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Carbon Printers FotoDent Cast Methacrylate resin

    • Название продукта: Carbon Printers FotoDent Cast Methacrylate resin
    • 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 560525

    Как аккредитованный завод по производству метакрилатной смолы FotoDent, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Carbon Printers FotoDent Cast Methacrylate resin packaging: a 1 kg opaque plastic bottle with a child-resistant cap and hazard labels.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loaded with Carbon Printers FotoDent Cast Methacrylate resin in sealed original packaging, palletized, secured for ocean freight.
    Доставка Carbon Printers FotoDent Cast Methacrylate resin is shipped in sealed, opaque, leak-resistant containers. Keep cool, dry, upright, and away from ignition sources and UV light. It is typically not regulated as dangerous goods; verify the current SDS and comply with carrier/IATA/IMDG requirements.
    Хранение Store in the original, tightly sealed container in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, flames, and incompatible materials such as oxidizers. Keep between 15–25°C; do not freeze. Keep away from food, drink, and children. Use appropriate PPE when handling. Ensure containers are closed after use and inspect for leaks. Follow manufacturer’s SDS and local regulations.
    Срок годности Shelf life is 24 months from date of manufacture when stored unopened between 15–25°C in a cool, dry, dark place.
    Применение углеродных принтеров FotoDent Cast Methacrylate resin

    On a Carbon DLS platform with a 189 × 118 mm build area, the methacrylate photopolymer is processed for burnout patterns used in fixed prosthodontic casting. The resin is filtered through a 0.45 µm polypropylene capsule before vat filling and is processed as supplied at 100 wt%; no reactive diluent, solvent, or additional photoinitiator is introduced because the inhibited methacrylate network is balanced for the printer’s oxygen-controlled cure interface. The intaglio surface of crown and bridge patterns is oriented 20–40° from the build platform, and support touchpoint spacing is maintained at 1.6–2.5 mm to reduce finish-line deformation during support removal. Printed patterns are washed in ≥99.5% 2-propanol, dried under filtered air at 0.2–0.4 MPa, and invested directly without post-light curing. Delaying investment beyond 48 h under 40% relative humidity can induce dimensional change, and storage must be in an amber desiccator. Burnout is conducted in a phosphate-bonded investment with a 60 min hold at 270–300 °C and final ramp to 850–900 °C under oxygen; ASTM E1131-24 thermogravimetric analysis is used as a quality gate for residual carbon. The terminal devices are Co-Cr or Ni-Cr fixed prostheses conforming to ISO 22674:2016 type 4 metallic frameworks and ISO 9693:2019 metal-ceramic compatibility, with porcelain veneering applied after oxide firing.

    Production-scale failure modes observed in the casting pattern workflow include margin chipping during support removal when the finish line is oriented beyond 40°, and incomplete burnout of thick pontic sections exceeding 2.0 mm unless an intermediate hold at 300 °C is extended to 30 min for complete depolymerization. Batch-to-batch viscosity drift above 15% relative to the certificate of analysis is treated as a release failure; the resin must be re-mixed in a closed amber HDPE container for 20 min before re-issue.

    Which Burnout Residue Threshold Governs Lithium Disilicate Ingot Pressing?

    The process-sensitive variable in pressable ceramic production is not the green strength of the printed pattern but the mass fraction of inorganic residue remaining after investment burnout. The resin is dosed at 100 wt% as-supplied liquid, with no addition of wax-based hardening agents. Printed lithium disilicate press patterns are sprued with 2.5–3.5 mm polymer sprues, invested in a phosphate-bonded mold material, and burned out with a ramp to 850 °C under oxygen purge. A hold at 300 °C for 30 min is inserted before the final thermal ramp to depolymerize the methacrylate network; cross-sections above 1.5 mm may retain thermogravimetrically detectable residue above 0.1 wt%, which produces localized reduction zones and grey inclusions in the ceramic ingot. The pressing furnace thermocouple deviation is controlled within ±5 °C, and the laboratory maintains ISO 13485:2016 process validation records for pressing cycles. Terminal restorations are lithium disilicate or leucite-reinforced glass-ceramic crowns, onlays, and veneers evaluated under ISO 6872:2015. After burnout, the hot investment is cleaned with aluminum oxide blasting at 0.2 MPa; steam cleaning is not applied to the hot mold because thermal shock can crack the press channel.

