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DSM Somos Taurus Stereolithography (SLA) Polymer, UV + Thermal Postcure

    • Название продукта: DSM Somos Taurus Stereolithography (SLA) Polymer, UV + Thermal Postcure
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Код ТН ВЭД 266220

    Как аккредитованный DSM Somos Taurus Stereolithography (SLA) Polymer, UV + Thermal Postcure завод, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение DSM Somos Taurus Stereolithography (SLA) Полимер, УФ + Термическое Посттечение

    Underhood Electrical Connector Housings Exposed to 105°C Oil Vapour and Thermal Cycling

    When the application calls for connector housings and wire harness clips that must survive prototype thermal-shock screening based on ISO 16750-4:2010, with a lower dwell of -40°C and upper dwell of 105°C, Somos Taurus is processed as a single-component 100% solids vat-polymerised resin without solvent or reactive diluent addition. The replenishment ratio in a production-scale vat is held at 20% of remaining tank volume per refill event, with aged-resin carryover conventionally limited to 30%; above that threshold, the recoat blade drag force rises and z-axis overbuild on latch geometries becomes measurable. The build is performed on 355 nm solid-state laser stereolithography platforms using 0.100 mm layer thickness, with connector latch features oriented 25°–35° from the platform plane to avoid interlayer shear failure. Green parts are solvent-cleaned in tripropylene glycol monomethyl ether, UV-postcured with a source output between 320 nm and 420 nm for 60 min, then thermally postcured at 80°C for 2 h; the thermal postcure is mandatory because the cationic epoxy/oxetane cure sequence continues after UV exposure and unpostcured parts may show continued dimension drift in X–Y until secondary conversion is complete. Material data generated per ASTM D648 gives 72°C at 1.82 MPa and 95°C at 0.46 MPa, while flexural strength is 74 MPa per ASTM D790. Because the supplier datasheet does not state a UL 94 rating, direct exposure to open flame or sustained electrical arc is outside the operational boundary. Terminal finished product types include engine harness connector shell validation parts, relay bracket prototypes, fuse box cover form-fit test articles, and wire harness clip master patterns for silicone tooling.

    In low-speed wind tunnel test campaigns where inlet throat liners and antenna fairing models are machined from cast aluminium, lead time and rework on thin leading edges frequently exceed programme schedule. Somos Taurus replaces that workflow as a 100% solids dual-cure resin in vat photopolymerisation cells when the order demands ±0.15 mm dimensional tolerance across a 600 mm chord and surface roughness no greater than Ra 1.2 µm after bead blasting. For large-format builds occupying more than 70% tank volume, fresh resin is added at 15% vat volume per unattended overnight run; this replenishment ratio maintains the recoat wiper within its specified peeling force window and avoids skip marks on low-angle fairing surfaces. The process chain uses 355 nm stereolithography at 0.100 mm layer thickness, supports with 0.8 mm rounded contact points to reduce witness marks, isopropanol or approved solvent rinse, 60 min UV postcure at 320–420 nm, and thermal postcure at 80°C for 2 h with a 0.5°C/min ramp. The tensile modulus of 2400 MPa per ASTM D638-14 and notched Izod impact of 37 J/m per ASTM D256 support test articles that must survive workshop vibration and handler drop; the documented 95°C HDT at 0.46 MPa prevents distortion under high-intensity test-section lighting. Compliance is controlled as non-flight hardware under AS9100D; the material is not supplied with FAR 25.853 flammability qualification, so any use in certified aircraft interiors requires separate test data. Terminal finished product types include inlet duct liners, flap track fairing wind tunnel mock-ups, antenna radome test shapes, missile forebody surface pressure models, and flow-visualisation endplates.

    Why Are Robotic End-Effector Jaws Built from a 95°C HDT Photopolymer Instead of Standard ABS-Like SLA?

    The relevant failure mechanism in injection mould unloading gripper jaws is creep relaxation on contact surfaces that engage freshly demoulded PBT carriers at 70–90°C. Standard ABS-like SLA grades soften at 0.46 MPa below 65°C, producing tooth depression within a few hundred cycles; Somos Taurus has 95°C HDT at 0.46 MPa and flexural strength of 74 MPa per ASTM D790, shifting the failure mode from bulk creep to abrasive tooth-tip wear in lab trials. The resin is charged as a 100% solids reactive system; no fumed silica, fibre, or wetting agent is mixed at the downstream production stage. Vat operators replenish fresh resin at 10–15% vat volume when tank level falls below the recoat safe mark, and the accumulated aged fraction is monitored by recoat force and bath viscosity and kept under 30% to prevent z-axis overgrowth in locating pockets. Production processing for a gripper jaw starts with 0.100 mm slicing and 355 nm solid-state laser exposure; tooth rows are positioned to avoid being parallel to the recoat direction, and steel threaded inserts are installed after 60 min UV postcure and 2 h thermal postcure at 80°C. Compliance for integration falls under EU Machinery Directive 2006/42/EC at the end-user level; material test data is generated per ASTM D648 and ASTM D256, while REACH screening follows 1907/2006/EC. Silicone overmolding adhesion requires plasma or primer treatment because cured Taurus surfaces are not inherently bondable. Terminal finished product types include injection mould unloading jaws, pick-and-place nest plates, robotic gripper finger blanks, positioning fixtures for automotive headlamp assembly, and palletising end-effector adapters.

