fused filament fabrication platforms begins with drying the filament at 70°C for 4 h in a desiccant dryer with a dew point below -40°C. Residual moisture above 0.03 wt% reduces interlayer fusion because steam escapes from the melt at the nozzle tip and creates microvoids. The print profile uses a 0.4 mm hardened steel nozzle, an extrusion temperature of 220°C to 240°C, a bed temperature of 40°C to 60°C, and a layer height of 0.15 mm to 0.20 mm. For a footbed with a patient-specific stiffness, the infill is set to a gyroid pattern at 35% to 55% after validating calcaneal and metatarsal pressure zones; the shell count is 3 to 4 perimeters to prevent cushion core leakage. Hardness of the finished shell is checked per ASTM D2240-15e1; if the composite lattice falls below a prescribed Shore A threshold that matches the orthotic prescription, infill density is changed instead of switching material. Skin-contact articles require assessment under ISO 10993-5 and ISO 10993-10, and the filament supplier does not provide medical device clearance. Under cyclic loading at 5 Hz in a servohydraulic tester with 25% strain, printed TPU lattice specimens show temperature-dependent hysteresis; end-use temperature above 50°C can soften 90A TPU and reduce arch support. Production-scale printing of 40 pairs on a belt-fed printer requires controlling chamber humidity below 40% RH to maintain consistency across the lot. The terminal article is a custom insole or footbed prototype, not a finished medical device.

    Can a 90A TPU Extrudate Hold Pressure in a Pneumatically Actuated Bellows?

    Published data for this specific configuration is limited; sealing performance must be validated on the exact printed geometry. The main leakage path is interlayer, not through-thickness. Interlayer adhesion is controlled by a processing window of ±5°C around 235°C; below 230°C melt viscosity rises and above 240°C hydrolysis voids appear. To reduce leakage, the filament is dried at 70°C for 4 h and printed through a direct-drive extruder with a constrained filament path, using a 0.4 mm nozzle at 235°C to 240°C, layer height 0.10 mm to 0.15 mm, and print speed 15 mm/s to 25 mm/s. A flow multiplier of 1.05 to 1.10 is used to press the bead into the previous layer. Cooling fan is limited to 20% to 30% to avoid quenching before interdiffusion. On Bowden systems, retraction distance must be limited to 2.0 mm and retraction speed to 20 mm/s; higher values pull molten TPU into the cold zone and create an irregular bead. For a bladder with 2.0 mm wall thickness, 4 to 5 perimeters are specified, with seam placement randomized or aligned along the neutral axis of the bellows. The actuator is pressurized with air to 30 kPa initially; pressure decay of more than 5 kPa over 60 s indicates a leak that is typically located by dip testing in a water bath. Burst pressure of a printed TPU bladder is not a fixed material property; it depends on wall thickness, infill, and layer adhesion. The terminal product is a fabric-reinforced soft actuator where the printed TPU bladder is embedded in a woven sleeve. Compliance for pneumatic components can reference ISO 6358-1 for gas flow performance and ISO 1431-1 for ozone resistance when exposed to industrial environments. Low-pressure operation below 100 kPa is a conservative boundary; high-pressure pneumatic service requires a reinforced elastomer specification.

    Low-pressure enclosure sealing uses printed TPU 90A gaskets as replacements for die-cut elastomer sheet stock when geometry includes sharp corners or through-holes. The part is printed flat, with the sealing face parallel to the build plate, a 0.4 mm nozzle, a layer height of 0.15 mm, and 100% solid infill. Shell count is set to 2 to 3; a single-perimeter gasket is avoided because seam voids become leak channels. The gasket is compressed 15% to 25% of its original thickness between rigid flanges; at 90A Shore hardness, the compressive stress and recovery behavior are evaluated under ASTM D395-18 Method B for compression set after 22 h at 70°C. Ingress protection is validated according to IEC 60529:2013 for the specific enclosure, not by the filament alone. Chemical exposure must be checked for each process fluid; if the TPU soft segment is polyester-based, contact with hot water above 60°C or strong alkaline cleaning agents may induce hydrolysis. Additive manufacturing also creates anisotropic elongation; tensile specimens printed in X-Y and Z directions per ASTM D638-14 can differ by more than 30%, so the gasket flange should orient the main tensile load along the X-Y plane. In production, a batch of 10 gaskets printed sequentially shows thickness variation below 0.05 mm only when bed leveling and first-layer height are controlled to 0.2 mm. The terminal product is a custom access cover gasket for enclosures with nonstandard cutouts.

