Zhu M F, Lee S Y, Hong C P
Department of Materials Science and Engineering, Southeast University, Nanjing 210096, China.
Phys Rev E Stat Nonlin Soft Matter Phys. 2004 Jun;69(6 Pt 1):061610. doi: 10.1103/PhysRevE.69.061610. Epub 2004 Jun 15.
A modified cellular automaton (MCA) coupled with a momentum and species transport model has been developed in order to predict the evolution of dendritic morphology during solidification of alloys in the presence of melt convection. In the present model, the cellular automaton algorithm for dendritic growth is incorporated with the transport model, for calculating fluid flow and mass transfer by both convention and diffusion. The MCA model takes into account the effects of the constitutional undercooling and the curvature undercooling on the equilibrium interface temperature. It also considers the preferred growth orientation of crystals and solute redistribution during solidification. In the transport model, which is coupled with cellular automaton approach, the SIMPLE scheme is employed to solve the governing equations of momentum and species transfers. The present model was applied to model solutal dendritic growth of an Al-3mass%Cu alloy in a forced flow. The simulations reproduced the typical asymmetric growth features of convective dendrites with various preferred orientations. The effects of inlet flow velocity on the solute redistribution and the growth velocity of a dendritic tip were quantitatively investigated.
为了预测在熔体对流存在的情况下合金凝固过程中枝晶形态的演变,开发了一种结合动量和物种传输模型的改进型元胞自动机(MCA)。在本模型中,用于枝晶生长的元胞自动机算法与传输模型相结合,用于通过对流和扩散计算流体流动和质量传递。MCA模型考虑了成分过冷和曲率过冷对平衡界面温度的影响。它还考虑了晶体的择优生长取向和凝固过程中的溶质再分布。在与元胞自动机方法相结合的传输模型中,采用SIMPLE算法求解动量和物种传输的控制方程。本模型应用于模拟Al-3质量%Cu合金在强制流中的溶质枝晶生长。模拟结果再现了具有各种择优取向的对流枝晶典型的不对称生长特征。定量研究了入口流速对溶质再分布和枝晶尖端生长速度的影响。