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BASF 3D Ultrafuse ABS Fusion+ Fused Fillament

    • Название продукта: BASF 3D Ultrafuse ABS Fusion+ Fused Fillament
    • 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 525245

    Как аккредитованный завод BASF 3D Ultrafuse ABS Fusion+ Fused Fillament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка One 750 g spool of BASF 3D Ultrafuse ABS Fusion+ filament, vacuum-sealed with desiccant in a branded cardboard box.
    Погрузка контейнера (20-футовый контейнер) Container Loading (20′ FCL) for BASF 3D Ultrafuse ABS Fusion+ Fused Filament: palletized spools, securely stowed, moisture-protected, compliant with shipping regulations.
    Доставка BASF 3D Ultrafuse ABS Fusion+ Fused Filament: non-hazardous thermoplastic filament on spool; not regulated for transport. No UN number, hazard class, or packing group assigned. Suitable for standard ground, air, and ocean freight under normal conditions. Protect from moisture, heat, and impact. Keep sealed until use.
    Хранение Store BASF 3D Ultrafuse ABS Fusion+ Fused Filament in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and open flames. Keep it in its original sealed bag with desiccant to prevent moisture absorption. Avoid prolonged humid-air exposure; dry before use if needed. Maintain stable ambient temperature and protect from physical damage and UV radiation.
    Срок годности Store in original sealed packaging, cool and dry; typical shelf life 12 months when protected from moisture, heat, and UV.
    Применение плавленного наполнения BASF 3D Ultrafuse ABS Fusion+
    When a tier-1 interior trim operation shifts model-year tooling inside a 6-week window, the printed fixture is prepared from BASF Ultrafuse ABS Fusion+ with a forced-air drying step at 80 °C for 4 h. The spool is transferred to a direct-drive FDM machine only after the moisture content falls below 0.2 wt%. The extrusion zone is set to 250 °C. The build plate is held at 105 °C. The enclosed chamber is maintained at 60 °C. A 0.4 mm hardened brass nozzle is used. The first layer is deposited at 0.20 mm thickness with an extrusion multiplier of 1.4 against a thin 5 wt% ABS/acetone adhesion film. The bulk layer height is fixed at 0.15 mm. For locating holes, 4 perimeter walls and 60 % gyroid infill are specified because the holes are post-machined with H7 reamers. The fixture body is printed undersized by 0.15 mm on the reamed bores. Hole centre-to-centre tolerance is verified at ±0.20 mm under ISO 2768-1 class m using a coordinate measuring machine. The dominant production-scale failure occurs on open-frame machines. When chamber temperature drops below 50 °C, base corner lift exceeds 1 mm over a 300 mm fixture length and the part is rejected. Stress relief is performed at 80 °C for 4 h before any datum grinding. The same workflow is used for headlamp bracket positioning plates, trim punch-hole alignment gauges, and seat-latch audit fixtures.

    What Limits the Use of Unfilled ABS in Printed Circuit Board Enclosures?

    The unfilled styrenic housings are printed at a layer height of 0.12 mm to keep snap-fit bosses dimensionally stable during threaded-insert installation. A boss with 2.5 mm wall thickness and 60 % infill fails by radial cracking when a brass insert is heat-set at 180 °C. The same boss with 4.0 mm wall thickness and 80 % linear infill survives insertion torque of 1.2 N·m. The printed material is electrically insulating. Surface resistivity measured under ASTM D257 on a 2.0 mm slab is typically above 1×1012 Ω. The unfilled styrenic feedstock is not an ESD dissipative compound. Active PCB handling requires a conductive coating or a grounded external carrier. Flammability classification is not assumed from pellet data. A 2.0 mm test bar printed at 0.15 mm layer height is evaluated under UL 94 HB. Mains-voltage housings are checked for creepage and clearance under IEC 60664-1. Supplier documentation is reviewed against Directive 2011/65/EU and Commission Delegated Directive (EU) 2015/863 for RoHS. The safety data sheet is filed under Regulation (EC) No 1907/2006. Enclosure walls use 3 perimeter walls, 30 % triangular infill, and 0.20 mm layer height. EMI shielding is applied as an internal acrylic-copper spray of 10–15 µm thickness after 6–8 s of acetone vapour smoothing at 40 °C. The smoothing step reduces surface porosity but can tighten snap-fit grooves. Post-smoothing dimensional inspection is required.
    ApplicationStandard or directiveConditionBoundary
    PCB enclosure creepageIEC 60664-1Printed wall 2.0 mmMains-voltage clearances
    Surface resistivityASTM D2572.0 mm slabAbove 1×1012 Ω
    FlammabilityUL 94 HB2.0 mm barHB rating on printed bar
    Restricted substancesDirective 2011/65/EUSupplier declarationRoHS 2

