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dc.contributor.authorAlexandrov, D. V.en
dc.contributor.authorGalenko, P. K.en
dc.date.accessioned2022-05-12T08:27:04Z-
dc.date.available2022-05-12T08:27:04Z-
dc.date.issued2021-
dc.identifier.citationAlexandrov D. V. Towards the Stable Evolution of Dendrites in the Case of Intense Convection in the Melt / D. V. Alexandrov, P. K. Galenko // Journal of Physics: Conference Series. — 2021. — Vol. 2114. — Iss. 1. — 012043.en
dc.identifier.issn1742-6588-
dc.identifier.otherAll Open Access, Gold3
dc.identifier.urihttp://elar.urfu.ru/handle/10995/112006-
dc.description.abstractThe solid-phase pattern in the form of a dendrite is one of the frequently met structures produced from undercooled liquids. In the last decades, an analytical approach describing the steady-state crystal growth in the presence of conductive heat and mass transport has been constructed. However, experimental works show that crystal patterns frequently grow in the presence of convection. In this paper, a theoretical description based on convective heat and solute concentration transport near the solid/liquid phase interface is developed. The stable regime of crystallization in the presence of vigorous convection near the steady-state crystal vertex is studied. The stability analysis, determining the stable growth mode, and the undercooling balance law have been applied to deduce the stable values for the growth rate and tip diameter. Our analytical predictions (with convective transport) well describe experimental data for a small melt undercooling. Moreover, we compare both convective and conductive mechanisms in the vicinity of the crystal vertex. Our theory shows that convective fluxes substantially change the steady-state growth of crystals. © 2021 Institute of Physics Publishing. All rights reserved.en
dc.description.sponsorshipThe present work comprises different parts of research studies, including (i) the model formulation, stability and solvability analyses, derivation of the selection criterion, and (ii) numerical simulations and comparison with experimental data. Different parts of this study were supported by different grants and programs. With this in mind, the authors are grateful to the following foundations, programs, and grants. The first theoretical part (i) was supported by the Russian Science Foundation (grant no. 21-19-00279). The second part (ii) was made possible due to the financial support from the Ministry of Science and Higher Education of the Russian Federation (FEUZ-2020-0057).en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherIOP Publishing Ltden1
dc.publisherIOP Publishingen
dc.relationinfo:eu-repo/grantAgreement/RSF//21-19-00279en
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.sourceJ. Phys. Conf. Ser.2
dc.sourceJournal of Physics: Conference Seriesen
dc.subjectDENDRITESen
dc.subjectPHASE TRANSFORMATIONSen
dc.subjectunderCOOLED MATERIALSen
dc.subjectCRYSTALSen
dc.subjectDENDRITES (METALLOGRAPHY)en
dc.subjectGROWTH RATEen
dc.subjectPHASE INTERFACESen
dc.subjectunderCOOLINGen
dc.subjectANALYTICAL APPROACHen
dc.subjectCONDUCTIVE HEATen
dc.subjectDENDRITEen
dc.subjectPHASE PATTERNSen
dc.subjectPHASES TRANSFORMATIONen
dc.subjectSOLID PHASISen
dc.subjectSOLID-PHASEen
dc.subjectSTEADY STATEen
dc.subjectunderCOOLED LIQUIDen
dc.subjectunderCOOLED MATERIALen
dc.subjectHEAT CONVECTIONen
dc.titleTowards the Stable Evolution of Dendrites in the Case of Intense Convection in the Melten
dc.typeConference Paperen
dc.typeinfo:eu-repo/semantics/conferenceObjecten
dc.typeinfo:eu-repo/semantics/publishedVersionen
dc.conference.name3rd International Conference in Physical Science and Advanced Materials, PAM 2021en
dc.conference.date24 September 2021 through 28 September 2021-
dc.identifier.doi10.1088/1742-6596/2114/1/012043-
dc.identifier.scopus85123365390-
local.contributor.employeeAlexandrov, D.V., Laboratory of Multi-Scale Mathematical Modeling, Department of Theoretical and Mathematical Physics, Ural Federal University, Ekaterinburg, 620000, Russian Federation; Galenko, P.K., Otto-Schott-Institut für Materialforschung, Friedrich-Schiller-Universität Jena, Jena, 07743, Germanyen
local.issue1-
local.volume2114-
local.contributor.departmentLaboratory of Multi-Scale Mathematical Modeling, Department of Theoretical and Mathematical Physics, Ural Federal University, Ekaterinburg, 620000, Russian Federation; Otto-Schott-Institut für Materialforschung, Friedrich-Schiller-Universität Jena, Jena, 07743, Germanyen
local.identifier.pure29561382-
local.description.order12043-
local.identifier.eid2-s2.0-85123365390-
local.fund.rsf21-19-00279-
local.fund.feuzFEUZ-2020-0057-
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