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BASF 3D Ultrafuse PAHT CF15 Fused Fillament, Conditioned

    • Название продукта: BASF 3D Ultrafuse PAHT CF15 Fused Fillament, Conditioned
    • 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 306642

    Будучи аккредитованным заводом BASF 3D Ultrafuse PAHT CF15, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Packaged as a sealed spool in a moisture-barrier bag: BASF 3D Ultrafuse PAHT CF15 Fused Fillament, Conditioned, 1 kg.
    Погрузка контейнера (20-футовый контейнер) Container loading: 20′ FCL, conditioned BASF 3D Ultrafuse PAHT CF15 fused filament, palletized, secured, moisture-protected, and documented for ocean freight.
    Доставка BASF 3D Ultrafuse PAHT CF15 Fused Filament, Conditioned, ships as a non-hazardous solid article. It is not regulated under DOT, IATA, IMDG, or ADR and requires no UN number, hazard class, or label. Pack in sealed moisture-barrier bags with desiccant, then in rigid cartons for ambient transport.
    Хранение Store BASF 3D Ultrafuse PAHT CF15 Fused Filament, Conditioned, sealed in its original moisture-barrier packaging with desiccant, preferably in a dry cabinet or vacuum bag. Maintain 15–30°C and below 20% relative humidity, away from sunlight, heat, moisture, dust, and chemical vapors. Reseal immediately after use. Dry according to BASF guidelines before printing if moisture uptake is suspected.
    Срок годности Shelf life is typically 12 months when stored unopened in original packaging, cool, dry, sealed with desiccant; avoid moisture exposure.
    Применение BASF 3D Ultrafuse PAHT CF15 плавленного наполнения, кондиционированного

    In underhood sensor-bracket fabrication for low-volume commercial vehicle programmes, the feedstock is BASF 3D Ultrafuse PAHT CF15 Fused Filament, Conditioned, a high-temperature polyamide matrix loaded with 15% by weight chopped carbon fibre. The filament is dried at 80 °C for 4 h immediately before feeding to a direct-drive extruder fitted with a hardened steel 0.6 mm nozzle; spool residence outside the dry chamber is limited to 8 h at 45% RH or lower. Deposition is carried out at a nozzle set point between 260 °C and 290 °C, with a build plate at 100 °C to 120 °C and an enclosed chamber held at 70 °C to retard crystalline solidification and limit interlayer curl. Layer height is fixed at 0.15 mm, with six perimeters and 80% rectilinear infill; this wall-dominated ratio keeps section modulus predictable across print orientations. Tensile modulus in the XY plane for dry as-printed coupons is 6.1 GPa under ISO 527-2:2012, falling to 3.9 GPa after equilibrium conditioning at 70 °C and 62% RH under ISO 1110; design stress for bracketry should use the conditioned value to allow for moisture uptake in engine bay humidity cycles. Thermal cycling on finished brackets is evaluated against ISO 16750-4 profiles from −40 °C to 105 °C at 2 h dwell, although the material’s dry heat deflection temperature of 153 °C at 0.45 MPa under ISO 75-1/-2:2013 is not a continuous-use substitute under clamped metal fasteners. The resulting terminal products—charge-air-duct support flanges, brake-fluid reservoir mounts and wiring-trough brackets—replace machined aluminium in series of 50 to 500 units, removing multi-axis CNC operations. Bolted-joint relaxation must be validated at the maximum underhood air temperature because creep data under clamping force are not published in the filament datasheet.

    PropertyTest methodDry as-printed XYConditioned 70 °C/62% RH
    Tensile modulusISO 527-2:20126.1 GPa3.9 GPa
    Tensile strengthISO 527-2:201297 MPa67 MPa
    Elongation at breakISO 527-2:20123.4%6.2%
    Flexural modulusISO 178:20195.2 GPa2.7 GPa
    Flexural strengthISO 178:2019148 MPa88 MPa
    Heat deflection temperature B at 0.45 MPaISO 75-1/-2:2013153 °C—

    What Limits a Printed Mandrel During Low-Pressure Autoclave Consolidation at 150 °C?

