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GPU-accelerated 3D phase-field simulations of dendrite competitive growth during directional solidification of binary alloy

机译:在二元合金方向凝固期间,GPU加速3D相场模拟枝晶竞争生长

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Phase-field method has emerged as the most powerful numerical scheme to simulate dendrite growth. However, most phase-field simulations of dendrite growth performed so far are limited to two-dimension or single dendrite in three-dimension because of the large computational cost involved. To express actual solidification microstructures, multiple dendrites with different preferred growth directions should be computed at the same time. In this study, in order to enable large-scale phase-field dendrite growth simulations, we developed a phase-field code using multiple graphics processing units in which a quantitative phase-field method for binary alloy solidification and moving frame algorithm for directional solidification were employed. First, we performed strong and weak scaling tests for the developed parallel code. Then, dendrite competitive growth simulations in three-dimensional binary alloy bicrystal were performed and the dendrite interactions in three-dimensional space were investigated.
机译:相域法已成为模拟树突生长的最强大的数值方案。然而,由于涉及的计算成本大,所以到目前为止所执行的枝晶生长的大多数阶段模拟在三维中的三维或单一枝晶。为了表达实际的凝固微观结构,应同时计算具有不同优选的生长方向的多个树枝状。在这项研究中,为了实现大规模的相位枝晶生长模拟,我们使用多个图形处理单元开发了一个相场代码,其中用于向方向凝固的二元合金凝固和移动帧算法的定量相位现场方法雇用。首先,我们对开发的并行代码进行了强大而弱的缩放测试。然后,进行三维二元合金双晶二晶体中的树突竞争生长模拟,研究了三维空间中的枝晶相互作用。

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