| Код ТН ВЭД | 554185 |
Как аккредитованная фабрика BASF 3D Ultrafuse PET CF15 Fused Fillament, армированная углеродным волоконом на 15%, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | |
| Доставка | |
| Хранение |
In automotive pre-production programmes where machined polyamide brackets carry three-axis CNC programming overhead but compressed schedule risk is the controlling cost variable, BASF Ultrafuse PET CF15 is processed at its fixed 15 wt% chopped carbon-fibre loading in a polyethylene terephthalate matrix. The feedstock is not diluted with unfilled PET or PETG because reducing the fibre mass fraction below 10 wt% produces a flexural-modulus fall-off under ISO 178:2019 that cannot be recovered by raising infill density. Acceptance testing for this segment is anchored to ISO 527-2:2012 tensile-modulus verification, ISO 75-2:2013 Method B heat-deflection testing, and ISO 1183-1:2019 density measurement, while chemical-regulatory documentation is reviewed against REACH Regulation (EC) No 1907/2006 Annex XVII, RoHS Directive 2011/65/EU Annex II, and ELV Directive 2000/53/EC Annex II for lead, cadmium, mercury and hexavalent chromium. Downstream processing is material-extrusion additive manufacturing with an enclosed build volume held between 30 °C and 40 °C; the extruder setpoint is 250±5 °C, the bed setpoint is 75±5 °C, the nozzle is hardened steel with a minimum diameter of 0.4 mm, and the layer height is held at 0.2 mm. Before printing, spooled material requires 4 h of forced-air drying at 65±5 °C when ambient relative humidity exceeds 60%; failure to dry is observed on production lines as ester-linkage hydrolysis at the nozzle, producing surface pitting and reduced interlayer shear strength. Terminal product types are short-run underhood cable guides, HVAC actuator brackets, connector retention clips, sensor-mounting bosses and non-structural battery-pack mock-up brackets, all designed for service temperatures below the 75 °C HDT B threshold of the grade unless a load-compensated redesign lowers the applied stress.
| Property | Test standard | Published range | Downstream effect |
|---|---|---|---|
| Density | ISO 1183-1:2019 | 1.32–1.34 g/cm³ | Robot gripper inertial load and part mass registers |
| Tensile modulus | ISO 527-2:2012 | >4,500 MPa | Bracket stiffness and bolt-preload deformation |
| Flexural modulus | ISO 178:2019 | >4,000 MPa | Jig body deflection under clamp torque |
| Heat deflection temperature | ISO 75-2:2013 Method B | >70 °C | Maximum continuous service temperature before creep onset |
| Carbon-fibre mass fraction | Supplier TDS thermogravimetric method | 14–16 wt% | Fixed formulation ratio; do not dilute with unfilled PET |
Published data for this specific configuration is limited to the supplier technical datasheet and independent batch verification under the cited standards; values vary by colour, lot and printer calibration.
The substitution logic in UAV camera-gimbal and sensor-mounting applications rests on the fixed 15 wt% carbon-fibre fraction in the BASF Ultrafuse PET CF15 feedstock; this is an as-supplied condition and is not increased by masterbatch addition or reduced by blending with unfilled PET, because a drop below 12 wt% fibre causes a measurable loss of specific stiffness that cannot be recovered by changing infill geometry. Compliance documentation for non-primary structural UAV parts is reviewed under ASTM F2971-13 for additively manufactured component acceptance and ISO 527-2:2012 for tensile property verification; where the part crosses into EU operator territory, REACH Regulation (EC) No 1907/2006 Annex XVII and RoHS Directive 2011/65/EU Annex II declarations are retained for electro-optical module interfaces. The downstream process is direct material extrusion at a nozzle setpoint of 250±5 °C through a hardened steel 0.4 mm nozzle at 0.15 mm layer height, with a bed temperature of 75 °C and an enclosed build volume held at 35 °C to control asymmetric edge-lift on thin-walled parts above 4:1 aspect ratio. Support removal on carbon-fibre-reinforced PET requires a shear cutting sequence rather than solvent dissolution, and the component is post-processed with boring of M3 or M4 holes as undersized bosses to avoid delamination of the outer perimeter. Terminal parts are camera-gimbal spacers, antenna-mount brackets, LIDAR sensor platforms, servo trays and battery-strap anchors; the grade is not assigned to primary lift or primary crash-load paths unless an operator-specific structural test campaign under ASTM D3039/D3039M-17 is completed.
