| HS Code | 503138 |
| Product Name | 3D Systems VisiJet RBK-RCL-L60 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-CL 200**) |
| Manufacturer | 3D Systems |
| Material Type | Multi-Material Composite |
| Base Materials | VisiJet CR-BK and VisiJet CR-CL 200 |
| Color | Gray (Black/Clear blend) |
| Tensile Strength | 48 MPa |
| Tensile Modulus | 2400 MPa |
| Elongation At Break | 11% |
| Flexural Strength | 75 MPa |
| Flexural Modulus | 2300 MPa |
| Hardness | 78 Shore D |
| Heat Deflection Temperature | 65°C at 1.82 MPa |
| Density | 1.10 g/cm³ |
| Water Absorption | 0.37% |
| Izod Impact Strength | 28 J/m |
| Glass Transition Temperature | 72°C |
| Coefficient Of Thermal Expansion | 82 µm/m/°C |
As an accredited 3D Systems VisiJet RBK-RCL-L60 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 | Packaged as one RBK-RCL-L60 kit, containing two sealed cartridges: VisiJet CR-BK and VisiJet CR-CL 200**, with chemical safety labels. |
| Container Loading (20′ FCL) | Container Loading (20′ FCL) for 3D Systems VisiJet RBK-RCL-L60 composites, including CR-BK and CR-CL 200, palletized and secured for safe transport. |
| Shipping | VisiJet CR-BK and CR-CL 200 are shipped as non-regulated photopolymer liquids in sealed cartridges. They are not classified as dangerous goods for transport, so no UN number, hazard class, or packing group is required. Ship upright at ambient temperature, protected from light, heat, and freezing. Follow the SDS and local regulations. |
| Storage | Store VisiJet CR-BK and CR-CL in original, tightly closed containers, upright, in a cool, dry, well-ventilated area. Protect from direct sunlight, heat, flame, sparks, and freezing. Keep away from oxidizers, acids, bases, initiators, and foodstuffs. Maintain the SDS-recommended temperature, typically 15–30°C. Use spill containment and keep out of reach of children. |
| Shelf Life | Shelf life is 12 months from manufacture when stored sealed in the original container in a cool, dry, well-ventilated area. |
The VisiJet RBK-RCL-L60 multi-material set is applied in consumer electronics development where a rigid black structural body must be evaluated with a transparent optical aperture in a single build. The two resins are not combined into a homogeneous blend; each is deposited at 100 wt% solids from separate jetting channels. The black component, VisiJet CR-BK, forms the enclosure walls, snap-fit features, and button bosses. The clear component, VisiJet CR-CL 200, forms light pipes, lens covers, and indicator windows. In a handheld device prototype the clear fraction is limited to the thinnest optical feature required for light transmission, commonly 0.8–2.5 mm wall thickness. The governing compliance framework is EU RoHS Directive 2011/65/EU Annex II and EU REACH Regulation 1907/2006; no restricted substance above threshold is intentionally added, but the prototype supply chain must obtain the latest SDS compliance statement. Mechanical reporting follows ASTM D638-14 for tensile properties, ASTM D790-17 for flexural properties, and ASTM D648-18 for heat deflection temperature. Optical transmittance of the clear resin is measured by ASTM D1003-13. The downstream process begins with MultiJet Printing at 1200 × 1200 × 1600 dpi, followed by support wax removal in a 55 °C oven and an EZ Rinse-C bath. Clear lens surfaces require wet sanding from 800 to 1200 grit and a UV-curable clear coat to reduce visible layer lines. Terminal prototypes include handheld device enclosures, wearable fitness monitor housings, light-guide displays, and button arrays used for ergonomic and optical evaluation. The process bottleneck observed on multiple builds is the post-rinse drying of blind light-pipe pockets that retain rinse solution when the pocket depth exceeds 3 mm and the opening is narrower than 1 mm.
