| Код ТН ВЭД | 529241 |
Как аккредитованный завод BASF 3D Ultrafuse TPC 45D Fused Fillament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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In automotive underhood cable management, BASF Ultrafuse TPC 45D Fused Filament is evaluated for short-run harness clips, connector retention boots, and cable separators where the service environment combines hot engine wash fluids, glycol-based coolant splash, and cyclic vibration. The material carries a Shore D 45 indentation hardness under ISO 868, placing it above conventional flexible TPU grades and below rigid polyamides, which permits snap-fit retention without stress whitening at hinge locations. For a harness clip body, the build is configured at 0.15 mm layer height, 0.4 mm nozzle diameter, 3 perimeter walls, and 100% rectilinear infill in the load-bearing barb zone, while the cable saddle is printed at 60% gyroid infill to reduce mass and allow flexure. Compliance screening for underhood electrical support hardware commonly references SAE J1455 thermal shock and chemical drip conditions; for printed harness clips, heat aging at 85 °C for 168 h followed by insertion force measurement is used as an engineering check because the polyester segments in TPC are susceptible to hydrolytic degradation if the filament is processed above the recommended moisture threshold. Before printing, the filament is dried at 60 °C for 4 h in a desiccant dryer. The terminal part is a cable retention clip with integrated living hinge; the hinge section is conditioned by flexing 20 cycles after build to stabilize the seam. Dimensional validation uses a fixture with a 0.05 mm clearance allowance, and the snap-fit feature is offset by 0.1 mm to compensate for first-layer bead spread. The main limitation is automotive underhood peak temperature above 100 °C, where sustained compressive load can accelerate creep and reduce retention force.
Long Bowden extrusion paths introduce a column-buckling failure mode because the low elastic modulus of TPC 45D permits the filament to deform in the unsupported segment between the drive gear and the hot-end melt channel. This is observed on equipment where the Bowden tube length exceeds 300 mm and the inner diameter is above 2.0 mm; the filament can curl or compress at the extruder gear, producing under-extrusion defects without a clogged nozzle. The first corrective measure is replacing the Bowden path with a direct-drive toolhead, but if a Bowden system is mandated by the cell layout, the tube length is limited to 250 mm or less, the tube is replaced with tight-tolerance PTFE having 2.0 mm inner diameter, and the extruder idler tension is reduced to the minimum setting that prevents slip. Retraction distance is held at 1–2 mm for direct-drive and 3–4 mm for short Bowden, with retraction speed not exceeding 25 mm/s. The nozzle temperature is maintained within the material documentation listed window of 220–250 °C; the heated bed is set at 60–100 °C with a PVP-based adhesive or neat PEI surface. Build speed for 0.2 mm layer height is typically below 40 mm/s on Bowden systems because higher feed rates exceed the melt capacity of the hot end and increase melt pressure oscillations. For service bureaus operating under ISO 9001:2015, extruder tension and retraction settings are recorded as machine parameters to maintain process repeatability. The terminal products in this production context are low-run replacement gripper jaws, fixture liners, and shock-absorbing mounts that do not require the dimensional stability of rigid thermoplastics. Published data for this specific filament-Bowden configuration is limited; the values above reflect standard flexible TPC processing guidance rather than certified equipment throughput claims.
Robotic end-of-arm tooling cells use BASF Ultrafuse TPC 45D Fused Filament for gripper fingers that must survive repeated clamping cycles against powder-coated steel and aluminium part surfaces without marring. Hardness is specified as Shore D 45 under ISO 868; the part is designed as a rigid-flex interface rather than as an elastomeric spring because rebound is influenced by infill density and wall count. A typical gripper finger is printed from a solid shell with 80% triangular infill, 4 perimeters, and 0.2 mm layer height; the finger pad is printed with 40% infill and a 0.1 mm skin layer to distribute local stress without losing grip. Impact qualification uses ISO 179-1 Charpy specimens cut from a printed plaque, but the production test is a robotic clamp cycle rig at 2 Hz for 50,000 cycles; the acceptance criterion is no visible tear at the layer-to-layer boundary and less than 0.5 mm permanent set. Tensile properties are measured according to ISO 527-2 on specimens printed in the XY orientation, since Z-direction layer adhesion is the lower-bound property for fused filament parts. The part is then heat-stabilized at 80 °C for 2 h in a convection oven, which reduces internal stress and improves dimensional consistency across a batch of 20 gripper fingers. The terminal product is an EOAT finger that replaces a CNC-machined polyurethane pad; its limitation is that the printed finger is not suitable for continuous exposure to aggressive solvents such as methyl ethyl ketone or concentrated acids, nor for clamping surfaces above 100 °C where compression set under load becomes measurable.
