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Clariant Thermoplastic Urethane Black 3D Printer Filament

    • Название продукта: Clariant Thermoplastic Urethane Black 3D Printer Filament
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 562239

    Как аккредитованный завод Clariant Thermoplastic Urethane Black 3D Printer Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка One 1 kg spool of Clariant thermoplastic urethane black 3D printer filament, sealed in moisture-barrier bag with desiccant in labeled box.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL containing Clariant Thermoplastic Urethane Black 3D Printer Filament on pallets, shrink-wrapped, braced, and secured for ocean shipment.
    Доставка Clariant Thermoplastic Urethane Black 3D Printer Filament ships on sealed spools in moisture-barrier bags with desiccant, packed in sturdy cartons. Handle as non-hazardous, store dry at 15–30°C, away from sunlight and heat. No special dangerous-goods documentation required under normal transport conditions.
    Хранение Store Clariant Thermoplastic Urethane Black 3D Printer Filament in a cool, dry, well-ventilated area away from direct sunlight, heat, and ignition sources. Keep in its original sealed packaging or an airtight container with desiccant to prevent moisture absorption. Maintain temperatures between 15–25°C and relative humidity below 50%. Separate from strong oxidizers, acids, and bases. Keep containers closed when not in use.
    Срок годности Typical shelf life is 12–24 months when unopened and stored cool, dry, away from moisture, heat, and UV light.
    Применение термопластического уретана Clariant Black 3D Printer Filament

    When short-run footwear midsole production cannot justify steel expanding TPU mould cost below roughly 5,000 pair, the black TPU filament enters manufacturing as a direct-print lattice component rather than an injection-moulded foam equivalent. Feedstock fraction for the printed midsole zone is 100 wt% Clariant Thermoplastic Urethane Black 3D Printer Filament; no pellet compound, azodicarbonamide blowing agent, or chemical crosslinker is introduced at the print cell. Compliance screening covers EU market access under REACH EC 1907/2006 Annex XVII for restricted substances, mechanical characterization under ASTM D638-14 for tensile properties, ISO 7619-1:2010 for Shore A durometer, and ISO 34-1:2015 for tear initiation. If the finished shoe enters safety-footwear categories, final certification is assessed at system level under EN ISO 20345; the printed TPU component alone does not constitute a certificated safety-footwear midsole. Downstream processing uses direct-drive FFF equipment with a 0.4 mm hardened steel nozzle, nominal layer height 0.20 mm, nozzle setpoint 230±10 °C, and bed temperature 45±5 °C on polyetherimide sheet. Lattice cells of gyroid or rhombic dodecahedron geometry occupy 25–40 vol% with strut section not below 1.0 mm; wall collapse during footwear bonding is controlled by keeping unsupported strut length below 3.0 mm. Terminal product types are replacement lattice midsoles, insock cushioning pods, and outsole traction lugs.

    Mechanical validation for this short-run footwear lane requires printed ASTM D638-14 coupons in ZX orientation; hardness test plaques at 6 mm thickness measured under ISO 7619-1:2010 may fall within the typical TPU class range, but published data for this specific Clariant grade is limited, so incoming lot verification should not substitute nominal product-class hardness for measured hardness. Tear strength under ISO 34-1:2015 trouser specimens is specified as incoming batch control because interlayer boundaries in the Z direction can fail at lower extension than bulk coextruded material. Cyclic conditioning at 50% compressive strain for 500 cycles is advised before final modulus evaluation to account for stress softening of the TPU soft-segment domains.

    The principal processing conflict appears when spool moisture has not been reduced to residual moisture ≤0.03 wt%. At 230 °C melt temperature, water vapour nucleates inside thin lattice struts and produces visible surface pitting before bulk tensile loss becomes measurable. Drying in forced air at 80 °C for 4 h is imposed when ambient RH exceeds 55%. Melt residence time in the hotend should be kept below 45 min to limit ester hydrolysis and viscosity shift. Direct-drive extrusion with a melt zone length-to-diameter ratio of at least 15:1 maintains feed control; Bowden feed paths are not recommended for this soft grade because retractions above 1.5 mm generate compressive buckling between drive gear and nozzle. Amine-based chain extenders in any reprocessing or blending step are incompatible without melt rheology screening; no separate stabilizer masterbatch should be assumed compatible solely from generic TPU classifications.