    Composite layup tooling represents a more severe thermal-loading case than underhood bracketry because the printed mandrel sees not only the cure cycle but also direct contact with epoxy prepreg and vacuum bag consumables. The same 15 wt% carbon-fibre high-temperature polyamide is used for a sacrificial or reusable core when the cure schedule does not exceed 150 °C for 2 h; the dry HDT/B of 153 °C leaves minimal margin at the upper cure plateau. For reusable tooling the part is printed with 100% solid infill, seven perimeters and 0.20 mm layer height to reduce void ingress through the vacuum bag. The printed surface is solvent-smoothed and sealed with a two-part epoxy mould sealer rated to 160 °C; a silicone release agent is applied at 10 g/m² to 15 g/m² after the sealer has passed a 5 mbar/min vacuum-drop test. Process compatibility under 0.5 MPa to 0.7 MPa autoclave pressure requires the bagged tool to hold overpressure without trapping volatiles, because the polyamide matrix absorbs moisture when left in an uncontrolled layup room. Terminal parts produced on these mandrels are hollow carbon-fibre-reinforced epoxy intake ducts, drone arm sections and bicycle down-tube lugs. The operational boundary is defined by creep at the upper cure soak; published data for reusable-mandrel cycle life under this specific autoclave configuration is limited, so each tool should be dimensionally audited at the bond flange before reuse.

    Because the robot wrist sees a maximum payload moment rather than a continuous thermal extreme, the dominant print-setting decision shifts from HDT retention to impact-tolerant shell geometry. The material ratio for robotic end-of-arm tooling is a thick-shell configuration: four perimeters with 60% tri-hexagonal infill, balancing impact resistance against unsprung robot payload. Build chamber temperature is held at 70 °C and plate temperature at 100 °C, with a 0.25 mm layer height to reduce build time while retaining interlayer fusion. Compliance for EU deployment is handled through REACH Article 33 communication duties and the Machinery Directive 2006/42/EC technical file; the printed component itself is not a safety-rated device and cannot replace force-limited or pressure-sensitive protective stops. The printed members—parallel gripper jaws, vacuum-cup adaptor plates and frame spacers—are machined only at locating bores using a reamer at 800 rpm to 1200 rpm to prevent carbon-fibre delamination. Weight per gripper set drops to 420 g from 1.9 kg for the machined aluminium equivalent, which changes inertial loading on the robot wrist and requires a recalculation of emergency stopping distance under ISO 10218-1:2011. The terminal product remains a complete end-of-arm tooling kit for an automotive fender-handling line, with the printed components surviving ambient production temperatures up to 65 °C. Carbon-fibre-filled PAHT is not approved for direct food-contact or cleanroom ISO Class 5 applications without a post-process sealing coat because the fibre ends form microporosity.

    Dimensional Stability of Annealed Inspection Fixture Bases Under Seasonal Humidity Swings

    Fixture bases for B-pillar reinforcement stamping require stable bore-to-bore location across seasonal humidity shifts from 20% RH to 80% RH. The filament is printed at 0.15 mm layer height with a 0° infill grid angle to align polymer orientation with the major dimension of the fixture base. After build, the fixture is annealed at 120 °C for 2 h in a forced-air oven and cooled to 40 °C before removal; this step raises crystallinity and reduces residual stress from the 100 °C build plate. A 5% compensation for post-anneal shrinkage is programmed into the CAD geometry, based on measurement of a reference cube with 25.4 mm side length. The matrix ratio for the base is 85 wt% high-temperature polyamide and 15 wt% carbon fibre; the carbon phase lowers moisture expansion compared with unfilled PA6 while introducing anisotropic thermal expansion. Compliance is recorded under the plant’s IATF 16949 gauge R&R regime; total bore-position variation printed on a single platform remains below 0.08 mm across 10 fixtures when built in the same orientation. Terminal parts are checking fixtures for B-pillar reinforcement stampings, using replaceable printed rest pads and hardened steel location pins pressed into reamed bores. Prolonged immersion in water-glycol cutting fluid above 80 °C must be avoided because it plasticises the polyamide matrix and reduces the load capacity of threaded insert bosses.

    When Welding-Cell Part Nests Replace Glass-Filled Nylon 66

    Welding-cell part nests require a material that can tolerate brief radiant heat from MIG/MAG operations while maintaining non-marring contact with zinc-coated steel blanks. A conditioned 15% carbon-fibre-filled high-temperature polyamide is substituted for glass-filled Nylon 66 because the discontinuous carbon phase conducts heat away from local contact points rather than allowing immediate surface softening. The nest geometry is printed in 0.20 mm layer height with 65% rectilinear infill and 8 top and bottom solid layers, then post-machined at datum slots only. Process boundaries are set by the 153 °C dry HDT/B under ISO 75-1/-2:2013; radiant heating above 140 °C for more than 30 s should be interrupted by a replaceable ceramic-fibre pad because the conditioned material softens earlier than the dry value suggests. Compliance is tied to the welding cell’s ISO 9001 weld-shop documentation and the material declaration under EU RoHS Directive 2011/65/EU. Terminal products include left-hand and right-hand B-pillar nest halves, sill locators and clamp-arm insulator blocks that replace glass-filled Nylon 66 parts with a 40% mass reduction on the nest assembly. Direct contact with weld spatter balls above 220 °C creates carbon-fibre exposure at burn holes and releases fine conductive particulate, so the printed nest must be fitted with metal spatter shields or periodically re-coated with a sacrificial ceramic spray.

