Mathematical Model of a Two-Temperature Medium of Gas–Solid Nanoparticles with Laser Methane Pyrolysis
A mathematical model of a two-phase chemically active medium of gas and solid ultrafine particles in the field of laser radiation with detailed heat transfer processes between the gas and particles is created. The mathematical model is a system of Navier–Stokes equations in the approximation of smal...
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description | A mathematical model of a two-phase chemically active medium of gas and solid ultrafine particles in the field of laser radiation with detailed heat transfer processes between the gas and particles is created. The mathematical model is a system of Navier–Stokes equations in the approximation of small Mach numbers and several temperatures, which describes the dynamics of a viscous multicomponent heat-conducting medium with diffusion, chemical reactions, and energy supply through laser radiation. A computational algorithm is developed for studying chemical processes in a gas–dust medium with the single-velocity dynamics of a multicomponent gas under the laser radiation. This mathematical model multiscale, i.e., is characterized by the presence of several very different temporal and spatial scales. The computational algorithm is based on the scheme of splitting by physical processes. For a two-phase medium of a multicomponent gas and nanodispersed solid particles, theoretical studies of multidirectional processes of thermal relaxation and specific heating-cooling of the components of a two-phase medium by laser radiation, thermal effects of chemical reactions, and intrinsic radiation particles are carried out. It is shown that laser radiation can form a significant gap between the particle temperature and the gas temperature and provide the activation of methane with conversion to ethylene and hydrogen. The developed numerical model will find its application in the creation of new technologies of laser thermochemistry. |
doi_str_mv | 10.1134/S2070048223050095 |
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N. ; Peskova, E. E. ; Stoyanovskaya, O. P.</creator><creatorcontrib>Snytnikov, V. N. ; Peskova, E. E. ; Stoyanovskaya, O. P.</creatorcontrib><description>A mathematical model of a two-phase chemically active medium of gas and solid ultrafine particles in the field of laser radiation with detailed heat transfer processes between the gas and particles is created. The mathematical model is a system of Navier–Stokes equations in the approximation of small Mach numbers and several temperatures, which describes the dynamics of a viscous multicomponent heat-conducting medium with diffusion, chemical reactions, and energy supply through laser radiation. A computational algorithm is developed for studying chemical processes in a gas–dust medium with the single-velocity dynamics of a multicomponent gas under the laser radiation. This mathematical model multiscale, i.e., is characterized by the presence of several very different temporal and spatial scales. The computational algorithm is based on the scheme of splitting by physical processes. For a two-phase medium of a multicomponent gas and nanodispersed solid particles, theoretical studies of multidirectional processes of thermal relaxation and specific heating-cooling of the components of a two-phase medium by laser radiation, thermal effects of chemical reactions, and intrinsic radiation particles are carried out. It is shown that laser radiation can form a significant gap between the particle temperature and the gas temperature and provide the activation of methane with conversion to ethylene and hydrogen. The developed numerical model will find its application in the creation of new technologies of laser thermochemistry.</description><identifier>ISSN: 2070-0482</identifier><identifier>EISSN: 2070-0490</identifier><identifier>DOI: 10.1134/S2070048223050095</identifier><language>eng</language><publisher>Moscow: Pleiades Publishing</publisher><subject>Algorithms ; Chemical reactions ; Gas temperature ; Heat transmission ; Laser beam heating ; Lasers ; Mach number ; Mathematical analysis ; Mathematical Modeling and Industrial Mathematics ; Mathematical models ; Mathematics ; Mathematics and Statistics ; Methane ; Nanoparticles ; New technology ; Numerical models ; Pyrolysis ; Radiation ; Simulation and Modeling ; Temperature ; Temperature effects ; Thermal relaxation ; Thermochemistry ; Ultrafines</subject><ispartof>Mathematical models and computer simulations, 2023-10, Vol.15 (5), p.877-893</ispartof><rights>Pleiades Publishing, Ltd. 2023. ISSN 2070-0482, Mathematical Models and Computer Simulations, 2023, Vol. 15, No. 5, pp. 877–893. © Pleiades Publishing, Ltd., 2023. Russian Text © The Author(s), 2023, published in Matematicheskoe Modelirovanie, 2023, Vol. 35, No. 4, pp. 24–50.