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3D Systems VisiJet M2R-CL* UV curable plastic

    • Product Name: 3D Systems VisiJet M2R-CL* UV curable plastic
    • 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 631727
    Product Name 3D Systems VisiJet M2R-CL UV curable plastic
    Material Type UV curable plastic
    Color Clear
    Tensile Strength 52 MPa
    Tensile Modulus 2500 MPa
    Elongation At Break 8%
    Flexural Strength 74 MPa
    Flexural Modulus 2400 MPa
    Hardness 85 Shore D
    Heat Deflection Temperature At 0 45 Mpa 65 °C
    Heat Deflection Temperature At 1 82 Mpa 58 °C
    Density 1.14 g/cm³
    Notched Izod Impact Strength 20 J/m
    Water Absorption 0.3%

    As an accredited 3D Systems VisiJet M2R-CL* UV curable plastic factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Supplied as a 1 kg opaque plastic bottle with screw cap, labeled 3D Systems VisiJet M2R-CL UV curable plastic.
    Container Loading (20′ FCL) Palletized, secured 20′ FCL shipment of 3D Systems VisiJet M2R-CL* UV curable plastic; protect from heat, light, moisture, and impact.
    Shipping UN3082, Environmentally hazardous substance, liquid, n.o.s. (contains isobornyl acrylate), Class 9, Packing Group III. Ship as a regulated hazardous material in original sealed containers. Protect from light, heat, and freezing. Comply with DOT, IATA, and IMDG regulations. Marine pollutant may apply.
    Storage Store 3D Systems VisiJet M2R-CL UV curable plastic in its original, tightly closed container, upright, in a cool, dry, well-ventilated area. Protect from direct sunlight, UV light, heat, sparks, and flames. Keep away from oxidizers, food, and drink. Do not store in unlabeled containers. Follow the manufacturer’s SDS and local regulations.
    Shelf Life Shelf life is 12 months from date of manufacture when stored sealed in original container at 20–25°C, away from light and heat.
    Application of 3D Systems VisiJet M2R-CL* UV curable plastic

    In craniofacial and cardiovascular pre-surgical planning, M2R-CL is printed on MultiJet Printing platforms with a build envelope of 380 × 380 × 250 mm. The clinical scope is extra-corporeal visualisation of DICOM-derived geometries; it does not extend to implantable or long-term mucosal-contact devices. Hospital engineering records should treat each batch under ISO 10993-1:2018 unless the supplier maintains a lot-linked biological risk assessment. Support wax is removed in a 55–65 °C oven, and post-cure is performed in UV flood equipment specified by the printer manufacturer. Transparency permits wall thickness visualisation to 2–4 mm; internal cavities require drain openings of at least 3 mm to prevent support entrapment. Disinfection is limited to 70% isopropanol or quaternary ammonium wipes at ambient temperature. Autoclave sterilisation is contraindicated because heat deflection temperature under 0.45 MPa is typically 50–60 °C; exposure to 121 °C saturated steam causes permanent creep and haze.

    What Limits Leak-Tight Channel Integrity in Transparent Microfluidic Prototypes?

    When internal channel cross-sections fall below 500 μm, support wax removal from MJP clear resin must be validated for the specific channel network. Straight channels as small as 300 μm can be cleared in a 45–55 °C ultrasonic bath with proprietary support-removal fluid, but serpentine paths and tee-junctions frequently retain wax at the inner corner radius. The failure mode is flow occlusion and loss of droplet monodispersity, not wall fracture. Leak testing before assay use is performed with dry nitrogen at 1.0 bar under a 30 s soap-film hold. For manifolds with wall thicknesses of 1.5–3.0 mm, flexural modulus data generated under ASTM D790-17 support compression fittings on barbed ports up to 0.4 N·m, but printed threads require torque validation because Z-layer adhesion is lower than in-plane tensile strength. Short-term contact with 70% ethanol and deionised water is acceptable; acetone, toluene, and methyl ethyl ketone craze surfaces within 5–10 min. Published data for channels below 100 μm is limited. Operators should gravimetrically compare pre-cleaning and post-cleaning mass before accepting chips for quantitative work.

