| HS Code | 759266 |
| Materialtype | UV curable elastomeric |
| Color | Amber |
| Density | 1.04 g/cm³ at 25°C |
| Viscosity | 250 cps at 25°C |
| Tensilestrength | 4.0 MPa |
| Elongationatbreak | 150% |
| Flexuralmodulus | 20 MPa |
| Tearstrength | 10 kN/m |
| Waterabsorption | 0.5% |
| Curingwavelength | 315-405 nm |
| Biocompatibility | USP Class VI |
As an accredited 3D Systems VisiJet M2 ENT UV curable elastomeric factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | One-kilogram opaque plastic bottle of 3D Systems VisiJet M2 ENT UV curable elastomeric resin, with safety cap and hazard labels. |
| Container Loading (20′ FCL) | 3D Systems VisiJet M2 ENT UV curable elastomeric is palletized, secured, and loaded in a 20-foot FCL container for safe transport. |
| Shipping | VisiJet M2 ENT is shipped as UN3082, Environmentally Hazardous Substance, Liquid, N.O.S. (contains isobornyl acrylate), Class 9, Packing Group III. Use UN-approved packaging, apply marine pollutant marks if required, and follow current SDS, IATA, IMDG, and DOT regulations. |
| Storage | Store in the original, tightly sealed container, upright, in a cool, dry, well-ventilated area away from direct sunlight, UV light, heat, sparks, and ignition sources. Recommended storage temperature is 15–25°C (59–77°F); avoid freezing and excessive heat. Keep separate from strong oxidizers. Keep container closed when not in use. Protect from moisture and contamination. Follow the manufacturer’s SDS and local regulations. |
| Shelf Life | Typically 12 months from manufacture when stored unopened at 15–30°C, away from UV light and heat. |
| Test method | Property | Published value |
|---|---|---|
| ASTM D2240 Type A | Hardness | 27 Shore A |
| ASTM D638 Type IV | Tensile strength | 2.3 MPa |
| ASTM D638 Type IV | Elongation at break | 203% |
| ASTM D624 Die C | Tear strength | 5.8 kN/m |
In automotive air management assemblies, the replacement of injection-molded EPDM or liquid silicone gaskets with direct-printed VisiJet M2 ENT components introduces a different risk profile because the photopolymer network is not crosslinked by sulfur or peroxide vulcanization but by acrylate conversion during MultiJet Printing. The formulation is processed as supplied at 100% solids; no reactive diluent, accelerator, or post-additive is metered into the material. Parts are produced on the 3D Systems MJP 2500 platform with a build envelope of 294 × 211 × 144 mm at 32 µm layer thickness, followed by support wax removal in a circulated wax melt oven held at 70 °C for 2 h, and dimensional verification using contact profilometry on sealing faces. Underhood prototypes must meet dimensional tolerance classes under ISO 3302-1:2014 grade E2 for non-mating surfaces and grade E3 for sealing ribs; hardness is checked with ASTM D2240 Type A, returning a published value of 27 Shore A. The material exhibits elongation at break above 200% under ASTM D638 Type IV, but tensile strength is limited to 2.3 MPa, meaning the printed seal cannot replace high-pressure nitrile or FKM service parts. For short-term thermal exposure up to 50 °C, the printed gasket maintains recovery behavior; above this threshold or in sustained contact with hydrocarbon oils, published data for this specific configuration is limited and component-level validation under SAE J2236 is required. Residual support wax entrapment in blind grooves remains a documented failure mode when wash temperature falls below 68 °C or when convection flow is restricted by packing density above 70%; such parts exhibit visible exudate after thermal cycling and must be re-cleaned before assembly. Terminal component types include turbocharger inlet seal prototypes, air cleaner housing gaskets, cabin air filter perimeter seals, and grommet blanks used during early packaging layout.
