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3D Systems VisiJet RBK-RWT-L30 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-WT 200**)

    • Product Name: 3D Systems VisiJet RBK-RWT-L30 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
    • CONTACT NOW
    Specifications
    HS Code 363773
    Product Name 3D Systems VisiJet RBK-RWT-L30 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-WT 200)
    Material Type Multi-Material Composite
    Base Materials VisiJet CR-BK + VisiJet CR-WT 200
    Color Black/White
    Tensile Strength 42 MPa
    Tensile Modulus 1900 MPa
    Elongation At Break 8%
    Flexural Strength 62 MPa
    Flexural Modulus 2000 MPa
    Hardness 81 Shore D
    Density 1.05 g/cm³
    Heat Deflection Temperature 60 °C
    Water Absorption 0.35%
    Impact Strength 20 J/m
    Layer Thickness 30 µm

    As an accredited 3D Systems VisiJet RBK-RWT-L30 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 1-kit set with two sealed, labeled cartridges: one VisiJet CR-BK and one VisiJet CR-WT 200.
    Container Loading (20′ FCL) 20′ FCL container loading for VisiJet RBK-RWT-L30 composites: palletized, secured, moisture-protected, labeled, and documented for safe chemical transport.
    Shipping Shipping description for 3D Systems VisiJet RBK-RWT-L30: typically non-regulated for transport; verify current SDS/DOT/IATA/IMDG. Packaged at ambient temperature in sealed, opaque, leak-proof containers. Store upright, away from heat, light, freezing, and incompatible materials. Keep closed/labeled, use PPE, follow carrier rules, and handle per SDS.
    Storage Store 3D Systems VisiJet RBK-RWT-L30 in original, tightly sealed containers in a cool, dry, well-ventilated area. Keep away from heat, sparks, open flames, direct sunlight, and strong oxidizers. Maintain recommended temperature, typically 15–30°C; do not freeze. Protect from moisture. Keep containers closed, inspect for leaks, and store separately from food, drink, and incompatible materials. Follow the SDS and local regulations.
    Shelf Life Shelf life is 12 months from date of manufacture when stored in original unopened containers at 20–25°C, away from sunlight.
    Application of 3D Systems VisiJet RBK-RWT-L30 Multi-Material Composites (VisiJet CR-BK + VisiJet CR-WT 200**)

    In automotive wire-harness connector qualification, VisiJet RBK-RWT-L30 is processed as a single-build assembly where CR-BK forms the connector housing and CR-WT 200 forms the terminal position assurance retainer and backshell slide. The printed pair is placed in a forced-air convection oven for sacrificial support removal. The oven setpoint is taken from the supplier processing note and is not increased beyond the point required to drain blind retention channels. Residual support material in the latch pocket is inspected under a stereomicroscope at 10x magnification and probed with a 0.5 mm feeler gauge. Insertion and extraction force traces are recorded on a universal testing machine equipped with a 500 N strain-gauge load cell. The load-displacement curve is compared with the supplier injection-moulded reference band derived from USCAR-2 performance classes. Published data for this specific configuration is limited, so first-article correlation against the moulded equivalent is repeated for each material lot before release to harness build trials.

    What limits the use of printed CR-BK/CR-WT 200 builds in low-pressure mould insert trials?

    Printed mould inserts for short-run low-pressure injection trials use CR-BK for the core side and CR-WT 200 for the cavity marking layer. The primary process conflict is the glass transition plateau common to rigid MJP photopolymers. When the injected melt temperature exceeds the material datasheet heat deflection band, insert deformation concentrates at the gate land and along the parting line. Low-pressure injection equipment with barrel capacity below 40 cm³ is preferred because it reduces residence time and melt contact temperature. A thermal dummy shot without material is run first to map cavity surface temperature. Insert lifespan is extended when the layer plane is printed parallel to the clamp-force axis. This orientation reduces interlaminar shear at the parting line but lowers sidewall surface quality. Gate diameter is kept as small as the injected resin permits; pack pressure at the gate creates a bending moment on the printed insert. Ejection pin holes are not printed. They are post-drilled with a reamer to a clearance of 0.03 mm over the steel pin diameter. Parting-line flatness is checked with a profilometer using a 2 µm tip radius. Batch-to-batch variation in CR-BK and CR-WT 200 appears as a shift in durometer response on the shore scale. Lot-specific hardness readings are recorded per ASTM D2240-15 before the first mould trial. Published data for this specific configuration is limited, so insert tooling is not recommended above clamp forces of 15 kN or for melt temperatures exceeding the printed insert datasheet ceiling.

