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Anisotropic diffusion mechanism in grain boundary diffusion processed Nd-Fe-B sintered magnet

Authors
Kim, Tae-HoonLee, Seong-RaeYun, Seok JinLim, Sang HoKim, Hyo-JunLee, Min-WooJang, Tae-Suk
Issue Date
15-6월-2016
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
Nd-Fe-B sintered magnet; Grain boundary diffusion process; Coercivity; Microstructure; Diffusion mechanism; Crystallographic orientation
Citation
ACTA MATERIALIA, v.112, pp.59 - 66
Indexed
SCIE
SCOPUS
Journal Title
ACTA MATERIALIA
Volume
112
Start Page
59
End Page
66
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/88334
DOI
10.1016/j.actamat.2016.04.019
ISSN
1359-6454
Abstract
We investigated the anisotropic diffusion mechanism of Dy in a DyH2 dip-coated magnet in terms of both the crystal orientation of the Nd2Fe14B phase and the aligned direction of the magnet. A Dy-rich shell was formed preferentially at the interface, which is parallel to the [001] axis (c-axis) of the Nd2Fe14B crystal, during the grain boundary diffusion process (GBDP) because lattice diffusion of Dy perpendicular to the c-axis of the Nd2Fe14B crystal is much easier than that parallel to the c-axis. In contrast, the grain boundary diffusion depth in the direction perpendicular to the aligned direction (c-axis) of the magnet was much shorter (similar to 100 mu m) than that in the direction parallel to the aligned direction (similar to 250 mu m). Anisotropic grain boundary diffusion depending on the aligned direction of the magnet was not the result of the anisotropic Nd-rich grain boundary phase distribution but of anisotropic lattice diffusion depending on the Nd2Fe14B crystal orientation. Increasing the ratio of the surface areas perpendicular and parallel to the aligned direction (c-axis) of the magnet is expected to further improve the coercivity of the GBDP magnet. (C) 2016 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
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공과대학 (신소재공학부)
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