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dc.contributor.authorChaikin, L.en
dc.contributor.authorShoppert, A.en
dc.contributor.authorValeev, D.en
dc.contributor.authorLoginova, I.en
dc.contributor.authorNapol’skikh, J.en
dc.date.accessioned2020-09-29T09:48:24Z-
dc.date.available2020-09-29T09:48:24Z-
dc.date.issued2020-
dc.identifier.citationConcentration of rare earth elements (Sc, y, la, ce, nd, sm) in bauxite residue (red mud) obtained by water and alkali leaching of bauxite sintering dust / L. Chaikin, A. Shoppert, D. Valeev, I. Loginova, et al. . — DOI 10.3390/min10060500 // Minerals. — 2020. — Vol. 6. — Iss. 10. — 500.en
dc.identifier.issn2075-163X-
dc.identifier.otherhttps://www.mdpi.com/2075-163X/10/6/500/pdfpdf
dc.identifier.other1good_DOI
dc.identifier.other45e2a3d8-b589-45b1-b8bb-ea95fe62747apure_uuid
dc.identifier.otherhttp://www.scopus.com/inward/record.url?partnerID=8YFLogxK&scp=85085898920m
dc.identifier.urihttp://elar.urfu.ru/handle/10995/90692-
dc.description.abstractOne of the potential sources of rare-earth elements (REE) is the industrial waste known as red mud (bauxite residue), in which the majority of REE from the initial bauxite are concentrated via the Bayer process. Therefore, the studies of the subject, both in Russia and outside, focus almost exclusively on red mud processing. This article looks into the possibility of REE concentration into red mud by leaching an intermediate product of the bauxite sintering process at Russian alumina refineries, namely electrostatic precipitator (ESP) dust. The experimental works were performed by X-ray diffraction (XRD)and electron probe microanalysis (EPMA) of the sinter and sinter dust. The determination of major and rare-earth elements in the sinter from the rotary kilns and in the ESP dust before and after leaching was carried out by X-ray fluorescence (XRF) and plasma mass spectrometry (ICP-MS). The study showed that it is possible to obtain red mud that contains three times more REE than traditional waste red mud after two-stage leaching ESP dust in the water at 95◦ C followed by leaching in an alkaline-aluminate liquor at 240◦ C. The shrinking core model was used to study the kinetics of leaching of the original ESP dust and water-treated dust in alkaline-aluminate liquor. The study showed the change in the limiting stage of the alkaline leaching process after water treatment, with the activation energy growing from 24.98 to 33.19 kJ/mol. © 2020 by the authors. Licensee MDPI, Basel, Switzerland.en
dc.description.sponsorshipRussian Science Foundation, RSF: 18-19-00186en
dc.description.sponsorshipFunding: The research was funded by the Russian Science Foundation, grant number 18-19-00186.en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherMDPI AGen
dc.relationinfo:eu-repo/grantAgreement/RSF//18-19-00186en
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.rightscc-byother
dc.sourceMineralsen
dc.subjectALKALI LEACHINGen
dc.subjectALUMINA PRODUCTIONen
dc.subjectELECTROSTATIC PRECIPITATION DUSTen
dc.subjectKINETICSen
dc.subjectRARE-EARTH ELEMENTSen
dc.subjectRED MUDen
dc.subjectSCANDIUMen
dc.subjectSINTER PROCESSESen
dc.titleConcentration of rare earth elements (Sc, y, la, ce, nd, sm) in bauxite residue (red mud) obtained by water and alkali leaching of bauxite sintering dusten
dc.typeArticleen
dc.typeinfo:eu-repo/semantics/articleen
dc.typeinfo:eu-repo/semantics/publishedVersionen
dc.identifier.doi10.3390/min10060500-
dc.identifier.scopus85085898920-
local.affiliationDepartment of Non-Ferrous Metals Metallurgy, Ural Federal University Named after the First President of Russia B.N. Yeltsin, Yekaterinburg, 620002, Russian Federationen
local.affiliationLaboratory of New Metallurgical Processes (#24), A.A. Baikov Institute of Metallurgy and Materials Science, Russian Academy of Sciences, 49, Leninsky Prospect, Moscow, 119334, Russian Federationen
local.affiliationScientific Research Centre “Thermochemistry of Materials”, National University of Science & Technology “MISIS”, 4, Leninsky Prospect, Moscow, 119049, Russian Federationen
local.contributor.employeeChaikin, L., Department of Non-Ferrous Metals Metallurgy, Ural Federal University Named after the First President of Russia B.N. Yeltsin, Yekaterinburg, 620002, Russian Federationru
local.contributor.employeeShoppert, A., Department of Non-Ferrous Metals Metallurgy, Ural Federal University Named after the First President of Russia B.N. Yeltsin, Yekaterinburg, 620002, Russian Federationru
local.contributor.employeeValeev, D., Laboratory of New Metallurgical Processes (#24), A.A. Baikov Institute of Metallurgy and Materials Science, Russian Academy of Sciences, 49, Leninsky Prospect, Moscow, 119334, Russian Federation, Scientific Research Centre “Thermochemistry of Materials”, National University of Science & Technology “MISIS”, 4, Leninsky Prospect, Moscow, 119049, Russian Federationru
local.contributor.employeeLoginova, I., Department of Non-Ferrous Metals Metallurgy, Ural Federal University Named after the First President of Russia B.N. Yeltsin, Yekaterinburg, 620002, Russian Federationru
local.contributor.employeeNapol’skikh, J., Department of Non-Ferrous Metals Metallurgy, Ural Federal University Named after the First President of Russia B.N. Yeltsin, Yekaterinburg, 620002, Russian Federationru
local.issue10-
local.volume6-
dc.identifier.wos000551082000001-
local.identifier.pure13149812-
local.description.order500-
local.identifier.eid2-s2.0-85085898920-
local.fund.rsf18-19-00186-
local.identifier.wosWOS:000551082000001-
Располагается в коллекциях:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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