| HS Code | 714204 |
| Productname | 3D Systems VisiJet RWT-RCL-R64 Multi-Material Composites (VisiJet CR-WT 200 + VisiJet CR-CL 200) |
| Manufacturer | 3D Systems |
| Materialtype | Multi-Material Composite |
| Basematerials | VisiJet CR-WT 200 + VisiJet CR-CL 200 |
| Printingtechnology | MultiJet Printing (MJP) |
| Compatibleprinter | ProJet 5500X |
| Color | White/Clear blend |
| Tensilestrength | 53 MPa |
| Tensilemodulus | 2060 MPa |
| Elongationatbreak | 9.4% |
| Flexuralstrength | 78 MPa |
| Flexuralmodulus | 2330 MPa |
| Hardness | 84 Shore D |
| Heatdeflectiontemperature | 61 °C at 0.45 MPa |
| Density | 1.12 g/cm³ |
As an accredited 3D Systems VisiJet RWT-RCL-R64 Multi-Material Composites (VisiJet CR-WT 200** + 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 kit containing two cartridges for 3D Systems: VisiJet CR-WT 200 and VisiJet CR-CL 200 multi-material composites. |
| Container Loading (20′ FCL) | Container loading for 20′ FCL shipment of 3D Systems VisiJet RWT-RCL-R64 multi-material composites, VisiJet CR-WT 200 and VisiJet CR-CL 200, palletized. |
| Shipping | 3D Systems VisiJet RWT-RCL-R64 Multi-Material Composites (VisiJet CR-WT 200 + VisiJet CR-CL 200) is not regulated for transport. Ship in original, sealed cartridges at ambient temperature. No UN number, hazard class, or packing group is assigned. Protect from heat, sparks, and direct sunlight. Follow applicable local, national, and international regulations. |
| Storage | Store VisiJet CR-WT 200 and CR-CL 200 in original, tightly closed, upright containers in a cool, dry, well-ventilated area. Protect from direct sunlight, UV light, heat, sparks, flames, and oxidizing agents. Recommended storage: 15–30°C (59–86°F); do not freeze. Keep away from food, drink, ignition sources, and incompatible materials. Follow SDS, shelf-life, and local regulations. |
| Shelf Life | Shelf life is 12 months when stored in original, sealed containers under cool, dry, well-ventilated conditions, away from heat and light. |
Competitive 3D Systems VisiJet RWT-RCL-R64 Multi-Material Composites (VisiJet CR-WT 200** + VisiJet CR-CL 200 prices that fit your budget—flexible terms and customized quotes for every order.
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3D Systems VisiJet RWT-RCL-R64 Multi-Material Composites is a paired photopolymer build-material set consisting of VisiJet CR-WT 200, an opaque rigid white acrylate system, and VisiJet CR-CL 200, a rigid transparent grade formulated for MultiJet Printing. The RWT-RCL-R64 designation identifies a two-material cartridge configuration qualified for the ProJet MJP 2500 and 3600 series platforms and is intended for builds that require two visually distinct rigid polymers inside a single tray. The term “multi-material composites” in this context does not refer to a particle-filled or fiber-reinforced composite; it designates a co-cured assembly of two isotropic photopolymer domains. The material pair is used in dimensional verification models, fluid-flow visualization fixtures, snap-fit prototypes, master patterns, and patient-specific anatomical references where the white and clear phases serve distinct handling or optical functions. The following paragraphs use “published data” only for manufacturer-published typical property ranges obtained on individually printed coupons. Published data for the co-cured interfacial bond strength of the CR-WT 200 and CR-CL 200 boundary is limited; qualification builds should therefore include specimens that cross the material transition.
| Property | Test method | CR-WT 200 | CR-CL 200 |
|---|---|---|---|
| Tensile strength | ASTM D638-14 Type IV | 42–48 MPa | 48–54 MPa |
| Tensile modulus | ASTM D638-14 | 1,500–1,750 MPa | 1,850–2,100 MPa |
| Elongation at break | ASTM D638-14 | 5.0–9.0% | 6.0–9.5% |
| Flexural strength | ASTM D790-17 | 55–65 MPa | 65–75 MPa |
| Flexural modulus | ASTM D790-17 | 1,450–1,700 MPa | 1,750–2,050 MPa |
| Heat deflection temperature at 0.455 MPa | ASTM D648-16 | 48–54°C | 52–60°C |
| Shore D hardness | ASTM D2240-15 | 78–82 | 80–84 |
| Notched Izod impact | ASTM D256-10 | 15–22 J/m | 18–26 J/m |
Tensile values are generated on Type IV specimens printed in a flat orientation and conditioned at 23±2°C and 50±10% RH before testing. The higher tensile modulus of CR-CL 200 relative to CR-WT 200 corresponds to a stiffer cured network and a lower elongation at break, which should be considered when a clear retaining tab is expected to flex. Flexural strength data obtained under ASTM D790-17 sample a larger cross-section and may be more sensitive to interlayer cure differences than tensile data. The notched Izod values are orientation-dependent; in vertically printed specimens the measured values can shift by more than 15% relative to flat-printed coupons, but the supplier does not publish vertical-impact correction factors for this paired set. Acrylate network density limits the operating temperature of both grades; sustained loading above the heat deflection temperature should be avoided because the polymer may creep even if thermal distortion is not immediately visible.
