| Код ТН ВЭД | 478342 |
Как аккредитованный завод по производству композитов из полиамидного углеродного волокна для 3D-печати CRP Technology Windform SP, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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In wind tunnel aerodynamic validation, acceptance depends on dimensional fidelity across the tested angle-of-attack range rather than on ultimate tensile strength alone. Windform SP parts are produced by selective laser sintering at a layer thickness of 0.12 mm, with the leading edge of the test article inclined 12° to 15° from the recoater axis to reduce stair-step artefacts along the chord line. The supplier-published tensile modulus of 5400 MPa measured under ASTM D638-14 and flexural modulus of 4200 MPa under ASTM D790-17 provide the stiffness required to hold surface curvature when the model is mounted in a six-component force balance at airspeeds up to 50 m/s in closed-loop atmospheric tunnels. Feedstock is controlled at a virgin powder refresh ratio of 30% to 40% by weight, with recovered powder sieved through a 75 µm mesh and dried to a moisture content below 0.1% before blending. Regulatory exposure is limited because these parts are not production aircraft hardware; dimensional compliance is verified to ISO 2768-1 class m for linear dimensions, ISO 4287 for Ra surface texture, and ISO 286-1 for balance-mounting bores reamed to H7 tolerance. The terminal outputs are rapid-turnaround wind tunnel models, antenna radome prototypes, and radio-controlled test bodies in which the carbon-filled polyamide matrix is chosen for thermal stability across a 20 °C to 40 °C laboratory window and for lower post-machining edge breakout than unfilled PA12.
The practical boundary for Windform SP in injection mould tooling is cumulative heat load at the cavity surface and the fatigue response of sintered polyamide under repeated clamp cycles, not the melt temperature of the injected resin. In low-volume packaging and consumer electronics overmoulding, inserts are built with a shell thickness of 4 mm to 6 mm and backed by a steel bolster plate because the carbon-filled composite does not match the stiffness of P20 tool steel when clamp force exceeds 15 t. The insert is oriented on the SLS platform with the cavity face upward and rotated 30° to 45° in the X-Y plane to avoid layer-plane delamination directly at the parting line. Moulded part tolerance is specified under ISO 20457:2018, and material declaration is managed under REACH (EC) No 1907/2006 and RoHS 2011/65/EU when the end-use moulding enters consumer supply chains. Conformal cooling channels of 4 mm diameter are pressure-tested at 8 bar before the insert enters the mould base; published cycle-time reduction data for this exact Windform SP insert geometry remain limited because coolant channel performance depends strongly on curvature, wall stock, and injected polymer grade. Tool life is typically constrained to 500 to 5000 shots when moulding glass-filled polypropylene or ABS, and the insert is not recommended for resins requiring mould temperatures above 120 °C under continuous cycling. The terminal deliverables are short-run caps, prototype enclosures, and overmoulded electronic housings where steel tooling would be economically disproportionate.
On the hot side of a turbocharged rally car, carbon-filled Windform SP is used for air handling components that are not classified as primary crash structures and therefore fall outside motorsport homologation requirements for structural composite load paths. The dominant material advantage is the combination of a heat deflection temperature of 173 °C under ASTM D648-18 at 1.82 MPa and a published density of 1.10 g/cm³ under ISO 1183-1:2019, which permits a brake cooling duct or an intake plenum to survive under-bonnet radiant heating without the mass penalty of aluminium. Parts are typically printed as split shell halves at a wall thickness of 2.5 mm, then bonded with a methyl methacrylate structural adhesive after light flame treatment of the bond face to remove sintered surface contamination. The feedstock refresh ratio is held at 30% virgin material during the service life of the powder bed, because reused carbon-filled polyamide powder that exceeds a 50% recycled fraction can shift melt-flow characteristics and produce inconsistent wall density. Process compliance is maintained by recording build chamber temperature within ±2 °C of the material recrystallization band on every build, and by inspecting the finished shells against ISO 1101 for profile tolerance on the sealing faces. The terminal articles are turbo duct adapters, intercooler end tanks, and brake cooling conduits that operate under positive pressure pulses up to 1.8 bar absolute and under intermittent surface temperatures up to 110 °C; prolonged exposure above that threshold can anneal the sintered nylon matrix and reduce interfacial bonding between the carbon fibres and the polyamide phase.
