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3D Systems VisiJet M2R-WT* UV curable plastic

    • Название продукта: 3D Systems VisiJet M2R-WT* UV curable plastic
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
    • Свяжитесь сейчас
    Спецификации
    Код ТН ВЭД 312937

    Как аккредитованный завод по производству пластика VisiJet M2R-WT* с ультрафиолетовым излучением, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка One 1 kg bottle of 3D Systems VisiJet M2R-WT* UV-curable plastic, securely sealed and labeled with safety and handling information.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL loaded with palletized, sealed containers of 3D Systems VisiJet M2R-WT UV curable plastic; properly secured, dry, ambient, UV-protected.
    Доставка VisiJet M2R-WT UV-curable plastic is shipped as a liquid resin in sealed, light-blocking cartridges or bottles. It may be regulated as Class 9, UN3082, Environmentally Hazardous Substance, Liquid, N.O.S. (Isobornyl acrylate), PG III. Follow the SDS, local transport rules, and keep away from UV light/heat.
    Хранение Store 3D Systems VisiJet M2R-WT* UV curable plastic in its original, tightly closed container in a cool, dry, well-ventilated area away from direct sunlight, UV light, heat, sparks, and flames. Maintain 15–25°C; avoid freezing. Keep away from oxidizers and initiators. Protect from damage, label clearly, and follow SDS/local regulations.
    Срок годности Store in a cool, dry, well-ventilated area away from heat and sunlight; shelf life is 12 months in the original container.
    Применение 3D-систем VisiJet M2R-WT* УФ-затваряемый пластик

    For room-temperature vulcanising (RTV) silicone tooling lines where a master pattern must survive multiple demoulding cycles and preserve a gloss or fine-matte surface finish, M2R-WT is processed in the as-supplied state at 100 wt% model resin with 0 wt% reactive diluent addition. The industrial compliance frame is not a printed-part standard but the tooling supplier’s ISO 9001:2015 change-control and traceability procedure, because the master is neither the final article nor subject to end-use part standards. The formulation addition ratio for this scenario is therefore 100% M2R-WT; support wax is co-deposited at a software-generated volume fraction, then removed in a heated bath before tooling. Downstream production includes layered deposition on a MultiJet Printing platform, support removal, UV post-cure to drive residual acrylate conversion, and application of a waterborne acrylic barrier coat at 25–30 μm dry film thickness prior to silicone pouring. The barrier coat is operationally critical because platinum-catalysed RTV silicone, particularly Shore A 20–40 tooling formulations, is susceptible to cure inhibition by unreacted acrylate species and residual photoinitiator fragments on the printed surface; published data for this specific M2R-WT–silicone pairing is limited, but production lines running platinum-cure tools report a persistent tacky layer at the contact face and Shore A depression of 10–15 points in the first 2 mm of elastomer thickness when the barrier is omitted. Condensation-cure RTV systems exhibit less sensitivity to inhibition but can still soften the outer resin surface if the tin catalyst carrier attacks the acrylate matrix. The tool is then used to vacuum-cast polyurethane prototypes in rigid 70–85 Shore D or flexible 50–80 Shore A formulations, producing short-run functional prototypes for enclosure and sealing evaluations.

    Snap-Fit Enclosure Prototypes and the Warpage Management Window

    Consumer electronics housing prototypes built from M2R-WT are evaluated under design verification workflows that reference RoHS Directive 2011/65/EU and REACH Regulation (EC) No 1907/2006 only insofar as the cured photopolymer is supplied with a safety data sheet that declares restricted substance status; the material is not UL 94 rated and is therefore excluded from live electrical enclosure compliance under IEC 62368-1:2023. The formulation addition ratio for this scenario remains 100 wt% as-supplied resin with 0 wt% reactive diluent, because reducing jetting viscosity with solvent produces printhead cavitation and changes the acrylate crosslink density. The downstream production process consists of MJP deposition with sacrificial wax support, support removal in a heated bath, UV post-cure, light sanding of parting lines, and installation of heat-stake brass inserts at 180–220 °C probe temperature unless the prototype is drilled and tapped instead. Production-scale builds reveal that the dominant processing bottleneck is residual support wax entrapped in blind snap bosses; incomplete dewaxing creates soft plug zones that deflect during snap engagement and produce false pass/fail data. Published supplier data for M2R-WT mechanical properties are typically reported under ASTM D638-14 and ASTM D790-17; for enclosure covers with span lengths above 100 mm, warpage compensation in CAD is commonly required between 0.998 and 1.004 scale factor because anisotropic shrinkage builds from the raster path. End product type is a short-run snap-fit housing prototype used for latch retention, drop simulation, and stack-up analysis.

