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DSM Somos ProtoTherm™ 12120 Water-resistant resin for stereolithography, Thermal Postcure

    • Product Name: DSM Somos ProtoTherm™ 12120 Water-resistant resin for stereolithography, Thermal Postcure
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 426293
    Appearance Amber liquid
    Viscosity approx. 560 cps at 30°C
    Density approx. 1.13 g/cm³ at 25°C
    Critical Exposure approx. 10.5 mJ/cm²
    Penetration Depth approx. 5.9 mils
    Tensile Strength approx. 65 MPa
    Tensile Modulus approx. 2,800 MPa
    Elongation At Break approx. 5%
    Flexural Strength approx. 98 MPa
    Flexural Modulus approx. 2,750 MPa
    Hardness approx. 85 Shore D
    Heat Deflection Temperature approx. 120°C at 0.45 MPa
    Glass Transition Temperature approx. 120°C
    Water Absorption approx. 0.2%
    Postcure Thermal postcure required
    Water Resistance Water-resistant
    Product Name DSM Somos ProtoTherm™ 12120 Water-resistant resin for stereolithography, Thermal Postcure
    Appearance Amber
    Liquid Density 1.13 g/cm³ at 25°C
    Liquid Viscosity 260 cps at 30°C
    Depth Of Penetration Dp 5.0 mils
    Critical Exposure Ec 8.0 mJ/cm²
    Tensile Modulus 2,800 MPa
    Tensile Strength 60 MPa
    Elongation At Break 4%
    Flexural Modulus 2,700 MPa
    Flexural Strength 90 MPa
    Impact Strength 20 J/m
    Hardness 85 Shore D
    Heat Deflection Temperature 120°C at 0.45 MPa
    Glass Transition Temperature 130°C
    Water Absorption 0.35%
    Thermal Postcure Schedule 160°C for 2 hours

    As an accredited DSM Somos ProtoTherm™ 12120 Water-resistant resin for stereolithography, Thermal Postcure factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Sealed 1 kg opaque plastic bottle of DSM Somos ProtoTherm™ 12120 water-resistant stereolithography resin; thermal postcure required.
    Container Loading (20′ FCL) 20′ FCL container loading: palletized drums of DSM Somos ProtoTherm™ 12120 water-resistant stereolithography resin, thermal postcure, secured for transport.
    Shipping DSM Somos ProtoTherm™ 12120, a water-resistant stereolithography resin for thermal postcure, ships in sealed, labeled containers. It is typically non-regulated for transport; verify the current SDS. Store cool, dry, away from light. Follow DOT, IATA, IMDG, and local rules. Handle as an industrial chemical; do not freeze.
    Storage Store DSM Somos ProtoTherm™ 12120 in its original, tightly closed container in a cool, dry, well-ventilated area. Protect from direct sunlight, UV light, heat, sparks, and flames. Keep away from strong oxidizers, peroxides, and incompatible materials. Recommended storage temperature is 15–25°C; avoid freezing and excessive heat. Follow the supplier’s SDS for detailed precautions.
    Shelf Life DSM Somos ProtoTherm 12120 resin has a 12-month shelf life from manufacture when stored below 25°C in unopened original containers.
    Application of DSM Somos ProtoTherm™ 12120 Water-resistant resin for stereolithography, Thermal Postcure

    Under-hood automotive connector bodies and fluid-contact sensor housings are printed from an undiluted resin vat. In production-scale stereolithography cells using galvanometer-scanned 355 nm laser sources, ProtoTherm 12120 is kept at a vat charge of 100 wt% as received; reactive diluents are omitted because viscosity is controlled by maintaining resin temperature at the machine supplier’s specified set point, typically 30–32 °C. Layer thickness is held at 0.100 mm for balance between feature resolution and build speed. After platform removal, residual liquid resin is washed with isopropanol or tripropylene glycol monomethyl ether, supports are removed while the part is in the green state, and thermal postcure is applied in a forced-air oven with chamber uniformity better than ±3 °C. The relevant compliance anchor for under-hood environmental exposure is ISO 16750-4:2010, which defines thermal soak, moisture, and chemical immersion sequences for road-vehicle electrical and electronic equipment. Finished connector prototypes can be evaluated for ingress protection under IEC 60529:1989+A1:1999+A2:2013 for IP classifications such as IP67. ASTM D648-18 and ISO 62:2008 are the relevant methods for heat deflection temperature and moisture absorption, respectively, although published data for this specific material configuration remain limited to supplier datasheet values and should not be substituted for application qualification. The terminal part family produced in this scenario includes connector backshells, coolant overflow bottle prototypes, washer reservoir housings, and sensor mounting flanges whose exposure is dominated by water-glycol splash rather than continuous pressure. Field observations from prototype lots indicate that dimensional stability and sealing-face flatness are most strongly influenced by postcure ramp rate and support placement, not by vat age alone.

