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高通量方法制备混合稀土铁钴硼永磁合金。

Development of Mischmetal-Fe-Co-B Permanent Magnet Alloys via High-Throughput Methods.

机构信息

The Critical Materials Institute, Ames Laboratory (U.S. Department of Energy), Ames, Iowa 50011, United States.

Division of Materials Science and Engineering, Ames Laboratory (U.S. Department of Energy), Ames, Iowa 50011, United States.

出版信息

ACS Comb Sci. 2020 May 11;22(5):248-254. doi: 10.1021/acscombsci.9b00190. Epub 2020 Apr 6.

Abstract

Additive manufacturing synthesis using laser engineered net shaping (LENS) is utilized to rapidly print libraries of mischmetal (MM = La, Ce, Nd, and Pr) containing RTMB alloys (R = MM + separated Nd and TM = Fe and Co) enabling robust evaluation of physical properties over a wide composition range. High-throughput characterization of the magnetic and thermal properties are used to identify compositions for potential high-temperature, high-performance permanent magnets with reduced critical rare-earth elements. Improved Curie temperature ( ∼ 450 °C) is obtained with substitution of Fe by Co in pseudoternary RTMB alloys. Furthermore, a 4-fold decrease in the Nd content can be achieved through substitution with less critical Ce- and La-rich MM, while retaining high . Guided by the properties of the LENS printed samples, selected compositions with and without TiC additions are synthesized via melt-spinning techniques to produce nanostructured ribbons. The maximum room temperature coercivity () and energy product ((BH)) without TiC are found to be 5.8 kOe, 8.5 MGOe, respectively, while TiC additions as a grain refiner gave H and (BH) of 4.9 kOe, 9.8 MGOe, respectively. Structural characterization of the melt-spun ribbons shows homogeneous grain refinement with TiC additions, which leads to an increase in the energy product.

摘要

采用激光工程净成形(LENS)的增材制造合成技术,快速打印混合稀土(MM = La、Ce、Nd 和 Pr)的 RTMB 合金库(R = MM + 分离 Nd 和 TM = Fe 和 Co),从而能够在广泛的成分范围内对物理性能进行稳健评估。通过对磁性能和热性能进行高通量表征,确定具有潜在高温、高性能、低关键稀土元素的永磁体的成分。在伪四元 RTMB 合金中用 Co 替代 Fe 可以提高居里温度(约 450°C)。此外,通过用较少关键的富 Ce 和 La 的 MM 替代 Nd,可以将 Nd 的含量降低 4 倍,同时保持高磁各向异性。通过 LENS 打印样品的性能指导,选择有和没有 TiC 添加的成分通过熔体纺丝技术合成纳米结构的带材。发现没有 TiC 的最大室温矫顽力()和最大磁能积((BH))分别为 5.8 kOe 和 8.5 MGOe,而作为晶粒细化剂的 TiC 添加则使 H 和(BH)分别为 4.9 kOe 和 9.8 MGOe。熔体纺丝带材的结构表征显示,添加 TiC 可均匀细化晶粒,从而提高能量积。

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