Products

3D Systems VisiJet RBK-RCL-L70 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-CL 200**)

    • Product Name: 3D Systems VisiJet RBK-RCL-L70 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-CL 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 148297
    Tensile Strength 47 MPa
    Tensile Modulus 2100 MPa
    Elongation At Break 15 %
    Flexural Strength 70 MPa
    Flexural Modulus 1900 MPa
    Hardness 78 Shore D
    Heat Deflection Temperature 65 °C
    Density 1.12 g/cm³
    Water Absorption 0.4 %
    Impact Strength 45 J/m

    As an accredited 3D Systems VisiJet RBK-RCL-L70 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-CL 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 two-cartridge kit containing VisiJet CR-BK and VisiJet CR-CL 200, each sealed in protective packaging. Quantity: 2 cartridges.
    Container Loading (20′ FCL) 20′ FCL container loading for 3D Systems VisiJet RBK-RCL-L70 Multi-Material Composites, with CR-BK and CR-CL 200 components secured on pallets.
    Shipping Shipping: 3D Systems VisiJet RBK-RCL-L70 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-CL 200) is typically shipped as non-hazardous photopolymer resin, not DOT/IATA/IMDG regulated. Transport ambient in original sealed containers, upright, protected from light, heat, and freezing. Use secondary containment. Consult current SDS and carrier requirements.
    Storage Store in original, tightly closed containers in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, flames, and incompatible materials. Maintain recommended temperature, typically 15–25°C; do not freeze. Protect from UV light and moisture. Keep containers upright and reseal after use. Store separately from food, drink, and oxidizers. Follow SDS and local regulations. Use appropriate PPE when handling.
    Shelf Life Typically 12 months from date of manufacture when stored unopened at recommended temperatures; refer to manufacturer’s SDS for exact conditions.
    Application of 3D Systems VisiJet RBK-RCL-L70 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-CL 200**)
    In microfluidic cartridge development, the co-deposition of VisiJet CR-CL 200 and VisiJet CR-BK within a single MultiJet Printing build envelope enables fabrication of optically interrogated flow networks in which transparent channel walls and opaque cartridge body regions are generated without secondary bonding, adhesive joint formation, or ultrasonic welding. The elimination of bonding interfaces removes a primary source of leak points and optical distortion at channel-wall junctions, while the pigmented CR-BK regions provide non-fluorescent optical isolation that restricts stray excitation light ingress during fluorescence detection. Published data for optimal multi-material interfacial bond strength in sub-millimeter channel configurations is limited; however, the single-build approach is recognized as functionally validated across multiple diagnostic development programs. Neither resin is subjected to dilution, blending, or additive incorporation prior to printing. Each material is supplied at 100% solids content as a UV-curable acrylate-based photopolymer and is deposited in spatial accordance with the CAD-defined voxel map within the printhead deposition sequence. The volumetric distribution of CR-CL 200 channel regions to CR-BK housing regions in microfluidic cartridge designs typically ranges from 60:40 to 80:20, with the higher clear-region fraction reserved for cartridges requiring wide-field fluorescence imaging across multiple parallel channels. For diagnostic cartridges that contact biological fluids, ISO 10993-5 (Tests for in vitro cytotoxicity) is the applicable biological evaluation standard, and quality system conformity is assessed under ISO 13485:2016. Mechanical characterization where specimen geometry permits is conducted per ASTM D638-14 using Type IV specimen geometry. Parts are fabricated on a ProJet MJP 2500 Plus (build volume 294 × 211 × 144 mm) at a z-axis resolution of 32 μm. Following printing, wax support material is removed through staged thermal exposure at approximately 35 °C to melt the wax phase, followed by ultrasonic agitation in a heated cleaning solution to dislodge residual wax from channel geometries. Complete support removal from channels below 500 μm cross-sectional dimension represents the primary processing bottleneck; residual wax films produce channel occlusion and optical background interference during fluorescence readout. A UV post-cure step polymerizes unreacted acrylate groups at exposed surfaces and elevates mechanical stiffness to datasheet values. Terminal output from this application track includes lab-on-chip prototype cartridges, point-of-care diagnostic flow cells, and capillary-based sample preparation devices used during immunoassay and nucleic acid amplification development.

    What Limits Single-Build Medical Enclosure Adoption Under ISO 10993-5?