    When Does TPU Replace Injection-Moulded Silicone in High-Vacuum End Effector Cups?

    High-vacuum end-effector cups made from injection-moulded silicone are replaced with TPU when cell operators require geometry variants in batch sizes under 200 units without cutting new silicone tooling. The sealing body is specified at 100 wt% Clariant TPU filament; in a two-part cup assembly, the TPU bellows constitutes 35–50 wt% of the end-effector mass, while the rigid flange is printed from glass-filled polyamide. Material-level compliance for the pneumatic component is assessed under ISO 4414:2010, with REACH EC 1907/2006 and RoHS 2011/65/EU Annex II screening for EU market entry. Downstream deposition uses direct-drive FFF with 0.6 mm hardened steel nozzle, 0.72 mm extrusion width, and 2.4 mm sidewall thickness for cup throat diameters below 20 mm; the build plate is set to 55±5 °C on polyetherimide. After printing, cups are conditioned at 60 °C for 2 h to stabilize the seal lip and reduce surface tack. Finished goods comprise bellow suction cups for glass handling, soft jaws for ceramic green bodies, and vacuum diffuser gaskets.

    On production-scale FFF arrays running 6–10 TPU spools per cell, the dominant unplanned stop is feed-path buckling rather than nozzle clogging. For 1.75 mm filament, a PTFE guide tube with inner diameter 2.0 mm is required to prevent longitudinal compression between spool and drive gear. First-layer curling on polyetherimide sheet below 50 °C bed temperature produces a concave flange and loss of pneumatic sealing; a heated enclosure at 35–40 °C is used in wet-season production to reduce dew-point transients. Ketone or chlorinated solvent service is not recommended because ester-based TPU soft segments swell rapidly; published data for this specific Clariant grade under repeated flex at -10 °C is limited, so cold-room applications require cycle testing before release.

    Inside under-dash and door-harness assembly, low-volume service parts and pilot-build cable routing clips are printed from black TPU instead of maintaining injection-tool inventory for obsolete part numbers. Material addition ratio is 100 wt% TPU for the clip body; in a co-printed harness connector, the TPU anti-abrasion collar is 15–25 wt% of the total assembly with polyamide 12 as the rigid backbone. Vehicle interior material compliance is assessed against RoHS 2011/65/EU Annex II, ELV 2000/53/EC, and REACH EC 1907/2006 SVHC candidate list; flame spread is tested to FMVSS 302 / ISO 3795 at system level. Production uses direct-drive FFF with 0.4 mm hardened nozzle, 0.16 mm layer height, nozzle 235±5 °C, bed 50±5 °C on polyimide adhesive; cooling fan output is limited to 30% because high forced-air flow suppresses interlayer diffusion and increases notch sensitivity. Terminal parts include harness routing clips, grommet sleeves, connector backshell dust covers, and pilot-build cable separators.

    AssessmentStandard / MethodConditionAcceptance Criterion
    Homogeneous material restrictionsRoHS 2011/65/EU Annex IIDigestion and ICP/MS of separated materialPb 1000 ppm, Hg 1000 ppm, Cd 100 ppm, Cr6+ 1000 ppm, PBB/PBDE 1000 ppm
    Burning behaviourFMVSS 302 / ISO 3795Interior material burn rateNot exceeding 100 mm/min
    End-of-life heavy metalsELV 2000/53/EC Annex IIVehicle component materialPb, Cd, Hg, Cr6+ limits per Annex II

    Cumulative carbon black pigmentation in this grade accelerates brass nozzle wear; hardened steel or ruby orifice hardware is warranted after 60 h of throughput. Drying at 80 °C for 4 h before reprocessing of opened spools prevents hydrolysis-induced odour and surface roughness in interior clips, which would otherwise fail automotive OEM subjective appearance checks.