Otolaryngology and maxillofacial surgical planning departments frequently use an elastomeric material that reproduces cartilage-like resistance without the tooling overhead of cast silicone. VisiJet M2 ENT is loaded into the same MultiJet Printing system at 100% as-supplied resin with no added softener or pigment; any coloration is applied as a post-print surface stain, not as a formulation modifier. The material is post-processed by wax removal at 70 °C and may undergo a light ethanol wipe after cooling. Biocompatibility for short-term tissue contact is assessed under ISO 10993-5:2009 and ISO 10993-10:2010, with samples prepared according to the manufacturer's cleaning protocol; the material carries a USP Class VI designation for non-implantable medical device elements. Printed surgical models are not cleared for permanent implantation, and long-term mucosal contact beyond 24 h should be excluded from the risk file unless facility-specific data under ISO 14971:2019 supports otherwise. The downstream process includes segmentation from CT/DICOM geometry, digital shelling with wall thickness not below 0.8 mm, MultiJet Printing at 32 µm layer thickness, support removal, and optional aqueous detergent cleaning before sterilization with low-temperature hydrogen peroxide at 35 °C. Terminal part types include septal deviation planners, external auricular models, tracheal ring simulators for bronchoscopy training, and mandibular resection guides used in pre-surgical instrumentation layout. The low hardness of 27 Shore A referenced in the datasheet prevents brittle fracture when burr or saw access windows are cut into the model during the planning session; however, repeated clamping beyond 200 cycles can produce surface compression set, so fixture design should distribute load rather than rely on point contact.
Direct replacement of a thermoplastic polyurethane overmold with a printed photopolymer begins with chemical restriction screening, not geometric design. The relevant compliance matrix for a handheld radio or industrial scanner prototype includes EC 1907/2006 Annex XVII for restricted phthalates and polycyclic aromatic hydrocarbons, 2011/65/EU RoHS for lead, mercury, cadmium, hexavalent chromium, PBB, and PBDE, and IEC 62368-1:2018 for limited power source separation in operator-accessible surfaces. VisiJet M2 ENT does not carry a UL94 flammability rating; therefore, it cannot be used as a fire enclosure substitution. The material is processed as a 100% solids photopolymer without blending with TPU, because the acrylate network and thermoplastic melt phase are thermally incompatible; the addition ratio in the part remains 100% VisiJet resin with machine-controlled support wax. Downstream production employs MJP at 32 µm layer thickness, wax melt, and then low-temperature bake at 50 °C for 1 h to reduce residual monomer odor before skin-contact evaluation. Mechanical testing follows ASTM D638 Type IV for tensile response and ASTM D412 for cut specimens, yielding elongation values above 180% and a published Shore A hardness of 27, which is close to soft TPU grades in the 60A range but lower in tensile strength. The printed overmold demonstrates useful strain recovery after repeated deflection; dimensional drift of more than 0.3 mm at the parting line is a known mode when wall thickness falls below 1.5 mm and when ambient humidity exceeds 60% during storage, so design reviews should include a dry storage cabinet or sealed packaging. Terminal part types include scanner handle overmolds, smart device corner bumpers, electronic enclosure gasket prototypes, and wearable sensor strap housings for short-term field trials.
Within aerospace harness mock-up cells, elastomeric grommets and duct bellows are often printed for pathfinding before production tooling is released; the component is not flight-qualified and is not a direct substitute for MIL-spec silicone or polyimide articles qualified to FAR 25.853. VisiJet M2 ENT enters the process at 100% as-supplied resin with no reactive diluent, filler, or flame-retardant additive; any attempt to mix in fumed silica to raise durometer invalidates the published tear strength data because the thixotropic change alters UV penetration depth and green-part strength. The downstream process uses the MJP 2500 system at 32 µm layer thickness, support removal in a circulated wax melt chamber at 70 °C, and coordinate measuring machine inspection with a 0.1 mm scanning probe on mating hole patterns. Industrially recognized test methods include AS9100D for process traceability in the mock-up cell, ISO 37:2017 for tensile stress-strain on Type 2 dumbbells, and ASTM D624 Die C for tear strength; the material's published tear strength of 5.8 kN/m indicates limited notch tolerance, so bellows features with sharp internal radii below 2 mm exhibit crack initiation after fewer than 500 flex cycles. For harness grommets, compression set under ASTM D395 Method B at 70 °C for 22 h is not published for this material, and validation programs should generate that data before committing to environmental qualification. Terminal geometry is limited to mock-up grommets, duct bellows, cable clamp liners, and antenna seal prototypes used during airframe integration studies; all four groups are identified with ink marking before load testing to maintain traceability in the engineering model.
