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PIV investigation of the flow fields in subject-specific vertebro-basilar (VA-BA) junction

机译:PIV研究对象特定椎基底基底(VA-BA)交界处的流场

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As the only arterial structure of which two main arteries merged into one, the vertebro-basilar (VA-BA) system is one of the favorite sites of cerebral atherosclerotic plaques. The aim of this study was to investigate the detailed hemodynamics characteristics in the VA-BA system. A scale-up subject-specific flow phantom of VA-BA system was fabricated based on the computed tomography angiography (CTA) scanning images of a healthy adult. Flow fields in eight axial planes and six radial planes were measured and analyzed by using particle image velocimetry (PIV) under steady flow conditions of $${Re}=300$$ , $${Re}=500$$ . A water–glycerin mixture was used as the working fluid. The flow in the current model exhibited highly three-dimensional characteristics. The confluence of VAs flow formed bimodal velocity distribution near the confluence apex. Due to the asymmetrical structural configuration, the bimodal velocity profile skewed towards left, and sharper peaks were observed under higher Reynolds condition. Secondary flow characterized by two vortices formed in the radial planes where 10 mm downstream the confluence apex and persists along the BA under both Reynolds numbers. The strength of secondary flow under $${Re}=500$$ is around 8% higher than that under $${Re}=300$$ , and decayed nonlinearly along the flow direction. In addition, a low momentum recirculation region induced by boundary layer separation was observed near the confluence apex. The wall shear stress (WSS) in the recirculation area was found to be lower than 0.4 Pa. This region coincides well with the preferential site of vascular lesions in the VA-BA system. This preliminary study verified that the subject-specific in-vitro experiment is capable of reflecting the detailed flow features in the VA-BA system. The findings from this study may help to expand the understanding of the hemodynamics in the VA-BA system, and further clarifying the mechanism that underlying the localization of vascular lesions.
机译:椎-基底(VA-BA)系统是唯一的两个主要动脉合并为一个的动脉结构,是脑动脉粥样斑块最喜欢的部位之一。这项研究的目的是调查VA-BA系统中详细的血液动力学特征。基于健康成人的计算机断层扫描血管造影(CTA)扫描图像,制造了VA-BA系统的按比例放大的特定对象流模型。在$$ {Re} = 300 $$,$$ {Re} = 500 $$的稳定流条件下,使用粒子图像测速(PIV)测量和分析了八个轴向平面和六个径向平面中的流场。水-甘油混合物用作工作流体。当前模型中的流动显示出高度的三维特征。 VAs汇合处在汇合顶点附近形成双峰速度分布。由于结构不对称,双峰速度曲线向左偏斜,并且在较高的雷诺条件下观察到更尖的峰。二次流的特征是在径向平面形成两个涡流,汇合顶点向下游10毫米,并在两个雷诺数下沿BA持续存在。 $$ {Re} = 500 $$下的二次流动强度比$$ {Re} = 300 $$下的二次流动强度高约8%,并且沿流动方向呈非线性衰减。另外,在汇合顶点附近观察到由边界层分离引起的低动量再循环区域。发现回流区域的壁切应力(WSS)低于0.4 Pa。该区域与VA-BA系统中血管病变的优先部位非常吻合。这项初步研究证实,特定于受试者的体外实验能够反映VA-BA系统中的详细流动特征。这项研究的发现可能有助于扩大对VA-BA系统中血流动力学的理解,并进一步阐明血管病变定位的潜在机制。

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