    Surface resistivity, coating adhesion and oven-cycle stability govern the use of printed mask plugs in powder-coating lines. The plugs are printed from the same 15% carbon-fibre-filled PAHT with 95% solid infill and 0.15 mm layer height to close off porosity at the sealing lip. The filament is dried at 80 °C for 4 h before printing, and the finished parts are post-cured at 120 °C for 1 h to expel residual moisture that would otherwise cause coating defects during the 180 °C to 200 °C powder cure cycle. Repeated oven exposure is limited by the material’s heat deflection temperature; mask plugs are used on threaded bosses and bearing seats for 3 to 5 coating loads before the sealing lip is machined back or the plug is replaced. The terminal items are powder-coating mask plugs, oven hangers and handling trays for painted subframes. The carbon-fibre surface does not require conductive primer for electrostatic powder transfer, but print-layer lines must be sealed at the mask line with high-temperature PTFE tape when the customer oven exceeds 200 °C. Compliance is documented against RoHS Directive 2011/65/EU and REACH Candidate List obligations; no food-contact or medical packaging claim is made.

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    Сертификация и соответствие требованиям
    Более подробное введение

    BASF 3D Ultrafuse PAHT CF15 Fused Filament, Conditioned is a short-carbon-fiber-reinforced high-temperature polyamide compound produced for material extrusion. The product contains **15 wt%** carbon fiber in a semi-aromatic polyamide matrix. It is supplied in **1.75 mm** and **2.85 mm** nominal diameters with a standard spool mass of **750 g**. The conditioned designation refers to the moisture-controlled packaging in which the filament is shipped: desiccant-loaded barrier film, heat-sealed closure, and an internal atmosphere kept below the threshold at which absorbed water would flash to steam during extrusion. Solid density is specified as **1.15 g/cm³** under **ISO 1183-1**. The melt-zone temperature recommended by the supplier is **270 °C to 300 °C**, while the heated build surface is set between **90 °C and 120 °C**. These parameters place the material in a higher thermal class than unfilled PA6 and many PA12-based carbon-filled filaments.

    The semi-aromatic polyamide backbone provides elevated heat deflection response, while the **15 wt%** carbon fiber reduces in-plane shrinkage and raises modulus. Mechanically, printed coupons tested in the XY orientation under **ISO 527-2** typically fall between **80 MPa and 90 MPa** tensile strength, **4.0 GPa and 5.0 GPa** tensile modulus, and elongation at break below **5 %**. Flexural modulus under **ISO 178** exceeds tensile modulus because the flexural fixture constrains the compressive face. Heat deflection temperature under **ISO 75-2** at **1.8 MPa** is reported above **130 °C**; method B at **0.45 MPa** is reported above **140 °C** for printed test coupons. These values are not isotropic. Z-direction tensile strength and interlayer bond strength are lower than XY values and are strongly influenced by chamber temperature, layer time, and raster offset.

    What is the Practical Significance of the Conditioned Designation in Fused Filament Fabrication?

    The conditioned packaging controls the initial moisture state of the filament at the moment of extrusion. Polyamide absorbs water through reversible hydrogen bonding at the amide groups. If a spool equilibrates with ambient air above **60 % RH**, the absorbed water enters the heated melt zone and volatilizes, producing steam that disrupts the melt bead. The resulting failure modes include intermittent foaming, nozzle drool, poor first-layer adhesion, reduced melt viscosity, and surface pits on the printed wall. Drying before processing is therefore mandatory after prolonged exposure. The supplier-specified drying regime for this product is **80 °C** for **8 h** in a forced-air convection oven with a dew point below **-30 °C**. A shorter alternative of **100 °C** for **4 h** may be used when the spool has been exposed to ambient air for fewer than **12 h**. Over-drying above **120 °C** is not recommended because oxidative embrittlement of the polyamide matrix and spool deformation can occur.