Diaphragm pump service imposes cyclical strain on the flexing annulus, and tooling-free production of a VisiJet M2 ENT diaphragm introduces both a lead-time advantage and a compliance limitation. The photopolymer is used at 100% as-supplied concentration; no plasticizer, antidegradant, or curative is added because the network architecture is fixed during UV cure, and dispersing solid additives into the low-viscosity resin can interfere with recirculation in the MJP printhead. The material's tensile elongation at break above 200% under ASTM D638 Type IV supports short-stroke diaphragm deformation, while its tear strength of 5.8 kN/m under ASTM D624 Die C requires a minimum flexing radius of 3 mm to avoid notch propagation. Chemical compatibility is screened using ISO 1817:2015 immersion in the process fluid at 23 °C for 72 h; the material is unsuitable for strong polar solvents, chlorinated hydrocarbon streams, and ester-containing formulations because published data for this specific configuration is limited, and only test coupons should be used for compatibility trials. The downstream process includes MJP at 32 µm layer thickness, support removal in a wax melt oven, and a post-wipe with isopropyl alcohol before assembly into a bolt-clamped diaphragm pump body. The printed part must not be used in continuous service above 45 °C or in abrasive slurry applications because the unfilled elastomer displays limited abrasion resistance. Terminal part types include pilot-scale transfer pump diaphragms, short-run check valve seats, pneumatic control valve glands, and sanitary fitting gaskets used only in cold water service where food-contact certification is not required. For food-contact evaluations, the material is not listed under FDA 21 CFR 177.2600, and the absence of that listing precludes use in dairy or beverage lines without an approved supplementary barrier.
During early-stage footwear midsole evaluation, shock-attenuating lattice geometries are printed in VisiJet M2 ENT on the MJP 2500 at 100% as-supplied resin and 32 µm layer thickness, followed by wax melt at 70 °C; hardness is verified at 27 Shore A under ISO 7619-1:2010, and terminal part types include heel pad inserts, helmet liner lattice cones, and glove palm damping pads for non-certified ergonomic testing. These prototypes are not personal protective equipment and carry no compliance claim under EN 1621-1 or ASTM F1447.
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VisiJet M2 ENT (Elastomeric Natural Translucent) is a UV-curable elastomeric photopolymer supplied for the 3D Systems ProJet MJP 2500 and ProJet MJP 2500 Plus material jetting platforms. The resin is deposited from sealed cartridges through a multi-jet printhead array, and each layer is cured by an integrated ultraviolet source. The standard high-definition build mode operates at a layer thickness of 32 µm and an in-plane resolution of 1200 x 1200 dpi. The cured material is a low-durometer elastomer with manufacturer-published typical properties of 27 Shore A hardness, 0.8 MPa ultimate tensile strength, 650% elongation at break, and 7.0 kN/m tear strength. The natural translucent color differentiates it from black elastomeric grades and permits visual inspection of internal voids, wall-thickness transitions, and crack initiation in translucent or transparent prototype geometries. The support material used in the same build is a melt-away wax, typically designated VisiJet M2 SUW, which is removed after printing in a heated melt-away station. M2 ENT is not represented as an implantable or food-contact material. Uncured resin should be handled with nitrile gloves and eye protection; biocompatibility, migration, and long-term aging must be verified for the final post-processed part under the intended use.
At the network level, the M2 ENT elastomer has high segmental mobility and low crosslink density. This gives large recoverable elongation but low tensile strength and reduced resistance to solvent swelling compared with high-crosslink rigid photopolymers. Layer-by-layer UV cure can produce slight through-thickness conversion gradients, and mechanical properties may continue to drift during the first hours after printing as residual species diffuse and the part equilibrates with ambient moisture and temperature. Conditioning at 23 °C and 50% RH according to ASTM D618 is therefore advisable before comparative mechanical testing.
Build orientation has a measurable effect on M2 ENT mechanical behavior. Tensile specimens printed with their long axis in the XY build plane usually show the highest elongation at break, while Z-oriented specimens can show reduced elongation because interlayer bond strength becomes the limiting factor. Support-material removal is the most demanding post-processing step. The melt-away wax support is solid at room temperature and is removed by heating the build tray. Enclosed internal channels, blind pockets, and fine lattice structures can trap molten wax; drain holes or venting paths are required. Small drain diameters can be insufficient because the wax has limited flow rate at the removal temperature, and the low-modulus elastomer can deform if the wax is forced through restricted passages. After wax removal, short-duration isopropanol cleaning is used to remove residual wax film, but extended solvent contact should be avoided because solvent absorption can swell the low-crosslink-density network and temporarily depress the Shore A reading. Parts should be cooled in a fixtured state to minimize warpage after support-material removal.
Support removal for the MJP 2500 series is typically performed in a controlled wax-removal oven or bath integrated into the workflow. The operating temperature must be high enough to reduce the support wax viscosity but below the temperature at which M2 ENT exhibits rapid creep. Agitation or ultrasonic energy may accelerate wax removal, but thin elastomeric sections can be damaged by high-frequency mechanical energy if the part is not fixtured. Residual wax remaining on the surface can be removed with a compatible solvent wipe; however, the wipe procedure should be validated because low-durometer photopolymers can retain solvent and exhibit delayed hardness loss. Drying after cleaning should be conducted at ambient temperature or within the printer manufacturer’s recommended post-processing envelope. The exact oven temperature for M2 ENT support removal is not listed in all public technical data sheets, so the current VisiJet M2 SUW processing guide should be followed.