</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c2315-576dd0b1541ed978627de1c4a9ec3c592d08250222c10995e392cff1875fa60b3</citedby><cites>FETCH-LOGICAL-c2315-576dd0b1541ed978627de1c4a9ec3c592d08250222c10995e392cff1875fa60b3</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktopdf>$$Uhttps://link.springer.com/content/pdf/10.1134/S2070048223050095$$EPDF$$P50$$Gspringer$$H</linktopdf><linktohtml>$$Uhttps://link.springer.com/10.1134/S2070048223050095$$EHTML$$P50$$Gspringer$$H</linktohtml><link.rule.ids>314,778,782,27911,27912,41475,42544,51306</link.rule.ids></links><search><creatorcontrib>Snytnikov, V. N.</creatorcontrib><creatorcontrib>Peskova, E. E.</creatorcontrib><creatorcontrib>Stoyanovskaya, O. P.</creatorcontrib><title>Mathematical Model of a Two-Temperature Medium of Gas–Solid Nanoparticles with Laser Methane Pyrolysis</title><title>Mathematical models and computer simulations</title><addtitle>Math Models Comput Simul</addtitle><description>A mathematical model of a two-phase chemically active medium of gas and solid ultrafine particles in the field of laser radiation with detailed heat transfer processes between the gas and particles is created. The mathematical model is a system of Navier–Stokes equations in the approximation of small Mach numbers and several temperatures, which describes the dynamics of a viscous multicomponent heat-conducting medium with diffusion, chemical reactions, and energy supply through laser radiation. A computational algorithm is developed for studying chemical processes in a gas–dust medium with the single-velocity dynamics of a multicomponent gas under the laser radiation. This mathematical model multiscale, i.e., is characterized by the presence of several very different temporal and spatial scales. The computational algorithm is based on the scheme of splitting by physical processes. For a two-phase medium of a multicomponent gas and nanodispersed solid particles, theoretical studies of multidirectional processes of thermal relaxation and specific heating-cooling of the components of a two-phase medium by laser radiation, thermal effects of chemical reactions, and intrinsic radiation particles are carried out. It is shown that laser radiation can form a significant gap between the particle temperature and the gas temperature and provide the activation of methane with conversion to ethylene and hydrogen. The developed numerical model will find its application in the creation of new technologies of laser thermochemistry.</description><subject>Algorithms</subject><subject>Chemical reactions</subject><subject>Gas temperature</subject><subject>Heat transmission</subject><subject>Laser beam heating</subject><subject>Lasers</subject><subject>Mach number</subject><subject>Mathematical analysis</subject><subject>Mathematical Modeling and Industrial Mathematics</subject><subject>Mathematical models</subject><subject>Mathematics</subject><subject>Mathematics and Statistics</subject><subject>Methane</subject><subject>Nanoparticles</subject><subject>New technology</subject><subject>Numerical models</subject><subject>Pyrolysis</subject><subject>Radiation</subject><subject>Simulation and Modeling</subject><subject>Temperature</subject><subject>Temperature effects</subject><subject>Thermal relaxation</subject><subject>Thermochemistry</subject><subject>Ultrafines</subject><issn>2070-0482</issn><issn>2070-0490</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2023</creationdate><recordtype>article</recordtype><recordid>eNp1kMFKw0AQhhdRsGgfwNuC5-jsbjbZPUrRKrQqtJ7DNjsxKUk27qaU3nwH39AnMaWiB3EuM8z83z_wE3LB4IoxEV8vOKQAseJcgATQ8oiM9qsIYg3HP7Pip2QcwhqGEjxVQo1IOTd9iY3pq9zUdO4s1tQV1NDl1kVLbDr0pt94pHO01abZ36YmfL5_LFxdWfpoWtcZP9A1Brqt-pLOTEA_yPvStEifd97Vu1CFc3JSmDrg-LufkZe72-XkPpo9TR8mN7Mo54LJSKaJtbBiMmZodaoSnlpkeWw05iKXmltQXALnPGegtUSheV4UTKWyMAmsxBm5PPh23r1tMPTZ2m18O7zMuEpASCaYGlTsoMq9C8FjkXW-aozfZQyyfabZn0wHhh-YMGjbV_S_zv9DX1U2eBA</recordid><startdate>20231001</startdate><enddate>20231001</enddate><creator>Snytnikov, V. N.</creator><creator>Peskova, E. E.</creator><creator>Stoyanovskaya, O. P.