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DSM Somos ProtoTherm™ 12110 Water-resistant resin for stereolithography, UV Postcure

    • Название продукта: DSM Somos ProtoTherm™ 12110 Water-resistant resin for stereolithography, UV 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 732439

    Как аккредитованная DSM Somos ProtoTherm™ 12110 водоустойчивая смола для стереолитографии, UV Postcure завод, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение водостойкой смолы DSM Somos ProtoTherm™ 12110 для стереолитографии

    Prototype coolant-circuit components from DSM Somos ProtoTherm 12110 are screened on a closed-loop flow rig charged with a 50:50 by volume ethylene glycol / demineralised water mixture at 90 °C and 1.2 bar gauge pressure. The test assembly includes a thermostat cover plate with a 120 mm sealing flange and a coolant outlet connector with an 18 mm internal bore. Builds are generated at 50 µm layer thickness on a 355 nm stereolithography platform; supports are placed away from sealing faces to prevent witness marks. Green parts are cleaned in a 2:1 by volume blend of tripropylene glycol monomethyl ether and isopropanol, inspected for residual solvent, then UV-postcured at 365 nm for 40 min at 60 °C chamber temperature, corresponding to a measured UVA dose of 28–32 J/cm². Residual acrylate unsaturation is monitored by Fourier transform infrared spectroscopy at 810 cm⁻¹; the postcure cycle is accepted only when the vinyl absorption peak has fallen below 5% of the ester carbonyl reference signal. Dimensional stability after coolant exposure is verified against a requirement of ±0.15 mm on the flange diameter; parts outside this band are re-postcured and re-measured. Tensile retention is measured on simultaneously built ASTM D638-14 Type IV specimens after 168 h immersion in the same coolant mixture at 90 °C. Water absorption is tracked following ISO 62:2008 at 23 °C for 24 h. The finished prototypes are used on engine test beds to validate hose retention features and coolant-flow distribution before metal tooling is released. Operational boundaries include sensitivity to under-curing: if the postcure dose drops below 20 J/cm², residual acrylate groups absorb coolant and produce measurable flange swelling under clamp load. The resin is not a substitute for production glass-filled polyamide in continuous underhood service.

    How Does the Resin Perform in Dishwasher Spray-Arm Prototypes Under IEC 60335-1?

    Because the spray-arm channel geometry traps uncured resin, the component is oriented with the internal channel axis at 30° from vertical to reduce trapped resin and facilitate drain. Spray-arm prototypes built from ProtoTherm 12110 are assessed in a wash test station configured to IEC 60335-1:2020 subclause 15.2, using a wetting-agent solution prepared at 0.1 g/L sodium dodecylbenzene sulfonate in demineralised water at 55 °C. The flow rate through the spray-arm manifold is 3.5 L/min, delivered through a 12 mm supply bore, with jet orifices of 0.9 mm nominal diameter. The layer thickness is 50 µm; the cleaning sequence uses 2:1 TPM/IPA by volume, followed by pressurised air at 2 bar to clear blind holes. UV postcure is performed in two stages: 15 min at 40 °C, then 45 min at 60 °C, giving a cumulative UVA dose of approximately 35 J/cm². After postcure, the spray arm is mounted on a rotating rack and checked for jet angle distribution and rotational balance. Water absorption is measured on ISO 62:2008 coupons at 23 °C for 24 h; tensile strength retention is measured per ASTM D638-14 after 7 d immersion at 60 °C. Chemical resistance to the detergent solution is screened using ASTM D543-14. A specific processing incompatibility is observed when ammonia-based rinse aids are applied before complete postcure: residual monomer reacts with the amine and produces surface tack. The terminal component is a functional dishwasher spray-arm prototype used to validate hole count, spray coverage, and snap-fit retention before injection moulding.

