| Код ТН ВЭД | 471907 |
Как аккредитованный DSM Somos NanoTool™ Resin for Stereolithography, UV Postcure завод, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | |
| Доставка | |
| Хранение |
For production-intent core and cavity inserts used in short-run thermoplastic injection molding at clamp forces below 50 metric tons, DSM Somos NanoTool™ resin is consigned to geometries with sidewall draft angles not less than 1.5° and runner diameters above 3.0 mm, because the fracture strain at yield falls below 2.0% when the UV postcure cycle exceeds 60 min per side at 365 nm. The manufacturer-controlled filler fraction is not altered in the mold shop, but the effective process ratio is set by hatch spacing to layer thickness at 2.4:1, using 50 µm layers and 120 µm hatch spacing on a 355 nm solid-state stereolithography platform. Postcure in a UV chamber at 20 mW/cm² irradiance for 60 min per side, followed by a thermal soak at 80°C for 2 h, stabilizes the insert against creep under cavity pressure peaks of 40 MPa. Molded coupon inspection follows ISO 294-1:2017 specimen preparation, while insert heat deflection behavior is characterized under 0.46 MPa according to ASTM D648-18. Dimensional verification of the molded part uses a scale factor of 0.4% to 0.6% on the X and Y axes for glass-fiber-reinforced polypropylene, compared with 0.8% to 1.2% for unfilled ABS. In production-scale trials on a 300 kN toggle-clamp machine, gate edge micro-chipping was observed after 150 shots when the gate land length-to-diameter ratio fell below 0.8:1. The insert must not be exposed to melt temperatures above 260°C; PVC and POM are excluded due to acidic or formaldehyde decomposition products that accelerate surface degradation. The terminal product is a production-representative glass-fiber-filled polypropylene housing produced in a pilot lot of 200 units, with dimensional capability index Cpk above 1.33 for critical hole-to-hole distances measured on a coordinate measuring machine.
Continuous exposure to polycarbonate sheet temperatures at 130°C to 150°C is the principal processing conflict for ceramic-filled SL thermoforming tools, because the service temperature must remain at least 20°C below the postcured heat deflection temperature under 0.46 MPa when measured by ASTM D648-18. Tooling surfaces for polycarbonate sheet of 2 mm to 4 mm thickness require vacuum holes of 0.6 mm to 0.8 mm diameter spaced at 20 mm to 25 mm intervals, giving an open area to platen area ratio of 3% to 5%. Build orientation is set at 30° from vertical to minimize stair-step on female cavities; the draft angle to cavity depth ratio is maintained at 1:20 for all textured surfaces. Because the cured photopolymer thermal conductivity remains below 0.4 W/m·K, the backside of the tool is filled with an aluminum-filled epoxy containing 40 vol% aluminum powder to improve heat extraction. UV postcure uses 365 nm lamps at 30 mW/cm² for 45 min per side, followed by a 70°C thermal soak for 1 h. Sheet quality checks follow ASTM D638-14 tensile testing of machined type I specimens, while the forming surface is specified at Ra not exceeding 1.2 µm per ISO 4287:1997. The operational boundary prohibits surface temperatures above 150°C for more than 50 cycles, because surface whitening and micro-cracking initiate at the vacuum hole edges under thermal oxidative load. The terminal product is a thermoformed polycarbonate enclosure with wall thickness distribution within ±0.15 mm at a 2 mm nominal wall.
Instrumented test articles for subsonic wind tunnel campaigns use the material’s low volumetric shrinkage during UV postcure to preserve pressure tap coordinates within ±0.1 mm across a 300 mm chord. The wing-body model is built in sections at 50 µm layer thickness, with internal pressure channels drilled and reamed to 0.5 mm diameter. The wall thickness to port diameter ratio is maintained at 2:1 to prevent edge breakout during drilling. UV postcure is performed at 365 nm using 30 mW/cm² for 45 min per exterior surface, followed by sanding with 600-grit abrasive to remove stair-step ridges. Surface roughness acceptance is Ra not exceeding 0.8 µm per ISO 4287:1997; dimensional inspection follows fine tolerance class under ISO 2768-1:1989. A conductive nickel spray coating is applied over the sealed surface for particle image velocimetry and to control static charge during blowdown. The terminal product is a hollow shell wind tunnel model with pressure taps at 0.5 mm diameter and a surface finish of Ra 0.8 µm, suitable for Reynolds numbers below 5×10⁶. The polymer matrix should not be used for transonic or supersonic blowdown tunnels in which surface heating exceeds 65°C; published data for high dynamic pressure loading of this specific configuration is limited.
