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Proto3000 Objet Digital Materials™ DM_9110/9410/9210/9310 Rubber-like Prototyping Polymer

    • Название продукта: Proto3000 Objet Digital Materials™ DM_9110/9410/9210/9310 Rubber-like Prototyping Polymer
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 998819

    Как аккредитованная фабрика Proto3000 Objet Digital Materials™ DM_9110/9410/9210/9310 для прототипирования резиноподобных полимеров, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение Proto3000 Objet Digital Materials™ DM_9110/9410/9210/9310 Резиноподобного прототипного полимера
    Injection-moulded thermoplastic polyurethane (TPU) instrument panel buttons and steering wheel switch bezels are routinely subjected to 1,000-hour heat-aging cycles at 85 °C and 95% relative humidity before production tooling is finalized. Rubber-like PolyJet photopolymers of the Proto3000 Objet Digital Materials™ DM_9110/9410/9210/9310 series permit the same validation protocol to be executed on printed prototypes within 48 hours of CAD release, eliminating the 3- to 6-week soft-tooling lead time associated with vacuum-cast silicone or cast polyurethane prototype tooling. The governing property for this application is compression set measured according to ASTM D395 Method B—rubber-like digital materials in this class typically exhibit 25% to 45% permanent set after 22 hours at 70 °C, which falls within the upper reference band for automotive-grade TPU and below the threshold at which tactile feel degrades perceptibly in dual-shot moulded assemblies. Multi-material build protocols for soft-touch prototyping allocate a rigid digital material core at 60 vol% to 75 vol% of the part volume and a rubber-like DM_ outer layer at 25 vol% to 40 vol%, reproducing the tactile compliance of a production dual-shot component without tooling investment; a steering wheel bezel targeting Shore A 70 is printed with a 2 mm rubber-like skin over a 4 mm rigid substrate, corresponding to 33 vol% flexible fraction, whereas a soft-touch HVAC knob at Shore A 40 is built with a 3 mm flexible shell over a 2.5 mm rigid core, corresponding to 55 vol% rubber-like material.Downstream production validation for automotive interior prototypes follows ASTM D2000 M2GE classification for elastomeric components, with hardness verified per ASTM D2240 using a Type A durometer on specimens conditioned at 23 °C ± 2 °C and 50% ± 5% relative humidity for a minimum of 16 hours. Flammability evaluation is performed per ISO 3795, with the acceptance threshold for passenger-compartment materials set at a burn rate not exceeding 100 mm/min. The DM_9110/9410/9210/9310 series, being an acrylate-based photopolymer, does not carry the hydrocarbon fluid swell resistance of production EPDM seal materials evaluated per ASTM D471, and this limitation must be annotated in prototype correlation reports before data is extrapolated to production sealing elements. The physical production sequence begins with translation of Creo or CATIA solid models to STL format with facet deviation tolerance set at ± 0.05 mm. Printing is performed on a PolyJet material jetting platform operating at 16 μm layer height in High Quality mode, with the rubber-like photopolymer jetted at 600 dpi × 600 dpi XY resolution and UV-cured in situ with an actinic dose of 200-300 mJ/cm² in the 350-400 nm wavelength band. Support material—a gel-like photopolymer designated SUP705—is removed after printing using a high-pressure waterjet at 3,000-4,000 psi (20.7-27.6 MPa), followed by ultrasonic cleaning in a mild detergent bath at 40 °C for 30 minutes. Post-processing includes a 2-hour bake at 50-60 °C to accelerate polymerization of residual acrylate functionalities and stabilize Shore A hardness. Terminal part types produced under this sequence include HVAC control knobs, power seat switch covers, steering wheel voice-command buttons, window regulator bezels, and transmission park-release switch boots.

    How Does Tear Resistance Govern Catheter Insertion Model Longevity?

