| Код ТН ВЭД | 951374 |
Как аккредитованный завод DSM Somos Element Stereolithography Polymer, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | DSM Somos Element Stereolithography Polymer is supplied in 1 kg opaque plastic bottles with secure caps and compliant hazard labeling. |
| Погрузка контейнера (20-футовый контейнер) | DSM Somos Element Stereolithography Polymer loaded in a 20′ FCL container, palletized, secured, labeled, and shipped per chemical transport regulations. |
| Доставка | DSM Somos Element Stereolithography Polymer is typically non-regulated for transport under DOT, IATA, IMDG, and ADR. No UN number, hazard class, or packing group is assigned when not regulated. Ship in original, sealed, labeled containers, upright, protected from light, heat, and freezing. Confirm current SDS before shipment. |
| Хранение | Store DSM Somos Element Stereolithography Polymer in a cool, dry, well-ventilated area away from direct sunlight, UV light, heat, sparks, and flames. Keep containers tightly closed, upright, and labeled in original packaging. Maintain 15–25°C; avoid freezing or overheating. Keep away from strong oxidizers, food, and drink. Use secondary containment. Follow SDS and local regulations. |
| Срок годности | Typical shelf life is 12 months from manufacture when stored unopened at 20–25°C, away from light, heat, and moisture. |
In vacuum casting workstreams, master patterns produced from DSM Somos Element stereolithography polymer are processed on 355 nm Nd:YVO₄ solid-state laser platforms at a nominal layer thickness of 0.100 mm. The resin’s low viscosity, specified by the manufacturer at approximately 250 mPa·s at 30 °C, permits efficient recoating and drainage from thin-walled master geometries. A critical process constraint arises when the SL master is used to cure platinum-catalyzed addition-cure RTV silicone. Residual photoinitiator on the surface can inhibit crosslinking, producing tacky silicone cavity surfaces. To prevent this, the master is post-cured at 60 °C for 120 min, cleaned in two successive baths of 99.9% isopropanol, and sealed with a water-based acrylic barrier lacquer. Alternatively, tin-catalyzed condensation-cure silicone mixed at 100:5 by weight base to catalyst is used. After silicone vulcanization at 40 °C for 16–24 h, the master is removed and the cavity is cast with two-component polyurethane resin at a 1:1 A:B weight ratio. Finished terminal products include instrument panel bezel prototypes, gear shifter knob cores, HVAC control knobs, and elastomeric overmolded grips. Dimensional verification follows ISO 1101 GPS tolerances, with build orientation compensation applied to the master CAD model. The master pattern is typically built at 30° from vertical to reduce stair-stepping on shallow draft surfaces and to improve silicone-side release.
Expendable patterns printed from Somos Element are used in ceramic shell investment casting for low-volume ferrous and non-ferrous components. The primary process risk is shell cracking caused by thermal expansion of the polymer during the flash-fire stage. Pattern density and wall thickness determine the expansion strain transmitted to the green ceramic shell. Patterns are built hollow with internal drain holes at a minimum diameter of 2.0 mm to allow uncured resin evacuation before post-cure. The shell is prepared by alternate dipping in a slurry formulated at 2.5:1 by weight refractory flour (200 mesh fused silica) to colloidal silica binder (30% solids) and stuccoing with 50/100 mesh alumina. A wetting agent at 0.1 wt% of slurry mass is added to improve pattern wetting on upward-facing surfaces. Burnout is performed in stages: 60 min at 150 °C, 60 min at 300 °C, 120 min at 600 °C, and final firing at 900 °C for 120 min. Published data for residual ash of this specific stereolithography polymer is limited; foundries should qualify each build lot with a ceramic shell test coupon per ASTM C865. Terminal products include 17-4 PH stainless steel impellers, aluminum alloy housings, and cobalt-chrome joint replacements in prototype quantities. Dimensional compensation is derived from linear shrinkage measured on sacrificial test bars per ISO 8062-3. Foundries using this material for vacuum-assisted investment casting of thin-section aluminum have reported that pattern surface roughness below Ra 2.5 µm reduces shell inclusion defects, but published quantitative defect-rate data for this resin is limited.