    Channel hydraulic diameterCleaning routeDominant failure modeVerification method
    300–500 μm45–55 °C ultrasonic bath with support-removal fluidWax retention at internal radiiGravimetric pre-post mass
    500–1000 μm55–65 °C oven followed by ultrasonic bathPartial occlusion at tee-junctionDry nitrogen 1.0 bar leak test
    >1000 μm55–65 °C oven with manual brushSurface haze from solvent contactFlow rate versus pressure drop

    Light pipe prototypes produced from M2R-CL are sensitive to build orientation and post-processing abrasion. Only surfaces parallel to the XY build plane attain low-haze optical quality suitable for side extraction. Refractive index is not consistently published for this grade; optical validation requires measurement on an Abbe refractometer at 589 nm according to ISO 489:1999. When measured index is 1.50, the critical angle at a polymer-air interface is approximately 41.8°, which sets the minimum bend radius for total internal reflection in curved light guides. Wet polishing with 600, 800, and 1200 grit silicon carbide paper followed by acrylic polish removes layer lines but reduces wall thickness by 0.05–0.20 mm. Mounting boss dimensions intended to hold ±0.05 mm tolerances should be checked with a calibrated CMM rather than a caliper after polishing. UV yellowing under continuous xenon arc exposure is more rapid than polycarbonate; the material is therefore restricted to short-term indoor prototype evaluation.

    Silicone RTV Tooling Masters Require Post-Cure Volatile Stripping Before Molding

    Platinum-catalyzed addition-cure RTV systems used for short-run polyurethane or epoxy casting can exhibit cure inhibition at the master surface when residual acrylate monomer or photoinitiator by-products remain in M2R-CL parts. Mouldmaking records describe tacky silicone interfaces with Shore A 20–40 platinum RTV when the master is not post-cured and off-gassed. The control sequence is post-cure at 50 °C for 4 h, 24 h ambient off-gassing in a fume hood, and wiping with anhydrous isopropanol. Cure inhibition at the interface can be detected as a weak boundary layer by ASTM D412-16 tensile slab tear. Condensation-cure tin RTV systems are not recommended because acid by-products etch the master surface and degrade shut-off geometry. Draft angles below 1.5° should be evaluated with a digital force gauge during demolding; published M2R-CL-specific demolding force data for RTV transfer is limited. Shut-off edges longer than 25 mm may require an additional 0.5° draft compared with metal masters to compensate for higher surface friction.

    When ADAS Sensor Cover Prototypes Move from Ambient Fit Checks to Thermal Cycle Testing

    After support wax removal, ADAS sensor cover mock-ups and lamp housing prototypes are used for form, fit, and gasket compression audits at 23 ± 2 °C and 50 ± 5% relative humidity. The material is not a substitute for polycarbonate or acrylic production lenses. Continuous service above 50 °C under spring clip load produces creep, and long-term UV exposure under ISO 4892-2:2013 cycles causes yellowing and embrittlement. Gasket compression set is measured with a 0.01 mm dial indicator only after thermal equilibration for 24 h.

    Pressurised transparent manifolds used for high-speed camera water-air studies require a flat viewing window of at least 15 mm diameter and a wall thickness no greater than 4 mm to limit refraction-induced distortion. Printed manifolds for two-phase visualisation are pneumatically tested to 2.0 bar for 60 s with dry air. Higher pressures are not recommended because layer interface planes act as crack initiation sites. The 2.0 bar boundary is derived from tensile strength data typically falling between 42–52 MPa under ASTM D638-14 and reduced by a safety factor of 3 to account for Z-direction anisotropy. Rapid decompression from 2.0 bar to ambient can create a transient vacuum at the water inlet and produce cavitation damage at sharp internal corners; downstream venting through a 0.8 mm orifice is required after the test section. Surface haze at the liquid film interface is reduced by applying an optically clear acrylic clear coat of 25–50 μm thickness, provided the coating does not reduce channel diameter below the design tolerance.

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    Certification & Compliance
    More Introduction

    3D Systems VisiJet M2R-CL* is a UV-curable acrylate-based photopolymer formulated for the ProJet MJP 2500 and 2500 Plus MultiJet printing platforms. The resin is deposited in 32 µm layers and cured by integrated UV radiation; support structures are formed from the separately jetted VisiJet M2 SUW wax-based material and are removed by temperature-controlled melting after the build. The material develops a water-white clear appearance in thin sections and is specified for prototypes that require visual inspection of internal channels, fluid-flow tracing, or transmission of light through structural walls without optical polishing. Manufacturer-published typical properties include a density of 1.13 g/cm³ per ASTM D792 and Shore D hardness of 80 per ASTM D2240, with tensile and flexural data reported against ASTM D638 and ASTM D790. The product is part of the M2R resin family and shares the same build platform ecosystem, but its unpigmented formulation positions it differently from the opaque gray and tough natural grades in terms of optical behavior and impact tolerance.

