Phase structure evolution and its effect on magnetic and mechanical properties of B-doped Sm2Co17-type magnets with high Fe content

Yao-Wen Li, Zhuang Liu, Hai-Chen Wu, Fang Wang, Chao-Qun Zhu, Dong-Liang Tan, Yu Liu, Yang Yang, Ming-Xiao Zhang, Ren-Jie Chen, Aru Yan
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Abstract

The unique cellular microstructure of Fe-rich Sm2Co17-type permanent magnets is closely associated with the structure of the solid solution precursor. In this article, the phase structure, magnetic properties, and mechanical behavior of B-doped Sm2Co17-type magnets with high Fe content are investigated. The doped B atoms can diffuse into the interstitial vacancy, resulting in lattice expansion and promote the homogenization of the phase organizational structure during the solid solution treatment in theory. However, the resulting second phase plays a dominant role, resulting in more microtwin structures and highly ordered 2:17R phases in the solid solution stage, which inhibits the ordering transformation of 1:7H phase during aging and affects the generation of the cellular structure, and resulting in a decrease in magnetic properties, yet the interface formed between it and the matrix phase hinders the movement of dislocations and enhances the mechanical properties. Hence, the precipitation of high flexural strain grain boundary phase induced by B element doping is also a new and effective way to improve the flexural strain of Sm2Co17-type magnets. Our study provides a new understanding of the phase structure evolution and its effect on the magnetic and mechanical properties of Sm2Co17-type magnets with high Fe content.
高铁含量的掺 B Sm2Co17 型磁体的相结构演化及其对磁性和机械性能的影响
富铁 Sm2Co17 型永磁体独特的蜂窝状微观结构与固溶体前驱体的结构密切相关。本文研究了高铁含量的掺 B Sm2Co17 型磁体的相结构、磁性能和力学行为。在理论上,掺杂的 B 原子可以扩散到间隙空位中,导致晶格膨胀,并在固溶处理过程中促进相组织结构的均匀化。但由此产生的第二相起主导作用,在固溶阶段形成更多的微丝结构和高度有序的 2:17R 相,在老化过程中抑制了 1:7H 相的有序转变,影响了蜂窝结构的生成,导致磁性能下降,但它与基体相之间形成的界面阻碍了位错的移动,增强了力学性能。因此,B 元素掺杂诱导的高弯曲应变晶界相的析出也是改善 Sm2Co17 型磁体弯曲应变的一种新的有效方法。我们的研究为相结构演化及其对高铁元素含量的 Sm2Co17 型磁体的磁性和力学性能的影响提供了新的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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