    Single-build fabrication of medical device enclosure prototypes that combine transparent inspection windows with opaque structural housings reduces prototype lead time and eliminates adhesive junctions that commonly fail during drop and impact qualification. The CR-CL 200 window regions permit visual confirmation of internal colorimetric reagent change, while the CR-BK housing regions supply opaque containment and mounting bosses with threaded feature capability. A primary constraint governing adoption in regulated development programs is that ISO 10993-5 cytotoxicity data are generated on cured material samples; prototype geometry, post-cure completeness, and surface roughness all influence extractable residue profiles and must be verified under the specific device configuration. The spatial material distribution in enclosure applications is design-driven, with CR-CL 200 transparent inspection windows typically comprising 15–30% of total enclosure surface area and CR-BK forming the remaining structural mass. No resin mixing, ratio adjustment, or reactive additive blending is performed at the end-user facility; the viscometric and cure-kinetic profiles of each material are fixed by the supplier at the manufacturing stage. Processing follows the standard MJP sequence: deposition at 32 μm z-axis resolution on the ProJet MJP 2500 Plus, wax support removal at approximately 35 °C followed by ultrasonic cleaning, and a UV post-cure cycle. A recognized limitation is that CR-CL 200 window regions exhibit progressive yellowing under extended UV-C and UV-B exposure; accelerated aging per ASTM D4329 (fluorescent UV exposure) should be conducted where the prototype will be subjected to repeated sterilization by UV irradiation. Terminal products from this application track include diagnostic device housings, wearable monitoring enclosure prototypes, and benchtop analyzer chassis with integrated inspection windows.
    Application TrackPrimary StandardAssessment FocusApplicable Citation
    Microfluidic diagnostic cartridgesISO 10993-5In vitro cytotoxicity of cured resin extractsISO 10993-5:2009
    Medical device enclosure prototypesISO 10993-5, ISO 10993-10Cytotoxicity, skin sensitization and irritationISO 10993-5:2009, ISO 10993-10:2010
    Fluid handling valve prototypesASTM D638-14, ASTM D790-17Tensile properties of plastics, flexural propertiesASTM D638-14, ASTM D790-17
    Automotive lighting prototypesSAE J576, ASTM D1003-21Plastic optical materials, haze and luminous transmittanceSAE J576, ASTM D1003-21

    Optical Haze Accumulation Across CR-CL 200 Z-Axis Layer Interfaces

    Transmittance degradation in transparent CR-CL 200 regions is dominated by scattering loss at successive z-axis layer boundaries rather than bulk absorption within the photopolymer matrix. When light guide geometries are printed with their optical axis parallel to the build platform z-direction, the beam intercepts a distinct refractive index discontinuity at each 32 μm layer interface, resulting in cumulative haze that scales approximately linearly with optical path length through the layered structure. This process-specific optical behavior is assessed using ASTM D1003-21 (haze and luminous transmittance) and evaluated against SAE J576 acceptance thresholds for plastic optical components in exterior and interior lighting assemblies. For automotive lighting prototype development, the optimal print orientation positions the primary light propagation axis perpendicular to the z-axis, minimizing the number of layer interfaces traversed by the beam. No formulation adjustment or refractive-index-matching additive is available to the end user; the material is printed as supplied at 100% solids. The material selection ratio in lighting prototypes is application-dependent, with CR-CL 200 light-guide and lens regions representing 20–40% of total build volume and CR-BK forming opaque internal baffles, reflector housings, and mounting structures. Processing on the ProJet MJP 2500 Plus follows the standard sequence of deposition, wax support removal at 35 °C, ultrasonic cleaning, and UV post-cure. A critical operational boundary is UV stability: the acrylate-based photopolymer matrix exhibits progressive yellowing and haze increase under extended UV-A and UV-B irradiation, rendering the material unsuitable for production lamp housings exposed to continuous daylight. Prototype evaluation under SAE J2527 (accelerated weathering) provides comparative degradation data but does not substitute for long-term outdoor exposure testing. Terminal products include light guide prototypes, reflector assembly development models, and interior ambient lighting concept parts where short-term optical evaluation under controlled illumination is required.For consumer electronics form-factor prototyping, co-deposition of CR-CL 200 display window regions with CR-BK housing structures on ProJet MJP 2500 Plus systems is a mature practice requiring no formulation modification, with a typical clear-to-black volumetric split of 20:80, compliance assessment limited to ASTM D638 tensile verification and UL 94 HB flammability classification for short-term internal evaluation prototypes, and terminal products consisting of wearable device shells and smart home controller enclosures.

