Abstract

The complex physics and biology underlying intracranial hemodynamics are yet to be fully revealed. A fully resolved direct numerical simulation (DNS) study has been performed to identify the intrinsic flow dynamics in an idealized carotid bifurcation model. To shed the light on the significance of considering blood shear-thinning properties, the power-law model is compared to the commonly used Newtonian viscosity hypothesis. We scrutinize the kinetic energy cascade (KEC) rates in the Fourier domain and the vortex structure of both fluid models and examine the impact of the power-law viscosity model. The flow intrinsically contains coherent structures which has frequencies corresponding to the boundary frequency, which could be associated with the regulation of endothelial cells. From the proposed comparative study, it is found that KEC rates and the vortex-identification are significantly influenced by the shear-thinning blood properties. Conclusively, from the obtained results, it is found that neglecting the non-Newtonian behavior could lead to underestimation of the hemodynamic parameters at low Reynolds number and overestimation of the hemodynamic parameters by increasing the Reynolds number. In addition, we provide physical insight and discussion onto the hemodynamics associated with endothelial dysfunction which plays significant role in the pathogenesis of intracranial aneurysms.

Highlights

  • Cerebrovascular diseases can lead to life-threatening conditions [1]

  • Hemodynamic parameters in the cerebral arteries play a crucial role in the genesis and growth of numerous cerebrovascular lesions, such as cerebral aneurysms [7, 68, 69]

  • During the past two decades, computational fluid dynamics (CFD) simulations have been a powerful tool for studying the hemodynamics in intracranial arteries

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Summary

Introduction

Cerebrovascular diseases can lead to life-threatening conditions [1]. Intracranial aneurysm (IA) is considered among the most dangerous vascular disorders that cause millions of deaths every year all over the world [2, 3]. Intracranial aneurysm, is a cerebrovascular lesion in which, the weak area of the blood vessel usually enlarges [2, 4,5,6]. Intracranial aneurysms arise along a curvature and at a bifurcation of the parent blood vessel in the circle of Willis [9]. The worst outcome of intracranial aneurysm is its rupture resulting in subarachnoid hemorrhage (SAH) causing a high mortality rate [10,11,12,13,14].

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