    Solvent-Resistant Wash-Down Covers for Laboratory Automation Equipment

    For pipetting robots and benchtop analysers, protective covers are printed from BASF Ultrafuse ABS Fusion+ where cleaning protocols use 70 % isopropanol wipes. The filament is dried to a moisture content below 0.2 wt% before use. Because wipe-down cycles create repeated tensile stress at the cover lips, the shell thickness is set to 3.0 mm and the top layer to 0.25 mm. Infill is fixed at 70 % cubic density. The build chamber is held at 60 °C to limit layer-interface porosity. A 0.6 mm brass nozzle with layer height 0.25 mm reduces total print time on large covers. Edge sealing is achieved with a 0.4 mm solvent-welded bead of acrylic adhesive. The design must avoid sharp internal radii below 1.0 mm under service stress. Acrylonitrile-butadiene-styrene copolymers are susceptible to environmental stress cracking when cleaning agents contact highly stressed surfaces. The operational limit is therefore specified at no continuous immersion, only wipe exposure for less than 60 s per cycle. The service temperature is capped at 60 °C. Under these conditions the covers are used for non-sterile, non-patient-contact equipment. Biocompatibility certification under ISO 10993-5 is not required and is not claimed. Compliance reviews follow the Machinery Directive 2006/42/EC for guard covers, with risk assessment for chemical exposure under REACH. Printed cover geometries are verified for form-fit using a 3D scanner. Deviations are maintained within ±0.30 mm across a 250 mm span.Coolant distribution blocks for low-pressure closed-loop test stands are printed as one-piece bodies to replace five-axis machined acetal assemblies. The service fluid is a 30 % ethylene glycol/water mixture at 45 °C and 0.6 MPa. The ABS material shows acceptable dimensional stability in glycol/water at this temperature. The block is printed in a horizontal orientation with the port axis perpendicular to the build plate to avoid elliptical bores. Internal channels are designed with a minimum diameter of 4.0 mm and printed without support fill by restricting the channel slope to 30° from vertical. The print recipe uses a 0.4 mm hardened nozzle, 0.12 mm layer height, 8 perimeter walls, and 100 % rectilinear infill. Sealing of the layer interfaces is completed by vacuum impregnation with a low-viscosity epoxy resin at 0.8 kPa for 15 min, followed by curing at 60 °C for 2 h. The sealing step is mandatory. Unsealed printed bodies leak at interfaces when pressured above 0.3 MPa. Threaded ports use brass inserts with a minimum boss outer diameter of 8.0 mm. Flow testing is performed at 25 °C with water at 0.5 MPa for 4 h. No visible leakage is the acceptance criterion. Pressure ratings are not derived from the material alone. They depend on wall thickness, layer adhesion, and sealing. Published burst data for this specific printed manifold configuration is limited. A safety factor of 3:1 is therefore applied for any shop-floor trial. The design dossier references the Pressure Equipment Directive 2014/68/EU only for category assessment. Most 45 °C water/glycol blocks below 0.6 MPa fall below Article 4, paragraph 3. Dimensional inspection follows ISO 286-1 for port bores and ISO 1101 for position tolerances. Chemical compatibility is checked under ISO 175 for 168 h immersion at 45 °C. Swell is monitored at 0.1 mm on a reference cube.