    Vacuum casting master production for room-temperature vulcanizing silicone tools uses the RBK-RWT-L30 pair as a two-tone validation strategy. CR-WT 200 forms the master surface and CR-BK marks gate and vent witness features. The printed master is cleaned in a two-stage isopropyl alcohol bath. The first stage is agitated in an ultrasonic unit at 40 kHz, and the second stage is a static rinse. Outgassing from the master is evaluated by holding the tool at 0.09 MPa absolute pressure for 30 minutes before silicone pouring. A sacrificial first pour is cured and inspected for surface inhibition. Dimensional verification of the silicone cavity is performed on a coordinate measuring machine with a 1 mm ruby stylus. Probe compensation is set to the measured silicone rebound value. This application track is limited to RTV silicone systems with cure exotherms below the heat deflection temperature of the printed master. Aromatic solvent contact is excluded because it can plasticise the photopolymer surface and create dimensional drift in the silicone cavity.

    Snap-fit latch arms and flexural modulus anisotropy

    Flexural modulus anisotropy in RBK-RWT-L30 is governed by the planar orientation of photopolymerised layers. CR-BK latch arms and CR-WT 200 retention hooks are produced with the beam axis parallel to the print Y-axis. The layer plane remains parallel to the flexural loading direction to reduce interlayer fracture at the root radius. Flexural modulus is measured on a three-point bend fixture per ISO 178:2019. Specimens are cut from a 4 mm-thick panel and conditioned for 48 hours at 23 °C and 50 % relative humidity before testing. The unsupported beam is deflected at the strain rate specified in ISO 178:2019. Insertion force and retention force are measured with a universal testing machine using a 50 N load cell and crosshead displacement accuracy of ±0.01 mm. In multi-material builds, the interface between CR-BK and CR-WT 200 is not a welded bond. Each phase retains its own glass transition response, so the root of a latch arm must not cross the material boundary. This limitation drives gate placement and build orientation. The supplier certificate of analysis for the current lot should be consulted for the modulus value used in snap-fit calculations. Published data for this specific configuration is limited; first-article flexural tests are required for each new orientation set.

    Application validation criterionReference standard
    Tensile modulus and elongation at breakISO 527-1:2019 / ISO 527-2:2012
    Flexural modulus and flexural strengthISO 178:2019
    Izod notched impactISO 180:2023
    Heat deflection temperatureASTM D648-16
    Shore D hardnessASTM D2240-15
    Moisture absorptionASTM D570-22

    When a printed assembly must survive repeated solvent wiping at a production line, the chemical compatibility of CR-BK and CR-WT 200 with common cleaning agents becomes a process variable. Supported surfaces are exposed to isopropyl alcohol during support removal, but sustained immersion in strong ketone or chlorinated solvents is excluded. Solvent stress-cracking is evaluated by applying a controlled strain to a printed bar and then exposing the bar to the cleaning agent for 24 hours at ambient temperature. The bar is inspected under a stereomicroscope at 20x magnification for surface crazing and edge whitening. Hardness recovery after exposure is measured per ASTM D2240-15. A dimensional shift greater than 0.1 % on a 100 mm gauge length indicates incompatibility with the production cleaning process. Published data for this specific configuration is limited, so compatibility testing is repeated whenever the cleaning agent batch changes or the wipe frequency exceeds one cycle per assembly shift.

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    Certification & Compliance
    More Introduction

    3D Systems VisiJet RBK-RWT-L30 Multi-Material Composites

    3D Systems VisiJet RBK-RWT-L30 Multi-Material Composites is a paired acrylate photopolymer set comprising VisiJet CR-BK rigid black and VisiJet CR-WT 200** rigid white. The RBK-RWT designation identifies a rigid black/rigid white build mode, and the L30 suffix denotes a 30 µm layer-thickness configuration. The set enables a single monolithic MultiJet Printing build to contain discrete rigid black and rigid white regions without mechanical assembly, adhesive bonding, or secondary coloration. Typical applications include functional prototypes with embedded marking, housings, jigs, and instructional components in which both phases must remain rigid.