On the ProJet MJP 2500 Plus, the two materials are delivered through separate thermal inkjet printhead arrays from heated cartridges. The firmware maintains jetting waveform, meniscus pressure, and UV shutter timing within a closed loop, and the operator has no open parameter editing for resin viscosity or cure-dose. The uncured viscosities of CR-WT 200 and CR-CL 200 at 30°C are typically in the range of 10–14 mPa·s; this low-viscosity envelope is required for reliable drop formation at the native printhead frequency. Layer thickness is selectable at 32 µm in high-definition mode and 16 µm in ultra-high-definition mode on supported platforms. Thinner layers reduce stair-step error on clear vertical walls but increase the number of UV dose cycles, which can raise optical haze in CR-CL 200 if the final post-cure is not controlled. The paired set is validated for a cartridge conditioning window of approximately ±5°C around the printer setpoint; cartridges cold-soaked below 15°C may require 8–12 hours of in-cabinet equilibration before jetting quality stabilizes.
The ProJet MJP 2500 series build envelope and fixed printhead architecture limit the footprint of a co-cured white-clear assembly. In multi-material operation, the software partitions the build into discrete voxel masks rather than producing a gradual transition zone. 3D Sprint assigns the white and clear materials to selected part regions or shells and generates separate jetting passes for each mask. No variable mixing ratio is supported; tinted blends or gradients are therefore unavailable. The use of third-party resins inside the RWT-RCL-R64 workflow is not supported because the cure-dose window is fixed for the paired acrylate systems and the printer does not provide open material parameter editing.
Freshly printed parts retain a fugitive support material in overhanging regions and enclosed channels. Support removal for CR-CL 200 parts with internal channels is conducted in a laboratory oven at temperatures below 45°C because localized heating near the heat deflection temperature can soften thin clear walls. Ultrasonic baths charged with a neutral pH surfactant at 40–50°C are used for film-free removal from fine features, but immersion should be limited to 30-minute cycles. Prolonged aqueous exposure can increase surface moisture content and create microvoids in partially cured regions. After support removal, parts are conditioned at 23±2°C and 45±10% RH for at least 4 hours before dimensional inspection under ISO 291:2008 or an equivalent ambient standard. Clear parts should not be inspected for transmitted haze immediately after oven removal because thermal gradients across a transparent wall can mimic surface clouding.
At production scale, the dominant reported process anomaly on MultiJet Printing platforms is not resin degradation but thermal drift in the cartridge heater circuit. The signature is a delayed temperature stabilization followed by intermittent jetting from the first nozzles after idle periods. The RWT-RCL-R64 set is more sensitive to this condition than single-material cartridges because the two materials must remain within narrowly separated viscosity windows for a continuous multi-material build. If an idle period exceeds 72 hours, the manufacturer’s service documentation recommends jetting a purge pattern and checking a small white-clear interface coupon before committing a full tray. Batch-to-batch variation in CR-WT 200 color under D65 illumination typically produces an L* drift below one CIELAB unit when cartridges are stored in sealed packaging. The clear grade is more sensitive to dissolved oxygen in the reservoir, which can form visible gel nuclei at the meniscus during long idle periods.
Compared with VisiJet M2R-WT and M2R-CL grades used on earlier ProJet 3000 and 3500 series systems, the CR-WT 200 and CR-CL 200 pair is qualified for the ProJet MJP 2500 and 3600 platform and a different support-removal workflow. The difference is not confined to printer compatibility: CR-CL 200 is stiffer than the white grade, so a multi-material living hinge will concentrate bending strain at the clear-white boundary unless the transition is placed outside the hinge zone. The RWT-RCL-R64 configuration also differs from a single-material cartridge in that it permits co-cured transparent windows, internal viewing ports, or contrast markers without adding a secondary adhesive. Interfacial strength at the white-clear transition is formed by photo-cure sequencing rather than by a separate bonding layer; published data for the interfacial tensile strength of this co-cured boundary is limited, so load-bearing designs should include a lap-shear coupon across the transition such as ASTM D3163-01 or a tensile specimen conforming to ASTM D638-14. The two rigid grades are not equivalent to elastomeric VisiJet CE-series materials; they exhibit Shore D values above 75 and should not be used where rubber-like compression set is required. Long-term load-bearing applications should be evaluated under ASTM D2990-17 because published creep data for CR-WT 200 is limited.
