| Код ТН ВЭД | 619627 |
Как аккредитованный завод BASF 3D Ultrafuse PA Fused Fillament, Conditioned, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Sealed foil bag with one 750 g spool of conditioned 1.75 mm BASF Ultrafuse PA filament, desiccant, and labeled cardboard box. |
| Погрузка контейнера (20-футовый контейнер) | Container Loading (20′ FCL): conditioned BASF 3D Ultrafuse PA filament spools, palletized, moisture-protected, secured, and shipped in a dry container. |
| Доставка | BASF 3D Ultrafuse PA Fused Filament, Conditioned, ships as a non-hazardous, non-regulated solid article. It is spooled, sealed in moisture-barrier bags with desiccant, and packed in sturdy boxes. Transport and store dry at 15–25°C, away from heat, sunlight, and moisture. No special dangerous-goods documentation required. |
| Хранение | Store BASF 3D Ultrafuse PA Fused Filament, Conditioned, in its original sealed moisture-barrier bag with desiccant. Keep in a cool, dry, dark place, ideally 15–25°C and below 20% relative humidity. Protect from moisture, heat, UV light, dust, and physical damage. Once opened, use a dry cabinet or vacuum container; dry filament before printing if exposed to humid air. |
| Срок годности | 12 months from date of manufacture when stored in original unopened packaging at 15–25°C, protected from moisture and UV light. |
In automotive wire-harness routing, snap-fit cable guides and sensor brackets printed from an unfilled polyamide 6/66 copolymer filament—supplied as a heat-stabilised natural monofilament with no reinforcing fill—are processed from feed moisture below 0.10 wt% to avoid hydrolysis at the die. The spool is transferred from the sealed aluminium pouch to a forced-convection dryer at 80 °C for 4–6 h; a dew-point-controlled hopper dryer set to -40 °C dew point is used on multi-shift FFF cells because nylon re-absorbs surface moisture from dry compressed air before the extruder gears. Extrusion is set at 260 °C nozzle, 90 °C build plate, 0.15 mm layer height, and 0.4 mm brass or hardened steel nozzle. A 4-perimeter shell with 60–80% rectilinear infill provides snap-arm recovery after repeated deflection; XY-axis coupons tested to ISO 527-2 on a universal testing machine typically show conditioned tensile strength in the 40–50 MPa range and elongation at break above 20%. Post-print conditioning of the installed clip at 70 °C/95% RH for 24–48 h raises absorbed moisture to 2.0–3.0 wt%, shifting the failure mode from brittle layer fracture to ductile yielding; the same part tested dry before conditioning can exhibit Charpy notched impact below 5 kJ/m², while conditioned values commonly double. Compliance for interior cabin locations is limited to RoHS 2011/65/EU and REACH 1907/2006 SVHC screening; no automotive OEM flammability approval is implied unless the supplier datasheet lists FMVSS 302 or DIN 75200 results. Continuous service should remain below 80 °C for low-stress snap-fit parts; under-hood locations on hot engine surfaces are outside the creep–rupture envelope.
| State | Measurement basis | Numerical range | Process consequence outside range |
|---|---|---|---|
| Feed moisture before extrusion | Karl Fischer coulometric titration | < 0.10 wt% | Hydrolysis-induced voids, surface blush, Z-axis tensile loss |
| As-built dry part Charpy notched impact | ISO 179-1/1eA | below 5 kJ/m² in some batches | Brittle interlayer fracture on snap-fit deflection |
| Part equilibrated at 23 °C/50% RH | ISO 62 gravimetric | 2.0–2.5 wt% | Dimension growth and tensile modulus reduction |
| Water-saturated part | ISO 62 immersion at 23 °C | 7–9 wt% for PA6/66 | Severe modulus loss, creep under low load |
Robot end-of-arm couplings, vacuum gripper plates, and locating pins operate in dry mechanical contact where acetal is baseline due to low slip-stick; unfilled PA6/66 filament is not a drop-in equivalent because hygroscopic expansion alters the clearance on locating features by 0.2–0.6% from dry to 50% RH equilibrium. The parts are printed with a 0.4 mm nozzle at 265 °C, 95 °C bed, 0.10 mm layer height, 6 perimeters, and 70% gyroid infill to reduce air-filled void volume. A heated chamber at 60 °C minimises warp on long flat vacuum plate sections; without it, sharp corners can lift beyond acceptable flatness tolerance on parts longer than 150 mm. XY scaling is offset by 1.004–1.006 to compensate for post-conditioning growth. Sliding friction is screened by ASTM G99 pin-on-disk geometry against a ground Ra 0.8 µm steel counterface; conditioned PA6/66 typically exhibits kinetic coefficients of 0.25–0.45 under 5 N load. Compressive pads at the gripper interface are loaded below the compressive yield measured to ISO 604 on coupons conditioned at 23 °C/50% RH; sustained loads above 20 MPa compressive stress require creep tests because nylon cold-flows in machinery guarding environments. Pneumatic sealing applications with differential pressure above 0.2 bar fail due to interlayer porosity observed in pressure-decay testing. Terminal components include end-effector fingers, vacuum plates, and locating pins for assembly robots. Machinery safety assessment follows ISO 12100:2010; the printed parts are treated as replaceable wear elements rather than structural machine members.
