Продукты

Dow EVOLV3D™ LC 3335 LSR Liquid Silicone Rubber for 3D Printing

    • Название продукта: Dow EVOLV3D™ LC 3335 LSR Liquid Silicone Rubber for 3D Printing
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
    • Свяжитесь сейчас
    Спецификации
    Код ТН ВЭД 876519

    Как аккредитованный завод по производству жидкой силиконовой резины Dow EVOLV3D™ LC 3335 LSR для 3D-печати, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Supplied as a two-part kit in 1 kg, 5 kg, and 20 kg pails, with Part A and Part B packaged separately.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loading of Dow EVOLV3D™ LC 3335 LSR liquid silicone rubber, palletized and secured for safe ocean transport.
    Доставка Dow EVOLV3D™ LC 3335 LSR ships as a two-part liquid silicone rubber in sealed, labeled pails or drums. Transport in original containers at 15–30°C, protected from freezing, moisture, contamination, and sunlight. It is generally non-hazardous and not DOT/IMDG/IATA regulated; always follow the SDS and local rules.
    Хранение Store Dow EVOLV3D™ LC 3335 LSR in original, tightly closed containers in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and flames. Always keep containers properly sealed. Protect from moisture, contamination, and incompatible materials. Maintain recommended storage temperature, avoid freezing, and use first-in, first-out stock rotation. Consult the safety data sheet for specific conditions and shelf life.
    Срок годности Shelf life is typically 12 months from manufacture when stored in original, unopened containers at 25°C or below.
    Применение жидкой силиконовой резины Dow EVOLV3D™ LC 3335 LSR для 3D-печати

    Platinum-catalyzed addition-cure LC 3335 with nominal 35 Shore A hardness and specific gravity 1.08 g/cm³ is processed in a positive-pressure cleanroom fitted with a progressive cavity pump, static-mix nozzle of 150–200 µm inner diameter, and heated build plate at 60–80 °C. The liquid-deposition operating window of 12–25 mm/s with layer height 0.25–0.40 mm produces unsupported overhangs no greater than 30° without dissolvable support. In patient-matched medical device manufacturing, the uncured material is handled within 20–25 °C and relative humidity below 45%; open time before gelation should not exceed 25 min at 120 °C, based on addition-cure kinetic onset observed on production cells. Compliance anchor: ISO 10993-5:2009 for cytotoxicity, ISO 10993-10:2021 for skin sensitization and irritation, and ISO 10993-1:2018 Clause 4.1 for biological evaluation planning; finished devices under EU MDR 2017/745 must demonstrate post-cure volatile content below 0.5 wt% by headspace GC-MS using ISO 10993-12:2021 extraction conditions. Metering ratio: 100 wt% LC 3335 after A/B coalescence at the supplier-specified 1:1 volume ratio; addition of radiopaque fillers at 2–5 wt% or antimicrobial surface coatings is not recommended without revalidating crosslink density and Shore A hardness. Downstream workflow includes printing, ambient deaeration at −0.08 MPa for 15 min, oven postcure at 100–125 °C for 60–120 min dependent on wall thickness, and water-soluble support removal. Terminal finished part types include nasal cannula seals, CPAP mask cushions, hearing aid housing gaskets, soft port seals, and patient-specific surgical trainer overlays.

    What limits dynamic fatigue endurance in printed LC 3335 pneumatic actuator bellows?

    When pneumatic actuator bellows are printed with 0.8–1.2 mm walls, dynamic flexural fatigue is dominated by interlayer cohesion rather than bulk tensile strength. A 100 wt% LC 3335 feedstock is measured for tensile at break under ISO 37:2017 using Type 1 dumbbells, but the critical design property is tear resistance under ISO 34-1:2022 Method B; published values for unmodified LC 3335 in this specific configuration are limited, though 35 Shore A addition-cure LSRs typically exhibit tear strength in the range 12–18 kN/m and elongation at break above 500%. Compliance anchor for industrial automation: UR cobot gripper end-effectors are assessed under ISO/TS 15066:2016 for force limitation, and pneumatic supply circuits must meet ISO 4414:2010 for system safety. Metering ratio: 100 wt% LC 3335 after 1:1 A/B metering; attempted blending of 10 wt% of a lower-durometer LSR to reduce Shore A below 30 introduces cure-rate mismatch, producing undercrosslinked interlayer zones and tear-strength reductions exceeding 25% in production validation. Process constraints: bellows are printed with a 1.0 mm flat-tip needle at 15 mm/s, bed temperature 100 °C, layer height 0.30 mm, and postcured 2 h at 125 °C in a convective oven with ≤5 °C uniformity; internal pressure cycling 0–0.4 MPa at 0.5 Hz is used to detect seam delamination. Terminal products: soft robotic gripper fingers, vacuum suction cup adapters, pneumatic bladder seals, and inflatable clamping jaws.

