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Computation of incompressible viscous flows through artificial heart devices with moving boundaries

机译:通过边界移动的人造心脏设备的不可压缩粘性流的计算

摘要

The extension of computational fluid dynamics techniques to artificial heart flow simulations is illustrated. Unsteady incompressible Navier-Stokes equations written in 3-D generalized curvilinear coordinates are solved iteratively at each physical time step until the incompressibility condition is satisfied. The solution method is based on the pseudo compressibility approach and uses an implicit upwind differencing scheme together with the Gauss-Seidel line relaxation method. The efficiency and robustness of the time accurate formulation of the algorithm are tested by computing the flow through model geometries. A channel flow with a moving indentation is computed and validated with experimental measurements and other numerical solutions. In order to handle the geometric complexity and the moving boundary problems, a zonal method and an overlapping grid embedding scheme are used, respectively. Steady state solutions for the flow through a tilting disk heart valve was compared against experimental measurements. Good agreement was obtained. The flow computation during the valve opening and closing is carried out to illustrate the moving boundary capability.
机译:说明了将计算流体动力学技术扩展到人工心流模拟的过程。在每个物理时间步长上迭代求解以3-D广义曲线坐标编写的非稳定不可压缩Navier-Stokes方程,直到满足不可压缩条件。求解方法基于伪可压缩性方法,并使用隐式迎风差分方案和高斯-赛德尔线松弛法。通过计算模型几何中的流量来测试算法的时间精确性公式的效率和鲁棒性。计算带有移动压痕的通道流量,并通过实验测量值和其他数值解决方案进行验证。为了处理几何复杂性和移动边界问题,分别使用了区域方法和重叠网格嵌入方案。将流过倾斜盘形心脏瓣膜的稳态溶液与实验测量值进行了比较。获得了良好的协议。进行了阀门打开和关闭期间的流量计算,以说明运动边界能力。

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