A dimensional inspection fixture printed from unfilled polyamide 6/66 is a temporary metrology aid, not a substitute for tool steel or ceramic gauge bodies. The fixture is built at 0.10 mm layer height, 8 perimeters, and 100% solid infill to produce stable reference surfaces for coordinate-measuring machine contact probing. Post-print stress relief is performed in a constraining fixture at 100 °C for 1–2 h under vacuum; uncontrolled free annealing produces Z-axis curl and datum drift. After stress relief, the part is conditioned at 23 °C/50% RH until mass change over 24 h is less than 0.05%, which indicates moisture equilibrium. Linear expansion from dry to 50% RH equilibrium in moulded PA66 is typically 0.6%; printed parts can show higher Z-axis growth due to interlayer free volume, so the designer offsets the Z datum by a measured expansion factor rather than the moulded-material value. Geometric tolerances are evaluated according to ISO 1101; validation of the CMM fixture itself is performed on an ISO 10360-2 calibrated machine. Climatic control in the metrology room must hold relative humidity within ±10% RH; otherwise a 1 wt% moisture swing changes linear dimensions by roughly 0.2–0.3%. Terminal products include CMM holding plates, optical comparator locators, and go/no-go gauge plates for low-tolerance receiving inspection. Absolute tolerance below ±0.05 mm on features longer than 100 mm is not recommended across seasonal humidity cycles unless an active moisture-management protocol is documented.
Outdoor quick-release buckles and marine deck hardware require moisture-conditioned polyamide rather than dry as-built PA because the plasticising effect of absorbed water reduces notch sensitivity. These components are printed at 255 °C nozzle, 85 °C bed, 0.20 mm layer height, 5 perimeters, and 100% solid infill at latch hooks and load-bearing edges. The as-printed parts are conditioned in 70 °C water for 5–10 h or in 95% RH at 70 °C for 24 h; water absorption is tracked gravimetrically until the part reaches 2.0–3.0 wt% against the dry mass. Charpy notched impact is tested to ISO 179-1/1eA at 23 °C and at the lowest intended service temperature; low-temperature performance should be verified on the actual FFF coupon because layer orientation and moisture content interact. Tensile yield of conditioned PA6/66 is lower than dry material, so latch geometry should not use dry-state tensile data; design stress should be derived from ISO 527-2 conditioned values. Natural unfilled PA filament does not provide long-term UV stability; outdoor exposure above one season produces surface chalking and embrittlement. Components deployed outside for more than 12 months should be overmoulded or coated with an opaque UV-blocking lacquer, or a carbon-black-filled PA filament should be qualified because carbon black cannot be added to precompounded filament without pelletising. Terminal products include sail track slides, buckle frames, cam cleat wear plates, and kayak deck fittings. Environmental compliance is limited to REACH 1907/2006 and RoHS 2011/65/EU; no food-contact status is implied.
