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DSM Somos PerFORM Stereolithography Polymer, UV Postcure

    • Название продукта: DSM Somos PerFORM Stereolithography Polymer, UV Postcure
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    Код ТН ВЭД 747265

    Как аккредитованный DSM Somos PerFORM Stereolithography Polymer, 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 DSM Somos PerFORM Stereolithography Polymer, UV Postcure

    For high-temperature aerodynamic test models, PerFORM stereolithography resin is processed with the material charged 100% neat into the vat; no reactive diluent or solvent is added because the as-supplied low-viscosity formulation is adjusted for 355 nm laser recoating. Production-scale platforms such as 3D Systems SLA 5000/7000 require vat temperature and resin level to remain inside the datasheet window, since exothermic polymerization during large cross-sections can create thermal drift that shifts recoating blade dynamics and causes batch-to-batch surface quality variation. Layer thickness is set between 0.05 mm and 0.10 mm, with build orientation fixed at 30° to 45° from the airflow direction to reduce stepped leading-edge drag. Internal cavities receive drain holes of no less than 2.0 mm diameter to remove uncured resin before UV postcure; the postcure is performed in a 365–405 nm flood chamber using the manufacturer’s recommended dose, and overpostcure beyond the specified dose can induce surface microcracking in thick bonded sections. Mechanical and thermal qualification for wind-tunnel service uses ISO 527-2:2012 for tensile properties, ASTM D638-14 for tensile modulus, ASTM D790-17 for flexural properties, and ISO 75-2:2013 for heat deflection temperature at 0.46 MPa and 1.80 MPa. Terminal finished product types include scale wind-tunnel models, aerodynamic test vanes, and flow visualization fixtures.

    Can UV-Postcured PerFORM Withstand Short-Run Injection Molding Thermal Spikes?

    Short-run injection mold inserts produced from this resin are evaluated for edge retention and compressive deformation under melt pressure rather than for long-term production tool life. The resin is used at 100% neat vat loading with no reinforcing fiber or metal filler added; the resulting anisotropic properties require build orientation to place the cavity sidewall parallel to the z-axis only when compressive stress is aligned with the layer plane. Layer thickness is held at 0.05 mm for cavity surface finish, and UV postcure is executed in a 365–405 nm chamber until the manufacturer’s conversion target is reached; postcure under-dose leaves residual unreacted acrylate that softens during polymer injection, while overpostcure increases brittleness at sharp gate regions. In operation, the insert is mounted into a low-clamp-force injection machine below 50 tonnes, and the melt temperature is limited to grades such as unfilled polypropylene or thermoplastic elastomer; peak mold surface temperature should remain below the heat deflection temperature at 1.80 MPa determined by ISO 75-2:2013. Compressive strength is verified via ISO 604:2002, and flexural modulus via ASTM D790-17; published data for this specific insert configuration is limited, so a sacrificial first-shot validation is required before any customer-facing molding trial. Finished product types include short-run injection mold inserts, wax injection tooling, and polyurethane casting master patterns.

    Standards verification matrix for PerFORM downstream applications
    Standard designationDownstream applicationVerification objectiveBoundary or limitation
    ISO 527-2:2012 / ASTM D638-14Wind-tunnel models, fixturesTensile modulus and strengthBuild orientation dependence
    ISO 75-2:2013 / ASTM D648-18Rapid tooling, electrical, underhoodHeat deflection temperature at 0.46 MPa and 1.80 MPaValid only after UV postcure
    ISO 604:2002Injection mold insertsCompressive strengthz-axis values may be lower
    ISO 3451-1:2019 / ASTM D2584-18Investment casting patternsAsh contentFoundry threshold is alloy-specific
    IEC 60695-2-11 / UL 94Electrical housingsGlow wire and flame classVerify against current UL Yellow Card
    ISO 175:2010 / ASTM D543-20Underhood componentsChemical resistanceLong-term wet exposure validation required
    RoHS 2011/65/EU / REACH 1907/2006All scenariosMaterial complianceSDS updates may alter status

    Investment casting pattern production evaluates burnout residue because ceramic shell cracking and metal contamination are the primary failure modes. The material is introduced as a 100% neat photopolymer pattern with no wax filler added; hollow pattern designs use wall thicknesses between 2.0 mm and 4.0 mm and drain openings of at least 2.0 mm to permit uncured resin removal prior to UV postcure and to reduce thermal expansion stress during burnout. After stereolithography at 355 nm and UV postcure in a 365–405 nm chamber, the pattern is mounted on a wax sprue tree, coated with colloidal silica prime slurry, stuccoed with alumino-silicate grain, and dried at 23°C–25°C and 30%–50% RH until shell thickness reaches foundry specification. Burnout is performed in a ventilated furnace with ramp control between 700°C and 1000°C; rapid heating of solid photopolymer patterns can generate internal pressure that cracks the shell, so the ramp rate is restricted by the foundry based on wall thickness. Ash content is assessed according to ISO 3451-1:2019 or ASTM D2584-18, and foundry qualification requires residue below the specification threshold for the alloy being poured; published data for this specific configuration is limited and should be established by a first-article shell trial. Terminal product types include turbine blade patterns, pump impeller patterns, and valve body patterns for low-volume investment casting.

