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舒张期充盈时非对称二尖瓣动力学的流体结构相互作用模拟

FSI simulation of asymmetric mitral valve dynamics during diastolic filling.

作者信息

Dahl S K, Vierendeels J, Degroote J, Annerel S, Hellevik L R, Skallerud B

机构信息

Division of Biomechanics, Department of Structural Engineering, The Norwegian University of Science and Technology, Trondheim, Norway.

出版信息

Comput Methods Biomech Biomed Engin. 2012;15(2):121-30. doi: 10.1080/10255842.2010.517200. Epub 2011 Jun 24.

Abstract

In this article, we present a fluid-structure interaction algorithm accounting for the mutual interaction between two rigid bodies. The algorithm was used to perform a numerical simulation of mitral valve (MV) dynamics during diastolic filling. In numerical simulations of intraventricular flow and MV motion, the asymmetry of the leaflets is often neglected. In this study the MV was rendered as two rigid, asymmetric leaflets. The 2D simulations incorporated the dynamic interaction of blood flow and leaflet motion and an imposed subject-specific, transient left ventricular wall movement obtained from ultrasound recordings. By including the full Jacobian matrix in the algorithm, the speed of the simulation was enhanced by more than 20% compared to using a diagonal Jacobian matrix. Furthermore, our results indicate that important features of the flow field may not be predicted by the use of symmetric leaflets or in the absence of an adequate model for the left atrium.

摘要

在本文中,我们提出了一种考虑两个刚体之间相互作用的流固耦合算法。该算法用于对二尖瓣(MV)舒张期充盈过程中的动力学进行数值模拟。在心室内部血流和MV运动的数值模拟中,小叶的不对称性常常被忽略。在本研究中,MV被呈现为两个刚性、不对称的小叶。二维模拟纳入了血流与小叶运动的动态相互作用以及从超声记录中获取的特定个体的、瞬态的左心室壁运动。通过在算法中包含完整的雅可比矩阵,与使用对角雅可比矩阵相比,模拟速度提高了20%以上。此外,我们的结果表明,使用对称小叶或在缺乏合适的左心房模型的情况下,可能无法预测流场的重要特征。

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