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BASF 3D Ultrafuse PA Fused Fillament, Dry

    • Название продукта: BASF 3D Ultrafuse PA Fused Fillament, Dry
    • 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 901595

    Как аккредитованный завод BASF 3D Ultrafuse PA Fused Fillament, Dry, 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 PA filament, dry-packed, vacuum-sealed with desiccant in a labeled cardboard box.
    Погрузка контейнера (20-футовый контейнер) Dry BASF 3D Ultrafuse PA fused filament spools palletized in a 20′ FCL, moisture-controlled, secured for ocean shipment.
    Доставка BASF 3D Ultrafuse PA Fused Filament, Dry, is not classified as dangerous goods for road, rail, sea, or air transport. It ships in sealed moisture-barrier bags with desiccant, packed in cartons/pallets. Keep cool, dry, and protected from heat, moisture, and direct sunlight. No UN number, hazard class, or packing group required.
    Хранение Store BASF 3D Ultrafuse PA Fused Filament, Dry in its original sealed packaging with desiccant, in a cool, dry, well-ventilated area. Keep away from moisture, heat, direct sunlight, and ignition sources. Use an airtight dry box or vacuum bag for opened spools. Maintain room temperature and avoid prolonged humidity exposure to preserve print quality. Do not store near strong chemicals.
    Срок годности Shelf life is approximately 12 months if stored unopened in original packaging, dry, at 15–25°C, away from moisture and sunlight.
    Применение BASF 3D Ultrafuse PA плавленного наполнения, сухого

    Under-Hood Air Inlet Brackets, Cable Guides, and Sensor Mounts

    Under-hood air inlet brackets are produced by fused filament fabrication from BASF 3D Ultrafuse PA Fused Filament, Dry, with the feedstock being an unfilled PA6/66 copolymer. The production process on manufacturing lines uses a hardened steel nozzle of 0.4 mm diameter, nozzle set point between 260°C and 280°C, heated bed between 90°C and 110°C, and an enclosed build chamber held at 55–70°C to reduce warpage and interlayer cracking. The Dry vacuum-sealed product is processed immediately after opening; if ambient relative humidity exceeds 60%, exposed filament is dried at 80°C for 12 h in a dry-air dryer because moisture above 0.15% reduces interlayer fusion and creates voiding. Dimensional acceptance for low-volume under-hood parts references ISO 2768-1 class m where no fully dimensioned drawing applies; mechanical property verification follows ISO 527-2 for tensile response, ISO 178 for flexural modulus, and ISO 75-2 at 0.45 MPa for heat deflection. Where a part migrates into passenger-cabin service, FMVSS 302 is used for flammability screening; under-hood parts are not automatically validated to that standard. The formulation/addition ratio is 100 wt% unfilled PA6/66 printed polymer, with infill density set between 45% and 80% depending on compressive load path; installed brass heat-set inserts for threaded fasteners add 4–12 wt% to the final assembled part mass. Terminal finished part types include air inlet brackets, cable routing guides, sensor retention mounts, cover clips, and low-volume replacement collar brackets. Dry-as-printed specimens show higher tensile strength but lower elongation than moisture-conditioned specimens; snap-fit and clip features are therefore conditioned at 23°C and 50% RH before final installation to avoid brittle failure during assembly.

    For CMM fixture bodies and assembly jigs that must hold datum repeatability below ±0.2 mm during serial inspection, the unfilled PA6/66 filament is selected when steel or aluminium would create excessive inertia or require long machining lead times. The downstream process uses fused filament fabrication through a 0.6 mm hardened steel nozzle at volumetric throughput limited to 6–10 mm³/s to avoid thermal degradation; bed temperature is held at 100°C, chamber air temperature at 60°C, and parts are oriented so compressive jig loads run perpendicular to layer interfaces. Post-process datum surfaces are fly-cut or wet sanded because as-printed nylon surfaces can deviate by more than 0.15 mm across a 200 mm span. Dimensional acceptance uses ISO 2768-1 class m for non-critical surfaces, with ISO 1101 geometric tolerancing applied to datum features; calibration of CMM fixture functional interfaces follows plant measurement control under ISO 9001 rather than a material-specific standard. The material addition ratio in finished fixtures is 100 wt% PA6/66 printed body; steel drill bushings, locating pins, and threaded inserts account for 3–10 wt% of total fixture mass. Infill density is set at 60–100%, with 4–6 perimeter shells and 3 mm top/bottom layers. Filament-to-net-part consumption observed in fixture production ranges from 1.08 to 1.22 kg filament per kg net part when support structures and skirt waste are included. Terminal finished part types comprise CMM holding fixtures, assembly jigs, go/no-go gauge bodies, drill guides, press-fit assembly nests, and modular fixture plates. The material is not used for high-accuracy contact surfaces unless datum features are post-machined; creep of unfilled nylon under continuous load above 50°C can relax bolt preload, so steel bushings are recommended at all clamped interfaces.

