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dc.contributor.authorDzelme, Valters
dc.contributor.authorJakovics, Andris
dc.contributor.authorBaake, Egbert
dc.date.accessioned2021-11-08T11:53:01Z
dc.date.available2021-11-08T11:53:01Z
dc.date.issued2021
dc.identifier.citationProceeding of UIE 2021: XIX International UIE Congress on Evolution and New Trends in Electrothermal Processes. 1.-3.2021, Pilsen, Faculty of Electrical Engineering, University of West Bohemia, Czech Republic, 2021, p. 17-18.en
dc.identifier.isbn978-80-261-0930-3
dc.identifier.urihttp://hdl.handle.net/11025/45755
dc.description.sponsorshipERDF project No. 1.1.1.1/18/A/108 ”Development of numerical modelling approaches to study complex multiphysical interactions in electromagnetic liquid metal technologiesen
dc.format2 s.cs
dc.format.mimetypeapplication/pdf
dc.language.isoenen
dc.publisherFaculty of Electrical Engineering, University of West Bohemiaen
dc.rights© IEEEen
dc.subjectmagnetohydrodynamikacs
dc.subjecttekutý kovcs
dc.subjectnestabilitacs
dc.titleLiquid metal layer dynamics in transverse alternating magnetic fielden
dc.typeconferenceObjecten
dc.typekonferenční příspěvekcs
dc.rights.accessopenAccessen
dc.type.versionpublishedVersionen
dc.description.abstract-translatedWe study liquid metal layer edge instability in transverse alternating magnetic field, both experimentally and numerically. An inductor is located along one of the layer edges. We find experimentally that liquid metal surface oxidation leads to almost static edge pattern unlike non-oxidized case where wavy oscillations of the edge are observed. In both cases, numerical modelling is a complicated and time-consuming matter, especially due to three-dimensional nature of the phenomena. Nevertheless, preliminary 3D simulations are in a qualitative agreement to experiments.en
dc.subject.translatedmagnetohydrodynamicsen
dc.subject.translatedliquid metalen
dc.subject.translatedinstabilityen
dc.type.statusPeer-revieweden
Vyskytuje se v kolekcích:UIE 2021
UIE 2021

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