| Standard / Test method | Applicability to RBK-RCL-L60 | Status |
|---|---|---|
| EU REACH 1907/2006 Article 33 | SVHC disclosure for supplied photopolymers | Latest SDS declaration required before shipment; no blanket exemption assumed |
| EU RoHS 2011/65/EU Annex II | Restricted substance limits in electrical and electronic equipment | Not independently certified; manufacturer declaration required |
| ASTM D638-14 | Tensile strength and modulus of rigid photopolymers | Applicable standard test method |
| ASTM D790-17 | Flexural properties of rigid photopolymers | Applicable standard test method |
| ASTM D648-18 | Heat deflection temperature under load | Applicable standard test method |
| ASTM D1003-13 | Transmission and haze of transparent plastic | Applicable to CR-CL 200 clear segments |
| ISO 10993-1:2018 | Biological evaluation of medical devices | Not certified; no patient-contact use |
| FDA 21 CFR 177.1520 | Olefin polymer food contact clearance | Not cleared for direct food contact |
In automotive forward lighting and interior control development, the RBK-RCL-L60 pair serves as a design-verification substitute for molded polycarbonate lens and black bezel assemblies before hard tooling is committed. The compliance boundary is IATF 16949:2016 for prototype supplier quality, with dimensional inspection reported per ASME Y14.5-2018; the material is not a production vehicle component and carries no PPAP or IMDS submission. Chemical resistance data are generated according to ISO 175:2010 using representative exterior cleaners and hand-lotion contaminants. The material ratio is not a formulation addition: CR-BK is jetted at 100 wt% solids for the bezel structure, while CR-CL 200 is jetted at 100 wt% solids for the lens window. In a center-stack display prototype the clear volume is typically limited to 10–20% of the total part volume because the black resin provides the mounting bosses and snap features. The downstream process uses MultiJet Printing with support wax removal at 55 °C; the clear lens is then wet-sanded with 600, 800, and 1200 grit papers and coated with an automotive-approved UV acrylic topcoat. Terminal outputs include dashboard bezel prototypes, HVAC control panels, steering-wheel switch covers, and headlamp lens mockups used in night-time buck evaluation. The primary process constraint is dimensional growth after moisture uptake in the clear resin; builds exposed to humidity above 85% RH for 48 h have shown mounting-hole location shifts exceeding the ±0.2 mm tolerance envelope, so dry-fitting before optical alignment is required. Published data for moisture-induced dimensional shift in this exact CR-CL 200 configuration is limited.
The medical device development use case is confined to non-implantable, non-patient-contacting benchtop hardware because the RBK-RCL-L60 set is not certified to ISO 10993-1:2018. The quality standard for prototype suppliers is ISO 13485:2016, with design control documentation maintained under FDA 21 CFR Part 820 subclause 820.30; however, the 3D-printed resin itself is not a finished device material. No formulation addition is used: CR-CL 200 forms the fluid path, valve body, and observation chamber at 100 wt% solids, while CR-BK forms the rigid housing, luer-lock bosses, and mounting plate. The volumetric split in a representative diagnostic instrument prototype is 70:30 black-to-clear, but published datasheets do not specify a fixed ratio because the two resins are assigned in the build file by geometry. The downstream production process involves MultiJet Printing, support wax removal in a 55 °C oven, and ultrasonic cleaning with diluted EZ Rinse-C. For clear fluid paths, internal channels are flushed with 70% isopropanol and dried under filtered compressed air at 100–150 kPa before leak testing. Terminal prototypes include external diagnostic device enclosures, benchtop fluidic training cartridges, surgical instrument handle mockups, and clear manifold models for flow-visualization studies. The process conflict is support wax retention in channels below 1.0 mm internal diameter; blind channels below that threshold require extended oven dwell, and published data for complete wax clearance in sub-millimetre geometries is limited.
Laboratory microfluidic development uses the clear resin for channel visualization and the black resin for the chip frame. The applicable standard for dimensional verification is ISO 8655-1:2022 only when the printed fluid path is used as a calibration aid for piston-operated volumetric apparatus; otherwise ISO 9001:2015 governs the prototype production workflow. The formulation addition ratio is zero: both materials are processed undiluted at 100 wt% solids. The clear channel slab is frequently designed at 0.5–1.0 mm thickness to balance optical inspection with flexural rigidity. The downstream production sequence starts with MultiJet Printing at the highest z-resolution available for the material set; support wax is removed in a 55 °C oven, and the chip is then placed in an ultrasonic bath containing a mild detergent solution at 40 °C. Clear surfaces intended for microscopic inspection are polished with 1 µm and 0.3 µm alumina slurry after a 1200-grit wet sanding step. Terminal products include reagent reservoir mockups, droplet-generation test chips, and open-channel flow-training models. The limiting process parameter is backpressure during flushing: channels narrower than 500 µm can delaminate at the resin-to-resin interface if the flush pressure exceeds 200 kPa; published data for burst pressure of the CR-BK/CR-CL 200 interface is limited.
