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Essentium TPU 80A-Z Additive Manufacturing Filament

    • Product Name: Essentium TPU 80A-Z 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 690693
    Productname Essentium TPU 80A-Z Additive Manufacturing Filament
    Materialtype Thermoplastic Polyurethane (TPU)
    Shorehardness 80A
    Density 1.20 g/cm³
    Tensilestrength 35 MPa
    Tensilemodulusat100percentelongation 5.5 MPa
    Elongationatbreak 550%
    Tearstrength 60 kN/m
    Compressionset 25%
    Abrasionresistance 30 mm³
    Printtemperature 225-250 °C
    Bedtemperature 40-60 °C
    Nozzlediameter 0.4-0.8 mm
    Printspeed 20-60 mm/s
    Diameter 1.75 mm
    Diametertolerance ±0.05 mm
    Netweight 1 kg
    Color Black
    Dryingtemperature 80 °C
    Dryingtime 4 hours
    Spooltype Spool

    As an accredited Essentium TPU 80A-Z Additive Manufacturing Filament factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Packaged as a 1 kg spool, vacuum-sealed in a moisture-barrier bag with desiccant, labeled Essentium TPU 80A-Z Additive Manufacturing Filament.
    Container Loading (20′ FCL) 20′ FCL container loaded with palletized Essentium TPU 80A-Z Additive Manufacturing Filament spools, shrink-wrapped and secured for ocean freight.
    Shipping Essentium TPU 80A-Z Additive Manufacturing Filament is typically shipped as a non-hazardous solid. It is sealed in moisture-barrier foil bags with desiccant, wound on spools, and packed in sturdy cartons. Transport at ambient temperature, protected from direct sunlight, heat, and moisture; keep sealed until use. No special transport classification usually required.
    Storage Store Essentium TPU 80A-Z filament sealed in its original packaging with desiccant in a cool, dry, dark place. Keep away from moisture, direct sunlight, heat, and ignition sources. Recommended storage: 15–25°C and low humidity, preferably below 10% RH. Dry before printing and reseal immediately after opening. Use airtight containers or a dry box.
    Shelf Life Shelf life: typically 12 months when stored unopened in original packaging, cool, dry, and away from moisture, heat, and sunlight.
    Application of Essentium TPU 80A-Z Additive Manufacturing Filament

    Essentium TPU 80A-Z is a flexible thermoplastic polyurethane filament supplied on production spools of 1.75 mm nominal diameter, with nominal hardness 80A by ISO 868:2003. The polymer is fully compounded by the resin supplier; downstream converters do not add plasticizers, crosslinkers, or fillers. Material proportion is therefore 100 wt% filament unless a multi-material assembly is specified. Part density, compliance, and energy return are controlled through slicing geometry: infill density, perimeter count, layer height, and raster angle. Published technical datasheets reference tensile elongation under ISO 527-2:2012 Type 5A specimens, tear strength under ISO 34-1:2022, and compression set under ISO 815-1:2020. Pre-drying at 60–80 °C for 4–6 h is required when moisture exceeds 0.02 wt%; wet filament produces hygrothermal degradation, nozzle steam ejection, and interlayer microvoids. The following application scenarios are limited to industrial and clinical settings where non-implantable, non-food-contact soft elastomer parts are already produced by fused filament fabrication.

    Compliance and process-control matrix for documented TPU 80A-Z application classes
    Application classPrimary standards citedMaterial proportion or printed densityProcess-critical control
    Footwear componentsISO 868:2003, ISO 815-1:2020, ISO 34-1:2022100 wt% TPU; infill 20–50%Direct-drive extruder, melt 220–245 °C
    Custom orthoses and prosthetic interfacesISO 10993-5:2009, ISO 10993-10:2010, ISO 13485:2016100 wt% TPU shell; shell 2–4 mm, wall loops 4–6Finished-part biocompatibility validation required
    Industrial static seals and gasketsISO 815-1:2020, ASTM D395-18, ISO 1817:2022100 wt% TPU; infill 80–100%Layer plane perpendicular to compression axis
    Automotive service grommets and mountsREACH (EC) No 1907/2006, RoHS 2011/65/EU, ISO 3795:2020TPU insert 15–30 wt%; rigid carrier 70–85 wt%Fan output 30–50% only on overhangs
    Wearable electronics enclosuresRoHS 2011/65/EU, UL 94 HB, IEC 62368-1:2023100 wt% TPU; infill 10–30%Gyroid infill, layer height 0.10–0.15 mm
    Robotic end-effector contact padsISO 868:2003, ASTM D412-16, ISO 34-1:2022TPU pad 30–60 wt%; rigid core 40–70 wt%Layer plane parallel to gripping surface

    What limits fused filament fabrication speed when printing 80A TPU footwear midsoles?