    Typical mechanical and physical properties published for VisiJet M2R-CL printed at 32 µm layer thickness in the X-Y orientation
    PropertyValueTest method
    Tensile strength42 MPaASTM D638
    Tensile modulus1,700 MPaASTM D638
    Elongation at break8.0%ASTM D638
    Flexural strength60 MPaASTM D790
    Flexural modulus1,800 MPaASTM D790
    Notched Izod impact16 J/mASTM D256
    Heat deflection temperature at 0.45 MPa52 °CASTM D648
    Density1.13 g/cm³ASTM D792
    Water absorption after 24 h0.6%ASTM D570

    What separates the clear M2R-CL resin from the opaque gray and tough natural MJP grades?

    VisiJet M2R-CL is the unpigmented clear grade in the same M2R resin family; the opaque gray grade carries pigment that blocks transmitted light and can hide internal defects, while the tough natural grade is formulated for higher elongation and impact resistance. In supplier-published comparative data, M2R-CL is specified with a tensile modulus of 1,700 MPa and notched Izod impact of 16 J/m, placing it on the stiffer and lower-ductility side of the M2R range. This property position makes the clear grade appropriate for rigid transparent windows, clip covers, and housing prototypes that must not deform under low clamp loads but are not subjected to repeated snap-fit insertion. The absence of pigment also reduces the risk of color-dependent cure depth variation across the build, although unpigmented acrylate formulations can still show slight yellowing during extended UV exposure; published data for continuous UV dose response of this specific resin is limited. The lack of pigment can expose entrapped support wax more readily during inspection; thin walls should be back-lit to detect residual wax that would not be visible in opaque materials. The clear grade also requires stricter clean-housekeeping because contamination on the jetting head or build plate is visible in the cured part.

    Processing on the ProJet MJP 2500 begins with heating the M2R-CL resin reservoir to a specified jetting temperature; the exact temperature is controlled by machine firmware and should not be manually overridden because viscosity changes affect droplet formation and layer uniformity. The printer jets the build material and wax support from separate high-density nozzle arrays, and the integrated UV source cures each 32 µm layer before the build plate indexes downward. Parts are printed in the X-Y plane with the long axis oriented to minimize support contact on critical surfaces; the uncolored resin requires a clean work zone because airborne dust and skin oils can become embedded in the viscous surface of the green part before the final UV exposure is complete. After the build, the part is transferred to a support removal oven. The molten support wax drains through open cavities; internal channels with aspect ratios above 5:1 may require extended orientation changes to prevent pooling. Because the resin is UV-cured in the machine and does not require a post-cure oven, the post-processing bottleneck shifts from photopolymer conversion to wax drainage and surface dressing. This workflow does not require alcohol washing or solvent post-cleaning, which reduces solvent-induced cracking risk compared with vat polymerization clear polycarbonate-like resins.

    When support wax removal temperatures exceed the heat deflection threshold of the clear polymer

    In the MJP support removal cycle, oven setpoints between 60 °C and 70 °C are used to liquefy the M2 SUW wax. Because the heat deflection temperature of M2R-CL is 52 °C at 0.45 MPa per ASTM D648, thin unsupported sections can enter the low-modulus region during wax removal if the process is not monitored. To limit geometric drift, operators should leave the support structure in place until the part has returned to room temperature in the oven, avoid stacking large parts that trap heated wax, and use the printer’s build setup tools to orient drain holes downward. The same thermal boundary applies during in-service use: functional parts exposed to continuous loads above 45 °C may creep, particularly at stress concentrations around printed holes and snap-fit roots. Published data for this specific configuration is limited, so thermal exposure trials with actual part geometry are required before deployment.

    After support removal and cooling, M2R-CL parts exhibit dimensional stability under ambient indoor conditions. Water absorption is specified at 0.6% after 24 h per ASTM D570, which is low enough to avoid pronounced hygroscopic swelling in humid air but high enough to require conditioning before metrology when ambient relative humidity exceeds 60%. Shrinkage during polymerization is process-compensated by the printer’s scale factors; published data for this specific configuration is limited. For close-tolerance features below ±0.1 mm, a first-article capability study on the production machine is recommended because X-Y accuracy is influenced by jetting alignment, support wax drainage, and surface roughness on sidewalls. The clear appearance should not be interpreted as dimensionally equivalent to machined cast acrylic; layer lines in the Z axis refract light and can cause optical distortion even when transmitted light is visible.