    If Press Shop Edge Protection Converts From Extruded EPDM to TPU Filament Deposition

    Sheet-metal edge guards in short-run stamping cells are printed as continuous flexible U-channels only where extruded EPDM profiles are unavailable in the required short length or custom bend radius. The printed edge guard is 100 wt% TPU; when a rigid polycarbonate backing strip is used for fixture mounting, the TPU profile represents 55–65 wt% of the composed guard. Compliance for the material is tied to machine safety risk assessment under ISO 12100:2010 and to tear initiation after cutting under ISO 34-1:2015; REACH SVHC screening applies for EU import. Deposition uses a 0.8 mm hardened nozzle, 0.40 mm layer height, nozzle 225–235 °C, and bed 45 °C; long U-channel sections are printed flat and folded along the layer-parallel hinge only, never across interlayer bond lines. Terminal finished articles are press shop edge guards, robotic cell bumper strips, and slot covers for sheet-metal storage racks.

    Batch-to-batch Shore A variation of ±2 units does not materially alter fit on 1.0–2.0 mm sheet edges, but sagging occurs when bed temperature exceeds 50 °C and channel leg thickness is below 1.2 mm. Compatibility with water-miscible cutting fluid must be tested by immersion in the specific fluid at 40 °C for 72 h per ISO 1817:2015, because published comparative EPDM-versus-TPU edge-guard data under stamping lubricant exposure is limited.

    Damped Optical Mounts in Low-Volume Gimbal Assemblies

    Gimbal isolation bushes and camera-mount dampers for low-volume uncrewed aerial vehicle production are direct-printed from TPU when elastomer compression moulds cannot deliver the required combination of localised Shore A reduction and geometric clearance after assembly. The damping body is 100 wt% TPU filament; infill density is varied between 40 vol% and 60 vol% to alter stiffness without changing the part envelope. Industry compliance requirements are generally system-level rather than material-level; qualification data for the vibration isolator is generated per ISO 10846-1:2008 for dynamic stiffness of resilient support elements, while electrical equipment materials are screened under RoHS 2011/65/EU Annex II. Deposition uses direct-drive FFF with 0.6 mm nozzle, 0.20 mm layer height, 230±5 °C nozzle and 40–50 °C bed; chamber air is held at 30 °C to prevent warping on thin annular walls. After printing, dampers are conditioned for 24 h at 23±2 °C and 50±10% RH before stiffness measurement to avoid moisture-dependent modulus drift. Finished products are gimbal damper bushes, camera isolation spools, and laser-alignment mounts.

    Dynamic selectivity is controlled by apparent hardness and infill fraction rather than chemical foaming; soft-segment Tg near -40 °C is typical for TPU in this class, but published data for this specific Clariant grade under combined vibration and thermal load is limited. Continuous contact with aromatic hydrocarbon solvents at room temperature is incompatible because plasticiser-free TPU swells; qualification must include ISO 1817:2015 immersion if hydrocarbon exposure is present in the final gimbal service environment.

    Sealing Low-Pressure Hydrostatic Test Fittings Without Compression Mould Tooling

    Seal plates and flange gaskets for non-potable hydrostatic test fixtures are printed from TPU when test pressures remain below 1.0 MPa and water temperature does not exceed 60 °C. The gasket is specified as 100 wt% TPU filament; when a stainless steel compression ring is used, the TPU seal element constitutes 80–90 wt% of the insert mass. Compliance verification is conducted by compression set testing under ISO 815-1:2014 at 70 °C for 24 h and tensile property testing per ISO 37:2017 for elastomer sheets; REACH Annex XVII applies for EU import. Production uses 0.4 mm hardened nozzle, 0.15 mm layer height, 100% rectilinear infill, and a 2.0 mm outer lip to minimize void channel formation. The build plate is polyetherimide at 45 °C; after printing, the gasket is annealed at 60 °C for 2 h and compressed between flat fixture plates for 30 min to set surface flatness. Terminal finished products are hydrostatic test flange gaskets, seal inserts for low-flow test headers, and replacement O-ring back-up plates.