    Direct-current fast-charge validation racks frequently need busbar holders that remain dimensionally stable during 85°C ambient soak and 500 thermal cycles. In low-volume jigs, Somos Taurus is processed at 100% solids as a substitute for machined PBT, with the design constraint that load-bearing features stay below 1.82 MPa stress; under that condition the 72°C HDT at 1.82 MPa and 2400 MPa tensile modulus per ASTM D638-14 are used as acceptance inputs. The replenishment ratio in an automated cell is set at 20% vat volume when the level sensor measures a 10% drop, producing a 4:1 fresh-to-aged resin ratio and holding viscosity within the recoater’s operating envelope. Build preparation uses 0.100 mm layers and positions busbar channel sidewalls at a nonzero angle to the recoater direction; after the 355 nm laser exposure, parts receive 60 min UV postcure between 320 nm and 420 nm and a 2 h thermal postcure at 80°C. Compliance documentation is maintained under ISO 9001:2015 batch traceability, and creepage/clearance checks are performed on printed fixtures using IEC 60664-1; however, the supplier datasheet does not list a comparative tracking index, so end-use insulation coordination must be verified by the integrator. Terminal finished product types include busbar test fixtures, connector mating plates, continuity test sockets, HIL harness mounting plates, and power electronics cover alignment gauges. Continuous exposure to cell electrolyte or direct live spark gaps is outside the tested boundary.

    When 95°C HDT at 0.46 MPa Replaces Cast Aluminium in Motorsport Air/Oil Separator Ducting

    Motorsport validation shops fabricate one-piece air/oil separator adapters and plenum test coupons from Somos Taurus when acetone, oxygenated racing petrol, and hot air exposure require a polymer that survives 95°C HDT at 0.46 MPa and requires less machining lead time than cast aluminium. The material is entered into the vat as a 100% active solids formulation; because large duct cross sections trap uncured resin pockets, the operating procedure limits wall thickness to 4 mm and uses a fresh-resin addition of 15% vat volume per 10 L consumed to prevent oxygen inhibition along thin leading edges. The downstream process applies 355 nm vat photopolymerisation at 0.100 mm layer thickness, with duct axes oriented 20° from vertical to minimise trapped support resin; supports use 0.7 mm contact diameter and are located on non-sealing faces. After UV postcure for 60 min and thermal postcure at 80°C for 2 h, internal bores are solvent-flushed and precision reamed to IT7 fit per ISO 286-1. Chemical resistance testing is specified per ISO 175:2010 for 168 h immersion in 100°C coolant, but published data for this exact formulation under sustained petrol immersion above 50°C is limited. The material is not FIA homologated and is not acceptable for crash structures or pressure-bearing fluid lines. Terminal finished product types include air/oil separator adapters, plenum smoke-test coupons, header test spacers, oil gallery mockups, and water jacket flow-test fittings.

    Thermal cycling from -40°C to 85°C in EV power electronics jigs exposes printed locating features to stress relaxation unless the resin is selected and postcured for a documented 72°C HDT at 1.82 MPa. In insert-molding bridge tooling trials, Somos Taurus is used at 100% solids with no reactive diluent; vat maintenance requires fresh resin addition at 20% of current volume after each 12 h build to prevent viscosity drift that causes edge ripple on shutoff surfaces. Process parameters include 355 nm stereolithography at 0.050 mm fine-layer setting for shutoff ribs, 60 min UV postcure, and 2 h thermal postcure at 80°C; after soak, printed tooling inserts are fitted into aluminium base plates with 0.02 mm clearance. Tooling acceptance follows ISO 286-1 tolerance class IT7 to IT8 for locating features, while material data is generated per ASTM D648 and ASTM D256. Material declarations are supplied under REACH 1907/2006/EC and RoHS 2011/65/EU. Terminal finished product types include bridge injection mould inserts, blow mould prototype cavities, thermoforming trim fixture nests, and RTV silicone overmold masters. Published data for 10,000-shot injection cycles is limited; trials above 500 shots in polypropylene at 220°C melt temperature require ongoing dimensional audits.

