不可压缩流和具有尖锐特征几何的浸入界面法

IF 3.8 2区 物理与天体物理 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Michael J. Facci , Ebrahim M. Kolahdouz , Boyce E. Griffith
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引用次数: 0

摘要

用于流体流动和流体-结构相互作用模型的浸入界面法(IIM)施加了跳跃条件,以捕获由沿浸入边界集中的力产生的应力不连续。大多数先前使用IIM进行流体动力学应用的工作都集中在光滑界面上,但是具有棱角和边缘等尖锐特征的边界可以出现在实际分析中,特别是在工程结构上。本研究建立在我们的工作基础上,将界面几何形状的有限元型表示与IIM相结合。这种方法的最初实现使用连续伽辽金(CG)有限元离散边界,但正如我们在这里所示,这些方法在尖锐的几何特征附近产生很大的误差。为了克服这一困难,本研究引入了一种使用不连续伽辽金(DG)表示跳跃条件的IIM方法。数值示例探讨了不同界面表示对平滑边界和尖锐边界精度的影响,特别是与固定界面配置相互作用的流动。我们证明,使用DG方法可以提供与平滑情况下CG方法相当的精度。此外,我们确定了与几何形状的清晰度直接相关的CG表示的时间步长限制。相反,DG表示施加的时间步长限制被证明对尖锐特征的存在几乎不敏感。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An immersed interface method for incompressible flows and geometries with sharp features
The immersed interface method (IIM) for models of fluid flow and fluid-structure interaction imposes jump conditions that capture stress discontinuities generated by forces that are concentrated along immersed boundaries. Most prior work using the IIM for fluid dynamics applications has focused on smooth interfaces, but boundaries with sharp features such as corners and edges can appear in practical analyses, particularly on engineered structures. The present study builds on our work to integrate finite element-type representations of interface geometries with the IIM. Initial realizations of this approach used a continuous Galerkin (CG) finite element discretization for the boundary, but as we show herein, these approaches generate large errors near sharp geometrical features. To overcome this difficulty, this study introduces an IIM approach using a discontinuous Galerkin (DG) representation of the jump conditions. Numerical examples explore the impacts of different interface representations on accuracy for both smooth and sharp boundaries, particularly flows interacting with fixed interface configurations. We demonstrate that using a DG approach provides accuracy that is comparable to the CG method for smooth cases. Further, we identify a time step size restriction for the CG representation that is directly related to the sharpness of the geometry. In contrast, time step size restrictions imposed by DG representations are demonstrated to be nearly insensitive to the presence of sharp features.
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来源期刊
Journal of Computational Physics
Journal of Computational Physics 物理-计算机:跨学科应用
CiteScore
7.60
自引率
14.60%
发文量
763
审稿时长
5.8 months
期刊介绍: Journal of Computational Physics thoroughly treats the computational aspects of physical problems, presenting techniques for the numerical solution of mathematical equations arising in all areas of physics. The journal seeks to emphasize methods that cross disciplinary boundaries. The Journal of Computational Physics also publishes short notes of 4 pages or less (including figures, tables, and references but excluding title pages). Letters to the Editor commenting on articles already published in this Journal will also be considered. Neither notes nor letters should have an abstract.
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