    Wet-service screening matrix for stereolithography prototypes
    AttributeMethodConditionScreening limit
    Water absorptionISO 62:200823 °C, 24 h< 1.0%
    Tensile strength retentionASTM D638-1460 °C water, 7 d> 80%
    Chemical resistanceASTM D543-140.1 g/L NaDBS, 55 °CNo visible pitting or > 0.2 mm edge loss
    Ingress protectionIEC 60529:2013 IPX512.5 L/min jet, 3 minNo leakage through housing seals

    In short-run faucet development, aerator housings and shower restrictor discs fabricated from ProtoTherm 12110 are exposed to simulated municipal water containing 150 mg/L CaCO₃ total hardness and 500 ppm free chlorine, prepared by diluting sodium hypochlorite stock 1:100 by volume into hard water at 60 °C. The exposure interval is 72 h, after which the parts are examined at 10x magnification for micro-crazing, edge loss, and surface whitening. The aerator housing is built at 100 µm layer thickness with the threaded M22 axis vertical; the restrictor disc is built flat with a 0.5 mm annular flow gap. After build, parts are cleaned in 2:1 TPM/IPA, dried at 30 °C for 2 h, and postcured at 365 nm to a total dose of 25 J/cm². Postcure is followed by 24 h conditioning at 23 °C and 50% RH before water contact. The aerator housing is flow-tested at 6 L/min and 2 bar line pressure, and thread torque to failure is recorded with a dial torque wrench. Compliance screening uses ASTM D543-14 for chlorine resistance and ISO 62:2008 for water absorption; tensile properties are not evaluated on thread sections because of geometry. The resin is not certified to NSF/ANSI 61 or NSF/ANSI 51 for potable-water contact, so these components are used only for short-run performance evaluation, fit checks, and flow-visualisation studies, not for sale into plumbing systems. The terminal components are faucet aerator prototypes and shower restrictor discs used on a laboratory flow bench.

    When Marine Hatch Latch Prototypes Require Hydrolysis Resistance After 60 J/cm² Postcure

    Marine deck hardware prototypes from ProtoTherm 12110 are postcured to a cumulative UVA dose of 60 J/cm² at 365 nm before beginning ISO 9227:2017 salt-spray exposure. The salt solution is prepared as 5% NaCl by mass in deionised water at 35 °C, with pH maintained between 6.5 and 7.2. The latch body includes a 6 mm hinge-pin bore, a 2 mm drain slot, and a 95 mm top flange. Build parameters use 75 µm layer thickness and support placement limited to the non-cosmetic underside. Green parts are cleaned in 2:1 TPM/IPA, dried for 3 h at 30 °C, then postcured in two 30 J/cm² passes separated by a 2 h cooling interval to avoid local exotherm. After postcure, the parts are conditioned at 23 °C and 50% RH for 24 h before salt-spray testing. Tensile retention is measured on ASTM D638-14 Type IV bars exposed in the same chamber for 96 h. Dimensional checks before and after exposure isolate hinge-bore growth; a pass limit of ±0.10 mm is used. Alkaline marine cleaners containing amines or quaternary ammonium compounds are kept away from green and partially cured parts because they accelerate hydrolysis at residual monomer sites. The terminal components are hatch latch prototypes and deck drain grates used for load-deflection testing and hardware integration studies on yacht deck mock-ups.

    For low-pressure HPLC manifold prototypes, the build geometry uses 50 µm layer thickness and straight internal channels of 1.0 mm minimum nominal diameter. The test mobile phase is 70:30 v/v acetonitrile/water with 0.1% formic acid by volume. Because published compatibility data for ProtoTherm 12110 in this specific mobile phase configuration is limited, a 24 h ASTM D543-14 immersion screening is performed with the actual mobile phase before any campaign. The manifold is cleaned with isopropanol and purged with nitrogen at 0.5 bar to remove residual solvent from the channels; it is then postcured at 365 nm for 40 min, accumulating approximately 30 J/cm². Postcure is followed by 48 h conditioning at 23 °C and 30% RH. The finished manifold includes 1.6 mm through-channels and 10-32 coned ports for capillary connections. Pressure testing is limited to 1.5 bar to stay within the low-pressure regime. Acetonitrile-rich phases may induce microcracking beyond 48 h of continuous exposure, so service life must be established per batch and per channel geometry. The assembly is used only as a laboratory fluidic test manifold, not as a patient-contact or diagnostic component. This avoids any ISO 10993-1 claim and keeps the application within benchtop instrumentation.