    When Consumer Functional Prototypes Replace Injection-Moulded ABS Pre-Series Parts

    High-impact housing prototypes for handheld power tools are printed when injection-moulded pre-series tooling is not available within the 8-week validation window. The printed prototypes are used for drop tests, grip evaluations, and assembly trials. The material is processed with a 0.4 mm nozzle at 255 °C and a 105 °C build plate. The build chamber is kept at 60 °C for consistent layer fusion. The shell geometry uses 3 perimeter walls and 40 % grid infill. The layer height is 0.15 mm on structural walls and 0.25 mm on cosmetic outer surfaces. For snap-fit arms, the print orientation places the arm in the X-Y plane because Z-direction tensile strength is lower by approximately 40 % compared with the in-plane value. Hole bosses are reinforced with 6 perimeter walls and 90 % infill. Drop testing is performed under IEC 60068-2-31 with a 1.0 kg mass dropped from 0.5 m onto a concrete tile. The prototype accepts the same overmoulded rubber grips as the moulded part after post-print abrasive smoothing with 240-grit paper. The surface is vapour-smoothed in an acetone atmosphere for 10 s at 45 °C only if the part requires surface porosity closure. Warpage after vapour smoothing is controlled by limiting exposure time and rotating the part every 2.5 s. Compliance for the consumer product is limited to REACH Article 33 communication and the General Product Safety Directive 2001/95/EC. The material is not intended for food-contact articles. Regulation (EU) 10/2011 has not been evaluated for printed ABS surfaces. Functional prototypes are marked as non-production and not sold.

    Layer Adhesion Failure in Vacuum Forming Tool Inserts With Heated Contact Surfaces

    Vacuum forming tool inserts are produced for thin-gauge PET prototype trays where tool surface temperature remains below 70 °C. The forming sheet temperature is controlled at 120 °C and contact time at 8 s. Inserts are printed with a 0.6 mm nozzle, 0.25 mm layer height, 12 perimeter skins, and 40 % triangular infill. The vacuum channels are integrated into the print as round holes of 1.5 mm diameter spaced 25 mm apart. The plenum is printed as a separate chamber and sealed with a cyanoacrylate gasket groove. This configuration is not suitable for thick-gauge polypropylene forming above 140 °C surface temperature. Prolonged contact with sheet temperatures above 90 °C softens the layer interfaces and causes surface indentation greater than 0.5 mm. The tool is therefore restricted to low-temperature sheet materials. A release film of 0.1 mm PTFE is applied to reduce sticking and to extend tool life to 200 cycles. The tool surface is checked with a stylus profilometer before each run. Z-handle fixtures are bolted through 10 mm diameter steel standoffs inserted into printed bosses. The operation is validated by a forming trial using 0.35 mm PET sheet at 120 °C. Dimensional checks of formed trays are compared with a reference machined tool. The printed insert is not suitable for production forming lines where clamp pressures exceed 0.6 MPa. This limitation is documented in the engineering file.
    Бесплатная цитата

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    Сертификация и соответствие требованиям
    Более подробное введение

    BASF 3D Ultrafuse ABS Fusion+ is an acrylonitrile-butadiene-styrene feedstock supplied as a monofilament for material extrusion processes defined in ISO/ASTM 52900. The product belongs to the Ultrafuse family formerly distributed under BASF 3D Printing Solutions and now handled within the Forward AM portfolio. It is available in 1.75 mm and 2.85 mm diameters with a supplier-listed diameter tolerance of ±0.05 mm. The compound is unfilled and is not a fiber-reinforced grade; the butadiene rubber phase provides impact toughness below the styrene-acrylonitrile glass transition temperature near 105 °C. The material is therefore positioned as a general-purpose technical ABS filament with modifications intended to reduce the known FFF failure modes of interlayer delamination and platform warp. Its model designation ABS Fusion+ distinguishes it from standard ABS grades and from filled or high-temperature styrenic blends in the same Ultrafuse line.

    Filament manufacturing begins with pellet feedstock processed through a twin-screw compounding line having an L/D ratio typical of 30:1 to 40:1, followed by melt filtration and air-cooled filament drawing. Closed-loop laser micrometer feedback is used to control diameter variation, and winding tension is held constant to prevent spool cross-overs on reverse Bowden extruders. Batch-to-batch variation in ABS grades usually appears as changes in melt viscosity and die swell, which in turn influence the effective extrusion width at a given nozzle temperature. For this reason, a new spool should be calibrated with an extrusion multiplier test using a single-wall cube and a measurable road width before production parts are started.

    When Enclosure Temperature Is Insufficient, What Processing Defects Emerge?

