| Код ТН ВЭД | 327426 |
Как аккредитованный завод Covestro Addigy FPU 64D 000000 UV 3D Printing Polyurethane Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Vacuum-sealed moisture-barrier bag containing one 1 kg spool of Covestro Addigy FPU 64D UV 3D printing polyurethane filament. |
| Погрузка контейнера (20-футовый контейнер) | Container Loading (20′ FCL): Covestro Addigy FPU 64D 000000 UV 3D Printing Polyurethane Filament, palletized, shrink-wrapped, secured for ocean freight. |
| Доставка | Covestro Addigy FPU 64D 000000 UV 3D Printing Polyurethane Filament typically ships as a non-hazardous solid. It is packed in sealed moisture-barrier foil bags with desiccant, on rigid spools in boxes. Keep dry, away from direct sunlight, heat, and humidity; ambient temperatures are suitable. |
| Хранение | Store Covestro Addigy FPU 64D 000000 UV 3D Printing Polyurethane Filament in its original sealed packaging in a cool, dry, well-ventilated place, away from direct sunlight, heat, sparks, and moisture. Keep containers tightly closed; use desiccant and reseal after opening. Recommended temperature 15–25°C. Avoid UV exposure, freezing, and prolonged humidity. Store away from incompatible substances. Follow SDS and local regulations. |
| Срок годности | The shelf life is typically 12 months when stored unopened in original packaging, cool, dry, and protected from UV light. |
The Covestro Addigy FPU 64D 000000 UV filament is processed in athletic footwear outsole and midsole prototyping by direct-drive fused filament fabrication systems equipped with hardened steel nozzles of 0.4 mm to 0.6 mm. The nominal Shore hardness of 64D according to ISO 868 situates the material between flexible TPU and rigid engineering thermoplastics, so lattice midsole structures require an infill density between 30 % and 60 % to retain compressive recovery while limiting part mass. Extrusion temperature is set between 225 °C and 240 °C, the build plate is held at 40 °C to 60 °C, and linear print speed is kept below 40 mm/s for outsole sections thicker than 8 mm. Filament pre-drying at 80 °C for 4 h in a desiccant dryer is applied when ambient RH exceeds 60 %; moisture absorption above this threshold produces visible surface bubbles and interlayer delamination at the sole flexion zones. For tread prototypes, 6 to 8 solid top and bottom layers and 4 to 5 perimeter walls are used to approximate injection-molded abrasion surfaces. Terminal parts include outsole tread blocks, midsole lattices, heel counters, and flex testing units. Comparative validation uses ISO 4649 abrasion loss, ISO 527-2 tensile elongation, and ISO 34-1 tear strength; printed samples are oriented so maximum service strain follows the XY plane because interlayer boundaries reduce Z-direction elongation. This orientation rule is applied to all footwear geometry that undergoes repeated bending at the metatarsal line. The grade is not positioned for direct food-contact or skin-contact medical footwear without additional regulatory assessment under REACH and relevant EU medical device legislation.
Printed static seals for low-pressure pneumatic and fluid circuits are constrained by the interlayer diffusion window of the hard-segment-rich 64D polyurethane. Because the polymer has a higher hard block content than Shore 90A TPU, interlayer welding requires sufficient contact time above the hard segment melting range; slow travel speeds below 30 mm/s and extrusion temperatures at 235 °C to 245 °C are more effective than high cooling air flow. An extrusion multiplier of 1.03 to 1.08 is used to fill layer junctions, with an overlap of 0.15 mm to 0.25 mm for a 0.4 mm nozzle. Layer height is held between 0.10 mm and 0.15 mm to reduce microvoid arrays that become leak paths under pressure. Compression set is evaluated per ISO 815-1; because printed anisotropy dominates the result, test specimens are cut both parallel and perpendicular to the build axis. The harder 64D grade provides lower compression set than softer thermoplastic polyurethane but raises installation force in static face seals. Prototype bellows, diaphragms, gaskets, and pneumatic plunger seals are printed for air pressures below 2 bar; above this limit, pressure decay testing on the actual printed geometry is required because subsurface layer boundaries cannot be detected by visual inspection alone. Compatibility with mineral oil is acceptable up to 60 °C, but continuous contact with hot water above 70 °C accelerates hydrolysis. Users must verify printed seal performance against the maximum chemical concentration listed in the process fluid specification; generic hydrocarbon compatibility data for thermoplastic polyurethane does not substitute for application-specific immersion testing under ISO 175.