    When a Handheld Enclosure Requires Drop-Impact Protection Without Polycarbonate Overmolding

    TPU 90A is used as a protective boot for data collectors, barcode readers, and portable gas detectors. The part is printed at 0.20 mm layer height with 20% to 35% triangular infill and 2.0 mm to 3.0 mm wall thickness. Drop testing per IEC 60068-2-31:2008 free-fall procedure is used to verify protection; the material does not prevent display failure if strain is transferred through a rigid frame. Hardness is 90A, and energy absorption is derived from elongation at break in ASTM D638-14 rather than from a filler system. Corners are reinforced locally by adding 4 perimeters and 45% infill at the slice level; a uniform infill is insufficient because maximum principal strain concentrates at the corner radius. Post-print annealing at 80°C for 2 h reduces residual stress but can shrink the inner pocket by 0.5% to 1.5%, so the CAD model must include compensation when tight snap-fit tolerances are required. RoHS recast 2011/65/EU and REACH SVHC obligations apply to the final product; the filament supplier’s raw material declaration should be requested for each color batch. The terminal product is a low-volume protective boot for field instrumentation.

    Drone gimbal isolation parts printed from 90A TPU require tuning of dynamic stiffness rather than static hardness alone. A gyroid infill at 40% to 60% with a cell size of 3.0 mm to 5.0 mm produces a nonlinear compressive response that isolates a 200 g camera payload from motor vibration. The part is printed at 0.15 mm layer height, 230°C, with an enclosure temperature below 35°C to limit crystallization. The natural frequency of the isolator assembly is measured with an accelerometer and compared against the motor excitation range; for a 4-quadcopter configuration, a design target below 30 Hz is common. Mechanical damping of TPU is strongly frequency-dependent; published reports on 90A TPU dynamic mechanical analysis show tan delta values in the glass-rubber transition region, but end-use temperatures below 60°C are required to avoid thermal softening. The terminal product is a set of four compression isolators installed between the gimbal plate and the airframe. No aerospace qualification is claimed from the filament alone.

    Low-speed flexible couplings and anti-vibration bellows for laboratory automation

    Printing flexible couplings for laboratory robots uses TPU 90A where misalignment absorption is needed. The coupling is printed in a single piece with a solid center section and 0.40 mm thick diaphragm elements, using 0.10 mm layer height and 235°C to maximize interlayer adhesion. For a shaft-to-shaft coupling, the hub is printed at 100% infill while the flexural hinge is set to 50% gyroid infill to create a stiffness gradient. Torsional stiffness is measured by clamping one end and applying a known torque; published data for this specific configuration is limited, so the design is iterated with torque values up to 0.5 N·m. Creep under constant torque at 23°C is a failure mode; TPU 90A can creep under continuous load, which affects centering accuracy. The completed coupling is tested for runout and backlash on the robot axis; dimensional tolerance of the involved bore is held to ±0.05 mm by post-print drilling or heat-set insert placement. Compliance with machinery safety can follow ISO 12100:2010 for risk assessment, not material certification. The terminal product is a low-speed coupling for a peristaltic pump or small robotic actuator.

    Automotive interior harness assemblies using additively manufactured cable guides require abrasion resistance and fit stability. Essentium TPU 90A is printed at 0.20 mm layer height, 225°C, with 100% solid infill for snap-in grommets. The printed part is exposed to 85°C heat aging for 168 h to verify retention force; this practice is based on OEM interior test methods rather than a single ISO standard. Abrasion is measured with DIN 53516 on a flat printed plaque; values depend on infill and surface roughness, so a control plaque printed under production settings is required. The harness clip or grommet must comply with REACH 1907/2006 and RoHS 2011/65/EU. Flammability for passenger compartment materials is not automatically satisfied; if the article is large enough, test per FMVSS 302 or ISO 3795 is required, and unfilled TPU may not pass without flame-retardant modification. The terminal products are interior wiring routes, trim mounts, and boot seals for door connectors.