Consumer packaging design verification uses CR-CL 200 for transparent bottle walls and CR-BK for closure models, fit rings, and thread gauges. The regulatory boundary is explicit: the resin is not cleared for direct food contact under EC 1935/2004, EU 10/2011, or FDA 21 CFR 177.1520; therefore all packaged contents must be simulated or separated by an inert liner during any consumer sensory panel. Formulation addition ratio is 0 wt% diluent and 0 wt% colorant; each resin is supplied as a ready-to-jet formulation. The clear bottle wall is printed at 1.2–2.0 mm thickness, while the black thread closure is built at 100% volume of CR-BK to permit torque testing against the printed neck. The downstream process includes MultiJet Printing, support removal at 55 °C, and a post-processing sequence for the clear material that includes 400 to 1200 grit wet sanding, followed by polishing with an acrylic polish. Closure threads are not sanded; they are chased with a standard tap of matching pitch to remove support wax residue. Terminal outputs include cosmetic bottle prototypes, shampoo bottle wall models, fragrance cap fit samples, and pump sprayer actuator mockups. The dominant failure mode in printed CR-BK threads is brittle thread fracture during closure torque testing; torque limits should be established by fixture testing because published data for this specific configuration is limited.
In industrial tooling and inspection fixture applications, the black rigid resin is used for locating bodies and clamp pads, while the clear resin is inserted as an optical window for vision-system alignment. The applicable compliance standard is ISO 9001:2015 for the fixture build process, with geometric dimensioning and tolerancing reported per ASME Y14.5-2018. The formulation addition ratio is 0 wt%: no talc, glass, or metal filler is combined with the photopolymer. The two materials are not mixed; CR-BK forms the load-bearing structure at 100 wt%, and CR-CL 200 forms the window insert at 100 wt%. The downstream production process begins with MultiJet Printing of the fixture body and optical window as separate builds or as a single multi-material build. Support wax is removed in a 55 °C oven; the clear window is then polished with 600 to 1200 grit and finished with a scratch-resistant acrylic coat. The window is assembled into the black fixture using mechanical fastening or UV-curable adhesive; solvent bonding is avoided because of stress-cracking risk at the clear-to-black interface. Terminal finished products include go/no-go gauges, CMM holding fixtures, optical alignment jigs, and inspection nest windows used in automated vision sorting lines. The operational boundary is continuous service at temperatures above 45 °C under mechanical load; creep in the black resin can shift locating features, so fixtures used in heated inspection cells should be checked against a certified reference part at the start of each shift. Published data for long-term creep of CR-BK in this exact fixture configuration is limited.
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The VisiJet RBK-RCL-L60 Multi-Material Composites package is a two-model-material photopolymer set supplied by 3D Systems for MultiJet Printing equipment configured for simultaneous deposition of an opaque black rigid material and a clear rigid material. The package pairs VisiJet CR-BK, an opaque black rigid photopolymer, with VisiJet CR-CL 200**, a controlled-composition clear rigid photopolymer. The product code does not describe a compounded resin. Instead, the two materials are jetted as separate phases, cured into adjacent voxel domains, and supported by a third, process-specific support phase during layer buildup. The suffix 200** in the clear-component designation appears in manufacturer documentation as a controlled-composition marker, distinguishing the material from earlier CR-CL grades and linking it to batch-restricted quality records. This configuration is specified where one part must combine optically transmissive rigid sections with high-contrast opaque sections—for example, display or cover housings with clear inspection windows, fluidic manifolds with visible channel walls, color-coded anatomical models, and optical sensor housings that require both light-blocking and light-transmitting regions. Because the final part is a multi-material composite and not a blend, the mechanical performance of the RBK-RCL-L60 build is governed by the bulk properties of CR-BK and CR-CL 200, by the quality of the interfacial boundary between them, and by the post-print support removal sequence. The boundary is created repeatedly at every layer and is the dominant source of processing constraints.
