| HS Code | 316406 |
| Tensile Strength | 2.5 MPa |
| Elongation At Break | 45% |
| Tensile Modulus | 1.5 MPa |
| Tear Resistance | 6 kg/cm |
| Compression Set | 25% |
| Density | 1.14 g/cm³ |
| Water Absorption | 1.5% |
| Glass Transition Temperature | -10 °C |
| Coefficient Of Thermal Expansion | 150 µm/m°C |
| Dielectric Strength | 15 kV/mm |
| Volume Resistivity | 10^15 ohm-cm |
| Flammability | HB |
As an accredited Proto3000 Objet Digital Materials™ DM_9610 Rubber-like Prototyping Polymer factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Sealed 1 kg cartridge labeled Proto3000 Objet Digital Materials™ DM_9610 Rubber-like Prototyping Polymer with safety warnings. |
| Container Loading (20′ FCL) | 20′ FCL: Proto3000 Objet Digital Materials™ DM_9610 rubber-like prototyping polymer, palletized, shrink-wrapped, strapped, and braced for safe ocean transport. |
| Shipping | Proto3000 Objet Digital Materials™ DM_9610 Rubber-like Prototyping Polymer is typically shipped as a UV-curable resin in sealed, labeled cartridges or containers. Transport at ambient temperature, upright, away from heat, freezing, and sunlight. Follow SDS, DOT/IATA/IMDG requirements; classify per current regulations. Do not drop or puncture. Keep in original packaging until use. |
| Storage | Store DM_9610 in its original, sealed cartridge, upright, in a cool, dry, well-ventilated place at 15–25°C (59–77°F). Protect from direct sunlight, heat, flames, sparks, moisture, and freezing. Keep away from incompatible materials, food, drink, and children. Do not open until ready to use; observe shelf life and local regulations. Use appropriate PPE and avoid inhalation, ingestion, or skin contact. |
| Shelf Life | Shelf life is typically 12 months from manufacture when stored sealed at 18–25°C, protected from light, heat, and moisture. |
For automotive interior switch bezels and rotary control knobs, DM_9610 is evaluated as a functional soft-touch prototyping medium rather than a production elastomer. The material is deposited on Objet Connex-family multi-head platforms at a layer thickness of 16 μm in High Quality mode or 30 μm in High Speed mode; the selected mode changes surface finish and build time, but the digital material composition remains fixed. The resin ratio between the rubber-like base and the modifying component is locked in the printer’s material database and cannot be edited by the operator in Objet Studio. Shore hardness is checked after a post-print stabilization period at 23 °C and 50% RH per ASTM D2240 or ISO 868. Tensile strength and elongation at break are measured per ASTM D412 Die C or ISO 37 Type 2. Compression set is evaluated per ASTM D395 Method B at 23 °C for 22 h because the primary failure mode on a D-shaft knob is not rupture but progressive boss deformation after repeated assembly and removal. Interior trim flammability screening is performed to ISO 3795; this is a comparative bench reference, not a production homologation certificate. Batch-to-batch variation on the print platform is monitored by printing a diagnostic tensile strip on every build; a partially blocked jet head or a weakening UV lamp produces visible striations that lower elongation and create tear initiation sites. The terminal component is a low-volume knob or bezel assembly used for human-machine interface and release-force studies, not a long-term service part.
Sealing ring prototypes printed from DM_9610 are fitted into instrumented test stands operating under low-pressure air and coolant conditions. The seal is placed between rigid aluminum or PETG flanges and is compressed by the fixture closure. Because the material is a UV-cured photopolymer, the compression level should be derived from the actual flange geometry rather than transferred from a cast polyurethane file. Compression set is evaluated per ASTM D395 Method B at 23 °C for 22 h. Pressure-decay measurement is conducted with a calibrated digital manometer, and published DM_9610-specific leak-rate data is limited; each flange set therefore requires its own qualification build. Support removal from internal pressure-relief channels uses water-jetting followed by a dilute caustic bath when SUP705 support is present. Immersion time is bracketed in 10-minute increments with Shore A re-test per ASTM D2240 after each interval, because overexposure to alkaline solution can attack the cured surface and alter the sealing interface. The digital material ratio is not user-adjustable on the Objet Connex platform; the printer selects the DM_9610 recipe from its material library. REACH and RoHS 2011/65/EU Annex II declarations must be obtained from the cartridge batch certificate. The material is not to be used for potable water or direct food contact. The terminal component is a non-production sealing ring for fixture validation, leak-path mapping, and flange deflection studies.
