首页> 外文期刊>Stroke: A Journal of Cerebral Circulation >Computation of hemodynamics in the circle of Willis.
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Computation of hemodynamics in the circle of Willis.

机译:威利斯圈子内的血液动力学计算。

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摘要

BACKGROUND AND PURPOSE: Wall shear stress (WSS) and pressure are important factors in the development of cerebral aneurysms. We aimed to develop a computational fluid dynamics simulator for flow in the complete circle of Willis to study the impact of variations in vessel radii and bifurcation angles on WSS and pressure on vessel walls. METHODS: Blood flow was modeled with Navier-Stokes equations as an incompressible newtonian fluid within rigid vessel walls. A model of the circle of Willis geometry was approximated as a network of tubes around cubic curves. Pulsatile inlet flow rates and constant outlet pressure were used as boundary conditions. RESULTS: The simulations confirmed that differences in vessel radii and asymmetric branch angles influence WSS magnitude and spatial distribution. High WSS occurred at locations where aneurysms are frequent and in anatomic variants known to be associated with an increased risk for aneurysm development. CONCLUSIONS: Computational fluid dynamics analysis can be applied to the complete circle of Willis and should be used to study the pathophysiology of this complex vascular structure, including risk factors for aneurysm development. Further development of the method should include simulations with flexible vessel walls.
机译:背景与目的:壁切应力(WSS)和压力是脑动脉瘤发展的重要因素。我们的目标是为威利斯的整个循环开发一种计算流体动力学仿真器,以研究脉管半径和分叉角变化对WSS以及脉管壁压力的影响。方法:用Navier-Stokes方程将血流建模为刚性血管壁内不可压缩的牛顿流体。威利斯几何圆的模型近似为围绕三次曲线的管网。脉动的入口流速和恒定的出口压力用作边界条件。结果:仿真证实,容器半径和不对称分支角的差异会影响WSS的大小和空间分布。高WSS发生在动脉瘤频繁发生的位置以及已知与动脉瘤发展风险增加相关的解剖学变异中。结论:计算流体动力学分析可应用于Willis的整个循环,应用于研究这种复杂血管结构的病理生理学,包括动脉瘤发展的危险因素。该方法的进一步发展应包括使用柔性容器壁进行模拟。

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