    Fixture typeInfill densityDatum / locating methodVerification standard
    CMM holding fixture80–100%fly-cut datum padsISO 1101 flatness 0.10 mm / 100 mm
    Assembly jig60–80%steel locating pinsISO 2768-1 class m
    Drill guide100%hardened steel bushingsISO 2768-1 class m bore position ±0.1 mm
    Go/no-go gauge body70–100%post-machined surfacesISO 9001 measurement control

    What Governs Snap-Fit Enclosure Durability in Low-Volume Electronics Housings?

    Snap-fit enclosure durability in low-volume electronics housings is governed by flexural modulus, moisture-conditioned impact response, and interlayer adhesion under repeated deflection. The downstream production route uses a 0.4 mm hardened steel nozzle, extruder temperature 260–280°C, bed temperature 90–110°C, and chamber held at 50–65°C; the feedstock is 100 wt% unfilled PA6/66 without flame-retardant fillers, so any enclosure requiring a certified flammability class must be tested on printed specimens according to UL 94 or the end-product standard rather than assumed from resin data. Compliance for electronics housings includes RoHS 2011/65/EU and REACH SVHC screening; when the enclosure is built into equipment covered by IEC 62368-1, creepage and clearance are treated as mechanical design constraints not directly guaranteed by the filament. The formulation ratio for enclosure production is 100% PA6/66 polymer, with infill density 35–60%, 3–4 perimeter shells, and brass heat-set inserts accounting for 3–8 wt% of the assembled enclosure. Snap-fit features are designed against the moisture-conditioned elongation rather than dry-as-printed properties; printed housings are conditioned at 23°C and 50% RH for 48 h before snap-fit assembly. Terminal product types include handheld diagnostic housings, control pendant enclosures, battery tool housings, and protective covers for industrial scanners. Unfilled PA6/66 absorbs moisture up to 1.5–2.5 wt% at saturation; critical sealing surfaces may shift dimension by 0.3–0.5%, so sealing faces are either machined after conditioning or protected with gaskets and coatings.

    On packaging lines running at speeds below 0.5 m/s, unfilled PA6/66 filament is deployed in non-food contact change parts where intermittent sliding against UHMWPE chain guides or stainless steel rails occurs. The production route uses fused filament fabrication with a 0.6 mm hardened nozzle at 270°C, build plate temperature 100°C, and chamber air temperature 60°C; printed blanks are reamed or contour-machined to final bore tolerance H7–H8 because as-built cylindrical holes in nylon shrink non-uniformly by 0.2–0.4% along the build direction. Sliding faces are sanded to surface roughness Ra 1.6–3.2 μm; unfilled PA6/66 is not selected for continuous high-load wear without lubrication because dry-sliding frictional heating can soften the polymer above 80°C. For change parts, the addition ratio in final assemblies is 100 wt% PA6/66 printed body, with infill at 80–100% and 5–7 perimeter shells to prevent wall collapse under clamping; pressed steel wear plates or threaded inserts add 0–20 wt% to total part mass depending on mounting configuration. Compliance for packaging machines is handled at the equipment level by 2006/42/EC, but a printed change part is not itself CE-marked as a component; direct food contact is not assumed, and published data for this specific unfilled PA6/66 filament under EU 10/2011 total migration testing is limited, so any food-contact use requires migration testing on the exact printed surface and layer orientation. Terminal finished part types include non-food guide rails, star wheel inserts, timing screw guides, label roller guards, and format set spacers.

    When Machined Nylon Stock Is Replaced in Robotic Gripper Jaws and End Effectors

    When machined nylon stock is replaced in robotic gripper jaws and end effectors, the unfilled PA6/66 filament is deployed for low-inertia custom gripper bodies that avoid the weight of aluminium and the edge damage of steel. The downstream manufacturing process uses fused filament fabrication through a 0.6 mm hardened steel nozzle at 255–275°C, a 100°C bed, and a chamber held at 55°C; critical mounting faces are then CNC-machined after printing because the as-printed edge radius and layer seam would otherwise prevent flat seating against metallic tool flanges. Gripper jaw surfaces that contact parts are printed with 6–8 perimeters and 80–100% infill, while non-loaded tool body sections are 45–60% infill to reduce moving mass. The feedstock/addition ratio remains 100 wt% PA6/66 printed body; steel backing plates, locating dowels, and threaded inserts constitute 10–30 wt% of the installed gripper assembly. Compliance for robot end effectors is assessed under ISO 10218-2 for the integrated application, with ISO/TS 15066 applicable when collaborative force and pressure limits must be validated; the printed polymer itself is not certified, and force-limiting tests must be conducted on the final printed geometry. Terminal finished part types include robot gripper jaws, end effector side plates, sensor mounts, palletizing tool brackets, and passive tool changer adapter plates. The unfilled nylon is not suitable for high-frequency clamping at jaws above 80°C continuous, as creep may reduce preload; steel or reinforced nylon alternatives are required above that threshold.