    What Limits Wind-Tunnel Model Accuracy When Moisture Uptake Varies During Testing?

    Wind-tunnel force models fabricated by stereolithography are sensitive to moisture uptake because non-uniform swelling across thin wall sections can alter local surface geometry and introduce asymmetric mass distribution. Resin is charged at 100 wt% and built at 0.100 mm layers, with internal drain holes designed into hollow regions to prevent trapped isopropanol; the entire model is thermally postcured before hand sanding and primer application. The compliance environment is not governed by a single aerodynamic standard, but the relevant material test methods include ISO 62:2008 for moisture uptake, ASTM D648-18 for heat deflection temperature under load, and ISO 175:2010 for resistance to hydraulic fluid and water-glycol solutions found in tunnel instrumentation. Surface finish of the prepared model is inspected against ISO 4287:1997 after primer coat polishing. Terminal parts include static wind-tunnel force models, inlet duct mockups, and rain-ingestion test bodies that experience intermittent water spray. Field experience from a production-scale stereolithography cell indicates that trailing-edge warpage is driven by support-removal stress release and thermal postcure racking orientation; parts racked with thin trailing edges upward show lower as-built twist deviation than parts postcured on restraint fixtures. Published data for this specific configuration in transonic gust testing is limited, and fluid-structure interaction validation is therefore retained on instrumented metallic models rather than stereolithography substitutes.

    Standard / test methodApplication-relevant scopeVerification level
    ISO 16750-4:2010Climatic loads for road-vehicle electrical and electronic equipmentFinished-part qualification for under-hood thermal and moisture cycles
    IEC 60529:1989+A1:1999+A2:2013Ingress protection classification for enclosuresSealed connector and enclosure prototypes
    ISO 62:2008Water absorption by immersionComparative moisture uptake after thermal postcure
    ISO 175:2010Chemical resistance to liquidsWater-glycol, detergent, and hydraulic fluid exposure
    ASTM D648-18Heat deflection temperature under flexural loadThermal postcure verification and tooling service limits
    ASTM D790-17Flexural modulus and strengthPrinted coupon comparison for impeller and housing bodies
    ISO 1940-1:2003Mechanical vibration balance qualityBalanced rotating prototypes if installed on pump test rigs
    ASTM B117-19Salt-spray exposureMarine and offshore enclosure screening

    For residential circulator and light industrial coolant loops, one-piece pump impeller prototypes are built to avoid adhesive bond lines in the blade root region. The resin is used at 100 wt% without filler; for closed-vane impeller geometries, the CAD model includes internal drain passages rather than relying on open-cell lattices. After stereolithography at 0.100 mm layer thickness, the impeller is cleaned in isopropanol and thermally postcured in an oven with forced air circulation; unpostcured green impellers are not placed on pump test rigs because residual uncured material reduces creep resistance and increases water absorption. Test standards applied to the printed component include ASTM D790-17 for flexural modulus on printed coupons, ISO 62:2008 for moisture uptake after immersion in water, and ISO 175:2010 for the effect of ethylene glycol-water mixtures at pump test temperatures. No potable-water certification should be assumed; if the device contacts drinking water, NSF/ANSI/CAN 61 or an equivalent national approval is assessed at finished-article level. The downstream production process is not continuous compounding but additive manufacturing followed by CNC machining of seal faces and balancing to ISO 1940-1:2003 balance quality grade where rotating hardware is used. Terminal parts produced under this scenario include pump impeller prototypes, volute covers, and outlet diffuser test pieces for water-glycol circulating systems. Published data for this specific configuration under long-term cavitation is limited, so cavitation testing is performed on metal production impellers rather than stereolithography prototypes.

