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3D Systems VisiJet RBK-RWT-L20 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-WT 200**)

    • Product Name: 3D Systems VisiJet RBK-RWT-L20 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-WT 200**)
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 973352
    Product Name 3D Systems VisiJet RBK-RWT-L20 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-WT 200**)
    Tensile Strength 43 MPa
    Tensile Modulus 2350 MPa
    Elongation At Break 8%
    Flexural Strength 68 MPa
    Flexural Modulus 2250 MPa
    Hardness 85 Shore D
    Heat Deflection Temperature At 0 45 Mpa 64 °C
    Heat Deflection Temperature At 1 82 Mpa 50 °C
    Izod Impact Notched 19 J/m
    Density 1.15 g/cm³
    Color Gray

    As an accredited 3D Systems VisiJet RBK-RWT-L20 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-WT 200**) factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Packaged as a multi-material composite kit containing two sealed cartridges: one VisiJet CR-BK and one VisiJet CR-WT 200. Quantity: two.
    Container Loading (20′ FCL) 20′ FCL container loading for 3D Systems VisiJet RBK-RWT-L20 Multi-Material Composites, comprising VisiJet CR-BK and VisiJet CR-WT 200, securely stowed.
    Shipping This kit contains VisiJet CR-BK and CR-WT liquid cartridges. Shipped as UN3082, Environmentally Hazardous Substance, Liquid, N.O.S. (contains acrylate monomers), Class 9, Packing Group III, marine pollutant. Use UN-approved, upright, sealed packaging with absorbent. Keep away from heat, direct sunlight, and freezing. Follow current SDS and carrier regulations.
    Storage Store VisiJet RBK-RWT-L20 (CR-BK and CR-WT 200) in original, tightly closed, light-resistant containers in a cool, dry, well-ventilated area. Keep away from heat, sparks, open flames, and direct sunlight/UV. Maintain recommended temperature, typically 15–25°C, and do not freeze. Protect from moisture, avoid contamination, keep out of reach of children, and follow the SDS.
    Shelf Life Typically 24 months from date of manufacture when stored in original, unopened containers at recommended temperatures, away from heat and light.
    Application of 3D Systems VisiJet RBK-RWT-L20 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-WT 200**)

    3D Systems VisiJet RBK-RWT-L20 is a multi-material composite workflow in which VisiJet CR-BK and VisiJet CR-WT 200 are printed as discrete, fused domains within the same wax pattern. The two materials are wax-filled photopolymers designed for direct lost-wax investment casting. The composite is not a homogeneous blend; the ratio of CR-BK to CR-WT 200 is therefore a segmentation ratio controlled by the CAD file rather than a formulation ratio. Process validation is performed on a multi-jet printing system with support removal and UV post-cure conducted after printing. Because the black domain is used as a contrast marker or process witness, placement is limited to regions where differential thermal expansion during shell heating will not exceed the shell's green strength. Published data for this specific multi-material configuration is limited; foundries and dental laboratories should verify ash residue after a trial burnout before production release.

    In jewelry lost-wax pattern production, the two-color composite is used as a single-pattern assembly in which CR-WT 200 forms the primary ring shank, setting area, and hollow gallery sections, while CR-BK is inserted as a contrast indicator beneath prong bases or inside filigree recesses. The placement ratio is weighted to CR-WT 200 at no less than 75% of total surface area because the white domain provides simpler visual verification of flaking, smearing, or step errors under 10× optical inspection after support dissolution. Supports are removed in a paraffin-safe solvent bath at 25–35 °C, then the pattern is attached to a wax sprue using a heat pen at 80–90 °C. The tree is invested in a gypsum-bonded or phosphate-bonded flask material with a working time that allows air bubble release under vacuum. Burnout follows a two-stage cycle: first plateau at 120 °C for 1–2 h, second plateau at 650–700 °C for 2–3 h. The terminal cast part is a precious-metal ring or pendant in 14K–18K gold or silver. Final compliance for skin-contact release is checked under EN 1811:2011 and REACH Annex XVII entry 27; the pattern itself is not a final article, but residual ash entering the ceramic or investment shell is controlled by the burn-out schedule.

    What Limits Black-Contrast Detection in Ceramic Shell Drainage Channels?

