个人信息Personal Information
教授
博士生导师
硕士生导师
性别:男
毕业院校:北京航空学院
学位:硕士
所在单位:能源与动力学院
电子邮箱:xmz@dlut.edu.cn
Numerical study of macroscopical drainage process in fabricating foamed aluminum using microscopical method
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论文类型:期刊论文
发表时间:2009-12-01
发表刊物:APPLIED MATHEMATICS AND MECHANICS-ENGLISH EDITION
收录刊物:SCIE、EI、Scopus
卷号:30
期号:12
页面范围:1547-1558
ISSN号:0253-4827
关键字:foamed aluminum; drainage; Plateau border; liquid holdup; pentagonal dodecahedron
摘要:The velocity field in a single Plateau border (PB) of the aluminum foam in the drainage process is studied using a mathematical model for the flow inside a microchannel. We show that the liquid/gas interface mobility characterized by the Newtonian surface viscosity has a substantial effect on the velocity inside the single PB. With the same liquid/gas interfacial mobility and the same radius of the curvature, the maximum velocity inside an exterior PB is about 6 similar to 8 times as large as that inside an interior PB. We also find a critical value of the interfacial mobility in the interior PB. For the values greater and less than this critical value, the effects of the film thickness on the velocity in the PB show opposite tendencies. Based on the multiscale methodology, with the coupling between the microscale and the macroscale and the results obtained from the microscopical model, a simplified macroscopical drainage model is presented for the aluminum foams. The comparisons among the computational results obtained from the present model, the experimental data quoted in the literature, and the results of the classical drainage equation show a reasonable agreement. The computational results reveal that the liquid holdup of the foams is strongly dependent on the value of the mobility and the bubble radius.