On automotive interior fit trials, the polypropylene-like elongation of Somos Element is used for snap-fit latch and clip geometries before steel tool cutting. Test specimens printed with the same build orientation are conditioned at 23 °C and 50% relative humidity for 40 h per ASTM D618. Notched Izod impact values determined per ASTM D256 and flexural modulus per ISO 178 are compared against polypropylene homopolymer datasheets before functional snap-in tests. Paint adhesion is assessed after surface preparation with 320-grit abrasive, a one-component plastic primer at 5–10 µm dry film thickness, and a two-component polyurethane topcoat mixed at 4:1 by volume. The terminal components include HVAC vent bezels, door pull cup surrounds, IP storage bin lids, and wiring harness clips. In situ fit verification is conducted on production interior bucks with mating parts at 23 ± 2 °C. For parts exposed to solar load, coating systems are tested per ISO 4892-2 cycle 1 with a 300 h xenon arc exposure. Published data for the uncoated resin’s UV stability is limited; yellowing index should be monitored per ASTM E313 after outdoor exposure. Build orientation is set at 30° from vertical to minimize visible layer steps on Class A surfaces, and critical snap features are oriented away from the recoater blade path to avoid edge rounding.
Medical device development teams use this stereolithography polymer for housing prototypes, surgical training models, and instrument mock-ups. The uncured resin is classified as a skin and eye irritant; handling requires nitrile gloves, safety glasses, and local exhaust ventilation during build cleanout. Cleaning is performed in two successive 5-minute ultrasonic baths of 99.9% isopropanol, followed by forced-air drying at 40 °C. Post-cure is carried out at 60 °C for 120 min with continuous UV exposure in the 300–400 nm range. Because the cured photopolymer is not a certified implantable or long-term patient-contact material, ISO 10993-5 cytotoxicity testing is performed only as a material screening step. Fluid pathway components are not produced from this resin. For benchtop surgical trainers, tissue-contacting surfaces are coated with a two-component polyurethane film mixed at 2:1 by volume. Terminal products include MRI coil housings, endoscope handle mock-ups, laparoscopic training box inserts, and pulse oximeter shell prototypes. Biocompatibility evaluation of the finished device is performed per ISO 10993-1 and ISO 14971 risk management files. Cleaning residues are monitored by high-performance liquid chromatography because residual isopropanol extractables can confound cytotoxicity test results.
| Application segment | Standard | Test method or condition | Engineering note |
|---|---|---|---|
| Vacuum casting master dimensional accuracy | ISO 1101 GPS | 23 ± 2 °C | Geometric tolerancing is not material-specific |
| Investment casting shell strength | ASTM C865 | Green shell bar | Each foundry slurry must be qualified |
| Automotive impact resistance | ASTM D256 | 23 °C, 50% RH after ASTM D618 | Notched Izod specimens in build orientation |
| Medical cytotoxicity screening | ISO 10993-5 | Extract dilution | Screening only; finished device validation required |
| EMI shielding effectiveness | IEEE 299 | 30 MHz–1 GHz | Coating performance, not an inherent resin property |
| Moisture absorption | ISO 62 | 24 h immersion, 23 °C | Dimensional change varies by build geometry |
| Heat deflection under load | ASTM D648 | 0.46 MPa | Upper limit for continuous fixture load |
For launch-critical consumer enclosure prototypes, drop testing is performed before high-volume tooling release. Build orientation is set at 30° from the vertical to minimize stair-stepping on thin-wall bosses and snap-fit tapers. Layer thickness is 0.100 mm. Holes for threaded inserts are designed with a 0.050 mm diametral interference, and brass inserts are installed with a controlled-temperature soldering iron at 180 °C. The terminal parts include phone case mock-ups, remote control housings, wearable device shells, and earbud charging case lids. EMI shielding is not inherent to the resin; when shielding is required, the prototype is coated with a two-part copper-nickel conductive paint mixed at 1:1 by weight and tested per IEEE 299 for shielding effectiveness. Impact resistance is evaluated by conditioning specimens per ASTM D618 and testing per ASTM D256. Dimensional stability after 24 h water immersion is evaluated per ISO 62; published data for this specific polymer is limited, so build lots are validated internally. Thin-wall sections below 0.8 mm printed without support can deflect during recoating, which produces visible banding on cosmetic surfaces.