Carbon-filled Windform SP in robotic end-of-arm tooling substitutes for aluminium gripper jaws when cycle time, part mass, and chemical exposure to cutting fluids are more important than absolute tensile strength. The jaw geometry is built solid at 100% fill because SLS does not use a honeycomb interior; the scan vector is rotated 67° per layer to reduce anisotropic strength fall-off at the jaw root and around the steel threaded insert bores. Mechanical compliance is checked against ASTM D638-14 for tensile properties of the batch-coupon build and against ISO 10218-1:2011 for robot safety integration of the end effector, while the powder blend is maintained at a 30% virgin ratio and conditioned to below 0.1% moisture content before the job starts. Stainless steel helicoil inserts are installed with a thread engagement of 1.5 to 2.0 times the nominal diameter, and pull-out testing is performed to 8 kN on a representative jaw whenever the build chamber contains more than 50% recovered powder. The operational limitation is impact fatigue: a sharp-edged metal-preform handling jaw may show surface microcracking at the carbon-fibre-matrix interface after 150,000 to 200,000 pick cycles when the fill orientation crosses the load path at less than 30°. The terminal product is a lightweight gripper jaw set for handling injection-moulded polypropylene preforms, painted sheet-metal brackets, or electronic connector bodies where conductive carbon-filled PA may require external earthing if the robot cell has electrostatic discharge control requirements.
Unmanned aerial vehicle camera gimbal brackets made from Windform SP are selected when the part must maintain dimensional stability through a ground-to-altitude temperature swing while carrying an optical module with a mass of 300 g to 600 g. The bracket is printed at 0.12 mm layer thickness, with the primary mounting plane oriented perpendicular to the Z axis and the vibration-isolator lugs built at 45° to the recoater sweep to avoid residual porosity at the hinge line. The powder feedstock is managed with a 35% virgin refresh rate, and the completed bracket is conditioned at 23 °C and 50% relative humidity for 24 h before CMM inspection under ISO 10360-2:2009. Published datasheet values for Windform SP list a tensile modulus of 5400 MPa under ASTM D638-14 and a heat deflection temperature of 173 °C under ASTM D648-18, but the critical operational parameter is not the average modulus; it is the retention of clamping force across the -20 °C to 50 °C range when stainless steel M3 threaded inserts are length-limited by a boss diameter of 5.5 mm. Compliance for this segment is driven by export-control and electromagnetic compatibility rather than aerospace structural certification because the bracket is a component of an unmanned system; material declaration follows REACH (EC) No 1907/2006 and RoHS 2011/65/EU, while the finished assembly is verified under MIL-STD-810H method 514.8 vibration profiles only when the airframe integrator requires it. The operational boundary is that prolonged exposure to high ultraviolet radiation can embrittle the polyamide matrix, so the bracket requires a UV-stable coating or an enclosed airframe installation if the drone operates at high altitude for more than 300 flight hours.
On a body-in-white inspection line, carbon-filled Windform SP is used for locating fixtures and contour gauges that are not subjected to welding spatter or direct clamp hammering. The printed fixture base is produced with a wall stock of 8 mm to 12 mm, after which the reference surfaces are CNC-machined to remove 0.5 mm of sintered skin because the as-built Ra generally exceeds the contact-face requirement for precision gauge work. The carbon-fibre loading is fixed by the supplier, but the build-specific variable is the scan strategy: reference pads are scanned with a fill vector aligned to the expected gauge load direction, while the surrounding body is scanned with a 67° layer rotation to reduce curl and geometric drift during the sintering cool-down. Powder blend control follows a 30% virgin refresh ratio, and the recovered fraction is sieved through a 75 µm mesh before every build to remove partially degraded carbon-fibre clusters. Fixture acceptance is governed by ISO 1101 for locator position and by ISO 10360-5:2020 for single-point probing verification, while the material batch is traceable through the SLS machine log and powder lot certificate. The operational limit appears when the fixture is exposed to repeated autoclave cleaning or to strong alkaline washing agents above 60 °C, which can accelerate polyamide matrix softening and reduce interfacial adhesion at the carbon fibre surface. The terminal products are body-in-white checking aids, bonnet-and-door gap gauges, and assembly fixtures for adhesive bonding cells in which a metal tool would be too heavy for rapid change-over and a standard PA12 fixture would lack the required long-span stiffness.
