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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Coupling of a 3D finite element model of cardiac ventricular mechanics to lumped systems models of the systemic and pulmonic circulation.
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Coupling of a 3D finite element model of cardiac ventricular mechanics to lumped systems models of the systemic and pulmonic circulation.

机译:心脏心室力学的3D有限元模型与体循环和肺循环的集总系统模型的耦合。

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摘要

In this study we present a novel, robust method to couple finite element (FE) models of cardiac mechanics to systems models of the circulation (CIRC), independent of cardiac phase. For each time step through a cardiac cycle, left and right ventricular pressures were calculated using ventricular compliances from the FE and CIRC models. These pressures served as boundary conditions in the FE and CIRC models. In succeeding steps, pressures were updated to minimize cavity volume error (FE minus CIRC volume) using Newton iterations. Coupling was achieved when a predefined criterion for the volume error was satisfied. Initial conditions for the multi-scale model were obtained by replacing the FE model with a varying elastance model, which takes into account direct ventricular interactions. Applying the coupling, a novel multi-scale model of the canine cardiovascular system was developed. Global hemodynamics and regional mechanics were calculated for multiple beats in two separate simulations with a left ventricular ischemic region and pulmonary artery constriction, respectively. After the interventions, global hemodynamics changed due to direct and indirect ventricular interactions, in agreement with previously published experimental results. The coupling method allows for simulations of multiple cardiac cycles for normal and pathophysiology, encompassing levels from cell to system.
机译:在这项研究中,我们提出了一种新颖的,健壮的方法,可将心脏力学的有限元(FE)模型耦合到循环(CIRC)的系统模型,而与心脏相位无关。对于整个心动周期的每个时间步长,使用FE和CIRC模型的心室顺应性计算左心室压力和右心室压力。这些压力在FE和CIRC模型中充当边界条件。在随后的步骤中,使用牛顿迭代法更新压力以最小化腔体体积误差(FE减去CIRC体积)。当满足体积误差的预定义标准时,即可实现耦合。多尺度模型的初始条件是通过用变化的弹性模型代替FE模型来获得的,该模型考虑了直接的心室相互作用。应用耦合,开发了犬心血管系统的新型多尺度模型。在两个单独的模拟中分别计算了多个搏动的整体血流动力学和区域力学,分别模拟了左心室缺血区和肺动脉收缩。干预后,由于直接和间接心室相互作用,总体血流动力学发生了变化,与先前发表的实验结果一致。耦合方法可以模拟正常和病理生理的多个心脏周期,包括从细胞到系统的水平。

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