李廷举

个人信息Personal Information

教授

博士生导师

硕士生导师

任职 : 辽宁省高校重点实验室主任

性别:男

毕业院校:日本国名古屋大学

学位:博士

所在单位:材料科学与工程学院

学科:材料加工工程

联系方式:0411-84708940

电子邮箱:tjuli@dlut.edu.cn

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A surface energy driven dissolution model for immiscible Cu-Fe alloy

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论文类型:期刊论文

发表时间:2018-07-01

发表刊物:JOURNAL OF MOLECULAR LIQUIDS

收录刊物:SCIE、EI

卷号:261

页面范围:232-238

ISSN号:0167-7322

关键字:Metastable immiscible alloys; Cu-Fe; Surface energy; Thermodynamic model

摘要:Cu-Fe alloy processed by conventional preparation methods has serious large-scale composition segregation or spatial separation of individual Cu and Fe phases prior to solidification. For immiscible Cu-Fe alloy, a homogeneous melt is the prerequisite to obtain the subsequent uniform solidification microstructure. In this paper, the uniform metastable immiscible Cu100-xFex alloys (x = 10, 20, 30, 40 wt%) were prepared by arc-melting. The results indicated that with increasing melting times, the initial aggregated Fe-rich melt gradually dissolves into the bulk copper matrix and a homogeneous melt is obtained. Herein a thermodynamic model was constructed to discuss the surface energy driven melting process and the formation of uniform Cu-Fe alloy. During melting process, if the radius of detached liquid Fe-rich droplet is less than the calculated critical radius, the surface energy is high enough to compensate for the partial molar excess Gibbs energy of iron, thereby leading to the spontaneously dissolution of detached liquid Fe-rich droplet into the bulk liquid. As a result, the aggregated Fe-rich melt dissolves step by step eventually forming a homogeneous melt. After subsequent solidification, the immiscible Cu-Fe alloy exhibits homogeneous microstructure. The rapid melt quenching experiments are further performed to validate the proposal model. The results provide strong evidence and support for the surface energy driven dissolution model. The findings give us a basic understanding for the evolution of melting process in other immiscible alloys. (C) 2018 Elsevier B.V. All rights reserved.