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CRP Technology Windform SP is a polyamide-based composite powder filled with short carbon fiber and formulated for selective laser sintering (SLS) powder-bed fusion. The material is supplied in black and is positioned within the Windform family as a mid-range stiffness grade: it raises the elastic modulus well above unfilled polyamide 12 but does not reach the higher fiber loading and stiffness of Windform XT 2.0. Manufacturer-published values measured under ISO 527-2:2012 on laser-sintered specimens place tensile strength at break in the range of 74–80 MPa and tensile modulus in the range of 5.2–5.5 GPa. Density under ISO 1183-1:2019 is reported near 1.20 g/cm³, while flexural modulus under ISO 178:2019 is in the range of 4.8–5.2 GPa and elongation at break is restricted to approximately 3.0–4.0%. The heat deflection temperature under a load of 1.82 MPa, determined to ISO 75-2:2013, is commonly placed in the 145–150 °C range. These values apply to conditioned test specimens and should not be transferred to actual component geometries without orientation-dependent validation.
Typical SLS layer thickness for this material class is 100–120 µm, although machine-specific laser and recoater calibration may shift the practical setting. The carbon fiber fraction increases the effective thermal conductivity of the loose powder and reduces melt flow after laser exposure. That combination produces useful stiffness and creep resistance but also narrows the operating window for bed temperature, laser energy density, and recycled-powder refresh rate. The grade is used primarily for wind tunnel test articles, engine-bay brackets, thin-walled duct sections, sensor mounts, and other components in which unfilled polyamide would deform excessively under sustained load at 50–80 °C or would require wall sections below 2.0 mm with insufficient buckling resistance.
The processing window is constrained because carbon fiber raises the thermal conductivity of the powder bed and simultaneously increases the viscosity of the molten polyamide phase. In production-scale SLS systems such as multi-zone machines with nitrogen inerting and oxygen sensing, the powder bed is held at a setpoint just below the polyamide melting region. For carbon-filled polyamide powders, that setpoint typically lies in the 168–178 °C range, but the specific value for Windform SP must be established from the manufacturer’s build parameter set and confirmed by production trials on the intended machine. Unlike natural or lightly filled polyamide, the dark carbon-filled powder responds more strongly to infrared absorption from surface heaters. If the bed temperature varies by more than approximately ±2 °C across the build area, the first visible failure mode is usually edge curl in dense cross-sections, followed by Z-direction delamination or warpage near the build plate corners. Field data from SLS service bureaus indicate that carbon-filled grades are less tolerant of nonuniform lamp calibration than unfilled materials because the crystallization rate accelerates in faster-cooling regions and generates higher residual stress. Published data for Windform SP-specific thermal distortion thresholds is limited; therefore, process qualification builds with thermocouple-instrumented plates are required before production release.
Powder management also differs from unfilled polyamide 12. Recycled overflow powder retains usable fiber length if sieved through a mesh no finer than approximately 150 µm. Overly fine sieving can separate carbon fiber from the polyamide particles and shift the packed density of the reclaimed fraction, causing batch-to-batch variation in part density and surface finish. Production runs with carbon-filled SLS powders commonly limit recycled content to 50% or less when process repeatability is critical, although the validated refresh ratio for Windform SP should be taken from the manufacturer’s material handling guide. Storage of the powder in sealed hoppers under dry air or nitrogen is recommended; moisture above 0.1% by weight is generally sufficient to reduce flowability and increase surface defects. Exposure at relative humidity greater than 60% should be minimized, and powder removed from a humid production environment should be dried according to the supplier’s documented procedure before return to the machine.
The laser energy density for Windform SP is adjusted to maintain sufficient melt penetration through the build layer while avoiding dark-surface overheating. In carbon-filled polyamide systems, volumetric energy density settings commonly fall near 0.08–0.15 J/mm³ for thin layers, but the value is dependent on laser beam diameter, scan spacing, scan speed, and layer thickness. Excess laser input produces surface ablation, smoke generation, and the accumulation of carbon-rich degradation products on the recoater blade. Insufficient input produces low interlayer fusion and reduced tensile strength in the Z-direction. Recoater drag is another practical constraint: fiber agglomerates above approximately 200 µm can create blade streaks and cause local layer shifts. Maintenance protocols therefore require regular inspection of the recoater blade edge and classification of reclaimed powder through the correct mesh before reuse.
