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DSM Somos NeXT Stereolithography (SLA) Prototyping Polymer

    • Название продукта: DSM Somos NeXT Stereolithography (SLA) Prototyping Polymer
    • 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 149617

    Как аккредитованная DSM Somos NeXT Stereolithography (SLA) Prototyping Polymer Factory, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка DSM Somos NeXT SLA prototyping polymer packaging: opaque, light-blocking plastic containers in 1 kg, 5 kg, and 10 kg quantities.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loading for DSM Somos NeXT SLA prototyping polymer: palletized containers, properly secured, MSDS labeled, dry, ventilated, ambient transport.
    Доставка DSM Somos NeXT SLA resin typically ships as a non-regulated liquid in original sealed, leak-proof containers. Keep away from heat, sparks, freezing, and direct sunlight. Use approved carriers and secondary containment. Consult the SDS and local regulations for handling, transport, and spill response.
    Хранение Store DSM Somos NeXT SLA resin in its original, tightly sealed container in a cool, dry, well-ventilated area away from direct sunlight, UV radiation, heat, and ignition sources. Maintain recommended temperature (typically 15–30°C); do not freeze. Keep away from food, drink, oxidizers, and initiators. Protect from moisture, contamination, and static. Use appropriate PPE and follow SDS/local regulations.
    Срок годности Shelf life is 12 months from manufacture when stored in original unopened containers at 18–25°C, away from direct sunlight.
    Применение прототипного полимера DSM Somos NeXT Stereolithography (SLA)

    For patient-specific anatomical models generated from CT/MR DICOM data, Somos NeXT stereolithography prototyping polymer is charged into the vat at 100 wt% as-supplied. No reactive diluent, photoinitiator spike, or inorganic filler is added by the testing laboratory; viscosity adjustment is not performed because any diluent introduction above 2 wt% shifts the working curve and invalidates the build parameters established for the 355 nm solid-state laser platform. The DICOM segmentation is converted into a watertight STL with a chordal deviation of 0.050 mm and sliced at 0.075 mm layer thickness using a galvo-scanned stereolithography machine with the build chamber held at 28–30 °C. Green parts are washed in ≥99.9% 2-propanol or TPM, with ultrasonic exposure limited to 3 min per batch to prevent edge swelling, then UV post-cured in a 365 nm chamber at 2–4 J/cm² and thermally post-cured at 60 °C for 30 min. Under ISO 13485:2016 design-control documentation, the printed article is classified as a non-implantable training or design-verification mockup. Skin-contact biocompatibility screening is conducted under ISO 10993-5:2009 and ISO 10993-10:2021, while implantable-series ISO 10993-6 is not applied without indication-specific evaluation. Published cytotoxicity data for this exact SLA resin grade in prolonged mucosal contact are limited; therefore, the terminal articles are restricted to anatomical models, surgical training phantoms, and handheld device housing prototypes that do not contact breached tissue or mucosal membranes for extended periods. Dimensional inspection is performed on CMM equipment after conditioning at 23 ± 2 °C and 50 ± 5 % RH for 24 h, because moisture uptake can otherwise mask true part geometry and compromise the STL-to-part comparison.

    Before an automotive interior clip enters soft-tool evaluation, Somos NeXT is built from undiluted photopolymer at 100 wt% solids, with the vat charge filtered through a 25 µm mesh but not compounded with impact modifiers, glass fibre, or mineral fillers. Such additions scatter the 355 nm laser beam, increase viscosity beyond the recoater leveling window, and generate inhomogeneous cure through the layer thickness. The prototype run uses 0.100 mm layer thickness, a hatch spacing of 0.10 mm, and support structures placed on non-cosmetic surfaces. After the build, parts are washed in ≥99.5% 2-propanol with ultrasonic agitation not exceeding 5 min, air-dried for 30 min, and post-cured under UV at 60 °C for 30 min. Mechanical acceptance is recorded under ASTM D638-14 and ISO 527-2:2012 for tensile properties, ASTM D790-17 for flexural modulus, and ASTM D648-18 for heat deflection temperature. The prototype file is retained within an ISO 9001:2015 traceability system, and automotive-specific action items are logged under IATF 16949:2016 control where the moulder requires PPAP-like dimensional evidence before soft-tool authorization. Post-cured components are sanded with P400 paper, primed with an adhesion promoter, and top-coated with a two-component polyurethane paint system mixed at the paint manufacturer’s specified ratio. Assembled clips are then subjected to insertion-removal cycling on the actual mating bracket rather than on a generic fixture to capture mounting-face deformation and snap-fit retention loss. Terminal finished parts include HVAC duct adapters, sensor brackets, interior trim clips, and instrument-panel sub-assembly mockups. The material is not a drop-in production ABS substitute for high-strain snap-fit retention features; notched Izod data under ASTM D256-23 must be compared with the production resin before hard tooling is committed.

