材料科学
钕磁铁
放电等离子烧结
烧结
微观结构
矫顽力
纳米晶材料
粒度
磁铁
剩磁
冶金
晶粒生长
变形(气象学)
复合材料
磁畴
晶界
粉末冶金
晶界扩散系数
铁磁性
单一领域
磁各向异性
作者
Ziyi Wu,Dong Zhao,Baozhi Cui,Jie Lian
标识
DOI:10.1016/j.jallcom.2025.183663
摘要
Anisotropic fine-grained Dy-free NdFeB high-performance magnets were produced using a novel cold sintering approach by pressure-assisted spark plasma sintering (SPS). The NdFeB nanocrystalline ribbon powders were subjected to cold sintering below 450 °C using pressure-assisted SPS, followed by hot deformation at 710 °C and 810 °C via SPS. Results indicate that cold sintering below 450 °C effectively restricts grain growth in the NdFeB magnets, yielding sub-100 nm scale grains across both fine-grained regions and most coarse-grained regions. The refined grain structure achieved through cold sintering allows for a lower hot deformation temperature as compared with the magnet by conventional sintering, as finer grains allow easier deformation and grain sliding/rotation. This process produces a highly fine-grained and anisotropic microstructure to achieve high magnetic performance (i.e., high intrinsic coercivity, remanence, and maximum energy product) in the magnets. The cold sintering (at 350 °C) and lower hot deformation temperatures required (e.g., 710 °C) help control grain coarsening and limit grain size that is commensurate with the size of a single magnetic domain of the Nd 2 Fe 14 B magnetic matrix phase, resulting in high intrinsic coercivity (H ci =11.4 kOe). Furthermore, the reduced hot deformation temperature mitigates the formation of coarse grain bands, leading to improved magnetic properties, specifically an increased remanence (B r = 14.3 kGs) and a high maximum energy product ((BH) max = 48 MGOe). Cold sintered hot deformed NdFeB magnet also shows good thermal stability with reversible temperature coefficient α(B r )= -0.097 %/K and α(H ci )= -0.616 %/K at elevated temperatures up to 400 K. • Cold sintering and hot deformation were adopted to fabricate Dy-free NdFeB magnets. • Lower processing temperatures suppress coarse grain formation and reduce grain size, which account for enhanced coercivity. • The (BH) max of 48 MGOe is the highest value reported for hot-deformed NdFeB magnets using MQU-F powders as feedstock.
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