    Moisture uptake after printing is a separate phenomenon from filament conditioning. Test coupons should be conditioned under **ISO 291** or **ASTM D618** at **23 °C/50 % RH** until mass equilibrium before reporting mechanical properties. In the dry as-printed state, tensile modulus and tensile strength are higher, while elongation at break and impact energy absorption are lower. After moisture conditioning, water molecules penetrate the amorphous regions and disrupt interchain hydrogen bonds, reducing the glass-transition temperature and increasing chain mobility. The resulting property shift is reversible but not negligible. For carbon-filled polyamide, the fiber-matrix interphase can act as a capillary path, so moisture ingress in a printed coupon may be faster than in the unfilled matrix despite the hydrophobic nature of the carbon fiber itself. Published data for the exact moisture diffusion rate through printed PAHT CF15 under **ISO 62** is limited; however, weight gain after **40 h** at **23 °C/50 % RH** can fall in the range of **1.0 wt% to 2.0 wt%**, depending on void content and infill density.

    Moisture also changes rheology. A polyamide conditioned to **0.15 wt% to 0.25 wt%** moisture has a measurably higher melt volume rate than the same resin dried below **0.05 wt%**. The viscosity shift changes die swell, layer squash, and the tendency to stretch molten filament across concave radii. On production-scale direct-drive systems equipped with hardened steel **0.6 mm** nozzles, batch-to-batch differences in fiber length distribution can alter hot-end pressure drop by as much as **10 % to 20 %**, even when the nominal carbon fiber content remains **15 wt%**. This variation originates in the compounding step, where twin-screw extruders with L/D ratios between **40:1** and **48:1** are used to side-feed carbon fiber downstream of the polymer melting zone. Side-feeding limits fiber attrition and preserves aspect ratio, but it also introduces lot-to-lot variability in fiber length and dispersion. These differences are not captured by a simple carbon content specification.

    Nozzle Abrasion, Extrusion Temperatures, and Chamber Thermal Requirements

    Carbon fiber at **15 wt%** is sufficiently abrasive to exclude brass and aluminum-bronze nozzles from production use. Orifice wear becomes measurable within the first kilogram of throughput and widens the nozzle bore, producing over-extrusion in thin wall sections and a loss of toolpath accuracy. Hardened tool steel, silicon carbide, or ruby nozzle orifices of **0.6 mm** minimum are specified. A **0.8 mm** orifice is preferred for long-duration runs because the larger bore reduces residence time and lowers the probability of fiber-bundle clogging at the orifice entry. Nozzle wear beyond **0.05 mm** in bore diameter is enough to alter extrusion width and should trigger nozzle replacement in dimensionally critical parts. Layer height is typically maintained between **0.15 mm and 0.25 mm** with a **0.6 mm** nozzle, keeping the layer height below **0.4** of the nozzle diameter to maintain interlayer pressure.

    Heated chamber control is a critical boundary for this material. The part must remain above the matrix recrystallization temperature during deposition so that the frozen skin of the previous layer can fuse to the new layer. A chamber temperature of **50 °C to 80 °C** is specified depending on part wall thickness and overall build height. Below **50 °C**, differential shrinkage between the upper and lower regions of a thick wall creates interlayer tensile stress that may exceed the Z-direction bond strength, leading to delamination. Above **80 °C**, over-softening of the part can cause slumping in tall components, especially in low-infill sections. The build plate is held at **90 °C to 120 °C**, with the upper range used during the first layers and the lower range used once the chamber reaches steady state. A recirculating heated chamber is preferred over an open Cartesian frame because carbon-filled polyamide has higher thermal conductivity than unfilled PA6, drawing heat away from the extrudate more rapidly. This rapid heat loss can create non-uniform crystallinity across layer boundaries and is a common source of warping in reinforced polyamides.

    Volumetric flow should be maintained between **2.0 mm³/s and 6.0 mm³/s**. Above **6.0 mm³/s**, the filled melt exhibits melt fracture and surface sharkskin because the carbon-filled melt has a higher storage modulus and shorter stress relaxation time than the unfilled matrix. Below **2.0 mm³/s**, residence time in the nozzle becomes excessive and thermal degradation of the antioxidant package may occur, visible as yellowing or a reduction in interlayer toughness. The following table summarizes the main processing window for the conditioned filament.