    Directly coupled to coordinate measuring machine (CMM) base plates, M2R-WT inspection fixtures are used when the part-under-test requires a custom locating scheme that cannot be held by off-the-shelf clamps. The applicable metrology compliance boundary is ISO 10360-2:2009 for length measurement error, and the fixture itself is typically controlled under an ISO 9001:2015 in-house calibration procedure with a recalibration interval of 6 months or after 500 clamping cycles, whichever occurs first. The formulation addition ratio is 100 wt% as-supplied photopolymer with no filler or diluent addition; where machined datum holes are required, the photopolymer is reamed to H7 tolerance and fitted with hardened steel locating bushings rather than used directly as the contact bore. Downstream production includes printing, support removal, UV post-cure, precision boring, press-fit bushing installation, and a 4 h soak at 20 ± 1 °C before first measurement to stabilise thermal drift. Because the coefficient of thermal expansion of the cured acrylate is higher than that of the steel reference elements, measurement runs must be bounded by the same temperature window; published data for this specific fixture configuration is limited, but production metrology labs report dimensional scatter exceeding 0.05 mm on 200 mm spans when the soak is omitted. End product type is a short-run CMM checking fixture for plastic enclosure metrology.

    Does ISO 13485 Design Control Extend to Non-Patient-Contact Bench Models?

    Benchtop models used during medical device design verification fall inside ISO 13485:2016 clause 7.3 design and development controls only when the project’s quality management system defines them as design outputs; they are not subject to ISO 10993-1:2018 biological evaluation because they are not patient-contacting, implantable, or intended for tissue contact. The formulation addition ratio is 100 wt% as-supplied M2R-WT resin with 0 wt% additive; if color-coded zones are required on the model, they are generated by post-prime surface coating rather than by mixing pigments into the photopolymer, because pigment addition shifts jetting viscosity and complicates support detachment. Downstream production involves printing of the housing or instrument mock-up, sacrificial wax removal, UV post-cure, abrasive preparation of glued seams, and assembly of the model with threaded inserts or cyanoacrylate adhesive. The process should be restricted to non-sterile, non-load-bearing test environments: published data for M2R-WT under autoclave irradiation or ethylene oxide exposure is limited, and the material must never be used as a final device housing in a validated sterilisation cycle. End product type is a bench-tested mock-up for mechanical fit checks, surgical instrument development, and training-team demonstration.

    Scenario boundaryStandard designationOperational restriction
    RTV silicone tooling masterISO 9001:2015Platinum-cure inhibition requires waterborne acrylic barrier coat at 25–30 μm dry film
    Consumer electronics enclosure prototypeRoHS 2011/65/EU, REACH 1907/2006No UL 94 flammability rating; excluded from live electrical enclosure testing
    CMM inspection fixtureISO 10360-2:2009, ISO 9001:2015Thermal soak required; steel locating bushings mandatory for datum holes
    Medical benchtop modelISO 13485:2016 clause 7.3No ISO 10993-1:2018 patient-contact or biocompatibility qualification
    Laboratory fluid manifoldREACH 1907/2006, RoHS 2011/65/EUNo FDA 21 CFR 177 food-contact clearance; solvent exposure limited to aqueous buffers
    Polyurethane overmould substrateISO 2409:2013Adhesion promoter and grit blasting required before overmoulding

