TOWARD LOW-ENERGY SPARK PLASMA SINTERING OF HOT-DEFORMED Nd-Fe-B MAGNETS

M. Korent, M. Soderznik, Urška Ročnik, S. Drev, K. Žužek Rožman, S. Šturm, S. Kobe, K. Žagar Soderžnik
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Abstract

In this work, we present a newly developed, economically efficient method for processing rare-earth Nd-Fe-B magnets based on spark plasma sintering. It makes us possible to retain the technologically essential properties of the produced magnet by consuming about 30% of the energy as compared to the conventional SPS process. A magnet with anisotropic microstructure was fabricated from MQU F commercial ribbons by low energy consumption (0.37 MJ) during the deformation process and compared to the conventionally prepared hot-deformed magnet, which consumed 3-times more energy (1.2 MJ). Both magnets were post-annealed at 650 °C for 120 min in a vacuum. After the postannealing process, the low-energy processing (LEP) hot-deformed magnet showed a coercivity of 1327 kAm-1, and remanent magnetization of 1.27 T. In comparison, the highenergy processing (HEP) hot-deformed magnet had a coercivity of 1337 kAm-1 and a remanent magnetization of 1.31 T. Complete microstructural characterization and detailed statistical analyses revealed a better texture orientation for the HEP hot-deformed magnet processed by high energy consumption, which is the main reason for the difference in remanent magnetization between the two hot-deformed magnets. The results show that, although the LEP hot-deformed magnet was processed by three times lower energy consumption than in a typical hot-deformation process, the maximum energy product is only 8 % lower than the maximum energy product of a HEP hot-deformed magnet.
热变形钕铁硼磁体低能火花等离子烧结研究
在这项工作中,我们提出了一种新开发的,经济高效的基于火花等离子烧结的稀土Nd-Fe-B磁体加工方法。与传统的SPS工艺相比,它使我们能够通过消耗约30%的能量来保留所生产磁铁的技术基本特性。利用MQU - F商用带制备了具有各向异性微结构的磁体,其变形过程能耗低(0.37 MJ),是传统热变形磁体的3倍(1.2 MJ)。两个磁体在650°C真空中退火120分钟。低能加工(LEP)热变形磁体的矫顽力为1327 kAm-1,剩余磁化强度为1.27 t,高能加工(HEP)热变形磁体的矫顽力为1337 kAm-1,剩余磁化强度为1.31 t。完整的显微组织表征和详细的统计分析表明,高能量加工的HEP热变形磁体具有更好的织构取向。这是造成两种热变形磁体剩余磁化强度差异的主要原因。结果表明,虽然LEP热变形磁体的加工能耗比典型热变形磁体低3倍,但其最大能量积仅比HEP热变形磁体的最大能量积低8%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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