Bulletin of Materials Science | |
Enhanced magnetic performance of bulk nanocrystalline MnAlâC prepared by high pressure compaction of gas atomized powders | |
J PARK^11  H D QIAN^12  P Z SI^1,23  | |
[1] College of Materials Science and Engineering, China Jiliang University, Hangzhou 310018, People’s Republic of China^2;Engineering Ceramics Research Group, Korea Institute of Materials Science, Changwon 51508, Republic of Korea^3;Powder and Ceramic Division, Korea Institute of Materials Science, Changwon 51508, Republic of Korea^1 | |
关键词: Gas atomization; high pressure synthesis; MnAl; nanocrystalline; magnetic properties.; | |
DOI : | |
学科分类:材料工程 | |
来源: Indian Academy of Sciences | |
【 摘 要 】
High density MnAlâC magnets with enhanced coercivity and remanent magnetization were prepared by high pressure compaction of the $\tau$-phase obtained by annealing the as-prepared gas-atomized powders, which are spherical in shape with size in the range of 1â7 $\mu$m. The as-prepared gas-atomized powders were composed of $\epsilon$- as the major phase and $\gamma_2$- as the minor phase. The massive phase transformation of $\epsilon \to \tau$ in the gas-atomized powders occurs at 720 K and accomplishes at 806 K, both of which are lower than those of the water-quenched $\epsilon$-MnAlâC alloys with the same composition. An optimized temperature of 760 K, at which the decomposition of metastable $\tau$-phase was minimized, was selected to prepare the ferromagnetic $\tau$- from the $\epsilon$-phase. The spherical $\tau$-phase powders were pressed at room temperatureinto two dimensional plates that stack along the direction of compaction, forming high density (98.6%) bulk magnets that exhibit larger coercivity and higher remanentmagnetization than that of the Ï-phase powders. The grain size of the compacted samples was observed to be in the range of 10â100 nm. The coercivity (0.34 T) of the dense samples is twice as large as that of the $\epsilon$-phase powders, owing to the refined grain size and enlarged dislocation density resulting from high-pressure compaction.
【 授权许可】
CC BY
【 预 览 】
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