    EV battery vent seals and engine-compartment grommet processing parameters

    Engine-compartment sealing applications expose LC 3335 to cold-start cycles of −40 °C, dry heat at 125–150 °C, and transient dielectric coolant mist contact. Compliance is anchored to SAE J200:2011 rubber material classification, UL 94 HB at 3.0 mm minimum thickness, and ISO 6722-1:2011 for compatibility where grommets contact wire harness jackets. Battery vent seals are additionally evaluated by ISO 815-1:2019 Method A at 150 °C for 22 h; a maximum compression set of 25% is required to retain sealing after thermal cycling. Metering ratio: 100 wt% LC 3335 as mixed; addition of 0.5–2.0 wt% carbon black for static dissipation is not recommended for under-hood service because sulfur species in certain carbon blacks can poison the platinum catalyst, slowing vulcanization kinetics and reducing crosslink density by more than 15%. Process line: parts are printed directly onto primed PA66 or aluminum retainers after application of a 2–5 µm silane primer; print speed is 20 mm/s, nozzle diameter 200 µm, layer height 0.35 mm, and oven postcure at 150 °C for 4 h reduces volatile siloxanes below 0.5 wt% for EV interior fogging limits per DIN 75201:2011. Terminal products include battery pack vent gaskets, high-voltage cable grommets, firewall pass-through boots, and connector seal plugs.

    Table 1 — Compliance standards matrix for LC 3335 downstream part validation
    SectorStandard or regulationValidation scopeTypical condition / limit
    Medical deviceISO 10993-5:2009, ISO 10993-10:2021, ISO 10993-1:2018Cytotoxicity, sensitization, biological evaluation planning37 °C extraction; viability ≥70%
    AutomotiveSAE J200:2011, UL 94 HB, ISO 815-1:2019, DIN 75201:2011Rubber classification, flammability, compression set, fogging150 °C / 22 h; max 25% compression set
    Electronics / wearablesIEC 62368-1:2023, RoHS 2011/65/EU, REACH 1907/2006, ISO 10993-10:2021Safety, restricted substances, skin sensitizationPb ≤0.1 wt%, Cd ≤0.01 wt%
    Food contactFDA 21 CFR 177.2600, EU 1935/2004, BfR Recommendation XV, EU 10/2011Rubber article food contact, GMP, overall migrationOverall migration ≤10 mg/dm²
    Industrial automationISO/TS 15066:2016, ISO 4414:2010, ISO 34-1:2022, ISO 37:2017Cobot force limitation, pneumatic safety, tear, tensileTear Method B; Type 1 dumbbells

    Under REACH 1907/2006 Article 33 and RoHS 2011/65/EU screening, LC 3335 is deposited onto polycarbonate earbud housing substrates at 10–18 mm/s and layer height 0.25 mm to produce skin-contact cushions. The material’s 35 Shore A hardness and 1.08 g/cm³ density reduce acoustic vibration transfer when measured by dynamic mechanical analysis at 1 Hz, while elongation above 500% supports snap-fit removal without tearing. Compliance anchor: ISO 10993-5:2009 for cytotoxicity and ISO 10993-10:2021 for skin sensitization are applied when earbud tips are intended for prolonged skin contact; consumer electronics enclosures also fall under IEC 62368-1:2023 Clause 4.8.8 for sharp edges and movable parts, though this requirement is not material-specific. Metering ratio: 100 wt% LC 3335; where brand-color consistency is required, addition of 1–3 wt% of a vinyl-functional silicone color masterbatch is possible but requires pre-drying of the masterbatch at 80 °C for 2 h and revalidation of Shore A, elongation, and cure time because platinum catalyst activity can be reduced by certain colorant carriers. Production process: components are printed using a 250 µm static-mix nozzle on a 60 °C heated build plate, supported only where overhang exceeds 30°; parts are transferred within 10 min to a forced-air oven at 120 °C for 90 min. Finished part categories: over-ear headphone cushions, earbud tips, wearable biosensor strap pads, and VR headset facial gaskets.

    Food and beverage dispensing seals retain compliance only after extended postcure extractables verification.