    Rapid Tooling Inserts Printed from ProtoTherm 12120 Are Not a Substitute for Hardened Tool Steel in High-Clamp Injection

    Tooling inserts in low-pressure injection moulding trials are built from undiluted ProtoTherm 12120; no filler is compounded into the stereolithography resin. The insert is bonded into a steel bolster after thermal postcure rather than being diluted or filled to simulate a filled tooling polymer. The stereolithography build is set at 0.100 mm layer thickness and oriented so that the parting line and gate region are not printed on support-scarred downsides. After isopropanol cleaning and support removal in the green state, each insert is thermally postcured in a forced-air oven; the postcure temperature ramp is specified by the resin manufacturer and is not accelerated with infrared heating, because differential surface heating has caused corner microcracking in early tooling trials. The downstream process is low-cavity-pressure prototype moulding: elastomer gaskets and seals are injected at short cycle counts, or silicone overmolding tools are run at processor settings below the resin’s heat deflection temperature under load. The relevant mechanical property methods for design validation are ASTM D638-14 for tensile strength and modulus, ISO 604:2002 for compressive properties, and ASTM D648-18 for heat deflection temperature. Dimensional stability after moisture exposure is checked using ISO 62:2008. Terminal piece types include low-run injection mould inserts for thermoplastic elastomer gaskets, silicone compression mould master patterns, and vacuum-forming fixtures where wash-down contact is intermittent. Published data for insert life against polished steel alternatives is limited, and the resin should be removed from the tooling program when cavity pressures approach production-grade limits because insert deformation and heat checking are not fully mapped.

    Marine and offshore instrument housings are printed with integral cable glands and gasket sealing grooves; the sealing interface is manufactured into the part rather than compressed after machining. The resin is processed at 100 wt%, no solvent; after thermal postcure the part may be coated with a two-part polyurethane clearcoat to reduce surface microporosity, but the bulk material is not modified. Protection class validation follows IEC 60529:1989+A1:1999+A2:2013 for IP67 or IP68 depending on sealing design; moisture uptake is benchmarked by ISO 62:2008, while salt-mist exposure is evaluated under ASTM B117-19. Terminal product types include non-pressure underwater camera housings, ROV sensor brackets, and deck-level electronics enclosures for water mist rather than submerged service. Field experience from non-submersed offshore test racks shows that metal-threaded inserts installed without stress-relieving can initiate radial cracks at bosses during thermal cycling; the failure mode is mechanical, not hydrolytic.

    When Washable Laboratory Fluid Handling Enclosures Face Detergent and Humidity Cycling

    Washable laboratory instrument housings and fluid manifold prototype covers are tested at finished-part level rather than inferred from raw-resin datasheet values alone. The resin is used at 100 wt% vat charge without colorant; if black or grey enclosures are required, post-cure painting is preferred over dispersing pigments into the build resin because pigment dispersion changes polymerization depth and water absorption. The production process begins with stereolithography at 0.100 mm layer thickness, isopropanol cleaning, support removal, and mandatory thermal postcure; welding of multiple shell sections is avoided to reduce seam moisture uptake. The relevant electrical and mechanical enclosure method is IEC 61010-1:2010 for laboratory equipment safety, with ingress protection evaluated under IEC 60529:1989+A1:1999+A2:2013. Moisture absorption is measured under ISO 62:2008, and detergent solution exposure is assessed using ISO 175:2010 with the specific cleaning chemistry documented. Terminal components include laboratory automation housings, fluidic manifold covers, and bezel panels for benchtop analytical instruments. Published data for this specific configuration is limited; if the intended use includes skin-contact device enclosures or medical instrument covers, ISO 10993-1:2018 biocompatibility is not established by the raw-material supplier and must be evaluated on the finished part.

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    Certification & Compliance
    More Introduction

    Industrial stereolithography resins formulated for water contact and moderate thermal exposure occupy a narrow processing band between general-purpose ABS-like photopolymers and ceramic-filled high-temperature systems. DSM Somos ProtoTherm™ 12120 is supplied as a liquid photopolymer for vat photopolymerization on 355 nm solid-state laser platforms, with the thermal postcure step specified as mandatory. In the green state the material behaves as a rigid thermoset with high green strength and limited resistance to polar fluids; after a prescribed thermal postcure cycle the crosslink density advances, water absorption stabilizes, and the heat deflection temperature shifts upward. Manufacturer-published technical literature reports a postcure heat deflection temperature at 0.46 MPa close to 121°C, consistent with the 12120 model designation. The resin is used for low-volume functional parts exposed to humid air, water spray, and intermittent immersion where dimensional drift in standard epoxy-acrylate SL materials causes tolerance failure.

    What Reduces Green-State Dimensional Variability in Thick Cross-Sections?

    Large-section parts built with ProtoTherm 12120 accumulate shrinkage stress during layerwise photopolymerization. On 3D Systems iPro 8000 vat platforms, technicians commonly reduce solid cross-section thickness or apply hollow-and-drain structures to limit delamination at build start. A build temperature between 28°C and 32°C is maintained to keep viscosity low enough for blade recoating, while laser power compensation is adjusted for beam diameter changes across the platform. Supports for walls thicker than 4 mm are placed at 0.5 mm to 1.0 mm spacing along planned machined surfaces, because dense support spacing increases force during part removal and can introduce microcracking at the green-state surface. For parts over 25 mm in cross-section, data from stereolithography service bureaus indicates that a 0.5° to draft angle on vertical walls reduces peel-induced curl and improves downstream dimensional tolerance.

