机械
流量(数学)
扩散
二进制数
缩放比例
接口(物质)
强迫对流
热力学
边界(拓扑)
极限(数学)
相(物质)
两相流
材料科学
统计物理学
物理
对流
数学
数学分析
表面张力
几何学
毛细管数
算术
量子力学
作者
C.W. Lan,Chih‐Jen Shih
标识
DOI:10.1103/physreve.69.031601
摘要
Efficient quantitative phase field simulation using an adaptive finite volume method with an antisolutal trapping scheme is presented for a binary dendritic growth in a forced flow. For the case of no convection, the calculated results with different interface thickness are examined. It is found that with a proper antisolutal trapping flux, a thick interface, but smaller than the diffusion boundary layer, could be used and the solution could approach to the sharp-interface Gibbs-Thompson equation limit in almost all aspects quantitatively. Based on the concentration driving force obtained from the sharp-interface limit of the Wheeler-Boettinger-McFadden (WBM) model, the calculated results are in good agreement with the classic Oseen-Ivantsov solution for the concentration-driven growth in a forced flow. And the selection scaling factor also increases with the external flow as the theoretical prediction.
科研通智能强力驱动
Strongly Powered by AbleSci AI