Because low-pressure vacuum forming exposes printed mould surfaces to repeated thermal cycling, BASF Ultrafuse PET CF15 tooling is confined to mould-surface service temperatures below the heat-deflection temperature of the printed tool under structural load. For this reason the process is restricted to ABS, PS and HDPE forming cycles with sheet temperatures above 140 °C but mould surfaces maintained below 70 °C by contact-time control and cool-air backflow. The fixed 15 wt% carbon-fibre loading is the critical formulation variable: at this fibre mass fraction the printed tool faces exhibit sufficient thermal conductivity and reduced creep to hold draw-lip radii under repeated vacuum load, whereas dilution with unfilled PET below 10 wt% fibre produces radius drift beyond 0.3 mm over 50 cycles. Industry compliance for tooling used in non-food, non-medical packaging development is governed by ISO 9001:2015 clause 8.5.1 for process control and ISO 178:2019 flexural-property verification, with material documentation retained under REACH Regulation (EC) No 1907/2006 Annex XVII; no direct food-contact compliance is claimed. The downstream production route is material extrusion at 250 °C nozzle temperature, 75 °C bed, 0.2 mm layer height and a hardened steel 0.6 mm nozzle, with six perimeters and 40% gyroid infill; the printed tool is wet-sanded to 400-grit then sealed with a two-part epoxy mould sealer to close surface porosity. Terminal product types are vacuum-forming moulds for ABS equipment covers, PS display trays and HDPE returnable packaging, produced in lot sizes below 250 parts per tool.
Jigs, drill-guide bushings and check gauges printed from BASF Ultrafuse PET CF15 are used in assembly and machining cells where tolerance drift across a shift must remain below ±0.2 mm under repeated clamp load and cutting-fluid contact. The fixed 15 wt% carbon-fibre loading in the PET matrix is not adjusted on the shop floor; if unreinforced PET is added as regrind at any ratio above 5 wt%, the part loses the low-shrinkage behaviour of the carbon-fibre grade and exhibits XY shrinkage above 0.4%, which pushes hole-centre distances outside the desired gauge envelope. Verification is anchored to ISO 9001:2015 clause 8.5.1, with dimensional checks per ISO 10360-2:2009 on a coordinate measuring machine, and material property verification under ISO 178:2019 and ISO 75-2:2013 Method B. Printing on a production floor uses a direct-drive material-extrusion system with an enclosed build volume, 0.4 mm hardened steel nozzle, 0.2 mm layer height, 250±5 °C extruder temperature and 75 °C bed temperature; for drill-guide holes, the process includes a post-print reaming operation with a H7 reamer because the as-printed bore is intentionally undersized by 0.04 mm per radial plane to compensate for outer-perimeter ridging. Terminal products include assembly fixtures, go/no-go gauges, drill-guide bushings, CMM fixture stops, robot base alignment plates and weld-inspection templates.
Short-run chemical-handling and fluid-manifold prototype validation places BASF Ultrafuse PET CF15 in a bolt-preload-dominated environment where the fixed 15 wt% carbon-fibre fraction provides dimensional stability under clamp compression and flow-induced vibration, but the material is not classified as a corrosion barrier for aggressive mineral acids or strong oxidizers. The relevant industry standard for fluid-contact compatibility is ISO 175:2010 for chemical resistance testing, supported by ISO 178:2019 flexural modulus and ISO 527-2:2012 tensile strength, while mechanical documentation is retained under REACH Regulation (EC) No 1907/2006 Annex XVII and RoHS Directive 2011/65/EU Annex II. Downstream production on a material-extrusion platform requires thorough drying to <0.02% moisture content; the print schedule is 250 °C nozzle, 75 °C bed, 0.2 mm layer height and a hardened steel 0.4 mm nozzle, with a minimum of 5 perimeters to avoid micro-porosity that would produce weeping in water-glycol test loops. Post-print treatment for seal faces is a machining step to remove the as-printed ridge structure, followed by application of a two-component polyurethane sealer in the port threads. Terminal product types are water-glycol manifold mock-ups, pump-volute dimension prototypes, filter-housing port adapters, and flow-visualisation rigs for chemical engineering validation.
