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Coupled simulation of hemodynamics and vascular growth and remodeling in a subject-specific geometry

机译:特定对象几何形状中血液动力学和血管生长与重塑的耦合模拟

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摘要

A computational framework to couple vascular growth and remodeling (G&R) with blood flow simulation in a 3D patient-specific geometry is presented. Hyperelastic and anisotropic properties are considered for the vessel wall material and a constrained mixture model is used to represent multiple constituents in the vessel wall, which was modeled as a membrane. The coupled simulation is divided into two time scales–a longer time scale for G&R and a shorter time scale for fluid dynamics simulation. G&R is simulated to evolve the boundary of the fluid domain, and fluid simulation is in turn used to generate wall shear stress and transmural pressure data that regulates G&R. To minimize required computation cost, the fluid dynamics are only simulated when G&R causes significant vascular geometric change. For demonstration, this coupled model was used to study the influence of stress-mediated growth parameters, and blood flow mechanics, on the behavior of the vascular tissue growth in a model of the infrarenal aorta derived from medical image data.
机译:提出了在3D患者特定的几何形状中将血管生长和重塑(G&R)与血流模拟结合起来的计算框架。考虑血管壁材料的超弹性和各向异性特性,并使用约束混合物模型来表示血管壁中的多个成分,并以膜为模型。耦合模拟分为两个时间尺度-G&R的时间尺度较长,而流体动力学模拟的时间尺度较短。对G&R进行仿真以演化流体域的边界,然后依次使用流体仿真来生成调节G&R的壁面剪应力和透壁压力数据。为了最大程度地减少所需的计算成本,仅在G&R引起明显的血管几何变化时才模拟流体动力学。为了证明这一点,该耦合模型用于研究应力介导的生长参数和血流力学对从医学图像数据得出的肾下主动脉模型中血管组织生长行为的影响。

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