    Sight Glass Valve Prototypes and Single-Build Fluid Passage Integrity

    The printing of valve body prototypes with transparent CR-CL 200 sight-glass sections and opaque CR-BK threaded end connections constitutes a single-build alternative to machined acrylic/PVC assemblies, in which the elimination of bonded sight-glass joints removes a chronic leakage pathway under cyclic pressure loading. Mechanical performance of cured parts is assessed via ASTM D638-14 (tensile properties), ASTM D790-17 (flexural properties), and ASTM D256-10e1 (Izod impact resistance) to establish baseline stiffness and toughness for functional testing. The volumetric ratio in fluid handling prototypes is geometry-dependent, with transparent sight-glass sections typically occupying 10–20% of total build volume and CR-BK forming the remaining threaded body structure; no dilution or additive blending is performed at the end-user stage, as each resin is supplied at 100% solids and deposited from separate printhead channels. Internal fluid passage quality depends directly on support wax removal efficacy; failure to fully evacuate wax from convoluted passage geometries results in downstream fluid contamination during prototype hydraulic testing. The standard removal sequence employs oven thermal exposure at 35 °C to melt the wax, ultrasonic agitation in heated cleaning solution, and a compressed-air-assisted flush for passages exceeding 2 mm in diameter. A UV post-cure step is mandatory to achieve datasheet mechanical properties and reduce residual surface tack that otherwise binds particulate contamination. Terminal products include valve prototype assemblies with integrated visual flow confirmation, pump housing development models, and sight glass fittings used in hydraulic and pneumatic circuit debugging.In surgical training model production, the use of CR-CL 200 for transparent tissue surrogates over CR-BK opaque skeletal or organ structures permits trainees to observe instrument interaction depth within anatomically representative geometries without the use of cadaveric specimens, with compliance for skin-contact training models assessed under ISO 10993-10 for skin irritation and sensitization and the material distribution ratio varying from 70:30 clear-to-black in soft-tissue surrogates to 30:70 in predominantly skeletal models. Processing on ProJet MJP 2500 Plus systems follows the standard MultiJet Printing sequence of 32 μm layer deposition, wax support removal at 35 °C followed by ultrasonic cleaning, and UV post-cure, with the primary process constraint being the support removal from deeply recessed anatomical undercuts where residual wax accumulation mimics tissue artifacts and degrades model fidelity. Terminal output includes orthopedic training models with transparent soft-tissue envelopes, ENT surgical practice models with navigable transparent airway casts, and neurosurgical visualization phantoms used for instrument insertion path planning.
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    Certification & Compliance
    More Introduction

    The 3D Systems VisiJet RBK-RCL-L70 Multi-Material Composites kit is a paired build-material supply for MultiJet Printing systems configured to jet the VisiJet CR-BK black rigid photopolymer and the VisiJet CR-CL 200 clear rigid photopolymer in the same additive build. The catalogue designation identifies the two-cartridge format rather than a single formulated resin. VisiJet CR-BK functions as the pigmented structural phase; VisiJet CR-CL 200 functions as the transparent or translucent phase. The kit is used for non-marital engineering models, fluidic demonstration devices, light-piping test pieces, assembly fixtures, and prototype housings in which regional differentiation of clear and black rigid sections removes the need for post-print painting or secondary adhesive assembly. The two resins are jetted, UV-processed, and supported within the same MJP platform; the supplier controls cartridge recognition and material-use parameters through the printer’s consumable interface. Published mechanical data for the neat constituent resins are available from supplier datasheets and are reported under ASTM coupon conditions. Published data for the RBK-RCL-L70 multi-material transition zone is limited to supplier technical bulletins and application development reports. The kit is not an elastomeric overmolding system, and the L70 suffix should not be interpreted as a Shore 70A hardness rating without reference to the supplier’s current material specification. Users needing a low-modulus, high-elongation response or a Shore A-scale elastomer should not use this kit in place of a durable or elastomeric VisiJet grade.

    What Distinguishes a Mixed-Cartridge RBK-RCL-L70 Build from Single-Resin VisiJet CR-BK or VisiJet CR-CL 200 Jobs?

    In a single-resin configuration, the build file contains either VisiJet CR-BK or VisiJet CR-CL 200 as the sole build material, and the part is monolithic with respect to composition. In the RBK-RCL-L70 composite configuration, both materials are available within the same build file and are assigned to defined regions, bodies, or voxel groups at the CAD or print-preparation stage. The MJP platform sequences jetting and UV exposure so that the two resins form a polymerized transition zone within the same layer and across build layers. The interface is therefore not a separately cured adhesive bond line, nor is it a coated pigment layer on the surface of a clear part. It is generated by the coexistence of both reactive liquids in a localized voxel field, followed by UV solidification. That production mechanism separates the RBK-RCL-L70 kit from post-process painting or overmolding operations. Coatings applied after printing can delaminate, scratch, or alter dimensional tolerance; in the composite build, the black phase is present through the affected cross-section or selected layer depth, depending on the build file definition.