    Food-contact sealing components fabricated from LC 3335 require that the final finished article, rather than the raw liquid resin, is compliant with FDA 21 CFR 177.2600 paragraphs (d) and (e) for rubber articles intended for repeated food contact, and EU Regulation 1935/2004 Articles 3 and 17 with BfR Recommendation XV for silicone elastomers. Because 3D-printed deposition introduces layer interfaces and possible unreacted low-molecular-weight siloxane fractions, postcure at 150 °C for 4 h in a vented oven is the minimum condition to reduce total volatile organic compounds below 0.5 wt% as measured by headspace GC/MS; published data for LC 3335 specifically is limited, so production lots must be verified against overall migration limits under EU Regulation 10/2011 Annex III, using 3 wt% acetic acid or 10 wt% ethanol simulants for 2 h at 70 °C. Metering ratio: 100 wt% LC 3335 after 1:1 A/B mixing; no internal release agents, plasticizers, or organic peroxide curatives are permitted because addition-cure chemistry produces no peroxide decomposition byproducts in the cured network. Downstream process: gaskets are printed at 15 mm/s using a 200 µm nozzle, layer height 0.25 mm, build plate 70 °C, then postcured and washed in purified water at 80 °C for 1 h to remove water-soluble condensation byproducts. Terminal products: beverage dispensing valve diaphragms, coffee machine nozzle seals, quick-connect water filter gaskets, and food packaging leak-test seals.

    In tool-less low-volume industrial gasket production, LC 3335 replaces molded silicone rubber only where continuous service temperature is below 150 °C and compressive sealing force targets remain below 20 N per linear cm, as determined by compression-deflection testing under ASTM D1056-14. Compliance for industrial seals includes ISO 815-1:2019 Method A compression set at 125 °C for 22 h, ISO 1629 for material classification boundaries, and, where oil-resistant sealing is claimed, the explicit limitation that silicone is not suitable for continuous immersion in synthetic hydrocarbon oils; compatibility is verified by ISO 1817:2022. Metering ratio: 100 wt% LC 3335 is metered as a single feedstock without solvent letdown; a proposed 25 wt% internal release additive is not applicable because printed parts require no mold, and such modification would risk changing network crosslink density. Process: gaskets are produced on a liquid-deposition printer with a 300 µm nozzle, 10 mm/s print speed, 0.40 mm layer height, and 110 °C bed; cure is completed in a 150 °C convection oven for 2 h, followed by a room-temperature compression set fixture for 30 min. Terminal parts: manifold gaskets, low-pressure flange seals, pump housing O-ring replacements, and custom vibration damping pads.

    Бесплатная цитата

    Конкурентоспособные цены на жидкий силиконовый каучук Dow EVOLV3D™ LC 3335 LSR для 3D-печати, 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

    Запрос

    Получите бесплатную сметуAscent Petrochem Holdings Co., Limited

    Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!

    Сертификация и соответствие требованиям
    Более подробное введение

    Dow EVOLV3D™ LC 3335 LSR Liquid Silicone Rubber for 3D Printing is a two-component, platinum-catalysed addition-cure liquid silicone rubber. The A and B components are formulated for metered mixing at a 1:1 volumetric ratio and subsequent deposition through a disposable static mixer at ambient factory temperatures. The cured material is a silicone elastomer in the nominal 35 Shore A durometer class, though the exact printed value is determined by toolpath direction and post-cure schedule. The grade is not a condensation-cure room-temperature vulcanising compound and does not rely on atmospheric moisture, tin catalysts, or UV exposure. The material is intended for extrusion-based liquid deposition printing systems that can handle two-component mixing at room temperature. Users should not assume equivalence to injection-moulded sheets; printed specimens must be cut from plaques or buttons produced with the intended nozzle diameter, layer height, and curing oven profile.

    In comparison with fused filament fabrication of thermoplastic elastomers, LC 3335 can be deposited through a fine nozzle without melt torque because the uncured material is a pumpable fluid containing yield-stress modifiers that hold the bead after exit. Unlike UV-curable elastomers, the hydrosilylation cure can proceed in shadowed cavities and does not require layer-by-layer UV exposure; however, full mechanical properties develop only after oven exposure. Compared with high-consistency silicone rubber, LC 3335 is supplied as a liquid and does not require high-shear kneading or compression moulding. These differences make it a candidate for short-run seals, damping pads, wearable bands, and prototype components requiring a 30–40 Shore A elastomer with thermal stability. The base resin alone does not confer food-contact or medical regulatory approval.

