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首页> 外文期刊>Journal of magnetism and magnetic materials >Microstructure and annealing effects of NdFeB sintered magnets with Pr-Cu boundary addition
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Microstructure and annealing effects of NdFeB sintered magnets with Pr-Cu boundary addition

机译:掺Pr-Cu边界的NdFeB烧结磁体的组织和退火效果

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摘要

The annealing effects of NdFeB magnets were usually related to the eutectic liquid segregation from junction to grain boundary regions, atoms solid diffusion at grain boundary regions or structure transition of junction phases. In this work, the microstructure and annealing effects of sintered NdFeB magnets with eutectic Pr-Cu boundary additions (0, 5 and 10 wt%) have been systematically investigated. There were two kinds of boundary phases (Cu-lower phase: fcc REO_2; Cu-higher phase: h-RE_2O_3) in Pr-Cu processed magnets. Pr-Cu showed no positive influence on the coercivity of as-sintered magnets and the first-step annealing at 900 ℃ followed by quenching was also useless. The best annealing temperature (480 ℃) for Pr-Cu processed magnets was slightly higher than the lowest eutectic temperature (476 ℃). Microstructural investigations demonstrated that the 480 ℃ annealing showed no influence on the structure transition of boundary phases but changed their distribution patterns. The dominant annealing effect was the formation of strong exchange-decoupling grain boundary phases (GBPs) which were originated from the eutectic liquid segregation. The repeated heating to 900 ℃ followed by quenching/furnace cooling for optimal annealed (900 + 480 ℃) magnet demonstrated reversible eutectic liquid segregation. Annealing under the lowest eutectic temperature (460 ℃) was harmful which indicated that the atoms solid diffusion mechanism was not accessible in Pr-Cu processed magnets.
机译:NdFeB磁体的退火效果通常与共晶液体从结到晶界区域的偏析,原子在晶界区域的固体扩散或结相的结构转变有关。在这项工作中,已经系统地研究了共晶Pr-Cu边界添加量(0、5和10 wt%)的NdFeB烧结磁体的微观结构和退火效果。 Pr-Cu处理过的磁体中存在两种边界相(Cu-低相:fcc REO_2; Cu-高相:h-RE_2O_3)。 Pr-Cu对烧结磁体的矫顽力没有积极影响,在900℃进行第一步退火然后淬火也是没有用的。 Pr-Cu处理的磁体的最佳退火温度(480℃)略高于最低共晶温度(476℃)。显微组织研究表明,480℃退火对边界相的结构转变没有影响,但改变了它们的分布方式。主导的退火效应是形成强交换-解耦晶界相(GBPs),其起源于共晶液体偏析。反复加热至900℃,然后进行淬火/炉冷却以最佳退火(900 + 480℃)磁体,证明可逆的共晶液体偏析。在最低共晶温度(460℃)下进行退火是有害的,这表明在Pr-Cu处理的磁体中无法获得原子的固体扩散机制。

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