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Numerical studies on columnar-to-equiaxed transition in directional solidification of binary alloys

机译:二元合金定向凝固中柱状至等温转变的数值研究

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A numerical study on columnar-to-equiaxed transition (CET) during directional solidification of binary alloys is presented using a macroscopic solidification model. The position of CET is predicted numerically using a critical cooling rate criterion reported in literature. The macroscopic solidification model takes into account movement of solid phase due to buoyancy, and drag effect on the moving solid phase because of fluid motion. The model is applied to simulate the solidification process for binary alloys (Sn–Pb) and to estimate solidification parameters such as position of the liquidus, velocity of the liquidus isotherm, temperature gradient ahead of the liquidus, and cooling rate at the liquidus. Solidification phenomena under two cooling configurations are studied: one without melt convection and the other involving thermosolutal convection. The numerically predicted positions of CET compare well with those of experiments reported in literature. Melt convection results in higher cooling rate, higher liquidus isotherm velocities, and stimulation of occurrence of CET in comparison to the nonconvecting case. The movement of solid phase aids further the process of CET. With a fixed solid phase, the occurrence of CET based on the same critical cooling rate is delayed and it occurs at a greater distance from the chill.
机译:利用宏观凝固模型,对二元合金定向凝固过程中柱状至等温转变(CET)进行了数值研究。使用文献中报道的临界冷却速率标准,可以对CET的位置进行数值预测。宏观凝固模型考虑了由于浮力引起的固相运动,以及由于流体运动而对移动的固相的阻力效应。该模型用于模拟二元合金(Sn–Pb)的凝固过程,并估计凝固参数,例如液相线的位置,液相线的等温线速度,液相线之前的温度梯度以及液相线的冷却速率。研究了两种冷却方式下的凝固现象:一种没有熔体对流,另一种涉及热熔对流。 CET的数值预测位置与文献报道的实验相比具有很好的对比性。与不对流的情况相比,熔体对流导致较高的冷却速度,较高的液相线等温线速度,并促进了CET的发生。固相的移动进一步促进了CET的过程。在固相固定的情况下,基于相同的临界冷却速率的CET的出现会延迟,并且距冷却点的距离更大。

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