Formation mechanism of layered microstructure and monotectic cell within rapidly solidified Fe62.1Sn27.9Si10 alloy

Zhi Qiang Li, Wei Li Wang, Wei Zhai, Bing Bo Wei

科研成果: 期刊稿件文章同行评审

10 引用 (Scopus)

摘要

Ternary Fe62.1Sn27.9Si10 monotectic alloy is rapidly solidified in drop tube with the freely-falling-body techniqual and with melt spinning method separately. The phase separation, the microstructure characteristics, and the heat transfer of this alloy are investigated theoretically. Under free fall condition, the core-shell structure with two layers is formed because of Marangoni migration and surface segregation, where the Sn-rich phase is always located at droplet surface and the Fe-rich phase in the center. With the decrease of droplet diameter, both cooling rate and temperature gradient increase quickly, which facilitates the rapid growth of monotectic cell. With the increase of wheel speed, the cooling rate of alloy ribbon increases from 1.1×107 to 6.5×107 K/s, the fluid flow and the phase separation are suppressed to a great extent, and the "nine layers → two layers → no layer" structural transition occurs during the rapid solidification of Fe62.1Sn27.9Si10 alloy obtained by the melt spinning method. Meanwhile, the FeSn+L2→FeSn2 peritectic transformation is also suppressed, thus resulting in different phase constitutions as compared with the case of free fall condition. The energy dispersive spectroscopy (EDS) analysis reveals that the αFe phase exhibits a conspicuous solute trapping effect during rapid solidification.

源语言英语
文章编号108101
期刊Wuli Xuebao/Acta Physica Sinica
60
10
出版状态已出版 - 10月 2011

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