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Lagrangian wall shear stress structures and near-wall transport in high-Schmidt-number aneurysmal flows

机译:施密特数高的动脉瘤流中的拉格朗日壁剪切应力结构和近壁运输

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摘要

The wall shear stress (WSS) vector field provides a signature for near wall convective transport, and can be scaled to obtain a first order approximation of the near wall fluid velocity. The near wall flow field governs mass transfer problems in convection dominated open flows with high Schmidt number, in which case a flux at the wall will lead to a thin concentration boundary layer. Such near wall transport is of particular interest in cardiovascular flows whereby hemodynamics can initiate and progress biological events at the vessel wall. In this study we consider mass transfer processes in pulsatile blood flow of abdominal aortic aneurysms resulting from complex WSS patterns. Specifically, the Lagrangian surface transport of a species released at the vessel wall was advected in forward and backward time based on the near wall velocity field. Exposure time and residence time measures were defined to quantify accumulation of trajectories, as well as the time required to escape the near wall domain. The effect of diffusion and normal velocity was investigated. The trajectories induced by the WSS vector field were observed to form attracting and repelling coherent structures that delineated species distribution inside the boundary layer consistent with exposure and residence time measures. The results indicate that Lagrangian wall shear stress structures can provide a template for near wall transport.
机译:壁切应力(WSS)矢量场为近壁对流传输提供了特征,并且可以按比例缩放以获得近壁流体速度的一阶近似值。近壁流场控制着具有高施密特数的以对流为主的开放流中的传质问题,在这种情况下,壁上的通量将导致薄的浓度边界层。这种近壁运输在心血管流动中特别令人感兴趣,由此血液动力学可以在血管壁处引发和发展生物事件。在这项研究中,我们考虑了由复杂的WSS模式导致的腹主动脉瘤脉动血流中的传质过程。具体地,基于近壁速度场,在向前和向后的时间中平移了在血管壁释放的物种的拉格朗日表面运输。定义了曝光时间和停留时间测量以量化轨迹的积累,以及逃离近壁域所需的时间。研究了扩散和法向速度的影响。观察到由WSS矢量场诱导的轨迹形成吸引和排斥相干结构,该结构描绘了与暴露和停留时间测量一致的边界层内部的物种分布。结果表明,拉格朗日墙剪应力结构可以为近壁运输提供模板。

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