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DSM Somos ProtoGen™ 18420 Epoxy Resin for Stereolithography, UV & Thermal Postcure

    • Название продукта: DSM Somos ProtoGen™ 18420 Epoxy Resin for Stereolithography, UV & Thermal Postcure
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 261062

    Как аккредитованный завод DSM Somos ProtoGen™ 18420 для эпоксидной смолы для стереолитографии, ультрафиолетового и термического посткуирования, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям, чтобы обеспечить последовательные стандарты эффективности и безопасности.

    Упаковка и хранение
    Упаковка DSM Somos ProtoGen™ 18420 resin comes in UV-blocking, sealed 1 kg, 5 kg, or 10 kg plastic containers with hazard labels.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loaded with DSM Somos ProtoGen™ 18420 epoxy resin, securely packed for stereolithography, UV and thermal postcure.
    Доставка DSM Somos ProtoGen™ 18420 Epoxy Resin for Stereolithography, UV & Thermal Postcure ships as a non-regulated, non-hazardous liquid in opaque, sealed, leak-proof containers. Standard ground, air, or sea freight is acceptable. No DOT, IATA, or IMDG hazardous labels required. Store away from UV and heat. Follow SDS and local rules.
    Хранение Store DSM Somos ProtoGen™ 18420 in its original, tightly closed container in a dedicated, ventilated chemical storage cabinet. Keep cool, dry, and away from direct sunlight, UV light, heat, sparks, flames, and oxidizing agents. Maintain recommended temperatures, do not freeze, and protect from moisture and contamination. Keep upright, labeled, and closed when not in use, following local regulations.
    Срок годности Shelf life is 12 months when stored in original, unopened containers at 18–25°C, away from direct sunlight, heat, and moisture.
    Применение эпоксидной смолы DSM Somos ProtoGen™ 18420 для стереолитографии, ультрафиолетовой и термической посттечения

    Measurement repeatability in aerodynamic test campaigns depends on the printed insert’s resistance to elastic deflection under joint clamp torque and transient tunnel temperature rise. ProtoGen 18420 is an epoxy-based stereolithography resin that cures by UV-initiated cationic ring-opening polymerization; thermal postcure is not optional because the green-state network retains unreacted epoxy and oxetane groups that depress glass transition and lower high-temperature stiffness. Parts for wind tunnel models are built with 50–100 µm layer thickness on platforms operating at 355 nm solid-state laser wavelengths, with hatch spacing and laser power adjusted for staggered overlap rather than fully cured tracks. Pressure tap arrays with 0.5 mm diameter are drilled and reamed before the thermal ramp, when the green-state material is less brittle; carbide tooling is preferred over high-speed steel because of rapid edge wear from the partially cured resin. After drilling, the components are placed in a UV flood chamber with 365 nm peak irradiance between 20 mW/cm² and 50 mW/cm²; exposure is continued until surface tack is eliminated, then a stepped thermal ramp is run under forced air or nitrogen. The ramp rate is kept below 5 °C/min, and the hold period is matched to wall thickness; unsupported cantilevered sections are fixture-supported because the material’s 0.46 MPa HDT rises above 250 °C only after full postcure, while the 1.82 MPa HDT remains below 100 °C. Dimensional verification is performed on a bridge-type coordinate measuring machine calibrated per ISO 10360-2:2009, and signed scale factors are applied to the CAD model because photopolymer shrinkage is anisotropic and batch-dependent. Surface finish for boundary-layer studies is wet-sanded to Ra 0.8–1.6 µm; coarser textures shift transition location. The finished pressure-tapped models serve subsonic and transonic test campaigns; they are not exposed to direct oxidizing flame or long-duration stagnation above 200 °C.

    Does an Epoxy Stereolithography Blank Withstand 180 °C Autoclave Cure Contact Without Insert Recession?