    Compared with single-material VisiJet M2R-BK and VisiJet M2R-WT, the RBK-RWT-L30 pairing is validated for co-jetting through separate model-material channels. Single-material cartridges are not considered a direct substitute because pigment-package differences can alter interfacial wetting and cure response. The paired resins are lot-controlled to reduce mismatched shrinkage. This pairing also differs from elastomeric or wax-based VisiJet materials; it remains rigid after UV cure, and no Shore A phase or sacrificial burnout profile is present.

    What Processing Window Is Implied by the L30 Suffix?

    The L30 suffix denotes a 30 µm build layer mode specified for the pairing. At 30 µm layer thickness, the printer deposits nominal 30 µm layers of model material and support material. Each layer is planarized and exposed to UV-A radiation in the 365–405 nm band before the next deposition. The two model resins remain segregated in feed lines until the printhead nozzle array. The material bay and printhead temperatures are controlled within closed-loop limits. Deviations outside those limits can alter jetting viscosity, droplet formation, and cure conversion. No open-vat mixing is used; the only co-mixing zone is the droplet overlap at the black-white transition. Layer thickness also influences surface stair-stepping on angled transition walls. A 30 µm mode reduces stair-stepping relative to thicker modes but increases build time relative to faster 50 µm or 60 µm single-material settings if platform-supported modes are compared. The manufacturer’s process parameters for this composite set should be used rather than generic MultiJet Printing settings.

    VisiJet CR-BK and VisiJet CR-WT 200** Pairing in MultiJet Processing

    VisiJet CR-BK is a rigid black acrylate formulation; VisiJet CR-WT 200** is a rigid white counterpart with matched cure response. Matching cure kinetics is required because both phases are cured by the same UV exposure schedule. If one resin reaches gelation earlier than the other, differential shrinkage at the transition can produce curl, step-line readout, or delamination. The black phase contains dispersed pigment; the white phase contains a scattering agent. Pigment loading in the black resin influences UV penetration depth and may require exposure compensation in the build routine. The white resin scatters UV radiation, which can produce a local hardness gradient near the transition if exposure is not controlled. These effects are managed through printhead firing algorithms and layer-wise exposure control. The two materials are formulated for similar bulk shrinkage and modulus development, but the transition zone is a graded acrylate network rather than a sharp adhesive bond line.

    Support removal follows the standard MultiJet Printing wax-support sequence. The support wax is liquefied in a temperature-controlled support-removal oven, typically in the 35–45 °C range for wax-based support formulations, followed by ultrasonic bath rinsing. Technical service reports indicate that transition-boundary walls below 1.0 mm wall thickness can exhibit dimensional drift after support removal at the upper oven temperature if the part is not fixtured. A two-stage support-removal protocol—low-temperature melting followed by ultrasonic bath rinsing—reduces residual wax deposition at the interface. No thermal post-cure is required after printing; the as-built acrylate network is UV-cured in the chamber. Conditioning at 23 ± 2 °C and 50 ± 10 % relative humidity for 24 h before metrology is recommended because moisture uptake can temporarily alter dimensional stability in humid environments.

    Process conflicts arise when a part contains both large solid black regions and thin unsupported white tabs. The black phase absorbs more UV and may cure slower at the core of thick sections; the white phase scatters UV and may cure faster at exposed surfaces. This creates a local exposure mismatch at the transition when section thickness changes abruptly. Build orientation should place the transition interface parallel to the planarizer direction where possible. If the interface is perpendicular to the planarizer, a small lip or witness line can be transferred from the leveling blade. Parts with transition walls below 1.0 mm should be supported by adjoining black geometries or thickened to at least 1.2 mm to reduce curl. Tolerances on the transition line under standard build conditions are generally within ± 0.15 mm for well-constrained planar interfaces; the manufacturer does not publish a universal transition-line tolerance, so process capability studies are required for critical features.