For CNC lathe soft jaws, milling clamp pads, and vice jaw covers, unfilled conditioned PA is substituted for acetal only when impact toughness is more important than rigidity, because the flexural modulus of unfilled PA6/66 is typically 1.4–1.8 GPa under ISO 178, whereas homopolymer POM is commonly 2.8–3.2 GPa. The parts are printed with a 0.6 mm nozzle, 0.25 mm layer height, 7 perimeters, and 90% triangular infill to handle compressive clamping loads. Extrusion at 270 °C and a 100 °C build plate improves layer adhesion in thick cross-sections; a heated enclosure at 70 °C reduces delamination at jaw corners. Compression yield is measured on conditioned cubes according to ISO 604 at 23 °C/50% RH; the resulting yield stress is used to cap clamping force so the jaw surface does not exceed 50% of yield under the actual contact area. CNC machines with pneumatic vices should have pressure regulators set to keep the clamping force below that calculated limit; creep at 60 °C is the binding constraint because nylon loses stiffness faster than POM near the HDT. Soluble oil coolant above 50 °C causes dimensional swelling and surface softening; dry machining or light flood coolant at ambient temperature is the operational boundary. Terminal products include serrated soft jaws, fixture pads, and replaceable vice jaw covers. Wear life is monitored by mass loss per 1000 cycles on a ASTM G99 pin-on-disk test; published data for this specific printed configuration is limited, so in-house wear screening is required before release.
When electrical cabinet gland plates, cable strain relief elements, and terminal block isolation plates are printed from unfilled PA6/66, the electrical values must be evaluated at the worst-case moisture content rather than on dry material. The parts are built at 260 °C nozzle, 90 °C bed, 0.15 mm layer height, and 6 perimeters with 100% infill around cable entry points to minimise through-thickness voids. Dry PA66 typically has dielectric strength near 20 kV/mm on 3 mm sheets per IEC 60243-1; after conditioning to 50% RH, the value falls because absorbed water increases charge carrier mobility. Comparative tracking index should be measured on conditioned specimens according to IEC 60112; published data for this specific filament is limited, so live-part clearance design must not rely on catalogue values. Creepage and clearance distances are designed to IEC 60664-1; uncoated printed surfaces can trap conductive dust and moisture at layer lines, reducing the pollution degree rating. Flame performance of natural unfilled polyamide is usually UL 94 HB at 1.5 mm thickness; components requiring V-2 or better must be verified on FFF coupons because wall thickness and void structure differ from injection-moulded plaques. Terminal products include gland plates, cable tie mounts, and busbar separation sheets for control cabinets. The application boundary is 50 V AC or 120 V DC unless the assembly is protected by a listed enclosure or the printed insulator is potted and tested to the final standard.
| Application | Standard or regulation | Relevant test or design basis |
|---|---|---|
| Automotive harness clips | ISO 527-2, RoHS 2011/65/EU, REACH 1907/2006 | Tensile strength and elongation after conditioning |
| Robotic end effectors | ISO 604, ASTM G99, ISO 12100:2010 | Compressive yield, sliding friction, machinery risk assessment |
| Metrology fixtures | ISO 1101, ISO 10360-2, ISO 62 | Geometric tolerance, CMM validation, moisture uptake |
| Outdoor buckles and marine hardware | ISO 179-1/1eA, ISO 527-2, REACH 1907/2006 | Notched impact, conditioned tensile yield, environmental screening |
| Machining soft jaws | ISO 178, ISO 604, ASTM G99 | Flexural modulus, compression yield, wear mass loss |
| Electrical cabinet components | IEC 60243-1, IEC 60112, IEC 60664-1, UL 94 | Dielectric strength, tracking index, creepage and clearance, flammability |
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The BASF 3D Ultrafuse PA Fused Filament, Conditioned is an unfilled polyamide-based feedstock for fused filament fabrication, supplied in 1.75 mm and 2.85 mm diameter formats. The base polymer is a polyamide 6/66 copolymer produced without chopped carbon fibre or mineral reinforcement; the conditioned designation identifies a bulk moisture state in the filament, not a surface coating. Supplier documentation places the product within the Ultrafuse PA family and specifies a packaging moisture target intended to maintain interlayer fusion behaviour during open-chamber printing. The conditioned state is achieved by controlled humidification of the wound spool to a defined residual water content before the spool is sealed in a desiccant-lined barrier film. The result is a filament that enters the hot end with more moisture than a dried PA grade and less than a moisture-saturated polyamide stored at ambient conditions.
Water in polyamide 6/66 acts as a temporary plasticizer. During deposition, the conditioned melt retains a lower viscosity at the road interface, which promotes polymer-chain diffusion across adjacent extrusion roads before crystallisation locks the weld line. The same moisture also depresses the glass transition of the amorphous phase and delays solidification, so the weld line remains above the critical chain-entanglement threshold for a longer portion of the cooling cycle. The mechanical consequence is measurable under ISO 527-2: conditioned XY specimens typically exhibit lower tensile modulus and higher elongation at break than freshly dried specimens of the same filament. Published technical literature for unfilled polyamide 6/66 FFF feedstock places conditioned tensile modulus in the range of 2,200–2,600 MPa, while dried samples may approach the upper portion of that band or slightly exceed it. Elongation at break commonly falls between 25% and 40% in conditioned specimens, depending on print orientation, nozzle temperature, and test speed. The shift is reversible: if the filament is dried to below 0.1 wt% water, the modulus increases and the weld-line ductility decreases.