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    Сертификация и соответствие требованиям
    Более подробное введение

    BASF 3D Ultrafuse PA Fused Filament, Dry is an unreinforced polyamide feedstock for fused filament fabrication systems classified under ISO/ASTM 52900. The material is supplied as a monofilament in 1.75 mm and 2.85 mm diameters with a stated tolerance of ±0.05 mm. The dry condition refers to desiccant-sealed barrier packaging that reduces initial moisture absorption before first use. It is not a substitute for moisture management after the package is opened. For unreinforced polyamide 6, water absorption determined by ISO 62 typically reaches 2.5–3.0 wt% at 50% RH and can approach 9–10 wt% at saturation. These values establish the dry supply state as an operational boundary rather than a marketing label.

    On filament conversion lines, diameter is monitored by dual-axis laser micrometry; excursions beyond ±0.05 mm are rejected because ovality disrupts volumetric feed rate and produces inconsistent first-layer extrusion. A 0.4 mm brass nozzle may be used because the unreinforced grade contains no abrasive carbon-fibre reinforcement. This tooling condition separates the product from carbon-fibre-filled polyamide grades, which require hardened nozzle hardware and exhibit accelerated extruder-gear wear.

    What Processing Window Is Established Once the Barrier Bag Is Opened?

    Published material extrusion parameters for unreinforced polyamide place nozzle temperature at 240–270 °C and bed temperature at 60–100 °C. The 30 °C printing window is narrower in practice because hotend thermistor drift of ±3 °C can consume a meaningful portion of the lower margin. Below 240 °C, melt viscosity increases and interlayer fusion becomes insufficient at normal print speeds. Above 270 °C, thermo-oxidative chain scission and surface yellowing become measurable. When a PTFE-lined hotend is used, the upper limit should be derated to 250 °C unless an all-metal heat break is installed.

    Retraction settings on direct-drive systems using a 0.4 mm nozzle are typically 0.8–1.5 mm at 20–30 mm/s. Bowden systems may require greater retraction distances, but excessive idler tension can shave the filament and create feed-path debris. Part cooling fan speed should remain at 0–30% for damage-tolerant sections because rapid quenching reduces crystallinity and lowers z-direction strength. During the first 5–10 layers, the cooling fan is usually disabled to preserve adhesion and permit controlled crystallization.

    In functional housing, bracket, and snap-fit applications, the dry filament is selected where unreinforced polyamide offers higher elongation than PLA or acrylic-based materials and better hydrocarbon resistance than ABS. Dry-printed tensile values measured by ISO 527-2 for unreinforced FFF polyamide typically fall near 40–50 MPa tensile strength and 20–30% elongation at break. After conditioning under ISO 291 at 23 °C and 50% RH for 168 h, elongation increases and modulus declines because absorbed water acts as a plasticizer. Test data from dry-printed and conditioned specimens are therefore not interchangeable.

    Storage, Moisture Uptake, and the Onset of Hydrolytic Degradation

    Moisture content above 0.1–0.2 wt% before extrusion becomes a kinetic problem. Polyamide is hydrolytically sensitive at melt temperature; water reacts with amide linkages, reduces molecular weight, and generates volatile degradation species. The visible result is not always surface haze. Tensile specimens may still meet strength limits while z-direction impact toughness and interlayer adhesion decline. Steam-induced porosity can appear as intermittent popping during extrusion and as microvoids on the fracture surface of printed test bars.

    For recovery after exposure, drying in a forced-air convection oven at 80 °C for 4–12 h is typical. Vacuum drying at 80 °C with a dew point below −30 °C is more aggressive for high-humidity plant conditions. Drying beyond 24 h in an air-circulating oven can produce oxidative yellowing; nitrogen purge is used when extended residence is required. Final moisture should be confirmed by Karl Fischer titration according to ISO 15512 rather than inferred from desiccant colour, because desiccant indicators confirm package integrity but not resin moisture content.