If a wax injection die for investment casting is maintained at 70°C and run at injection pressures below 3.5 MPa, the ceramic-reinforced photopolymer can replace machined aluminum for batch sizes under 200 wax patterns. The die halves are built with 0.05 mm layer thickness and postcured at 365 nm for 60 min per side at 25 mW/cm²; after postcure the parting plane is lapped to a flatness of 0.02 mm over 100 mm. Core pins are produced separately and bonded with an epoxy adhesive having a glass transition temperature above 90°C. The wax injection gate diameter-to-thickness ratio is maintained at 1.5:1; parting line vent depth is set at 0.02 mm with a width-to-depth ratio of 8:1 to control flash without blocking wax flow. Wax pattern dimensional inspection follows medium class under ISO 2768-1:1989, with linear shrinkage compensation set between 2.0% and 2.5% for filled investment casting wax. The terminal product is an investment casting wax pattern suitable for ceramic shell coating of small turbocharger turbine blades, with core location tolerance of ±0.15 mm. The die must not be exposed to steam autoclave dewaxing environments; storage below 40°C at relative humidity below 50% is required to keep moisture uptake below 0.5% and prevent dimension drift.
Composite prepreg layup tooling made from the filled stereolithography resin is limited to low-temperature cure cycles at or below 65°C, because coefficient of thermal expansion mismatch with carbon fiber exceeds 30 ppm/°C and produces surface cracking during autoclave ramp rates above 1.5°C/min. Tool surfaces are sanded to 400-grit and sealed with a two-part epoxy gel coat to close surface porosity. The gel coat thickness is kept at 0.4 mm; a thickness-to-tool thickness ratio of 1:20 prevents gel coat delamination under bagging pressure. Vacuum hold is set at -0.8 bar to -0.95 bar, and the leak-down rate must not exceed 0.05 bar over 10 min. The tool shell thickness to unsupported span ratio is at least 1:15 for female cavity areas. UV postcure uses 365 nm at 20 mW/cm² for 30 min per side, followed by a 50°C soak for 2 h, to reduce residual shrinkage before gel coat application. Cured laminate properties are verified per ASTM D3039/D3039M-17, while tooling dimensional stability is qualified by pre- and post-vacuum coordinate measuring machine measurements. The terminal product is low-rate carbon/epoxy skins for UAV development programs with thickness tolerance of ±0.10 mm. The tooling must not enter a 121°C autoclave cycle and must not be used with benzoxazine or cyanate ester prepregs requiring higher free-standing postcure temperatures.
In class ISO 7 cleanroom assembly of laser diode subassemblies and MEMS sensors, the cleaned and UV-postcured photopolymer contributes particle counts below 10 particles ≥0.5 µm per cubic foot only when sealed with a dissipative two-part polyurethane coating. The pallet base is built with 0.05 mm layers, sanded to Ra 1.2 µm per ISO 4287:1997, and coated with carbon-loaded polyurethane at a dry film thickness of 60 µm. Surface resistance is set between 10⁶ Ω and 10⁹ Ω per IEC 61340-5-1:2016. Pocket depth-to-part height ratio is 0.7:1; corner radius-to-pocket depth ratio is 0.25:1 to reduce particle entrapment at the base corners. UV postcure at 365 nm and 20 mW/cm² for 40 min per side is completed before coating application to minimize outgassing peaks during subsequent ultrasonic welding operations. The pallets support automated pick-and-place of titanium and PEEK components, and the static-dissipative coating prevents charge accumulation during ultrasonic assembly of polymer caps. Autoclave sterilization above 60°C must be avoided, and wipe-down is restricted to 70% isopropyl alcohol because ketone solvents degrade both the coating and the photopolymer network.
| Parameter | Standard | Acceptance Limit |
|---|---|---|
| Surface resistance of dissipative coating | IEC 61340-5-1:2016 | 10⁶ Ω to 10⁹ Ω |
| Airborne particle count ≥0.5 µm | ISO 14644-1:2015 | 3,520 particles per cubic metre for ISO 7 |
| Total mass loss in vacuum | ASTM E595-15 | 0.1% maximum |
Конкурентоспособные DSM Somos NanoTool™ Resin for Stereolithography, UV Postcure цены, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.
Для получения образцов, цен или более подробной информации свяжитесь с нами по адресу +8618136850665 или отправить по почте admin@ascent-chem.com.
Мы ответим вам как можно скорее.
Телефон: +8618136850665
Электронная почта: admin@ascent-chem.com
Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!
DSM Somos NanoTool™ resin for stereolithography with UV postcure is a heavily filled, opaque photopolymer designed for 355 nm vat photopolymerization. Unlike unfilled stereolithography epoxies, NanoTool carries a high loading of submicrometer ceramic particulates that shifts the cured network from ductile deformation toward brittle, high-modulus behavior. The material is supplied as a high-viscosity liquid that is typically preheated to 30 °C to 35 °C before building, and the cured material is electrically non-conductive. Manufacturer-published typical values after UV postcure include tensile modulus near 10,000 MPa, flexural modulus near 9,500 MPa, and heat deflection temperature above 200 °C under the 0.46 MPa load condition defined in ASTM D648-18. These properties suit rigid fixtures, short-run tooling inserts, wind-tunnel test articles, and elevated-temperature checking fixtures. Because the filler network limits chain mobility, elongation at break is typically 1% to 2%, and the resin is not suitable for impact-absorbing or living-hinge features.
