流固耦合谱元数值方法的验证与收敛性研究

YiQin Xu, Yulia T. Peet
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引用次数: 4

摘要

提出了一种求解强耦合流固耦合问题的高阶空间谱元方法。该方法基于贴体网格上不可压缩流体方程的分区解,以及通过定点迭代方法与Aitken松弛耦合的非线性弹性固体变形方程。提出了所开发方法的综合验证策略,包括h、p和时间精化研究。首先分别证明了相应的流体和固体求解器的预期收敛阶数,然后对耦合FSI问题进行自收敛研究(自收敛是指在更高分辨率下收敛到使用相同求解器获得的参考解)。为此,提出了一种新的三维流体-结构相互作用基准来验证FSI代码,该基准由具有一个刚性壁和一个柔性壁的通道中的流体流动组成。结果表明,由于包含初始条件和边界条件的一致性问题公式,可以证明全耦合FSI问题的高阶空间收敛性。最后,将所开发的框架成功地应用于与柔顺壁相互作用的通道中湍流的直接数值模拟,其中流体-结构界面得到了完全解析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Verification and convergence study of a spectral-element numerical methodology for fluid-structure interaction

A high-order in space spectral-element methodology for the solution of a strongly coupled fluid-structure interaction (FSI) problem is developed. A methodology is based on a partitioned solution of incompressible fluid equations on body-fitted grids, and nonlinearly-elastic solid deformation equations coupled via a fixed-point iteration approach with Aitken relaxation. A comprehensive verification strategy of the developed methodology is presented, including h-, p- and temporal refinement studies. An expected order of convergence is demonstrated first separately for the corresponding fluid and solid solvers, followed by a self-convergence study on a coupled FSI problem (self-convergence refers to a convergence to a reference solution obtained with the same solver at higher resolution). To this end, a new three-dimensional fluid-structure interaction benchmark is proposed for a verification of the FSI codes, which consists of a fluid flow in a channel with one rigid and one flexible wall. It is shown that, due to a consistent problem formulation, including initial and boundary conditions, a high-order spatial convergence on a fully coupled FSI problem can be demonstrated. Finally, a developed framework is applied successfully to a Direct Numerical Simulation of a turbulent flow in a channel interacting with a compliant wall, where the fluid-structure interface is fully resolved.

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来源期刊
Journal of Computational Physics: X
Journal of Computational Physics: X Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
6.10
自引率
0.00%
发文量
7
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