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首页> 外文期刊>Frontiers in Bioengineering and Biotechnology >A New MRI-Based Model of Heart Function with Coupled Hemodynamics and Application to Normal and Diseased Canine Left Ventricles
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A New MRI-Based Model of Heart Function with Coupled Hemodynamics and Application to Normal and Diseased Canine Left Ventricles

机译:一种新的基于MRI的心功能耦合血液动力学模型及其在正常和患病犬左心室中的应用

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摘要

A methodology for the simulation of heart function that combines an MRI-based model of cardiac electromechanics (CE) with a Navier-Stokes based hemodynamics (NSH) model is presented. The cardiac electromechanics model consists of two coupled components that simulate the electrical and the mechanical functions of the heart. Accurate representations of ventricular geometry and fiber orientations are constructed from the structural magnetic resonance and the diffusion tensor MR images, respectively. The deformation of the ventricle obtained from the electromechanical model serves as input to the hemodynamics model in this one-way coupled approach via imposed kinematic wall-velocity boundary conditions and at the same time, governs the blood flow into and out of the ventricular volume. The time-dependent endocardial surfaces are registered using a diffeomorphic mapping algorithm while the intraventricular blood flow patterns are simulated using a sharp-interface immersed boundary method based flow solver. The utility of the combined heart function model is demonstrated by comparing the hemodynamic characteristics of a normal canine heart beating in sinus rhythm (SR) against that of the dyssynchronously-beating failing heart. We also discuss the potential of coupled cardiac electromechanics and hemodynamics models for various clinical applications.
机译:提出了一种模拟心脏功能的方法,该方法结合了基于MRI的心脏机电(CE)模型和基于Navier-Stokes的血液动力学(NSH)模型。心脏机电模型由两个耦合的组件组成,可模拟心脏的电气和机械功能。分别根据结构磁共振和弥散张量MR图像构造心室几何形状和纤维方向的准确表示。在这种单向耦合方法中,通过施加的运动壁速边界条件,从机电模型获得的心室变形可作为血液动力学模型的输入,并同时控制流入和流出心室容积的血液。时间依赖的心内膜表面使用微晶映射算法进行配准,而脑室内血流模式则使用基于锐化界面浸入边界方法的血流求解器进行模拟。通过将正常犬心脏的窦性心律(SR)搏动与不同步跳动的心脏衰竭的血液动力学特征进行比较,证明了组合心脏功能模型的实用性。我们还将讨论各种临床应用中耦合的心脏机电和血液动力学模型的潜力。

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