| Код ТН ВЭД | 482625 |
Как аккредитованный завод BASF 3D Ultrafuse PC GF30 30% с усилением стекловолокном, плавленным наполнением, кондиционированным, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | One 750 g spool of BASF Ultrafuse PC GF30 30% glass fiber reinforced fused filament, conditioned, vacuum-sealed with desiccant in a cardboard box. |
| Погрузка контейнера (20-футовый контейнер) | Container Loading (20′ FCL): palletized BASF 3D Ultrafuse PC GF30 30% glass fiber reinforced fused filament, conditioned, secured for transport. |
| Доставка | BASF 3D Ultrafuse PC GF30 30% Glass Fiber Reinforced filament, conditioned, ships as a non-hazardous solid polymer article on spools. Each spool is sealed in moisture-barrier packaging with desiccant. Transport at ambient temperature; keep dry, avoiding direct sunlight and extreme heat. No UN number or dangerous goods documentation required. |
| Хранение | Store at 15–25°C in a cool, dry, well-ventilated area, ideally in original sealed packaging or a dry box with desiccant. Protect from moisture, heat, direct sunlight, and ignition sources. Keep containers closed when not in use. Avoid glass-fiber dust; use suitable PPE. Moisture exposure can degrade print quality, so maintain low humidity. Store away from incompatible materials. Do not freeze. |
| Срок годности | Manufacturer-recommended shelf life is 12 months if stored sealed in original packaging, dry, at 15–25°C, away from moisture and sunlight. |
In automotive body-in-white dimensional control rooms, 30 wt% glass-fiber-reinforced polycarbonate printed datum nests and checking-gauge bodies are produced from BASF 3D Ultrafuse PC GF30 30% glass fiber reinforced fused filament, conditioned feedstock, a fixed 70 wt% PC / 30 wt% glass formulation; the fiber addition ratio is not adjusted at the print head because the feedstock is compounded to its final loading before filament extrusion. Compliance is driven by IATF 16949:2016 clause 8.5.1, which controls production tooling and fixture changes, while datuming must match ASME Y14.5-2018 datum-target definitions; thermal resistance of a candidate fixture is screened under ASTM D648-16 at 1.82 MPa and conditioned at 23 °C/50 % RH per ISO 291:2008. The downstream production sequence uses a fully enclosed fused-filament cell with a dual-drive extruder, 0.6 mm hardened steel nozzle, 0.25 mm layer height, bed set point 100–110 °C and chamber held at 70–90 °C; after printing, the fixture body is annealed at 100 °C for 2 h and then reamed to H7 hole tolerances because as-printed hole shrinkage and glass-fiber orientation produce roundness errors that exceed the tolerance window in production gauge builds. Terminal parts in this cell include hinge-locating fixtures, sensor calibration nests, door fitment gauges and CMM staging plates. Operational boundaries are explicit: continuous contact with paint-shop oven air above 120 °C is not supported, and load paths should remain in the XY plane because fused-filament z-axis interlayer strength in glass-reinforced polycarbonate is the limiting mechanical property.
When a prototype injection mold insert is printed from 30 wt% glass-fiber-reinforced polycarbonate in place of sand-cast aluminum, the critical constraint is not room-temperature stiffness but the insert's heat deflection temperature under the cavity pressure cycle. The feedstock contains 30 wt% chopped glass fiber in a polycarbonate matrix; no secondary fiber addition or dilution with unreinforced PC is permitted if dimensional stability and lot traceability must be retained under ISO 527-2:2012 tensile screening and ISO 178:2019 flexural modulus measurement. The insert is printed with a 0.8 mm hardened steel nozzle at 0.35 mm layer height, 110 °C bed temperature, and an enclosed chamber maintained above 70 °C; because the part functions as a forming surface rather than a load-bearing structural component, the outer perimeter count is increased to six and infill is set to 100% to reduce coolant or release-agent ingress at layer interfaces. After printing, the insert is annealed at 100 °C for 2 h, mounting faces are CNC surfaced to within 0.05 mm flatness, ejector-pin bores are reamed, and the working face is sealed with a semi-permanent mold release before the insert is bolted into a modular aluminum mold base. Terminal products produced from such inserts are short-run polypropylene and TPE injection mold cavities, thermoforming plug assists, and compression-mold alignment nests. The operational boundary is governed by melt-contact temperature and cavity pressure: PP at 220–240 °C can be molded only if the insert wall is actively cooled and the tool surface is held below the PC GF30 heat-deflection threshold measured by ASTM D648-16; engineering resins such as PA 6 or PBT that exceed a 260 °C melt-contact condition will soften the insert and produce premature cavity deformation. Published cycle-life data for this specific printed insert configuration is limited; molders must validate insert life with cavity-pressure sensors and dimensional audits on the first 20 shots rather than extrapolating from metal tooling.
