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dc.contributor.authorGalashev, A. Y.en
dc.contributor.authorManzhurov, A. I.en
dc.contributor.authorZaikov, Y. P.en
dc.date.accessioned2024-04-22T15:52:12Z-
dc.date.available2024-04-22T15:52:12Z-
dc.date.issued2021-
dc.identifier.citationGalashev, AY, Manzhurov, AI & Zaikov, YP 2021, 'Computer modeling of electrochemical processing of waste nuclear fuel', International Journal of Energy Research, Том. 45, № 8, стр. 11664-11676. https://doi.org/10.1002/er.5462harvard_pure
dc.identifier.citationGalashev, A. Y., Manzhurov, A. I., & Zaikov, Y. P. (2021). Computer modeling of electrochemical processing of waste nuclear fuel. International Journal of Energy Research, 45(8), 11664-11676. https://doi.org/10.1002/er.5462apa_pure
dc.identifier.isbn978-166546480-2
dc.identifier.issn0363-907X
dc.identifier.otherFinal2
dc.identifier.otherAll Open Access; Bronze Open Access3
dc.identifier.otherhttps://doi.org/10.1002/er.54621
dc.identifier.otherhttps://doi.org/10.1002/er.5462pdf
dc.identifier.urihttp://elar.urfu.ru/handle/10995/132312-
dc.description.abstractThe purpose of the work is to study the influence of the electrodes geometry and the mutual arrangement of functional elements in the working space of a metallization electrolyzer on the distribution of the oxygen flux density in the electrolyte, as well as on the distribution of electric and temperature fields. In a computer model, the stationary operation mode of the electrolyzer for processing spent nuclear fuel immersed into the LiCl molten salt with the addition of Li2O was studied. The calculations were performed using the ANSYS software package. We studied eight designs of the electrolyzer, which differ in the immersion depth of the anodes into the melt as well in the types anode protective covers and the cathode baskets. Verification based on the comparison of the computer modeling with experimental data indicates the adequacy of the models used. The electrolyte velocity field and the temperature field are calculated, as well as the steady-state picture of the distribution of electric current density over the working space of the electrolyzer. The efficiency of the electrochemical cell is determined. © 2020 John Wiley & Sons Ltden
dc.description.sponsorshipState Atomic Energy Corporation ROSATOM, ROSATOM, (17706413348200000540)en
dc.description.sponsorshipFunding text 1: The present paper is partly supported by the agreement No. 18, 04.06.2018 under support of the State Atomic Energy Corporation ROSATOM. The work was carried out as a part of R&D “Development of technology and equipment for the pyrochemical processing of SNF of fast neutron reactors” in the “Breakthrough” project area.en
dc.description.sponsorshipFunding text 2: The present paper is financially supported by the State Atomic Energy Corporation Rosatom (State contract No H.4o.241.19.20.1048 dated 17.04.2020, identifier 17706413348200000540).en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherJohn Wiley and Sons Ltden
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.sourceInternational Journal of Energy Research2
dc.sourceInternational Journal of Energy Researchen
dc.subjectCURRENT DENSITYen
dc.subjectELECTROLYZERen
dc.subjectMODELen
dc.subjectSPENT NUCLEAR FUELen
dc.subjectURANIUM DIOXIDEen
dc.subjectANODESen
dc.subjectCHLORINE COMPOUNDSen
dc.subjectELECTROLYTESen
dc.subjectELECTROLYTIC CELLSen
dc.subjectMOLTEN SALT REACTORen
dc.subjectNUCLEAR FUELSen
dc.subjectVELOCITYen
dc.subjectANSYS SOFTWARE PACKAGEen
dc.subjectCOMPUTER MODELINGen
dc.subjectELECTROCHEMICAL PROCESSINGen
dc.subjectFUNCTIONAL ELEMENTSen
dc.subjectOXYGEN FLUX DENSITYen
dc.subjectPROTECTIVE COVERen
dc.subjectSPENT NUCLEAR FUELSen
dc.subjectSTATIONARY OPERATIONSen
dc.subjectLITHIUM COMPOUNDSen
dc.titleComputer modeling of electrochemical processing of waste nuclear fuelen
dc.typeArticleen
dc.typeinfo:eu-repo/semantics/articleen
dc.typeinfo:eu-repo/semantics/publishedVersionen
dc.conference.name11 November 2022 through 13 November 2022en
dc.conference.date2022 IEEE International Multi-Conference on Engineering, Computer and Information Sciences, SIBIRCON 2022
dc.identifier.doi10.1002/er.5462-
dc.identifier.scopus85084228705-
local.contributor.employeeGalashev A.Y., Institute of High-Temperature Electrochemistry, Ural Branch, Russian Academy of Sciences, Academic Str. 20, Yekaterinburg, Russian Federationen
local.contributor.employeeManzhurov A.I., Institute of High-Temperature Electrochemistry, Ural Branch, Russian Academy of Sciences, Academic Str. 20, Yekaterinburg, Russian Federation, Ural Federal University named after the first President of Russia B.N. Yeltsin, Yekaterinburg, Russian Federationen
local.contributor.employeeZaikov Y.P., Institute of High-Temperature Electrochemistry, Ural Branch, Russian Academy of Sciences, Academic Str. 20, Yekaterinburg, Russian Federation, Ural Federal University named after the first President of Russia B.N. Yeltsin, Yekaterinburg, Russian Federationen
local.description.firstpage11664
local.description.lastpage11676
local.issue8
local.volume45
dc.identifier.wos000529814500001-
local.contributor.departmentInstitute of High-Temperature Electrochemistry, Ural Branch, Russian Academy of Sciences, Academic Str. 20, Yekaterinburg, Russian Federationen
local.contributor.departmentUral Federal University named after the first President of Russia B.N. Yeltsin, Yekaterinburg, Russian Federationen
local.identifier.pured01e8af9-2b4d-44ce-a988-73cb4618ff5duuid
local.identifier.pure22104123-
local.identifier.eid2-s2.0-85084228705-
local.identifier.wosWOS:000529814500001-
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