    For turbine blade investment casting, CR-BK is placed in internal cooling channels, trailing-edge bleed passages, and film-hole rows to verify shell slurry penetration and drainage after each dip. The CR-BK:CR-WT 200 volume ratio in the internal cavity region is kept below 1:3 because excessive black wax in thin galleries raises local stiffness and can shift fracture behavior during autoclave de-wax. The assembled pattern is shelled using an industrial slurry sequence: primary silica slurry with 80–120 g/m² zircon stucco, secondary aluminosilicate slurries, and a final seal coat. After each slurry layer, the black contrast inside the channels is imaged by a structured-light scanner to detect pooling or closed-off passages. De-wax is performed in an autoclave at 150–170 °C and 0.6–0.8 MPa for 4–6 min; insufficient pressure leaves a measurable carbon trace from the black domain. The shell is fired and cast in nickel-based superalloy. Final internal passage verification uses liquid penetrant inspection per ASTM E1417-13 and radiographic inspection per ASTM E1742-18. The terminal product is a turbine blade casting whose internal channel surface quality is controlled by the pattern-level contrast check.

    Dental CoCr Framework Margin Verification in Two-Color Wax Patterns

    For removable partial denture frameworks and implant bars, CR-BK is printed as a 0.3–0.5 mm thick marker at the finish-line margins of the wax copings, while CR-WT 200 forms the anatomical body. The segmentation file assigns 5–10% of the total pattern volume to CR-BK to limit distortion during sprueing and flask pressing. Support removal is performed in an ultrasonic bath at 30 °C with isopropyl alcohol, followed by drying at 25 °C for 30 min. The pattern is sprued with 3 mm round wax wire and invested in a phosphate-bonded investment material meeting ISO 22674:2016 requirements for the subsequent CoCr casting. Burnout ramps from room temperature to 250 °C at 2 °C/min, holds for 1 h, ramps to 750 °C at 3 °C/min, holds for 1.5 h, and cools to casting temperature. The cast CoCr framework is devested after the flask cools below 150 °C; the black marker can leave a dark oxide trace if the flask is opened above that threshold. Margin definition is inspected under 20× microscopy. The terminal product is a removable partial denture framework or implant bar; final fit is assessed according to ISO 12836:2015 for digital restorative workflows and ISO 9693-1:2012 for metal-ceramic bond compatibility where a ceramic veneer is used.

    StandardApplication domainVerification pointBoundary condition
    EN 1811:2011JewelryNickel release from final cast metalAs required by REACH Annex XVII entry 27
    ISO 22674:2016Dental CoCr frameworksCast framework mechanical propertiesPattern used for fit assessment only
    ASTM E1417-13Turbine bladesInternal channel liquid penetrant inspectionNo wax residue after autoclave
    ASTM E505-15Aluminum training mastersRadiographic defect comparisonReference master only

    Validation of multi-cavity wax injection tooling using the two-material composite is carried out by printing a master pattern with CR-BK in the runner and gate domains and CR-WT 200 in the part cavity domains. The black-to-white ratio is specified by the mold insert segmentation; runner domains are printed as solid CR-BK while cavity domains are printed as CR-WT 200 with a 0.8 mm fused transition zone. The assembled master pattern is used to check shut-off lines, gate balance, and vent location in the tool before cutting steel. The printed master is scanned by a blue-light scanner; deviations from CAD are recorded at the transition zone because differential shrink of the two wax blends can produce a step of 20–40 µm after post-cure. This step is compensated by offsetting the interface 15 µm in the CAD file. The terminal product is a validated wax injection mold insert set for a medical forceps component. Dimensional acceptance follows ISO 12836:2015 for the digital capture sequence; for medical component tooling, first article inspection is documented in the customer's quality system. No production cast parts are generated from this master; the master is a process validation artifact.

    When Casting Defect Standards Require Contrast-Separated Shrinkage Registers

    Foundry training and defect-level certification use a reference pattern printed with CR-BK as the defect witness zone and CR-WT 200 as the baseline. The ratio is typically 1:1 by volume to provide equal visual area for comparison. The pattern is invested and cast in aluminum A356 using a standard gravity pour at 700–720 °C. After shakeout, the black domain correlates with oxide inclusion markers; the white domain is used to read shrinkage porosity levels under X-ray per ASTM E505-15. The two-color contrast in the original wax pattern maps directly to the cast defect location after the black domain is removed, which allows the inspector to compare the wax-to-cast relationship without opening the shell. The terminal product is a training reference standard, not a production part; its acceptance is controlled by ASTM E505-15 reference radiographs, not by dimensional tolerances.

    Dimensional Compensation Across a Fused Two-Material Interface

    In short-run orthopedic implant casting pattern development, the fused interface between CR-BK and CR-WT 200 is treated as a dimensional control feature rather than a cosmetic boundary. The ratio of black to white is limited to 1:4 in load-bearing cross-sections because the black domain shows a slightly higher post-cure linear shrink when exposed to the same UV dose. Patterns are printed with the interface oriented 45° to the build axis to prevent a single-layer butt joint. After support removal and UV post-cure, the interface is measured with a contact profilometer at 0.8 mm intervals along the transition line; measured deviation from nominal is compensated in the next build by applying a 10–15 µm offset to the black domain boundary. The terminal product is a trial wax pattern for a CoCrMo orthopedic implant casting used in process validation; final cast geometry is evaluated to ISO 13485:2016 documentation requirements and ASTM F75-18 alloy specification.