Robotic end-of-arm tooling constructed from 30 wt% glass-fiber-reinforced PC functions in high-cycle pick-and-place cells where aluminum components are replaced only when mass and inertia reductions shorten cycle time. The glass addition ratio at the feedstock level is fixed at 30 wt%; printed bodies are used at 100% filament density, and the only process-adjustable parameter tied to formulation is the drying condition—drying at 80 °C for 4 h in a desiccant dryer with dew point below −40 °C after any open-spool exposure above 60 % RH. Safety compliance follows ISO 10218-1:2011 for robot cell design and ISO 14539:2000 for end-effector object handling; structural validation uses ASTM D638-14 for XY tensile properties and ASTM D256-10 for notched impact resistance. The build process for end-of-arm tooling bodies uses a large-format FFF platform with a 0.8 mm hardened steel or ruby-tipped nozzle, 0.4 mm layer height, five perimeters, and 65% grid infill; brass nozzles are excluded because the 30% glass fiber fraction produces abrasive wear that enlarges the orifice under production-scale throughput. Vacuum channels are printed integrally and subsequently bored to 4 mm diameter to prevent internal collapsed strands from restricting flow; heat-set threaded inserts are installed at 230 °C with a tool-positioned driver and must be located at least 3 mm from part edges to avoid boss cracking. Terminal parts in this application include vacuum gripper bodies, jaw blanks, breakaway coupler brackets, sensor mounts, and robot dressing guides. The main operational limitation is strip torque and impact at the insert-boss interface: in low-temperature warehouses below 5 °C, glass-filled PC embrittlement is measurable, and end-of-arm bodies should be tested under ISO 179-1/1eA before deployment.
For electronics assembly cells handling populated PCBs outside electrostatic discharge protection zones, PC GF30 fixture bodies are assigned only to non-ESD press-fit and depaneling nests because the material's glass-filled formulation contains no conductive filler and cannot meet the IEC 61340-5-1:2016 requirement for a dissipative surface. The fiber loading remains 30 wt% in a polycarbonate matrix; addition of carbon black or antistatic masterbatch at the downstream printer is not possible without invalidating mechanical and electrical lot traceability and requiring requalification under IEC 61340-5-1. Production printing uses a 0.4 mm hardened steel nozzle and 0.15 mm layer height to reproduce vacuum-conveyor datum pockets and PCB edge pockets with a post-annealed flatness of 0.10 mm across a 200 mm span measured on a granite surface plate under ISO 2768-1 general tolerances. Stress relief at 95 °C for 2 h in a vented oven is applied before any CNC finishing pass because residual stress causes warpage when the fixture is clamped to a vibration table. Terminal products include press-fit support plates, depaneling fixture jaws, optical inspection trays and guarded solder-paste stencil backs. The operational boundary is explicit: the material is unsuitable for wave-solder pallets or reflow fixtures exposed to peak temperatures above 240 °C, and it must not be used in ESD-protected areas unless the process risk assessment has verified that a noncharged insulative fixture is acceptable under IEC 61340-5-1 user-defined shielding provisions.