Assembly fixtures and robotic gripper jaws produced from this resin are used for short-run positioning, drilling, and ultrasonic welding nests. The cured polymer absorbs atmospheric moisture at a rate that must be characterized for each facility. Dimensional change after 7 days at 23 °C and 85% relative humidity is quantified per ISO 62. Fixtures that require stable hole-to-hole distances are post-cured at 60 °C for 240 min and sealed with a two-part epoxy barrier coat mixed at 1:1 by volume. The barrier coat is applied at 50–75 µm dry film thickness. Threaded steel inserts are installed with a cyanoacrylate adhesive at a gap fill of 0.10 mm, cured for 24 h at 23 °C. End-of-arm gripper jaws are machined from printed blanks and checked for dimensional accuracy per ISO 1101. Terminal products include ultrasonic welding nests, conformal pallet nests, multi-cavity leak test fixtures, and drill jig plates. The operational temperature limit is below the heat deflection temperature determined per ASTM D648 at 0.46 MPa; above this limit, creep under load becomes the dominant failure mode. Published data for long-term creep of this specific material is limited, so static load tests are recommended for fixtures exposed to continuous clamp forces exceeding 48 h.
For RTV silicone overmolding and gasket prototyping, condensation-cure systems are used to avoid platinum inhibition on the SL substrate. The substrate is printed at 0.100 mm layers, cleaned, post-cured, and sealed with a water-based acrylic barrier coat. Silicone is mixed at 100:5 by weight base to tin catalyst and degassed under vacuum at −0.9 bar for 3 min. The mixture is poured into a cavity or applied as a conformal gasket bead with a pneumatic dispense ratio of 10:1 by volume. Cure is performed at 25 °C for 24 h. Adhesion to the polymer is mechanical; a surface roughness of Ra 2.5–5.0 µm produced by vapor honing or 320-grit sanding improves peel strength. Terminal products include bezel compression gaskets, dust covers, keypad membranes, and vibration damping pads. Peel adhesion is evaluated per ASTM D903, with values dependent on surface preparation. Published data for cohesive failure percentage on Somos Element substrates is limited and should be confirmed with a design-of-experiments matrix. If a platinum-catalyzed silicone is mandated by the downstream specification, the substrate must be fully sealed with a high-solids acrylic barrier and pre-baked at 60 °C for 4 h to drive residual volatile inhibitors out of the surface layer.
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DSM Somos Element is a low-viscosity liquid photopolymer specified for vat photopolymerization on 355 nm stereolithography systems. The material is supplied as an opaque white hybrid epoxy/acrylate resin and is currently distributed under the Covestro Additive Manufacturing portfolio following the 2021 transfer of DSM’s resin and functional materials business. The resin is used where the cured part is a sacrificial pattern for investment casting or where low liquid viscosity is required for high-speed recoating. It is processed on platforms such as the 3D Systems Viper si2 and ProX 800 at layer thicknesses from 50 µm to 150 µm. Liquid viscosity at 30°C is approximately 250 cP, and cured density is approximately 1.13 g/cm3. Table 1 lists representative cured mechanical ranges according to ASTM and ISO methods.
| Property | Test method | Representative range |
|---|---|---|
| Tensile strength | ASTM D638-14 | 40–50 MPa |
| Tensile modulus | ASTM D638-14 | 2.0–3.0 GPa |
| Elongation at break | ASTM D638-14 | 5–10% |
| Flexural strength | ASTM D790-17 | 65–80 MPa |
| Flexural modulus | ASTM D790-17 | 2.0–2.8 GPa |
| Heat deflection temperature at 0.46 MPa | ASTM D648-18 | 48–60°C |
| Heat deflection temperature at 1.82 MPa | ASTM D648-18 | 45–55°C |
| Notched Izod impact | ASTM D256-10e1 | 15–25 J/m |
| Shore D hardness | ASTM D2240-15 | 82–86 |
| Liquid viscosity at 30°C | rotational viscometer | 200–300 cP |
| Cured density | ISO 1183-1:2019 | 1.12–1.14 g/cm3 |
Values reflect conditioned post-cured coupons at 23 ± 2°C and 50 ± 5% relative humidity. Lot-specific values differ by laser system, build orientation, and post-cure protocol. The manufacturer’s controlled datasheet values should be used for design allowables rather than midpoint values from these ranges. Differences between vertical and horizontal build orientations can shift flexural modulus more than tensile modulus because interlayer crosslink density gradients are not isotropic; vertically built coupons tend to fail at lower elongation when loaded in the Z direction. A cured density of 1.12–1.14 g/cm3 is typical, but filler or pigment settling in long-idle vats can produce density gradients in large parts.
