Kamensky David, Hsu Ming-Chen, Yu Yue, Evans John A, Sacks Michael S, Hughes Thomas J R
Center for Cardiovascular Simulation, Institute for Computational Engineering and Sciences, The University of Texas at Austin, 201 East 24th St, Stop C0200, Austin, TX 78712, USA.
Department of Mechanical Engineering, Iowa State University, 2025 Black Engineering, Ames, IA 50011, USA.
Comput Methods Appl Mech Eng. 2017 Feb 1;314:408-472. doi: 10.1016/j.cma.2016.07.028. Epub 2016 Aug 4.
This paper uses a divergence-conforming B-spline fluid discretization to address the long-standing issue of poor mass conservation in immersed methods for computational fluid-structure interaction (FSI) that represent the influence of the structure as a forcing term in the fluid subproblem. We focus, in particular, on the immersogeometric method developed in our earlier work, analyze its convergence for linear model problems, then apply it to FSI analysis of heart valves, using divergence-conforming B-splines to discretize the fluid subproblem. Poor mass conservation can manifest as effective leakage of fluid through thin solid barriers. This leakage disrupts the qualitative behavior of FSI systems such as heart valves, which exist specifically to block flow. Divergence-conforming discretizations can enforce mass conservation exactly, avoiding this problem. To demonstrate the practical utility of immersogeometric FSI analysis with divergence-conforming B-splines, we use the methods described in this paper to construct and evaluate a computational model of an experiment that pumps water through an artificial valve.
本文采用一种散度一致的B样条流体离散化方法,以解决计算流体-结构相互作用(FSI)浸入式方法中长期存在的质量守恒性差的问题,该方法将结构的影响表示为流体子问题中的一个强迫项。我们特别关注在我们早期工作中开发的浸入几何方法,分析其对线性模型问题的收敛性,然后将其应用于心脏瓣膜的FSI分析,使用散度一致的B样条离散化流体子问题。质量守恒性差可能表现为流体通过薄固体屏障的有效泄漏。这种泄漏会扰乱FSI系统(如心脏瓣膜)的定性行为,心脏瓣膜的存在正是为了阻止流动。散度一致的离散化可以精确地强制实现质量守恒,避免这个问题。为了证明使用散度一致的B样条进行浸入几何FSI分析的实际效用,我们使用本文中描述的方法构建并评估一个通过人工瓣膜泵送水的实验的计算模型。