    What Limits Wall Thickness in Consumer Electronics Housing Prototypes?

    Thin-wall enclosure projects using Somos NeXT encounter a process boundary where the SLA recoater blade must deposit a layer thinner than the resin can support in the green state without tearing. Side walls below 0.8 mm are therefore built at 0.050 mm layer thickness with a slowed recoater speed, not at 0.100 mm, and the resin remains undiluted at 100 wt%. Conductive fillers are not mixed into the vat because carbon-black or silver-coated copper dispersions raise viscosity beyond the recoater operating window and attenuate the 355 nm beam before complete depth penetration. Electromagnetic shielding is instead applied post-cure as a conductive acrylic coating at 25–50 µm dry film thickness, mixed and sprayed according to the coating supplier’s datasheet. Printed enclosures are washed in TPM under ultrasonic agitation for 3 min, post-cured at 60 °C for 30 min, tapped for brass inserts, and screened for compliance with IEC 62368-1:2018 mechanical enclosure requirements for ICT and AV equipment, RoHS 2011/65/EU restricted substances, and REACH EC 1907/2006 SVHC disclosure. The terminal outputs are handheld test housings, wearable device enclosures, and battery compartment prototypes that must survive drop testing and display no delamination at screw bosses or snap-fit edges.

    StandardProperty or requirementTesting conditionTypical acceptance criterion
    IEC 62368-1:2018Enclosure mechanical strengthImpact energy per clause 5.4No accessible hazardous part
    RoHS 2011/65/EURestricted substancesXRF screeningPb, Hg, Cd below Annex II limits
    REACH EC 1907/2006SVHC disclosureBOM reviewSVHC > 0.1 wt% declared
    ASTM D638-14Tensile strength/modulusType IV, 23 °CReported on datasheet
    ASTM D256-23Notched Izod impactNotched, 23 °CCompared to production resin

    RTV Silicone Tooling Masters and Vacuum Casting Transfer

    A Somos NeXT stereolithography master for room-temperature-vulcanizing silicone tooling is not treated as a disposable pattern. The pattern is post-cured to full conversion before sanding; otherwise, uncured acrylate at the surface contaminates the silicone cure and can create a tacky interface at the mold boundary. The resin is used at 100 wt% undiluted for the master pattern; the silicone RTV-2 grade is mixed at the catalyst-to-base ratio stated on its technical datasheet, commonly 10:1 by weight for condensation-cure systems, and is vacuum-degassed at −0.09 MPa to remove air bubbles from the mold body. Post-curing of the SLA master is performed at 60 °C for 30 min, after which surfaces are wet-sanded from P600 to P2000 and polished to SPI-A2, followed by application of a silicone-compatible release agent. The silicone mold is cured for 24 h at 23 °C before the first vacuum-casting cycle. The casting step uses a two-component polyurethane system mixed according to its datasheet and degassed before injection into the silicone cavity. Terminal outputs are low-volume polyurethane prototypes, gaskets, grommets, and overmolded grips in batch sizes of 5–30 parts. The process is documented under ISO 9001:2015 work instructions, and all RTV and PU consumables are screened against REACH EC 1907/2006 and RoHS 2011/65/EU restricted-substance lists. Dimensional drift between the SLA master and the cast part is checked with a CMM; shrinkage-compensation factors are derived from the RTV and PU suppliers’ published coefficient of linear shrinkage rather than from a single generic scaling constant.

    When Fluid Handling Manifolds Must Survive Humid Ageing and Pressure Cycling

    Water absorption in humid ageing of Somos NeXT manifolds is measured only after the printed part has been post-cured to full conversion, because residual acrylate groups react with absorbed moisture and produce dimensional drift during the first 24 h of water contact. The manifold is printed at 100 wt% undiluted resin with a wall thickness of 1.5 mm, 0.075 mm layer thickness, and a sealed internal channel layout that avoids support-material entrapment. After washing in TPM and UV post-curing at 60 °C for 30 min, the part is conditioned at 23 ± 2 °C and 50 ± 5 % RH for 24 h. Water absorption is tested under ISO 62:2008 and ASTM D570-98(2018), and tensile properties after immersion are recorded under ASTM D638-14 and ISO 527-2:2012. Pressure testing is performed with water at 23 °C using a pressure ramp of 0.1 MPa/min to the application-specific test pressure; the accept/reject boundary is defined by the final pump or valve operating envelope, not by a universal hydrostatic rating. Terminal finished parts include water pump manifold prototypes, valve body housings, filter head mockups, and coolant distribution blocks for laboratory endurance rigs. The material is not certified for potable-water contact under NSF/ANSI 61, and no claim of long-term hydrolytic stability in hot chlorinated water should be transferred from this prototype resin to a production-grade thermoplastic without additional testing.

