Transient, three-dimensional, multiscale simulations of the human aortic valve.

Eli J Weinberg, Mohammad Reza Kaazempur Mofrad
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引用次数: 133

Abstract

A set of multiscale simulations has been created to examine the dynamic behavior of the human aortic valve (AV) at the cell, tissue, and organ length scales. Each model is fully three-dimensional and includes appropriate nonlinear, anisotropic material models. The organ-scale model is a dynamic fluid-structure interaction that predicts the motion of the blood, cusps, and aortic root throughout the full cycle of opening and closing. The tissue-scale model simulates the behavior of the AV cusp tissue including the sub-millimeter features of multiple layers and undulated geometry. The cell-scale model predicts cellular deformations of individual cells within the cusps. Each simulation is verified against experimental data. The three simulations are linked: deformations from the organ-scale model are applied as boundary conditions to the tissue-scale model, and the same is done between the tissue and cell scales. This set of simulations is a major advance in the study of the AV as it allows analysis of transient, three-dimensional behavior of the AV over the range of length scales from cell to organ.

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人体主动脉瓣的瞬时、三维、多尺度模拟。
建立了一套多尺度的模拟来研究人类主动脉瓣(AV)在细胞、组织和器官长度尺度上的动态行为。每个模型都是完全三维的,并包括适当的非线性,各向异性材料模型。器官尺度模型是一种动态的流-结构相互作用,预测血液、尖端和主动脉根部在整个打开和关闭周期中的运动。组织尺度模型模拟了AV尖组织的行为,包括多层亚毫米特征和波动几何形状。细胞尺度模型预测尖端内单个细胞的细胞变形。每个模拟都与实验数据进行了验证。这三种模拟是相互联系的:来自器官尺度模型的变形被用作组织尺度模型的边界条件,组织和细胞尺度之间也是如此。这组模拟是AV研究的一个重大进展,因为它允许分析AV在从细胞到器官的长度范围内的瞬态三维行为。
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