Low-volume flange gaskets and hydraulic manifold seal housings are printed from TPC 45D when cast polyurethane tooling is unavailable or not economical below 100 pieces. The application requires resistance to ISO 32 hydraulic oil and water-glycol coolants, which is assessed under ISO 1817 by immersion at 60 °C for 72 h, followed by tensile and volume change measurement. TPC 45D is processed at 100% concentric infill to minimize through-thickness leak paths, with the seam placed away from the sealing face by rotating the start point 15° per layer. Layer height is set to 0.12 mm for improved sidewall density, and the build chamber is kept above 30 °C to reduce warpage on the peripheral flange. Compression set after 70 h at 23 °C under ISO 815-1 method A is used as the acceptance metric; parts that exceed 30% compression set are rejected because the flange face loses bolt preload. The printed gasket must not be used in continuous steam service above 80 °C because polyester soft segment hydrolysis can reduce tensile strength at a rate that is not captured by short-term immersion testing. The terminal product is a manifold gasket for a low-series test cell, not a production-certified seal; when production certification is required, the printed part is used only as a dimensional mock-up and the final gasket is compression-molded from a qualified elastomer grade.
In impact protection and footwear component prototyping, BASF Ultrafuse TPC 45D Fused Filament is printed as variable-density midsoles and shank covers where the load-bearing zones require higher stiffness and the heel-strike zone requires lower compressive stress. The part is built with a 0.2 mm layer height and a 0.6 mm nozzle to increase deposition rate; infill density is mapped from 30% in the heel to 70% under the metatarsal region using a continuous gradient, and the wall count is held at 2 to preserve surface compliance. Tensile properties are screened under ISO 527-2 using XY specimens, while compression set under ISO 815-1 at 23 °C and 70 h is used to estimate shape recovery after repeated foot strike. The prototype is not submitted as final personal protective equipment unless the full product system is tested to ISO 20345 footwear safety standards; the printed TPC part alone must not be presented as a certified toe cap or penetration-resistant sole. The terminal component is a functional midsole prototype for fit evaluation and gait lab testing, printed with a textured build plate surface to improve slip resistance. A known failure mode is layer separation at the heel-to-midfoot gradient boundary when the infill transition is printed as an abrupt step; the slicing strategy introduces a 5 mm transition band to avoid a localized compliance mismatch. This application does not enter long-term skin-contact assessment under ISO 10993 because the component is not classified as a finished medical device and is not sold for direct patient use.
Consumer electronics housing prototypes integrate TPC 45D into edge bumpers, camera gasket rings, and wearable strap mounts where impact absorption and resistance to skin oils and cosmetic lotions are required. The material is tested for dimensional stability after 72 h at 40 °C and 93% relative humidity, with subsequent tensile testing under ASTM D638-14. Sunscreen lotion is used as a compatibility fluid in screening because many TPC grades tolerate aliphatic and ester-based cosmetic carriers, but published data for this specific formulation is limited. Enclosure walls are printed at 0.1 mm layer height with 4 perimeters and 20% cubic infill, while gasket features are printed with 100% infill and 0.2 mm nozzle diameter to preserve the seal profile. The terminal product is a snap-fit case bumper that survives a 1.5 m drop test onto concrete when fused to a rigid polycarbonate shell by mechanical interlocking rather than adhesive; the TPC is not bonded directly to the shell because adhesive compatibility with polyester elastomer is limited. Regulatory screening includes RoHS Directive 2011/65/EU for restricted substances and REACH SVHC declarations; no animal-derived additives or plasticizers are specified in the material datasheet for this application. The main processing bottleneck is warpage of thin wall sections below 1.0 mm; the build plate is held at 70 °C and an enclosure is used to avoid draft-induced asymmetrical cooling. This application extends to drone gimbal dampers and camera gaskets, but not to high-voltage insulation where the part would be subjected to continuous tracking stress without a certified electrical safety evaluation.
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BASF 3D Ultrafuse TPC 45D Fused Filament is a thermoplastic copolyester elastomer (TPC) supplied as a fused filament fabrication feedstock in nominal 1.75 mm and 2.85 mm diameters. The grade designation refers to a Shore D 45 durometer value obtained under ISO 7619-1; this places the material above soft polyether TPU in flexural modulus and below semi-rigid copolyesters. The product is intended for direct-drive and Bowden extruders in open or enclosed additive manufacturing systems. Its mechanical profile is generated under ISO 527-2, ISO 178, and ISO 4649-A protocols, and supplier literature reports a ductile failure mode with high elongation before break. The material is commonly used when a printed component must withstand cyclic flexing, impact, abrasion, or contact with aliphatic hydrocarbon fluids without the high moisture uptake of nylon or the low thermal stability of standard TPU.
