Microstructural evolution mechanism of rapidly solidified ternary Fe62.5Cu27.5Sn10 alloy

Zhen Chao Xia, Wei Li Wang, Wei Zhai, Zhi Qiang Li, Bing Bo Wei

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

Liquid ternary Fe62.5Cu27.5Sn10 alloy was rapidly solidified under free fall condition. The results show that the liquid phase separation leads to the formation of two- or three-layer core-shell structures and uniformly dispersed structures. These two types of microstructures are both composed of α-Fe and Cu3Sn phases. According to the movement characteristics of L2(Cu-rich) liquid phase, the thermal and solutal Marangoni migrations are the dynamic mechanisms responsible for the development of core-shell structure. The finally solidified microstructure of ternary Fe62.5Cu27.5Sn10 alloy depends on the combined effects of cooling rate, undercooling and Marangoni migration. If the droplet diameter is sufficiently small so that its high cooling rate suppresses the liquid phase separation, the solidification microstructure evolves into the equiaxed dendrite morphology. The dendritic microstructure is composed of α-Fe solid solution and Cu2FeSn intermetallic compound. EDS analysis reveals that α-Fe phase exhibits a remarkable solute trapping effect during containerless rapid solidification.

Original languageEnglish
Pages (from-to)711-719
Number of pages9
JournalZhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals
Volume23
Issue number3
StatePublished - Mar 2013

Keywords

  • Fe-Cu-Sn alloy
  • Marangoni migration
  • Phase separation
  • Rapid solidification

Fingerprint

Dive into the research topics of 'Microstructural evolution mechanism of rapidly solidified ternary Fe62.5Cu27.5Sn10 alloy'. Together they form a unique fingerprint.

Cite this