    When the Black–White Transition Must Carry Mechanical Load

    Mechanical loads across the black–white interface require specimen-level evaluation. The as-jetted transition is not a discrete adhesive bond line but a graded diffusion zone controlled by droplet overlap and the time delay between jetting and UV cure. Tensile testing of neat VisiJet CR-BK and VisiJet CR-WT 200** bars per ASTM D638-14 establishes bulk resin properties; published data for the transition zone itself is limited. When the transition must carry load, test coupons should be printed with the interface perpendicular to the load axis and evaluated using ASTM D638-14 at a crosshead displacement rate of 5 mm/min. The measured strength is typically lower than the weaker neat resin because pigment-related cure inhibition and local stress concentration occur at the boundary. For preliminary design, a knock-down factor of 0.80 to 0.95 on the neat tensile strength may be applied until transition-zone data is generated. This range is a conservative engineering estimate and is not a manufacturer-published value, because interface strength depends on build orientation, layer thickness, and storage conditions.

    Mechanical response is anisotropic. MultiJet Printing builds by layer stacking, so tensile properties measured parallel to the build plane may differ from those measured perpendicular to the build plane. The manufacturer’s published data are usually generated in the preferred build orientation. For load-bearing parts, ISO 527-2:2012 can be used to compare in-plane and through-plane behavior. The transition zone introduces an additional orientation-dependent variable; an interface printed in the XY plane often shows a wider mixed region than an interface printed in the Z axis.

    Neat-resin mechanical and thermal response values published by the manufacturer are summarized in Table 1. Specimens are conditioned at 23 ± 2 °C and 50 ± 10 % relative humidity for 48 h before testing. Values represent bulk resin specimens printed in the standard orientation; they do not quantify the black-white transition zone. Confirm current datasheet values for the specific cartridge lot before design release.

    PropertyTest MethodVisiJet CR-BKVisiJet CR-WT 200**
    Tensile strengthASTM D638-1442 MPa46 MPa
    Tensile modulusASTM D638-141,650 MPa1,750 MPa
    Elongation at breakASTM D638-149 %12 %
    Flexural strengthASTM D790-1758 MPa63 MPa
    Flexural modulusASTM D790-171,550 MPa1,650 MPa
    Heat deflection temperature at 0.455 MPaASTM D648-1854 °C57 °C
    HardnessASTM D2240-1579 Shore D81 Shore D
    Notched Izod impactASTM D256-1021 J/m25 J/m

    Thermal performance remains rigid at moderate elevated temperatures. The heat deflection temperature values in Table 1 indicate that continuous exposure above 50 °C under load may produce creep. Chemical resistance to water and weak acids is moderate; prolonged immersion in strong organic solvents, ketones, or aromatic hydrocarbons can cause swelling, surface crazing, and reduction in hardness. Solvent compatibility should be tested to ASTM D543-21 if service conditions require chemical contact. The materials are not stabilized for long-term outdoor UV exposure; unpigmented or white sections may yellow under prolonged actinic exposure.

    If a Part Requires Regulatory Documentation, What Standards Apply?

    Regulatory compliance is limited to manufacturer declarations and industrial material status. The resins are typically assessed under the EU RoHS Directive 2011/65/EU and REACH Regulation (EC) No 1907/2006. No food-contact or medical-grade designation should be assumed. Users requiring FDA 21 CFR 177.2600 or ISO 10993-1 cytotoxicity evaluation must perform application-specific testing. The materials are industrial photopolymers, not certified for implantable or mucosal contact. Disposal must follow local regulations for uncured acrylate waste.

    RequirementDesignation / Status
    EU RoHS restricted substances2011/65/EU
    EU REACH registrationEC No 1907/2006
    Food contactNot claimed; validate to FDA 21 CFR 177.2600
    Medical biocompatibilityNot claimed; ISO 10993-1 testing required
    FlammabilityNot published; evaluate per UL 94 HB if required

    Unopened cartridges should be stored at 15–30 °C, away from UV and sunlight. The manufacturer assigns a shelf life; expired material may exhibit viscosity drift and pigment settling. The white resin can settle faster than the black resin because of scattering-agent density; cartridges should be agitated according to equipment protocol before installation. High-humidity environments above 60 % RH increase moisture absorption at the exposed surface and may reduce interlayer adhesion or increase brittleness in thin sections. Build chamber humidity is typically maintained in the 40–60 % RH range; excursions beyond this range can produce dimensional drift in unsupported walls. Printhead channels must be purged after extended idle periods. The dual-material configuration requires both channels to be verified for jetting uniformity, because a partly occluded black channel changes the local transition-zone composition. Do not mix VisiJet CR-BK or VisiJet CR-WT 200** with other VisiJet resins in a single material channel; the two-component set is validated only as a pair.

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