On production stereolithography lines, viscosity at 30°C reduces recoat blade drag and permits shorter recoat intervals at 100 µm layer thickness. The 3D Systems Viper si2 with a 250 × 250 × 250 mm build envelope and a 355 nm solid-state laser is a common benchmark system; the ProX 800 with a 650 × 750 × 550 mm build envelope and dual 355 nm lasers is used for larger patterns. If the resin bath falls below 24°C, viscosity increases and may produce incomplete leveling, visible layer lines, and local delamination. The recommended build temperature is 25–30°C; resin temperature should be checked with an immersed thermocouple at build start and after idle periods longer than 60 min. A 100 µm build style with a laser power of 250–500 mW typically requires critical exposure of 10–14 mJ/cm² and hatch spacing of 0.10–0.15 mm. These parameters must be verified against the equipment manufacturer’s build style because beam diameter, scan speed, and resin age shift the working curve. Dimensional compensation for isotropic post-cure shrinkage is typically 0.2–0.8%, with higher values applied to thick sections and high post-cure doses.
Green parts are rinsed in two successive baths of isopropanol or tripropylene glycol monomethyl ether. First-bath agitation should not exceed 5 min to limit surface etch. Compressed air at 1 bar removes solvent from blind recesses. Post-cure in a UVA chamber with a dose of 30–40 J/cm² is typical. Uncontrolled thermal post-cure above 60°C can cause surface oxidation and reduce elongation at break.
The working curve for Somos Element follows the semi-log relationship between cure depth and exposure. At 355 nm, the penetration depth Dp is approximately 0.10–0.13 mm and the critical exposure Ec is approximately 6–10 mJ/cm². These values vary with resin age and photoinitiator concentration. Operators should regenerate the working curve after each 10% resin addition or after 30 days of vat residence time. Cure depth below 0.1 mm at nominal exposure indicates photoinitiator depletion or contamination; cure depth above 0.2 mm at the same exposure indicates overcure that will close small slots and holes.
The 200–300 cP viscosity at 30°C is lower than many high-modulus stereolithography resins, which often exceed 500 cP at the same temperature. This difference reduces the time required for the recoat blade to produce a level resin film, particularly over large cross-sections. Because recoating is frequently the rate-limiting step in vat photopolymerization, lower viscosity supports faster cycle times on platforms with gravity-fed recoaters. However, low viscosity also reduces hydrostatic resistance to part movement; large thin-walled sections may require anchor supports with a minimum contact diameter of 0.8 mm to prevent drift during build. Viscosity should be monitored with a rotational viscometer after resin additions; values above 350 cP at 30°C indicate aging, humidity uptake, or contamination with partially cured material.
Recoat efficiency can be benchmarked by measuring the time required to achieve a film thickness variation below 5 µm across a 200 mm span. On gravity-fed recoaters, blade gap is set between 0.10 mm and 0.20 mm; smaller gaps improve surface smoothness but increase shear and may overheat the resin. For high-speed builds, a blade speed of 100–200 mm/s is common with this viscosity class. Operators should log recoat time, blade speed, and resin temperature to detect drift before layer thickness errors occur.
