首页> 外文会议>2015 IEEE Magnetics Conference >Coercivity and thermal stability enhancement for spark plasma sintered nanocrystalline Nd-Fe-B magnets with Dy2O3 and Zn additions
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Coercivity and thermal stability enhancement for spark plasma sintered nanocrystalline Nd-Fe-B magnets with Dy2O3 and Zn additions

机译:添加Dy 2 O 3 和Zn的火花等离子体烧结纳米Nd-Fe-B磁体的矫顽力和热稳定性增强

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The main problems with the sintered NdFeB magnets are their bad formability, low oxidation resistance, and poor temperature stability. Relatively large grain size, typically more than 3 mm, is also not beneficial to the high coercivity. Current efforts are directed to improve the magnetic properties and reduce the cost of NdFeB magnets by compositional modification, microstructure optimization, and new process employment. Spark plasma sintering (SPS) is one of the novel sintering techniques for preparing NdFeB magnets in a laboratory scale. Low sintering temperature and short holding time make it possible to sinter nanocrystalline NdFeB powders into fully dense bulk magnet. However, it is still not possible to completely avoid the grain coarsening, which leads to inevitable decrease of coercivity. To improve coercivity, the magnetic powders can be mixed with some metal powders such as Cu and Zn, which are beneficial for densification during SPS. Another effective way to enhance the coercivity is to add the powdered Dy compounds. In this paper, we report the effects of separated and combined DyO and Zn additions on the magnetic properties, microstructure and thermal stability of SPSed nanocrystalline NdFeB magnets.
机译:烧结钕铁硼磁体的主要问题是其可成形性差,抗氧化性差和温度稳定性差。较大的晶粒尺寸(通常大于3 mm)也不利于高矫顽力。当前的工作旨在通过成分修改,微观结构优化和新工艺的应用来改善NdFeB磁体的磁性能并降低其成本。火花等离子体烧结(SPS)是用于在实验室规模制备NdFeB磁体的新型烧结技术之一。较低的烧结温度和较短的保持时间使得可以将纳米晶NdFeB粉末烧结成完全致密的块状磁体。但是,仍然不能完全避免晶粒粗化,这必然导致矫顽力降低。为了提高矫顽力,可以将磁性粉末与某些金属粉末(例如Cu和Zn)混合,这对SPS期间的致密化是有益的。增强矫顽力的另一种有效方法是添加粉状Dy化合物。在本文中,我们报告了单独添加和组合添加的DyO和Zn对SPSed纳米晶NdFeB磁体的磁性能,微观结构和热稳定性的影响。

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