    The resin pattern must be handled as a non-sterile intermediate. Cytotoxicity and irritation data for the cured pattern are not substituted for final ceramic biocompatibility; the final pressed ceramic is assessed under ISO 10993-5:2009 and ISO 10993-10:2010 after polishing and glazing. In field production, incomplete burnout of the press sprue is the dominant rejection cause when the sprue length exceeds 5 mm and the oxygen path is restricted; published data for this specific configuration is limited, and investment manufacturer working instructions must control the atmosphere at the pattern tip.

    Removable partial denture framework pattern production differs from fixed prosthodontic pattern work in that retentive mesh and clasp arm geometry impose a minimum as-printed section of 0.7–1.0 mm to survive pattern handling and investment expansion. The methacrylate resin enters the workflow at 100 wt% of the vat fill; thinning with monofunctional methacrylate diluents is contraindicated because it lowers green modulus and increases tearing at thin clasp tips during support removal. Supports are anchored heavily at the lingual major connector and lightly at clasp arms, and the build is oriented 10–25° to the platform to reduce stair-step error on the tissue surface. Printed patterns are washed in 2-propanol, dried with dry compressed air at 0.3 MPa, and invested in a gypsum-free phosphate investment. Casting is completed with Co-Cr at a melt temperature of 1,400–1,500 °C using an induction centrifugal caster. The terminal framework is finished to ISO 22674:2016 type 5 requirements for clasps and major connectors; final polished alloy cytotoxicity is assessed under ISO 10993-5:2009. During divesting, water-cooling is delayed until the casting has cooled below 500 °C to avoid heat-affected zone cracking in thin clasp arms.

    Clasp tip breakage before casting is the principal batch-level failure when the support touchpoint diameter falls below 0.3 mm; increasing the support contact to 0.4 mm at clasp tips reduces the loss rate but requires a subsequent polishing step after casting to restore the tip profile.

    When Implant Bar Patterns Demand a Passive Fit Tolerance Below 150 µm

    In an implant-supported full-arch workflow, the photocured pattern must not distort during support separation, washing, or investment because the terminal screw-channel position is verified against a master model before casting. The resin is used at 100 wt% and printed as a multi-unit bar pattern with a minimum screw-channel wall thickness of 1.2 mm. After washing and air-drying, the pattern is seated onto laboratory implant analogs, and retention screw torque of 10 N·cm is applied to verify that no visible flexure occurs. If passive fit measured by a dental coordinate measuring system exceeds 150 µm across the terminal abutment, the pattern is rejected and reoriented; published data for this specific configuration is limited, but the rejection limit is derived from screw-retained titanium framework tolerances in dental laboratory practice. The investment pattern is cast in grade 4 titanium or Co-Cr using a vacuum-pressure casting machine. Terminal frameworks are evaluated under ISO 22674:2016, and sectioning or re-soldering is not permitted in grade 4 titanium due to oxygen embrittlement above 350 °C. The final bar is veneered with acrylic or composite; the methacrylate pattern is not part of the final medical device.

    Compliance matrix for cast methacrylate photopolymer workflows
    Standard / Test methodScope in downstream processingControl point
    ISO 13485:2016Quality management for dental laboratory productionClause 7.5.2 validation of printing, washing, burnout, and casting
    ISO 10993-5:2009Cytotoxicity of final cast metal or ceramicQuantitative extraction after final finishing
    ISO 10993-10:2010Irritation and delayed-type hypersensitivityMucosal contact after intraoral adjustment
    ISO 22674:2016Metal frameworks for fixed and removable prosthesesType allocation by section thickness and yield strength
    ISO 9693:2019Metal-ceramic adhesionDe-bonding load after porcelain firing
    ISO 6872:2015Ceramic restorations produced by pressingBiaxial flexural strength of final ceramic
    ASTM E1131-24Compositional analysis via thermogravimetryResidual carbon after burnout ramp to 850 °C

    Custom abutment and hybrid superstructure patterns require a split-file strategy on DLS equipment: the emergence profile is printed with a finer layer setting near the implant interface, while the coronal body is printed with standard exposure to reduce build time. The photopolymer is processed as 100 wt% resin, and the build vat is agitated with a polytetrafluoroethylene-coated stir bar between jobs to prevent monomer segregation at the oxygen-permeable membrane. Batch-to-batch viscosity drift above 15% relative to the supplier certificate of analysis is considered a release failure and requires re-mixing for 20 min in a closed amber HDPE container. After printing, the pattern is washed in a solvent line using 2-propanol with purity of ≥99.0%; residual solvent is monitored gravimetrically below 0.05 wt% before investment because residual alcohol causes investment tears during burnout. Casting is performed with a titanium alloy or Co-Cr alloy under argon; terminal custom abutments and hybrid superstructures are inspected to ISO 22674:2016, and the complete restoration is assessed for mucosal irritation under ISO 10993-10:2010. Ceramic or composite layering is applied only after the cast metal has been airborne-particle abraded at 0.2 MPa with 50 µm aluminum oxide.