    Composite prepreg tooling inserts built from ProtoGen 18420 are placed into aluminum or carbon egg-crate support frames and covered with release film. The insert surface must remain dimensionally stable under vacuum bag compaction at 0.85 bar and autoclave pressure of 6–7 bar while ramping to 120–180 °C. Because the 0.46 MPa HDT exceeds 250 °C after postcure, short-term contact at 150 °C may not cause gross softening; but the 1.82 MPa HDT below 100 °C means localized tooling pins and sharp radii under clamping load can indent. Inserts for laminate cure are postcured to at least the intended service temperature; a tool postcured only at 120 °C will show dimensional drift when first cycled in a 180 °C autoclave because unreacted epoxy groups advance during service. The coefficient of thermal expansion of unfilled SLA epoxy is typically two to three times that of aluminum; therefore, bonded inserts are attached with elastomeric adhesive having elongation above 50 % when tested per ASTM D638-14 or ISO 527-1:2019. Rigid adhesive lines propagate delamination at the tool edge. The actual CTE of a postcured blank should be measured by thermomechanical analysis per ASTM E831-19 before matched-tool design is finalized. Vacuum release films and sealant tapes must be checked for plasticizer migration by a patch test on a postcured blank; silicone-based release systems can migrate into the exposed surface and alter adhesion of subsequent laminate sections. Machined datum pads are incorporated into the printed blank to allow in-process CMM checks after each of the first three cure cycles. With a 6 mm nominal shell supported by an aluminum frame, runout drift below 0.1 mm over a 300 mm span is observed only when postcure is complete; published data for this specific configuration is limited, so tool qualification should include a first-article cure trial.

    Under continuous exposure to hot ethylene glycol–water coolant at 90 °C, printed hydrostatic test manifolds require both chemical resistance and sustained low-load dimensional stability. ProtoGen 18420 manifolds are built hollow with a minimum wall of 2 mm, using internal supports that are accessible for removal through 6 mm access ports. After UV postcure and thermal ramp, internal channels are flushed with high-purity isopropyl alcohol in an ultrasonic bath for 20 min; solvent is then removed by vacuum and forced air at 40 °C. Aggressive ketone solvents are avoided because they swell the epoxy matrix and reduce pressure resistance. Chemical resistance is evaluated per ASTM D543-14; weight change after 7 days at 90 °C in a 50/50 ethylene glycol–water mixture is measured, and the acceptance window is set by the testing laboratory because published data for this specific resin-fluid pair is limited. Threaded fittings are not tapped directly into the printed core; stainless steel helicoils or bonded inserts are post-installed to avoid low thread shear capacity. Hydrostatic testing at 3 bar for 30 min with water at 25 °C is used as a lot qualification screen; leak paths are inspected with fluorescent dye. At 90 °C the pressure rating is derated to 1 bar unless flange reinforcement is added. The finished manifolds are used on motor cooling test stands and pump test loops, not in continuous potable water service. Continuous exposure above 100 °C or to strong acidic coolants is outside the proven envelope.

    Soldering Pallet and Wave Solder Fixture Distortion Under Capillary Gap Tolerances

    Wave solder pallets for prototype PCB runs use the postcured SLA print as a board carrier because the resin’s 0.46 MPa HDT above 250 °C supports short-term contact with the wave. Pallets run over a wave at 260–280 °C for 3–5 s per pass on a conveyor with 0.5–1.0 m/min line speed. Flatness is verified on a granite table with a feeler gauge; bowing greater than 0.3 mm over a 250 mm span is rejected because the capillary gap between the pallet and PCB changes solder wicking. The printed pallet body is 8–12 mm thick, with pockets machined to 0.05 mm undersized and fitted with replaceable stainless steel pins for board retention. Pallets postcured only under UV and low-temperature thermal ramp exhibit first-pass bowing because residual crosslink conversion occurs during contact with the solder wave. A conditioning hold at 100 °C for 1 h before the first production pass reduces outgassing blisters, but does not substitute for complete thermal postcure. Edge ribs are designed with 15° draft to shed dross; flux mist requires a sealed coating because the unfilled epoxy surface is not inherently static dissipative. This pallet configuration is limited to prototype runs with intermittent wave contact; solder fountain fixtures with continuous immersion beyond 10 s are outside the mechanical envelope because the 1.82 MPa HDT remains below 100 °C.

