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主动脉血流的生理模拟:3D 流固耦合、3D 刚性壁和 1D 模型预测的血流动力学指标比较。

Physiological simulation of blood flow in the aorta: comparison of hemodynamic indices as predicted by 3-D FSI, 3-D rigid wall and 1-D models.

机构信息

Laboratory of Hemodynamics and Cardiovascular Technology, Ecole Polytechnique Fédérale de Lausanne, Switzerland.

出版信息

Med Eng Phys. 2013 Jun;35(6):784-91. doi: 10.1016/j.medengphy.2012.08.009. Epub 2012 Sep 12.

DOI:10.1016/j.medengphy.2012.08.009
PMID:22981220
Abstract

Interest in patient-specific blood-flow circulation modeling has increased substantially in recent years. The availability of clinical data for geometric and elastic properties together with efficient numerical methods has now made model rendering feasible. This work uses 3-D fluid-structure interaction (FSI) to provide physiological simulation resulting in modeling with a high level of detail. Comparisons are made between results using FSI and rigid wall models. The relevance of wall compliance in determining parameters of clinical importance, such as wall shear stress, is discussed together with the significance of differences found in the pressure and flow waveforms when using the 1-D model. Patient-specific geometry of the aorta and its branches was based on MRI angiography data. The arterial wall was created with a variable thickness. The boundary conditions for the fluid domain were pressure waveform at the ascending aorta and flow for each outlet. The waveforms were obtained using a 1-D model validated by in vivo measurements performed on the same person. In order to mimic the mechanical effect of surrounding tissues in the simulation, a stress-displacement relation was applied to the arterial wall. The temporal variation and spatial patterns of wall shear stress are presented in the aortic arch and thoracic aorta together with differences using rigid wall and FSI models. A comparison of the 3-D simulations to the 1-D model shows good reproduction of the pressure and flow waveforms.

摘要

近年来,人们对基于患者个体的血流循环建模产生了浓厚的兴趣。现在,临床数据在几何和弹性特性方面的可用性,以及高效的数值方法,使得模型渲染成为可能。这项工作使用三维流固耦合(FSI)来提供生理模拟,从而实现高度详细的建模。对使用 FSI 和刚性壁模型的结果进行了比较。讨论了壁顺应性在确定壁剪切应力等临床重要参数方面的相关性,以及在使用一维模型时压力和流量波形的差异的重要性。主动脉及其分支的患者特定几何形状基于 MRI 血管造影数据。动脉壁的厚度是可变的。流体域的边界条件为升主动脉的压力波形和每个出口的流量。这些波形是使用一维模型获得的,该模型通过在同一人身上进行的体内测量得到验证。为了在模拟中模拟周围组织的力学效应,对动脉壁施加了一个应力-位移关系。在主动脉弓和胸主动脉中呈现了壁剪切应力的时间变化和空间分布,并比较了使用刚性壁和 FSI 模型的结果。将三维模拟与一维模型进行比较表明,压力和流量波形得到了很好的再现。

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