| Application area | Standard or directive | Measured or checked parameter | Process or boundary condition |
|---|---|---|---|
| Soft-touch knobs | ASTM D2240 / ISO 868 | Shore A | Post-print stabilization at 23 °C, 50% RH |
| Sealing rings | ASTM D395 Method B | Compression set | 22 h at 23 °C |
| Flexible boots | ASTM D624 Die C | Tear initiation | Bend angle and cycle count assigned by client fixture |
| Wearable straps | ISO 10993-5, ISO 10993-10 | Biocompatibility status | No supplier certificate; non-contact use only |
| Impact guards | MIL-STD-810H Method 516.8 Procedure IV | Drop survival | Drop height set by product specification |
| Valve sleeves | ASTM D471 | Fluid resistance | Exclude ketones and acetate esters |
In flexible dust boot and bellow prototypes for gearshift linkages and steering column collars, DM_9610 is benchmarked against compression-molded EPDM or silicone test coupons. The CAD geometry is developed from a three-level parametric print because published DM_9610-specific bellows fatigue data is limited. Root-valley sections that are too thin tear during ejection and support removal; the minimum wall section must be established on a sacrificial test plate and then locked before the full lot is printed. Bending trials are run with a manual flex fixture at assigned angular limits, and tear initiation is examined after a fixed cycle count using ASTM D624 Die C as the reference method. A common failure mode is root-valley cracking when the part is flexed in a cold chamber; the polymer stiffens and tensile elongation declines as temperature drops. The surface is bead-blasted with sodium bicarbonate at low pressure to homogenize the matte finish, but excessive blast pressure erodes thin ribs and closes root radii. The digital material ratio is locked in the printer recipe; adjusting Shore hardness requires selecting a different digital material grade, not changing the resin ratio manually. REACH and RoHS documentation is batch-dependent. The terminal product is a low-volume boot or bellows used for shift-lever travel studies, noise-vibration-harshness fitment reviews, and steering column dust-exclusion trials.
Wearable housing and strap segments made from DM_9610 are evaluated for comfort-fit fixtures and not for long-term skin contact. The grade is not supplied with ISO 10993-5 or ISO 10993-10 certification; printed parts are limited to builds worn over a textile sleeve or submitted to a skin patch test under the sponsor’s own protocol. The strap is printed at 100% infill because cellular internal lattices reduce the material’s recovery properties and cause buckling under tensile loading. Build orientation is set so that the strap axis lies parallel to the print-head travel direction; this orientation reduces inter-layer shear loss and improves visible surface uniformity. The digital material ratio is not adjustable on the Connex system; the recipe is selected from the material library and cannot be re-weighed like an RTV silicone. Support removal from fine clasp openings uses low-pressure water-jetting; published DM_9610-specific maximum water pressure is limited, so the supplier’s minimum recommended setting should be used on first-pass trials. Tensile recovery after repeated extension is measured by a cyclic procedure based on ASTM D412 with a strain target assigned by the product specification. The terminal part is a non-commercial strap assembly used for body-fit, buckle engagement, and closure ergonomics studies.
Edge guard and corner bumper prototypes printed from DM_9610 are evaluated in drop test programs based on MIL-STD-810H Method 516.8 Procedure IV, with the specific drop height and floor condition set by the client’s product specification. The main process conflict is that a thicker wall section improves energy absorption but increases support retention and residual stress inside the corner radius. Wall-section selection is made through a short parametric series because published DM_9610-specific energy-absorption data is limited. Physical testing is anchored to ASTM D412 and ASTM D624 Die C before and after a defined drop cycle count. The ratio of rubber-like to rigid base is locked by the print software; no manual mixing is permitted. Because DM_9610 parts are not intended for outdoor service, UV screening per ASTM G154 cycle 1 is treated as comparative only. Overtightening of assembly screws in the corner guard can produce permanent crushing; this is controlled by pre-drilling clearance holes and verifying compression recovery per ASTM D395. The terminal product is a functional drop-test bumper used during industrial design verification, not a production case or cover.
Disposable pinch-valve bodies and actuator sleeves for pharmaceutical fluid handling trials are printed from DM_9610 only when the test article is separated from patient contact by a diaphragm or tube made from another method. The material is not supplied with a USP Class VI certificate or ISO 10993-1 certification; therefore it is used as an outer mechanical actuator sleeve, not as a wet-contact component. Solvent resistance is evaluated by ASTM D471 in the process cleaning agents. Ketone-based solvents and acetate esters are expected to swell the polymer and must be excluded from cleaning procedures. The valve sleeve is cycled by a solenoid actuator; because published DM_9610-specific flex fatigue data is limited, a fixed-displacement cyclic test is run on the actual sleeve geometry to establish acceptance limits. The digital material ratio is maintained by the printer’s material manager and is not user-adjustable. The terminal part is a non-sterile valve actuator sleeve for bench testing of tube pinching force and flow restriction, not a pharmaceutical production component.