Design rules for M2 ENT differ from rigid photopolymers. Because tensile modulus is below 1 MPa, bosses and snap-fit arms do not generate high clamping force. Threaded inserts and press-fit pins should be installed in a rigid carrier or embedded during post-processing rather than screwed directly into elastomer walls. Thin membranes can flex but may collapse during support removal if unsupported. Ribbing, gussets, and thickened sections improve dimensional stability during wax drainage. Sub-millimetre feature resolution is process-limited; published data for this specific configuration is limited. Sharp internal corners should be replaced with fillets to reduce notch-initiated tearing. The natural translucency is useful for visual crack tracking during prototype flex testing.
Manufacturer-published properties for M2 ENT are generated using ASTM methods. Tensile stress-strain response follows ASTM D412; the reported ultimate tensile strength is 0.8 MPa, and elongation at break is 650%. Hardness is 27 Shore A under ASTM D2240. Tear strength is reported as 7.0 kN/m under ASTM D624, typically with a Die C geometry. Specific gravity is approximately 0.94 under ASTM D792. These values describe a tensile modulus below 1 MPa, roughly three orders of magnitude lower than typical rigid MJP resins. The high elongation value is a single-stroke tensile property, not a fatigue limit. The low hardness means indentation and creep under compressive load should be evaluated for gasket or seal functions. Hardness measurements are time-dependent in elastomers; readings taken before full relaxation after support removal or solvent cleaning can produce misleading values. Conditioning according to ASTM D618 stabilizes the specimen before data collection.
Anisotropy is a critical qualification parameter. Material jetting builds parts layer by layer, and layer interfaces are lower-strength planes. Test bars should therefore be printed in both XY and Z orientations because published datasheet values generally represent a single orientation. A three-axis validation build on the specific ProJet MJP 2500 or 2500 Plus serial number is recommended to quantify orientation-dependent tensile, elongation, and tear differences. The manufacturer does not publish complete data for long-term humidity, ultraviolet aging, or dynamic cycling effects on M2 ENT. For critical applications, ASTM D412 or ASTM D638 tensile testing should be supplemented by application-specific dynamic mechanical analysis and fluid compatibility testing.
| Property | Test method | Typical value |
|---|---|---|
| Shore A hardness | ASTM D2240 | 27 |
| Ultimate tensile strength | ASTM D412 | 0.8 MPa |
| Elongation at break | ASTM D412 | 650% |
| Tear strength, Die C | ASTM D624 | 7.0 kN/m |
| Specific gravity | ASTM D792 | 0.94 |
Table values are manufacturer-published typical data, not guaranteed specifications. The current revision of the 3D Systems technical data sheet should be referenced before serial production.
Build location has an empirical effect on mechanical properties. UV lamp irradiance may not be perfectly uniform across the entire build area; center and perimeter locations can produce measurable differences in cure conversion and tensile strength. A grid of tensile bars printed in the XY and Z orientations across the build platform provides data for process capability. For a low-durometer elastomer, small cure differences are magnified because the network is highly compliant. Print orientation and location should therefore be fixed before generating design allowables. If production parts are scattered across the platform, the design allowable should be based on the weakest validated location, not the center-line average.
First article inspection for M2 ENT should include dimensional measurement after support removal and after 24 h conditioning at 23 °C and 50% RH. The soft elastomer can exhibit springback after fixturing, so measurement fixtures should support the part without applying compressive strain. Touch-probe coordinate measuring machines can deform the surface and produce unrepeatable readings; non-contact scanning is preferred for thin-walled elastomeric parts. Tensile bars should be printed in the same orientation and at the same build-platform location as production parts to capture process variation. A documented process capability study using ASTM D412 tensile strength and elongation at break is appropriate for serial production.
Within the M2 material family, M2 ENT and M2 EBK are both elastomeric grades. M2 ENT is natural translucent, while M2 EBK is black. The primary documented difference is optical density and color; pigmentation can influence cure depth, surface energy, and visual inspection. M2 ENT permits transmitted-light inspection of wall thickness and internal micro-cracks in translucent parts. M2 EBK is selected when black color is required or when light-blocking behavior is needed. Mechanical differences between the two elastomeric grades are smaller than the difference between elastomeric and rigid MJP materials, but direct substitution should be validated with control coupons.