Moisture uptake in this polyamide follows Fickian absorption behaviour. Under ISO 62 conditions of 23 °C and 50% relative humidity, an unfilled PA6/66 copolymer approaches an equilibrium water content of approximately 2.5–3.0 wt%. The conditioned product is packaged below that saturation point, generally within a 0.4–0.9 wt% window, so that the spool does not exhibit the gross steam pitting and road foaming associated with saturated nylon. Once the barrier packaging is opened, the moisture content drifts toward the ambient equilibrium value; at 50% relative humidity the drift is slow enough for a one-day print campaign, but at 70% relative humidity the spool can exceed the useful conditioning window within 24–48 h. Operators printing in high-humidity enclosures should transfer the spool to a desiccant chamber below 25% relative humidity between builds.
Mechanical and thermal data reported for conditioned unfilled polyamide 6/66 FFF specimens are summarised below as typical ranges, not guaranteed minima, because print orientation, nozzle temperature, infill geometry, and ambient humidity shift the values. Exact acceptance values should be taken from the supplier’s technical datasheet for the specific diameter and spool lot.
| Property | Typical range for conditioned XY specimens | Test method |
|---|---|---|
| Tensile modulus | 2,200–2,600 MPa | ISO 527-2 |
| Tensile stress at break | 40–50 MPa | ISO 527-2 |
| Nominal strain at break | 25–40% | ISO 527-2 |
| Flexural modulus | 1,800–2,300 MPa | ISO 178 |
| Charpy notched impact | 20–30 kJ/m² | ISO 179-1/1eA |
| Density | 1.10–1.14 g/cm³ | ISO 1183-1 |
| Heat deflection temperature, method B, 0.45 MPa | 75–95 °C | ISO 75-2 |
| Water absorption at saturation | 2.5–3.0 wt% | ISO 62 |
The wide heat deflection range reflects the shift in polyamide behaviour across different moisture states; a saturated part has a lower effective service temperature than a freshly conditioned part because plasticization reduces stiffness and accelerates creep under load. Creep rupture and long-term fatigue data for this specific filament are not fully published; any load-bearing specification should be validated on test coupons printed in the same orientation as the final component.
The melt processing window for conditioned PA is bounded by incomplete fusion below 235 °C and oxidative yellowing above 265 °C. A direct-drive all-metal hot end with a 0.4 mm brass or hardened steel nozzle is the baseline configuration; the first layer is typically deposited 5–10 °C above the remaining layers to promote adhesion. Build-platform temperature is maintained at 80–100 °C. Glass surfaces coated with a thin polyvinyl acetate glue layer are commonly used, although polycarbonate or PEI sheets can also be used if cleaned and roughened. Enclosed builds are not mandatory for small sections, but open-frame systems should maintain an ambient air temperature above 20 °C because cold draughts accelerate edge lift.
| Parameter or property | Conditioned product window or value | Reference method or equipment |
|---|---|---|
| Filament diameter | 1.75 mm and 2.85 mm, tolerance ±0.05 mm | Multi-axis laser micrometer |
| Conditioned moisture at packaging | 0.4–0.9 wt% | ISO 15512 Karl Fischer titration |
| Extruder temperature | 240–260 °C | All-metal hot end, PT100 thermistor |
| Build platform temperature | 80–100 °C | Silicone bed heater with glass/PEI or PVA adhesive film |
| Print speed, 0.4 mm nozzle | 30–60 mm/s | Open-frame Cartesian FFF |
| Layer height | 0.10–0.25 mm | Single nozzle, fixed layer |
| Drying before use | Not required while sealed; after moisture overshoot dry at 80 °C for 4–6 h | Desiccant or vacuum oven |
| Storage after opening | Below 25% relative humidity, resealed with desiccant | ISO 62 absorption monitoring |
Bowden-feed systems with tube lengths above 700 mm produce higher drag force with this filament than with PLA or PETG because conditioned polyamide is flexible and can buckle in unsupported tube bends. Production lines that convert from PLA to conditioned PA frequently retain the same extruder spring tension and then observe under-extrusion at print speeds above 60 mm/s. Reducing the idler compression and shortening the filament path to 400 mm or less restores feed consistency on direct-drive mounts. The heat break should be of an all-metal design with a cold-side fan delivering at least 5 CFM; if the build volume approaches 40 °C, the cooling fan must be ducted to prevent heat creep and plugging. Brass nozzles are acceptable for unfilled PA, but diameter erosion should be checked after 200 h of run time at the upper end of the temperature range.