    Electrical Connector Housings Demand Dimensional Stability Above 150°C

    Connector housings and sensor brackets made from PerFORM are produced neat at 100% vat loading; no conductive carbon black or flame-retardant masterbatch is added because such additives would alter the viscosity and cure kinetics of the 355 nm process. The build uses 0.05 mm layer thickness for snap-fit detail and contact retention features, and the parts are UV-postcured in a 365–405 nm chamber to elevate thermal resistance before any electrical testing. On production SLA platforms, humidity above 60% RH in the vat environment has been observed to affect recoating and should be controlled through enclosure dryers. Compliance for this application is anchored to IEC 60695-2-11 glow-wire testing, UL 94 flammability classification as listed on the current UL Yellow Card, RoHS 2011/65/EU and REACH 1907/2006 material compliance declarations. Because the unfilled photopolymer is not inherently flame-retardant, any electrical enclosure requiring V-0 performance must be independently tested; published data for this specific configuration is limited. Terminal product types include high-temperature connector housings, relay bases, sensor brackets, and coil bobbins for short-run electrical assembly.

    Before any build orientation is locked, underhood fluid and air handling prototypes require screening against hot coolant, humid air, and underbonnet temperature cycling. The resin is filled neatly at 100% by weight into the SLA vat; no additional impact modifier or fiber reinforcement is used because the as-supplied formulation is designed for high stiffness at elevated temperature. Layer thickness for engine bay components is typically 0.05 mm to 0.10 mm, with vertical flanges oriented away from unsupported overhangs to reduce peel-related distortion. After 355 nm stereolithography and UV postcure in a 365–405 nm chamber, parts are exposed to 50:50 ethylene glycol–deionized water at 80°C in accordance with ISO 175:2010 and ASTM D543-20 to quantify mass change, dimensional swell, and hardness loss; thermal shock resistance is evaluated under SAE J1455 when the component is intended for vehicle-level validation. Since long-term creep and hydrolysis data for this specific photopolymer configuration are limited, any continuously wetted component must be validated on a vehicle-duty profile rather than by short-term soak alone. Terminal product types include air intake manifold prototypes, coolant pump housings, sensor brackets, and battery pack prototype mounting brackets.

    When PerFORM Replaces Machined Aluminum in CMM Fixture Applications

    For coordinate measuring machine fixtures and assembly gauges, the substitution of machined aluminum with a photopolymer is only viable when postcure shrinkage and ambient moisture uptake are accounted for. The material is used at 100% neat resin loading; no aluminum powder or glass bead filler is added, so the coefficient of thermal expansion and creep behavior differ from the metallic baseline. A layer thickness of 0.05 mm is specified for datum pad flatness, and the build is UV-postcured in a 365–405 nm chamber followed by a conditioning period at 23°C and 50% RH until dimensional drift stabilizes. Reference holes are reamed or bored after postcure to H7 tolerance rather than relying on as-printed dimensions, because residual shrinkage can vary between build axes in production batches. Compliance with dimensional verification is assessed under ISO 10360-2:2009 for CMM performance and ISO 9001:2015 for process control, while mechanical stability is supported by ASTM D638-14 and ISO 75-2:2013. Since creep under sustained clamping pressure is not fully characterized, fixtures should be re-calibrated at intervals determined by ISO 899-1:2003 tensile creep data generated for the specified build orientation. Terminal product types include CMM fixtures, assembly jigs, checking gauges, and reference masters for short-run inspection.

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    Более подробное введение

    DSM Somos PerFORM Stereolithography Polymer, UV Postcure is a filled photoreactive stereolithography resin supplied for processing on 355 nm laser systems. The uncured material is an opaque high-viscosity suspension with a published density of approximately 1.61 g/cm³ and a viscosity near 2,500 cP at 30 °C; these properties require controlled vat temperature and periodic stirring after idle periods to maintain filler dispersion. Green parts are washed and then exposed to UV postcure before reaching the published mechanical profile. After postcure, the material develops a flexural modulus in the 9,000–10,000 MPa range and a heat deflection temperature above 250 °C at 0.46 MPa when tested in accordance with ASTM D648-18. The product is specified for high-stiffness fixtures, tooling, wind tunnel models, and dimensional master patterns.

