Продукты

DSM Somos NeXt LV Grey

    • Название продукта: DSM Somos NeXt LV Grey
    • 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 364985

    Как аккредитованный завод DSM Somos NeXt LV Grey, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение DSM Somos NeXt LV Grey

    In underhood clip and wire-harness bracket prototyping, Somos NeXt LV Grey is charged into a vat photopolymerization workcell at 100 wt% as-received resin, with no reactive diluent, because viscosity reduction is already achieved by the LV grade; recycled overflow from the recoater trough is limited to ≤10 wt% of total vat volume to avoid shifts in cure depth from suspended debris and partially polymerized agglomerates. The formulation addition ratio therefore remains 100 wt% neat resin, and thinning with isopropanol or acetone outside machine-specific cleaning protocols is excluded because solvent contamination alters critical exposure energy and depth of penetration. The downstream production process uses 100 μm Z-slicing on a 355 nm solid-state laser platform; after recoating, parts receive two-stage solvent washing in 99.9% isopropyl alcohol for 10 min per stage, forced-air drying at 25–30°C, and UV flood post-cure for 60 min in a chamber equipped with 350–420 nm lamps. Support structures on snap-fit retention features are removed before post-cure to minimize notch-root stress concentration. Compliance is governed by IATF 16949:2016 Section 8.3.3.1 for product design input when prototype snap-fit geometry is used to validate production-equivalent assembly forces; material declarations are checked against REACH 1907/2006 Annex XVII and RoHS 2011/65/EU Annex II restricted substances including lead, cadmium, mercury, hexavalent chromium, PBB, and PBDE. Flammability under FMVSS 302 is not automatically claimed; published data for this specific configuration is limited, and coupon testing is required before interior-facing application. Terminal finished product types include wire-harness clips, sensor mounting brackets, brake fluid reservoir cap validation units, and ECU cover fitment gauges.

    Medical Device Enclosure Prototyping: Why Draft Angle Verification Precedes ISO 10993 Assessment

    The selection of Somos NeXt LV Grey for diagnostic device enclosures is constrained by the distinction between form/fit validation and production biocompatibility. Formulation addition ratio for printed enclosure components is 100 wt% as-received photopolymer; no antimicrobial additive, colorant, or plasticizer is introduced because post-print chemical residues can interfere with downstream degreasing and dimensional stability. Build is performed at 50 μm layer thickness to resolve snap-fit undercuts and draft-angle verification features, followed by a downstream production process consisting of solvent extraction in tripropylene glycol monomethyl ether for 15 min at 25°C, filtered compressed-air blow-off at 0.4–0.6 MPa, and UV post-cure for 80 min to stabilize residual monomer. Compliance standards include ISO 13485:2016 Section 7.3 for design and development outputs when the printed parts are used as verification models, and ISO 14971:2019 risk management documentation for usability tests. The material is not certified to ISO 10993-5 or ISO 10993-10; published data for this specific configuration is limited, so printed parts are limited to short-duration handling and may not serve as skin-contacting or implantable components without additional material qualification. Terminal finished product types include diagnostic instrument front bezels, ergonomic grips for surgical hand instruments, and connector alignment fixtures used during device assembly validation.

    Silicone Tooling and Vacuum Casting Master Patterns: Dimensional Offset, Shrinkage Compensation, and Surface Transfer

    Master pattern production with Somos NeXt LV Grey begins with a 100 wt% neat resin charge, but the critical formulation addition ratio in this downstream process is not a resin blend—it is the silicone mold feed. Patterns are built at 50 μm Z-resolution and oriented to place witness marks and tooling datums on non-critical surfaces. After UV post-cure, the pattern surface is wet-sanded with 600–1200 grit silicon carbide paper and sealed with a 2–3 μm epoxy-based release primer to prevent platinum catalyst poisoning during mold cure; this sealing step is required because uncured acrylate residues on the pattern surface can inhibit addition-cure RTV silicone. The downstream production process includes pattern inspection under ISO 10360-2 CMM protocols, mold box fabrication, vacuum degassing of the silicone at −0.09 MPa for 5–10 min, and cure at 40°C for 4 h. The silicone feed is typically an addition-cure RTV with a 100:10 base-to-catalyst mass ratio; the Somos NeXt LV Grey pattern remains at 100 wt% resin and is not intentionally incorporated into the silicone matrix. Compliance standards for master patterns used in polyurethane vacuum casting are governed by ISO 4287:1997 surface texture documentation and REACH 1907/2006 Section 7 for communication of SVHC content in the imported resin. Terminal finished product types are polyurethane cast housings, ABS-like prototype covers, elastomeric gaskets, and low-volume production parts with 2–3 mm wall sections.