Automated assembly and machine-tending cells impose a different loading spectrum on carbon-fibre-reinforced PET components because the metal-equivalent gripper would increase inertial mass beyond the robot payload budget. The fixed 15 wt% carbon-fibre loading is mandatory for the specific stiffness and low creep of the part under clamping torque; any dilution of the filament with unfilled PET below 13 wt% fibre content is rejected because the resulting creep under 6 mm of compressive deflection increases jaw-set beyond 0.15 mm after 2,500 cycles. Compliance evaluation for this segment combines ISO 10218-2:2011 robot-integration risk assessment, ISO 12100:2010 machine-safety principles, and ISO 527-2:2012 tensile verification, with material declarations checked against REACH Regulation (EC) No 1907/2006 Annex XVII and RoHS Directive 2011/65/EU Annex II. The printing process for long runs demands a hardened steel nozzle, a hardened feed hobbing or drive gear, and an enclosed build volume at 35 °C; nozzle setpoint is 250±5 °C, bed 75 °C, layer height 0.2 mm, and print speed is capped at 40 mm/s for perimeter walls to prevent filament buckling at the drive gear. If the abrasive carbon fibre is run through a brass nozzle or an unhardened feed gear, volumetric output degrades below 8 mm³/s within 10 h and the resulting under-extrusion creates notch-sensitive perimeter voids. Terminal parts are robot gripper jaw inserts, end-effector crash plates, tool-changing adaptor blocks, palletising finger sets and sensor-holder brackets.
Конкурентоспособные цены BASF 3D Ultrafuse PET CF15 плавленного наполнения, 15% углеродного волокна, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.
Для получения образцов, цен или более подробной информации свяжитесь с нами по адресу +8618136850665 или отправить по почте admin@ascent-chem.com.
Мы ответим вам как можно скорее.
Телефон: +8618136850665
Электронная почта: admin@ascent-chem.com
Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!
BASF 3D Ultrafuse PET CF15 Fused Filament is a chopped-carbon-fiber-filled semi-crystalline polyethylene terephthalate feedstock for fused filament fabrication. The product designation identifies 15% carbon fiber loading by weight, with the balance a PET matrix; the filament is black and is supplied in 1.75 mm and 2.85 mm diameters with a nominal net weight of 750 g per spool. Published density is 1.31 g/cm³ to ISO 1183-1. The matrix is not glycol-modified PETG, so the drying and extrusion temperatures are higher than those of many unfilled PETG grades, but moisture control is still required to prevent hydrolysis. The carbon fiber raises melt viscosity, raises tensile and flexural modulus, lowers elongation at break, and converts the feedstock into an abrasive medium that is incompatible with brass and aluminum nozzles over sustained use. Supplier documentation does not assign a direct food-contact approval under EU 10/2011 or FDA 21 CFR to this carbon-filled grade; the intended use is industrial tooling, fixtures, vacuum plates, and low-draft structural parts.
Supplier-reported tensile and flexural results for Ultrafuse PET CF15 are generated on vertically built XY specimens conditioned for 24 h before testing. Tensile modulus is reported between 5,200 MPa and 6,200 MPa under ISO 527-2, while tensile strength is reported at 50–65 MPa in the same orientation. Flexural modulus tested to ISO 178 is typically 4,800–5,500 MPa, and flexural strength is cited at 80–95 MPa. Charpy unnotched impact strength tested to ISO 179-1/1eU is approximately 20–30 kJ/m², which is lower than many unfilled PETG compounds. Heat deflection temperature under 0.45 MPa load to ISO 75-2/B is reported near 120–135 °C, while the 1.80 MPa deflection temperature to ISO 75-2/A is lower, typically 70–85 °C. This distinction is relevant in heated fixture services: a 85 °C build chamber or operating environment approaches the 1.80 MPa HDT threshold, whereas the 0.45 MPa value permits more margin. Published Z-axis tensile data for this specific carbon-filled filament is limited, but filled and unfilled PET systems commonly show 30–50% lower interlayer bond strength than their XY tensile strength when tested to ISO 527-2 on vertical coupons.