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    Certification & Compliance
    More Introduction

    3D Systems VisiJet RBK-RWT-L20 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-WT 200**) is a paired rigid photopolymer feedstock system for MultiJet Printing platforms configured for two build materials and a separate support material. The product is not a pre-mixed composite resin; “composite” in this context refers to a multi-material build arrangement in which VisiJet CR-BK and VisiJet CR-WT 200 are deposited through separate piezoelectric printhead channels. This allows rigid black and rigid white regions to form in one monolithic cured part without secondary bonding, overmolding, or manual assembly. The L20 identifier refers to the supplier’s cartridge-bundle format rather than a filler or reinforcement package. Typical applications include functional prototypes, visual verification models, master patterns for tooling, and short-run models where black-white contrast must remain stable under low-to-moderate mechanical load.

    The two resins are UV-curable acrylate formulations supplied in sealed cartridges. Processing is governed by the MJP build profile, which commands printhead temperature, jetting waveform, roller engagement, layer thickness, UV irradiation, and support-material deposition. In standard high-definition mode, the platform builds at a layer thickness of 0.032 mm; finer modes may be available depending on the specific machine and job definition. A planarizing roller removes excess liquid from each jetted layer before the UV lamp cures it. For a two-material part, the roller does not distinguish between black and white fluid; it removes local excess and can carry a small residual film across the black-white boundary. Boundary sharpness is therefore not controlled by drop placement alone but by the interaction of wet-fluid rheology, roller speed, and cure timing.

    What separates the RBK-RWT-L20 pair from a single-grade rigid MJP feedstock under production conditions?

    Single-grade MJP parts contain only one build-material-to-support interface. The RBK-RWT-L20 set adds a second, persistent build-material-to-build-material interface between black and white regions. That interface is formed layer by layer and is influenced by the viscosity difference between the pigmented formulations and the degree of interpenetration that occurs before UV cure. On MJP 5600-class equipment, the black material often exhibits a slightly lower viscosity at jetting temperature than the white 200 formulation, but batch-to-batch variation in pigment dispersion can invert this relationship if cartridges are not conditioned or if printhead channels are partially degraded. Published viscometry data for this specific formulation combination is limited; process transfer from one machine to another should be confirmed by printing a two-material transition test coupon rather than a monomaterial part.

    Because these are cross-linking photopolymers, ISO 1133-1:2022 melt-flow testing is not applicable. The relevant uncured-fluid property is jetting viscosity, measured by rotational rheometry such as ASTM D4440-15 or a cone-and-plate method at the printer jetting temperature. The MJP printhead can tolerate only a narrow viscosity envelope; cartridges that have exceeded their recommended shelf life or have been exposed to ambient UV can drift outside that envelope and produce missing jets, curved traces, or local thickness variation. Cartridges should be stored away from sunlight and blue-rich LED sources and equilibrated to the printer room temperature before insertion. The black and white feedstocks must not be blended in a bulk container or cartridge; the system relies on separate fluid pathways to maintain visual contrast and to prevent an uncontrolled gray mixture that can shift local cross-link density.

    Mechanical-property benchmarks for CR-BK and CR-WT 200 under ASTM D638-14, ASTM D790-17, and ASTM D648-16

    Representative published datasheet values for the two rigid grades show a consistent stiffness difference. VisiJet CR-WT 200 is typically reported with tensile strength in the 42–46 MPa range and tensile modulus in the 1.6–1.9 GPa range when tested to ASTM D638-14. VisiJet CR-BK is typically cited in the 32–38 MPa tensile-strength range with tensile modulus in the 1.3–1.6 GPa range. Elongation at break is usually higher for the black grade, often in the 13–20% range, while CR-WT 200 sits at the lower end of that band. Flexural modulus values under ASTM D790-17 follow the same ranking. Both grades exhibit heat deflection temperatures under 0.455 MPa loading in the 45–52°C range when tested to ASTM D648-16, so neither material is suited to elevated-temperature load-bearing service. Notched Izod impact values from ASTM D256-10 are in the low-to-mid 20–35 J/m range, which is lower than typical unfilled polycarbonate or PA12 and should be considered for snap-fit or impact-prone features.