Coordinate measuring machine fixture bodies printed from 30 wt% glass-fiber-reinforced PC are qualified not by as-printed accuracy but by dimensional stability after moisture equilibration; conditioned tensile and flexural data are reported under ISO 291:2008 at 23 °C/50 % RH, while datum reference frames are dimensioned per ASME Y14.5-2018. The formulation addition ratio is 30 wt% glass fiber / 70 wt% polycarbonate matrix, and the processor cannot use fiber addition to compensate for warp because the reinforcement has already been compounded into the filament; control of shrinkage is therefore transferred to annealing. The downstream process uses a 0.6 mm hardened steel nozzle, 0.2 mm layer height, 100% infill, and a two-stage thermal program: print with the bed at 100 °C in a 70–80 °C chamber, then anneal at 100 °C for 2 h followed by slow cooling at 10 °C/h to room temperature before any granite surface refacing. Mounting faces are CNC skim-cut to 0.03 mm flatness and bushing holes are bored to H7; if hygroscopic expansion is a concern, the fixture is conditioned for 48 h at 23 °C/50 % RH before final metrology validation. Terminal parts include CMM clamping frames, scanner target nests, gauge R&R master plates and laser interferometer mounts. The limiting boundary for this application is not the glass loading but the moisture-induced dimensional change below 60 °C; above 60 °C, the fixture should not be placed in a heated metrology cabinet without rechecking flatness against ISO 10360-2 performance verification artifacts.
Aircraft maintenance, repair, and overhaul hangars use 30 wt% glass-fiber-reinforced PC printed cradles for holding auxiliary power units, hydraulic actuators, and landing-gear linkage subassemblies during rebuild operations. The glass addition ratio is 30 wt% in the filament feedstock; no downstream filler addition is possible because ground-support tooling must retain full AS9100D lot traceability from raw material certificate to finished asset. The production process is large-format FFF with a 1.2 mm hardened steel nozzle, 0.5 mm layer height, bed at 100 °C, and a polycarbonate-specific enclosure to reduce warp; because these cradles are exposed to hydraulic oil film, the printed surface is sealed with a solvent-free, oil-resistant epoxy and fitted with elastomer pads in contact zones. Terminal products include engine dolly shims, actuator storage saddles, APU transport cradles and ground-lock retaining blocks. Compliance is limited to ground support equipment: AS9100D documentation controls apply to the manufacturing cell, but the printed article does not replace an FAA-approved part under 14 CFR Part 21 and must not be installed on an aircraft; operational load ratings for each cradle are verified by proof load test against the facility's AS9100D-controlled lifting-fixture standard prior to service, and the cradles are removed from service if any layer delamination is detected after impact or chemical exposure.
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BASF 3D Ultrafuse PC GF30 is a short-glass-fiber-reinforced polycarbonate compound produced for fused filament fabrication. The material consists of a polycarbonate continuous phase with 30% by weight glass fiber reinforcement and is supplied as conditioned filament in nominal diameters of 1.75 mm and 2.85 mm. The conditioned state is process-relevant because polycarbonate is hydrolytically sensitive at the extrusion temperatures required for FFF. When residual moisture enters the melt above 250 °C, the carbonate linkage can hydrolyze, reducing molecular weight and producing gas that appears as splay, porosity, and surface roughness. The glass fiber fraction changes the mechanical response from a ductile thermoplastic to a stiff, dimensionally stable engineering material. Representative published datasheet values for the 30% glass-filled grade, tested according to ISO 527-2:2012 and ISO 178:2019, place tensile modulus in the approximate range of 5,000 MPa to 6,500 MPa and flexural modulus in the approximate range of 6,000 MPa to 7,000 MPa. Elongation at break is generally below 5%. These figures are representative rather than design allowables because fused filament part properties depend on print orientation, chamber environment, moisture history, and printer calibration. The product is specified for manufacturing aids, assembly jigs, inspection fixtures, robotic end-effector components, and functional prototypes in which unfilled polycarbonate exhibits excessive deformation under load or insufficient dimensional stability at elevated temperature.