    What Processing Window Governs Recoat and Layer Formation?

    The filled nature of the formulation narrows the recoating window relative to unfilled stereolithography resins. Build temperature is normally held at 28–32 °C because viscosity rises as temperature falls, increasing layer thickness variability and the risk of recoater blade chatter. At a layer thickness of 100 µm, recoater speed must be reduced until the recoat surface shows no visible fill depletion; production-scale units with a 250 mm build platform and 100 µm blade gap typically require slower recoater travel than clear or ABS-like materials. Filler settling occurs when the vat is idle for extended periods. If the machine remains idle for more than 60–90 minutes, a slow vat stir cycle is recommended before the next build start. Batch-to-batch viscosity variation of approximately ±10% may be observed, and this variation can shift the required recoat speed. Published data for this specific formulation’s settling rate is limited; operators should verify vat homogeneity by checking density or solids content after extended idling.

    The filled suspension is abrasive relative to unfilled resins. Production vat systems with a 250 mm build platform and 100 µm blade gap show accelerated recoater edge wear, particularly at the vat walls where filler can accumulate. The blade should be inspected for scoring and replaced at intervals determined by build hours rather than by visual coating quality alone. Surface streaking that follows the recoater direction is an early indicator of filler accretion and can produce layer-to-layer density variation. Published wear-rate data for this specific formulation is limited; the interval should be calibrated against the build volume and idle time of each machine.

    Mechanical Properties at 23 °C and 50% Relative Humidity After UV Postcure

    Representative postcure property ranges are shown in Table 1. The values are compiled from supplier-published datasheet figures and test reports using the indicated methods. The material is considered rigid and low-elongation, which distinguishes it from unfilled and toughened stereolithography resins.

    PropertyTest MethodTypical Range
    Solid densityISO 1183-1:20191.60–1.62 g/cm³
    Tensile strength at breakASTM D638-1472–80 MPa
    Tensile modulusASTM D638-149,000–10,000 MPa
    Elongation at breakASTM D638-141.0–1.5%
    Flexural strengthASTM D790-17120–140 MPa
    Flexural modulusASTM D790-179,000–10,000 MPa
    Heat deflection temperature at 0.46 MPaASTM D648-18250–270 °C
    Heat deflection temperature at 1.82 MPaASTM D648-18110–130 °C
    Notched Izod impactASTM D256-1014–18 J/m

    UV postcure is a critical step. Green parts retain only partial conversion; the property set in Table 1 requires a secondary UV exposure in the UV-A range with a peak near 365 nm. A typical production sequence places the washed and dried part in a UV postcure chamber for 60–90 minutes per exposed surface, with repositioning for complex internal channels. The required irradiance is geometry-dependent because shadowed regions and thick sections absorb or block UV energy. Published depth-dose data for this specific formulation is limited; therefore, thick sections above 10 mm should be staged to avoid excessive exotherm and warpage. After postcure, parts are held at 23 °C and 50% relative humidity for at least 24 hours before critical dimensional measurements are recorded. This sequence stabilizes the dimensional response and exposes any residual stress that may have developed during the build or postcure cycle.

    Support removal should be performed before UV postcure. The green state is brittle enough that aggressive tooling can fracture thin walls; hand tools with a cutting edge rather than twisting motion are specified. Heat from high-speed rotary tools can locally soften the green resin and cause smearing that remains visible after postcure. If supports are removed after postcure, the cured material’s higher hardness increases the risk of chipping at the part surface. This operational boundary is independent of the resin’s final mechanical data and applies to all filled SLA systems.

    When Impact or High Strain Is Present, What Boundary Conditions Apply?

    The cured material exhibits brittle tensile behaviour. Elongation at break remains in the 1.0–1.5% range under ASTM D638-14, and notched Izod impact values fall between 14 J/m and 18 J/m under ASTM D256-10. These values place the product outside the acceptable design envelope for snap-fit arms, living hinges, or components exposed to repeated drop impact. Sharp internal corners below 0.5 mm radius create stress concentrations that can initiate fracture at loads significantly below the published tensile strength. When clamping is required, load-spreading washers or metal inserts are specified to avoid local crushing. For fatigue-sensitive applications, published data for this specific formulation’s cyclic loading response is limited; component validation should include strain-gauged prototypes tested at the maximum expected service load. The material’s high modulus reduces deflection, but the low strain at break means that stress-relieving geometry, generous fillets, and uniform wall thickness are the principal design controls.

