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Measurements of the unsteady flow field around beating cilia

机译:击败纤毛周围的不稳定流场的测量

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The swift deformations of flagella and cilia are crucial for locomotion and fluid transport on the micron scale. Most hydrodynamic models of flagellar and ciliary flows assume the zero Reynolds number limit and model the flow using Stokes equations. Recent work has demonstrated that this quasi-steady approximation breaks down at increasing distances from the cilia. Here, we use optical tweezer-based velocimetry to measure the flow velocity with high temporal accuracy, and to reconstruct the entire unsteady flow field around beating cilia. We report both the steady and the unsteady component of the ciliary flow and compare them with the solutions to both the Stokes and the Navier-Stokes equations. Our experimental measurements of the velocity and vorticity fields are in agreement with the numerical solution to the Navier-Stokes equations and show significant differences with the solution to the Stokes equations. We characterize the phase difference between the flow oscillations and the oscillations of the ciliary motion and evidence a significant anisotropic phase lag. We show that this phase lag presents the spatiotemporal characteristics of the unsteady Stokes equations and that the flow field around beating cilia is well represented by the fundamental solution to the unsteady Stokes equations: the oscillet.
机译:鞭毛和纤毛的快速变形对微米尺度上的运动和流体输送至关重要。大多数鞭毛流和纤毛流的流体动力学模型都假设雷诺数为零,并使用斯托克斯方程对流动进行建模。最近的研究表明,这种准稳态近似在距离纤毛越来越远的情况下会发生破坏。在这里,我们使用基于光镊的测速技术,以高时间精度测量流速,并重建搏动纤毛周围的整个非定常流场。我们报告了睫状流的定常和非定常分量,并将其与Stokes方程和Navier-Stokes方程的解进行了比较。我们对速度场和涡度场的实验测量与Navier-Stokes方程的数值解一致,并且与Stokes方程的解有显著差异。我们描述了流动振荡和纤毛运动振荡之间的相位差,并证明了显著的各向异性相位滞后。我们证明了这种相位滞后呈现了非定常斯托克斯方程的时空特征,并且跳动纤毛周围的流场由非定常斯托克斯方程的基本解oscillet很好地表示。

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