    StandardMeasurementConditionRecorded parameter
    ISO 62:2008Water absorptionDistilled water, 23 °CMass change after 24 h
    ASTM D570-98(2018)Water absorptionImmersion, 23 °CPercent mass increase
    ASTM D638-14Tensile after humid ageingType IV, 23 °C, 50 % RHTensile strength retention
    ISO 527-2:2012Tensile modulus1 mm/minModulus after immersion
    Бесплатная цитата

    Конкурентоспособные цены на прототипирование полимеров DSM Somos NeXT Stereolithography (SLA), которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

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    Сертификация и соответствие требованиям
    Более подробное введение

    DSM Somos NeXT is an opaque white stereolithography photopolymer supplied as a single-component liquid resin for 355 nm solid-state laser exposure systems. The grade is designated for functional prototype builds in which dimensional stability, controlled tensile elongation, and low water absorption are required, but optical clarity is not. Because polymerization produces a thermoset network, the material is not subsequently melted or injection molded. It is processed on SLA platforms using layer thickness values of 0.10 mm or 0.15 mm. The resin is commonly handled in open or enclosed vats with active resin conditioning; equipment types include professional stereolithography systems with galvanometric beam steering and blade or vacuum recoating.

    Representative liquid-resin values reported by the manufacturer include a liquid density of 1.13 g/cm³ and a dynamic viscosity of approximately 260 mPa·s at 30 °C. The viscosity is high enough to require active resin bath conditioning during continuous builds. If the bath temperature is allowed to drift below 25 °C, recoating defects such as layer drag, entrapped air voids, and thickness variation near the platform periphery are more likely. If the bath is maintained above 35 °C, the pot life should be checked by a rising viscosity trend because extended exposure to elevated temperature can advance the resin’s dark polymerization.

    Why Does Opaque NeXT Resin Narrow the Recoating Window Compared with Low-Viscosity Stereolithography Resins?

    In SLA recoating, the doctor blade or vacuum blade must deposit a uniform liquid film before the next laser scan. The viscosity of Somos NeXT at 30 °C is roughly 260 mPa·s, which places it above many low-viscosity clear SLA resins. The consequence is not simply a slower recoating cycle; it is a changing film thickness across the build area when the resin temperature is non-uniform. Production lines that use deep vats and barrel-heated resin feeders show less temperature stratification than small open-vat machines. On machines without active resin heating, operators report that long overnight builds can produce visible horizontal bands in the lower portion of the part when ambient temperature falls below 20 °C. This failure mode is not a laser calibration problem but a recoating viscosity problem. The corrective action is to preheat and hold the resin at 28–30 °C before the build and to avoid setting layer thickness below 0.10 mm unless the recoating system is designed for high-viscosity photopolymers.

    The cured mechanical property envelope is summarized in the following datasheet-derived table. Tensile and flexural values are measured on post-cured specimens under the listed standards.

    Representative cured properties of DSM Somos NeXT from manufacturer datasheet
    Property Test method Representative value
    Cured solid density ASTM D792-20 1.17 g/cm³
    Tensile strength ASTM D638-14 41 MPa
    Tensile modulus ASTM D638-14 2380 MPa
    Elongation at break ASTM D638-14 8%
    Flexural strength ASTM D790-17 64 MPa
    Flexural modulus ASTM D790-17 2200 MPa
    Notched Izod impact ASTM D256-10 0.24 J/cm
    Unnotched Izod impact ASTM D256-10 0.55 J/cm
    Heat deflection temperature at 0.46 MPa ASTM D648-16 55 °C
    Heat deflection temperature at 1.82 MPa ASTM D648-16 46 °C
    Shore D hardness ASTM D2240-15 83
    Water absorption after 24 h ASTM D570-98 0.8%

    The 8% tensile elongation at break is significant for a thermoset SLA resin because it permits limited flexure in thin snap arms and mounting tabs without immediate fracture. The heat deflection temperature of 55 °C at 0.46 MPa and 46 °C at 1.82 MPa establishes a low thermal service ceiling; the resin is not intended for sustained load above 50 °C or for underhood thermal cycling. Water absorption of 0.8% after 24 h by ASTM D570-98 is lower than the moisture uptake commonly observed in water-clear SLA resins, which supports dimensional checks in non-condensing humidity.