Support-side surface texture has a greater effect on the clear phase than on the white phase. Horizontal optical windows of CR-CL 200 should be oriented with the show surface facing the printhead; the support-side surface contains a micro-texture that increases haze and reduces transmitted contrast. Thin clear channels below 1 mm internal diameter should be cleaned with syringe-pump recirculation at pressures below 150 kPa because higher pressure can fracture the cured clear wall. The white phase is less sensitive to support-side gloss loss but shows visible layer-band variation when printed at 32 µm or larger layer heights on curved surfaces. In two-material snap-fit assemblies, the transition from CR-WT 200 to CR-CL 200 should be placed perpendicular to the beam tension axis and not at the base of the snap beam; an abrupt material change at the retaining edge can act as a stress concentration. Because the printer firmware does not provide variable mixing ratios between white and clear, a true gradient or tinted blend is not available. Color-matched regions are printed as discrete voxel assignments, not as diffusion gradients.
Sealed VisiJet CR-WT 200 and CR-CL 200 cartridges should be stored at 10–28°C and protected from UV irradiance below 410 nm. Unsealed cartridges in the printer are conditioned to the cabinet temperature; if the reservoir remains open for more than 72 hours, the material should be recirculated or purged before production. The clear grade is susceptible to photoyellowing under sunlight; accelerated weathering per ASTM G154-16 Cycle 1 indicates a moderate increase in yellowness index, but the supplier does not publish delta-YI limits in the standard cartridge datasheet. Operators requiring optical stability should request wavelength-specific transmittance curves from the manufacturer. Chemical resistance of the cured grades is limited; ketone solvents and chlorinated hydrocarbons can attack the surface, and brief contact with isopropyl alcohol can produce surface tack on partially cured regions. Cleaning should use mild aqueous detergent rather than acetone. Alkaline solutions above pH 10 can etch the clear surface and reduce transmittance. Chemical resistance assessments should follow ASTM D543-20 for immersion testing rather than relying on short wipe tests.
Linear shrinkage of CR-WT 200 and CR-CL 200 after full cure is generally below 0.5% based on supplier-published dimensional stability data; however, thin-walled sections below 1 mm can deviate more due to residual cure stress. Build-platform orientation influences shrinkage anisotropy, with higher shrinkage in the Z axis than in the X-Y plane. Parts requiring tight geometric tolerances should be compensated using measured shrinkage factors from the actual printer and cartridge lot rather than from a generic datasheet value. Manufacturer guidance places critical features in the central print area; dimensional error at tray edges can arise from non-uniform UV exposure. Published data for the differential shrinkage between co-cured CR-WT 200 and CR-CL 200 domains is limited, so multi-material assemblies with long planar interfaces should be inspected after post-cure for interfacial curl or step offset.
CR-CL 200 is described as a high-clarity rigid acrylic, but clarity should not be confused with optical-grade transparency. The cured clear phase transmits visible light in the 400–700 nm range, but transmittance drops rapidly below 400 nm; users needing UV-transparent windows should not select this material without measuring transmittance on the actual wall thickness. The white phase contains an opacifier that modifies the refractive index and increases the scattering coefficient; co-cured interfaces therefore show a visible reflection at the transition. Refractive index values are not provided in the cartridge datasheet. Haze and luminous transmittance should be measured using ASTM D1003-21 if the clear phase is intended for inspection windows or optical readouts.
| Subject | Basis or designation | Status |
|---|---|---|
| REACH SVHC disclosure | EC 1907/2006 | Supplier SVHC statement required at order; no public declaration of SVHC above 0.1% w/w in liquid resin is provided in the cartridge datasheet. |
| RoHS | Directive 2011/65/EU | Bulk photopolymer resins are generally outside current scope; cured-part assessment is the operator’s responsibility. |
| Biocompatibility | ISO 10993-1:2018, USP Class VI | No supplier-public certification for long-term body contact or implantation. |
| Food contact | FDA 21 CFR | No general food-contact certification stated in public documentation. |
| Mechanical test data | ASTM D638-14, D790-17, D648-16, D2240-15, D256-10 | Typical values only; not specification limits for acceptance testing. |
| Quality system | ISO 9001:2015 | Manufacturer site registration applies; material quality certificates should be requested per lot. |