    Application familyLayer heightExtrusion temperatureBed temperatureInfillCooling fan
    Orthotic footbed0.15–0.20 mm220–240°C40–60°C35–55% gyroid30–50%
    Pneumatic bellows0.10–0.15 mm235–240°C40–60°C0% bladder / 4–5 perimeters20–30%
    Low-pressure gasket0.15 mm220–230°C40–60°C100% solid40–50%
    Protective boot0.20 mm220–230°C40–60°C20–35% triangular50–70%

    Sports equipment grips are overmolded by printing a thin TPU sleeve that is slipped over a rigid core. The sleeve is printed with 0.10 mm layer height, 230°C, and a wall thickness of 1.5 mm to 2.0 mm. Infill is set to 0%; the sleeve relies on wall stiffness. Surface texture is generated by adjusting seam placement and z-offset to create a fine ridge pattern rather than applying a chemical finish. Durability is evaluated with a rubbing test per ISO 12947-2 for abrasion of textiles or DIN 53516 for elastomer wear; the specific method is selected by the customer. Sweat resistance is evaluated under ISO 105-E04 for color fastness to perspiration on colored filament. Printing 50 sleeves consecutively requires spool-to-spool moisture control, because colorant variations and water uptake change melt viscosity enough to alter surface ridge height by 0.05 mm. The terminal product is a handlebar grip, racquet grip, or rim guard for sports equipment.

    ApplicationPrimary standardsOperational boundary
    Orthotic footbedISO 10993-5, ISO 10993-10, ASTM D2240-15e1Not a finished medical device; continuous service below 50°C
    Pneumatic actuatorISO 6358-1, ISO 1431-1, ASTM D638-14Low pressure below 100 kPa; no high-pressure certification
    Low-pressure gasketIEC 60529:2013, ASTM D395-18, ASTM D638-14Hot water above 60°C can induce hydrolysis in polyester-based TPU
    Protective bootIEC 60068-2-31:2008, REACH 1907/2006, RoHS 2011/65/EUAnnealing shrink 0.5%–1.5% requires CAD compensation
    Drone isolatorISO 6721-1Continuous service below 60°C
    Laboratory couplingISO 12100:2010Torque limited to 0.5 N·m; creep potential at 23°C
    Automotive grommetREACH 1907/2006, RoHS 2011/65/EU, FMVSS 302 or ISO 3795Unfilled TPU may not pass flammability testing without flame-retardant modification
    Sports gripISO 105-E04, DIN 53516Surface texture height shifts by 0.05 mm with moisture or colorant variation
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    Certification & Compliance
    More Introduction

    Essentium TPU 90A Additive Manufacturing Filament is a segmented thermoplastic polyurethane monofilament supplied in nominal diameters of 1.75 mm and 2.85 mm with a Shore hardness of 90A measured according to ISO 868. Manufacturer-published density values are 1.18 g/cm³ to 1.22 g/cm³ under ISO 1183-1. Tensile strength at break lies in the 30 MPa to 40 MPa range when tested as a Type IV specimen under ASTM D638-14, with elongation at break in the 450% to 600% range. The low flexural modulus, typically below 150 MPa under ISO 178, separates the material from rigid AM polymers such as PLA and PETG, while the 90A Shore hardness distinguishes it from softer 60A or 70A TPU grades. The filament is therefore intended for fused filament fabrication of void-filling gaskets, protective bellows, cable strain-relief components, vibration isolators, and wear-tolerant sleeves that require repeated flexural recovery rather than high static stiffness.

    The product is typically supplied on vacuum-sealed spools with desiccant. Dimensional tolerance is held to ±0.05 mm for both filament diameters, and feed-path monitoring is recommended because the elastomer buckles more readily than rigid filament when extruder idler pressure is excessively high. On production-scale filament extrusion lines, batch-to-batch Shore hardness is controlled by blending pellet feedstock with melt flow index variation within ±15%. Twin-screw extruders with L/D ratios of 24:1 to 30:1 and gear pumps are used to maintain ovality and diameter consistency. Nozzle pressure fluctuations greater than 0.5 MPa during downstream fused filament fabrication may indicate non-uniform melt quality, moisture contamination, or feed-gear slip.

    Moisture control is a primary process boundary. The polymer is hygroscopic, and exposure at relative humidity above 40% can increase absorbed water above 0.2%. At melt temperatures, residual moisture hydrolyzes urethane linkages, producing molecular weight loss that appears as nozzle surging, surface roughness, and poor interlayer fusion. A desiccant dryer with a dew point below -40°C is specified for 4 h at 70°C or 2 h at 80°C once the spool has been outside sealed packaging for more than 24 h. In print farms where multiple fused filament fabrication systems operate in unconditioned space, unsealed spools stored at relative humidity above 60% require containment with activated alumina or molecular sieve desiccant. Feeding moist filament into a direct-drive extruder at 235°C can generate steam bubbles within the nozzle, causing intermittent extrusion and weak weld lines.

