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Coercivity enhancement of sintered Nd–Fe–B magnets by grain boundary diffusion with Pr80-xAlxCu20 alloys

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【作者】 金哲欢金磊丁广飞郭帅郑波樊思宁王志翔范晓东朱金豪陈仁杰闫阿儒潘晶刘新才

【Author】 Zhe-Huan Jin;Lei Jin;Guang-Fei Ding;Shuai Guo;Bo Zheng;Si-Ning Fan;Zhi-Xiang Wang;Xiao-Dong Fan;Jin-Hao Zhu;Ren-Jie Chen;A-Ru Yan;Jing Pan;Xin-Cai Liu;School of Materials Science and Chemical Engineering, Ningbo University;Key Laboratory of Magnetic Materials and Devices, Ningbo Institute of Materials Technology and Engineering,Chinese Academy of Sciences;University of Chinese Academy of Sciences;Ganjiang Innovation Academy, Chinese Academy of Science;

【通讯作者】 郭帅;刘新才;

【机构】 School of Materials Science and Chemical Engineering, Ningbo UniversityKey Laboratory of Magnetic Materials and Devices, Ningbo Institute of Materials Technology and Engineering,Chinese Academy of SciencesUniversity of Chinese Academy of SciencesGanjiang Innovation Academy, Chinese Academy of Science

【摘要】 A grain boundary diffusion(GBD) process with Pr80-xAlxCu20 (x = 0, 10, 15, 20) low melting point alloys was applied to commercial 42M sintered Nd–Fe–B magnets. The best coercivity enhancement of a diffused magnet was for the Pr65Al15Cu20 GBD magnet, from 16.38 kOe to 22.38 kOe. Microstructural investigations indicated that increase in the Al content in the diffusion source can form a continuous grain boundary(GB) phase, optimizing the microstructure to enhance the coercivity. The coercivity enhancement is mainly due to the formation of a continuous GB phase to separate the main phase grains. Exchange decoupling between the adjacent main phase grains is enhanced after the GBD process. Meanwhile,the introduction of Al can effectively promote the infiltration of Pr into the magnet, which increases the diffusion rate of rare-earth elements within a certain range. This work provides a feasible method to enhance coercivity and reduce the use of rare-earth resources by partial replacement of rare-earth elements with non-rare-earth elements in the diffusion source.

【Abstract】 A grain boundary diffusion(GBD) process with Pr80-xAlxCu20 (x = 0, 10, 15, 20) low melting point alloys was applied to commercial 42M sintered Nd–Fe–B magnets. The best coercivity enhancement of a diffused magnet was for the Pr65Al15Cu20 GBD magnet, from 16.38 kOe to 22.38 kOe. Microstructural investigations indicated that increase in the Al content in the diffusion source can form a continuous grain boundary(GB) phase, optimizing the microstructure to enhance the coercivity. The coercivity enhancement is mainly due to the formation of a continuous GB phase to separate the main phase grains. Exchange decoupling between the adjacent main phase grains is enhanced after the GBD process. Meanwhile,the introduction of Al can effectively promote the infiltration of Pr into the magnet, which increases the diffusion rate of rare-earth elements within a certain range. This work provides a feasible method to enhance coercivity and reduce the use of rare-earth resources by partial replacement of rare-earth elements with non-rare-earth elements in the diffusion source.

【基金】 Project supported by the National Key Research and Development Program of China (Grant No. 2021YFB3502802);Major Science and Technology Research and Development Project of Jiangxi Province,China (Grant No. 20203ABC28W006);the Key Research and Development Program of Shandong Province,China (Grant No. 2019JZZY010321);Major Project of “Science and Technology Innovation 2025” in Ningbo City (Grant No. 2020Z046);the K. C. Wong Magna Fund in Ningbo University
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2023年01期
  • 【分类号】TM273
  • 【下载频次】3
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