    Laser Energy Density, Layer Thickness, and Green-State Dimensional Control

    Laser cure depth in NeXT is controlled by exposure energy density rather than by resin temperature alone. On 355 nm stereolithography systems, the required energy density for a 0.10 mm cure depth depends on beam diameter, scan spacing, and resin age. Production-level machines with solid-state 355 nm lasers typically expose the resin within a defined energy-per-unit-area window. Below the window, green-state parts delaminate at the interface between the last cured layer and the fresh liquid film. Above the window, sidewall overcure reduces small hole diameters, sharpens rib roots, and can close narrow slots. The observed sidewall overcure for positive features is geometry-dependent; published data for this specific configuration is limited, but process engineers commonly compensate by adjusting laser spot size and border scan offset rather than by changing bulk resin temperature.

    Anisotropy is a further processing constraint. Tensile bars printed in the Z axis can show lower elongation than XY-printed bars because the interlayer boundary is the weakest crack path. Build orientation should therefore place snap-fit deflection axes in the XY plane where possible. For hole diameters below 2.0 mm, expected shrink and overcure require test builds at the intended layer thickness, because datasheet shrinkage values do not capture local feature-scale error.

    Post-cure is required to stabilize the final network. Green parts are first washed with recommended solvents to remove uncured surface resin, then exposed to ultraviolet radiation in a chamber that provides both UVA and visible-range lamp output. After UV post-cure, a thermal soak at 60–80 °C for 2–4 h is used in many SLA production lines to complete crosslinking and reduce residual uncured monomer. Thick sections above 6 mm may retain heat during UV post-cure; therefore, temperature during post-cure should be monitored when batches contain mixed wall thicknesses. If post-cure is shortened below the manufacturer’s recommended energy dose, tensile strength and heat deflection temperature can remain below the datasheet values. If post-cure is doubled beyond the saturation point, little additional stiffness is obtained and the part surface may show ambering. The resin’s water absorption specification of 0.8% per ASTM D570-98 should be used only as a relative benchmark, not as a marker for hydrolytic stability in continuous water immersion.

    When Snap-Fit Assemblies and Mounting Boss Features Require Elongation Without Thermoplastic Tooling

    Snap-fit prototypes made from Somos NeXT are most appropriate for low-cycle assembly verification rather than high-cycle production life testing. The resin’s 8% tensile elongation, measured by ASTM D638-14, permits limited bending during snap engagement; however, the crosslinked network does not exhibit the multiple-cycle recoverable deformation of impact-modified polypropylene or polycarbonate. For a cantilever snap arm, the maximum bending strain should be evaluated against the outer-fiber strain limit derived from tensile elongation, and the arm should be oriented in the XY build plane. Threaded metal inserts and self-tapping screws can be installed in printed bosses, but the boss wall should be maintained above 1.5 mm to avoid crack initiation from hoop stress. Mounting bosses are more reliable when printed with an outer diameter that is post-machined with a standard reamer rather than used as-printed, because SLA layer seams can create stress concentrations under screw torque.

    The grade is also used for silicone RTV tooling master patterns, where the part must survive vacuum degassing and room-temperature vulcanization. The low moisture absorption and opaque surface allow inspection of surface defects under contrast lighting. The maximum service temperature of 46 °C at 1.82 MPa means that the material should not be used as a master for high-temperature molding compounds or as a permanent mold insert.

    Compared with transparent SLA photopolymers, Somos NeXT sacrifices optical clarity for lower moisture uptake and a more uniform opaque surface after post-cure. Transparent SLA resins are selected when refractive clarity or internal flow visualization is required, but they often require polishing and show yellowing after extended UV post-cure. High-temperature SLA resins are selected when HDT values exceed 100 °C, but their elongation at break is typically below 3% and they can be too brittle for snap-fit action. The following class-level table is provided for differentiation; product-specific datasheets must be used before final resin substitution.

    Class-level comparison of SLA resin behaviours used to position Somos NeXT
    Material class Tensile strength, ASTM D638-14 Elongation at break, ASTM D638-14 Heat deflection temperature at 0.46/1.82 MPa, ASTM D648-16 Typical optical state
    Somos NeXT 41 MPa 8% 55/46 °C Opaque white
    Transparent SLA resins 40–55 MPa 3–7% 40–50/40–45 °C Transparent, may yellow after UV post-cure
    High-temperature SLA resins 35–60 MPa 1–3% 65–250/50–200 °C Opaque or ceramic-filled

    In medical device housing prototypes, the resin’s opacity and low water absorption support dimensional verification in humidity-controlled metrology laboratories. Parts should be conditioned in the metrology environment until mass stabilizes, because even 0.8% water absorption can produce measurable dimensional drift in long thin features. For production lines that use coordinate measuring machines with touch probes, the Shore D hardness of 83 at ASTM D2240-15 is sufficient to resist probe indentation during normal inspection, but high-contact-force scanning may leave surface marks. The recommended temperature ceiling during inspection is below 40 °C to avoid localized softening of thin sections under probe pressure.

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