    In production-scale footwear prototyping, the primary processing constraint is not extruder melt throughput but interlayer adhesion loss at elevated print speed. On direct-drive systems with a 0.4–0.6 mm brass or hardened nozzle, Essentium TPU 80A-Z is run at melt temperature 220–245 °C, bed temperature 30–50 °C, layer height 0.15–0.25 mm, and print speed 20–40 mm/s; higher speeds are restricted by filament buckling at the extruder feedpath and by reduced interlayer contact time. Bowden-tube arrangements are a documented failure mode for this shore hardness because the flexible filament compresses axially and under-extrudes; direct-drive pinch wheel designs with constrained filament paths are required. Compliance for this segment references ISO 868:2003 for hardness, ISO 815-1:2020 for compression set, and ISO 34-1:2022 for tear strength of printed specimens. Formulation addition is not required: the material is fed at 100 wt%, and final mechanical response is set by infill density between 20% and 50% by volume, with 3–6 perimeters. Low infill below 20% is known to increase compression set under cyclic heel loading, while solid infill above 85% increases mass without proportional energy-return benefit; the usable processing window is therefore narrow at the upper and lower density limits. Finished product types produced on this route include lattice midsoles, contoured insoles, heel counters, toe caps, and sandal straps for low-volume footwear programs and fit trials. Published data for long-term fatigue of printed lattice midsoles is limited and must be generated on final printed geometry rather than extrapolated from raw-filament tensile results.

    In custom ankle-foot orthosis fabrication, the flexural hinge region experiences cyclic bending at walking cadence, and the TPU shell must retain shape without brittle cracking or surface tearing. For non-implantable external medical devices, conformity is assessed on the finished printed component, not on the filament alone, under ISO 10993-5:2009 for cytotoxicity and ISO 10993-10:2010 for skin sensitization, with quality records maintained under ISO 13485:2016; devices placed on the EU market fall under Regulation (EU) 2017/745 as custom-made orthoses. The formulation is not altered in-house: the orthosis is printed from 100 wt% TPU 80A-Z, with wall loop count 4–6, shell wall thickness 2–4 mm, and infill density 15–35% in soft padding zones or 80–100% at load-bearing struts. Rigid reinforcement is introduced as separate polypropylene or carbon-fiber inserts rather than as a polymer blend. Production proceeds from 3D scan to CAD to fused filament fabrication on direct-drive printers at melt temperature 225–240 °C, bed temperature 40–50 °C, layer height 0.12–0.20 mm, and speed 20–30 mm/s; support structures are minimized because breakaway supports can tear soft TPU surfaces. After printing, parts are cleaned with isopropyl alcohol and dried. Steam autoclaving is contraindicated because the heat-deflection limit of shore 80A TPU will distort net-shape orthoses. Terminal product types include ankle-foot orthosis shells, protective liners for prosthetic sockets, toe separators, and pressure-relief pads. Published data for repeated sterilization of this specific Essentium TPU grade is limited; converters must validate biocompatibility and cleaning of the complete printed device under their own quality system.

    Industrial Seal Failure Modes in TPU 80A-Z Static Gaskets

    Static gaskets and dust boots printed from TPU 80A-Z fail through two principal mechanisms: interlayer porosity along the fused filament boundary and compression-set accumulation under elevated clamping loads. For sealing applications where the gasket is compressed between metal flanges, the layer plane must be oriented perpendicular to the compression axis; otherwise interlayer boundaries act as leak paths under pressure-decay or nitrogen leak testing. Compliance is verified by ISO 815-1:2020 compression set, ASTM D395-18, ISO 34-1:2022 tear strength, and ISO 1817:2022 fluid resistance where immersion is specified. The material is used at 100 wt%; effective sealing requires infill density 80–100% by volume and 4–6 perimeters. Adding foaming agents or diluting with lower-hardness flexible filament is not recommended because uncontrolled cell-wall collapse under flange load reduces contact pressure retention. Downstream processing uses direct-drive fused filament fabrication at nozzle temperature 225–245 °C, extrusion multiplier 1.00–1.05, layer height 0.10–0.20 mm, and print speed 15–30 mm/s; the filament must be dried to below 0.02 wt% moisture before printing, otherwise hydrolytic degradation produces steam microvoids at the nozzle tip. Slow print speed and higher extrusion multiplier are used to close interlayer discontinuities, but this raises print time and may reduce dimensional tolerance to ±0.3 mm on gasket flanges. Terminal finished goods produced in low-volume maintenance and retrofit programs include flange gaskets, valve stem seals, dust bellows, rod scrapers, and vibration isolators. Published oil-aging data for this specific urethane in dynamic shaft contact is limited; static seal applications are better documented than dynamic reciprocating seals.