The glass fiber reinforcement increases tensile and flexural modulus by roughly a factor of two to three relative to unfilled polycarbonate. The modulus gain is accompanied by a pronounced reduction in ductility. Unfilled polycarbonate can show elongation at break greater than 50% under ISO 527-2:2012, whereas the GF30 grade typically fails at elongation values below 5%. Notched impact strength is also lower, and the fracture mode shifts toward brittle fiber-matrix pullout. The coefficient of linear thermal expansion decreases relative to unfilled PC, which improves dimensional stability in jigs subjected to ambient temperature swings. Heat deflection temperature under load increases with glass fiber content. Published values for this grade are typically reported in the range of 130 °C to 145 °C under ISO 75-2:2013 at 1.82 MPa, compared with approximately 120 °C to 130 °C for unfilled polycarbonate. In FFF, the fiber orientation is anisotropic. Fibers align primarily along the deposition direction during nozzle flow, so the highest tensile properties occur in the XY print plane. Interlayer regions in the Z direction remain the weakest plane because they depend on polymer chain diffusion across the layer interface rather than continuous fiber load transfer.
| Property | Unfilled polycarbonate filament | PC GF30 filament |
|---|---|---|
| Tensile modulus | 2,200–2,400 MPa | 5,000–6,500 MPa |
| Elongation at break | >50% | <5% |
| Heat deflection temperature at 1.82 MPa | 120–130 °C | 130–145 °C |
| Electrical behavior | Electrically insulative | Electrically insulative |
| Nozzle wear | Low | High; hardened hardware required |
Compared with carbon-fiber-reinforced polycarbonate grades, the glass fiber system remains electrically insulative. This is beneficial in electronic assembly fixtures where unintended conductive paths must be avoided, but it is a limitation where electrostatic discharge or EMI shielding is required. Glass fiber also provides lower modulus than a comparable carbon fiber grade, but the cost is generally lower and the electrical isolation is more predictable. Compared with injection-molded 30% glass-filled polycarbonate, the FFF product does not provide the same transverse mechanical properties because fused filament parts contain layer interfaces and process-induced porosity.
Polycarbonate is hygroscopic, and the carbonate linkage is susceptible to hydrolysis when the resin is heated above its glass transition temperature in the presence of moisture. A commonly cited processing threshold for polycarbonate is 0.02% moisture by weight. Above this level, extrusion at 270 °C to 290 °C can generate carbon dioxide and bisphenol A degradation products, producing splay, filament diameter instability, and molecular weight loss. The GF30 product is supplied in conditioned packaging, but the spool should be dried before use according to the manufacturer’s recommendation of 80 °C for 4–8 h in a desiccant or vacuum dryer. The dryer should deliver air at a dew point of -30 °C or lower. A forced-air convection oven is not equivalent because ambient air at high relative humidity cannot reduce moisture content to the same level. If filament is exposed to relative humidity above 60% for more than 30 min after drying, re-drying is required. Moisture uptake at the fiber-matrix interface can be locally higher than in the bulk polymer, and damaged fiber sizing can accelerate water ingress. Delamination at the fiber surface is a known failure mode when wet filament is printed at high temperature. Polycarbonate filament should be fed from a sealed dry box during long production runs to maintain the conditioned state.
Residual moisture is often verified by Karl Fischer titration or weight-loss analysis. The dried filament should not remain exposed on the machine spool holder overnight in an uncontrolled environment. The glass fiber itself does not hydrolyze, but the polycarbonate matrix and the glass fiber sizing are both moisture-sensitive. Extrusion of wet material also increases nozzle pressure fluctuation because vaporization occurs inside the hot end. This produces inconsistent flow and can cause the extruder drive gear to skip on the filament. The result is a pattern of under-extrusion and weak weld lines that may not be visible on the part surface but reduces mechanical integrity.