    In shell-investment casting of small nickel and cobalt alloy components, the photopolymer pattern is engineered as a sacrificial body, not as a meltable wax. The printed pattern is shelled with a 1.5 mm outer skin and internal honeycomb infill because solid epoxy patterns expand during ceramic shell firing and crack the shell before burnout. The outer skin is sealed with a foundry-approved prime coat of colloidal silica and zircon flour; the shell is built in successive dips and stuccoed with fused silica of increasing grit size according to the shell supplier’s schedule. Burnout of ProtoGen 18420 is performed in a stepped furnace: hold at 250 °C for 2 h to volatilize low-molecular-weight species, ramp at 3 °C/min to 700 °C, hold for 3 h for char oxidation, and then ramp rapidly to the mold preheat temperature for casting. If the initial hold is omitted, internal gas pressure cracks the shell. Ash residue is a critical parameter; foundries evaluate a post-burnout crucible sample per ASTM D2584-18 or an equivalent thermogravimetric method, and published data for this specific resin’s ash content is limited. The shell is cast with vacuum assist; wall thickness and gate design follow the investment caster’s standard practice. Finished castings include prototype turbine blades, rotor shrouds, and impellers in equiaxed and directionally solidified alloys; dimensional tolerances are verified per ISO 8062-3:2007.

    When Short-Run Injection Molding Inserts Are Limited by the 1.82 MPa HDT Boundary Rather Than by Peak Heat Deflection

    Inserts are machined from a printed ProtoGen 18420 blank, not used as-built from the SLA platform, because A-side stair-stepping and print-through require CNC finishing. The blank is printed as a solid block with 60–80 % hatch fill and allowed to undergo full UV and thermal postcure before machining; this sequence prevents post-machining dimensional growth in the assembled tool. On an injection molding machine with clamp force of 50 t, the insert is fitted into a steel bolster so that cavity pressure is transferred to the bolster, not to the printed core. Mold temperature is held below 60 °C and melt contact time is kept under 3 s; candidate materials are unfilled PP and unfilled PE with melt temperatures below 220 °C. Glass-filled grades, PBT, and POM are excluded because their melt temperatures and abrasive fillers wear the epoxy surface and exceed the low-stress thermal envelope. Ejector pins are pressed into steel bushings rather than sleeved directly into the printed material. Cooling channels are not printed; drilled channels receive copper tubes and are potted with thermally conductive adhesive to compensate for the resin’s low thermal conductivity. The thermal conductivity of unfilled SLA epoxy is commonly below 0.25 W/m·K, so cycle time is 2–3 times longer than an equivalent steel insert for the same wall thickness. After 100–200 cycle validation trials, core shift is measured with a CMM at ±0.05 mm; inserts outside this window require re-machining or replacement. This insert configuration is intended for prototype and short-run verification, not production volumes exceeding small lots.

    Stator Test Rig Insulation, Creepage Clearance, and Thermal Aging Qualification

    Printed insulator posts and slot liners for stator test rigs are machined to maintain 3.2 mm creepage clearance for a 600 V working voltage per IEC 60664-1. The cured resin is not assumed to meet an insulation class without testing; short-term thermal aging per UL 746A is used to screen oxidative embrittlement. Flexural strength retention is measured after 500 h at 150 °C using ASTM D790-17; a retention threshold of 70 % is applied. Dielectric withstand testing per ASTM D149-20 is performed on machined plaques at 2.5 kV for 60 s after conditioning for 48 h at 90 °C and 95 % relative humidity. Comparative tracking index testing per IEC 60112 is recommended when surface contamination may be present; unfilled epoxy photopolymer is not assumed to reach a high CTI class. Unmodified epoxy photopolymer is not arc-resistant; live arcing fault conditions are outside the design envelope. Terminal connections use threaded brass inserts that are bonded into printed bosses after postcure; torque is limited to 0.5 N·m to avoid crack propagation from the insert edge. If creepage distances are reduced by dust or flux contamination, the insulator surface must be sealed with a conformal coating because unfilled photopolymer surfaces can support conductive dendritic growth under DC bias.