    Low-pressure fluidic manifolds fabricated from M2R-WT are restricted to aqueous, saline, and dilute aqueous buffer service because the cured acrylate network undergoes stress cracking in ketone, ester, and aromatic hydrocarbon streams. The applicable chemical safety framework is REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU for restricted substances; no FDA 21 CFR 177 food-contact clearance is claimed for this photopolymer. The formulation addition ratio is 100 wt% model resin with 0 wt% solvent; attempts to dilute with isopropyl alcohol or acetone before jetting are contraindicated because they lower flashpoint, disrupt piezo-actuated droplet formation, and reduce crosslink density. Downstream production includes MJP deposition with support wax filling the intended channel voids, heated-bath support removal, UV post-cure, and then drilling, tapping, and sealing of Luer or barbed connectors with UV-curable adhesive. Process bottlenecks on production-scale runs involve incomplete wax extraction from narrow 1–2 mm internal channels; if the channel is too long, solvent-assisted support removal may be required, but solvent selection must avoid the stress-cracking solvents listed above. Published data for this specific configuration is limited. End product type is a single-digit batch of laboratory automation manifolds used in diagnostic instrument development.

    When Polyurethane Overmoulding Requires Crosshatch Adhesion Preparation

    Prototype assemblies in which a rigid M2R-WT substrate receives a soft polyurethane overmould are evaluated according to ISO 2409:2013 cross-cut adhesion testing, because adhesion failure between the acrylate substrate and the two-component polyurethane is the dominant quality deviation. The formulation addition ratio for the printed substrate remains 100 wt% M2R-WT with 0 wt% diluent; the overmould is a separate polyurethane with Shore A 40–70 hardness, and a solvent-based adhesion promoter is applied at 5–10 μm dry film thickness before overmoulding. Downstream production includes MJP printing of the substrate, support removal, UV post-cure, surface preparation by grit blasting at 50–70 psi with 80–120 μm aluminium oxide media, application of the adhesion promoter, and transfer of the substrate into a heated polyurethane casting tool. If the surface preparation is omitted, peel failure occurs cohesively in the acrylate surface layer rather than in the polyurethane, producing crosshatch ratings below ISO 2409:2013 classification 2. Published data for M2R-WT adhesion to polyurethane is limited; therefore a trial plaque is recommended before committing a run of substrates. End product type is an overmoulded grip, seal, or impact-edge prototype for handheld electronic and industrial enclosures.

    Бесплатная цитата

    Конкурентоспособные 3D-системы VisiJet M2R-WT* цены на ультрафиолетовые пластики, которые соответствуют вашему бюджету - гибкие условия и индивидуальные цены на каждый заказ.

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    Сертификация и соответствие требованиям
    Более подробное введение

    3D Systems VisiJet M2R-WT* is a UV-curable acrylate photopolymer for MultiJet Printing, supplied in cartridge form for the ProJet MJP 2500 and ProJet MJP 2500 Plus platforms. The asterisk suffix is part of the product naming convention and may denote regional packaging or documentation variants; the base resin is an opaque white rigid material intended for functional prototyping with moderate impact resistance. Polymerization occurs in the build chamber by UV lamp exposure after drop-on-demand jetting, and the part is fully cured before removal. Support structures are generated from VisiJet M2-SW, a melt-away wax that is chemically distinct from the build resin and is removed thermally rather than by manual break-off. This support strategy permits internal channels, overhangs, and nested assemblies with less risk of surface damage than breakaway support approaches.

    The print process deposits layers at 32 µm in high-definition mode or 64 µm in high-speed mode, with lateral resolution described by the manufacturer as 800 dpi. The ProJet MJP 2500 Plus build envelope is 294 mm × 211 mm × 144 mm. Because M2R-WT is opaque, support-wax retention in blind features can be difficult to detect by eye. The most common production-floor defect is residual M2-SW wax in thin snap-fit slots and small-diameter channels after oven extraction; this residual can mimic short-shot porosity or create pressure marks during handling. Transillumination with a cold light source is recommended for white sections thinner than 2 mm to confirm support clearance before assembly.

    How Does VisiJet M2R-WT Differ from Clear and Black M2R Variants?

    Within the M2R family, M2R-WT is distinguished by titanium dioxide pigmentation and the resulting UV scattering behaviour. The white pigment scatters light in the cure zone, producing an opaque surface finish that does not require painting for light-blocking covers. Comparative published data indicates that M2R-WT typically provides higher elongation at break and notched Izod impact than M2R-CL, the transparent formulation. M2R-CL is selected where optical transmission or visual inspection of internal flow is required, although its unpigmented network generally exhibits lower impact resistance. M2R-BK, the black variant, shares the same support system and a similar mechanical envelope but is selected for high-contrast appearance or light-suppression applications. White M2R-WT is the default opaque rigid material in the family because the white base accepts dye, ink marking, and adhesive labels without the reflectance variations common to clear or black parts.