For anti-vibration mounts and damper inserts, the 64D hardness is used in geometries where the functional stiffness is generated by thin flexural elements rather than low-hardness elastomer bulk. Variable infill control is used to create load-bearing shells at 80 % to 100 % infill and internal damping zones at 40 % to 60 % rectilinear or gyroid infill. Wall count is maintained at 3 to 4 perimeters to prevent buckling under compressive preload. Nozzle temperature follows the same high-end window as seal printing, but part cooling is reduced to 20 % of fan speed so that the larger molten volume remains above the glass transition of the hard segments during successive layers. The terminal applications include motor mount spacers, coupling elements, indexing stops, and damper inserts for light automated machinery. Dynamic mechanical analysis per ISO 6721-1 is performed on printed specimens because published DMA master curves for this specific filament configuration are limited, and shift factors derived from flat material datasheets should not be used for design calculations. The storage modulus and tan delta values depend on print orientation, infill pattern, and moisture content at the time of testing. Before dynamic testing, samples are conditioned at 23 °C and 50 % relative humidity for at least 88 h to reduce seasonal variability. Damping is lower than that of softer polyurethane grades; therefore, design should not rely on bulk energy dissipation alone.
| Downstream segment | Primary standard | Control/output property |
|---|---|---|
| Athletic footwear outsole | ISO 4649 | Abrasion loss |
| Low-pressure seal | ISO 815-1 | Compression set |
| Anti-vibration mount | ISO 6721-1 | Storage modulus, tan δ |
| Workholding pad | ISO 14539 | Gripping force retention |
| Automotive underhood clip | ISO 4892-2 / ISO 188 | UV/thermal aging |
| Conveyor wear pad | ISO 4649 / ISO 34-1 | Abrasion, tear strength |
Workholding pads and end-of-arm tooling components for automated assembly lines are built with a 0.25 mm layer height and 6 solid top and bottom layers to reduce surface porosity at the contact face. The 64D polyurethane withstands mineral-oil-based cutting fluids and light machine oil exposure up to 60 °C, but continuous immersion in methyl ethyl ketone, tetrahydrofuran, or concentrated sulfuric acid causes swelling above 10 % and must be avoided. Printed gripper pads are post-processed by light abrasive blasting to remove the top surface skin and expose the denser underlying layers, which increases friction repeatability in dry cycle testing. Grip force retention is validated under ISO 14539 after 10,000 cycles on the target part geometry; the test is run with the same print orientation and wall count intended for production because no universal correction factor exists between XY and Z contact orientation. Terminal parts include flat gripper pads, V-jaw inserts, vacuum end-effector adapters, and locating pins. Print speed is reduced to 20 mm/s to 30 mm/s for pad surfaces that contact polished metal or glass, which limits layer crossing marks that otherwise transfer to the part surface. The material is not recommended for direct contact with hot polyamide parts above 100 °C because localized softening and transfer staining may occur.
Underhood cable clips, wire harness brackets, dust boots, and grommets printed from the UV-stabilized Addigy grade are evaluated under dual thermal and UV exposure rather than ambient mechanical testing alone. Small parts are printed with a 0.10 mm layer height, 0.4 mm nozzle, and build plate temperature of 60 °C; cooling fan speed is set to 20 % to 30 % to prevent warping on narrow clip features. The UV stabilization package is screened by ISO 4892-2 exposure with the specimen mounted in the same orientation as the installed part; radiometric exposure is reported in kilojoules per square metre rather than hours to avoid location-dependent dose ambiguity. Thermal aging is performed according to ISO 188 at the maximum continuous use temperature specified by the OEM, typically 85 °C for underhood non-engine-mounted components. The printed material is not recommended for continuous immersion in glycol-based brake fluid at temperatures above 80 °C; if the clip is located near brake fluid reservoirs, compatibility tests must be performed by the system supplier. Terminal printed parts include wiring harness retainers, corrugated tube clips, dust covers for connectors, and grommets for sheet metal edges. For cabin and underhood applications, VOC and odour requirements per VDA 278 and VDA 270 should be verified on printed samples because residual oligomers and filament additives may behave differently in FFF parts compared with injection-molded plaques.