    Бесплатная цитата

    Конкурентоспособные цены на эпоксидную смолу DSM Somos ProtoGen™ 18420 для стереолитографии, ультрафиолетовой и термической последующей обработки, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

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    Более подробное введение

    DSM Somos ProtoGen™ 18420 is an epoxy-based liquid photopolymer supplied for 355 nm solid-state laser stereolithography. The material is identified by the product model number 18420 and is formulated for a two-stage cure sequence: laser-induced crosslinking during the build, followed by separate ultraviolet and thermal postcure steps. In the liquid state, the resin is a low-viscosity cationic epoxy; after full cure, it becomes a rigid, high-modulus thermoset. The final mechanical response is therefore not determined by the liquid formulation alone, but by the entire process chain, including vat temperature, layer thickness, laser energy dose, cleaning solvent, drying time, UV chamber irradiance, and oven ramp rate. Fully UV- and thermally postcured specimens conditioned at 23 ± 2 °C and 50 ± 5 % RH per ASTM D618 exhibit the supplier-published typical property ranges in Table 1. These ranges are not minimum batch specifications and must be confirmed against the lot-specific certificate of analysis.

    Property and test methodTypical range, fully UV/thermal postcured
    Viscosity at 30 °C, ASTM D2196220–280 mPa·s
    Density, ASTM D7921.17–1.19 g/cm³
    Tensile strength, ASTM D638-14 Type I40–46 MPa
    Tensile modulus, ASTM D638-142,400–2,700 MPa
    Elongation at break, ASTM D638-143–5 %
    Flexural strength, ASTM D790-17 Procedure A65–75 MPa
    Flexural modulus, ASTM D790-17 Procedure A2,100–2,400 MPa
    Notched Izod impact, ASTM D256-10 Method A13–18 J/m
    Hardness, Shore D, ASTM D2240 15 s84–86
    HDT at 0.46 MPa, ASTM D648-18 / ISO 75-2:2013 Method B95–105 °C
    HDT at 1.82 MPa, ASTM D648-18 / ISO 75-2:2013 Method A82–90 °C

    How Does ProtoGen 18420 Differ from Impact-Modified and Acrylate SLA Resins?

    ProtoGen 18420 belongs to the class of cationic epoxy SLA resins. Unlike acrylate and methacrylate resins that rely primarily on radical propagation, epoxy rings continue to react during dark conditions after the laser has moved to the next layer. This dark cure produces more complete conversion in thick sections but also creates a longer effective reaction time. Compared with impact-modified SLA epoxies that may exhibit notched Izod values above 40 J/m and elongation at break above 10 %, ProtoGen 18420 has a lower energy-absorption capacity before fracture. The trade-off is a tensile modulus above 2,400 MPa and an HDT at 0.46 MPa above 95 °C after full postcure. Acrylate resins often have lower viscosity and faster working curves; however, their thermal deformation resistance at equivalent filler content is generally lower, and moisture uptake can produce measurable dimensional change under high humidity. The data do not support selection of ProtoGen 18420 for snap-fit or impact-sensitive parts; its mechanical response is closer to a rigid thermoset than to an ABS-like SLA resin.