Build planning for large-format parts should account for the crystallisation shrinkage of polyamide. On unheated open-frame machines, the first 10–20 mm of a long part can curl upward because the bed temperature at the outer edges is often 10–15 °C below the centre setpoint. Adding a full-height brim and maintaining a bed surface flatness better than 0.2 mm reduces this defect more effectively than increasing extrusion temperature alone. Adhesive films should be inspected for wear after each build because polyamide can tear the film surface when removed warm. Warm part removal is preferred; removing a part from a cold bed below 40 °C can peel the adhesive film or fracture thin base flanges.
Where cutting fluids, mineral oil, or aliphatic hydrocarbon exposure governs the specification, polyamide is generally screened after chemical compatibility testing under ISO 175 or ASTM D543. The PA6/66 backbone shows lower swelling in mineral oil than many PLA and PETG grades, but the same polymer absorbs polar solvents and water more aggressively than amorphous PETG. A part moved from a 30% relative-humidity inspection room to a 70% relative-humidity installation can exhibit linear expansion above 0.5% depending on section thickness and local moisture equilibration time. Toleranced features should therefore be evaluated after a humidity stabilisation period, not immediately after print removal. Compared with PLA, the conditioned PA has lower tensile modulus and higher elongation at break under ISO 527-2; PLA datasheets frequently report tensile modulus between 3,000 MPa and 3,500 MPa, whereas this conditioned polyamide is typically below 2,600 MPa. The trade-off is inverted in fatigue and impact: the PA grade’s ductility and notch-insensitive response to ISO 179-1/1eA loading often exceed PLA and ABS in thin-wall fixtures.
Test data for this filament are commonly generated on FFF specimens printed in the XY axis and conditioned to a standard atmosphere before testing. XY values should not be compared directly with injection-moulded ISO specimens because the road structure introduces porosity and anisotropic strength. Z-axis tensile strength is typically lower than the XY value and depends on layer height, nozzle temperature, and chamber temperature. Designers using this material should request or generate Z-strength data where the load path crosses layer boundaries; published data for this specific configuration is limited beyond the supplier’s XY datasheet.
Profiles written for dried PA require adjustment when the conditioned product is loaded. Lower melt viscosity alters die swell and stringing behaviour; retraction distance on direct-drive systems may need to be increased from 1.0 mm to 1.5–2.5 mm, and Bowden systems may require 4–6 mm, depending on nozzle diameter and barrel temperature. Drying the conditioned product before use removes the very moisture that improves interlayer toughness. The operational boundary is therefore narrow: the spool should remain sealed until loaded, and partial spools should be returned to a desiccant chamber below 25% relative humidity within 4 h of exposure. If the material has exceeded 0.9 wt% moisture due to ambient storage, recovery consists of drying at 80 °C for 4–6 h, followed by reconditioning at 23 °C and 50% relative humidity until extrusion no longer produces visible steam pitting. For carbon-fibre-reinforced Ultrafuse PAHT grades, the stiffness and heat deflection temperature are higher, but the conditioned unfilled grade generates less nozzle abrasion and retains higher elongation at break.
Failure modes documented on open-enclosure FFF systems include edge lift at the build surface, interlayer delamination in thin-walled zones, and microbubble formation when moisture exceeds approximately 1.2 wt%. Microbubbles are not merely cosmetic defects; they reduce the effective load-bearing cross-section and lower tensile strength under ISO 527-2. Sections with wall thickness above 4 mm are particularly prone to midplane residual stress from crystallisation shrinkage, so a heated chamber or enclosed build volume is recommended. Without a chamber, reducing layer height to 0.15 mm and increasing perimeters to at least 4 suppresses visible stress-relief cracking at the part base. Dimensional inspection should occur no earlier than 24 h after printing and at a controlled relative humidity, because conditioned polyamide continues to exchange moisture with the environment for several days. Any downstream bonding operation should be validated after that stabilisation period, because residual moisture affects paint adhesion and solvent-borne coating performance.