    Residual oxygen inhibition on large-platform builds becomes measurable as surface tack when the liquid resin remains in the vat beyond 72 h at 45% relative humidity; the resin is therefore recirculated through a 0.45 µm filter at the start of each shift and is not left uncovered in deep amber trays. Heating the build area below 18 °C causes viscosity increase and incomplete interstitial fill at thin emergence margins; above 30 °C, the inhibition threshold shifts and overcure can fuse support contact zones.

    Cast Post-and-Core Pattern Burnout and Alloy Casting

    In cast post-and-core production, the printed methacrylate pattern is fitted into an endodontically treated canal and adjusted with a hand instrument before investment. The resin is used directly at 100 wt% of the liquid feed; no monomer or stiffening additive is combined at the dental laboratory. The apical tip is maintained at a minimum diameter of 0.5 mm to survive burnout without fracture, and the coronal portion is thickened to at least 1.0 mm for adequate sprue attachment. The pattern is invested in a phosphate-bonded mold with slow vibration; burnout includes a 260 °C depolymerization hold and a final ramp to 850 °C under oxygen. Casting is completed with Co-Cr or type 4 gold alloy using a centrifugal or vacuum-pressure caster; terminal intraradicular restorations are evaluated under ISO 22674:2016, and final finishing includes airborne-particle abrasion before cementation. The methacrylate pattern does not remain in the root canal space, and all residual organic material must be eliminated before alloy casting to avoid incomplete metal flow at the apical tip. Radiographic verification of the trial pattern in the canal is performed before investment, and the pattern is not steam-cleaned because water absorption changes the thermal expansion match between resin and investment.

    The narrow sprue geometry in post-and-core patterns creates a higher local oxygen demand during burnout than in crown patterns; after the 260 °C plateau, the furnace ramp rate is limited to 3–5 °C/min below 600 °C to prevent pressure cracking in the investment. Published data for this specific methacrylate configuration in post-and-core geometry is limited; therefore, the furnace oxygen flow is verified by the investment supplier’s working instructions before first article approval.

    Бесплатная цитата

    Конкурентные углеродные принтеры FotoDent Cast Methacrylate resin цены, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

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    Сертификация и соответствие требованиям
    Более подробное введение

    The Carbon Printers FotoDent Cast Methacrylate resin is the castable photopolymer member of the FotoDent family intended for additive fabrication of dental casting patterns in vat photopolymerization systems. Its model designation is “FotoDent Cast,” and its resin base is a methacrylate ester formulation rather than an epoxy or wax-filled system. The liquid material is UV- or visible-light-curable and is designed to produce a combustible positive structure that is invested, burned out, and replaced by dental alloy during centrifugal or vacuum casting. Unlike a model resin, which is formulated for final dimensional stability and surface hardness, this resin is formulated with a low-inorganic-filler profile to minimize post-burnout residue in the finished metal surface. Published product-specific technical data are not widely mirrored in public repositories; therefore, any numerical value required for process validation should be taken from the manufacturer’s certificate of analysis or current technical data sheet. The resin should not be used as a final intraoral material; its intended position in the workflow is exclusively the laboratory casting pattern.

    In a Carbon printer, the liquid photopolymer is exposed through a membrane that sustains an oxygen-inhibited dead zone during continuous or stepped build cycles. Because methacrylate free-radical polymerisation is strongly retarded by dissolved oxygen, the dead-zone height is not a constant; it depends on resin viscosity, photoinitiator concentration, irradiance, and membrane permeability. A resin that enters the vat with higher viscosity from lot ageing or partial polymerisation can slow reflow beneath the build platform and create thickness errors on shallow marginal slopes. It is therefore necessary to record resin temperature and ambient humidity at the start of each batch. Unfilled methacrylate casting resins of this class may show Brookfield viscosity in the range 200 mPa·s to 800 mPa·s at 25 °C; however, the FotoDent Cast formulation may fall outside this range, and the manufacturer lot release value should be used as the comparator. Viscosity drift greater than 10% from the release value suggests premature oligomerisation and requires resin replacement or filtration through a 50 µm mesh before continuing.