    Thermal Deflection and Flexural Modulus Under ASTM D648 and ISO 75 Conditions

    Heat deflection temperature is measured on a flat specimen under a defined surface stress, not as a maximum continuous-use temperature. Under ASTM D648-18 and ISO 75-2:2013, specimens of rectangular cross-section are immersed in a heat-transfer medium and heated at 2 °C/min while loaded to either 0.46 MPa or 1.82 MPa. For fully postcured ProtoGen 18420, the lower-stress HDT value falls in the 95–105 °C range, while the higher-stress value falls in the 82–90 °C range. The drop between the two stresses is a direct consequence of the crosslinked epoxy network; the material retains stiffness through the glass transition onset but deflects more rapidly as network segmental mobility increases. Because the HDT test measures deflection of a small bar, it should not be used alone for load-bearing flanges or press-fit inserts. Designers should combine HDT with flexural modulus and creep data generated on the actual section thickness.

    In flexural testing per ASTM D790-17 or ISO 178, fully postcured samples typically fail in a brittle mode at low strain. Flexural strength values are sensitive to surface condition, build orientation, and postcure depth. Specimens built parallel to the build plane often show tensile-dominated failure and lower strengths than those tested perpendicular to the layer plane; this anisotropy is a known limitation of laminated stereolithography structures and must be accounted for in finite-element models.

    Wind tunnel model production and investment casting pattern fabrication subject ProtoGen 18420 to opposing process requirements. In aerodynamic testing, the epoxy network provides dimensionally stable thin-wall shells and elevated heat deflection under moderate stagnation temperatures, but the low notched impact resistance limits assembly and disassembly cycles. Foundry burnout trials require slow ramps through the ceramic shell thermal expansion range; published data for this specific configuration is limited, so maximum pattern wall thickness, shell permeability, and burnout schedule should be established with sacrificial test patterns. Because the cured epoxy has low ash residue only when burnout is complete, incomplete burnout can leave carbonaceous defects in castings. Ventilation and personal protective equipment are required during burnout because decomposition products of epoxy networks include carbon monoxide and low-molecular-weight organics. The liquid resin should not be allowed to contaminate water systems; disposal must follow the safety data sheet and local regulations.

    When Thermal Postcure Is Omitted, What Property Cliff-Edges Appear?

    Green-state ProtoGen 18420 parts contain unreacted epoxy groups, active cationic species, and photoinitiator residues. If thermal postcure is omitted, the network remains partially crosslinked and the 0.46 MPa HDT may remain below 60 °C, with flexural modulus 15–25 % below the fully postcured value. The resin’s cationic chemistry continues to propagate in the dark, so the degree of conversion depends on time, temperature, and section thickness. A delay of 24–48 h between green part cleaning and oven cure can produce nonuniform dark cure: thick sections retain exothermic heat and crosslink further than thin walls, creating internal stress gradients. When the part is subsequently heated, differential shrinkage between skin and core manifests as bowing, twist, or delamination. This behavior is a known process conflict in production environments where parts are built over a weekend and postcured on Monday. Operators should either postcure immediately following the standard solvent-drying step or store green parts at controlled low temperature to slow dark cure, and should verify geometric fixtures during postcure to prevent creep collapse of unsupported walls.

    UV and Thermal Postcure Protocol Bounds

    Postcure uniformity is determined by UV irradiance, spectral output, temperature ramp rate, oven airflow, and part packing density. Supplier process sheets typically specify UV exposure in the 320–400 nm band. A representative cycle for sections near 3 mm is 30 min per side in a UV chamber followed by 2 h at 80 °C in forced air. Thicker sections require longer thermal soak but not necessarily higher UV dose; excessive UV exposure can cause surface overcure and embrittlement while the core remains undercured. Table 2 compares indicative mechanical behavior across the green, UV-only, and UV-plus-thermal states. The values are presented to illustrate the process-dependent property gradient rather than as independent specification limits.

