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Insights on arterial secondary flow structures and vortex dynamics gained using the MRV technique

机译:使用MRV技术获得的动脉二级流结构和涡流动力学的见解

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The purpose of this study was to gain an understanding of the formation of arterial secondary flow structures due to physiological parameters such as geometry (curvature), pulsatility and harmonics of inflow conditions. The variation of the unsteady pressure gradient, inflow vorticity and wall shear stress, and its concomitant effect on the secondary flow morphology during the pulsatile flow cycle was investigated. In vitro experimental investigation of arterial secondary flow structures was performed using the magnetic resonance velocimetry (MRV) technique in a 180 curved artery model at Stanford University. MRV benefits include its being a tracer particle-free technique and its ability to resolve a full, three-dimensional flow field. In this paper, we discuss the kinematics of vorticity in the following two regions of a 180 curved artery model; (i) the entrance- (or straight inlet pipe) and (ii) the 180 curved pipe-region. We applied the Womersley solution in the entrance-region to ascertain the time-dependent pressure drop per unit length, in-plane vorticity and wall shear stress for a pulsatile, carotid artery-based flow rate waveform. We hypothesize that in the 180 curved pipe region, the time rate of change of circulation will discern the propensity of large-scale, deformed Dean-type vortices to separate into two vortices in pulsatile arterial flows.
机译:这项研究的目的是了解由于生理参数(例如几何形状(曲率),脉动性和流入条件的谐波)而形成的动脉二级血流结构。研究了脉动流循环中非定常压力梯度,入流涡度和壁面剪应力的变化及其对二次流形态的影响。在斯坦福大学的180弯曲动脉模型中,使用磁共振测速(MRV)技术对动脉二级流动结构进行了体外实验研究。 MRV的优点包括它是无示踪剂的无尘技术,并且具有解析完整的三维流场的能力。在本文中,我们讨论了180个弯曲动脉模型的以下两个区域中的涡旋运动学。 (i)入口管(或直管)和(ii)180弯曲管区域。我们在入口区域应用了Womersley解决方案,以确定了脉搏,基于颈动脉的流速波形的每单位长度,面内涡度和壁切应力随时间变化的压降。我们假设在180弯管区域中,循环的时间变化率将识别出大的变形Dean型涡旋在脉动性动脉血流中分离为两个涡旋的倾向。

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