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dc.contributor.authorProkofev, Pavel A.
dc.contributor.authorKolchugina, Natalia B.
dc.contributor.authorBurkhanov, Gennadij Sergeevich
dc.contributor.authorLukin, Alexander A.
dc.contributor.authorKoshkid'ko, Yury S.
dc.contributor.authorSkotnicová, Kateřina
dc.contributor.authorČegan, Tomáš
dc.contributor.authorŽivotský, Ondřej
dc.contributor.authorKursa, Miroslav
dc.contributor.authorDrulis, Henrik
dc.contributor.authorHackemer, Alicja E.
dc.date.accessioned2019-09-06T07:44:22Z
dc.date.available2019-09-06T07:44:22Z
dc.date.issued2019
dc.identifier.citationJournal of Phase Equilibria and Diffusion. 2019, vol. 40, issue 3, p. 403-412.cs
dc.identifier.issn1547-7037
dc.identifier.issn1863-7345
dc.identifier.urihttp://hdl.handle.net/10084/138488
dc.description.abstractIn recent years, the grain-boundary diffusion (GBD) and grain-boundary restructuring processes used in manufacturing Nd-Fe-B magnets show promise as procedures that allow one to increase their hysteretic characteristics. The processes are realized by adding various amounts of heavy-rare-earth metals (in the form of hydrides, oxides, intermetallic compounds, etc.) to powder mixtures. The additions decompose or melt during subsequent heat treatment, and their components diffuse into grains and remain within the grain-boundary phase and thus, increase the anisotropy field of the main-magnetic (Nd2Fe14B-based) phase and improve the grain-boundary structure, respectively. In the present study, we consider alloys near the Tb-3(Co0.6Cu0.4) composition as such an addition, which is of importance in designing the microstructure of Nd-Fe-B permanent magnets allowing us to economically alloy them with terbium (via GBD) simultaneously making copper and cobalt parts of the magnet composition. The phase equilibria in the Tb-rich corner of the Co-Cu-Tb system near the Tb-3(Co0.6Cu0.4) composition, which was found to be multiphase, are assessed based on electron microscopy studies, data from electron microprobe, x-ray diffraction, and differential thermal analyses, and from magnetic measurements. A portion of the isothermal section for compositions Tb-40at.% Co-50at.% Cu at 600 degrees C was constructed. The copper solubility in Tb-3(Co,Cu) and Tb-12(Co,Cu)(7), and Co solubility in the Tb(Cu,Co) compound were determined, which are up to 6.5, 14.5, and 10at.%, respectively. The possibility of hydrogenation of the multiphase composition with the formation of TbHx, and fine Co and Cu powders, which are components for diffusion in manufacturing permanent magnets, is demonstrated.cs
dc.language.isoencs
dc.publisherSpringercs
dc.relation.ispartofseriesJournal of Phase Equilibria and Diffusioncs
dc.relation.urihttp://doi.org/10.1007/s11669-019-00735-xcs
dc.rights© ASM International 2019cs
dc.subjectCo-Cu-Tb systemcs
dc.subjectcopper solubilitycs
dc.subjectgrain boundary diffusioncs
dc.subjectNd-Fe-B magnetscs
dc.subjectpartial isothermal sectioncs
dc.subjectphase equilibriacs
dc.subjectTb-rich cornercs
dc.titleMultiphase characterization of phase equilibria in the Tb-rich corner of the Co-Cu-Tb systemcs
dc.typearticlecs
dc.identifier.doi10.1007/s11669-019-00735-x
dc.type.statusPeer-reviewedcs
dc.description.sourceWeb of Sciencecs
dc.description.volume40cs
dc.description.issue3cs
dc.description.lastpage412cs
dc.description.firstpage403cs
dc.identifier.wos000474474300007


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