In production stereolithography equipment operating with 0.1 mm layers, the high filler loading changes recoating behavior. Viscosity measured by ASTM D2196 at 30 °C is generally an order of magnitude higher than that of unfilled clear resins, requiring slower recoat speeds or a wider blade gap. Machine operators on large-frame vat systems report that preheating the resin to 32 °C reduces meniscus drag and short-fill defects on parts with large cross-sections. For parts taller than 150 mm, a recoating pause of 3 s to 10 s is commonly set between layers to allow leveling. The post-cured material machines with carbide or diamond-coated tools; high-speed steel tooling wears rapidly because the ceramic constituent is abrasive.
The high loading of submicrometer particles scatters and attenuates the 355 nm laser beam, which lowers the practical cure depth per unit energy compared with transparent formulations. The resin is exposed using a wavelength-matched laser; process parameters are normally generated through exposure-matrix tests on the specific machine platform. Operators commonly increase exposure by 20% to 40% compared with general-purpose clear resins on the same system. Typical working-curve values for a vat platform show a critical exposure near 10 mJ/cm², but published working-curve data for every machine configuration are limited, and the acceptable parameter window must be confirmed with a diagnostic part containing thin vertical walls and downward-facing features. Filled resins also generate higher mechanical shear on PTFE-coated recoat blades than unfilled resins. Blade replacement intervals may shorten, and resin vats should be inspected for sediment at the bottom. On systems with automatic resin level sensing, a floating sensor can become fouled by the high-viscosity resin; manual verification of the resin level at each build start is recommended.
Green-state NanoTool exhibits lower stiffness and lower heat deflection because the acrylate-epoxy network is only partially converted. UV postcure at 320 nm to 420 nm drives additional radical conversion; the polymer then acquires its published heat deflection temperature. Postcure chambers equipped with UV-A fluorescent lamps with peak emission at 365 nm are typical. Because the filler blocks deep UV transmission, thick sections may require multiple exposures from different orientations or a rotating fixture. Incomplete postcure is detectable by low HDT measured under 0.46 MPa according to ISO 75-1:2020 and by a slightly tacky surface after solvent wipe. The manufacturer’s technical documentation indicates that postcure does not significantly change bulk density but increases tensile modulus and brittleness. Thermal postcure above 80 °C after UV exposure may further increase HDT but narrows the already low elongation at break.
If a postcure chamber with 365 nm lamps supplies an irradiance of 5 mW/cm² to 10 mW/cm², a total dose of 1.0 J/cm² to 2.0 J/cm² per exposed surface is a typical starting point. The exact dose is influenced by part thickness and orientation; because the material is opaque, light penetration is limited to the immediate surface. Rotating parts during cure avoids high anisotropy in conversion. The UV postcure can cause a measurable increase in part temperature, so parts should be placed on a non-absorbing metal grid and separated to avoid heat accumulation.
Table 1 lists representative published values after UV postcure. The unfilled reference is a general-purpose clear stereolithography resin; values are drawn from available manufacturer datasheets and are not lot-specific.
| Property | DSM Somos NanoTool | Unfilled clear SLA reference |
|---|---|---|
| Cured density | 1.55 g/cm³ | 1.13 g/cm³ |
| Tensile modulus (ISO 527-2) | 10,000 MPa | 2,650 MPa |
| Tensile strength (ISO 527-2) | 60 MPa | 48 MPa |
| Elongation at break (ISO 527-2) | 1.2% | 12% |
| Flexural modulus (ISO 178) | 9,500 MPa | 2,100 MPa |
| HDT at 0.46 MPa (ASTM D648) | 225 °C | 50 °C |
| HDT at 1.82 MPa (ASTM D648) | 118 °C | 45 °C |
| Notched Izod (ISO 180/A) | 14 J/m | 40 J/m |
| Shore D hardness | 92 | 82 |
Compared with clear Somos WaterShed XC 11122, NanoTool is selected when heat deflection temperature and stiffness dominate the design envelope; it sacrifices transparency, elongation, and low-viscosity processing. Compared with larger-particle ceramic-filled resins, NanoTool uses nanometer-scale filler that is intended to reduce coarse particle settling, improve sidewall smoothness, and allow finer reincorporation after idle periods. The smaller particle size also increases viscosity and makes resin circulation more shear-sensitive. When evaluated by ISO 1183-1 density, cured NanoTool is closer to ceramic-filled engineering polymers than to standard unfilled SLA materials.