    Representative published mechanical-property ranges for VisiJet CR-BK and VisiJet CR-WT 200
    Property Test method VisiJet CR-BK VisiJet CR-WT 200
    Tensile strength (MPa) ASTM D638-14 32–38 42–46
    Tensile modulus (GPa) ASTM D638-14 1.3–1.6 1.6–1.9
    Elongation at break (%) ASTM D638-14 13–20 6–14
    Flexural modulus (GPa) ASTM D790-17 1.3–1.6 1.5–1.9
    HDT at 0.455 MPa (°C) ASTM D648-16 45–52 45–52
    Notched Izod (J/m) ASTM D256-10 20–35 20–30
    Shore D ASTM D2240-15 73–78 79–84

    In production builds, the most commonly observed multi-material defect is not bulk delamination but a cosmetic feather zone at the black-white boundary. The feather zone is a gray transition band produced when the planarizer carries residual black liquid into the white region, or vice versa, before the UV array cures the layer. Field data from MJP equipment indicates that transition lines oriented parallel to the planarizer travel direction are more stable than transitions oriented normal to roller travel. A worn planarizer blade or degraded wiper increases the transition-zone width beyond the nominal voxel pitch even when the jetting channels are otherwise healthy. Because the bulk mechanical properties of the two grades are similar, the boundary defect usually has a larger impact on visual contrast and downstream tooling than on tensile or flexural performance. When the part is used as a master for silicone tooling, the boundary defect can replicate in the mold surface and should be evaluated under 20× magnification before mold-making.

    When the support-removal cycle exposes rigid black and rigid white surfaces to thermal and solvent-cleaning loads

    The RBK-RWT-L20 set is processed with a separate support material, typically the platform’s wax or wax-like support system. Support removal uses a heated oven or bath followed by a milder cleaning stage in an ultrasonic unit or supplier-approved solvent-free detergent system. The process window has two constraints. First, the support-removal oven temperature must remain below the heat deflection range of both rigid materials. If the oven setpoint rises into or above the 45–52°C range while the part is under mechanical load from support tooling or orientation, thin white sections may creep and black-white edge definition can be lost. Second, residual support wax can wet the pigmented black surface differently from the white surface; incomplete removal often appears as dark spots or a cloudy film concentrated at the boundary. Cleaning fluids should be qualified on a two-material coupon, not on a monomaterial coupon, because the presence of two pigments can alter surface-wetting behavior at the transition. Published data on repeated ultrasonic cleaning of this specific black-white interface are limited, so the number of cleaning cycles should be minimized until lot-specific results are available.

    Compared with other VisiJet rigid materials, CR-BK and CR-WT 200 are selected when the build must show black-and-white part identity without post-painting. They do not replace VisiJet CR-CL clear rigid material for optical or light-transmission prototypes, and they are not interchangeable with VisiJet CE-BK, which is an elastomeric black formulation for flexible parts and soft-touch features. Compared with the VisiJet M2R series used on other MJP platforms, the CR-series feedstocks are matched to different printer profiles, support systems, and cartridge formats; cartridges should never be moved across incompatible platforms without a firmware-level material check. In relation to powder-bed PA12 or PC-based thermoplastics, the RBK-RWT-L20 set has lower notched impact energy, lower heat deflection temperature, and greater sensitivity to long-term UV exposure. However, the MJP process is capable of resolving small features, smooth vertical walls, and precise two-color boundaries at a 0.032 mm layer thickness, which is frequently more critical for visual prototypes and master patterns than the higher toughness of SLS or injection-molded resins.

    Chemical compatibility is limited. The cured network should not be soaked in strong solvents such as acetone or methylene chloride, and aggressive industrial cleaning agents should be evaluated by ASTM D543-20 before deployment. The materials are supplied as industrial photopolymers; they are not automatically certifiable for medical device or food-contact use. No statement of USP Class VI, ISO 10993-1, or FDA 21 CFR 177 suitability should be inferred from the base resin classification or from the term “composite.” Each application must be verified against the current lot-specific certificate and safety data sheet. For disposal, users should apply the waste codes listed in the SDS rather than handling uncured resin as an ordinary non-hazardous liquid. Operators should also observe the minimum cartridge conditioning time after cold storage; loading a cartridge at the low end of the storage range can increase fluid viscosity and produce missing jets until the cartridge reaches the jetting setpoint.

    Production-scale failure modes on MJP equipment are dominated by printhead nozzle degradation and cartridge handling rather than by the bulk material properties. A partially clogged nozzle can produce local thickness variation that becomes visible as a ridge at the black-white boundary because the roller removes more or less fluid from one pigmented region. Cartridge lot changes should be recorded, because subtle shifts in pigment dispersion or inhibitor concentration can alter jetting viscosity and the resulting boundary feather width. For multi-shift operations, a standard first-article inspection should include a two-material coupon with horizontal and vertical boundaries, flatness measurement after 24 h on a surface plate, and dimensional audit to the platform’s stated tolerance, typically ±0.1% or ±0.1 mm for a well-characterized build. If the coupon passes, the full build can proceed with reduced risk of boundary-related rework.

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