The package is supplied as two separately identified material containers that are loaded into the MJP system’s material bay. The printer validates container identity, material compatibility, and remaining volume before a build is released. In the build process, CR-BK and CR-CL 200 are heated to a printer-controlled jetting viscosity, filtered through the inkjet fluid path, and dispensed through piezoelectric printheads in layerwise patterns. A separate support material is jetted where overhangs and cavities require temporary placement. UV lamps then irradiate the deposited layer to initiate free-radical photopolymerization. The energy dose is applied in a predetermined pattern that may include additional exposure in areas containing black material, because CR-BK absorbs more light than CR-CL 200. The clear phase transmits UV energy further into the jetted layer, which can produce a deeper cure front and an outward shift in lateral cure near the interface. As a result, the boundary between black and clear domains is not perfectly planar at the voxel scale. The process control parameters that must be held stable include printhead operating temperature, UV lamp irradiance measured by a calibrated radiometer, layer thickness, and jetting frequency. Material specifications for both phases are represented by single-phase test data under ASTM D638 or ISO 527-1 for tensile properties, ASTM D648 or ISO 75-2 for deflection temperature, and ASTM D256 or ISO 180 for impact resistance. These single-phase values do not quantify the strength of the black–clear interface.
The local curing kinetics differ because the photoinitiator system in CR-CL 200 is optimized for optical clarity, whereas CR-BK includes a pigment package that reduces light penetration. At the interface, free radicals generated in the clear phase can diffuse into the adjacent black voxel only if the black phase remains partially unreacted. After gelation, that diffusion is restricted. An overexposure intended to improve CR-BK conversion can create brittle or yellowed clear material. Consequently, the printer’s build mode, material temperature, and UV energy are not independently chosen for each material. They are selected from machine-qualified profiles that balance conversion in both phases. Single-phase datasheet values do not capture this coupled behavior.
Storage conditions for the two component resins follow standard UV-photopolymer practice: upright, light-tight containers in a cool area.
| Characterization target | Standard designation | Application note |
|---|---|---|
| Tensile properties of CR-BK and CR-CL 200 | ASTM D638 / ISO 527-1 | Single-phase data; interfacial strength requires multi-material coupons. |
| Heat deflection temperature | ASTM D648 / ISO 75-2 | Used to define support removal and service-temperature limits. |
| Impact resistance | ASTM D256 / ISO 180 | Clear/black boundary location changes notch-adjacent stress distribution. |
| Density | ASTM D792 / ISO 1183-1 | Monitors lot-to-lot consistency between the two components. |
| Optical transmittance and haze of CR-CL 200 | ASTM D1003 / ISO 13468-1 | Measured on polished monolithic clear coupons, not on the interface. |
| Chemical resistance for cleaning and support removal | ASTM D543 | Used when qualifying new support removal or cleaning chemistries. |
| Regulatory status | REACH / RoHS | Requires batch-specific supplier documentation and is application-dependent. |
Because CR-BK and CR-CL 200 are jetted from separate reservoirs, the composite is not characterized by a single viscosity or a single density. The fluid path is duplicated for the two model materials, and the material-management system prevents cross-contamination by locking container positions and using material-specific RFID records. Printer-specific cleaning cycles are used when switching between this composite set and other VisiJet grades, because even low-level contamination from a clear material can alter the black pigment dispersion or the photoinitiator balance of CR-BK.
Support removal is the most restrictive post-print step for RBK-RCL-L60 builds. Support material is placed adjacent to both CR-BK and CR-CL 200 surfaces. The clear phase is sensitive to the same thermal energy used to melt or soften the support, while the black phase absorbs thermal energy differently. When a convection oven or heated bath is used to remove support, the heating rate must be low enough to avoid a temperature difference between the black and clear domains. A rapid ramp can generate differential expansion at the black–clear interface, which appears as a whitened or reflective zone in the clear material and as a stress riser in mechanical loading. Production-scale support removal often uses a forced-convection oven with a spatial uniformity of ±2 °C or better, and the heating profile is segmented to allow interfacial stress relaxation. Because stress relaxation in the clear phase accelerates above the glass transition temperature, there is a narrow band in which support can be removed quickly without permanent distortion of thin clear features. Process engineers often set the first heating stage below the HDT measured by ASTM D648, then hold at an intermediate temperature to equalize the black and clear domains before elevating to the support melting regime.
Ultrasonic cleaning after bulk support removal is performed at controlled temperature rather than at maximum cavitation power. If cavitation intensity is excessive, the boundary between CR-BK and CR-CL 200 can develop microcavities or the clear surface can lose transparency. Filtration of the cleaning bath is required because re-deposited support particles on clear surfaces form scatter centers. Support material at the boundary can act as a thermal sink or insulator, depending on its phase. If thick support masses are present on one side of a clear wall, the thermal path is asymmetric, causing uneven support softening and local pressure on the part during removal.