| Property | Test method | Unit | Typical value/range |
|---|---|---|---|
| Density | ISO 1183-1 | g/cm³ | 1.31 |
| Tensile modulus | ISO 527-2 | MPa | 5,200–6,200 |
| Tensile strength | ISO 527-2 | MPa | 50–65 |
| Flexural modulus | ISO 178 | MPa | 4,800–5,500 |
| Flexural strength | ISO 178 | MPa | 80–95 |
| Charpy unnotched impact | ISO 179-1/1eU | kJ/m² | 20–30 |
| HDT 0.45 MPa | ISO 75-2/B | °C | 120–135 |
| HDT 1.80 MPa | ISO 75-2/A | °C | 70–85 |
On an unenclosed Cartesian FFF machine with a hardened steel 0.4 mm nozzle and a polyetherimide build surface, a reproducible starting profile uses an extruder set point of 250 °C, a build-platform set point of 85 °C, a line width of 0.45 mm, and a volumetric flow rate below 4.5 mm³/s. The extrusion multiplier is typically reduced by 2–5% relative to an unfilled PET profile because fiber-filled melt is less compressible and the road cross-section is more stable. Linear speed should remain below 60 mm/s for the first layer and below 45 mm/s on tall vertical walls if corner lifting appears. Retraction start settings of 1–2 mm on direct-drive and 4–6 mm on Bowden toolheads are common, but the carbon-filled melt is shear-sensitive. Direct-drive retraction distances above 3 mm can create pressure spikes that delay waypoint starts and disturb top-layer fill. A 0.4 mm brass nozzle can be visibly enlarged after fewer than 500 g of this feedstock; hardened steel or ruby nozzles are required for dimensional control. Bed adhesion is maintained with an 85 °C build platform and an adhesive suited to PET; textured polyetherimide surfaces are preferred over smooth glass to limit edge lifting on parts longer than 120 mm. An enclosure is not mandatory, but a draft shield or chamber air temperature above 25 °C reduces curl on long straight walls.
Production-line failure records for carbon-filled PET in FFF systems identify three recurring modes: nozzle inlet bridging from fiber bundles during aggressive retraction, first-layer delamination when the build platform drops below 75 °C, and interlayer splitting at abrupt cross-section changes. The fiber bundles can temporarily lodge at the nozzle entrance if the filament is retracted too far and re-fed; a polished steel heat break and constrained filament path reduce this frequency. Batch-to-batch variation is generally low in sealed spools, but re-spooling or rough handling generates carbon dust that can pack the extruder hobb teeth and reduce feed consistency. In a 3:1 gear-ratio direct-drive extruder, idler tension should be set lower than for unfilled PET; excessive radial compression can crush the filament, producing longitudinal splits that open during retraction. The processing thermal window is narrow enough to require control: below 240 °C, melt viscosity rises and the extruder force increases, while above 270 °C, oxidative and thermal degradation produce black speck and loss of mechanical strength. This 30 °C window is usable on production machines only when drying, flow rate, and retraction are controlled together.
Absorbed water in the melt phase hydrolyzes the ester linkages of the PET backbone. At a moisture content above 0.04%, the melt can exhibit nozzle bubbles, splay, reduced surface gloss, and a lower effective viscosity from chain scission. A circulating-air dryer at 60 °C for 4–6 h is the standard pre-drying cycle for spools stored in sealed containers. Spools exposed to >60% RH for more than 48 h may require 8–12 h at 60–80 °C. Drying above 80 °C is not recommended because the spool body may soften and release residual stress. Once dry, the filament should be fed from a sealed desiccant box with a dew point below -20 °C on prints longer than 12 h. In a machine-shop environment, the outer windings of a spool left mounted overnight can re-absorb enough moisture within 8–12 h to create defects in the next build; the spool should be returned to dry storage or placed in a heated dry box after use.