    Processing window for BASF 3D Ultrafuse PAHT CF15 Fused Filament, Conditioned
    ParameterSet point or rangeEquipment or reference condition
    Drying**80 °C** for **8 h**; alternative **100 °C** for **4 h**Forced-air convection oven, dew point ≤ **-30 °C**
    Nozzle orifice**0.6 mm** minimum; **0.8 mm** preferredHardened tool steel, silicon carbide, or ruby
    Extrusion temperature**270 °C to 300 °C**Direct-drive hot end with hardened steel break
    Build plate temperature**90 °C to 120 °C**PEI sheet or PAHT-specific adhesion system
    Chamber temperature**50 °C to 80 °C**Enclosed build chamber with recirculating heater
    Layer height**0.15 mm to 0.25 mm**Layer height ≤ **0.4** × nozzle diameter
    Volumetric flow rate**2.0 mm³/s to 6.0 mm³/s**Direct-drive extruder, hardened steel drive wheel

    The material is routinely processed on hard-tool dual-extrusion systems where a water-soluble support is not used. Support structures, when required, are printed from a breakaway or thermally stable support material capable of surviving the chamber temperature range. Soluble support materials based on polyvinyl alcohol are not suitable because the chamber temperature can exceed the softening point of the support, causing bond failure and dimensional drift. In addition, the carbon-filled surface is more abrasive to drive wheels and guide tubes than unfilled polyamide; frequent inspection of extruder drive gears for fiber-filled polymer dust is a standard maintenance practice on high-throughput equipment.

    Printed components made from PAHT CF15 are used for short-run manufacturing fixtures, robotic end-effectors, inspection gauges, welding jigs, and functional brackets exposed to elevated temperature. The heat deflection temperature above **130 °C** under **ISO 75-2** at **1.8 MPa** supports short-term exposure in under-hood and machine-tool environments. However, continuous load-bearing use above the heat deflection temperature is outside the product’s mechanical boundary unless creep-rupture data under **ISO 899-1** are generated for the specific printed density, wall count, and orientation. For applications involving contact with hydrocarbons, brake fluid, or glycol-based coolants, immersion testing under **ISO 175** is required because polyamide chemical resistance is environment-specific and the carbon fiber may create additional wicking paths into the laminate.

    In comparison with an unfilled PA6, the carbon fiber reduces in-plane coefficient of thermal expansion and raises stiffness while reducing fracture toughness. Unfilled PA6 can exhibit elongation at break above **20 %** in the XY orientation, whereas the **15 wt%** carbon-filled PAHT remains quasi-brittle with elongation values below **5 %**. This is a design boundary: unfilled PA6 absorbs more impact energy under **ISO 179-1eU**, but PAHT CF15 retains a larger fraction of its storage modulus at elevated temperature. Compared with a PA12-based carbon-filled grade, PAHT CF15 typically provides higher heat deflection temperature and higher tensile strength, while PA12 CF offers lower moisture uptake and improved chemical resistance in certain hydrocarbon environments. The selection is governed by the temperature-humidity regime and the tolerance for anisotropic shrinkage during printing, not by a single strength ranking.

    When Carbon Fiber Loading Reaches 15 wt% Relative to Unfilled or Glass-Filled Polyamide

    The use of **15 wt%** carbon fiber rather than higher loadings creates a specific processing boundary. At higher carbon fiber content, the interlayer bond strength declines because fiber ends concentrate at raster boundaries and reduce the available polymer-to-polymer welding area. The **15 wt%** level leaves enough matrix resin to maintain interlayer fusion while still increasing stiffness and reducing warpage relative to an unfilled semi-aromatic polyamide. Glass-fiber-filled polyamide may offer similar stiffness at lower cost, but carbon fiber provides a higher stiffness-to-density ratio and modifies the thermal conductivity of the printed laminate. The carbon fiber also lowers surface resistivity compared with neat polyamide, although the product is not classified as an electrically conductive filament and published data for printed surface resistivity of PAHT CF15 is limited.

    Reinforcement changes moisture equilibrium in a way that is not captured by a simple rule of mixtures. Carbon fiber itself is hydrophobic and does not absorb water, but the fiber-matrix interphase can generate microvoids and capillary paths within the printed solid. Consequently, the measured moisture uptake under **ISO 62** at **23 °C/50 % RH** in a printed PAHT CF15 coupon may be lower than the unfilled matrix at equilibrium but faster in the early absorption phase. The lower equilibrium moisture content has a practical consequence: the drop in tensile modulus from dry to conditioned state is smaller in PAHT CF15 than in an unfilled polyamide of the same amide group density. This improves dimensional repeatability for parts that operate in fluctuating ambient humidity but does not eliminate the need to dry the filament before extrusion.

    The product is not a direct substitute for continuous-fiber-reinforced engineered plastics in primary structural components. Its performance envelope is defined by the material extrusion process, the printed wall count, and the layer-bond microstructure. Components with sharp corners, thick-to-thin transitions, or large flat sections require evaluation of residual stress and warpage before full-scale production. Published data for PAHT CF15 under combined thermal and hygrothermal aging is limited, so applications involving long-term exposure to both heat and moisture should be validated against **ISO 527-2**, **ISO 75-2**, and **ISO 179-1eU** on printed coupons representative of the final build orientation.

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