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Wall Shear Stress and Atherosclerosis: Numerical Blood Flow Simulations in the Mouse Aortic Arch

机译:墙面剪切应力和动脉粥样硬化:小鼠主动脉弓中的数值血流量模拟

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The aims of this study were (1) to demonstrate the feasibility of computational fluid dynamic (CFD) modelling of realistic blood flow in the mouse aortic arch, and (2) to determine the relation of wall shear stress and atherosclerosis in the mouse aortic arch. ApoE knockout mice were chosen for this study. The blood flow fraction in the major branches of the mouse aortic arch was measured by ultrasound biomicroscopy. The geometry of the aortic arch was captured by plastic casting and micro CT imaging. Mouse blood viscosities were measured by rheometry. A pathological examination was performed. A well-validated in-house finite element code, which solves the three dimensional Navier-Stokes equations, was used to compute the wall shear stress and velocity patterns in the ascending aorta and the aortic arch. The distribution of the wall shear stress was correlated with the distribution of the atherosclerosis from the pathological examination in order to investigate the effect of wall shear stress on atherosclerosis. It is concluded that CFD modeling of hemodynamics in the mouse aortic arch is feasible. Qualitative impressions show that atherosclerosis was related with the region of low wall shear stress in mouse aortic arch.
机译:本研究的目的是(1)以证明在小鼠主动脉拱中的计算流体动态(CFD)建模的可行性,以及(2)以确定小鼠主动脉弓中墙剪应力和动脉粥样硬化的关系。选择Apoe敲除小鼠用于本研究。通过超声生物镜检查测量小鼠主动脉弓的主要分支中的血流级分。主动脉弓的几何形状由塑料铸造和微型CT成像捕获。通过流变学测量小鼠血液粘度。进行病理检查。验证了良好的内部有限元码,其解决了三维Navier-Stokes方程,用于计算升序主动脉和主动脉弓中的壁剪切应力和速度模式。壁剪切应力的分布与来自病理检查的动脉粥样硬化的分布相关,以研究墙面剪切应力对动脉粥样硬化的影响。结论是,小鼠主动脉弓中的血流动力学的CFD建模是可行的。定性印象表明,动脉粥样硬化与小鼠主动脉弓中的低壁剪切应力的区域有关。

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