Thermoplastic copolyester elastomers obtain recoverable elasticity from phase separation between crystallizable hard polyester segments and amorphous soft polyether or polyester segments. In TPC 45D, the D 45 Shore hardness is achieved by controlling the hard-segment fraction; this produces a melt that solidifies quickly and a solid-state structure that resists oil swelling and retains a higher modulus at 60°C than a TPU of equivalent room-temperature flexibility. Compared with TPE heterophase systems based on styrenic block copolymers, the copolyester grade shows higher tensile strength and resistance to tear propagation, but it also requires higher processing temperatures and more precise drying. Compared with standard polyether TPU, the TPC exhibits less surface tack, reduced moisture sensitivity, and better creep resistance under static load. These differences make the material suitable for functional prototypes and short-run production parts where a soft-touch surface is required but a limp elastomer is not.
On 0.4 mm hardened steel nozzles, the TPC melt exhibits measurable die swell immediately after the initial prime line. Retraction distances should therefore be reduced by 0.5–1.0 mm relative to PETG or ABS settings to prevent air ingestion at the nozzle tip and internal void formation. A direct-drive extruder with an all-metal heat break and drive-gear force in the 25–30 N range maintains stable feeding at volumetric flow rates up to approximately 10 mm³/s. Bowden configurations typically require retraction distances of 2–4 mm, reduced printing accelerations, and short filament guide paths; excessive tube curvature introduces buckling because the filament’s compressive modulus decreases with temperature. Below 220°C, melt viscosity rises sharply, increasing hot-end pressure and the risk of skipped steps; above 250°C, soft-segment degradation generates acrid pyrolysis products and lowers melt strength.
Supplier documentation specifies a nominal diameter tolerance of ±0.05 mm for both 1.75 mm and 2.85 mm spools. Ovality is controlled to avoid intermittent grip in the extruder drive gear; this is particularly important for flexible filaments because localized deformation can create high feed resistance and under-extrusion. The product is typically packaged on sealed spools with desiccant, and the spool should be returned to an airtight container when the ambient relative humidity exceeds 60%. A filament runout of 0.02–0.04 mm is considered acceptable for machines using passive volumetric extruders; for instruments with laser filament diameter sensors, the measured diameter can be entered as a compensated value to maintain constant melt flow. Industrial hot-end systems with dual-drive extruders should maintain drive-gear pressure below the level that imprints permanent tooth marks into the filament, because deep notches weaken the strand and can cause buckling at the nozzle entry.
| Parameter | Test method or specification | Value |
|---|---|---|
| Nominal filament diameter | Laser micrometry | 1.75 mm and 2.85 mm |
| Diameter tolerance | Supplier specification | ±0.05 mm |
| Hardness | ISO 7619-1 | Shore D 45 |
| Nozzle temperature | Supplier processing guide | 220–250°C |
| Heated bed temperature | Supplier processing guide | 40–80°C |
| Pre-drying target | Forced-air oven | 60°C for 4–6 h |
| Maximum ambient RH before drying | Storage guide | 60% |
| Typical build chamber temperature | Enclosed industrial printer | 30–45°C |
During compounding and filament extrusion, the melt is processed in a co-rotating twin-screw extruder with an L/D ratio of at least 40:1 to disperse the hard-segment domains and stabilize filament diameter. The melt filter pack typically uses screens of 150–250 µm to remove char particles that could block printer nozzles below 0.25 mm. Water-ring pelletizing is not appropriate because residual surface moisture must be removed before final filament extrusion; strand pelletizing followed by forced-air drying is preferred. The final filament is extruded under closed-loop diameter control with laser gauges and wound under constant tension to prevent stretching that would change diameter and Shore hardness.
Although TPC is less hygroscopic than PA6 or PA66, absorbed moisture acts as a plasticizer and can degrade interlayer fusion by nucleating steam bubbles in the melt. The manufacturer recommends pre-drying at 60°C for 4–6 h when the spool has been exposed to ambient relative humidity above 60% for more than 24 h. A forced-air oven is acceptable for short spool conditioning, but a desiccant dryer with a dew point below −30°C is preferred for long production runs because it maintains a lower equilibrium moisture content in the hopper or spool holder. Drying should not exceed the recommended time–temperature envelope because prolonged exposure near the softening point can cause filament-to-filament adhesion on the spool and dimensional distortion. Visual evidence of wet filament includes large ooze during standby, rough first-layer surfaces, and reduced transparency or gloss; these symptoms cannot be fully corrected by retraction changes or bed temperature adjustments.