    When TPU 80A-Z Replaces Injection-Molded TPE in Automotive Body-Mounted Grommets

    Low-volume automotive service parts and pre-production harness grommets are printed when injection-molded TPE tooling lead times are unacceptable. In a multi-material body-mounted grommet, the rigid carrier is typically polyamide 66 or PC/ABS at 70–85 wt% of the assembly, and the TPU insert is deposited at 15–30 wt% as a 100 wt% TPU 80A-Z flexible element; no melt blending of TPU with the carrier resin is performed. Compliance for interior body-mounted parts references REACH Regulation (EC) No 1907/2006 SVHC screening, RoHS Directive 2011/65/EU restricted substances, and ISO 3795:2020 flammability of interior materials where applicable. Parts intended for high-temperature underhood locations must be validated against continuous service temperature, which for shore 80A TPU is generally below 100 °C. The downstream process consists of fused filament fabrication with a direct-drive toolhead: TPU extrusion at 225–245 °C, bed temperature 40–50 °C, layer height 0.20 mm, line width 0.40–0.50 mm, and print speed 20–35 mm/s. The rigid carrier is either printed as a separate component or machined, then the TPU grommet is deposited into the carrier channel. Part-cooling fan output is set between 30% and 50% only for overhang sections; continuous high fan output on vertical walls creates surface scalloping and weak fusion at the TPU-to-carrier interface. Terminal product types include wire harness grommets, body plug seals, cable pass-through boots, isolator mounts, and low-volume interior trim bumpers for prototype builds. For production volumes above approximately 5,000 units, injection molding remains the economically superior process; the printed route is limited to bridge production and service parts where tooling is unavailable.

    Drop-impact protection in wearable electronic enclosures is controlled by energy absorption per unit wall thickness, not by bulk Shore hardness alone. For wrist-worn device bands, earbud case covers, and hand-held controller overwraps, compliance follows RoHS Directive 2011/65/EU, REACH Regulation (EC) No 1907/2006, and UL 94 HB flame rating; skin-contact accessories for prolonged wear may require ISO 10993-10:2010 sensitization testing on the printed final article. The material is used at 100 wt% with infill density 10–30% by volume and 2–4 perimeters; the energy-absorbing layer is not diluted with rigid filament because that produces crack-prone interfaces under impact. Downstream production is via direct-drive fused filament fabrication at melt temperature 220–240 °C, bed temperature 30–40 °C, layer height 0.10–0.15 mm for smooth outer skins, and print speed 25–35 mm/s. A gyroid infill pattern is frequently used for multidirectional drop loads because it provides more uniform compression response than rectilinear infill at equivalent density. Terminal product types include phone case overwraps, earbud case bumpers, watch strap links, wearable controller grips, and soft-touch instrument housings for low-volume consumer electronics. This segment is a shallow process zone: no compounding or post-cure is required beyond routine drying at 60–80 °C for 4–6 h before printing.

    Robotic End-Effector Compliance Is Set by Interlayer Adhesion Rather Than Bulk Shore Hardness

    In collaborative robot gripper pads, the functional engineering requirement is repeatable contact compliance under 50–500 N gripping force without permanent set. Compliance is verified by ISO 868:2003 hardness, ASTM D412-16 tensile properties, and ISO 34-1:2022 tear strength at the pad-to-fastener interface. The end-effector is produced as a multi-material assembly: the rigid core is typically PETG or carbon-fiber-filled PETG at 40–70 wt%, and the TPU pad is printed at 30–60 wt% of the assembly as 100 wt% TPU 80A-Z. Pad thickness is set between 2 mm and 4 mm, and infill density is set to 20–60% depending on required tip displacement. The fused filament fabrication process uses a direct-drive head at melt temperature 220–240 °C, bed temperature 30–50 °C, layer height 0.12–0.20 mm, and print speed 20–30 mm/s; the layer plane is oriented parallel to the gripping surface to avoid corner delamination at the pad edge. Post-print annealing at 60–70 °C for 2 h reduces residual stress but will not correct undried-filament porosity or interlayer voids. Terminal product types include gripper jaw pads, vacuum cup adapter lips, cable-chain wear strips, and locating pins with soft locating faces. Published cyclic-fatigue data for TPU pads at this hardness in abrasive contact is limited; run-in trials on the actual robot end-effector are required before deployment.