    Why does methacrylate crosslink density govern burnout completeness?

    Burnout performance in a castable methacrylate resin is controlled less by the total polymer content than by the network architecture between monofunctional methacrylate diluents and difunctional or trifunctional crosslinkers. In service, the printed pattern is enveloped in a phosphate-bonded investment conforming to ISO 15912; the mould then passes through a furnace cycle in which the pattern must volatilise, depolymerise, or oxidise before the casting temperature is reached. A highly crosslinked methacrylate network may have better green-state modulus before investment but can also produce a higher char yield if aromatic urethane dimethacrylate or bisphenol A-derived segments are present. Under nitrogen, linear poly(methyl methacrylate) exhibits radical-based unzipping with an onset of mass loss near 250 °C to 320 °C and a depolymerisation peak near 360 °C to 400 °C; crosslinked methacrylates may broaden this decomposition event by 50 °C to 100 °C because of restricted chain mobility. In the investment cavity, oxygen ingress is limited by the permeability of the investment and by the pattern geometry, so carbon oxidation may be incomplete if the heating rate is fast through the 300 °C to 500 °C window. Published TGA data for the Carbon Printers FotoDent Cast Methacrylate resin are limited; validation should compare the furnace residue of a printed pattern against a wax control using the investment supplier’s recommended burn-out schedule. Residual ash of the resin without inorganic pigments should remain below 0.1 wt% when the furnace atmosphere, heating rate, and load size are correctly matched; otherwise, metal surface defects such as fins, gas porosity, or carbon inclusions can appear after casting.

    When post-cure shrinkage destabilises thin margin geometry

    Post-curing of a methacrylate casting pattern is required to complete conversion before investment, but the accompanying volumetric shrinkage and thermal expansion are not uniform across thick and thin sections. The green-state part contains residual monomer and radical sites; post-cure exposure drives additional conversion, increases elastic modulus, and reduces toughness. If the post-cure irradiance is high enough to raise the part temperature above the polymer network’s glass transition, the pattern may relax internal stresses and alter marginal fit. For thin crowns and three-unit bridge frameworks, this distortion can be larger than the fit tolerance required by the dental laboratory. Process validation should therefore post-cure patterns in the same orientation and support configuration that will be used in production, and should measure linear change with a calibrated coordinate measuring machine or a dental CAD comparison scan. Published data for this specific resin’s post-cure distortion are limited; conservative validation begins with a post-cure chamber temperature not exceeding 35 °C and radiant exposure below the level that induces surface tack-free cure. The increment in flexural modulus should be confirmed by testing printed bars after post-cure under ISO 178 or ASTM D790-17, but these tests do not replace pattern-level fit verification because part geometry affects residual stress. Operators should reject batches that show differential shrinkage between margin and axial wall regions after post-cure; this is a process boundary, not a material defect, when the post-cure chamber has poor thermal uniformity.

    Cleaning of the green pattern is typically performed with isopropanol in a two-stage bath or with a proprietary solvent matched to the methacrylate formulation. Prolonged solvent immersion is a known failure mode: the crosslinked methacrylate network absorbs solvent, swells, and may craze during drying, which changes the pattern dimensions and weakens thin connector regions. Immersion time should therefore be limited to the shortest interval that removes unreacted surface liquid, and agitation should be gentle rather than high-velocity ultrasonic, which can rupture fine margins. The resin should not be cleaned with acetone, methylene chloride, or chlorinated solvents unless the manufacturer’s technical data sheet explicitly approves the fluid; these solvents can solvate methacrylate networks aggressively and leave a softened surface. After cleaning, the pattern should be dried with filtered compressed air and inspected under low-angle lighting for residual liquid film, support fragmentation, or white stress zones. If white stress zones are visible, solvent exposure or ultrasonic energy has exceeded the operational limit.