    What extrusion and moisture parameters define the 90A processing window?

    Extrusion temperatures between 220°C and 240°C are used for a 0.4 mm nozzle. The lower bound is set by melt viscosity and insufficient interlayer diffusion; the upper bound is limited by thermal degradation of urethane linkages and emission of acrid decomposition products. A build plate temperature between 40°C and 60°C is sufficient for first-layer adhesion on polyimide tape, polyetherimide sheet, or glass with polyvinyl alcohol adhesive. An actively heated enclosure is not required for small parts, but tall sections exceeding 100 mm in the Z-axis benefit from a passively heated chamber at 30°C to 40°C to reduce differential shrinkage. Because the filament is a flexible elastomer, a direct-drive extruder is preferred. Bowden systems are limited to print speeds below 20 mm/s; direct-drive systems can operate from 25 mm/s to 40 mm/s without excessive filament buckling. Retraction distance should be reduced to 0.5 mm to 1.5 mm for direct-drive and 2 mm to 3 mm for short Bowden paths, with retraction speed below 20 mm/s. Long retraction pulls air into the melt zone and promotes filament compression and nozzle clogging.

    Volumetric throughput is another limiting factor. For 1.75 mm filament extruded through a 0.4 mm nozzle, the stable flow rate is between 4 mm³/s and 6 mm³/s. Above this range, melt pressure rises sharply, causing feed gear slip and melt leakage around the hot-end heat break. Hardened steel or stainless steel nozzles are specified because tungsten carbide nozzles may generate excessive shear heating in this viscoelastic melt, although published data for this specific configuration is limited. A nozzle temperature tower should be run for each supplier lot because Shore hardness and melt flow index vary within the 90A specification band.

    Melt flow index of TPU 90A measured under ISO 1133-1:2022 at 190°C with a 21.6 kg load is typically below 10 g/10 min, indicating high viscosity relative to PLA. Direct-drive systems with dual-drive extruders should reduce idler pressure to prevent filament deformation. Excessive idler compression increases feed resistance and can generate filament shavings that accumulate in the drive gear. The melt is also sensitive to residence time. At temperatures above 240°C, prolonged residence in the hot end can shift Shore hardness upward and reduce elongation by promoting crosslinking or chain scission, depending on antioxidant package and moisture content.

    Interlayer adhesion is the limiting mechanical variable rather than bulk tensile strength. When printed specimens are tested under ASTM D638-14, Z-direction tensile strength is typically 50% to 80% of XY-direction strength depending on layer height, extrusion multiplier, and cooling fan speed. Layer heights from 0.10 mm to 0.20 mm are used for sealing surfaces. Cooling fans should not exceed 30% for most geometries because excessive surface cooling reduces interlayer diffusion and creates delamination. For dynamic seals and low-pressure gaskets, seam placement should be rotated or randomized to avoid a continuous leak path. Minimum wall thickness for an unreinforced low-pressure gasket is 1.5 mm; thinner sections require higher Shore hardness or composite reinforcement.

    Support structures are difficult to remove from TPU because of localized fusion and deformation during breakaway removal. Soluble support materials are preferred for complex channels and internal cavities. Breakaway supports require shear cuts and are limited to accessible external surfaces. For overhangs, layer times below 10 s can lead to sag and loss of dimensional accuracy. Bridge performance is poor; unsupported bridge lengths above 5 mm usually require supports. Infill patterns with low in-plane connectivity, such as lines or gyroid, are used to retain compliance. Solid walls and high infill above 60% rapidly increase stiffness and reduce elastic recovery.

    Stringing and surface defects are controlled by travel speed, wipe moves, and coast settings. TPU forms melt bridges across travel moves because of its high elongation and low modulus. Travel speed should be set between 150 mm/s and 250 mm/s, with wipe moves enabled where possible. Z-hop above 0.2 mm may cause nozzle ooze and surface hairs. Extra prime amount after retraction should be set between 0.05 mm³ and 0.1 mm³ to compensate for melt compression. Combing within skin can reduce visible travel artifacts but may also create heat concentration near thin walls.