    In open-frame Cartesian and CoreXY machines, printed ABS parts develop internal cooling stress as the extrudate solidifies below the styrene-acrylonitrile glass transition. The outer road surface contracts while the interior remains above the solidification threshold. If the heated bed is maintained at 90–110 °C but the ambient chamber remains below 35 °C, parts with X/Y dimensions above 150 mm can exhibit corner delamination and first-layer fissure growth. The failure mode is most severe at acute corners with radii below 5 mm because stress concentration scales inversely with corner radius. On a production run using a 0.4 mm brass nozzle at 60 mm/s, the upper layers act as a constrained skin that imposes tensile stress on the bed-adhesion interface. Printed ABS Fusion+ is formulated to reduce this differential contraction relative to general-purpose ABS, but the reduction is not a replacement for thermal management. Field data from open-frame printers show that a raised brim of 8–10 mm width at 0.1 mm separation reduces edge peel by increasing the bonded area between the first layer and a polyimide or PEI substrate. For parts taller than 100 mm, a passive enclosure maintaining 35–45 °C ambient temperature stabilizes the solidification rate and prevents mid-part delamination along the Z-axis. The use of an unheated chamber for large flat geometries remains an operational boundary, not a recommended production condition.

    The first-layer deposition window is narrower than for unfilled general-purpose ABS. Bed temperature below 90 °C reduces adhesion to polyimide surfaces and increases the probability of corner lift, while bed temperature above 110 °C can soften the lower layers and produce a condition known as elephant-foot at the build platform interface. First-layer speed should be reduced to 20 mm/s or lower on unenclosed printers, with first-layer height set to 0.20–0.25 mm to create a more compliant road profile. The nozzle temperature for the first layer may be increased by 5 °C above the body profile to promote wet-out on the build surface.

    Drying and Melt Residence Limits

    ABS Fusion+ absorbs sufficient moisture to generate observable processing defects when spools are stored in an uncontrolled environment. The supplier-recommended drying schedule is 80 °C for 4 h in a forced-air convection oven. Spools exposed to relative humidity above 60% for more than 24 h should be dried before printing. Moisture evolves during melt deposition, producing surface fogging and interfacial porosity between adjacent roads. Unlike polyamides, ABS does not undergo rapid hydrolytic main-chain scission at printing temperatures, but absorbed water increases the energy demand at the nozzle and causes irregular filament swell at the die. This swell changes the effective extrusion width and degrades dimensional accuracy. After drying, spools should be stored at 15% RH or lower or in a sealed desiccant container. A dry-box purge with silica gel or molecular sieve is sufficient for continuous use.

    Melt residence limits are not published as an absolute value, but prolonged nozzle dwell above 260 °C degrades the butadiene phase and produces brown discoloration, acrid odor, and notch sensitivity in printed test coupons. The practical maximum continuous idle time at print temperature should be kept below 30 min, after which the melt should be purged. If the hotend thermistor drifts by more than ±3 °C, the melt temperature may exceed the intended window even when the control setpoint remains unchanged.

    The recommended body nozzle temperature range is 240–260 °C for a 0.4 mm nozzle. Larger nozzles above 0.6 mm may require the upper end of the temperature range because volumetric flow rate increases and heat transfer from the hotend wall to the melt must compensate for shorter residence time. The bed temperature range of 90–110 °C is at the upper end of standard ABS settings. The typical print speed window is 30–60 mm/s for a 0.4 mm nozzle at 0.2 mm layer height. Under these conditions, the nominal volumetric flow rate is 4.8 mm³/s. Exceeding the hotend volumetric capacity produces under-extrusion, intermittent road width, and poor interlayer coalescence. For a standard E3D-style all-metal hotend without a high-flow heat break, the volumetric limit may fall between 10 mm³/s and 15 mm³/s, so speed increases must be matched to the melt zone design.

    Active part cooling should remain off for solid layers to allow road interfaces to remain above the coalescence threshold. For unsupported overhangs, cooling fan duty up to 20% can be used, but higher airflow can quench the surface and reintroduce differential shrinkage. For bridges, fan duty may be increased only if bridging length exceeds 10 mm; bridge speed should be raised to 60 mm/s and extrusion multiplier reduced to 0.95 to tension the extrudate.