Build orientation determines tensile and flexural property anisotropy. In vertical builds, interlayer planes are loaded in normal tension, and tensile strength may fall 5–10% below horizontally built coupons. Horizontal builds maximize tensile properties but increase surface stair-step on shallow slopes. Draft angles of 1° to 2° reduce visible layer lines on vertical walls. Shrinkage compensation is typically applied as 0.4% in X/Y and 0.6% in Z for 100 µm layers, but values should be derived from a calibration grid on the specific machine. A calibration plate with 50 mm, 100 mm, and 150 mm gauge blocks built in the same orientation as production parts provides the scaling factors. Dimensional deviation on a calibrated ProX 800 with 100 µm layers is generally within ±0.1 mm over a 100 mm span when the resin is maintained at 30°C and post-cure dose is held constant.
In investment casting pattern production, the cured polymer is used for disposable patterns that must be removed from a ceramic shell without cracking the shell or leaving conductive ash. Somos Element is specified in these workflows because the resin decomposes at a controlled rate during flash-fire and burnout cycles. A typical burnout profile for a 6 mm thick pattern includes a ramp of 1–2°C/min from ambient to 250°C, a hold at 250°C for 60 min, then a ramp to 700–900°C at 2–3°C/min. The shell is held at peak temperature for 120 min. Supplier literature reports residual ash after full burnout below 0.01% by mass of the original pattern, reducing the risk of inclusion defects in nickel-based and titanium casting alloys. If shell cracking occurs, the cause is usually trapped expansion from thermal gradients rather than incomplete polymer removal; reducing the ramp rate below 1.5°C/min or increasing shell permeability often resolves the failure on production lines.
The selection decision should prioritize residual ash and thermal expansion over tensile properties when the part is a sacrificial pattern. The coefficient of linear thermal expansion for cured Somos Element is approximately 90–110 × 10-6 K-1 below the glass transition, but thermal removal is dominated by chain scission and depolymerization rather than char formation. This behavior differs from filled stereolithography resins, which may contain silica or ceramic fillers that remain as solid residues and can damage ceramic shells. For high-volume foundry operations, the polymer should be validated against the specific shell chemistry and alloy pour temperature. Published data for specific shell chemistries is limited; a first-article burnout trial is required before production release. Residual ash should be measured by thermogravimetric analysis under air at 900°C after a 2°C/min ramp.
Somos Element occupies a narrow performance band: it is not an optical clarity resin, a high-impact thermoplastic analogue, or a ceramic-filled high-temperature resin. Compared with Somos WaterShed XC 11122, Element cures with lower optical transmittance and is typically selected for sacrificial patterns where clarity is irrelevant and ash content is controlling. Compared with Somos NeXt, Element has a lower notched Izod range and is less suited to snap-fit prototypes requiring impact resistance. Compared with Somos PerFORM, Element has significantly lower heat deflection temperature and flexural modulus, but it does not contain the high filler loading that complicates burnout and solvent rinsing. Somos Taurus offers higher impact toughness but may require higher laser exposure and longer recoat times. Element is therefore process-driven: it is selected for low viscosity, low-ash burnout, and dimensional stability in investment casting patterns rather than for end-use mechanical durability.
Batch-to-batch variance should be monitored by measuring viscosity at 30°C, density, and a cured tensile coupon from each lot. Viscosity outside the 200–300 cP band should arrest the lot for disposition. Cured tensile modulus below 2.0 GPa on vertically built coupons may indicate incomplete post-cure or moisture contamination. Fourier-transform infrared spectroscopy can monitor the disappearance of the acrylate double-bond peak at 810 cm-1 and the epoxide band at 915 cm-1 to verify conversion. Lot-to-lot glass transition temperature should remain within ±3°C of the reference lot.
Operational boundaries include sensitivity to moisture in the resin bath. At relative humidity above 60%, the uncured resin can absorb atmospheric water, shifting viscosity and producing microvoids during laser cure. The resin should be stored at 15–30°C in sealed opaque containers, and the vat should be covered during idle periods. The material is incompatible with strong acids, strong bases, and amine-based additives; contact with amine-bearing solvents can initiate premature crosslinking or generate exothermic conditions. Uncured material is classified as a skin and eye irritant under CLP Regulation (EC) No 1272/2008; handling requires nitrile gloves, safety glasses, and local exhaust ventilation. Compliance documentation should be requested for REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU if the finished part enters electrical or electronic equipment. Fully polymerized parts are typically considered non-hazardous solid waste, but uncured resin must not enter municipal waste streams.