脉动流
机械
流固耦合
湍流
流量(数学)
粒子图像测速
主动脉瓣
物理
心脏瓣膜
计算流体力学
大涡模拟
模拟
材料科学
有限元法
工程类
结构工程
心脏病学
医学
作者
Julien Sigüenza,Desirée Pott,Simon Mendez,Simon J. Sonntag,Tim Kaufmann,Ulrich Steinseifer,Franck Nicoud
摘要
Abstract The complex fluid‐structure interaction problem associated with the flow of blood through a heart valve with flexible leaflets is investigated both experimentally and numerically. In the experimental test rig, a pulse duplicator generates a pulsatile flow through a biomimetic rigid aortic root where a model of aortic valve with polymer flexible leaflets is implanted. High‐speed recordings of the leaflets motion and particle image velocimetry measurements were performed together to investigate the valve kinematics and the dynamics of the flow. Large eddy simulations of the same configuration, based on a variant of the immersed boundary method, are also presented. A massively parallel unstructured finite‐volume flow solver is coupled with a finite‐element solid mechanics solver to predict the fluid‐structure interaction between the unsteady flow and the valve. Detailed analysis of the dynamics of opening and closure of the valve are conducted, showing a good quantitative agreement between the experiment and the simulation regarding the global behavior, in spite of some differences regarding the individual dynamics of the valve leaflets. A multicycle analysis (over more than 20 cycles) enables to characterize the generation of turbulence downstream of the valve, showing similar flow features between the experiment and the simulation. The flow transitions to turbulence after peak systole, when the flow starts to decelerate. Fluctuations are observed in the wake of the valve, with maximum amplitude observed at the commissure side of the aorta. Overall, a very promising experiment‐vs‐simulation comparison is shown, demonstrating the potential of the numerical method.
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