| HS Code | 922702 |
| Manufacturer | 3D Systems |
| Product Name | FabPro Tough BLK Plastic |
| Material Type | Photopolymer resin |
| Color | Black |
| Compatible Printer | FabPro 1000 |
| Layer Thickness Um | 50-100 |
As an accredited 3D Systems FabPro™ Tough BLK Plastic factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
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3D Systems FabPro™ Tough BLK Plastic is a single-component, black, acrylate-based photopolymer formulated for the 405 nm digital light processing platform of the FabPro™ 1000 system. The material polymerizes from a low-viscosity liquid into a rigid, dark-colored thermoplastic-like solid after exposure and post-cure. The principal design intent is to provide higher impact resistance and elongation than standard gray prototyping resins while retaining a matte to satin black appearance for functional prototypes, housings, brackets, snap-fit assemblies, and low-volume production aids. Mechanical characterization is anchored to ASTM D638-14, ASTM D790-17, ASTM D256-10, ASTM D648-18, and ASTM D2240-15. Because the formulation is reactive acrylate chemistry, lot-to-lot exposure response is controlled through viscosity, inhibitor level, and pigment dispersion monitoring rather than through simple color matching alone.
Manufacturer-reported representative values for cured specimens are generated from builds cleaned in high-purity isopropanol and post-cured to full conversion under controlled 405 nm irradiation. Tensile strength at break is reported at 45 MPa, with tensile modulus at 2100 MPa and elongation at break at 9% when tested under ASTM D638-14. Flexural strength is reported at 70 MPa and flexural modulus at 2200 MPa under ASTM D790-17. Notched Izod impact is reported at 25 J/m under ASTM D256-10, Shore D hardness at 82 under ASTM D2240-15, and heat deflection temperature at 60 °C under ASTM D648-18 at 0.455 MPa fiber stress. These values shift with build orientation, layer thickness, and post-cure uniformity. Thin sections below 1 mm may show reduced elongation and impact because dark pigment attenuates through-thickness conversion. Sections above 5 mm may develop internal shrinkage stress that lowers apparent tensile strength unless a slow post-cure ramp is applied.
| Property | Test method | Representative value |
|---|---|---|
| Tensile strength at break | ASTM D638-14 | 45 MPa |
| Tensile modulus | ASTM D638-14 | 2100 MPa |
| Elongation at break | ASTM D638-14 | 9% |
| Flexural strength | ASTM D790-17 | 70 MPa |
| Flexural modulus | ASTM D790-17 | 2200 MPa |
| Notched Izod impact | ASTM D256-10 | 25 J/m |
| Shore D hardness | ASTM D2240-15 | 82 |
| Heat deflection temperature at 0.455 MPa | ASTM D648-18 | 60 °C |
The black pigmentation is not a passive colorant; it behaves as a dispersed photoabsorber that reduces the depth of photopolymerization per unit exposure. On the FabPro™ 1000, the working curve depth is consequently lower than that of FabPro Proto GRY or other transparent and gray grades. Underexposure produces interlayer delamination, low surface gloss, and brittle fracture. Overexposure produces z-axis growth, support fusion, and loss of fine negative features. The manufacturer’s validated default for this grade commonly uses 50 µm layer thickness rather than 100 µm because the thinner increment preserves interlayer crosslink density. Ambient build environment should remain at 22–25 °C; lower temperatures increase viscosity and impair recoating, while higher temperatures can accelerate dark polymerization in the vat. Relative humidity above 60% RH may introduce moisture into the acrylate network, reducing glass transition temperature and impact response.