    If Production Demands Low-Warp ABS Without Active Chamber Heating

    Ultrafuse ABS Fusion+ is selected in production environments where a general-purpose ABS cannot meet warp rejection limits, but an actively heated chamber is not available. The material permits bed adhesion on polyimide, PEI, or ABS slurry surfaces at 100 °C. The lower warp tendency reduces reject rates for flat parts with perimeter length above 500 mm, provided the first-layer geometry includes corner chamfers or radii above 5 mm. However, PC/ABS blends generally retain higher deflection temperatures under load according to ISO 75-2 and are preferred when parts see continuous service above 90 °C. For outdoor exposure, ASA is preferred because the butadiene phase in ABS is inherently sensitive to ultraviolet degradation and can exhibit yellowing, chalking, and embrittlement. These substitutions should be governed by the mechanical loading regime and environmental exposure, not by process convenience alone.

    In comparison with standard ABS filament, the Fusion+ grade is designed to address the anisotropy observed under ISO 527-2. In FFF parts, ZX tensile strength can be 50–70% lower than XY tensile strength because road-to-road adhesion is limited by polymer interdiffusion at the interface. ABS Fusion+ is formulated to broaden the coalescence window between deposited roads. Manufacturer datasheets report tensile, flexural, and impact values using printed specimens conditioned at 23 °C and 50% RH, but published data for all raster configurations is limited. Designers should request the supplier technical data sheet and perform boundary testing on the target printer because Z-strength depends on nozzle temperature, layer height, and chamber thermal uniformity. A part printed at 240 °C with 0.1 mm layers may exhibit higher Z-strength than the same geometry printed at 260 °C with 0.25 mm layers due to longer inter-road contact time and higher void closure.

    For mechanical property comparisons, the following test methods apply to this ABS grade when specimens are printed and conditioned according to the material data sheet.

    Processing ParameterRecommended RangeHardware or Condition
    Drying80 °C for 4 hForced-air convection oven
    Nozzle temperature240–260 °CAll-metal hotend, 0.4 mm nozzle
    Bed temperature90–110 °CPolyimide, PEI, or ABS slurry surface
    Layer height0.10–0.25 mm0.4 mm nozzle
    Print speed30–60 mm/sStandard all-metal hotend
    First-layer speed20 mm/s or lowerUnenclosed printer
    Active cooling0% solid layers; up to 20% overhangsPart cooling fan
    Enclosure ambient35–45 °C for parts above 150 mmPassive or active chamber

    Mechanical property data for this specific filament are best interpreted through a standards matrix rather than raw values without print context.

    Property CategoryTest StandardRelevant to Ultrafuse ABS Fusion+
    Tensile strength and modulus, XY and ZXISO 527-2Quantifies interlayer anisotropy and road coalescence
    Flexural modulusISO 178Bending stiffness for jigs, fixtures, and enclosures
    Deflection temperature under loadISO 75-2Compares continuous-service thermal resistance with PC/ABS
    Vicat softening temperatureISO 306Short-term surface thermal resistance
    Charpy notched impactISO 179-1/1eAButadiene-phase toughness after printing
    DensityISO 1183Feedstock and void-content evaluation
    Melt volume-flow rateISO 1133-1Batch consistency and nozzle residence time comparison
    Terminology and process classificationISO/ASTM 52900Material extrusion and FFF documentation

    Chemical compatibility follows the solvent-resistance profile of general-purpose ABS. Ketones such as acetone and methyl ethyl ketone, esters, and chlorinated solvents swell or dissolve the surface. Acetone vapor smoothing is frequently applied to ABS parts to reduce layer lines, but thin walls below 2 mm may develop stress crazing after extended vapor contact. Alcohol-based cleaners are generally non-solvent for ABS and are suitable for light surface removal. During melt extrusion between 240 °C and 260 °C, traces of styrene and acrylonitrile may evolve; local exhaust ventilation should keep styrene exposure below the OSHA 8-hour permissible exposure limit of 100 ppm. The material is not represented as food-contact compliant under FDA 21 CFR 177.1020 or the corresponding EU migration framework without end-use validation. The printed article, pigments, additives, and print surface contamination must be assessed before any food or medical application. For industrial use, the safety data sheet and REACH registration status should be confirmed with the supplier before deployment in a production cell. Published data for some application-specific configurations is limited, and verification on the target equipment remains a mandatory control step.

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