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Microstructural evolution of triple junction and grain boundary phases of a Nd-Fe-B sintered magnet by post-sintering annealing

机译:烧结后Nd-Fe-B烧结磁体三重结合相和晶界相的组织演变

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摘要

The microstructural evolution of Nd-rich grain boundary phases (GBP) in connection with triple junction phases (TJP) during post-sintering annealing (PSA) was investigated. The Cu-rich TJP in the as-sintered sample was mostly a fcc-NdO phase but the GBP were a mixture of h-Nd_2O_3 and Nd phases. The fcc-NdO of the TJP in the as-sintered state gradually transformed to h-Nd2O3 during the first and the second PSA steps. However, it transformed to a C-Nd_2O_3 phase as both a massive form such as TJP and a thin GBP after the modified second PSA step. This suggests that the mechanism for the formation of metastable C-Nd_2O_3 may not be solely the interface energy. In contrast, the mixture of h-Nd_2O_3 and Nd of the GBP in the as-sintered state gradually transformed to C-Nd_2O_3 which is embedded in the amorphous matrix as the PSA goes from the first to second or modified second PSA step. The formation of the C-Nd_2O_3 GBP with an amorphous phase is the main factor for increasing the coercivity (from 21.8 to 30.4 kOe) after the second or modified second PSA step.
机译:研究了烧结后退火(PSA)过程中富Nd晶界相(GBP)与三键合相(TJP)的微观结构演变。烧结后的样品中富含铜的TJP主要是fcc-NdO相,而GBP是h-Nd_2O_3和Nd相的混合物。在第一和第二PSA步骤期间,处于烧结状态的TJP的fcc-NdO逐渐转变为h-Nd2O3。但是,在经过修改的第二个PSA步骤之后,它转变为C-Nd_2O_3相,既是块状形式的TJP,又是薄的GBP。这表明形成亚稳态C-Nd_2O_3的机制可能不仅是界面能。相反,h-Nd_2O_3和处于烧结状态的GBP的Nd的混合物逐渐转变为C-Nd_2O_3,随着PSA从第一步进入第二步或第二步经过改进,C-Nd_2O_3嵌入非晶态基质中。在第二或改进的第二PSA步骤之后,形成具有非晶相的C-Nd_2O_3 GBP是增加矫顽力(从21.8到30.4 kOe)的主要因素。

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  • 来源
    《Journal of Applied Physics》 |2011年第2期|p.07A703.1-07A703.3|共3页
  • 作者单位

    Department of Materials Science and Engineering, Korea University, Seoul 136-713, South Korea;

    Department of Materials Science and Engineering, Korea University, Seoul 136-713, South Korea;

    Korea Institute of Materials Science, Changwon 641-010, South Korea;

    Department of Hybrid Engineering, Sunmoon University, Asan 336-708, South Korea;

    Department of Hybrid Engineering, Sunmoon University, Asan 336-708, South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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