    CMM fixture wet-shop tolerancing and UV postcure shrinkage compensation

    When production CMM fixture plates and coolant-deflector jigs from ProtoTherm 12110 are used in wet-shop conditions, dimensional stability is evaluated by immersion in a 5% v/v water-miscible cutting-fluid solution at 20 °C for 72 h. The build file applies anisotropic shrinkage compensation factors of 0.25–0.40% in the X/Y axes and 0.15–0.25% in the Z axis; these values are determined from a 100 mm gauge artefact checked on a CMM operating to ISO 10360-2:2009. Layer thickness is set at 100 µm to reduce build time, with support structures placed on the underside only. After build, parts are cleaned in 2:1 TPM/IPA, dried at 30 °C for 2 h, and UV-postcured at 365 nm for a total dose of 25 J/cm² at 40 °C chamber temperature. Thermal warpage is minimised by rotating the fixture plate 90° halfway through the postcure cycle. After postcure, parts are stabilised at 23 °C and 50% RH for 48 h before final CMM verification. If the pre-cure storage environment exceeds 60% RH, surface whitening may occur during UV exposure; a pre-drying step of 2 h at 40 °C is applied. The terminal components are CMM fixture plates with threaded inserts and coolant-deflector jigs that must hold positional tolerances of ±0.20 mm over a 300 mm working envelope. The resin is not recommended for direct contact with alkalescent cutting fluids above 50 °C for continuous production use.

    Бесплатная цитата

    Конкурентоспособная DSM Somos ProtoTherm™ 12110 Водонепроницаемая смола для стереолитографии, цены UV Postcure, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

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    Более подробное введение

    DSM Somos ProtoTherm™ 12110 is a liquid photopolymer formulated for laser-based stereolithography and supplied as a water-resistant resin system after ultraviolet postcure. The material is processed on SL platforms operating with 355 nm solid-state lasers and typical layer thicknesses between 0.05 mm and 0.15 mm. The designation belongs to the ProtoTherm family, in which final mechanical and thermal properties are not attained at the end of the laser build; a controlled UV postcure step is required to complete acrylate conversion. Unlike optical-clear water-resistant grades, ProtoTherm 12110 presents a translucent amber to opaque appearance depending on wall thickness and postcure dose. The uncured liquid is a reactive acrylate-containing formulation and is supplied under hazard communication obligations of CLP, Regulation EC 1272/2008. In production environments, the grade is selected for short-run fluid-contact manifolds, inspection gauge bodies, and temperature-resistant tooling inserts where moisture uptake and low-load thermal deflection of conventional stereolithography resins are limiting. The product is characterized by low moisture absorption relative to general-purpose SL resins, but it is not a replacement for true thermoplastic water-resistant polymers in continuous submersion without application-specific validation.

    Because stereolithography green-state conversion is incomplete when the platform is lowered, residual unpolymerized acrylate remains within the network. Green parts must be solvent rinsed to remove the liquid resin film, dried, and then subjected to UV postcure. Tensile modulus in the green state is typically 70–80% of the final postcured value; skipping or shortening the postcure cycle lowers heat deflection temperature, raises water absorption, and can produce surface tack. The term water-resistant therefore applies to fully postcured material, not to green or under-cured surfaces. Production experience shows that parts exposed to humid air before postcure may develop surface haze and local plasticization, particularly in high-humidity environments above 60% RH.

    What limits dimensional stability after UV postcure in water-resistant SL photopolymers?

    Residual acrylate conversion, anisotropic layer consolidation, and irradiance uniformity in the UV chamber determine final part stability. In production-scale stereolithography with 355 nm solid-state lasers, green-state parts of ProtoTherm 12110 are rinsed in 2-propanol; excessive solvent immersion leaches unreacted monomer and promotes surface microvoids. After drying, the UV postcure step increases crosslink density, raises the glass transition temperature, and reduces equilibrium moisture uptake. The rate of conversion is irradiance-dependent. UV chambers delivering 20–30 mW/cm² in the UVA range are commonly used, but shadowed internal channels may receive less than 50% of the nominal surface dose. Under-cured zones therefore retain higher hydrophilicity and lower modulus than the surrounding network. For manifold parts with blind bores, postcure protocols should include internal light guides or a secondary thermal hold to avoid low-conversion regions at thread roots and sealing lands. Published data for specific chamber-to-part thermal loadings in the 12110 formulation is limited; the absolute postcure duration must be established by part mass, wall thickness, and chamber uniformity.

