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An implicit parallel multigrid computing scheme to solve coupled thermal-solute phase-field equations for dendrite evolution

机译:隐式并行多网格计算方案,用于求解枝晶演化的耦合热-溶质相场方程

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摘要

An implicit, second-order space and time discretization scheme together with a parallel multigrid method involving a strip grid domain partitioning has been developed to solve fully coupled, nonlinear phase field equations involving solute and heat transport for multiple solidifying dendrites. The computational algorithm has been shown to be stable and monotonously convergent, and allowed time marching steps that were 3-4 orders of magnitude larger than those employed in similar explicit approaches, resulting in an increase of 3-4 orders of magnitude in computing efficiency. Full solute and thermal coupling was achieved for metallic alloys with a realistic, high Lewis number of >10 ~4. The parallel multigrid computing scheme is shown to provide a scalable methodology that allowed the efficient use of distributed supercomputing resource to simulate the evolution of tens of complex shaped 2D dendrites in a computational domain containing tens or even hundreds of millions of grid points. The simulations have provided insight into the dynamic interplay of many growing dendrites in a more realistic fully coupled thermal-solute condition, capturing for the first time fine scale features such as dendrite splitting.
机译:已经开发出一种隐式的二阶时空离散方案以及涉及带状网格域划分的并行多网格方法,以求解涉及固溶和热传递的多个凝固枝晶的完全耦合的非线性相场方程。计算算法已经证明是稳定且单调收敛的,并且其时间步长比类似的显式方法所采用的步长大3-4个数量级,从而使计算效率提高了3-4个数量级。对于具有> 10〜4的现实高路易斯数的金属合金,实现了完全的溶质和热耦合。所示的并行多网格计算方案提供了一种可扩展的方法,该方法允许有效利用分布式超级计算资源来模拟包含数千万甚至数亿个网格点的计算域中数十个复杂形状的2D树突的演化。这些模拟提供了在更现实的完全耦合的热溶质条件下许多生长的树枝状晶体之间动态相互作用的见解,首次捕获了诸如树枝状裂变的精细尺度特征。

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