Kamensky David, Xu Fei, Lee Chung-Hao, Yan Jinhui, Bazilevs Yuri, Hsu Ming-Chen
Department of Structural Engineering, University of California, San Diego, La Jolla, CA 92093, USA.
Department of Mechanical Engineering, Iowa State University, Ames, IA 50011, USA.
Comput Methods Appl Mech Eng. 2018 Mar 1;330:522-546. doi: 10.1016/j.cma.2017.11.007. Epub 2017 Nov 16.
This work formulates frictionless contact between solid bodies in terms of a repulsive potential energy term and illustrates how numerical integration of the resulting forces is computationally similar to the "pinball algorithm" proposed and studied by Belytschko and collaborators in the 1990s. We thereby arrive at a numerical approach that has both the theoretical advantages of a potential-based formulation and the algorithmic simplicity, computational efficiency, and geometrical versatility of pinball contact. The singular nature of the contact potential requires a specialized nonlinear solver and an adaptive time stepping scheme to ensure reliable convergence of implicit dynamic calculations. We illustrate the effectiveness of this numerical method by simulating several benchmark problems and the structural mechanics of the right atrioventricular (tricuspid) heart valve. Atrioventricular valve closure involves contact between every combination of shell surfaces, edges of shells, and cables, but our formulation handles all contact scenarios in a unified manner. We take advantage of this versatility to demonstrate the effects of chordal rupture on tricuspid valve coaptation behavior.
这项工作通过一个排斥势能项来阐述固体之间的无摩擦接触,并说明了由此产生的力的数值积分在计算上如何类似于20世纪90年代Belytschko及其合作者提出并研究的“弹球算法”。由此,我们得出了一种数值方法,它既具有基于势能公式的理论优势,又具有弹球接触的算法简单性、计算效率和几何通用性。接触势的奇异性质需要一个专门的非线性求解器和一个自适应时间步长方案,以确保隐式动态计算的可靠收敛。我们通过模拟几个基准问题和右房室(三尖瓣)心脏瓣膜的结构力学来说明这种数值方法的有效性。房室瓣关闭涉及壳表面、壳边缘和索的每一种组合之间的接触,但我们的公式以统一的方式处理所有接触情况。我们利用这种通用性来证明腱索断裂对三尖瓣贴合行为的影响。