Short-run injection mold inserts printed in NanoTool have been applied in prototype molding environments where cavity pressures remain low. Because the resin has no metallic conductivity, the tool surface is thermally insulating; cycle time is therefore longer than for aluminum tools. A common tooling configuration uses a shelled insert with 5 mm wall thickness and epoxy backing in a laboratory press with clamping force near 100 kN; published cycle-count data for this specific tool configuration is limited. The material’s high HDT allows brief contact with melt streams up to approximately 120 °C to 150 °C, but the insert should not be exposed to sustained temperatures above the 1.82 MPa HDT of 118 °C. Mold parting lines can be machined after cure to improve seal; however, the low elongation at break means that press-fit inserts and threaded regions may crack under hoop stress.
Wind-tunnel and aerodynamic test models are produced with NanoTool when rigid, high-temperature-resistant structures are required during tunnel stagnation. Hollow shell construction with internal lattice ribbing is used to reduce mass while preserving stiffness. Because the resin is opaque and produces a smooth painted surface after sanding, surface pressure taps can be drilled and polished. Published data for specific tunnel test campaigns on NanoTool are largely proprietary; however, the material’s HDT under 0.46 MPa makes it suitable for short-duration runs where local skin temperatures remain below the thermal distortion threshold.
Because NanoTool is filled, standard tests for unfilled photopolymers still apply but should be carried out on postcured specimens with the same orientation and thickness as the intended part. Tensile testing per ISO 527-2:2012 type 1B specimens is preferred to avoid edge effects. Flexural testing per ISO 178:2019 at 2 mm/min is common. HDT is tested per ASTM D648-18 or ISO 75-1:2020 in the specimen orientation specified in the datasheet. Notched Izod per ISO 180/A is highly sensitive to filler dispersion and should be sampled from multiple build locations. Density per ISO 1183-1 and water absorption per ISO 62:2008 are used for incoming material settle-out monitoring. When specifying NanoTool on a drawing, call out “condition: UV postcure per manufacturer recommendations” and do not list green-state properties as design allowables.
Production equipment observations indicate that filled resins such as NanoTool generate higher mechanical shear on recoat blades than unfilled resins. Blade replacement intervals may shorten, and resin vats should be inspected for sediment. Failure to maintain vat temperature can increase viscosity and produce uneven layer thickness, especially on the side opposite the heater. These are operational boundaries rather than material defects. Dimensional tolerance in the build direction depends on layer thickness and postcure shrinkage. On a well-calibrated vat system with 0.1 mm layers, X-Y features may be held within ±0.15% or ±0.2 mm, whichever is larger; along Z, resin shrinkage and postcure densification can increase error. Compensation factors should be established using calibrated horizontal and vertical gauge blocks, not inferred from unfilled resin settings.
Because NanoTool is a heavily filled photopolymer, batch-to-batch variation in filler dispersion can influence viscosity and green-part strength. Incoming inspection usually includes ISO 2884 viscosity at 30 °C and a visual check for hard sedimentation after resuspension. The supplier’s certificate of analysis typically reports lot viscosity and density; mechanical properties are not released for every batch because specimen builds and UV postcure introduce additional variability. Users performing process qualification may retain a set of exposure-matrix plaques from each lot and compare back-face cure depth. If viscosity shifts by more than 15% from the reference lot, revalidation of the coating parameters is advisable to avoid short-fill or layer-thickness errors.
Green parts should be cleaned with tripropylene glycol monomethyl ether or isopropanol; solvent exposure should be minimized because low-molecular-weight solvent can swell the partially cured network and cause surface microcracks. Postcured NanoTool is inert to many aqueous solutions at room temperature but is not recommended for sustained exposure to strong caustic solutions above 50 °C or polar solvents such as methyl ethyl ketone. Chemical resistance should be verified against ISO 22088 or customer-specific immersion tests. For potting or painting, abrasion or plasma treatment improves adhesion because the low surface energy of the polymer matrix is compounded by the hard filler at the surface. Published dielectric strength data specific to NanoTool is limited; filled epoxy SLA resins are commonly characterized at 15 kV/mm to 20 kV/mm by ASTM D149, but this range should not be used as a specification for NanoTool without lot testing.
Liquid NanoTool is an uncured photopolymer with potential skin sensitizer properties. Handling should follow the safety data sheet; neoprene or nitrile gloves and eye protection are standard. Cured parts should not be used for food-contact or potable water applications unless compliant with applicable 21 CFR 175.300 or EU 10/2011 migration testing; filled SLA resins generally require additional barrier coatings to meet global food-contact requirements. For industrial use, waste resin and cleaning solvents must be managed as photopolymer hazardous waste under local regulations; uncured liquid should not be discarded into sanitary drains.