Because black resin absorbs the same 405 nm dose that drives conversion, process development must separate surface cure from bulk cure. At 50 µm vertical increments, the first-layer exposure is typically increased to promote build platform adhesion, while subsequent layers use a lower energy density to control lateral expansion. On filtered DLP equipment operating at 405 nm, the energy dose per layer for this grade is generally higher than for clear and gray resins. Process validation should include a step wedge and an exposure series across at least ±10% of the nominal dose, because small changes in photoinitiator concentration or pigment dispersion alter the working curve more than final durometer. Published data for pigment-specific working curve coefficients in this exact formulation is limited; therefore, production-scale facilities commonly calibrate exposure with a nine-square calibration tile before committing to a new lot.
Dimensional compensation for FabPro Tough BLK is not a single scale factor because the black-filled photopolymer shrinks anisotropically during post-cure. Linear shrinkage of approximately 0.4–0.8% may be observed on long axes, while thin walls shrink less due to constraint from the build platform. Calibration should include holes, bosses, and gaps measured with a coordinate measuring machine or digital micrometer. Scaling factors for X, Y, and Z are adjusted separately. The Z axis is most sensitive to first-layer overexposure and peel force; a compensation of +0.05 mm is often applied to the support base plane. Post-cure chamber uniformity and part packing density further influence shrinkage. Because published data for anisotropic shrinkage in this specific grade is limited, production scale factors should be derived from a multi-part build at the intended orientation.
In direct substitution of FabPro Proto GRY or similar general-purpose prototyping resins, the mechanical advantage appears primarily in impact-oriented loading. Snap-fit cantilevers printed in FabPro Tough BLK withstand larger insertion deflections before whitening or fracture, provided root radius is no smaller than 0.5 mm and section thickness is greater than 1.2 mm. A retention beam with a deflection-to-length ratio above 4% may still exceed the design window because elongation at break is finite. Cyclic assembly testing shows that repeated deflection of dark-colored snap features can initiate surface microcracks if post-cure has not eliminated residual monomer. The main difference from standard gray resin is not stiffness but post-yield response: the black grade maintains a longer plateau before fracture, allowing plastic deformation rather than immediate brittle failure in short-duration mechanical loads.
In functional housings with living hinges, the material performs best when the hinge thickness is reduced to 0.4–0.6 mm and the hinge is oriented perpendicular to the build direction. Fabrication of living hinges parallel to the build platform produces lower interlayer strength and premature hinge fracture. Support tip contact diameters of 0.3–0.5 mm are standard for this grade; smaller tips may fail to separate during peel, while larger tips leave witness marks on functional surfaces. Internal channels should have a minimum diameter of 1.5 mm to permit cleaning fluid flow. Smaller channels retain uncured resin and solvent, creating post-cure cracking risks. Large flat surfaces parallel to the build platform generate maximum peel force and may delaminate unless the orientation is tilted at 10–15° from horizontal.
Green parts removed from the FabPro™ 1000 retain uncured surface monomer and must be cleaned before UV post-exposure. Standard practice uses immersion in high-purity isopropanol of 99% or higher in an ultrasonic bath for 2–5 min, followed by compressed air drying. Excessive solvent exposure exceeding 10 min can swell the partially polymerized matrix and produce surface whitening or microcracking after post-cure. Residual alcohol must be fully evaporated before post-cure because trapped solvent depresses local conversion and lowers apparent durometer. UV post-cure at 405 nm with chamber temperature below 40 °C is typical; higher temperatures may accelerate conversion but also increase thermal warpage in uneven cross sections. The part should be rotated halfway through the post-cure cycle to normalize line-of-sight energy delivery. Thick sections above 8 mm may require staged curing with a ramp from 20 °C to 40 °C over 30 min to avoid internal stress cracking.
On production lines where FabPro Tough BLK is used for low-volume functional parts, batch-to-batch variation in black pigment dispersion is a principal source of rejected builds. Settling is not observed after agitation, but photoinitiator oxidation can occur if the vat is left open under ambient light. The resin should be mixed before each build, and the vat should be filtered through a 100 µm mesh after any failed build to remove gel fragments. Support structures are more brittle than the part body because they are printed with lower exposure; removal before post-cure reduces edge chipping. Fabrication logs that record resin lot, ambient humidity, and post-cure time provide traceability required for ISO 13485 or automotive PPAP documentation if the parts are used in validation builds.