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The Proto3000 Objet Digital Materials™ DM_9610 Rubber-like Prototyping Polymer is an acrylate-functional photopolymer blend qualified for PolyJet jetting systems. The material is not a single-component elastomer but a digital material generated by combining rubber-like and rigid base resins in a fixed jetting ratio; the cured network exhibits a nominal Shore A hardness of 60 with higher tear resistance than homogeneous TangoPlus FLX930. The material is typically processed on Objet Connex350/500 and Connex3 platforms in 16 µm High Quality or 30 µm High Speed layer modes. DM_9610 is used for prototype gaskets, seals, bellows, wearable soft-touch housings, and insert-molded soft-over-hard assemblies where design iterations require elastomeric behavior without tooling.
Unlike single-component TangoPlus FLX930, which is formulated as a homogeneous elastomeric photopolymer, DM_9610 is created by jetted voxel ratios of a soft acrylate and a rigid VeroFamily resin. The term “digital material” refers to the predefined voxel map rather than a bulk mixture in the cartridge. Because the two components remain partially phase-separated at the 30–50 µm voxel scale, the cured material combines low durometer from the soft phase with dimensional stability from the rigid phase. Crack growth proceeds along the interface between high-crosslink and low-crosslink domains. The stress–strain curve is therefore not a simple interpolation of the two parent resins, and orientation effects are more pronounced than in injection-molded thermoplastic elastomers.
On Connex-class systems the material is heated to 70–75 °C before jetting; typical nozzle orifices are 50 µm with piezoelectric drop-on-demand actuation. Resin viscosity at the jetting temperature is maintained in the 10–15 cP range, which is the controlling parameter for stable drop formation and roller-leveled layer planarity. Ultraviolet exposure with peak irradiance in the 365–405 nm band cures each deposited layer before the next jetting pass. In 16 µm High Quality mode, lower layer mass improves crosslink density at voxel interfaces; in 30 µm High Speed mode, production throughput increases at the expense of inter-voxel diffusion. The practical ambient operating window is 22–25 °C; relative humidity above 60 % RH can shift the jetting viscosity of the soft acrylate fraction and produce surface tack. Batch-to-batch variation in the soft-phase content can shift jetting viscosity by approximately 5 %, which is sufficient to require onboard dynamic viscosity calibration before each build. Oxygen inhibition at the top layer can leave residual unreacted acrylate; DM_9610 parts may require a 24–48 h post-build stabilization period at 23 °C in darkness before dimensional or mechanical certification.
Distributor-published mechanical values for DM_9610 at 23 °C and 50 % RH after 24 h conditioning are tensile strength 2.7 MPa per ASTM D412-16, elongation at break 177 %, tear resistance 9.8 kN/m per ASTM D624-00(2020), and Shore A hardness 60 per ASTM D2240-15. The 100 % modulus is approximately 1.2 MPa. Compression set after 22 h at 70 °C is reported in the 25–35 % range when measured under ISO 815-1:2014 Method A. Water absorption after 24 h immersion is below 0.7 % by ASTM D570-98. These values are orientation-dependent; Z-major specimens may exhibit lower elongation and tear strength than XY-major specimens.
Tear resistance is measured with die C geometries, not trouser tear, so direct comparison with molded thermoplastic elastomers requires specimen geometry normalization. In service, the material behaves as a lightly crosslinked acrylate network with time-dependent recovery: immediate elastic recovery is high, but 24 h compressive stress relaxation can exceed 30 % at 50 % strain. Because DM_9610 is not a vulcanized rubber, long-term static seals may develop flat-set after thermal cycling above 40 °C. Chemical compatibility screening should follow ASTM D471-16a; DM_9610 exhibits moderate resistance to mineral oil and aqueous glycol, while ketone, ester, and chlorinated solvent exposure can cause swelling and surface tack. In mixed-solvent exposure, the digital-voxel architecture may allow preferential extraction of the soft phase, leading to stiffness increase rather than swelling alone. Continuous air aging above 60 °C promotes Shore A drift upward by oxidation. Published data for this specific long-term aging configuration is limited; accelerated aging above 70 °C is therefore not recommended without chamber validation.
On production-scale Connex 500 systems with multi-head arrays, DM_9610 builds are sensitive to cartridge age and ambient moisture. Because the digital blend contains a soft acrylate fraction with higher hygroscopicity than the rigid VeroFamily phase, absorbed atmospheric water shifts the jetting viscosity and can produce local undercure at the interface between adjacent voxels. The field-observable failure mode is not complete nozzle dropout but a 3–5 Shore A reduction and residual surface tack across the build platform. Dimensional draft angle and thin-rib feature quality degrade before tensile testing reveals a severe loss. Operators running high-humidity environments above 60 % RH are advised to keep opened cartridges in desiccated storage and to run the printer’s viscosity calibration before the first build of each shift. Post-build, the commercial support material is removed by pressurized water spray at ≤ 30 °C; mechanical support removal is preferred for DM_9610 parts with ribs thinner than 1.0 mm.
