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A case-study in open-source CFD code verification, Part Ⅰ: Convergence rate loss diagnosis

机译:开源CFD代码验证的案例研究,第Ⅰ部分:收敛率损失诊断

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This study analyzes the influence of cell geometry on the numerical accuracy of convection-diffusion operators in OpenFOAM. The large variety of solvers and boundary conditions in this tool, as well as the precision of the finite-volume method in terms of mesh quality, call for a verification process performed in steps. The work is divided into two parts. In the first (the current manuscript), we focus on the diffusion operator, which has been found to exhibit a loss in convergence rate. Although the cell-centered finite volume approach underlying OpenFOAM should preserve a theoretical second order convergence rate, loss of convergence order is observed when non-orthogonal meshes are used at the boundaries. To investigate the origins of this problem, the method of manufactured solutions is applied to yield analytical solutions for the Poisson equation and compute the numerical error. The root cause is identified and corrections to recover second-order convergence are proposed. In part two of this investigation, we show how convergence can be improved, and present results for problems described by the Poisson and Navier-Stokes equations. (C) 2017 International Association for Mathematics and Computers in Simulation (IMACS). Published by Elsevier B.V. All rights reserved.
机译:这项研究分析了单元格几何形状对OpenFOAM中对流扩散算符数值精度的影响。该工具中的求解器和边界条件种类繁多,以及有限体积方法在网格质量方面的精度,都要求逐步执行验证过程。这项工作分为两个部分。在第一篇(当前手稿)中,我们重点介绍扩散算子,该算子发现收敛速度下降。尽管OpenFOAM所基于的以单元为中心的有限体积方法应保留理论上的二阶收敛速度,但是当在边界处使用非正交网格时,会观察到收敛阶数的损失。为了研究此问题的根源,将制造方法的方法应用于泊松方程的解析解并计算数值误差。找出根本原因,并提出纠正措施以恢复二阶收敛。在本研究的第二部分中,我们展示了如何改善收敛性,并给出了由Poisson和Navier-Stokes方程描述的问题的结果。 (C)2017年国际数学与模拟计算机协会(IMACS)。由Elsevier B.V.发布。保留所有权利。

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