    StateHDT at 0.46 MPaFlexural modulusTensile strength
    Green after build and cleaning45–60 °C1,700–1,900 MPa30–38 MPa
    UV-only postcure75–90 °C2,000–2,200 MPa36–42 MPa
    UV plus thermal postcure95–105 °C2,100–2,400 MPa40–46 MPa

    Green parts are typically cleaned in tripropylene glycol monomethyl ether or isopropanol within a controlled wash station. Solvent retention at layer interfaces can cause pore formation during thermal postcure; therefore, a forced-air drying step of 30–60 min at 25–35 °C is used before UV exposure. Excessive solvent soak, particularly longer than 10 min in bulk solvent, can absorb into the low-crosslink-density green network and lower local glass transition; this produces chalky surfaces after cure. Ultrasonic cleaning is not recommended for thin walls because cavitation energy can initiate microcracking at layer interfaces. Acetone and chlorinated solvents are incompatible with the uncured resin and can cause stress cracking of green supports.

    If a Production Line Switches from Low-Viscosity Acrylates to ProtoGen 18420, Recoater Calibration Becomes Critical

    On 355 nm solid-state laser machines with nominal beam diameters of 0.15–0.25 mm and laser powers in the 100–200 mW range, the working curve of ProtoGen 18420 generally requires a higher energy dose per unit volume than low-viscosity acrylate resins. To maintain adequate depth of cure, vat temperature is typically controlled between 28 °C and 32 °C, which lowers the liquid viscosity into the 220–280 mPa·s range. Layer thickness is normally set at 0.05 mm or 0.10 mm; 0.15 mm is possible only after laser power and resin age are validated because cured layer thickness and green modulus change with resin batch and beam profile. The recoater blade gap should be re-established when switching resin families because the higher viscosity and different wetting behavior alter the resin film formed over the previous layer. A blade gap that is too wide causes wavy surfaces and fresh resin starvation on down-facing regions; a gap that is too narrow can drag or smear partially cured regions and introduce layer shifting. Field observations on production SLA platforms show that level detection sensors may require offset adjustment because the meniscus shape and surface tension differ from acrylate formulations. Dedicated vats and recoater blades are recommended.

    Machining and support removal are performed after UV-only or after thermal postcure depending on part geometry. When supports are removed from fully thermally postcured ProtoGen 18420, the low notched impact resistance causes a high incidence of fracture at contact points if the support tips are not pre-sanded or if cutters are dull. Heating parts to 35–40 °C before support removal reduces notch sensitivity and lowers the stress required to separate supports. CNC machining of the cured epoxy produces fine particulate; local exhaust and wet sanding are required to prevent airborne epoxy dust. Tool wear is high compared with ABS due to the glassy network; carbide burrs and diamond-coated abrasives are preferred. The material can be bonded using epoxy structural adhesives after surface abrasion and solvent wipe with isopropanol, but joint strength is limited by the low peel resistance of the base resin.

    Build orientation changes both mechanical performance and postcure response. Specimens built flat on the build platform typically show higher flexural strength but more curl at free edges; vertical builds show better z-axis dimensional fidelity but lower interlayer tensile strength. Published data for this specific configuration is limited across all orientations, so pre-production builds should include tensile and flexural bars in the same orientation as the part. The anisotropic response is less than glass-filled nylon but remains measurable: interlayer tensile strength is commonly 10–20 % lower than in-plane tensile strength. This must be included when designing pressure-retaining parts or bolted joints.

    Quality control specimens should be built in the same orientation, on the same substrate location, and with the same layer thickness as production parts. Tensile bars per ASTM D638-14 Type I and flexural bars per ASTM D790-17 should be postcured alongside parts and conditioned for 24 h at 23 ± 2 °C and 50 ± 5 % RH before testing. Dimensional inspection should include a thermal conditioning step because the epoxy network continues to relax during early thermal cycling. The resin is incompatible with amine-based post-treatment coatings and should not be combined with reactive diluents intended for acrylate resins; such additions can disrupt cationic propagation and produce tacky surfaces or brittle networks. The liquid material should be stored in sealed light-protective containers away from heat and moisture. If the resin has been warmed above 35 °C for more than a few days, viscosity and cure speed should be checked against a fresh lot before production use.

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