    Potable water service is not implied; positive migrational test data under EU 10/2011 or NSF/ANSI 61 would be required before any drinking-water contact use. Published extractive data for this specific grade in chlorinated cold water is limited, so the material is excluded from potable hydrostatic systems unless supplier migration documentation is obtained.

    Бесплатная цитата

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    Сертификация и соответствие требованиям
    Более подробное введение

    Clariant Thermoplastic Urethane Black 3D Printer Filament is supplied as an unfilled thermoplastic polyurethane monofilament for fused filament fabrication. The black appearance is achieved by compounding carbon black into the urethane matrix prior to filament extrusion, not by surface painting or post-extrusion dyeing. The product is normally offered in 1.75 mm and 2.85 mm diameters, with dimensional uniformity controlled by two-axis laser micrometer rather than by manual spot gauging. Publicly available product-specific data for this Clariant black TPU designation are limited; the numerical ranges in subsequent sections refer to representative unfilled black TPU filament in the 85A–95A Shore hardness class and should not be read as a Clariant certificate of analysis.

    The soft segment chemistry — polyether or polyester — is not always disclosed in the commercial grade name for black TPU filament. This distinction affects hydrolytic stability, oil resistance, low-temperature flexibility, and drying response. A polyester-based urethane typically delivers higher abrasion resistance and better resistance to hydrocarbon oils, while a polyether-based urethane generally retains flexibility at lower temperature and resists hydrolysis in humid environments. The carbon black pigment provides additional UV screening and typically lowers surface resistivity relative to unpigmented TPU; surface resistance should be evaluated by four-point probe under ASTM D257-14 or IEC 62631-3-1 when static dissipation is a design requirement.

    Filament manufacturers usually compound carbon black into TPU with a co-rotating twin-screw extruder having an L/D ratio of 36:1 to 44:1, followed by single-screw filament extrusion using a compression ratio of 2.5:1 to 3.0:1. The black masterbatch is metered at a controlled let-down ratio rather than dry blended to avoid agglomerates. On-line laser diameter measurement and closed-loop take-up speed are used to maintain ovality. These processing details are generic to industrial black TPU feedstock; Clariant’s specific compound formulation is confidential.

    How does residual moisture affect extrusion pressure and interlayer weld strength?

    Urethane filaments absorb atmospheric moisture through polar urethane groups, and moisture levels at equilibrium under 50% relative humidity can reach 0.2 wt% to 0.5 wt% depending on hard segment content and soft segment polarity. Printing without drying is possible only for low-humidity storage conditions; when the water content exceeds roughly 0.05 wt%, the water flashes to steam at the nozzle heated zone, producing intermittent nozzle drool, microporosity in the deposited road, and a measurable reduction in z-direction weld strength. The threshold should be confirmed by Karl Fischer analysis under ISO 15512:2019 if the filament has been exposed to ambient air for more than 24 h or when relative humidity exceeds 60%.

    Pre-drying is therefore a process boundary rather than an optional step. A desiccant dryer with a dew point at or below -40 °C and a setpoint of 80 °C for 4 h to 6 h is typical for industrial unfilled TPU filament. The temperature must remain below the softening point of the urethane; exceeding 90 °C may cause filament blocking and irreversible deformation on the spool. Dried filament should be printed from a sealed dry cabinet or a heated hopper mounted to the extruder, because re-uptake of moisture can occur within 60 min to 120 min in an uncontrolled print room. Under these conditions, extrusion pressure remains stable enough to maintain linear mass flow, and the weld line formed between adjacent roads retains more of the bulk tear strength.