Contrast with rigid MJP grades is pronounced. Rigid multipurpose materials have Shore D hardness, high tensile modulus, and low elongation at break. M2 ENT cannot replace rigid grades in snap-fit closures, optical mounts, or high-stiffness brackets. Conversely, rigid grades cannot tolerate the recoverable deformation of M2 ENT. The castable wax grade M2 CAST is a different product intended for burnout during investment casting and is not an engineering elastomer.
Compared with other commercial elastomeric additive manufacturing materials, M2 ENT uses material jetting with melt-away wax support. This is different from PolyJet elastomers that use a gel-like support removed by water or mechanical methods. The melt-away wax support can produce smooth internal channels but requires thermal post-processing. Vat-polymerized elastomeric resins are built in a vat with same-material supports, which can leave attachment nibs and reduce surface finish. Direct side-by-side mechanical data across platforms are rarely published under identical orientation and conditioning; qualification builds should include control coupons on each candidate material.
Compared with molded silicone or polyurethane elastomers, M2 ENT is intended for direct additive manufacture of low-volume parts and prototypes without tooling. The property profile is closer to a very soft thermoplastic elastomer or silicone than to high-durometer molded urethane. However, additive manufacture introduces anisotropy and process-dependent mechanical behavior not present in isotropic molded materials. Design engineers should not assume that a molded Shore A 27 compound and M2 ENT will behave identically under compression set, tear, or dynamic cycling.
| Attribute | Reference or standard | Engineering boundary |
|---|---|---|
| Tensile strength | ASTM D412 | 0.8 MPa; not a load-bearing grade |
| Elongation at break | ASTM D412 | 650%; single-stroke, not fatigue life |
| Hardness | ASTM D2240 | 27 Shore A; soft, high-compliance |
| Tear strength | ASTM D624 | 7.0 kN/m; below industrial high-tear elastomers |
| Biocompatibility | ISO 10993-5/-10 | Not established as implantable; verify final part |
| Regulatory | REACH, RoHS | Confirm with current SDS and material certification |
The MJP 2500-series build chamber is maintained under controlled temperature, but the user facility should avoid high relative humidity because UV-curable resins are moisture-sensitive before cure. Cartridges should be allowed to reach room temperature before loading, and partially used cartridges should be sealed when not in the machine. Resin viscosity is managed by the printer’s heated delivery system; the manufacturer does not publish exact jetting viscosity for M2 ENT. Process validation can be performed by printing a tensile bar array at the center and perimeter of the build platform to detect lamp irradiance gradients or temperature differences. The support-material wax is selected for melt-away removal and is not used as a final surface coating.
Under cyclic tensile or flexural loading, M2 ENT may accumulate permanent set before the single-stroke elongation at break is reached. The soft network can microtear at stress concentrations, especially when loading is normal to the build plane. Tear resistance of 7.0 kN/m is moderate and should not be compared with high-durometer industrial elastomers. Dynamic sealing applications should be analyzed for friction, abrasive filler contact, and extrusion gap. M2 ENT is not suitable for high-pressure seals where the elastomer can be extruded through a clearance gap under load.
Chemical compatibility is limited. Strong polar solvents, aromatic hydrocarbons, and concentrated acids or bases can swell or degrade the UV-cured network. The material should be tested in the actual service fluid at service temperature because hardness and tensile strength alone do not predict retention of sealing force. Outdoor exposure to ultraviolet radiation can continue crosslinking and may alter color and mechanical response; aging studies are required before use in exterior or sun-loaded environments. Continuous service temperature is restricted by the low-durometer network; exposure above ambient drying or support-removal temperatures can cause accelerated creep and loss of dimensional stability. The manufacturer does not publish UL94 flammability ratings for this grade in standard datasheets, so flame-contact applications are outside the documented envelope.
Production-scale qualification on a ProJet MJP 2500 series line should include batch-to-batch viscosity checks, printer calibration verification, and reference tensile bars printed at the beginning and end of each build. The MJP printheads are temperature-controlled, and material pot life is governed by cartridge handling. If the machine is left idle for extended periods, the printhead can require a purge cycle that consumes resin and may slightly alter the first few parts of the run. Maintenance records should track UV lamp irradiance and printhead nozzle condition because both influence cure conversion and mechanical consistency in low-modulus elastomers. Final parts should be inspected for residual wax, oil-free surfaces, and dimensional stability after cooling to ambient temperature. Published data for this specific configuration is limited for long-term creep, compression set, and dynamic fatigue; these properties should be experimentally determined before deployment in safety-critical applications.