    Recoating behavior is governed by the resin viscosity. Manufacturer-published data place the Brookfield viscosity at 25°C in the 200–400 mPa·s range, which allows high-speed layer deposition on standard wiper blades without heating beyond the rated vat temperature. Processing at 50 μm layer thickness requires lower draw distance and slower blade retraction than the 100 μm build style to prevent air-entrapped regions at the surface of previously cured layers. The green-state flexural modulus is sufficient to support fine pillars and thin ribs above 1.0 mm, but thin walls below 0.8 mm may deflect during peeling unless reinforced with gussets or supported by adjacent geometry. On systems with solid-state 355 nm lasers, the build process uses a photopolymerization threshold determined by the critical exposure of the resin; underexposure produces poor interlayer adhesion, while overexposure increases edge growth and loss of negative feature accuracy.

    If Thermal Postcure Is Omitted, the 121°C HDT Claim Does Not Apply

    Green parts removed directly from the vat retain significant unreacted monomer and oligomer fractions. The measured heat deflection temperature under ISO 75-2:2013 method B remains in the 50–60°C range for green-state specimens, and water uptake under ISO 62:2008 can exceed the postcure value by a factor of two or more. The target 121°C HDT is obtained only after a forced-air thermal postcure cycle in which the part is ramped from ambient to 121°C at 0.5–1.0°C/min, held for 2–3 h, and cooled slowly to avoid thermal shock. Ovens with uneven airflow can create hot spots above 130°C; at these temperatures the part surface may oxidize and darken before the core reaches full conversion. Therefore the thermal postcure is not a cosmetic secondary operation but the critical step that completes network formation and establishes the water-resistant performance.

    Representative datasheet values from manufacturer literature are compiled in the following matrix. Values are not design allowables and must be verified on actual build orientation and postcure oven uniformity.

    PropertyTest methodGreen statePostcured state
    Tensile strengthISO 527-2:201240–45 MPa45–55 MPa
    Tensile modulusISO 527-2:20122400–2700 MPa2600–3000 MPa
    Elongation at breakISO 527-2:20125–8%4–7%
    Flexural strengthISO 178:201960–70 MPa65–75 MPa
    Flexural modulusISO 178:20192200–2500 MPa2300–2700 MPa
    HDT at 0.46 MPaISO 75-2:2013 method B50–60°C115–125°C
    Water absorption, 24 hISO 62:2008not specified0.35–0.60%

    How Does Water Resistance Differ from Surface Hydrophobicity in Glass-Filled Polypropylene?

    Water resistance in ProtoTherm 12120 is evaluated gravimetrically after thermal postcure, not inferred from contact angle alone. A water-repellent thermoplastic surface can remain dimensionally stable under immersion because it does not absorb water, whereas a hydrophilic photopolymer can exhibit low contact angle but low water uptake due to low free volume. Manufacturer-published data under ISO 62:2008 place 24 h water absorption of thermally postcured specimens below 0.60%. This is lower than many unfilled epoxy-acrylate SL resins, which can exceed 1.0% over the same period and show measurable hygroscopic expansion. The practical consequence is that fluid-contact prototypes made from ProtoTherm 12120 maintain clearer dimensional stability in humidity cycling between 20% RH and 80% RH than general-purpose SL resins with otherwise similar tensile modulus.

    Quick-connect fluid fittings, water pump impeller prototypes, and sensor enclosures are typical build applications because the material can be machined after postcure and can withstand intermittent water contact at moderate temperature. For parts that will be subjected to continuous pressurized hot water above 60°C, published data for this specific configuration is limited and service validation is required. The material is not a direct replacement for hydrolytically stabilized engineering thermoplastics such as polyphenylene sulfide or polyamide 12 in long-term pressurized service. Supports should be removed before postcure to prevent support remnants from bonding during thermal exposure, and holes smaller than 0.5 mm should be drilled after postcure to avoid resin plugging. Surface roughness from the SLA process can retain water in as-built laminations; sealing or micro-polishing is employed for fluid-contact surfaces where bacterial film accumulation is a concern.