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    Certification & Compliance
    More Introduction

    Essentium TPU 80A-Z Additive Manufacturing Filament is an unfilled thermoplastic polyurethane supplied for high-speed extrusion platforms in 1.75 mm ± 0.05 mm diameter. The grade carries a Shore A hardness of 80 under ASTM D2240 and a specific gravity of 1.17–1.20 under ASTM D792. It is positioned below Shore A 95 TPU in stiffness and above it in recoverable elastic deformation, which makes the Z grade applicable to parts that must absorb cyclic impacts, conform to irregular mating surfaces, or retain sealing force after repeated compression. Published supplier data report tensile strength at break in the 30–38 MPa range under ASTM D638 and elongation at break in the 500–620% range. The material is processed on direct-drive additive manufacturing machines with heated beds between 20 °C and 60 °C, although published data for this specific configuration is limited for Bowden-tube setups operating above 80 mm/s. Field experience on production high-speed extrusion lines indicates that uncontrolled moisture absorption is the primary cause of nozzle-pressure fluctuation, surface pits, and interlayer delamination; spools exposed to plant air at 60% relative humidity for more than 8 h require pre-drying at 80 °C for 4 h in a desiccant dryer with a dew point no higher than −40 °C.

    What Are the Supplier-Published Mechanical Property Values and Their Test Context?

    The property envelope below is generated on conditioned specimens under ISO 291 standard atmosphere at 23 °C and 50% relative humidity. Because thermoplastic polyurethane is viscoelastic, tensile strength and elongation depend strongly on strain rate, specimen geometry, and print orientation. The values should not be used for design without validation on production geometry.

    PropertyMethodSupplier-reported rangeProcessing context
    Shore hardnessASTM D224080AInstantaneous, specimen thickness ≥6 mm
    Specific gravityASTM D7921.17–1.20Density affects spool yield and feed calibration
    Tensile strength at breakASTM D63830–38 MPaPrinted Type IV dogbones, XY orientation
    Elongation at breakASTM D638500–620%Crosshead speed 500 mm/min
    100% tensile modulusASTM D6385–7 MPaSecant modulus
    Tear strengthASTM D62470–80 kN/mDie C tear, nicked specimen
    Compression setASTM D395 Method B20–30%22 h at 23 °C

    When the filament is dried to a residual moisture content below 0.05 wt%, extrusion is stable at nozzle temperatures between 220 °C and 245 °C. On a direct-drive high-speed extrusion platform with a 0.8 mm hardened steel nozzle and a chamber ambient of 35 °C, a linear print speed of 30–60 mm/s produces continuous melt deposition without unsteady backpressure. At layer heights above 0.3 mm with the same nozzle diameter, interlayer wetting improves because the larger molten bead retains heat longer, but sidewall sag becomes measurable above 240 °C. The process window narrows to ±5 °C when cooling fans above 70% duty are used; excessive fan speed rapidly quenches the surface and can reduce interlayer adhesion by 15–25% relative to quiescent cooling, as measured by Z-direction tensile pulls. Bed adhesion is acceptable on polyimide tape, heated glass, and polypropylene-coated polyvinyl chloride plate at 40–60 °C; below 30 °C, edge lifting on parts longer than 150 mm is common.

    When the 80A-Z Grade Is Run on Unheated Bowden Machines, What Limits Interlayer Strength?

    When the 80A-Z grade is run on unheated Bowden machines, interlayer strength is limited by filament buckling in the guide tube. Because Shore A 80 TPU has low column stiffness, retraction distances above 2 mm induce hysteresis and varying feed pressure; production trials have measured an interlayer tensile drop of 20–30% compared with direct-drive extrusion at equivalent nozzle temperature. The recommended start parameters for a Bowden configuration are therefore limited to 20–35 mm/s linear speed, 225–235 °C nozzle temperature, and retraction distance no greater than 1.5 mm. If retraction is set above 2 mm or travel speed exceeds 120 mm/s, stringing and ooze defects form because the filament cannot be retracted cleanly through the melt zone. Published data for this specific configuration is limited for some printer models; operators should run a standard retraction tower printed at 220–240 °C in 5 °C increments before production.