Processing of the conditioned GF30 grade requires a hardened nozzle orifice of 0.6 mm or larger. The use of a 0.4 mm orifice increases the probability of fiber agglomerate clogging and accelerates nozzle wear. Extruder drive wheels should be hardened steel or hardened stainless steel because the filament is abrasive. The build plate should be maintained at 100 °C to 120 °C with a polycarbonate-compatible adhesive or PEI surface. Printing speed is typically 30 mm/s to 60 mm/s depending on part geometry and layer height. Layer heights between 0.15 mm and 0.25 mm are common. A heated chamber at 80 °C is recommended for parts exceeding approximately 100 mm in the longest dimension. The stiff filament is more brittle than unfilled PC, so spool paths should avoid bends tighter than approximately 100 mm radius. Fiber orientation follows the print path; for load-bearing parts, the deposition direction should be aligned with the principal stress direction where possible.
Fused filament fabrication relies on the previously deposited layer remaining above the glass transition temperature long enough for polymer chain diffusion across the interface. Polycarbonate has a high glass transition temperature near 147 °C. When a newly deposited layer at 270 °C to 290 °C is quenched by ambient air, the interface may not reach full molecular interpenetration. Z-axis tensile strength can be 30% to 60% lower than XY-plane values under these conditions. This is an inherent anisotropy of the FFF process rather than a filament defect. Large flat parts with continuous beads are especially susceptible to warp-induced delamination at the corners because differential cooling generates residual stress. A heated chamber at 80 °C reduces the cooling rate and allows more complete stress relaxation. If a heated chamber is unavailable, the printing process should use an enclosed draft shield, reduced part-cooling fan speed, and a brim or sacrificial skirt to manage shrinkage. For critical load-bearing jigs, specimens should be printed in the target orientation and tested according to ISO 527-2:2012 or ASTM D638-14 before production release. Published data for z-axis fatigue and creep performance of this specific filament are limited; design allowables should be generated on the target printer rather than extrapolated from injection-molding datasheets.
The 30% glass fiber by weight corresponds to a lower fiber volume fraction because E-glass has a density near 2.54 g/cm³ while polycarbonate matrix density is near 1.20 g/cm³. The calculated fiber volume fraction is approximately 17 vol%. Even at that volume fraction, the glass fiber produces significant abrasive wear in the filament path. Brass nozzles can show measurable bore enlargement after less than 1 kg of material throughput, shifting the effective die diameter and altering extrusion width. Hardened steel, tungsten carbide, or ruby nozzles are preferred. Because hardened steel has lower thermal conductivity than brass, nozzle temperature settings may need to be raised by 5 °C to 10 °C to maintain consistent melt temperature. The abrasive wear mechanism is not limited to the nozzle orifice; fiber bundles also abrade the extruder drive gear, the heat break, and the Bowden tube entry. Plastic drive gears and soft steel hot-end components are unsuitable. In production cells where multiple materials are run on one machine, the hot end should be purged with unfilled polycarbonate or a dedicated cleaning filament before and after the GF30 grade to reduce glass-fiber residue. Dust contamination should be avoided because particulate debris accelerates wear and contributes to clogging.
Chemical exposure limits are determined by the polycarbonate matrix. The material is not recommended for contact with ketones such as acetone or methyl ethyl ketone, chlorinated solvents, strong alkalis, or amine-based cleaning agents because these can produce environmental stress cracking or hydrolysis. It is also not recommended for repeated steam sterilization or prolonged exposure to hot water above 60 °C because hydrolysis can occur. Glass fiber reinforcement does not confer electrical conductivity, so the material should not be used where electrostatic discharge is required. If an application requires ESD behavior, a carbon-fiber-reinforced polycarbonate grade should be evaluated. The product should be stored in a sealed container with desiccant at 15 °C to 25 °C and protected from light. Post-processing by sanding or machining can generate glass fiber dust; engineering controls should be used to limit inhalation exposure. Regulatory status should be verified through the BASF safety data sheet and product regulatory declaration, including REACH and RoHS status, because final part compliance depends on the complete material formulation and the conditions of use.