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A parallel high-order compact scheme for the pure streamfunction formulation of the 3D unsteady incompressible Navier-Stokes equation

机译:一种平行的高阶紧凑型方案,用于3D不稳定不可达到的Navier-Stokes方程的纯粹流式排放制定

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The high-order compact scheme for the pure streamfunction formulation of the Navier-Stokes equation (Yu and Tian, 2019) is extended to unsteady problems. The unsteady term is discretized by the Crank-Nicolson scheme. A new boundary scheme is also established for symmetrical boundaries to reduce the computational cost of symmetrical flow problems. The parallelization of the present scheme is realized through a boundary approximation approach which maintains the accuracy of calculations for the first- and second-order derivatives on the interior boundaries. The multigrid method for solving the governing equations is parallelized as well. These means are essential to feasible large-scale simulations. Test on a problem with an analytical solution proves that the proposed algorithm is fourth-order accurate in space and second-order in time. Several numerical experiments on lid-driven cavity problems with various configurations and Reynolds numbers up to 3200 are carried out. Results show that the present scheme is efficient and robust enough to resolve fine flow structures and temporal characteristics with moderate grid sizes and time steps. (C) 2020 Elsevier B.V. All rights reserved.
机译:Navier-Stokes方程(YU和Tian,2019)的纯粹流式配方的高阶紧凑方案延伸到不稳定的问题。不稳定的术语由曲柄尼科尔森方案离散化。还建立了一种新的边界方案,用于对称边界,以降低对称流量问题的计算成本。通过边界近似方法实现本方案的并行化,该边界近似方法能够保持第一和二阶导数对内部边界的计算的准确性。用于求解控制方程的多重资料并行化。这些方法对于可行的大规模模拟至关重要。对分析解决方案的问题的测试证明,所提出的算法是空间和二阶准确的第四顺序。进行几个关于盖子驱动的腔问题的数值实验,具有多达3200的各种配置和雷诺数的腔腔问题。结果表明,目前方案足以使具有中等电网尺寸和时间步长的微量流动结构和时间特征来解决。 (c)2020 Elsevier B.v.保留所有权利。

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