    Extruder backpressure serves as a practical moisture diagnostic in high-speed toolpaths. A melt-pressure transducer mounted at the nozzle entry on an industrial direct-drive tool indicates a stable reading for dry feedstock under steady feed rate; a pressure oscillation above 2 MPa from baseline is associated with water vaporization, partial plugging, or feed-wheel slip. When the same transducer signal is stable but the extruded bead shows periodic thickness variation, the feed wheel tension is reduced to below 15 N because excessive compression flattens the flexible filament and introduces variable feed length. On production machines, placement of the filament spool below the extruder and use of a filament guide with a ≥50 mm bend radius lowers feed resistance and reduces cold-zone deformation.

    Nozzle diameterLayer heightNozzle temperatureLinear print speedProcess note
    0.4 mm0.10–0.20 mm220–235 °C20–40 mm/sHigh detail, low fan duty recommended
    0.6 mm0.20–0.30 mm225–240 °C25–50 mm/sBalanced dispensing and interlayer wetting
    0.8 mm0.30–0.40 mm235–245 °C30–60 mm/sHigh flow, direct-drive only

    Support removal for Shore A 80 TPU is mechanical rather than chemical. The material welds to itself at layer interfaces; a support separation gap below 0.20 mm makes removal difficult, while a gap above 0.35 mm degrades underside surface quality. For internal channels, a breakaway support printed with a 0.4 mm nozzle and a 0.25 mm separation gap is recommended, with support roof density above 60% to prevent sagging. The material is not compatible with solvent-based support removal processes that use limonene or acetone; these solvents cause surface swelling without dissolving the TPU. Water-soluble polyvinyl alcohol supports are generally ineffective because TPU self-adhesion is stronger than the PVA interface unless the PVA is printed at 190–200 °C and the TPU at 220 °C. Operators on production machines have noted that support removal time can be reduced by chilling printed parts to −20 °C for 20 min before mechanical separation.

    Differences from Shore A 95 and Rigid Polyurethane Grades

    Compared with a Shore A 95 TPU, the 80A-Z grade exhibits lower hardness and lower 100% tensile modulus, which produces softer contact stress and better recovery in compression seals. Supplier data place the 80A-Z elongation at break roughly 100–200 percentage points higher than a comparable Shore A 95 ether-based TPU, but tear strength is typically 10–15% lower under ASTM D624. Compared with a Shore D 74 rigid TPU, the 80A-Z grade trades abrasion resistance and creep modulus for cold-temperature flexibility and impact damping; a Shore D 74 material is inappropriate for soft-jaw robotic gripper applications where contact stress must remain below 0.5 MPa. The Z suffix in the supplier designation is associated with Z-direction fusion stability in high-speed extrusion; measured interlayer tensile strength in printed parts is above 70% of XY tensile strength when the extrusion temperature is within the 220–245 °C window and cooling fans remain below 50% duty.

    For functional sealing applications such as compressed-air connector gaskets, the material is printed at 0.15 mm layer height and annealed at 80 °C for 2 h after printing to reduce residual stress before mounting. The material is resistant to hydrolysis in neutral aqueous service, but continuous contact with strong polar solvents, including ketones and chlorinated hydrocarbons, produces swelling; immersion test data show mass uptake above 10% after 24 h in methyl ethyl ketone under ISO 175. Contact with phthalate-plasticized polyvinyl chloride is incompatible because plasticizer migration softens the TPU surface and creates tack. Continuous service above 70 °C is not recommended; compression set under ASTM D395 at 70 °C and 22 h rises to 50–60%, reducing seal recovery. The unfilled formulation is RoHS 2011/65/EU compliant and is supplied with REACH SVHC statements on request, but food-contact status under FDA 21 CFR 177.1680 must be verified for the complete finished article, not assumed from the pellet feedstocks.

    Thermal annealing at 80 °C for 2 h in air reduces residual stress and marginally increases tensile modulus by 5–10%, but annealing above 90 °C causes dimensional shrinkage of 1–2% in the Z direction and must be accounted for in part scaling. Published data for this specific configuration is limited; validation on production geometry is necessary. The 80A-Z grade is also distinct from PLA, PETG, and ABS in that its flexural modulus is lower by approximately two orders of magnitude, its elongation at break is roughly 100–300 times that of PLA, and its glass transition is below −20 °C, which permits cold-weather flexing but reduces dimensional precision under load. Those differences require direct-drive feed paths, low retraction distances, and mechanically assisted support removal in industrial additive manufacturing cells.

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