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    Более подробное введение

    DSM Somos Taurus is an unfilled stereolithography (SLA) photopolymer that reaches its specified mechanical and thermal stability only after a two-stage postcure comprising UV flood exposure and thermal aging. The liquid resin is imaged at 355 nm in vat photopolymerization platforms; the green-state part has only partial conversion, and the final crosslink density is established when UV-generated radicals and thermally activated secondary reactions proceed in the prescribed sequence. This dual-cure architecture places Taurus in a different process category from single-stage SLA resins whose properties are largely determined by laser energy alone. The material is specified for high-temperature tooling, wind-tunnel test articles, and short-run molding fixtures that require dimensional stability above ambient. Published property values are tied to ASTM and ISO test methods; production-scale processing data remain machine-dependent, particularly for beam power, recoater speed, and vat thermal uniformity.

    What property envelope distinguishes Taurus from conventional SLA resins?

    The cured material exhibits a balance of moderate heat deflection temperature and unfilled toughness. Property values in the table below are manufacturer-typical data for specimens that have undergone UV postcure followed by thermal postcure and were conditioned at 23 °C and 50 % relative humidity unless otherwise noted. Actual lot-to-lot variation in tensile properties can reach ±5 % of the nominal value depending on postcure chamber uniformity.

    PropertyTypical valueTest method
    Tensile strength58 MPaASTM D638-14
    Tensile modulus3.0 GPaASTM D638-14
    Elongation at break3.5 %ASTM D638-14
    Flexural strength93 MPaASTM D790-17
    Flexural modulus2.8 GPaASTM D790-17
    Notched Izod impact20 J/mASTM D256-10
    Heat deflection temperature at 0.46 MPa95 °CASTM D648-18
    Heat deflection temperature at 1.82 MPa76 °CASTM D648-18
    Shore D hardness87ASTM D2240-15
    Liquid resin viscosity at 25 °C2000 mPa·sASTM D4287-19
    Liquid density1.13 g/cm³ASTM D792-20
    Solid density1.22 g/cm³ASTM D792-20

    The heat deflection temperature at 1.82 MPa is the primary differentiator against general-purpose SLA resins, which typically fall below 65 °C under the same load. However, Taurus does not enter the extreme-temperature class of ceramic-reinforced SLA or sintered thermoplastics; components loaded above 76 °C under flexural stress begin accumulating irreversible deformation. The notched Izod value of 20 J/m is higher than that of many filled high-temperature photopolymers, but remains low compared with thermoplastic ABS or polycarbonate grades.

    UV + Thermal Postcure Control and Vat Processing Boundaries

    Green parts are removed from the build platform with residual liquid film that must be removed before postcure. Cleaning practice in production bureaus uses tripropylene glycol monomethyl ether followed by isopropanol; TPM removes uncured resin from recessed features, while IPA lowers the solvent load before drying. Solvent carryover into the thermal oven is a process hazard because residual alcohol can ignite during the thermal ramp. The cleaned green part should be air-dried until the surface is dry to the touch before UV flood exposure.

    The UV postcure is typically performed in a flood chamber fitted with UVA lamps whose calibration is checked with a radiometer at 365 nm. Irradiance and dose are set to eliminate surface tack without over-exposing thin sections; the exact exposure time depends on part thickness, chamber reflectivity, and lamp age. Dose control is critical because an under-exposed surface continues to react during thermal postcure and can produce localized exothermic temperature excursions. After UV exposure, the part is transferred to a forced-air oven. A representative thermal postcure profile for high-temperature Somos grades uses a ramp rate of 1–2 °C/min to a hold temperature near 150 °C, a dwell of 2 h, and controlled cooling. Thick sections above 10 mm require longer dwell or staged holds because the low through-plane thermal diffusivity of the thermoset creates a lag between setpoint and core temperature. Core under-cure depresses the measured heat deflection temperature relative to the datasheet value; published data for the exact magnitude in Taurus is limited, so thermal mapping of thick-section builds is recommended.

    The following operating ranges are representative of production service bureau practice for high-temperature SLA resins; Taurus-specific values must be confirmed against the current supplier datasheet.

    Process variableOperating rangeMeasurement method/equipment
    Vat resin temperature28–32 °Ccalibrated thermocouple immersed in vat
    Resin viscosity at 25 °C2000 mPa·s nominalASTM D4287-19
    Layer thickness0.05–0.10 mmmachine build style
    UV flood UVA irradiance20–40 mW/cm²radiometer calibrated at 365 nm
    UV dose per surface30–60 J/cm²integrated radiometer totalizer
    Thermal postcure hold150 °C for 2 hforced-air oven with ramp 1–2 °C/min
    Oven temperature uniformity±5 °Cmulti-point thermocouple mapping

    In the vat, the resin is maintained near 30 °C. At 25 °C, the viscosity is approximately 2000 mPa·s; if the vat heater fails and the resin cools to 20 °C, viscosity rises and can exceed the recoat capacity of the build platform, producing layer starvation. The pigmented unfilled formulation has lower optical penetration depth than clear SLA resins; therefore, the scan speed, line spacing, and platform exposure must be calibrated for the target 355 nm system. Underexposed down-facing skins can transfer partially cured resin to subsequent layers, reducing dimensional accuracy and increasing the solvent load carried into postcure.