    At the prototyping stage of endovascular training device development, silicone-based renal and cardiovascular simulators are validated for tissue feel according to hardness tolerance bands established in ISO 10993-1 risk assessments, but printable rubber-like photopolymers replace silicone when multi-material hardness gradients are required within a single build volume without multi-stage casting. The DM_9110/9410/9210/9310 series provides Shore A values across the rubber-like digital material range (approximately Shore A 30 to 80, with the specific grade determined by the DM designation), which brackets the stiffness of human arterial wall (Shore A 30-45), urethral tissue (Shore A 20-30), and trabecular bone marrow analogue (Shore A 40-60). Tear resistance measured per ASTM D624 Die C is the governing mechanical property for catheter insertion trainers because repeated cannulation cycles at 5-7 French catheter diameters impose Mode I tearing on the printed vessel lumen; rubber-like photopolymer grades with tear resistance below 3.5 kg/cm exhibit visible lumen degradation after 150-200 insertion cycles, whereas grades at or above 4.5 kg/cm maintain lumen integrity beyond 500 cycles. Biocompatibility evaluation for prototype models is limited to ISO 10993-5 cytotoxicity screening—the photopolymer is suitable for ex vivo simulation but is not cleared for implantation or blood contact exceeding 24 hours.Proportional material distribution within a single surgical trainer is determined by the tissue region being simulated. A transcatheter aortic valve replacement (TAVR) model uses a rigid digital material for the aortic arch calcification at 20 vol%, an intermediate Shore A 60 grade for the annulus at 35 vol%, and a Shore A 30 grade for the ventricular wall at 45 vol%. Digital material voxel blending within the PolyJet build chamber allows this ratio to be varied continuously across the part volume without discrete layer interfaces, functionally equivalent to gradient silicone casting but with a 16 μm layer-height definition. The downstream production process begins with DICOM data segmentation in Mimics or 3D Slicer, followed by volumetric mesh generation with element size capped at 0.5 mm in anatomical regions of interest. Printing is executed at 16 μm layer height; build times for a full-size cardiac model typically range from 11 to 18 hours depending on the volumetric ratio of rubber-like to rigid material, because flexible photopolymer jetting requires lower carriage velocities than rigid resin to ensure accurate droplet coalescence before UV cure. Support removal from tortuous vascular lumens is performed using a soluble support formulation, followed by a 0.5 MPa warm-water flush and overnight drying at 23 °C. Terminal part types include TAVR deployment trainers, endoscopic polypectomy simulators, prostate biopsy phantoms, and ophthalmic scleral buckling models.