    When 90A Shore hardness is specified instead of rigid PLA, PETG, or ABS

    Rigid AM materials such as PLA and PETG have tensile elongation below 25% and fail before 50% strain under ASTM D638-14. Essentium TPU 90A accepts repeated flexure with high elastic recovery. The substitution is therefore appropriate for cable strain-relief glands, pneumatic actuator bellows, vibration isolators, and conveyor scraper edges. Under cyclic loading, however, TPU exhibits hysteresis, internal heat generation, and compression set. Clamped assemblies must be designed for stress relaxation, because a fixed displacement clamp will lose sealing force over time. The product is not a direct substitute for rigid fixtures when dimensional stability under load is required.

    The flexural modulus of 90A TPU is generally below 150 MPa under ISO 178, compared with 2000 MPa to 3500 MPa for PETG and PLA. Stiffness can be restored by embedding rigid inserts, increasing wall thickness, or printing a rigid skeleton and overmolding with TPU. Compared with a Shore 95A TPU, this grade has lower hardness and higher elongation; compared with Shore 85A TPU, it has higher abrasion resistance and a wider extrusion window because of higher melt viscosity. The choice between polyester-based and polyether-based TPU also affects hydrolysis and oil resistance. The Essentium datasheet should be consulted for backbone chemistry, because polyether grades offer better hydrolysis resistance in humid environments while polyester grades offer better resistance to non-polar oils and fuels.

    The main alternative flexible AM products are Shore 85A, 95A, and Shore 74D TPU grades, thermoplastic copolyesters, and styrenic block copolymers. Compared with Shore 85A TPU, the 90A grade has higher stiffness and better feed reliability; compared with Shore 95A, it has lower durometer and higher elongation. Compared with thermoplastic copolyester elastomers such as Shore 40D to 72D, the TPU has lower print temperatures and softer surface but lower temperature resistance. Compared with silicone thermoset elastomers, the TPU cannot match 200°C continuous service or autoclave stability and requires a thermoplastic processing route.

    Chemical compatibility follows polyurethane behavior. The filament resists non-polar oils, greases, and aliphatic hydrocarbons but is swollen by ketones, esters, chlorinated solvents, and strong acids. Continuous service temperature is usually bounded by Vicat softening near 80°C under ISO 306 A50, with low-temperature flexibility potentially retained to -40°C depending on backbone chemistry. For clamped seals exposed to heat, compression set should be measured under ASTM D395-18 Method B at the expected service temperature. Creep compliance under ASTM D2990 is required if load retention is critical.

    Low-pressure pneumatic seals, bellows for linear rails, cable grommets, and vibration isolators are produced from the grade. Under ISO 815-1 compression set tests, TPU 90A can show 20% to 40% permanent set after 22 h at 70°C depending on formulation. This means dynamic seals require periodic retightening or spring washers. Abrasion loss under ISO 4649 A is usually below 50 mm³, making the material suitable for conveyor scrapers and guides. Tear strength measured under ISO 34-1 B is in the 50 kN/m to 90 kN/m range, which supports edge-loaded gasket retention.

    Compliance, safety, and continuous service limits

    Regulatory compliance for raw resin may include REACH and RoHS 2011/65/EU, but printed parts are not automatically compliant with FDA 21 CFR food-contact provisions. Users requiring medical or food-contact status must validate the printed article after processing because additives, colorants, and surface porosity can affect migration behavior. Thermal decomposition at temperatures above 250°C generates isocyanate decomposition products. Local exhaust ventilation is required when processing in enclosed areas. The safety data sheet for the specific product must be consulted for exposure limits and emergency procedures. Waste filament and purge material are not compostable; disposal should follow local thermoplastic waste regulations.

    PropertyEssentium TPU 90ATypical PLATypical PETGTest method
    Hardness90A80D-85D75D-80DISO 868
    Elongation at break450%-600%3%-8%15%-25%ASTM D638-14
    Flexural modulus50 MPa-150 MPa3000 MPa-3500 MPa2000 MPa-2300 MPaISO 178
    Print bed temperature40°C-60°C50°C-60°C70°C-80°Cmanufacturer data

    On production fused filament fabrication lines, the material is used for low-pressure gaskets and protective bellows. A representative configuration uses a direct-drive extruder with a 0.4 mm hardened steel nozzle, a 0.2 mm layer height, and 235°C extrusion temperature. Gaskets with 2 mm wall thickness are printed with 100% infill and random seam placement. For repeatable clamping, the design should include a compressible rib rather than relying on continuous foam texture. Published data for this specific configuration is limited; users should validate compression set under ASTM D395-18 Method B at service temperature, because TPU loses sealing force if initial compression exceeds 25% and the service temperature remains above 60°C for extended periods.

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