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A structured adaptive mesh refinement strategy with a sharp interface direct-forcing immersed boundary method for moving boundary problems

机译:具有尖锐界面的结构化自适应网格细化策略,直接迫使浸入边界问题的浸没边界法

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We develop a versatile and accurate structured adaptive mesh refinement (S-AMR) strategy with a moving least square sharp-direct forcing immersed boundary method (IBM) for incompressible fluid-structure interaction (FSI) simulations. The computational grid consists of several nested blocks in different refinement levels. While blocks with the coarsest grid cover the entire computational domain, the computational domain is locally refined at the location of solid boundary (moving or fixed) by bisecting selected blocks in every coordinate direction. The grid topology and data structure is managed by an extended version of Afivo toolkit (Teunissen and Ebert, 2018), where a novel technique is introduced for conservative data transfer between the coarser and the finer blocks, particularly in velocity transformation for which the mass conservation plays a crucial role. In the present study, the continuity and Navier-Stokes equations for incompressible flows are spatially discretized with a second order central finite difference method using a collocated arrangement and are time-integrated using a semi-implicit second order fractional step method, although the proposed S-AMR strategy can be used with different discretization schemes. An IBM using a moving least square approach is utilized to impose boundary conditions. To handle FSI problems, all the governing equations for the dynamics of fluid and structure are simultaneously advanced in time by a predictor-corrector strategy. Several test cases of increasing complexity are solved in order to demonstrate the robustness and accuracy of the proposed method as well as its capability in simulation-driven mesh adaptivity.
机译:我们开发了一种多功能和准确的结构化的自适应网格细化(S-AMR)策略,具有移动最小二乘尖锐直接强制浸入边界法(IBM),用于不可压缩的流体 - 结构相互作用(FSI)模拟。计算网格由几个不同的细化级别的嵌套块组成。虽然具有粗糙网格的块覆盖整个计算域,但是通过在每个坐标方向上分别分别分别对所选择的块进行分化,计算域在实心边界(移动或固定)的位置。网格拓扑和数据结构由AFIVO Toolkit(Teunissen和Ebert,2018)的扩展版本管理,其中引入了较粗糙块之间的保守数据传输的新技术,特别是在大规模保护的速度变换中起着至关重要的作用。在本研究中,使用并置布置的二阶中央有限差分方法在空间上离散地分散化,并且使用半隐式二阶分数步骤方法进行空间上离散化,尽管所提出的s -Amr策略可以与不同的离散化方案一起使用。使用移动最小二乘方法的IBM用于施加边界条件。为了处理FSI问题,通过预测校正器策略同时及时提前流体和结构动态的所有管理方程。解决了越来越复杂性的几种测试用例,以展示所提出的方法的稳健性和准确性以及其在仿真驱动的网格适应性中的能力。

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