Wear pads, chain guides, and conveyor roller sleeves are produced from the 64D filament only when the service geometry can be oriented with the sliding face parallel to the XY build plane. The printed surface is built with 100 % infill, 5 to 7 perimeter walls, and a 0.20 mm layer height to minimize subsurface void networks that shorten sliding life. Extruder temperature is held at the upper end of the processing window, 240 °C to 245 °C, to improve interlayer diffusion for edge-loaded wear geometries. Dry sliding against mild steel at surface pressures below 0.5 MPa and velocities below 0.5 m/s represents a conservative operating envelope; beyond this limit, frictional heating raises the contact temperature and reduces abrasion resistance. Abrasion loss is compared with cast polyurethane reference blocks using ISO 4649, with the test specimen cut from the printed wear face rather than the Z direction. Tear strength is measured per ISO 34-1 to assess notched chain guide corners. Terminal parts include chain guide sections, wear strips, roller sleeves, and slide rails for light material handling. If continuous washdown with alkaline cleaners above 60 °C is part of the process sequence, hydrolysis resistance must be confirmed by sustained immersion testing under ISO 175 because the polyurethane soft segments can lose molecular weight in hot aqueous environments. The use of this FFF grade does not replicate the isotropic structure of cast polyurethane; load-bearing sections should therefore be oversized at stress concentrations by a factor derived from printed Z-direction tensile data from ISO 527-2.
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Addigy FPU 64D 000000 UV is a thermoplastic polyurethane (TPU) filament supplied for fused filament fabrication (FFF), as defined in ISO/ASTM 52900:2021. The FPU designation identifies flexible polyurethane chemistry, 64D indicates a nominal Shore D hardness of 64, and the six-digit code 000000 denotes black colouration. The UV suffix refers to an ultraviolet-stabilised formulation intended for exterior and light-exposed prototypes; it does not denote a UV-curable resin system. In commercial distribution the filament is normally offered in diameter classes of 1.75 mm and 2.85 mm, with lot-specific ovality and diameter tolerances verified by optical micrometer or laser gauge before process qualification. Published data for this specific UV-stabilised black configuration are limited, and where a value is not explicitly assigned in the manufacturer lot certificate, process qualification should use generic TPU-class data only as a provisional reference.
The product is classified by Shore hardness rather than by an elastomer Shore A scale, placing it above conventional flexible TPU filaments rated at 85A or 95A and below rigid engineering thermoplastics such as polycarbonate or PC/ABS. This hardness band creates a semi-rigid, semi-tough material class with greater stiffness than soft TPU and greater ductility than PLA. The black 000000 colour code contributes visible-light opacity and partial UV screening, but the UV suffix should not be interpreted as a guarantee of colour stability under all irradiance, humidity, and part-thickness conditions. Chemical resistance follows polyurethane behaviour: swelling may occur in ketones, esters, and chlorinated solvents, while resistance to nonpolar oils and aliphatic hydrocarbons is typically higher when assessed under ISO 175:2010 or ASTM D543-20 immersion protocols. Tensile, flexural, abrasion, and tear values must be obtained from the current product datasheet or lot certificate.
Three process variables intersect at the nozzle: melt viscosity, moisture-related chain scission, and solidification rate. A Shore 64D polyurethane typically exhibits a higher hard-segment content than Shore 90A TPU, which raises crystalline melt onset and increases viscosity at a given extrusion temperature. In fused filament fabrication, this translates into a narrow nozzle-temperature corridor. If the set point is too low, layer adhesion falls because chain diffusion across the weld interface is insufficient. If the set point is too high, urea and urethane degradation may generate gaseous by-products and lower melt viscosity in an uncontrolled manner. For this hardness class, processing documentation commonly lists nozzle temperatures from 210 °C to 235 °C and bed temperatures from 40 °C to 70 °C, but the lot-specific melt flow rate under ISO 1133-1:2022 should govern the final set point.