    Compression Set Thresholds in Wearable Enclosure Gasket Prototyping

    IP67 ingress protection testing on 3D-printed wearable enclosure prototypes according to IEC 60529 requires that the rubber-like gasket material retain at least 70% of its initial sealing force after a 30-minute immersion at 1 m depth. PolyJet rubber-like photopolymers of the DM_9110/9410/9210/9310 series exhibit compression set values between 15% and 30% after 22 hours at 23 °C per ASTM D395 Method A, which is adequate for short-duration immersion testing but falls short of the 5% to 10% set typical of production liquid silicone rubber (LSR) gaskets after 1,000-hour service. This operational boundary is explicitly documented in prototype validation reports to prevent misinterpretation of IP67 test results beyond the intended 30-day design verification window. For wearable devices requiring Shore A 50-70 gasket hardness, the DM_ material is printed as a continuous 1.2 mm wide × 1.5 mm high bead within a two-component enclosure wall, representing 15 vol% to 25 vol% of the total part volume; the remaining 75 vol% to 85 vol% is a rigid digital material forming the housing shell and snap-fit retention features.RoHS compliance for consumer electronics prototypes is verified per IEC 62321 for cadmium, lead, and mercury content, while flammability is assessed per UL 94 HB on 3 mm thick printed coupons; the rubber-like photopolymer meets horizontal burn classification but does not satisfy UL 94 V-0 vertical burn requirements without flame-retardant additives that are not present in the DM_9110/9410/9210/9310 formulation. The downstream production process for wearable gasket validation begins with CAD export in Parasolid or STEP format at ± 0.01 mm nominal geometry tolerance. The enclosure is printed as a multi-material assembly with the gasket bead co-printed into the sealing groove, which eliminates adhesive assembly steps and permits direct leak testing within 24 hours of print completion. Support removal uses soluble SUP705 photopolymer dissolved in a 5% sodium hydroxide solution at 30 °C for 60-90 minutes, followed by a deionized water rinse and forced-air drying at 40 °C for 30 minutes. Leak testing is performed by pressurizing the sealed enclosure to 0.7 MPa (100 psi) internal air pressure while submerged; bubble formation indicates loss of gasket interference. Terminal part types include smartwatch band segments, fitness tracker housing gaskets, wireless earbud seals, and AR headset nasal interface pads.When a footwear development team replaces compression-moulded EVA midsole prototypes with PolyJet-printed surrogates, the primary data gap is not hardness but strain-rate-dependent energy return, which is quantified according to ASTM F1614 on cylindrical specimens subjected to 10 Hz sinusoidal compression at 50% strain. Rubber-like photopolymers of the DM_9110/9410/9210/9310 series exhibit viscoelastic hysteresis loss between 35% and 55% at 10 Hz, compared with 20% to 30% for production EVA foams of density 0.20-0.25 g/cm³—this corresponds to a systematic over-prediction of energy dissipation by a factor of 1.5 to 2.0 when printed midsoles are evaluated without correction. Published data for this specific configuration is limited; footwear development teams must therefore calibrate printed prototype results against control EVA samples on the same instrument before generating comparative design rankings. The formulation ratio for footwear prototypes typically allocates 70 vol% to 80 vol% rubber-like material at Shore A 40 for the midsole core and 20 vol% to 30 vol% rigid material for the shank plate and heel counter, which suppresses hyperextension of the photopolymer lattice under heel-strike loads approaching 2.5-3.0 times body weight.Mechanical validation for printed midsole surrogates follows SATRA TM339 for sole adhesion strength, DIN 53516 for abrasion resistance, ASTM D624 for tear propagation resistance, and ASTM F1976 for dynamic fatigue response of athletic footwear cushioning. The downstream production process begins with 3D foot scan data acquired at ± 0.5 mm contour accuracy, followed by lattice structure generation using implicit surface modelling with strut diameters between 0.8 mm and 2.0 mm. Printing is performed on a PolyJet platform at 16 μm layer height in High Quality mode with the build orientation selected to place peel stresses perpendicular to the lattice node planes; build times for a running shoe midsole of US size 10 typically range from 24 to 36 hours. Support material removal uses high-pressure waterjet at 2,000-3,000 psi (13.8-20.7 MPa) followed by a 1-hour ultrasonic bath in mild alkaline solution at 35 °C to dissolve residual support film from internal lattice cavities. Terminal part types include running shoe midsole prototypes, cycling shoe insole testers, orthotic concept validation models, and partial-foot prosthetic liner phantoms.