    Compared with vat photopolymer resins used in stereolithography, M2R-WT does not require a vat, recoater contact, or post-cure UV flood exposure. This jetting process reduces peel-force distortion on large flat surfaces, but the crosslinked network remains a thermoset. The material cannot be remelted, hot-air welded, or ultrasonically welded in the manner of ABS or polypropylene. The thermal ceiling is lower than many engineering SLA resins, so replacement of ABS or polycarbonate in load-bearing service above 50 °C is not recommended.

    The mechanical property envelope below is compiled from representative published datasheet ranges for conditioned M2R-WT specimens. They are not specification minima and should be verified for the intended build orientation because interlayer interfaces can reduce tensile elongation relative to in-plane values.

    PropertyTest methodRepresentative published range
    Tensile strengthASTM D63830–45 MPa
    Tensile modulusASTM D6381,400–1,800 MPa
    Elongation at breakASTM D63815–30%
    Flexural strengthASTM D79035–50 MPa
    Flexural modulusASTM D7901,300–1,700 MPa
    Notched Izod impactASTM D25615–25 J/m
    Heat deflection temperature at 0.45 MPaASTM D64840–50 °C
    Shore D hardnessASTM D224075–85
    DensityASTM D7921.05–1.15 g/cm³

    Tensile and flexural values generated under ASTM D638 and ASTM D790 are sensitive to specimen conditioning. Parts held at 23 °C and 50% RH for 24 h before testing show stable dimensions, but parts measured immediately after wax removal can show transient moisture loss and residual stress. Acceptance metrology should therefore be delayed until the part reaches thermal equilibrium with the measurement environment. The heat deflection temperature is the controlling parameter for any assembly that experiences warm-water immersion, steam autoclave, or motor-bearing housing temperatures above 40 °C; such service falls outside the reliable operating boundary for M2R-WT.

    Support removal for M2R-WT is thermal rather than solvent-based. After the build, parts are placed in a low-temperature oven station where M2-SW melts and drains from exposed surfaces. A subsequent rinse with isopropyl alcohol removes residual wax film. Acetone, methyl ethyl ketone, toluene, and chlorinated solvents should be excluded from post-processing because they soften the acrylate matrix and can induce stress cracking in thin walls. Cartridge storage should be maintained at 18–28 °C; cartridges must be allowed to equilibrate to the printer bay temperature before loading to avoid jetting viscosity shifts. The white formulation can settle if cartridges remain stationary for extended periods, so cartridges should be rotated or gently agitated according to the supplier’s storage instructions. Published data on sedimentation rate for this specific formulation is limited.

    In MJP equipment, jetting stability depends on the piezo-electric nozzle array and the heated recirculating feed system. Missing jets can produce small voids that are less visible in white than in clear material, so first-article inspection after a cartridge change or extended idle period is recommended. The part surface is semi-gloss to matte, with visible build strata on curved surfaces at 32 µm layer spacing. Sanding with 400–600 grit abrasive followed by a clear acrylic coating improves appearance but changes wall thickness and should be accounted for in press-fit and bearing interfaces.

    Dimensional compensation must consider both droplet spread and the thermal support-removal cycle. The opaque white surface permits direct structured-light scanning without the spray powder often needed for clear resins, but internal snap-fit windows and hole diameters require contact or vision metrology. Critical bores should be printed parallel to the build axis and reamed to final size because Z-axis cumulative error is larger than X-Y hole shrinkage. Mixed-thickness geometries can exhibit differential cooling after oven removal; thick bosses retain heat and can drift dimensionally after initial measurement on long housings. These effects are more visible on white parts than on clear or black grades because shadow contrast highlights corner rounding and layer lines.

    Thermal Stability, Moisture Uptake, and Solvent Exposure Boundaries

    The heat deflection temperature measured at 0.45 MPa according to ASTM D648 falls in the range of 40–50 °C. The value at 1.82 MPa is lower, and creep under sustained load may begin below the HDT. Water absorption after 24 h immersion per ASTM D570 is typically below 1.0%, but moisture uptake in a continuous 60% RH environment can shift elastic modulus and increase part weight. For metrology-critical parts, dimensional inspection should be performed at the same temperature and humidity as the end-use assembly; otherwise, a 1–2 °C room fluctuation or a 10% RH change may exceed dimensional tolerance on large white housings.