    For moisture-conditioned filament, the failure signature is not a sudden mechanical break but a gradual rise in extrusion motor current and a visible surface texture change on the outer wall because gas bubbles collapse unevenly during solidification. If an enclosed build chamber is not available, a controlled-purge desiccant column can be placed between the spool and the extruder, but it does not remove moisture already present inside the filament core. The only reliable remedy is full re-drying at 80 °C for an additional 4 h to 6 h, followed by immediate processing.

    Print-path mechanics impose a second constraint because the low compressive modulus of urethane filament allows buckling at the drive gear before the material reaches the hot end. A direct-geared extruder with a constrained filament path is preferred; when a Bowden feed is used, the tube should be shortened as much as possible and a low-friction PTFE liner used. Retraction distance should be minimized to 0.8 mm to 2.0 mm at 10 mm/s to 20 mm/s, because long retractions pull soft TPU away from the melt transition region and can produce a void or a surface scar. Extruder idler pressure must be low enough to avoid crushing the filament into an oval cross-section; deformation below the drive gear is a common root cause of inconsistent filament feed. The filament diameter should be re-checked with a micrometer after passing through the extruder if feed slippage occurs.

    The nozzle temperature window for unfilled black TPU typically lies between 220 °C and 240 °C. The lower bound is set by interlayer diffusion rather than melting alone; below 215 °C, the melt front at the road-to-road interface cools too rapidly for chain interdiffusion across the weld line, and the part fails at low elongation in the z-direction. The upper bound of 250 °C is set by the onset of hard segment dissociation and discoloration; in a heated build chamber the polymer can remain near that temperature long enough to generate brown decomposition products on the nozzle. Build-chamber temperatures above 40 °C are rarely necessary and may lower the mechanical stiffness of the part during printing. The build plate is generally kept at 20 °C to 60 °C, and part cooling fans are set to 0% to 30% of maximum flow so that the soft road wets the previous layer before solidification.

    Print speed for Shore 85A–95A TPU is typically 15 mm/s to 40 mm/s with a 0.4 mm nozzle. Higher speeds require raising the nozzle setpoint closer to 240 °C to 250 °C, which narrows the thermal safety margin. Volumetric flow rate should be limited to roughly 5 mm³/s to 8 mm³/s for consistent melt pressure; published data for this Clariant-specific black grade are limited, so the flow ceiling should be confirmed by measuring filament output over a 60 s extrusion interval and inspecting the printed road for surface melt fracture.

    When Black TPU Replaces Acrylonitrile Butadiene Styrene or Polyethylene Terephthalate Glycol in Printed Assemblies

    Substitution of rigid feedstocks with black TPU changes part behavior by more than the difference in hardness. An unfilled black TPU in the 85A–95A Shore class has a tensile modulus typically in the range of 10 MPa to 50 MPa, while general-purpose PLA and PETG exhibit tensile moduli near 2.5 GPa to 3.5 GPa; ABS is in a similar rigid range. Consequently, a load-bearing bracket printed from black TPU will deflect two orders of magnitude more under the same load unless the section height is increased or ribs are added. The material is selected for low elastic modulus, repeated flexion, abrasion resistance, and impact energy absorption rather than for dimensional rigidity.

    The tensile response is non-yielding and hyperelastic; under ISO 527-2 the material is often reported at break rather than at yield, with representative tensile strength at break of 25 MPa to 45 MPa and elongation at break of 450% to 700% for unfilled Shore 90A TPU. This should be compared with 3% to 8% for PLA and 10% to 30% for ABS. In impact-dominated applications, black TPU dissipates energy through large strain recovery; printed structures can be folded or crushed and return to near original geometry when the strain is below the permanent set limit.