Because the fiber loading preferentially orients in the raster direction, the XY stiffness gain is not replicated in the Z direction. Tall thin fixtures fail by interlayer delamination or cleavage, not by tensile fracture. Unfilled PETG grades normally display yielding and whitening before rupture; PET CF15 has an XY elongation at break below 5% and fails more abruptly. Snap fits, thread-forming screw bosses, and living hinges designed for unfilled PETG should not be transferred to PET CF15 without revising radii, wall thickness, and insertion strain. The material is better placed in compression-loaded locating nests, vacuum-tooling plates, inspection gauge frames, and stiff end-of-arm brackets where bending deflection is the controlling rejection criterion. The carbon fiber reduces the coefficient of thermal expansion along the raster direction, improving dimensional agreement with steel reference blocks in precision assembly stations, but the through-thickness expansion remains PET-dominated. For parts longer than 150 mm, published part-specific distortion data is limited; build trials with a draft shield or heated enclosure are required because shrinkage reduction is not isotropic.
Mechanical post-processing of PET CF15 parts uses carbide tooling. High-speed steel drills and taps wear rapidly because the carbon fiber acts as a hard phase at the cut zone. Heat-stake inserts are preferred over directly tapped threads in load-bearing bosses. The printed surface carries fine axial ridges that reduce paint and epoxy primer adhesion; solvent polishing with dichloromethane or other solvent systems is not effective because the semi-crystalline PET matrix resists uniform solvent penetration. Painting trials require cleaning with isopropanol to remove build-surface adhesives and then light abrasion with 240–320 grit aluminium oxide paper. Drilling should be performed at low spindle speed with coolant or compressed air to reduce matrix melting at the hole wall. Published guidance for machining feed and speed combinations specific to 15% carbon-filled PET filament is limited; initial machining parameters should be derived from glass-filled PET or established carbon-filled PET injection-molding practice and then reduced to account for the lower density of layered polymer structure.
For parts that require continuous contact with high-humidity air or polar process fluids, PET CF15 differs from carbon-filled polyamide. PAHT CF15 often provides higher dry heat deflection and greater damage tolerance, but its dimensions and strength shift with absorbed moisture. PET CF15 has lower moisture uptake and a more stable ambient envelope after conditioning. Compared with unfilled PETG, the tensile modulus is more than doubled, but elongation at break is reduced and the feedstock is abrasive. Compared with ABS CF, PET CF15 generally produces lower styrene emission during printing, higher modulus, and a different chemical resistance profile; side-by-side published data for these exact formulations is limited, particularly for long-term chemical exposure evaluated to ISO 175. The product is not a reliable electrical-conductivity compound: the discontinuous carbon fiber is not controlled for surface resistivity under ESD packaging standards, so additional antistatic handling measures are required. For direct food-contact applications, the grade is not indicated for compliance; a validated unfilled PETG or PET with explicit food-contact certification should be used when that constraint exists.
| Material class | Tensile modulus | HDT 0.45 MPa | Elongation at break | Moisture sensitivity | Nozzle requirement |
|---|---|---|---|---|---|
| Ultrafuse PET CF15 | 5,200–6,200 MPa | 120–135 °C | <5% | Drying recommended; 60 °C for 4–6 h | Hardened steel or ruby |
| Unfilled PETG | 2,000–2,400 MPa | 65–70 °C | 15–25% | Low at ambient; dry before printing if wet | Standard brass acceptable |
| ABS CF | 3,800–4,500 MPa | 100–110 °C | 3–8% | Low moisture uptake; enclosure required to control warp | Hardened steel or ruby |
| PAHT CF15 | 5,000–6,500 MPa | 140–160 °C | 4–8% | High moisture uptake; dry 80 °C before printing | Hardened steel or ruby |
Selection should not be made on tensile modulus alone. A fixture near a machining-centre coolant spray has a moisture-tolerant requirement that favors PET CF15 over PAHT CF15, but the same fixture at 150 °C dry heat would exceed the 0.45 MPa HDT of PET CF15 and require a polyamide-based carbon-filled grade or a different polymer family. In low-volume prototyping without a hardened nozzle, unfilled PETG may be selected even though its modulus is lower, because the production cost of nozzle replacement and filament abrasion is removed. For inspection equipment with tight thermal flatness, PET CF15 is appropriate when the ambient temperature remains below 70 °C under load; above that boundary, published data for long-term creep and flatness retention under sustained fixture load is limited.