    A control matrix for incoming material and process readiness is maintained as follows:

    ParameterMethod or designationBoundary
    Filament diameterISO/ASTM 529001.75 mm ±0.05 mm or 2.85 mm ±0.05 mm
    Tensile propertiesISO 527-2Compare dry-printed and conditioned coupons
    Water absorptionISO 622.5–3.0 wt% at 50% RH
    Residual moistureISO 15512≤0.1 wt% before extrusion
    Heat deflection temperatureISO 75-2 method AUnreinforced PA generally below 80 °C at 1.8 MPa
    RoHS compliance2011/65/EUManufacturer statement for supplied article
    REACH compliance1907/2006/ECArticle 33 SVHC declaration applies

    Mechanical and thermal boundaries are frequently confused in component qualification. Tensile strength per ISO 527-2 is not the limiting variable in many printed parts; z-direction interlayer strength controls failure. For unreinforced polyamide processed at 240–270 °C, z-direction tensile strength is often lower than XY values by 30–50%, depending on layer time and cooling history. Published data for this specific configuration is limited, so z-direction specimens should be printed and tested under ISO 527-2 for each target machine. Differential scanning calorimetry per ISO 11357-3 on polyamide 6 typically identifies a melting endotherm near 220 °C, which bounds the practical extrusion range.

    When a hardened steel nozzle is used despite no abrasive reinforcement, thermal conductivity differences may require a 5–10 °C increase in nominal setpoint. Nozzle temperature should be verified with a contact thermocouple before production because controller offset can shift the actual melt temperature outside the acceptable range. Melt residence time also matters. Stagnation zones in a hotend can retain material longer than the main melt path; purging and periodic nozzle removal are part of stable process control on production equipment.

    When a Heated Build Chamber Is Unavailable, How Does Warp Management Differ from ABS or Filled PA?

    Unreinforced polyamide crystallizes during solidification, so shrinkage stress arises from crystallization rather than the high free-volume contraction typical of amorphous ABS. A heated chamber is not mandatory. A passive enclosure holding 45–60 °C combined with a bed temperature at 80–100 °C reduces edge lifting. Build-plate treatments include polyimide tape, Garolite, or PVP-based polyamide adhesives. Large flat parts above 120 mm in length benefit from 10–15 mm brim or raft interfaces. Published data for this specific configuration is limited; therefore first-article trials on the target printer should map corner lift at bed temperatures of 60 °C, 80 °C, and 100 °C before production commitment.

    Compared with BASF styrenic filament grades, the polyamide product has lower stiffness but higher elongation and better fatigue endurance. Compared with copolyamide low-warp grades, the dry unreinforced product may show sharper melting behaviour and greater moisture sensitivity. Compared with carbon-fibre-filled PA grades from the same supplier, this product has lower tensile modulus and lower heat deflection temperature but does not require a hardened nozzle and is less brittle under high-strain-rate loading. These differences are material-specific rather than cosmetic.

    Chemical resistance also differentiates the product from PLA and ABS. Unreinforced polyamide resists aliphatic hydrocarbons, lubricating oils, and many water-glycol mixtures below 60 °C. It is not suitable for strong acids, oxidizing agents, or chlorinated solvents; compatibility should be evaluated by ISO 175 or stress-cracking resistance by ISO 22088-3. Continuous hot-water exposure above 60 °C accelerates hydrolytic degradation. For hot-water or high-temperature structural environments, polypropylene or reinforced high-temperature polyamide grades are selected instead.

    Because polyamide absorbs moisture, electrical insulation properties also change with humidity. For applications where surface or volume resistivity is critical, testing should follow IEC 62631-3-2 after conditioning. Unfilled dry polyamide typically exhibits high resistivity, but moisture conditioning can reduce resistivity by orders of magnitude. This grade is not an ESD-safe material; if static dissipation is required, a carbon-nanotube or carbon-black filled FFF product should be specified.

    During extrusion, local exhaust ventilation is required because nylon melts can emit low-molecular-weight species, including caprolactam. The manufacturer safety data sheet should be consulted for occupational exposure limits and air monitoring intervals. This requirement is not unique to the dry product, but it is part of production-scale operation and should be integrated into machine qualification.

    End-of-spool handling should be systematic. If the spool is exposed above 60% RH for more than 24 h, it should be reserved for dry-box feeding or re-dried before use. Resealing with fresh desiccant is not equivalent to active drying because polyamide desorbs slowly. Spools left on a printer overnight in an uncontrolled environment can absorb sufficient water at the outer layers to create intermittent porosity, even though the core remains dry. Production records should tie spool identification, dry-box dew point, drying time, and moisture analyzer reading to each build lot. In a continuous dry-box feed configuration, maintain a dew point below −20 °C and feed the filament through a PTFE tube to reduce reabsorption between the dryer and the extruder.

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