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dc.contributor.authorKang, YBen_US
dc.contributor.authorKim, MSen_US
dc.contributor.author이해건en_US
dc.contributor.authorLee, HGen_US
dc.contributor.authorPark, MSen_US
dc.contributor.authorCho, JWen_US
dc.contributor.authorLee, SWen_US
dc.date.accessioned2015-06-25T02:48:14Z-
dc.date.available2015-06-25T02:48:14Z-
dc.date.issued2013-04en_US
dc.identifier.citationMETALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCEen_US
dc.identifier.citationv.44en_US
dc.identifier.citationpp.309-316en_US
dc.identifier.citationno.2en_US
dc.identifier.issn1073-5615en_US
dc.identifier.other2015-OAK-0000031331en_US
dc.identifier.urihttps://oasis.postech.ac.kr/handle/2014.oak/11663-
dc.description.abstractFollowing a series of laboratory-scale experiments, the mechanism of a chemical reaction between high-alloyed TWIP (TWin-Induced Plasticity) steel containing Mn and Al and molten mold flux composed mainly of CaO-SiO2 during the continuous casting process is discussed in the present article in the context of kinetic analysis, morphological evolution at the reaction interface. By the kinetic analysis using a two-film theory, a rate-controlling step of the chemical reaction at the interface between the molten steel and the molten flux is found to be mass transport of Al in a boundary layer of the molten steel, as long as the molten steel and the molten flux phases are concerned. Mass transfer coefficient of the Al in the boundary layer () is estimated to be 0.9 to 1.2 x 10(-4) m/s at 1773 K (C). By utilizing experimental data at various temperatures, the following equation is obtained for the Activation energy for the mass transfer of Al in the boundary layer is 119 kJ/mol, which is close to a value of activation energy for mass transfer in metal phase. The composition evolution of Al in the molten steel was well explained by the mechanism of Al mass transfer. On the other hand, when the concentration of Al in the steel was high, a significant deviation of the composition evolution of Al in the molten steel was observed. By observing reaction interface between the molten steel and the molten flux, it is thought that the chemical reaction controlled by the mass transfer of Al seemed to be disturbed by formation of a solid product layer of MgAl2O4. A model based on a dynamic mass balance and the reaction mechanism of mass transfer of Al in the boundary layer for the low Al steel was developed to predict (pct Al2O3) accumulation rate in the molten mold flux.en_US
dc.description.statementofresponsibilityopenen_US
dc.format.extentpdfen_US
dc.publisherSPRINGERen_US
dc.rightsBY_NC_NDen_US
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/2.0/kren_US
dc.subjectEQUILIBRIUM-S DISTRIBUTIONen_US
dc.subjectCALCIUM ALUMINATEen_US
dc.subjectALLOYSen_US
dc.subjectSTEELMAKINGen_US
dc.subjectSILICAen_US
dc.subjectKINETICSen_US
dc.subjectREDUCTIONen_US
dc.subjectSLAGen_US
dc.subjectLIQUID FEen_US
dc.subjectSATURATED IRONen_US
dc.titleA Reaction Between High Mn-High Al Steel and CaO-SiO2-Type Molten Mold Flux: Part II. Reaction Mechanism, Interface Morphology, and Al2O3 Accumulation in Molten Mold Fluxen_US
dc.contributor.college철강대학원en_US
dc.identifier.doi10.1007/S11663-012-9769-5en_US
dc.author.googleKang, YBen_US
dc.author.googleKim, MSen_US
dc.author.googleLee, HGen_US
dc.author.googlePark, MSen_US
dc.author.googleCho, JWen_US
dc.author.googleLee, SWen_US
dc.relation.volume44en_US
dc.relation.issue2en_US
dc.relation.startpage309en_US
dc.relation.lastpage316en_US
dc.contributor.id10200282en_US
dc.publisher.locationUSen_US
dc.relation.journalMETALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCEen_US
dc.relation.indexSCI급, SCOPUS 등재논문en_US

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