    Thermal deflection limits and in-service loading boundaries

    M2R-CL should be treated as a rigid glassy photopolymer rather than a ductile thermoplastic. The tensile elongation at break is specified as 8.0% per ASTM D638, and the flexural modulus is 1,800 MPa per ASTM D790. These values indicate that the resin can support short-term static mechanical loads in room-temperature prototypes, but the low notched Izod impact of 16 J/m per ASTM D256 limits tolerance to sharp corner impacts and drop events. In assemblies, screws seated directly into printed bosses can generate radial stress that exceeds the yield limit; metal threaded inserts or printed oversize holes with cyanoacrylate-bonded bushings should be considered for repeated fastening. Under continuous load, the polymer’s crosslinked structure resists viscous flow at temperatures below 45 °C, but creep testing is not covered by the standard ASTM data sheet. Parts stored at temperatures above 40 °C for extended periods may undergo progressive darkening; published data for this specific configuration is limited.

    The cured acrylate network is more compatible with aqueous buffers, dilute acids, and dilute alkalis at room temperature than with strong polar solvents. Continuous immersion in ethanol, isopropyl alcohol, or acetone can cause surface softening, swelling, or crazing; chemical resistance screening should follow ASTM D543 immersion procedures using the actual service fluid and representative printed surface roughness. Avoid contact with amine-based cleaning agents, which can induce discoloration and surface tack. Uncured resin contains acrylate monomers and photoinitiators; handling requires nitrile gloves and local exhaust ventilation. The cured part, after support removal and full UV exposure, is suitable for routine industrial handling but is not specified as food-contact or implant-grade unless validated under ISO 10993-5 for cytotoxicity or applicable food-contact standards. No material safety claim is made from the mechanical data alone.

    Optical pathway limitations in jetted clear photopolymers reduce direct replacement of machined PMMA

    Although M2R-CL is visibly clear, the surfaces produced by multi-jetting contain jetting seams and layer interfaces that scatter transmitted light. Total light transmittance and haze values are not reported in the standard M2R-CL mechanical datasheet; published data for this specific configuration is limited. Applications that require laser-grade window flatness or low birefringence should use M2R-CL only after a post-processing plan that includes progressive abrasive wet sanding and index-matched clear coating. Such post-processing can alter dimensional accuracy and surface chemistry, but it substantially improves the visual path through flow-tracing prototypes. Because the crosslinked network is not thermoplastic, flame polishing of M2R-CL is not recommended and can generate localized overheating and surface damage.

    Compared with VAT photopolymerization clear resins, M2R-CL processing eliminates recoater blade contact and large vat volumes but introduces wax support management. Compared with material extrusion of transparent thermoplastics, MJP jetting provides lower Z-layer thickness and reduces visible extrusion weld lines; however, it does not achieve the isotropic impact performance of annealed polycarbonate or PETG injection moldings. Compared with cast PMMA, M2R-CL has lower continuous-use temperature, higher water absorption, and lower scratch resistance; it should not be placed in direct sunlight for long periods without UV-blocking coatings because the unpigmented acrylate network may yellow. These boundaries define the product’s use as a short-lead prototype material rather than a production optical component.

    Is VisiJet M2R-CL suited to fluidic prototypes with continuous pump pressure and repeated thermal cycling?

    The combination of 8.0% elongation at break, 1,800 MPa flexural modulus, and 52 °C HDT at 0.45 MPa supports static fluidic manifolds at room temperature, but repeated thermal cycles between 25 °C and 50 °C can accumulate strain at seal interfaces. Printed O-ring grooves may require post-machining to achieve flatness and roughness compatible with elastomer sealing; as-jetted sidewalls retain layer steps that can create leak paths at pressures above 100 kPa. For pump pressure applications, prototypes should be leak-tested with the actual working fluid at the minimum expected operating pressure under ISO 5208 or equivalent valve leakage test methodology, not inferred from tensile data alone. Published data for repeated-cycle fatigue of this specific resin is limited; industrial users typically replace M2R-CL parts with injection-molded acrylic or polycarbonate for full-scale fluidic testing when optical access is no longer required.

    The uncured resin and support wax require handling under conditions recommended in the supplier’s safety data sheet; the printer work area should maintain temperature and humidity within the machine manual’s range, with humidity above 60% triggering pre-conditioning of the part before dimensional measurement because of the 0.6% water absorption value. The ProJet MJP 2500 build envelope of 294 mm × 192 mm × 148 mm allows printing full assemblies with internal supports, but residual wax in dead-ended cavities remains an operational limitation. Batch-to-batch variation in mechanical properties is controlled by the supplier’s incoming monomer and photoinitiator specifications; users should still verify critical lot performance using in-house test coupons per ASTM D638 and ASTM D648 before qualifying a new lot for production prototype series.

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