    Uncured viscosity at 30 °C is typically within 200–300 mPa·s, measured according to ISO 2884-1, allowing conventional recoater blade passage at standard layer heights. Batch-to-batch viscosity variation can reach approximately ±10%; vat temperature control within ±2 °C compensates for most viscosity drift. Slow vat rotation at 5–10 rpm for approximately 30 min before large-platform builds homogenizes the oligomer blend without inducing bubble formation. Bubbles larger than 0.1 mm in diameter cause print voids and should be allowed to rise for 15–30 min after agitation. The material does not contain heavy ceramic filler, so recirculating vat systems experience lower blade wear and settling than filled high-modulus SL grades.

    The table below lists representative postcure values from manufacturer technical literature. Each value should be revalidated against the current product datasheet because laser scan spacing, chamber irradiance, and postcure dose alter final conversion.

    PropertyTest MethodRepresentative Value
    Tensile strengthASTM D638-1458–63 MPa
    Tensile modulusASTM D638-142.8–3.0 GPa
    Elongation at breakASTM D638-144–5%
    Flexural strengthASTM D790-1795–105 MPa
    Flexural modulusASTM D790-172.7–3.1 GPa
    Notched Izod impactASTM D256-2318–22 J/m
    Heat deflection temperature at 0.46 MPaASTM D648-18260–268 °C
    Heat deflection temperature at 1.82 MPaASTM D648-1860–65 °C
    Water absorption, 24 hASTM D570-220.35–0.45%
    DensityISO 1183-1:20191.15–1.17 g/cm³

    The notched Izod impact range of 18–22 J/m places the postcured polymer in a stiff, moderately brittle regime. Sharp internal corners, thread roots, and snap features require radii greater than 1.0 mm to reduce stress concentration. The large difference between the 0.46 MPa and 1.82 MPa HDT values is significant: the high-temperature utility of ProtoTherm 12110 is strongly load-dependent. Components under continuous mechanical load should not be designed solely against the 0.46 MPa HDT value.

    Thermal and Hygroscopic Performance After Standard Postcure

    Fully postcured ProtoTherm 12110 exhibits heat deflection temperature under a 0.46 MPa flexural load of approximately 260–268 °C as tested per ASTM D648-18. At the higher 1.82 MPa load, the reported HDT falls to 60–65 °C. The glass transition temperature measured by dynamic mechanical analysis is typically above 120 °C, but exact values depend on postcure dose and laser scan strategy. The 24-hour water absorption in distilled water is typically less than 0.5% by mass under ASTM D570-22. This low hygroscopic uptake supports use in humid or splash-contact environments, but immersion at elevated temperature accelerates diffusion and can promote hydrolytic degradation of ester-containing network segments. There is no published data for continuous immersion beyond 30 days; parts intended for submersible service must be tested under application-specific hydrostatic pressure and temperature cycling.

    Dimensional change after 7-day immersion in 23 °C water is generally below standard caliper measurement uncertainty for thin sections, while long-term saturated conditioning may produce slight expansion and reversible weight gain. The material is not suitable for continuous exposure to strong acids, strong bases, or aggressive solvents such as acetone or methylene chloride. Chemical compatibility testing should follow ASTM D543-21 or ISO 175:2010 for candidate process fluids. Isopropyl alcohol used for green-state cleaning causes reversible swelling in uncured or partially cured surfaces but is removed by drying before UV postcure.

    Parts intended for dimensional stability over humid cycling should undergo a postcure anneal at 80–100 °C for 2–4 h after UV exposure to relieve internal stresses. Humid cycling between 20% RH and 80% RH at 23 °C can produce reversible length changes on the order of 0.05% for thin sections. For high-precision metrology fixtures, sealing primer or structural tie-coats reduce moisture-driven movement at exposed layer boundaries.