    When a consumer electronics OEM evaluates wearable device housings before mold tooling release, Somos NeXt LV Grey is processed at 100 wt% photopolymer with a build layer of 50 μm and a platform packing density of 60–70% to limit peel-force-induced delamination on thin-shell geometries. The formulation addition ratio excludes internal release agents and conductive fillers because post-paint adhesion and RF-transparent housing prototypes require a non-filled dielectric polymer surface; if a conductive masterbatch were added, the grey LV base would shift both shrinkage and surface resistivity, invalidating form-factor comparisons. Downstream production includes vat photopolymerization on a 355 nm laser platform, two-stage isopropyl alcohol wash with ultrasonic agitation at 40 kHz for 8 min per stage, and UV post-cure at 60°C for 60 min. Housings are then dry-machined at snap-fit retention areas and subjected to dimensional verification on a non-contact optical scanner with a ±25 μm volumetric accuracy tolerance. Compliance standards relevant to this scenario are IEC 62368-1:2018 for information technology equipment enclosure access and thermal requirement pre-screening, RoHS 2011/65/EU Annex II, and REACH 1907/2006 Article 33 for SVHC communication. The material is not a UL 94 V-0 system by default; prototype flammability classification must be tested on molded-equivalent wall stock before claim. Terminal finished product types include smartwatch housing validation units, earbud charging case covers, and remote-control body prototypes with snap-fit battery doors.

    Deploying Somos NeXt LV Grey for assembly-line jigs and robotic end-effector fingers uses a 100 wt% as-received charge and a faster 100 μm layer thickness because dimensional tolerances on fixture bodies are typically ±0.25 mm and high build speed outweighs surface finish. The formulation addition ratio remains neat resin without filler addition; glass-fiber reinforcement is avoided because it would raise resin viscosity and reduce recoater speed on large fixture builds. Downstream production involves building monolithic fixture bodies with internal hexagonal pockets for pressed-in brass bushings, then post-curing under UV flood lamps for 90 min; mounting holes are reamed to H7 tolerance after curing to compensate for linear shrinkage. Compliance standards are limited to ISO 9001:2015 Section 8.5.1 production control and the end user’s workplace safety assessment for residual photopolymer contact; no food-contact or medical standard applies. Terminal finished product types include drilling jigs, inspection fixtures, robotic end-effector fingers, and assembly press nesting plates.

    When Polypropylene-Like SLA Resin Is Used for Short-Run Fluid Manifolds and Impeller Housings

    Fluid-handling prototypes printed from Somos NeXt LV Grey occupy a narrow application window because the polymer is polypropylene-like in mechanical response but is not a substitute for long-term hydrolytically stabilized PP under continuous water contact. Formulation addition ratio for this scenario is 100 wt% neat resin, with no internal release agent; post-print leaching studies should be conducted before use with potable water or aggressive process fluids. The downstream production process uses 75 μm layer thickness and builds internal channels with a minimum unsupported diameter of 3 mm to allow uncured resin drainage. After build, channels are flushed with isopropyl alcohol through a peristaltic pump at 0.2 L/min for 20 min, air-dried, and UV post-cured at 60°C for 90 min; transparent section windows are not possible because the LV Grey resin is opaque, so flow visualization is limited to external pressure-tap measurements and dye injection at the inlet. Compliance standards referenced for mechanical property verification include ASTM D638-14 Type IV tensile tests and ISO 178:2019 flexural tests; chemical compliance is checked against REACH 1907/2006 Article 33 and RoHS 2011/65/EU Annex II. Pressure-decay leak testing is conducted at 0.15 MPa pneumatic pressure, with acceptance criterion ≤0.5 kPa/min pressure drop, though published data for this specific configuration is limited. Terminal finished product types include water pump impeller housings, flow visualization manifolds, air intake ducts, and coolant reservoir fitment prototypes. The material is not certified for potable water contact under NSF/ANSI 61 or KTW and should be limited to closed-loop bench testing.

