材料科学
晶界扩散系数
磁铁
晶界
晶格扩散系数
扩散
各向异性
垂直的
有效扩散系数
矫顽力
凝聚态物理
格子(音乐)
Crystal(编程语言)
结晶学
核磁共振
微观结构
几何学
复合材料
热力学
光学
化学
声学
计算机科学
量子力学
数学
程序设计语言
磁共振成像
放射科
物理
医学
作者
Tae‐Hoon Kim,Seong-Rae Lee,Seok Jin Yun,Sang Ho Lim,Hyo-Jun Kim,Min-Woo Lee,Tae-Suk Jang
标识
DOI:10.1016/j.actamat.2016.04.019
摘要
Abstract We investigated the anisotropic diffusion mechanism of Dy in a DyH 2 dip-coated magnet in terms of both the crystal orientation of the Nd 2 Fe 14 B 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 Nd 2 Fe 14 B crystal, during the grain boundary diffusion process (GBDP) because lattice diffusion of Dy perpendicular to the c -axis of the Nd 2 Fe 14 B 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 (∼100 μm) than that in the direction parallel to the aligned direction (∼250 μm). 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 Nd 2 Fe 14 B 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.
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