</creator><general>Pleiades Publishing</general><general>Springer Nature B.V</general><scope>AAYXX</scope><scope>CITATION</scope></search><sort><creationdate>20231001</creationdate><title>Mathematical Model of a Two-Temperature Medium of Gas–Solid Nanoparticles with Laser Methane Pyrolysis</title><author>Snytnikov, V. N. ; Peskova, E. E. ; Stoyanovskaya, O. P.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c2315-576dd0b1541ed978627de1c4a9ec3c592d08250222c10995e392cff1875fa60b3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2023</creationdate><topic>Algorithms</topic><topic>Chemical reactions</topic><topic>Gas temperature</topic><topic>Heat transmission</topic><topic>Laser beam heating</topic><topic>Lasers</topic><topic>Mach number</topic><topic>Mathematical analysis</topic><topic>Mathematical Modeling and Industrial Mathematics</topic><topic>Mathematical models</topic><topic>Mathematics</topic><topic>Mathematics and Statistics</topic><topic>Methane</topic><topic>Nanoparticles</topic><topic>New technology</topic><topic>Numerical models</topic><topic>Pyrolysis</topic><topic>Radiation</topic><topic>Simulation and Modeling</topic><topic>Temperature</topic><topic>Temperature effects</topic><topic>Thermal relaxation</topic><topic>Thermochemistry</topic><topic>Ultrafines</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Snytnikov, V. N.</creatorcontrib><creatorcontrib>Peskova, E. E.</creatorcontrib><creatorcontrib>Stoyanovskaya, O. P.</creatorcontrib><collection>CrossRef</collection><jtitle>Mathematical models and computer simulations</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Snytnikov, V. N.</au><au>Peskova, E. E.</au><au>Stoyanovskaya, O. P.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Mathematical Model of a Two-Temperature Medium of Gas–Solid Nanoparticles with Laser Methane Pyrolysis</atitle><jtitle>Mathematical models and computer simulations</jtitle><stitle>Math Models Comput Simul</stitle><date>2023-10-01</date><risdate>2023</risdate><volume>15</volume><issue>5</issue><spage>877</spage><epage>893</epage><pages>877-893</pages><issn>2070-0482</issn><eissn>2070-0490</eissn><abstract>A mathematical model of a two-phase chemically active medium of gas and solid ultrafine particles in the field of laser radiation with detailed heat transfer processes between the gas and particles is created. The mathematical model is a system of Navier–Stokes equations in the approximation of small Mach numbers and several temperatures, which describes the dynamics of a viscous multicomponent heat-conducting medium with diffusion, chemical reactions, and energy supply through laser radiation. A computational algorithm is developed for studying chemical processes in a gas–dust medium with the single-velocity dynamics of a multicomponent gas under the laser radiation. This mathematical model multiscale, i.e., is characterized by the presence of several very different temporal and spatial scales. The computational algorithm is based on the scheme of splitting by physical processes. For a two-phase medium of a multicomponent gas and nanodispersed solid particles, theoretical studies of multidirectional processes of thermal relaxation and specific heating-cooling of the components of a two-phase medium by laser radiation, thermal effects of chemical reactions, and intrinsic radiation particles are carried out. It is shown that laser radiation can form a significant gap between the particle temperature and the gas temperature and provide the activation of methane with conversion to ethylene and hydrogen. The developed numerical model will find its application in the creation of new technologies of laser thermochemistry.</abstract><cop>Moscow</cop><pub>Pleiades Publishing</pub><doi>10.1134/S2070048223050095</doi><tpages>17</tpages></addata></record> |
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subjects | Algorithms Chemical reactions Gas temperature Heat transmission Laser beam heating Lasers Mach number Mathematical analysis Mathematical Modeling and Industrial Mathematics Mathematical models Mathematics Mathematics and Statistics Methane Nanoparticles New technology Numerical models Pyrolysis Radiation Simulation and Modeling Temperature Temperature effects Thermal relaxation Thermochemistry Ultrafines |
title | Mathematical Model of a Two-Temperature Medium of Gas–Solid Nanoparticles with Laser Methane Pyrolysis |
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