Wind tunnel aerodynamic test components, front-wing inserts, brake-cooling ducts, and sensor brackets are representative use cases for Windform SP. The carbon-filled surface reduces stray light reflection in optical measurement setups, while the higher modulus relative to unfilled polyamide allows thinner load-bearing walls to be considered. On calibrated SLS platforms, X/Y features can typically be held within ±0.3 mm over 100 mm after thermal scaling factors are applied. Z-axis dimensions carry additional deviation from layer-step and post-sintering shrinkage, frequently in the range of ±0.15 mm for well-optimized build orientations. Because the carbon fiber lowers the coefficient of thermal expansion relative to unfilled polyamide, form stability during wind tunnel soak tests at 45–55 °C is generally adequate when the component is not directly attached to high-temperature engine surfaces. The material can be drilled, tapped, and fitted with threaded inserts; however, tapping into carbon-filled SLS parts can create micro-delamination at hole edges. For load-bearing connections, heat-set or interference-fit threaded inserts are preferred over direct threading in production parts. Bonding is feasible after solvent wiping and plasma or flame surface activation, but bond strength must be qualified on actual surface condition because SLS powder-residual skin varies with build geometry and post-processing.
Design comparisons should use values obtained from the same test standard and specimen conditioning. The following table consolidates representative ranges published by the manufacturer for laser-sintered Windform SP test coupons.
| Property | Test designation | Range |
|---|---|---|
| Density | ISO 1183-1:2019 | 1.18–1.22 g/cm³ |
| Tensile strength at break | ISO 527-2:2012 | 74–80 MPa |
| Tensile modulus | ISO 527-2:2012 | 5.2–5.5 GPa |
| Elongation at break | ISO 527-2:2012 | 3.0–4.0% |
| Flexural strength | ISO 178:2019 | 105–115 MPa |
| Flexural modulus | ISO 178:2019 | 4.8–5.2 GPa |
| Heat deflection temperature at 1.82 MPa | ISO 75-2:2013 | 145–150 °C |
The exact certificate values vary with build orientation, part density, powder lot, and moisture condition. When specification compliance is required, the manufacturer’s lot-specific test report should be referenced rather than a generic datasheet range. Values obtained under ASTM D638 may differ from those obtained under ISO 527-2:2012 because specimen geometry and test speed are not identical; therefore, comparative material selection must avoid mixing standards.
Compared with unfilled polyamide 12, Windform SP increases tensile modulus by roughly three times. Unfilled laser-sintering polyamide 12 typically exhibits a tensile modulus of 1.5–1.8 GPa, tensile strength near 45–50 MPa, and elongation at break above 15%. The trade-off is a sharp reduction in ductile failure behavior. Windform SP fails at 3.0–4.0% strain and is not appropriate for snap-fit clips, living hinges, or joints that require large plastic deformation before fracture. In applications where the primary requirement is stiffness, the higher-modulus Windform XT 2.0 may be more suitable. Published Windform XT 2.0 tensile modulus is commonly reported above 8.5 GPa, with density near 1.10 g/cm³ depending on datasheet revision. That grade provides greater stiffness and higher thermal resistance but is also more anisotropic in the Z-direction and more notch-sensitive. Windform SP is therefore selected when the engineering requirement includes a balance between stiffness and post-machining robustness, or when the component contains abrupt section changes that would create high stress concentrations in a higher-fiber-grade part.
Against glass-filled polyamide 12 grades, Windform SP offers lower density than many glass-filled systems because carbon fiber has a lower specific gravity than milled glass. Glass-filled grades can achieve useful stiffness at lower cost in some regions, but they may exhibit higher ash content, greater abrasion of recoater blades, and different surface roughness after bead blasting. The selection between carbon-filled and glass-filled SLS materials should be made from an application-specific matrix that includes modulus, density, thermal expansion, impact, electrical conductivity, and post-processing behavior. Electrical and dielectric requirements are not primary selection criteria for Windform SP; the carbon fiber content can produce measurable surface conductivity but the material is not characterized as an electrically conductive engineering compound unless verified by the manufacturer for the specific lot and build density.
Service limits are governed by the polyamide matrix. Moisture absorption at 23 °C and 50% relative humidity can reach approximately 1.0–1.5% by weight, which reduces tensile strength and modulus relative to dry-as-built values. Components exposed to continuous hot water above 60 °C, to glycol-based coolants, or to acidic or strongly oxidizing media should undergo application-specific exposure testing before production release. The grade is not inherently flame retardant; if a UL 94 classification is required, the manufacturer’s certificate for Windform SP or a validated post-process coating must be consulted. Regulatory compliance under REACH Regulation 1907/2006 and RoHS Directive 2011/65/EU should be confirmed with the supplier for the specific powder lot and any post-processing additives or coatings. For aerospace, motorsport, or unmanned aerial vehicle applications, production qualification should include control of powder lot, recycled-powder fraction, build orientation, laser power confirmation, and post-build annealing or stress-relief cycles where specified by the manufacturer.