Extrusion speed and layer height interact with viscosity. Layer heights below 0.10 mm increase nozzle residence time for a given deposition rate, raising the cumulative thermal load on the polymer. Conversely, layer heights above 0.25 mm reduce feature resolution and may create interlayer voids if extrusion width compensation is not calibrated on the target printer. Build-chamber temperature is equally a boundary condition: if the chamber falls below 20 °C, warp and premature crystallisation can compromise bed adhesion on unheated or open-frame platforms; if the chamber exceeds 40 °C, the printed part may soften or sag under its own mass until the layer is fully cooled. On production-scale open-frame machines lacking active enclosure temperature control, the practical approach is to reduce part height-to-width ratio and increase skirt or brim contact area.
Because stress relaxation times in a 64D TPU are longer than in low-viscosity PLA, seam geometry and retraction settings require dedicated calibration. Retraction distances of 1.0 mm to 2.5 mm at 20 mm/s to 40 mm/s are common starting values for direct-drive extruders; Bowden systems may require higher travel acceleration and pressure advance. Published data for this specific UV-stabilised configuration are limited, so these values must be treated as starting points rather than qualified parameters.
Moisture content is the controlling variable for hydrolysis in polyurethane melt processing. Hydrolytic chain scission occurs when absorbed moisture reacts with ester or urethane linkages at processing temperatures above 180 °C, reducing molecular weight and interlayer strength. The threshold for visible surface defects is often below 0.03 wt% moisture, measured by Karl Fischer titration according to ISO 15512:2019. At 0.08 wt%, extrudate may show die swell, steam marking, and reduced weld strength even when dimensional accuracy appears acceptable.
Spools should be stored in sealed containers with desiccant sufficient to maintain <15 % relative humidity. If a spool has been exposed to 60 % relative humidity for more than 24 h, pre-drying is required before processing. Desiccant dryers with a dew point below -40 °C and set points of 80 °C to 90 °C for 3 h to 4 h are typical for TPU-class filaments; vacuum drying can reduce residence time but must remain below the polymer softening point. For this specific product, the manufacturer’s drying instruction on the lot certificate or safety datasheet overrides generic TPU practice. A printed part made from inadequately dried filament may fail interlayer tensile testing under ISO 527-2:2012 or ASTM D638-14 even when visual inspection is acceptable.
The qualification worksheet below lists the minimum test references to request for a specific production lot. Absence of a filled value in the datasheet is not a compliance failure; it indicates that in-house verification under the stated method is required before installation in a controlled process.
| Attribute | Standard method | Qualification value to verify |
|---|---|---|
| Nominal hardness | ISO 868:2003 / ASTM D2240-15 | Shore D 64 |
| Filament diameter | Lot certificate / optical micrometer | 1.75 mm or 2.85 mm; ovality ±0.05 mm max |
| Moisture content | ISO 15512:2019 | <0.03 wt% before melt processing |
| Tensile properties | ISO 527-2:2012 / ASTM D638-14 | Lot-specific values on 1A or Type IV specimens |
| Tear strength | ISO 34-1:2022 / ASTM D624-00 | Lot-specific |
| Abrasion resistance | ISO 4649:2017 | Lot-specific mass loss, mm³ |
| UV exposure | ISO 4892-2:2013 / ASTM G154-16 | ΔE, gloss retention, and tensile retention |
| Melt flow rate | ISO 1133-1:2022 | To be obtained; supports nozzle temperature setting |
Compared with PLA, the melt solidification front in a 64D polyurethane is less abrupt, and dimensional accuracy depends on cooling uniformity. The higher hard-segment content can produce shear-thinning behaviour in the nozzle. In practical terms, increasing print speed without raising nozzle temperature may produce under-extrusion because viscosity rises near the lower thermal limit. Volumetric extrusion limits should therefore be established on the specific printer, rather than assumed from PLA or PETG parameters. A maximum volumetric flow rate of 5 mm³/s to 8 mm³/s is a common qualification starting range for medium-hardness TPU with 0.4 mm nozzles, but nozzle geometry, hot-end thermal response, and lot-specific melt viscosity will shift the boundary.