    Uncured resin from a drained vat can be filtered through a 100 μm mesh and reused if the material has not exceeded its pot life and has not been contaminated with cleaning alcohol. In production lines, tank-side viscosity drift is tracked with a Brookfield viscometer at 25°C, and the resin is replaced or blended when viscosity exceeds the supplier-specified upper limit. Contamination from loose powder, water, or non-approved cleaning solvents creates observable changes in recoating and scattered sidewall surface roughness. The material should be stored in sealed, light-proof containers between 5°C and 30°C; cold resin exhibits higher viscosity and should be allowed to equilibrate for 12 h before vat transfer.

    Differences from Unfilled Epoxy-Acrylate SL Resins and Ceramic-Filled High-Temperature Systems

    Three operational boundaries separate ProtoTherm 12120 from adjacent SLA material classes. General-purpose unfilled epoxy-acrylate resins produce smoother sidewalls and faster postcure but exhibit lower HDT and higher water uptake after postcure. Ceramic-filled high-temperature SL resins can exceed 200°C HDT but are more viscous, abrasive to recoater blades, and require thicker support structures due to higher shrinkage stress. ProtoTherm 12120 sits between these classes with a postcure HDT near 121°C, water absorption below 0.60%, and viscosity low enough for standard recoating without vat heating beyond 32°C. In comparison to water-resistant PolyJet photopolymers, the material offers a thermosetting SLA crosslink architecture that does not rely on soluble support removal from deep internal channels; however, PolyJet systems have finer layer thicknesses. The choice therefore depends on whether the dominant risk is dimensional drift from water exposure or layer-step surface finish.

    When Fabrication Tolerances Are Tighter Than ±0.1 mm, Thermal Postcure Compensation Must Be Applied Before Machining

    Thermal postcure causes a small additional linear shrinkage that is not fully predictable from green-state dimensions. Stereolithography bureaus report that parts scaled uniformly for green-state shrinkage still require local stock allowance of 0.2–0.5 mm on sealing faces and bearing bores before postcure, because thermal postcure shrinkage is anisotropic with respect to build axis and layer orientation. The coefficient of thermal expansion for the cured resin is cited in manufacturer literature as approximately 65–80×10–6 K–1 below the glass transition; during the postcure ramp, expansion followed by crosslinking shrinkage can produce non-recoverable deviations if the part is constrained. For this reason, parts are postcured unclamped and ideally supported on a flat ceramic or aluminum plate to allow uniform air access. Holes, slots, and dovetail features that must hold tolerances of ±0.05 mm are machined after postcure rather than built to final size.

    Green parts are initially cleaned in a two-stage isopropyl alcohol bath; residual solvent must be fully evaporated before thermal postcure because entrapped alcohol can cause microvoid formation at temperatures above 100°C. A post-clean air-dry period of 2–4 h at ambient or 30°C forced air is employed before ramp-up. Contact with strong alkaline solutions or chlorinated solvents is avoided because these agents can attack the cured network or leave surface residues that interfere with subsequent adhesive bonding. If bonding is specified, abrasion with 240-grit alumina paper followed by air-ionization treatment improves lap-shear repeatability, although published bond-strength data specific to this resin remain limited.

    Why Low Water Uptake Is Not Equivalent to Hydrolytic Stability in Continuous Immersion Service

    Water absorption and hydrolytic stability are distinct performance attributes. A low 24 h water uptake below 0.60% under ISO 62:2008 indicates limited initial gravimetric moisture uptake, but it does not by itself establish long-term retention of tensile strength and modulus in hot water. The ester and ether linkages in the photopolymer network can undergo hydrolysis at slow rates depending on water temperature and pH. Manufacturer literature positions ProtoTherm 12120 for intermittent water contact and humid environments rather than continuous immersion in boiling water or aggressive aqueous acid. For validation, programs commonly impose 1000 h exposure at 60°C in deionized water and then re-test tensile properties using ISO 527-2:2012. Published data for this specific configuration is limited, so service validation is considered mandatory before replacing a molded engineering thermoplastic.

    Postcure Oven Uniformity and Batch-to-Batch Variation

    Batch-to-batch variance in thermo-mechanical performance is linked less to resin lot chemistry than to postcure oven loading. On a forced-air oven with a 0.25 m³ working volume, dense loading can create a surface-to-core temperature lag exceeding 10°C during the ramp phase. Operators monitor internal oven air temperature and part surface temperature with a thermocouple attached to a sacrificial witness block, not to the actual part, to prevent local overheating. The witness block is placed at the center of the load and removed after the cycle to measure color change and degree of cure by hardness or FTIR where available. In an actual production environment, parts near the air inlet may darken if the inlet temperature exceeds 135°C; therefore, inlet deflectors are used to distribute air before it contacts the parts.

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