    Bolted Flange Seal Prototyping and ASTM F36 Compressibility Recovery

    Compressibility and recovery characteristics of a gasket material under imposed bolt load determine leak-tight performance in flanged assemblies, and these properties are quantified according to ASTM F36 using a penetrator foot at 35 N preload and 350 N total load with a 60-second dwell. Rubber-like photopolymers of the DM_9110/9410/9210/9310 series typically exhibit compressibility between 7% and 17% and recovery between 50% and 65% at Shore A 60-85, which places them within the lower recovery band of production NBR and EPDM gasket sheet materials and above the minimum recovery threshold for Class 1 compressed fibre sheet under ASME B16.21. Sealability for a printed gasket installed in a raised-face flange assembly of DN25 PN16 nominal bore is evaluated per ASTM F37, with the acceptance criterion set at zero leakage at 0.7 MPa (100 psi) internal nitrogen pressure for 30 minutes at 23 °C. Printed gasket prototypes are produced from 100% rubber-like DM_ material at thicknesses from 1.5 mm to 3.0 mm, without the fabric reinforcement that production gasket sheet materials introduce at 10-15 wt% glass or para-aramid fibre loading; this absence of reinforcement must be accounted for when extrapolating printed gasket test data to production sheet material.The downstream validation process for industrial sealing prototypes begins with CAD geometry extracted from flange surface measurements using a 2D profilometer at ± 0.01 mm tolerance. Gasket outer and inner diameters are printed to match the flange sealing face dimensions with +0.3 mm compression allowance on outer diameter and -0.15 mm clearance on inner diameter relative to the pipe bore. Printing is performed at 32 μm layer height in High Speed mode for flat gasket plates to reduce build time without sacrificing Shore A uniformity; the printed gasket is then conditioned at 70 °C for 4 hours to accelerate full crosslinking of the acrylate network before compressibility testing. Bolted joint assembly uses a calibrated torque wrench applying 15-30 N·m to M8 bolts in a four-bolt pattern, with flange surface roughness of Ra 3.2 μm as specified in ASME B16.5. Terminal part types include pump suction flange gaskets, electrical junction box enclosure seals, O-ring prototypes for pneumatic cylinder end caps, and coolant system flange test coupons.
    Standard designationProperty evaluatedNumerical range observed in DM_9110/9410/9210/9310 prototypesProduction elastomer reference (NBR/EPDM)
    ASTM D2240Shore A hardness30-85 (grade-dependent)40-90
    ASTM D412Tensile strength0.8-3.0 MPa5-25 MPa
    ASTM D624Tear resistance (Die C)3.5-5.8 kg/cm15-40 kN/m
    ASTM D395Compression set (Method B, 22 h @ 70 °C)25-45%10-30%
    ASTM F36Compressibility / recovery7-17% / 50-65%7-15% / 50-70%
    ASTM F37SealabilityZero leakage at 0.7 MPaZero leakage at 0.7 MPa
    Geometrically, pneumatic soft robotic grippers demand a strain-limiting layer that restricts elongation along the actuator axis while permitting radial expansion of the bellows chambers. Printed prototypes using the DM_9110/9410/9210/9310 series achieve this property gradient by coaxial multi-material jetting: a Shore A 30 rubber-like core representing 70 vol% of the actuator body is bonded to a Shore D 75 rigid digital material wrapper at 30 vol%, with interfacial peel strength approaching 3 MPa as measured by ASTM D1002 lap shear. The process parameter that governs build success is the jetted droplet-to-droplet coalescence time, which must remain below 1.2 seconds at 23 °C to prevent surface oxidation of the acrylate oligomer film before UV cure at 300 mJ/cm². Rubber-like actuator prototypes of this series are intended for pneumatic operating pressures between 0.2 and 0.6 MPa (29-87 psi), with cycle durability under 10,000 cycles at 0.4 MPa typically exhibiting no visible chamber fatigue when the actuator is fabricated at 16 μm layer height in High Quality mode.Safety compliance for prototype soft robotic end-effectors references ISO 10218-1 for robot integrator responsibility and ISO 14539 for end-effector load capacity verification, while tensile property characterization for the printed flexible material follows ASTM D638 Type IV specimens at a strain rate of 50 mm/min. The downstream production process begins with finite element simulation of the bellows chamber under actuation pressure using hyperelastic material models fitted from uniaxial tensile data acquired per ASTM D638. Multi-material printing prioritizes build orientation such that the rigid strain-limiting wrapper is positioned on the outer surface of the bellows convolutions where circumferential strain is maximum during actuation. Support removal from the internal pneumatic channels uses soluble SUP705 photopolymer dissolved in 5% sodium hydroxide at 30 °C for 90-120 minutes, followed by pressurized air purge at 0.3 MPa (43 psi) to clear residual debris from the 2 mm internal air passages. Terminal part types include robotic gripper fingertips, vacuum suction cup adapters for bin-picking cells, pick-and-place effector pads for glass handling, and pneumatic sorting gate bellows for food packaging lines.
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    Proto3000 Objet Digital Materials™ DM_9110/9410/9210/9310 is a four-grade series of rubber-like prototyping polymers produced for PolyJet photopolymerization platforms rather than vat-polymerization or material-extrusion systems. The material set is not a single bulk resin; it is formed by jetting a flexible base photopolymer and a rigid structural photopolymer through adjacent printhead channels, with the ratio between the two controlled at the voxel level by the digital slice file. The catalogue designations DM_9110, DM_9210, DM_9310, and DM_9410 correspond to nominal Shore A hardness classes of 11, 21, 31, and 41, respectively, as measured on printed plaques according to ASTM D2240 after conditioning for 24 h at 23 °C and 50% RH per ASTM D618. The cured network is crosslinked and cannot be re-melted, but the printed part can contain adjacent zones of different durometer within a single build, eliminating secondary bonding or insert molding for many soft-feature prototypes.

