Chassagne Fanette, Barbour Michael C, Chivukula Venkat K, Machicoane Nathanael, Kim Louis J, Levitt Michael R, Aliseda Alberto
Department of Mechanical Engineering, University of Washington, Seattle, WA 98105, USA.
Biomedical and Chemical Engineering and Sciences, Florida Institute of Technology, Melbourne, FL 32901, USA.
J Fluid Mech. 2021 May 25;915. doi: 10.1017/jfm.2020.1114. Epub 2021 Mar 31.
Flow in side-wall cerebral aneurysms can be ideally modelled as the combination of flow over a spherical cavity and flow in a curved circular pipe, two canonical flows. Flow in a curved pipe is known to depend on the Dean number , combining the effects of Reynolds number, , and of the curvature along the pipe centreline, . Pulsatility in the flow introduces a dependency on the Womersley number . Using stereo PIV measurements, this study investigated the effect of these three key non-dimensional parameters, by modifying pipe curvature (), flow-rate (), and pulsatility frequency (), on the flow patterns in a spherical cavity. A single counter-rotating vortex was observed in the cavity for all values of pipe curvature and , for both steady and pulsatile inflow conditions. Increasing the pipe curvature impacted both the flow patterns in the pipe and the cavity, by shifting the velocity profile towards the cavity opening and increasing the flow rate into the cavity. The circulation in the cavity was found to collapse well with only the Dean number, for both steady and pulsatile inflows. For pulsatile inflow, the counter-rotating vortex was unstable and the location of its centre over time was impacted by the curvature of the pipe, as well as the and the in the freestream. The circulation in the cavity was higher for steady inflow than for the equivalent average Reynolds and Dean number pulsatile inflow, with very limited impact of the Womersley in the range studied.
侧壁脑动脉瘤内的血流可理想地模拟为球形腔内流动与弯曲圆管内流动的组合,这是两种典型流动。已知弯曲管道内的流动取决于迪恩数,它综合了雷诺数和沿管道中心线的曲率的影响。血流中的脉动引入了对沃默斯利数的依赖。本研究使用立体粒子图像测速技术测量,通过改变管道曲率、流速和脉动频率这三个关键无量纲参数,研究了它们对球形腔内流动模式的影响。在稳定和脉动流入条件下,对于所有管道曲率值和,在腔内均观察到单个反向旋转涡。增加管道曲率会使速度剖面朝着腔开口移动并增加流入腔内的流量,从而影响管道和腔内的流动模式。结果发现,对于稳定和脉动流入,腔内的环流仅与迪恩数有很好的相关性。对于脉动流入,反向旋转涡是不稳定的,其中心随时间的位置受到管道曲率以及自由流中的和的影响。在研究的范围内,沃默斯利数的影响非常有限,稳定流入时腔内的环流高于等效平均雷诺数和迪恩数的脉动流入。