Chemical support removal adds a separate compatibility constraint. The clear phase must be screened against the cleaning medium using ASTM D543 prior to production, because ketone- or aromatic-containing solvents can attack rigid acrylate networks and cause surface crazing. Published data for this specific CR-BK/CR-CL 200 pair in alternative cleaning solvents is limited, so process changes are qualified on printed multi-material coupons rather than on single-phase slabs. The final transmittance of clear sections is assessed with ASTM D1003 or ISO 13468-1 after the support removal and polishing steps. The black phase is less likely to show visual residue, but residual support in narrow channels or blind holes is dimensionally significant. Inspection therefore includes transmitted-light examination of clear sections and tactile or optical measurement of black-section cavities.
After support removal, parts are often dried in a light-shielded environment and inspected for interface delamination. Drying is performed below the heat deflection temperature of CR-CL 200 to prevent distortion. Dimensional audits on multi-material parts are more demanding than on single-material parts because shrinkage in CR-BK and CR-CL 200 may differ slightly. A coordinate measuring machine calibrated to ISO 10360-2 is used to verify that the interface does not shift outside the design tolerance. When cracks or delamination at the interface are suspected, dye penetrant inspection according to ASTM E1417 may be used, provided the developer is first screened for optical haze on clear surfaces.
The RBK-RCL-L60 package differs from single-grade VisiJet rigid materials in that it creates a built-in rigid multi-color boundary rather than a homogeneous polymer network. A monolithic CR-CL 200 build undergoes a single cure shrinkage field; adding CR-BK introduces a second phase with different UV absorption, pigment content, and thermal expansion response. This does not make the composite a uniformly stronger or weaker material. The interface must be treated as a design feature. In thin-wall sections, the interface area is large relative to the cross-section, so optical and mechanical performance can become dominated by boundary effects. In thicker sections, the bulk properties of each phase dominate until external loading crosses the black–clear interface.
Compared with sacrificial wax-pattern grades such as VisiJet M2 CAST, the RBK-RCL-L60 package is not intended for investment casting. It leaves a rigid crosslinked photopolymer residue rather than a clean burnout pattern. Compared with flexible or durable photopolymers such as VisiJet CE-BK or VisiJet M2G-DUR, the CR-BK/CR-CL 200 pair is selected for opaque/clear rigid contrast rather than high elongation or repeated flexural recovery. The two rigid grades should not be substituted for elastomeric materials in hinges, snap fits, or sealing elements without mechanical testing. Compared with a post-assembly approach that bonds a separate clear window into a black housing, the multi-material build reduces part count but introduces an interface that lacks the stress-distribution characteristics of a design-level adhesive bond line. The load transfer across the jetted interface depends on the degree of interpenetration achieved before gelation and on the wetting of the second material against the jetted first material. If the first material is substantially gelled before the adjacent voxel is deposited, the interface can have lower bond strength than the bulk values reported for either resin. Therefore, mechanical qualification of load-bearing components should include tensile or shear specimens with the interface located in the gauge section under ASTM D638 or the relevant shear method.
Batch quality assurance for RBK-RCL-L60 builds extends beyond raw material lot release. Because CR-BK and CR-CL 200 are produced and packaged as separate lots, the interaction is lot-pair sensitive. A CR-BK lot with higher pigment dispersion can reduce local cure depth at fixed lamp energy, while a CR-CL 200 lot with different photoinitiator activity can alter boundary gelation. Production-scale users therefore retain paired build records that include printer serial number, printhead age, UV lamp radiometer readings, layer thickness mode, support removal cycle, and cleaning chemistry. These records support an ISO 9001 control plan and allow a batch-related boundary defect to be traced to either component lot or to a post-print variable. When RBK-RCL-L60 parts are used in regulated environments, supplier lot documentation should be linked to first-use date and to the cleaning method applied after support removal.
Inspection of RBK-RCL-L60 parts is divided into bulk and boundary checks. Bulk CR-BK sections are evaluated for hardness, tensile response, and surface finish. Bulk CR-CL 200 sections are measured for transmittance and haze after polishing using ASTM D1003 or ISO 13468-1. Boundary checks include cross-section microtomy and polarized-light microscopy to detect planar voids, incomplete wetting, or shrinkage cracks. Dimensional verification of the black–clear interface is performed on a coordinate measuring machine under ISO 10360-2. If dye penetrant inspection is required for crack detection, ASTM E1417 is applied with a developer that has been screened for clear-surface compatibility. These methods together address the primary failure modes of the composite: bulk-phase property drift, interfacial delamination, and post-print geometry change induced by the support removal cycle.