Developing the Numerical Simulation of Multicomponent Alloy Solidification

V. Ginkin, S. Ganina, A. Kartavykh
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Abstract

Multicomponent melt solidification has been studied using a non-equilibrium model, in which a Stefan problem with two boundaries is solved numerically, the boundaries being between the solid phase and the two-phase transition zone and between the two-phase transition zone and the liquid phase. A porous medium with variable porosity is used to depict the two-phase zone. By analogy with Darcy's law, consideration is given to the additional force resisting melt flow due to porosity. The experiment on Sn-20 wt. % Pb binary alloy solidification by the process of downward-directed crystallization along the gravity vector was computer simulated.  Shown in the paper are the results of a quasi two-dimensional benchmark experiment on horizontal (i.e., at the right angle to the gravity vector) directional solidification of a binary Sn-3 wt.%Pb alloy. The calculations were carried out using two crystallisation models: equilibrium and non-equilibrium crystallisation.The non-equilibrium model is shown to provide a more accurate representation of the thermal field evolution and solute distribution induced by natural convection.
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多组分合金凝固数值模拟研究进展
采用非平衡模型对多组分熔体凝固进行了研究,该模型数值求解了具有两个边界的Stefan问题,即固相与两相过渡区以及两相过渡区与液相之间的边界。采用可变孔隙度的多孔介质来描述两相区。通过与达西定律的类比,考虑了孔隙度对熔体流动的额外阻力。用计算机模拟了sn - 20wt . % Pb二元合金沿重力矢量向下结晶的凝固过程。本文给出了一种sn - 3wt .%Pb二元合金水平定向凝固准二维基准实验结果(即与重力矢量成直角方向)。计算采用了两种结晶模型:平衡结晶和非平衡结晶。非平衡模式能更准确地反映自然对流引起的热场演化和溶质分布。
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