    When ProtoTherm 12110 Replaces Machined Acetal or Glass-Filled Nylon in Fluid-Contact Fixtures

    The substitution is justified where complex internal cooling channels, thin-walled manifolds, or conformal tooling inserts are required. Compared with machined acetal copolymer, ProtoTherm 12110 offers higher HDT under low stress but lower tensile elongation and lower notched impact. Machined glass-filled nylon has higher moisture uptake and anisotropic shrinkage; the photopolymer’s lower water absorption and layer-based stress distribution may improve dimensional reproducibility in humid plant air. However, the postcured polymer remains a crosslinked thermoset: it cannot be solvent welded, tapped threads under repeated disassembly may degrade, and adhesive bonding requires surface abrasion with compatible methyl methacrylate or epoxy adhesives. When replacing PEEK or polysulfone in hot-water service, the 1.82 MPa HDT must be compared against actual stress for each flange, boss, or sealing face rather than against the low-load 0.46 MPa value.

    On production SL platforms, build chamber temperature is often held at 28–35 °C to stabilize viscosity and recoater shear. The absence of heavy ceramic filler reduces blade wear and settling; homogenization by slow rotation before vat transfer is nonetheless required after storage because oligomer stratification can alter green-state modulus. Laser fill pattern, hatch spacing, and slice thickness alter cure depth and green-state tensile strength. Operator-adjusted parameters must remain within the manufacturer’s validated process window. In high-humidity environments, pre-drying of the platform and part is advised before postcure to prevent surface haze and local plasticization. Use of aggressive solvent degreasing agents containing chlorinated hydrocarbons should be avoided because they induce stress cracking in green or partially cured parts.

    Production-scale builds on platforms with build envelopes of 650 mm × 750 mm × 550 mm may show edge-to-center variation in laser irradiance. Part placement near the build perimeter can exhibit 5–10% lower green-state tensile modulus. High-load-bearing components should be staggered toward the center of the platform, and multiple thin walls should not be stacked parallel to the recoat direction without additional support.

    UV Chamber Throughput and Green-State Cleaning

    Throughput is governed less by laser scan time than by green-state cleaning and UV postcure occupancy. In a typical facility using a 40 W UV chamber with rotating part fixture, a 60–90 min postcure cycle is used for parts up to 10 mm wall thickness. Thicker sections may require stepped irradiance ramps to avoid exothermic surface overheating. The radiated surface temperature can exceed 60 °C if parts are packed too closely, causing local overcure and embrittlement. Cleaning in 2-propanol reduces residual liquid resin but swells the green network; a final rinse in deionized water followed by dry compressed air is common. Work practices should include ventilation and nitrile glove barriers because uncured resin is a skin sensitizer under CLP, Regulation EC 1272/2008.

    The relationship between UV dose and tensile modulus is nonlinear. At low doses below 1.0 J/cm² in the UVA range, residual unpolymerized acrylate acts as a plasticizer, lowering modulus and increasing water absorption. At doses above 8–10 J/cm², surface discoloration and embrittlement may occur. Medium-pressure mercury or LED sources emitting at 365–405 nm are both used. LED systems with narrower spectral output produce shallower through-thickness conversion unless cycle time is extended. Rotating fixtures with reflective aluminum chamber walls improve dose uniformity on complex geometries, but shadowed internal channels may receive less than 50% of the nominal surface dose. For manifold parts with blind bores, internal light guides or secondary thermal cure are required to avoid low-conversion zones at thread roots.

    In comparison with Somos WaterShed XC 11122, which offers optical clarity and low water absorption for fluid-flow visualization models, ProtoTherm 12110 sacrifices transparency for a higher thermal deflection envelope and reduced long-term moisture uptake at elevated temperature. Against Somos NeXt, the 12110 grade displays higher HDT and lower elongation, making it less suitable for snap-fit covers but more suitable for high-temperature inspection fixtures. Against ceramic-filled Somos PerFORM, ProtoTherm 12110 processes with lower blade wear and produces lower slurry viscosity but also lower modulus in the finished part. The product is therefore positioned for short-run tooling, wind tunnel instrumentation, and fluid manifolds where both water resistance and moderate load-bearing thermal resistance are selection criteria.

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