Interlayer weld strength remains sensitive to deposition temperature and the previous layer surface temperature. Once a layer cools below the onset of hard-segment crystallisation, chain interpenetration at the weld interface is incomplete. To preserve weld strength, the interval between subsequent layers should be kept short, or a heated enclosure should be used to slow cooling. Fan speed should be limited to 30 % or less during the initial layers, with full cooling introduced only after the third or fourth layer unless the part geometry demands otherwise. In production-scale runs on open-frame direct-drive printers, the dominant defect is often not print-head clogging but interlayer delamination at thin-wall transitions. When a wall thickness changes from 2.0 mm to 0.8 mm, thermal mass decreases, and the previous layer may cool below the weld threshold before the next pass. Reducing print speed at transitions, increasing nozzle temperature by 5 °C, or adding a local purge move can stabilise the interface. These adjustments are machine-specific and should be revalidated when moving to a heated enclosure or a different motion system.
Nozzle material and feed path mechanics also become relevant. TPU at 64D is typically non-abrasive unless filled or contaminated, but long print runs at high melt temperature can increase plate-out on the nozzle face. Brass nozzles are acceptable for unfilled material; hardened steel or nickel-plated copper is specified when the same nozzle is shared with filled grades. In direct-drive systems, excessive idler pressure can deform the filament into an elliptical cross-section and cause unstable feeding. The spool must rotate with low friction, and in Bowden systems the internal diameter of the PTFE tube should be matched to filament diameter. If filament ovality exceeds 0.05 mm, feed-path friction rises and pressure-advance calibration becomes unstable.
In comparison with rigid thermoplastics, the principal difference is not flexibility alone but the shape of the stress-strain curve. PLA and PETG tend to yield and fracture at low strain; a 64D polyurethane typically exhibits yielding followed by larger elongation, although elongation at break is lower than that of Shore 85A or 90A TPU. This makes the material suitable for snap-fit closures and retaining features that require higher stiffness than soft TPU but cannot tolerate the brittle failure of PLA. Under ISO 527-2:2012 tensile testing, yield stress and elongation values should be assessed at the same strain rate and conditioning atmosphere specified by ISO 291:2008.
Compared with soft TPU grades, the 64D hardness provides better dimensional retention and lower frictional surface drag, but it reduces the ability of the printed part to absorb high-frequency vibration. In footwear, orthotic, and sealing prototypes, this shifts the product toward semi-structural components such as heel counters, cable clamps, and low-pressure fluid fittings rather than continuous flexing bellows. The UV suffix differentiates this grade from general-purpose TPU filament because it is formulated for panels, cradles, and fixtures that remain outdoors or near UV lamps. Users should nevertheless evaluate gloss, colour change, and retained tensile strength after accelerated exposure under ISO 4892-2:2013 or ASTM G154-16, because UV stabilisation slows degradation rather than preventing it indefinitely.
This substitution is most defensible in manufacturing cells where a printed part must survive repeated clamp loads, periodic impact, and long fluorescent or filtered-sunlight exposure without the brittleness of PLA or the excessive compliance of Shore 85A TPU. Representative applications include assembly fixtures with snap-in inserts, cable guides on automated test racks, and protective covers over optical inspection stations. In such applications, the filament is printed with a direct-drive extruder and a standard brass nozzle, with build-plate adhesion promoted by a polymer adhesive or a polycarbonate sheet. The first layer height is set between 0.20 mm and 0.25 mm, and the bed is held at 50 °C to 70 °C to prevent corner lifting. Unsupported overhangs should be limited to 45° or less because the elastic recovery of the polyurethane can cause edge curl, especially on unheated sections of large flats.
Chemical exposure of printed jigs should be qualified because the UV-stabilised black compound may contain carbon black and stabilisers that alter surface energy. Adhesives and release agents may not bond as readily to the black surface as to an unfilled transparent TPU. If the part is cleaned in isopropanol, drying time should be extended, and repeated cleaning should be tested against ISO 175:2010 immersion requirements. Solvent wiping with ketones or aromatics is not recommended for production tools that contact sensitive optics or painted surfaces, because low-molecular-weight polyurethane additives may migrate and leave residue.
When process qualification is performed, the lot certificate should include melt flow rate under ISO 1133-1:2022, Shore hardness under ISO 868:2003, moisture content under ISO 15512:2019, and tensile properties under ISO 527-2:2012. If any value is not reported, the test can be commissioned on the as-received filament, and the measured result should be compared with the specification for the next production lot before the filament is released for manufacturing use.