    Chemical incompatibilities include ketones, chlorinated hydrocarbons, and strong alkaline solutions. Short-contact wipe cleaning with 70% isopropyl alcohol is generally accepted, but immersion in alcohol for more than a few minutes can cause edge swelling in thin sections. For applications involving repeated exposure to cutting fluids or hydraulic oils, compatibility testing under ISO 175 or ASTM D543 immersion protocols is required before production use. Long-term UV exposure can shift white appearance toward slightly yellow tones; if colour stability is a requirement, accelerated weathering data under ASTM G154 should be requested from the supplier. The material is not intended for continuous hot-food-contact or medical implantation use. Users requiring biocompatibility must request lot-specific extractables, cytotoxicity, and sensitisation data under ISO 10993-5 and ISO 10993-10 rather than inferring it from generic acrylate classifications.

    The compliance positions summarised below reflect the published documentation base for M2R-WT; they do not replace application-specific testing. A benign mechanical property result cannot be extrapolated to chemical compatibility or thermal endurance without test coupons built on the same machine and layer thickness as production parts.

    Requirement areaPublished documentation statusReference or test method
    Tensile propertiesCharacterisedASTM D638
    Flexural propertiesCharacterisedASTM D790
    Impact resistanceCharacterisedASTM D256
    Heat deflectionCharacterisedASTM D648
    Water absorptionCharacterisedASTM D570
    Solvent resistanceLimited; application-specific immersion requiredASTM D543
    Food contactNot stated in published documentationNo FDA 21 CFR 177 clearance stated
    BiocompatibilityNot inferredRequires ISO 10993-5 and ISO 10993-10 data

    The cartridge RFID restricts M2R-WT to supported MJP platforms; this machine-material lock-out is a key engineering difference from generic third-party resins used in vat and open-material extrusion systems. The supplier’s Safety Data Sheets include GHS hazard communication, REACH information for European Union users, and RoHS declarations when requested. These documents identify the uncured resin as a skin and eye irritant; cured M2R-WT parts are generally considered less hazardous, but machining or sanding generates acrylic dust that requires dust extraction and local exhaust ventilation.

    When Snap-Fit and Living-Hinge Prototypes Require Durable White Acrylate

    When M2R-WT is selected for snap-fit and living-hinge evaluation, the clip-beam orientation relative to the jetting plane determines the number of usable assembly cycles. Building with clip beams in the X-Y plane preserves the higher in-plane elongation, while vertical clip beams introduce interlayer tensile loads that reduce effective elongation and promote notch cracking at the clip root. The notched Izod impact range of 15–25 J/m under ASTM D256 supports moderate assembly deflections, but published data for snap-fit retention force after repeated cycling in M2R-WT is limited. Moulded polypropylene living-hinge geometries cannot be transferred directly; M2R-WT is a crosslinked acrylate network with lower flexural fatigue life than polypropylene, and hinge designs should be limited to low-cycle functional trials with spare hinge elements available for replacement.

    For white housing and enclosure prototyping, M2R-WT is used in consumer electronics covers, laboratory equipment housings, microfluidic manifolds requiring opaque channel walls, and light-blocking ducts. The material accepts cyanoacrylate or epoxy assembly, but solvent bonding is restricted because the network is crosslinked. Thread-forming screws are preferred for mechanical joints; pilot-hole diameters should be adjusted for printed hole shrinkage, and critical holes should be reamed to final size. Because the material is a thermoset, ultrasonic welding and hot-plate welding are not applicable in the manner used for thermoplastic parts. Machining and drilling are possible with carbide tooling, but feed rates should be reduced to avoid heat build-up and local edge chipping.

    Relative to M2R-CL, the white grade’s pigment reduces optical clarity but improves visibility of surface defects during quality inspection. Relative to M2R-BK, M2R-WT provides a neutral base for custom dyeing and marking. Both comparisons should be considered within the same MJP platform and support-removal constraints; the controlling difference for most design decisions remains the thermal resistance and the crosslinked nature of the acrylate network, not the colour alone.

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