    Thermal Expansion, Moisture Uptake, and Dimensional Stability

    Heat deflection temperature at 0.46 MPa is reported between 250 °C and 270 °C under ASTM D648-18, but the higher-load HDT at 1.82 MPa falls to 110–130 °C. This difference constrains the material’s use in load-bearing tooling above 130 °C. The filled matrix restricts thermal expansion relative to unfilled stereolithography resins, but published coefficient of linear thermal expansion data for this formulation is limited and may vary with build orientation. Dimensional stability in humid service is generally improved by the filler fraction; however, no specific ASTM D570 moisture absorption value for this product is reproduced in the reviewed supplier datasheet. Users should condition parts for 48 hours at the intended service temperature and humidity before precision assembly. For spans above 150 mm, it is preferable to measure build-orientation-specific thermal expansion rather than assume an isotropic value.

    Creep resistance is improved by the high modulus and filler restriction, but published creep modulus curves for this formulation are not widely available. Short-term creep at ambient temperature is typically low in stiff filled systems; however, design calculations for load-bearing fixtures should use a service factor of at least 2 on the published tensile strength if no creep data is generated. At temperatures above the 1.82 MPa HDT range, creep rate increases sharply and the part should be considered sacrificial.

    Wind tunnel model programs specify the filled resin where aerodynamic loading at model scale would produce visible deflection in lower-modulus unfilled stereolithography resins. The flexural modulus of 9,000–10,000 MPa under ASTM D790-17 reduces spanwise bending, but the low elongation requires conservative support placement on thin trailing edges and probe bosses. In rapid tooling, short-run injection mold inserts and thermoforming fixtures can survive brief low-load exposure above 130 °C because of the high 0.46 MPa HDT, but the 1.82 MPa HDT range of 110–130 °C limits continuous injection pressures and clamp forces. For injection mold inserts, metal cooling lines cannot be integrated into the SLA part; thermal conductivity of the filled resin is lower than tool steel. Consequently, cycle times are longer and shot counts are limited. Dimensional master patterns, inspection fixtures, and drilling jigs use the material’s stiffness at ambient temperature to reduce measurement deflection. No independent production-case study with published statistical process capability data is available for this formulation; therefore, application-specific capability runs are necessary before committing to long production runs.

    How Does This Filled Resin Differ from Unfilled and Toughened SL Products?

    The primary differentiator is the filled high-modulus, high-HDT response. Compared with DSM Somos WaterShed XC 11122, which is an unfilled clear resin with a flexural modulus of approximately 2,000–2,500 MPa and a lower HDT at 0.46 MPa, PerFORM provides roughly four to five times the flexural stiffness and a substantially higher thermal deflection limit. This increase is obtained at the expense of elongation and impact resistance. Toughened stereolithography materials such as Somos NeXt or Somos Taurus are formulated for impact resistance and moderate elongation; they exhibit lower modulus and lower HDT than the filled PerFORM system, but they accommodate snap fits and rough handling that PerFORM cannot. The uncured PerFORM suspension also has higher viscosity and requires more vat management than unfilled resins. The opaque white surface limits optical transmission applications, whereas WaterShed XC 11122 is specified for clear components. For replaceable tooling surfaces, the filled product reduces elastic deflection, but its abrasive filler can accelerate recoater blade wear compared with unfilled resins.

    MaterialFlexural ModulusHeat Deflection Temperature at 0.46 MPaElongation at Break
    Somos PerFORM9,000–10,000 MPa (ASTM D790-17)250–270 °C (ASTM D648-18)1.0–1.5% (ASTM D638-14)
    WaterShed XC 111222,000–2,500 MPa (ASTM D790-17)50–60 °C (ASTM D648-18)10–20% (ASTM D638-14)
    Somos NeXt2,400–2,800 MPa (ASTM D790-17)45–65 °C (ASTM D648-18)8–15% (ASTM D638-14)

    Supplier-published values may vary by version of datasheet; users should verify against the current technical bulletin before substituting one material for another in a validated build process.

    Material handling and post-processing require standard stereolithography precautions. The uncured resin is irritating to skin and eyes; suitable nitrile gloves and laboratory ventilation should be used. Consult the supplier safety data sheet for exact hazard classification, personal protective equipment, and waste disposal requirements. No food-contact, medical-device, or long-term implant claim is made for this material. The product may be included in supplier REACH and RoHS declarations, but independent certification should be confirmed against the specific lot and final postcure condition. The material should be stored in a dry, dark environment between 5 °C and 30 °C; the manufacturer-published storage range may vary by lot. Uncontrolled UV exposure can initiate polymerization in the vat and change viscosity before the build starts.

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