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    Более подробное введение

    DSM Somos NeXt LV Grey is a low-viscosity, gray-opaque stereolithography resin formulated for solid-state laser systems operating at 355 nm. The material belongs to the Somos NeXt family and differs from the original NeXt grade primarily in liquid-handling performance: the LV designation identifies a reduced-viscosity formulation that drains more readily from fine internal cavities and permits faster recoating during layer-by-layer photopolymerization. The gray pigmentation is intentionally non-transmitting, which facilitates visual detection of surface discontinuities after sanding or bead blasting. Manufacturer documentation positions the material for functional prototypes, snap-fit demonstration units, master patterns, and limited-run automotive interior components. Because this resin is used in laser-based vat polymerization, process outcomes depend on laser power, scan speed, layer thickness, and recoat blade dynamics; no single property set can be applied without machine-specific validation.

    Liquid-State Viscosity, Recoat Kinetics, and Build Parameter Constraints

    At the vat temperature specified in supplier documentation, the viscosity of Somos NeXt LV Grey is typically reported at 180 mPa·s at 30 °C; the corresponding liquid density is approximately 1.13 g/cm³. The reduced viscosity compared with standard NeXt shortens the passive drainage time after platform lift-off on 3D Systems SLA 7000, iPro 8000, and ProX 800 platforms. For a 0.100 mm slice, the recoat cycle can typically be optimized by lowering blade sweep speed only as much as necessary to prevent resin starvation; excessively slow sweeps increase total build time without improving down-facing surface quality. When the layer thickness is reduced to 0.050 mm, the recoating window narrows because the fresh film thickness is thinner and local viscosity variations from temperature stratification produce visible step discontinuities.

    Temperature control at 25–30 °C is required. At lower temperatures the viscosity rises, causing incomplete recoating near the vat center and an increase in laser scatter from suspended pigment particles. At higher temperatures, the radical photopolymerization reaction can exhibit dark-cure drift after the laser scan, leading to overcured edges and plugged blind channels. Production-scale observation on iPro 8000 platforms indicates that resin temperature should be stabilized before initiating builds after overnight shutdown; otherwise the first 20–40 layers may show dimensional deviations in X-Y because of higher viscosity. Use of a cone-and-plate viscometer per ASTM D4287-00 or a rotating spindle method per ISO 2555:2018 provides lot-to-lot viscosity verification.

    Representative supplier-published property values for post-cured DSM Somos NeXt LV Grey
    PropertyTypical ValueTest Designation
    Viscosity at 30 °C180 mPa·sASTM D4287-00
    Liquid density at 25 °C1.13 g/cm³ISO 1675:2018
    Tensile strength at yield33.1 MPaASTM D638-14
    Tensile modulus2,370 MPaASTM D638-14
    Elongation at yield3.2%ASTM D638-14
    Elongation at break12.6%ASTM D638-14
    Flexural strength58.7 MPaASTM D790-15
    Flexural modulus1,900 MPaASTM D790-15
    Notched Izod impact37 J/mASTM D256-10
    HardnessShore D 80ASTM D2240-15
    Heat deflection temperature at 0.46 MPa55 °CASTM D648-18
    Heat deflection temperature at 1.82 MPa42 °CASTM D648-18

    The tabulated values represent supplier-published typical data for post-cured specimens, not green-state parts. Because stereolithography is anisotropic, mechanical values vary with build orientation and layer thickness. Specimens printed in the vertical Z axis often show lower tensile strength than X-Y oriented specimens due to interlayer conversion gradients. Published data for this specific configuration is limited; therefore, each manufacturing lot should be characterized using the same build orientation, post-cure dose, and conditioning environment specified in the receiving inspection plan.

    When Does NeXt LV Grey Replace Standard NeXt or Clear SLA Resins?

    Selection between Somos NeXt LV Grey and standard Somos NeXt typically reduces to vat handling and recoating. The LV grade provides smoother blade travel and shorter drain times on fine-featured builds, while standard NeXt may be selected where a longer supplier qualification history is required. Solid-state tensile and flexural values for the two grades are close enough that substitution must be confirmed by tensile testing according to ASTM D638-14 rather than by visual similarity. The gray opacity is another constrained variable: if dimensional inspection relies on backlit imaging or transparent cross-section analysis, clear resins such as WaterShed XC 11122 or ClearVue remain necessary. NeXt LV Grey cannot be post-processed into an optically transparent state.