    At the printhead, the system operates with standard layer thickness options of 16 µm or 30 µm, depending on build mode. The finer layer setting is preferred for sealing surfaces and low-durometer membranes where surface regularity influences closure force, while the 30 µm setting reduces build time for large, thick, or internally supported geometries. The materials are supplied in sealed cartridges and are not pre-dried before installation on Objet Connex or Eden platforms. Because the Shore A value is produced by the digital material ratio, a single print job can contain a 11 A deformable bellows region and a 41 A snap-fit retention feature. The process therefore differs from conventional cast urethane molding, where each durometer would require a separate liquid system, tool cavity, and demolding step.

    Grade designation Nominal Shore A Layer thickness options Typical build application
    DM_9110 11 16 µm, 30 µm Very soft gaskets, cushioning sleeves, low-force seals
    DM_9210 21 16 µm, 30 µm Flexible covers, soft-touch overlays, conformal strain-relief parts
    DM_9310 31 16 µm, 30 µm Overmolding trials, vibration isolators, moderate-recovery hinges
    DM_9410 41 16 µm, 30 µm Snap-fit seals, grommets, ergonomic grip surfaces with higher abrasion resistance

    Mechanical response within the series is nonlinear with respect to Shore A. The 11 A grade exhibits a pronounced low-modulus toe region under tensile loading, while the 41 A grade develops a steeper initial modulus and lower elongation at break. Tensile characterization should be performed on Type IV specimens at 50 mm/min crosshead speed according to ASTM D638-14; tear resistance is measured with die C specimens per ASTM D624; compression set is evaluated under 25% deflection for 22 h at 23 °C per ASTM D395-16e1. Because the stress-strain behavior is highly nonlinear, Young’s modulus is not the preferred design input; secant modulus at 100% strain is more informative for functional low-durometer parts.

    How does the DM series compare with TangoPlus, Agilus30, and cast rubber formulations?

    Published mechanical data for the exact DM_9110/9410/9210/9310 configuration are limited, and grade-specific certificates should be requested before production-level tolerance or load-bearing qualification is attempted. The material class follows a known digital-material trend. Single-component TangoPlus FLX930 has a nominal Shore A of 27, tensile strength of 2.4 MPa, and elongation at break of 45% under ASTM D638-14. The DM_9110 and DM_9210 grades are softer than TangoPlus, with lower tensile strength and higher elongation; DM_9310 and DM_9410 are harder and exhibit lower elongation with higher tensile strength. Unlike TangoPlus, which is jetted as one resin, the DM grades are composite networks with rigid domains dispersed in a rubbery continuous phase. The Shore A range can therefore be shifted by changing the digital material ratio rather than by reformulating a new cartridge set.

    Compared with Agilus30, a later single-component PolyJet rubber-like material with elongation at break above 200%, the DM_9110 through DM_9410 series occupies a lower-elongation, application-specific prototyping position. It should not be selected for high-strain fatigue testing where large cyclic deformation above 100% is required. Compared with FDM thermoplastic polyurethane, the DM parts are relatively isotropic within the build surface, but their tensile properties are sensitive to moisture and operating temperature. Unlike melt-processed thermoplastic elastomers, the DM grades cannot be re-melted or thermally welded; repair operations are limited to adhesive bonding, geometric patching, or replacement of the affected build region.