The cured material is a crosslinked acrylate network with moderate water uptake. Immersion testing in 23 °C water for 24 h can reduce tensile modulus by a few percent, while prolonged exposure above 60 °C risks thermal distortion. The heat deflection temperature of 60 °C at 0.455 MPa means that mounting positions near motors, heated chambers, or hot air exhausts above that temperature should be avoided. In laboratory aging, dark parts stored in a 50 °C oven for 7 days typically show a slight increase in surface hardness but no measurable increase in impact strength. Outdoor use without coatings is not recommended because UV and moisture cause chalking and progressive embrittlement. If outdoor exposure is required, a UV-blocking topcoat is necessary. Published data for this specific configuration is limited for high-humidity tropical aging beyond 30 days, so extended qualification should be conducted on printed witness specimens.
Sealed bottles have a stated shelf life of 12 months when stored between 5 °C and 30 °C and protected from light. After opening, the material should be used within 90 days if exposed to normal shop air, because oxygen affects the inhibitor and may initiate dark polymerization. Cold storage below 5 °C can increase viscosity and may cause pigment flocculation; if cold, the bottle should be warmed to 22 °C and mixed gently before use. The resin vat is not a storage vessel; material left in the vat over weekend shutdown should be mixed and filtered before restart. A failed first layer can leave partially gelled material on the vat film, which increases peel force and induces delamination; that film must be inspected under low-angle light.
The liquid resin is not classified as a food-contact material and is not certified under FDA 21 CFR 177.2600 or USP Class VI. It is supplied with a Safety Data Sheet that identifies acrylate sensitization potential; prolonged skin contact should be prevented with nitrile gloves, and the build area should be ventilated. Cured parts should be tested before use in medical-device housings because leachable residual monomer may exceed customer-specific limits. The cured solid is resistant to common hydrocarbon greases but softened by strong ketones, chlorinated solvents, and glycol ethers. Alcohol wiping is acceptable for short contact; ultrasonic exposure to acetone is not recommended. Disposal of liquid waste must follow local photopolymer waste regulations. In the European Union, the mixture is subject to REACH registration duties and may be restricted under Annex XVII if specific monomers are present. In production, uncured waste is collected as hazardous liquid waste and kept separate from solvent rinses to avoid premature gelation in the waste stream.
The primary replacement decision on the FabPro™ 1000 line is often between FabPro Proto GRY for quick concept models and FabPro Tough BLK for functional checks. Proto GRY offers faster exposure and lower material consumption, while Tough BLK trades some ease of use for improved elongation and notch sensitivity. The black grade provides optical contrast for inspection and eliminates the need for painting in many consumer electronics mockups. Compared with rigid stereolithography materials such as Figure 4 TOUGH-BLK or Accura 25, the FabPro Tough BLK occupies a lower-HDT, lower-toughness segment; the Figure 4 materials are designed for higher-throughput production systems with more aggressive post-cure cycles. This distinction matters when transferring a design from FabPro 1000 prototyping to production tooling.
An instrument housing printed at 50 µm layer thickness with 2 mm wall section and post-cured for 60 min demonstrated sufficient stiffness for threaded brass insert installation at low torque; insertion torque was limited to 0.4 N·m to avoid radial cracking. Snap-fit lid catches with a 0.8 mm root radius survived manual cycling beyond 50 closures without visible fracture. The components were cleaned in 99% IPA for 3 min, dried at ambient temperature for 30 min, and post-cured under 405 nm with rotation at 20 min intervals. Residual odor after post-cure was negligible, and solvent residue was below the detection limit of the in-house weighing protocol. This process envelope is not a universal substitute for injection-molded acetal or nylon, but it provides a repeatable route for short-run black functional parts on the FabPro™ 1000 platform.