    Compared with high-temperature SLA resins such as Somos PerFORM or ProtoTherm 12120, NeXt LV Grey operates at a lower thermal deflection limit. Its HDT at 1.82 MPa is approximately 42 °C; components exposed to sustained compressive contact above this threshold may creep or soften. For short-term airflow and lighting hardware inside vehicle cabins, the combination of HDT at 0.46 MPa around 55 °C and moderate Izod impact can be adequate, but underhood exposure is outside documented service. The material also differs from elastomeric SLA grades: elongation at break near 12.6% indicates limited ductility before fracture, so snap-fit arm deflection must be designed with draft and strain relief rather than relying on large plastic strain.

    Because gray pigmentation attenuates the curing beam more strongly than unpigmented clear resin, the working curve for Somos NeXt LV Grey must be generated for each laser speed setting. Cure depth can be mapped with a multi-line test pattern at 355 nm; the resulting working curve supplies the critical exposure and penetration depth values required by the build processor. Orientation should position high-tolerance surfaces away from the blade contact side to reduce surface drag artifacts. On large flat parts printed at 0.100 mm slices, the first cured layers may show high residual stress if the platform is not leveled to within the manufacturer’s tolerance. Post-cure shrinkage across X-Y is commonly lower than shrinkage in Z; when machining allowances below 0.25 mm are required, coordinate measurement after post-cure is used to determine the Z scaling factor.

    If Post-Cure Irradiance Is Not Mapped, Expect Uniaxial Property Drift

    Post-cure is mandatory to achieve the tabulated mechanical values. Green-state parts retain unreacted acrylate groups that plasticize the network and reduce tensile modulus. Typical UV post-cure units operate across 315–400 nm with simultaneous part rotation; irradiance at the part surface should be verified with a calibrated radiometer rather than inferred from lamp age. The required dose depends on wall thickness and pigment density: thin walls cure faster, while thick sections may require staged post-cure to limit surface embrittlement before internal conversion completes. Excess UV dosage can raise crosslink density and reduce elongation at break; the supplier-published value of 12.6% should be confirmed after the actual post-cure cycle used in production.

    Thermal exposure after post-cure must remain below the documented HDT limits unless the part is in a low-stress condition. For a load of 1.82 MPa, the HDT of 42 °C means that press-fit bushings, threaded inserts, or fixtures storing elastic energy can lose dimensional stability during powered testing in enclosed benchtop chambers. The 0.46 MPa HDT of 55 °C is more relevant for gravity-loaded housings. The gray color has a lower albedo than white or clear resin, so optical inspection systems may require different incident lighting angles; visible-surface defects such as laser skip lines and recoat boundaries are more easily detected on the gray surface than on translucent grades.

    In post-finishing operations, the gray surface accepts sanding, bead blasting, and primer topcoats more readily than unpigmented clear resins because the pigment provides a visible uniform substrate for coating coverage. Solvent wiping should be limited to the supplier-recommended cleaning solvents; aggressive ketones or chlorinated solvents can induce microcrazing after cure. The material is classified as an industrial photopolymer; no food-contact or medical-grade certification should be assumed unless a specific supplier certificate under FDA 21 CFR or USP Class VI is supplied for the exact grade. Inhalation and skin exposure are controlled by engineering ventilation and nitrile gloves; uncured resin should be contained according to the safety data sheet. For parts requiring threaded inserts, hole sizing should account for the low ductility and HDT; self-tapping inserts can create radial stress that exceeds the local tensile capacity of 33.1 MPa, so heat-staked or bonded inserts are usually preferred.

    Storage Conditions, Lot Control, and Vat Life

    Vat life is governed by ambient humidity, light ingress, and contaminant concentration. The resin should be stored in closed, opaque containers at 15–25 °C; bulk vat machines should be fitted with covers that block actinic light below 420 nm. Unused resin that has remained in the vat through a temperature excursion should not be blended into fresh material without qualification. Routine lot acceptance testing for a stereolithography work cell includes viscosity at 30 °C per ASTM D4287-00, liquid density, and a build calibration coupon with a defined bridge, pillar, and hole feature. If viscosity deviates by more than ±10% from the supplier’s typical value, recoat parameters may require adjustment; if cured density shifts by more than ±0.02 g/cm³, contamination or formulation error should be investigated before production resumes.

    Across a mixed resin inventory, gray-pigmented NeXt LV is best segregated from clear and white resins to prevent pigment carryover during platform draining and part handling. Any change in cleaning solvent, post-cure chamber type, or build orientation alters the relationship between laboratory tensile values and production part behavior. For a short-run enclosure program requiring 50–100 parts, the material can be used directly as a low-volume production resin when incoming lot testing, post-cure radiometry, and documented dimensional scaling are maintained on the manufacturing floor.

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