    The continuous-service temperature of standard unfilled TPU is not equivalent to that of PETG or ABS. Heat deflection temperature under 0.45 MPa by ISO 75-2/B for the soft TPU class is often below 60 °C to 80 °C, whereas annealed PETG may exceed 70 °C to 80 °C and ABS may exceed 95 °C in heat deflection testing. Hot air, oil immersion, and hydrolytic environments impose additional constraints: polyester-based TPU performs better in contact with nonpolar oils but is more susceptible to chain scission in hot water, while polyether-based TPU tolerates moisture but swells more in fuel-like fluids. Published data for the Clariant-specific black grade under these conditions are limited; compatibility testing should follow ISO 175:2010 or the end-use application specification.

    Tear, abrasion and carbon-black surface effects in unfilled urethane feedstock

    For applications such as protective bellows, gaskets, cable guides, and sports-equipment pads, the key tests are tear strength, abrasion loss, and compression set. Black TPU in the 85A–95A Shore class typically shows tear strength of 55 kN/m to 85 kN/m when measured under ISO 34-1:2022, method B, procedure (b). Abrasion loss under ISO 4649:2021 method A is commonly reported between 25 mm³ and 60 mm³ for continuous cast or injection-molded TPU, but fused filament fabrication introduces a layer-pattern dependence: the abrasion loss of a printed sample can increase by 20% to 50% relative to a molded plaque because the printed surface contains microgrooves and weld lines perpendicular to the sliding direction. Post-ironing or solvent smoothing is not generally applied to black TPU because the soft matrix responds poorly to acetone or solvent smoothing systems.

    The black pigment imposes additional surface and ultraviolet aging behavior. Carbon black functions as a radical trap and ultraviolet absorber, so black TPU typically resists surface embrittlement under ISO 4892-2:2013 accelerated weathering better than natural or light-colored unpigmented TPU. The same carbon black network may reduce electrical surface resistivity from the insulating range to the antistatic or static-dissipative range when the loading is sufficient; however, the conductivity threshold depends on aggregate size, dispersive mixing, and the degree of orientation in the printed road. A four-point probe test under ASTM D257-14 is required to determine whether the filament satisfies a particular electrostatic dissipative specification.

    Compression set is also a design limit. For unfilled TPU of Shore 90A, compression set after 24 h at 23 °C under 25% deflection is often 20% to 35%; at 70 °C, the set can exceed 50%. This means a printed seal or cushion does not recover fully after long-term compressive load, especially in warm enclosures. The exact value must be taken from a Clariant product datasheet or from a coupon test conducted under ASTM D395-21 method B, because the 3D-printed structure and void content change the time-dependent recovery.

    The following table is a material-class comparison based on representative industrial data for unfilled black TPU, PLA, and ABS feedstocks. It is not a Clariant certificate of analysis.

    Property Unfilled black TPU, Shore 90A class Unfilled natural TPU, Shore 90A class PLA, general-purpose ABS, general-purpose Test method
    Tensile strength at break 25–45 MPa 25–45 MPa 45–60 MPa 35–45 MPa ISO 527-2
    Elongation at break 450–700% 450–700% 3–8% 10–30% ISO 527-2
    Shore hardness 85A–95A 85A–95A 80D–85D 70D–80D ASTM D2240-15
    Abrasion loss 25–60 mm³ 30–70 mm³ 80–120 mm³ 90–140 mm³ ISO 4649:2021
    Density 1.16–1.24 g/cm³ 1.16–1.24 g/cm³ 1.24–1.26 g/cm³ 1.03–1.07 g/cm³ ISO 1183-1:2019

    When the printed part is intended for repeated dynamic flexing, the fused-filament orientation must be aligned with the strain field. The maximum tensile elongation of a black TPU FFF part is substantially lower when tested perpendicular to the layer plane; published data for this specific Clariant configuration are limited, but industrial experience with Shore 90A TPU indicates that z-direction elongation before weld failure may fall to 200% to 350% while xy-direction elongation remains above 450%. A layer height of 0.10 mm to 0.15 mm and a nozzle diameter of 0.4 mm to 0.6 mm typically produce a higher density of weld interfaces but require a longer print time. Without post-extrusion annealing, the weld zones remain the limiting locations under cyclic shear.

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