    When LC 3335 Is Dispensed Through a Static Mixer Under Lean Flow Conditions

    Deposition of LC 3335 is best performed with positive-displacement metering rather than pressure-only reservoir feed. Progressive-cavity pumps or rotary-displacement pumps with ceramic or hardened stainless rotors are used to deliver the A and B components to a static mixer. The mixer is usually a disposable plastic element unit of 24 to 32 elements, selected to match the mixed viscosity and target output. A gravimetric or volumetric calibration should demonstrate A/B ratio within ±1 % by weight; larger deviations shift stoichiometry and can produce a permanently tacky bead or low elongation. The wetted path from pump outlet to nozzle tip is considered a consumable because mixed material gradually advances in viscosity and can adhere to metal.

    Nozzle diameter is chosen against the intended layer width. Orifices from 0.4 mm to 1.2 mm are common; a 0.6 mm orifice at a printed layer height of 0.3 mm yields a relaxed bead wider than the orifice after deposition. If the nozzle is too small for the required build rate, shear rate in the opening rises and the pressure requirement at the pump head increases. At shear rates above 10 s⁻¹, the material shear-thins, but the pressure drop through a 0.25 mm nozzle can still become limiting. Conversely, a nozzle above 1.5 mm produces heavy beads that may slump before cure if the yield stress is exceeded. Print speed is matched to volumetric output; movement rates from 10 mm/s to 40 mm/s are typically used, but the allowable range depends on nozzle diameter, layer height, and the green-strength requirement of the unsupported wall.

    Mixed material temperature is maintained between 18 °C and 30 °C. At temperatures below 15 °C, viscosity increases and metering repeatability can degrade. Above 35 °C, the working life of the mixed A/B decreases rapidly. Pot-life measurements should be made by oscillatory rheometry at the print-head temperature; time to a defined multiple of the initial complex viscosity is a more useful limit than visual gel time. A mixed batch at 25 °C commonly remains printable for several hours for this addition-cure class, but heated production lines may reduce this to under 20 min. Mixed material should not be recirculated or returned to component pails.

    Green strength of the deposited bead is the key differentiator from standard injection-moulding LSR. The formulated yield stress prevents slumping of a vertical bead, but it does not permit unlimited bridging. Unsupported spans beyond approximately 5 mm can sag before cure; short overhangs and steep sidewalls may require a support strategy. The support material, if used, must be compatible with platinum-catalysed hydrosilylation. Catalytic poisons in support residue are a known source of tacky surfaces. Where published data is limited, the user should print a stepwise bridging test at the intended layer time to define the maximum span for each nozzle geometry.

    What post-cure thermal histories bring compression set below 20 % after 22 h at 175 °C?

    Thermal cure proceeds by platinum-catalysed hydrosilylation, and the rate is strongly temperature-dependent. A printed part that is tack-free after 10 min at 100 °C may not be fully vulcanised; residual Si-H and vinyl groups can continue to react during storage and alter hardness, elongation, and compression set. Compression-set testing is therefore used as a process-check for cure completeness. The usual target is a compression set below 20 % after 22 h at 175 °C when tested according to ASTM D395-18 Method B. If the value is higher, the cure cycle is modified rather than the base resin.

    A forced-air convection oven with an air-change rate of 5 to 10 air changes per hour is recommended. Dwell time is set by part mass, wall thickness, and whether the part is cured on a metal plate. Thin printed pads of 2 mm to 3 mm can reach practical cure in 20 min to 30 min at 120 °C; thick blocks can require 60 min or more. Oven set points below 100 °C slow vulcanisation and can leave an under-cured core. Very high temperature cycles, such as 4 h at 200 °C, are usually reserved for volatile removal and food-contact post-cure rather than routine property development. Such cycles can embrittle very thin sections if the oven atmosphere is not controlled.