    The mixed-cartridge approach also differs from post-print bonding of separately printed CR-BK and CR-CL 200 components. In an adhesively bonded assembly, the bond line contains the adhesive’s own shrinkage, modulus, and cure profile. In the multi-material MJP build, the two resins meet in a supplied liquid state, and the boundary is established before the part is fully solidified. The result is a continuous photopolymer network with a compositional gradient at the transition, but the transition is not an isotropic bulk material. Mechanical loading across the transition zone may produce failure at or near the interface at stresses below the neat-resin ultimate values. Published data for this specific configuration is limited, and suppliers do not currently provide an interface fracture toughness value for the CR-BK/CR-CL 200 boundary under a standardized test such as ASTM D5528 or ISO 25217. Users should therefore validate part-level performance when the interface is placed in a load path.

    Compared with the same supplier’s durable VisiJet grades, the RBK-RCL-L70 kit remains a rigid, high-modulus system. The clear phase is transparent in the as-built condition but requires surface finishing for optical clarity. The black phase is rigid and non-elastic. The kit is not a two-color flexible composite; Shore D values for the neat resins are reported in the 81 to 80 range, which places the material in the rigid photopolymer class. This is a deliberate performance boundary. If an application requires vibration damping, impact absorption, or snap-fit deflections associated with an elongation above 20%, the user should evaluate a durable VisiJet M2G or equivalent engineering resin instead. The RBK-RCL-L70 formulation is intended for dimensional stability, regional transparency, and rigid-part contrast, not for rubber-like compliance.

    Mechanical Property Data for the Neat Resins Are Reported Under ASTM Coupon Conditions

    The following table consolidates representative supplier-reported values for post-cured neat coupons of VisiJet CR-CL 200 and VisiJet CR-BK. The values apply to monolithic test bars, not to composite transition specimens. Lot-specific certificates of analysis govern final production use.

    Property Test Standard VisiJet CR-CL 200 VisiJet CR-BK
    Tensile strength ASTM D638 47 MPa 45 MPa
    Tensile elongation at break ASTM D638 20% 10%
    Flexural strength ASTM D790 65 MPa 61 MPa
    Flexural modulus ASTM D790 1700 MPa 1800 MPa
    Notched Izod impact ASTM D256 20 J/m 15 J/m
    Shore D hardness ASTM D2240 81 80
    Heat deflection temperature at 0.45 MPa ASTM D648 55°C 53°C
    Heat deflection temperature at 1.82 MPa ASTM D648 48°C 46°C

    The black pigment system in VisiJet CR-BK reduces tensile elongation and notched impact relative to the clear CR-CL 200 grade. The flexural modulus remains comparable to the clear grade and may be slightly higher as a result of pigment-filler stiffening. These neat-resin differences matter in mixed RBK-RCL-L70 builds because a tensile feature spanning the black and clear phases will not simply average the two sets of properties. The transition region can contain local compositional gradients, void-like boundaries, or stress concentrations arising from the jetting sequence. For structural simulations, the clear phase may be represented by the CR-CL 200 data, and the black phase may be represented by the CR-BK data, but the interface should not be modeled as a perfect bonded tie with neat-resin strength. There is no supplier-published tensile adhesion value for the CR-BK/CR-CL 200 boundary under an established interfacial test. Published data for this specific configuration is limited, and batch-to-batch variation in pigment dispersion may influence local clarity, viscosity, and photo-cure response at the transition.

    Support Removal, Post-Curing, and Optical Transmission Limits

    The MJP platform deposits a dedicated support material around the build material. Support removal for the CR-BK and CR-CL 200 kit follows the printer supplier’s documented melt-away or solvent-assisted sequence, depending on the support material designated for the platform. Parts may be placed in an oven maintained within the supplier-specified support-removal temperature window, followed by an agitated bath to remove residual support. The use of unapproved solvents or excessive oven dwell can craze the clear phase, distort thin black sections, or weaken the multi-material interface. Operators should use the support-removal equipment and settings specific to the MJP platform rather than applying heat or solvent protocols from other photopolymer systems.