    Incoming lot acceptance for a castable methacrylate resin should be based on the three parameters that most directly influence print fidelity and burnout residue: viscosity, photoresponse, and residue after a controlled burnout test. A cone-and-plate rheometer at 25 °C and a shear rate of 10 s⁻¹ detects lot-to-lot drift before it reaches the printer vat. Photoresponse can be screened by photo-DSC at the printer emission wavelength to measure the total enthalpy of polymerisation and to compare the induction time against a reference lot. Burnout residue can be screened by curing a 2 g sample in a porcelain boat, placing it in a laboratory muffle furnace, and following the investment supplier’s ramp profile up to 800 °C; the boat weight difference is a practical quality-control proxy, not an ASTM standard, but it identifies contamination or an accidental use of a filled model resin. Density measured by pycnometer is a lower-cost check for monomer segregation; a deviation greater than 0.02 g/cm³ from the release value should stop the lot until infrared spectroscopy confirms the material identity.

    Compliance itemStandard or methodAssessmentDocumentation status
    In vitro cytotoxicity of polymerised specimensISO 10993-5Required for laboratory-handled dental resin prior to indirect useManufacturer certificate
    Dental polymer material classificationISO 10477Provides polymer-based crown and bridge material framework for methacrylate familyNot product-specific for castable pattern
    Investment compatibilityISO 15912Reference for phosphate-bonded investment used with burnout patternsValidated with investment supplier
    Additive manufacturing process categoryISO 17296-2Vat photopolymerisation process definition and risk controlQuality-system document
    Dental device market statusFDA 21 CFR 872 subpart E or equivalentApplies if the resin is marketed as a dental device material in the United StatesRegistration or 510(k) status must be confirmed
    European chemical registrationREACH EC 1907/2006Applies to monomer and photoinitiator componentsSDS review required

    Solvent cleaning, support removal, and investment interaction

    Support removal must occur before post-curing if the support material is attached to the pattern with a brittle interface; after post-cure, the interface may be tougher and removal can fracture marginal edges. The cutting instrument should be a fresh, sharp scalpel or precision nipper, and the cut should be made away from the margin. If a support is located on a marginal area, the pattern is often printed again with support placement shifted to the axial or cusp regions to avoid post-removal fit loss. Investment compatibility is not only about burnout; the unexposed or partially cured resin surface can act as a barrier to wetting by the phosphate-bonded investment slurry. Some laboratories apply a surfactant to the pattern surface before investing to eliminate air bubbles, but this treatment should be validated because surfactant residue can alter the burnout time or leave a non-volatile residue. The pattern should be invested within 24 h of final cleaning to minimise absorption of moisture and to avoid surface contamination from laboratory dust.

    In contrast to traditional inlay casting wax, the methacrylate pattern is not softened by hand instruments and cannot be adapted by marginal wax addition; it is a finished net-shaped body. This property reduces manual variation but removes the technician’s ability to correct a short margin by adding wax. Compared with filled model resins, the castable formulation is expected to contain a low inorganic filler fraction; the exact filler content is manufacturer-controlled and not always disclosed. Compared with other castable photopolymers, methacrylate systems are selected for oxygen-inhibited vat printing and for a thermal degradation pathway dominated by depolymerisation rather than ring-opening or hydrolytic decomposition. Epoxy and vinyl-ether resins may offer lower shrinkage but they are not inherently compatible with every printer oxygen window and may require different investment burn-out schedules. Silicone-containing resins should not be substituted because siloxane residues inhibit complete metal wetting and produce surface defects. The use of this resin should be limited to the printer models and wavelength profiles for which the manufacturer has qualified the material; an unqualified printer platform can change the critical energy dose and produce under-cured interior zones that collapse during investment.

    Operational boundaries include temperature, light exposure, and contamination. The uncured resin should be stored in opaque, sealed containers at 5 °C to 25 °C; repeated brief opening under amber or red lighting is acceptable, but daylight or direct LED lighting initiates premature polymerisation. Uncured resin is a skin sensitizer and should be handled with nitrile gloves and eye protection. Splashes onto the printer optical window should be removed with the manufacturer’s approved non-abrasive wipe because polymerised islands become a source of window adhesion and print failure. The resin must not be mixed with amine-based additives or with other photopolymer resins; amines can accelerate polymerisation and alter the dead-zone thickness, while mixed resins create uncontrolled crosslink density and variable burnout residue. Published data for the Carbon Printers FotoDent Cast Methacrylate resin under specific production conditions are limited, so any clinical or laboratory process qualification should include a small-scale casting test with the actual alloy and investment to confirm surface finish and marginal fit before full production begins.

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