Layer cooling management has a larger effect on mechanical anisotropy than print speed alone. For a 0.2 mm layer height, prints made at 40 mm/s with 30% fan duty show less delamination than those at 80 mm/s with 80% fan duty, because the melt remains above the crystallization onset long enough to weld. The difference is particularly visible in tall thin walls, where the thermal mass of a layer drops below 10 mg and cooling is non-uniform. Closed-loop hot-end temperature control with PID autotuning reduces overshoot above 250°C and helps maintain a constant melt viscosity across the part.
The recommended nozzle temperature range is 220–250°C; lower values are used for fast, thin-layer prints on high-flow hot ends, while higher values are applied when layer adhesion is critical or when hot-end thermistor offset is suspected. A heated bed set to 40–80°C improves first-layer adhesion on PEI, glass with polyvinyl alcohol-based adhesion layers, and polyimide sheets. The material does not require a closed chamber for small parts, but an enclosure that maintains 30–45°C is beneficial for build dimensions above 300 mm or wall thicknesses above 6 mm, where differential shrinkage produces corner lifting. Part cooling fan duty should be limited to 0–40% for the first 10–15 layers, then can be increased to 50–70% for short layer times. When using nozzles smaller than 0.4 mm, purge 50–100 mm of material after any nozzle change involving polycarbonate, nylon, or filled PLA to avoid melt-flow instability.
Interlayer weld strength in semicrystalline TPC depends on the time available for soft-segment diffusion across the melt interface before crystallization arrests chain motion. When printing in an ambient chamber below 15°C, the previous layer solidifies before complete diffusion, producing Z-axis weakness. Quantitative loss values are geometry- and machine-dependent; published data for this specific configuration is limited, but Z-axis ultimate tensile stress can fall by more than 20% relative to XY specimens when no enclosure is used. To reduce this effect, operators should increase extrusion temperature by 5–10°C, reduce cooling fan speed, and set a minimum layer time of 8–12 s for layer heights at or below 0.2 mm. Parts printed with sufficient interlayer fusion typically flex without stress whitening; whitening at a bend radius below 5 times the local wall thickness indicates excessive strain and can precede crack initiation.
The copolyester structure resists mineral oil, aliphatic hydrocarbons, dilute acids, and dilute alkalis, but it should not be immersed in strong oxidizing acids, chlorinated solvents, or boiling water because hydrolysis and chain scission accelerate above 70°C. Abrasion data generated under ISO 4649-A show lower volume loss than many soft TPU grades; however, performance in abrasive slurries or metal-debris environments requires application-specific wear testing. For outdoor service, UV and thermal-oxidative stabilizers can reduce surface crazing; xenon-arc exposure under ISO 4892-3 is used to compare stabilized and unstabilized formulations. Short-term contact testing with hydrocarbon fluids at 23°C typically shows high retention of ductility, but continuous service above 90°C should be validated by ISO 899-2 creep or stress-relaxation studies before implementation.
Pre-drying and storage consistency have a direct effect on batch-to-batch performance. Once printed, parts can be annealed at 80°C for 30 min in a ventilated oven to relieve residual stress and improve dimensional stability in warm service; however, annealing above the heat deflection temperature can release molded-in stresses and distort thin ribs or bosses. The material is less prone to stress relaxation than TPU 95A, but static long-term loads at elevated temperature should be assessed using ISO 899-2 methods. Because the filament contains no intentionally added halogenated flame retardants, standard REACH and RoHS documentation should be requested from the supplier for export conformity.
TPC 45D can replace TPU 95A in applications requiring a firmer, less tacky surface and better oil resistance. In gripper jaws and collision mounts, wall thicknesses of 2.5–4.0 mm combined with triangular infill of 35–50% produce a useful ratio of compliance to shape recovery; however, the higher compression modulus means seals and gaskets may require thinner walls or lower infill to conform to mating flanges. The Shore D 45 hardness permits snap-fit details that would deform permanently in TPU, but the die-swell behavior of the melt requires wider corner radii and slower cornering speeds in the slicer to prevent excess material build-up. Compared with rigid ABS or PC-ABS, the TPC filament produces parts with lower tensile modulus but significantly higher impact crack resistance in cold environments down to approximately −30°C, provided exposure is limited to non-halogenated fluids. In such substitutions, test geometries should include a standardized notched impact specimen under ISO 180 or a component-level drop test because printed anisotropy can dominate the result.