    VisJet CR-CL 200 is not an optically finished transparent polymer in the as-built state. Layer lines, support-contact surfaces, and internal scatter reduce transmission and haze. The supplier does not publish an ASTM D1003 total luminous transmittance or haze value for the RBK-RCL-L70 composite. If optical transmission is required, the clear region must be polished, clear-coated, or surface-smoothed after support removal. Polishing of CR-CL 200 may raise local temperature and can alter surface stress; polished composite parts should be dimensionally re-inspected because material removal changes wall thickness. For light-piping applications, internal channels printed with support must be flushed completely, as residual support can block optical path sections. Published data for this specific configuration is limited.

    The black phase of the RBK-RCL-L70 kit does not require post-curing for color development; its pigmentation is present in the reacted polymer matrix. The clear phase may show gradual color shift under high-humidity conditioning or prolonged ultraviolet exposure. No supplier-published accelerated weathering data under ASTM G154 or ASTM G155 is available for the multi-material interface. Users designing components for outdoor exposure should evaluate the part with application-specific UV and condensation cycles. Dimensional tolerance on the composite build is also influenced by support removal and manual finishing. The printer’s specified linear accuracy is not a property of the resin alone; it applies to a defined build orientation, geometry, and post-processing workflow. In multi-material builds, feature edges at the black/clear boundary may show a visible mixed-pixel zone that must be considered in cosmetic acceptance criteria.

    When Environmental Exposure or Solvent Contact Is Specified on the Engineering Drawing

    When the application specifies water contact, chemical cleaning, or humid thermal cycling, the RBK-RCL-L70 kit should be characterized under the relevant test standard before committing to production. Water absorption can be conducted under ISO 62:2008 or ASTM D570. The clear phase is more visually sensitive to absorbed moisture than the black phase; haze may develop in translucent sections after prolonged immersion at elevated temperature, even when the bulk mechanical properties remain within specification. This is a boundary condition that must be validated experimentally. The supplier’s neat-resin datasheets do not currently provide a water absorption coefficient for the composite transition zone. For parts requiring tight optical stability, a clear-barrier coating may be necessary, but coating adhesion should be verified separately on both the clear and black surfaces because surface energy and pigment distribution differ.

    Solvent contact must be restricted to those agents listed in the supplier’s material handling documentation. Alcohols may be used for short-duration cleaning, but prolonged immersion in isopropyl alcohol can induce stress cracking or surface attack in rigid photopolymers. Ketones, chlorinated solvents, and strong alkaline cleaning solutions should be excluded unless compatibility is demonstrated on production-representative composite coupons. The material is not classified as a solvent-welded or solvent-tolerant thermoplastic. Because both phases are crosslinked photopolymers, solvent-induced swelling is generally low but not zero; the transition zone can absorb differential strain if one phase swells more than the other. For fluidic parts, chemical compatibility should include a burst-pressure test after the intended exposure, not merely a visual inspection.

    Thermal cycling across the black/clear boundary should be considered when the part experiences repeated excursions above 45°C. The short-term heat deflection temperatures reported for the neat resins do not provide a fatigue or creep rating for the composite interface. Differential thermal expansion may be minor because the two resins are chemically related, but the black pigment alters the thermal expansion response of the clear phase. For parts with a long interface, thermal cycling may produce hairline separation at the transition after repeated exposure. The supplier does not publish a thermal cycling standard for the RBK-RCL-L70 kit; users should define a test profile based on the application’s maximum service temperature, dwell time, and ramp rate. Published data for this specific configuration is limited.

    Regulatory documentation for the RBK-RCL-L70 kit is controlled through the supplier’s Safety Data Sheet and compliance declarations. The kit is typically referenced under RoHS Directive 2011/65/EU and REACH Regulation EC No 1907/2006. The uncured resin cartridges carry handling and disposal requirements for photopolymer materials. No independent food-contact or medical-use statement is supplied for this configuration under FDA 21 CFR 177 or ISO 10993. End users must request an appropriate compliance letter if the part is intended for regulated body-contact, food-contact, or medical-housing applications.

    Parts containing alternating CR-BK and CR-CL 200 sections for fluidic manifolding should be pressure-tested after support removal and any polishing operation. Leakage at the mixed-pixel interface may not appear in visual inspection and may only become measurable under internal pressure or gas-permeation testing. The user’s internal burst-pressure procedure should therefore be applied to production-representative parts with the same build orientation and layer thickness. A neat-resin coupon test is not sufficient to establish interface integrity. Published data for this specific configuration is limited, and verification remains a process-specific requirement.

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