    In comparison with two-component vacuum-cast urethane elastomers, the DM grades eliminate the silicone tooling and demolding time associated with cast rubber prototypes. However, the photopolymer network does not reproduce the high ultimate elongation or tear propagation character of a 40 A cast RTV. Free-radical photopolymerization can leave a small residual monomer fraction that may plasticize the matrix during the first 72 h; Shore A values should therefore be recorded on day 7 after printing rather than immediately after support removal. This behavior differs from polyurethane rubbers that reach stable properties shortly after a room-temperature cure cycle.

    When the DM grades replace machined or molded elastomer prototypes

    Several downstream prototyping routes can be collapsed into a single PolyJet build when the DM_9110/9410/9210/9310 series is used. In electronic enclosure development, a 31 A gasket can be printed directly into a rigid housing, then compressed to a controlled closure force. The compression set should be evaluated at the likely operating temperature, not only at 23 °C, because creep accelerates as temperature increases. In wearable device prototypes, the 11 A and 21 A grades are used for straps, cushions, and pads that must survive repeated bending at 1.5–2.0 mm thickness. Unsupported bosses below 0.3 mm in height may show springback errors on the tray, and trapped support material in blind recesses must be avoided by adding drain apertures.

    For sealing trials, a 41 A durometer ring can be printed with a minimum wall thickness of 0.5 mm and a minimum groove depth of 0.8 mm to allow support removal without tearing. The digital-material process eliminates RTV mold construction, but the cured photopolymer surface is not chemically identical to compression-molded EPDM or tin-cure silicone. Fuel and solvent compatibility data for the DM_9110/9410/9210/9310 series are not fully published across all industrial fluids. Laboratory immersion testing under ASTM D471 is required before replacing elastomer seals in fuel-contact, brake-fluid, or aggressive polar solvent applications.

    Fluidic prototypes can be produced from the 11 A grade when the design permits accessible support-clearing channels. Internal channels below 1.0 mm in diameter are difficult to clear of support material and may show pressure loss or partial occlusion if printed at 16 µm layer thickness. Pressure testing of soft DM_9110 reservoirs should begin below 0.5 bar unless a burst test is performed, because low-durometer walls can creep and separate along the Z-axis layer interface. The same limitation does not apply uniformly to the 41 A grade, which can often tolerate higher short-term internal pressure, but pressure retention should be qualified in the final print orientation rather than assumed from flat plaque data.

    Post-processing of DM_9110/9410/9210/9310 parts follows conventional Objet support-removal practice. Parts are transferred from the build tray to an aqueous support removal station, where the support material is dislodged by pressurized water. For delicate 11 A geometries, water pressure in the range of 4–6 bar is common, while thicker 41 A sections can tolerate up to 10 bar. High-pressure streams held closer than 25 mm can erode thin walls, and printed supports should be removed from the most rigid area toward the most flexible area. Hand finishing with 600-grit wet abrasive is used on sealing surfaces, followed by a 24 h open-air rest to permit short-dimension moisture equilibrium before dimensional inspection.

    For dimensional stability, the DM grades shrink during photopolymerization by a linear value that is compensated in software but may vary between 0.1% and 0.3% depending on part thickness and orientation. Validation with a reference coupon and coordinate-measuring machine or calibrated optical system is recommended. Thick sections above 10 mm may retain heat from the UV curing reaction; parts should be removed from the tray only after cooling to 25 °C. Continuous service above 45 °C under load is not recommended for the softer grades because static creep rate increases with operating temperature. Long-term UV exposure can also shift color and hardness, particularly in thin-wall sections.

    Because the DM grades are produced by layered photopolymerization, build orientation has a measurable effect on tear strength and peel resistance. ASTM D624 trouser-tear specimens printed with the notch parallel to the Z-axis typically show lower tear propagation resistance than specimens printed in the X-Y plane. This is a consequence of interlayer diffusion and the finite cure at the interface. The effect is smaller than that observed in FDM elastomer parts but is not negligible for sealing applications. For DM_9410, both X-Y and Z-axis values should be reported when qualifying a part for production-intent seals. Published orientation-specific data for the DM_9110/9410/9210/9310 series are limited; an internal gage repeatability study is the accepted practice for critical dimensions.

