首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Flow-induced wall mechanics of patient-specific aneurysmal cerebral arteries: Nonlinear isotropic versus anisotropic wall stress
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Flow-induced wall mechanics of patient-specific aneurysmal cerebral arteries: Nonlinear isotropic versus anisotropic wall stress

机译:患者特定的动脉瘤性脑动脉血流诱导的壁力学:非线性各向同性与各向异性壁应力

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摘要

Fluid-structure interaction simulations of three patient-specific models of cerebral aneurysms were carried out with the objective of quantifying the effects of non-Newtonian blood flow and the vessel mechanical behavior on the time-dependent fluid shear and normal stresses, and structural stress and stretch. The average wall shear stress at peak systole was found to be approximately one order of magnitude smaller than the shear stresses in the proximal communicating arteries, regardless of the shape or size of the aneurysms. Spatial distributions of oscillatory shear index were consistent with the reciprocal of wall shear stress distributions at peak systole for all aneurysm geometries, demonstrating that oscillatory shear index correlates inversely with wall shear at this time point in the cardiac cycle. An aneurysm wall modeled with an isotropic material resulted in an underestimation of both the maximum principal stress and stretch, compared to the anisotropic material model. For the three aneurysm geometries, anisotropic peak wall stresses were approximately 50% higher than for an isotropic material. Regardless of the constitutive material, the maximum stresses were consistently located at the aneurysm neck; stresses in the dome were 30% of those in the neck.
机译:进行了三种患者特定的脑动脉瘤模型的流固耦合模拟,目的是量化非牛顿血流和血管力学行为对随时间变化的流体剪切力和正应力,结构应力和应力的影响。伸展。无论动脉瘤的形状或大小如何,峰值收缩期的平均壁切应力均比近端连通动脉的切应力小约一个数量级。对于所有动脉瘤几何形状,振荡剪切指数的空间分布与峰值收缩期壁剪切应力分布的倒数一致,表明在心动周期的这个时间点,振荡剪切指数与壁剪切成反比。与各向异性材料模型相比,以各向同性材料为模型的动脉瘤壁导致最大主应力和拉伸均被低估。对于三种动脉瘤几何形状,各向异性峰值壁应力比各向同性材料高约50%。不论构成材料如何,最大应力始终位于动脉瘤颈部。圆顶上的压力是脖子上压力的30%。

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