    Test design matrix for printed LC 3335 qualification
    PropertyStandard methodSpecimen configuration
    HardnessASTM D2240-15(2021)Type A durometer on a stacked printed plaque of at least 6 mm
    Tensile strength, elongation at breakASTM D412-16Die C or Die D cut from printed plaque; do not use moulded slab
    Tear strengthASTM D624-00(2020)Die B with grain direction aligned to print path
    Compression setASTM D395-18 Method BType 1 cylindrical buttons, 22 h at 175 °C
    DensityASTM D792-20Post-cured printed coupon

    Mechanical qualification of printed LC 3335 must account for anisotropic deposition. Tensile specimens cut parallel to the toolpath often show higher elongation at break than specimens cut perpendicular to the layer stack. A flat plaque printed with 100 % raster infill and post-cured before cutting is the standard starting point. Hardness is measured on a stacked section of at least 6 mm thickness; values in the 30–40 Shore A range are typical for this material class. Tensile strength of an adequately cured part is generally found between 6 MPa and 9 MPa; elongation at break is often in the 300 % to 600 % range. These are class-level ranges for a 35 Shore A addition-cure LSR and must not be treated as a product guarantee without datasheet verification.

    Tear strength per ASTM D624-00(2020) Die B for this durometer class usually falls between 20 kN/m and 30 kN/m. Lower tear values in printed parts can indicate poor interlayer adhesion; a useful diagnostic is to examine the fracture surface for bead boundaries. Density is measured by ASTM D792-20. A well-fused printed silicone part should be close to a moulded LSR density of approximately 1.10 g/cm³. A measured density below 1.05 g/cm³ suggests porosity, and associated tensile and tear values will be unreliable.

    Rheological, Mechanical, and Comparative Boundaries in Printed LC 3335 Versus Moulded LSR

    Relative to injection-moulding LSR, uncured LC 3335 has a different rheological signature. Standard moulding grades are designed to fill thin cavities under high pressure; they often show a mixed viscosity below 100 Pa·s at 25 °C and low yield stress. The printable grade is stiffer at rest to retain bead shape, but it still shear-thins in the nozzle. A valid comparison therefore requires viscosity curves over shear rates from 0.1 s⁻¹ to 100 s⁻¹, using ISO 3219 or ASTM D4287. The printable material usually has a higher complex viscosity at low frequency and a more pronounced reduction at high shear.

    Moulded LSR parts are typically isotropic, while printed LC 3335 parts have a layered structure. Planar tensile strength of a printed part may be 5 % to 20 % lower than a fully moulded slab of the same hardness, depending on layer fusion and toolpath pattern. This reduction is not unique to LC 3335; it is a consequence of liquid-deposition additive manufacturing. The user can partially mitigate the loss by shortening the interval between adjacent beads and by post-curing at a temperature sufficient to permit interlayer network formation. In sealing applications, layer lines can also create a leak path; compression set, surface geometry, and contact pressure must be verified with the actual printed gasket.

    Compared with flexible FDM thermoplastics, cured LC 3335 tolerates repeated exposure to higher operating temperatures. Addition-cure silicone retains elastomeric behaviour below -50 °C and above 180 °C for short excursions, but thermal ageing must be verified according to ISO 188 or ASTM D573. Flexible TPU, by contrast, commonly has a softening range below 100 °C and is difficult to print in soft, low-durometer grades. Chemically, cured silicone is resistant to many polar solvents and to oxidation, but it swells in nonpolar hydrocarbons; resistance to a specific fluid must be tested by immersion per ASTM D471, not inferred from polymer class alone.

    Class-level comparative values for material selection; LC 3335 values are qualification ranges for printed 35 Shore A LSR rather than datasheet specifications
    CharacteristicPrinted LC 3335 classMoulded 35 Shore A LSRFlexible FDM TPU
    Durometer30–40 Shore A35 Shore A85–95 Shore A
    Tensile strength6–9 MPa7–10 MPa30–50 MPa
    Elongation at break300–600 %400–700 %200–500 %
    Continuous use temperature-50 °C to 200 °C-50 °C to 200 °C-30 °C to 100 °C
    Typical conversionThermal addition cureThermal addition cureMelt-solidification

    Uncured LC 3335 is subject to platinum-catalyst inhibition. Sulfur-containing gloves, tin-catalysed room-temperature silicones, amine-cured epoxies, nitrile rubber, and vapours from certain adhesives can create a tacky, under-cured interface. Dedicated polypropylene or stainless-steel wetted parts are used; brass and tin-containing bronzes are avoided. Components should be stored in closed containers at 5 °C to 30 °C, and mixed material should not be returned to A or B containers. Cured LC 3335 is not automatically compliant with food-contact or medical standards; end-use regulation is a separate validation. Testing under the intended migration or leachables protocol, such as FDA 21 CFR 177.2600 or USP Class VI, is required before a commercial claim is made. Published data for the printed configuration remains limited, so qualification protocols must include printed plaques, not compression-moulded or cast sheets.

    ТОП