Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7991360 | Journal of Alloys and Compounds | 2018 | 32 Pages |
Abstract
In this work, the effect of carbon addition on the L10 Ï-phase stability in (Mn0.54Al0.46)100-xCx (xâ¯=â¯0-5) magnetic alloys are investigated. By microstructural analysis, single-phase and dual-phase microstructure are confirmed in 0â¯â¤â¯xâ¯â¤â¯3 and xâ¯>â¯3 alloys, respectively. The solubility limit of carbon atoms in Ï-phase of about 3â¯at.% is also determined by the characterization of the intrinsic magnetic properties and the crystal structure. The solid solution of carbon can significantly stabilize the thermodynamically metastable Ï-phase, reflecting by the reversible Ïâε transformation path, and suppressing of the Ï-phase decomposition effectively at high temperatures. The stabilized Ï-phase by carbon doping exhibits higher magnetization in the as-milling state, with the highest magnetization for xâ¯=â¯3. After annealing at high temperature, the carbon-doped Ï-phase is also more stable, resulting in the obvious improvement in magnetization. The magnetization of 86.7 emu/g under 30â¯kOe and the coercivity of 3.26â¯kOe are approached in the as-annealed xâ¯=â¯3 powders. These results clarify the effect of doping carbon on Ï-phase stability in MnAl alloys and highlight the guidance and routine for high performance MnAl permanent magnets.
Related Topics
Physical Sciences and Engineering
Materials Science
Metals and Alloys
Authors
Shuang Zhao, Yuye Wu, Chi Zhang, Jingmin Wang, Zhongheng Fu, Ruifeng Zhang, Chengbao Jiang,