    The UV-only state of Taurus is not representative of the final part. Thermal aging after UV exposure drives additional conversion of unreacted acrylate groups through a dark-cure pathway. If the thermal step is skipped, the crosslink density remains below the datasheet level, and the part may exhibit lower heat deflection temperature, higher water absorption, and reduced modulus. Conversely, over-thermal exposure above the recommended hold can cause oxidative discoloration and embrittlement. The window between under-cure and oxidative damage is narrow for pigmented high-temperature SLA polymers, and the exact boundary for Taurus should be established on the user’s oven because air exchange rate and load mass affect exotherm and heat transfer.

    The liquid resin should be stored in sealed containers at 15–30 °C away from UV and daylight. If the container is left open in high-humidity environments above 60 % RH, water uptake can alter photoinitiator efficiency and produce an additional inhibition delay in the first layers. Re-coating after long build interruptions should include a manual stir cycle to redisperse any settled components, although Taurus is unfilled and less prone to settling than particle-filled resins.

    When ceramic-filled high-temperature SLA materials are replaced by Taurus

    Ceramic-filled photopolymers such as Somos PerFORM deliver heat deflection temperatures above 200 °C, but they impose high-viscosity handling and reduced elongation. Taurus occupies a lower-temperature niche in which the unfilled network provides easier recoating, lower particle settling risk, and less notch sensitivity in thin-wall features. The absence of hard-particle reinforcement eliminates the particle-size-dependent fracture path observed in some ceramic-loaded SLA materials, which can initiate at as-printed layer interfaces. However, the trade-off is explicit: the HDT at 1.82 MPa is approximately 100 °C lower than ceramic-filled high-temperature SLA resins, and Taurus is not a substitute for tooling that will see sustained mold temperatures above its HDT.

    Compared with conventional unfilled SLA resins with HDT at 1.82 MPa below 65 °C, Taurus shifts the continuous-use boundary upward and permits short-run mold inserts for low-pressure processes. In injection molding trials on a 30-ton clamp force machine running polypropylene at 180 °C melt temperature, insert life is limited by surface wear and plasticization rather than by immediate fracture; however, production-scale data for semi-crystalline engineering resins are limited. The material should be evaluated with the actual molding pressure, clamp force, and thermal cycling profile before committing to production tooling. Sharp transitions in wall thickness can crack during thermal postcure; fillet radii at thick-to-thin junctions above 1.0 mm reduce the stress concentration.

    In wind-tunnel test component fabrication, the UV + thermal postcure regime creates a more complete network than UV-only postcure, which reduces outgassing and dimensional drift during aerodynamic heating cycles. Service bureaus report that internal cavities must include drain and vent holes to allow uncured resin removal; trapped liquid resin expands during thermal postcure and can split thin walls. Orientation of large flat surfaces at an angle to the recoater blade prevents a meniscus defect that appears as periodic horizontal banding on vertical faces. This defect is not cosmetic only; the band spacing corresponds to the recoater pass interval and can reduce local flexural strength by introducing a resin-rich interlayer.

    Linear shrinkage during the dual-cure sequence is not isotropic; thick sections shrink more in the Z direction because the layer-wise cure pattern and thermal postcure produce anisotropic stress. For mold inserts, compensating for Z shrinkage by scaling the CAD model is common, but the scale factor must be established experimentally on the target SLA platform. Unsupported faces below 45 ° from horizontal can curl during UV flood exposure because the front surface expands at a different rate than the cooler substrate; observed edge lift can reach 0.1–0.3 mm on parts longer than 100 mm if support pillars are too sparse. Published data on Taurus-specific curl magnitude is limited; iterative build trials with a dial indicator are recommended before committing to close-fit assemblies.

    Compliance documentation should be verified against the current supplier safety data sheet. The liquid resin is registered under REACH 1907/2006 and contains acrylate and photoinitiator components requiring nitrile gloves, local exhaust ventilation, and eye protection. Cured parts are not certified for food-contact use under FDA 21 CFR 177 or for long-term implantation under ISO 10993. RoHS Directive 2011/65/EU applies to the final electrical or electronic assembly rather than to the raw photopolymer; downstream assemblers must confirm SVHC thresholds on the declaration of conformity. No UL 94 V-0 rating should be assumed unless verified by the manufacturer on a specific part thickness.

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