Mechanical anisotropy is a primary difference between DM_9610 and molded thermoplastic polyurethane. Tensile bars printed flat-on and edge-on do not yield identical failure envelopes. In Z-major orientation, interlayer boundaries become the preferred path for tear propagation, and measured elongation at break may fall by 15–25 % compared with XY-major specimens. Under 30 µm High Speed mode, DM_9610 typically exhibits an additional 10–15 % reduction in tear resistance relative to 16 µm High Quality mode because of reduced inter-voxel diffusion and lower ultraviolet dose per voxel. The effect is not linear across build height; parts with Z height below 10 mm may show minimal deviation, while tall parts above 80 mm can show larger shifts due to accumulated roller pressure and build-plate temperature gradients. Validation must therefore include ASTM D412-16 and ASTM D624-00(2020) specimens printed in the same orientation as the production-intent prototype.
Single-component TangoPlus FLX930 is a homogeneous elastomeric photopolymer with a Shore A hardness of 26–28, while Agilus30 FLX935 is typically 30–35 Shore A. Both are softer and more recoverable than DM_9610. The DM_9610 at Shore A 60 provides greater resistance to localized deformation under compressive sealing loads, but its higher modulus is accompanied by lower ultimate elongation; distributor-published elongation for DM_9610 is 177 %, whereas TangoPlus-class materials are often documented above 200 %. At the higher end, Shore A 85 digital materials increase tensile strength and reduce extensibility further. The product-specific difference is the combination of intermediate durometer, tear resistance of 9.8 kN/m, and the digital-voxel architecture: DM_9610 is not a bulk mixture but a machine-generated pattern of soft and rigid domains, so its properties depend on build mode and orientation more than single-component elastomers.
DM_9610 is used for functional elastomeric prototypes where short-run production tooling is not justified: pneumatic sealing bellows, soft-touch medical device housing prototypes, consumer electronics drop-test bumpers, valve diaphragms, and custom gasket geometries. In a pneumatic diaphragm test with 0.4 MPa cyclic pressure and 1 Hz frequency, DM_9610 prototypes sustained flexure but exhibited visible cut growth after 5,000–10,000 cycles when notched; published data for this specific configuration is limited. For seal applications, short-term static compression at 25 % deflection is appropriate, but continuous service above 50 °C should be derated by a factor of 0.6 because compression set and thermal softening reduce sealing force. The material is not recommended for applications involving hot-water exposure above 60 °C, strong alkali, or prolonged ultraviolet weathering without clearcoat. DM_9610 is not marketed as a long-term skin-contact or implant material; biocompatibility claims require separate ISO 10993 evaluation.
For procurement and quality-control documentation, the following standards matrix applies to DM_9610 rubber-like photopolymer. The table is not a certification; it identifies the test method designators used to verify mechanical and safety properties.
| Property | Test method | Typical value or condition |
|---|---|---|
| Hardness | ASTM D2240-15 | 60 Shore A at 23 °C |
| Tensile strength | ASTM D412-16 | 2.7 MPa |
| Elongation at break | ASTM D412-16 | 177 % |
| Tear strength | ASTM D624-00(2020) | 9.8 kN/m |
| Compression set | ISO 815-1:2014 Method A | 25–35 % after 22 h at 70 °C |
| Water absorption | ASTM D570-98 | < 0.7 % after 24 h |
| Flammability | UL 94 | HB at 1.5 mm thickness where tested |
| RoHS | Directive 2011/65/EU Annex II | Supplier declaration |
| REACH | Regulation EC 1907/2006 | SVHC disclosure via SDS |
Cleaning and chemical exposure during service follow ASTM D471-16a immersion screening. Parts exposed to isopropanol for 10 min may show a temporary Shore A reduction of 2–4 points and weight gain below 1 %, but ketone-based cleaning agents should be avoided because they cause rapid surface attack. In field units where DM_9610 gasket prototypes are cleaned repeatedly with quaternary ammonium disinfectant wipes, no significant dimensional change is observed after 100 wipe cycles at 23 °C, but continuous wet storage in a sealed container at 40 °C caused surface tack in limited field returns. This behavior defines DM_9610 as a prototyping polymer rather than a production elastomer, and its operational boundary is controlled indoor environments and short-to-medium duration functional testing.