    Evaluation domain Standard or method Required action
    Hardness ASTM D2240 Measure on 6 mm plaque, 5 reading average
    Tensile properties ASTM D638-14 Type IV die, 50 mm/min crosshead
    Tear resistance ASTM D624 Die C, 500 mm/min
    Compression set ASTM D395-16e1 25% compression, 22 h at 23 °C
    Dimensional stability ISO 286-1 Linear tolerance validation on reference coupon
    Chemical resistance ASTM D471 Immersion in target fluid, property retention

    The shift from 11 A to 41 A within the DM series is not achieved by adding a liquid plasticizer after cure. It is obtained by changing the volume fraction of glassy photopolymer domains that co-cure with the flexible acrylate segments. The resulting Shore A values are therefore not a simple linear function of the rigid-resin volume fraction. At the 41 A end of the range, the tensile curve develops a higher initial slope and lower elongation at break, while the 11 A grade retains a broader low-modulus toe region. In dynamic mechanical terms, the viscoelastic loss factor across the series is frequency-dependent; published frequency sweep data from 1 Hz to 10 Hz for the specific DM_9110/9410/9210/9310 grades are limited. Damping or anti-vibration applications should be based on measured dynamic mechanical analysis rather than Shore A alone.

    Field experience on production-scale Objet Connex platforms indicates that the main processing bottleneck for lower-durometer DM grades is not print speed but support removal. Parts with Shore A values below 30 are prone to local tearing at the interface between the soft rubber and the support material when water-jet pressure exceeds approximately 6 bar, particularly in thin flanges or ribs. This failure mode can be misclassified as an orientation or file issue. Support removal time for complex soft parts is commonly two to three times longer than for equivalent-volume rigid Vero parts. For this reason, any process cost estimate should include support-removal labor and reprint risk for fragile 11 A and 21 A structures.

    Thermal expansion in the DM grades is higher than in rigid PolyJet materials and may be anisotropic through the build direction. Coefficient of linear thermal expansion values for rubber-like digital materials are commonly reported in the range of 100–150 µm/m·K for the X-Y plane and can be higher through the Z-axis; however, published data for this specific configuration are limited. Assemblies combining DM soft regions with rigid PolyJet frames may warp when tested from -10 °C to 50 °C. Conditioning at the intended operating temperature before dimensional verification is therefore mandatory, particularly for snap-fit or lip-seal interfaces where a few hundred micrometers of differential movement can alter closure force.

    Regulatory data for the DM_9110/9410/9210/9310 series should be obtained from current safety data sheets and supplier regulatory bulletins. Liquid photopolymers are classified as irritants and require nitrile gloves, protective eyewear, and local exhaust ventilation during handling. Cured parts should be washed and conditioned before skin-contact evaluation. REACH Regulation EC 1907/2006 and RoHS Directive 2011/65/EU status should be confirmed per batch because additive chemistry can vary by material family. No claim of biocompatibility under ISO 10993 or food-contact compliance under EC 10/2011 should be assumed unless the supplier issues a positive declaration for the exact grade and post-processing route. If prototypes are used in dermal-contact wearable studies, extraction testing per ISO 10993-5 and ISO 10993-10 is advised, because photopolymer leachables are a known source of false cytotoxic responses in some cell-culture assays.

    Compared with vat-photopolymer elastomer resins, the DM series is distinguished by multi-material jetting capability rather than a single bulk reactivity. Most vat-polymerization elastomers are supplied as one formulation with one Shore A, and changing durometer requires swapping resin tanks and recalibrating the machine. The DM grades can mix flexible and rigid resins in different ratios within the same build, producing continuous durometer gradients or discrete soft-hard interfaces not available with single-resin vat products. Compared with later PolyJet single-material grades such as Agilus30, the DM_9110 through DM_9410 series is positioned for hardness-controlled fits and seals rather than high-strain elastic recovery. Users selecting between the materials should request supplier tensile and tear data for the exact grade, layer thickness, and build orientation intended for the functional prototype.

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