用准稳态分析方法模拟蠕动流动中微转子周围的流动

A. Vuppu, Antonio A. Garcia, S. Saha, P. Phelan, R. Calhoun, M. Hayes
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摘要

顺磁微球悬浮物置于旋转磁场中聚集形成旋转磁链。这些长度为几十微米的链条就像微型转子一样,可以模拟成圆柱体。本文研究了在极低雷诺数的蠕变流系统中,绕圆柱体径向旋转的流动和微混合现象。动量转移的时间尺度比边界运动小得多,因此可以使用准稳态近似。流动是在每一个瞬间从一个水平平移圆柱的稳定运动的情况下推导出来的,旋转近似于一系列增量平移。采用数值模拟方法确定了点流体单元的路径线和物质线,并对其进行了分析,以了解微流控系统的行为。结果表明,系统内流动不稳定,存在混沌平流现象。流动主要是二维的,平面流体运动仅限于旋转圆柱体周围的直接区域,在轴向上有一个小的扰动,可以经历许多直径之外。根据流体元素的初始位置,可以观察到椭圆和星形路径,包括周期轨道。轨迹和相位角与有限的实验结果以及粒子动力学模拟数据比较良好。材料线和条纹显示拉伸和折叠,这表明系统的混沌行为。在不同转速下,相同转速下的料线长度相近,转速的影响主要表现为混合时间的改变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling flow around a microrotor in creeping flow using a quasi-steady-state analysis
Paramagnetic microsphere suspensions placed in a rotating magnetic field aggregate to form rotating magnetic chains. These chains that are several tens of micrometers in length act as microrotors, and can be modeled as circular cylinders. The flow and associated micromixing around these cylinders rotating about their radial axis is studied for a very low Reynolds number, creeping-flow system.. Time-scales for momentum transfer are much smaller than boundary movement, hence a quasi-steady approximation can be used. The flow is derived at every instant from the case of a steady motion of a horizontally translating cylinder, with the rotation approximated to a series of incremental translations. A numerical simulation was used to determine the pathlines and material lines of point fluid elements, which were analyzed to understand the behavior of the microfluidic system. The results indicate the flow to be unsteady, with chaotic advection observed in the system. The flow is primarily two-dimensional with planar fluid movement limited to the immediate area around the rotating cylinder, with a small disturbance in the axial direction that is experienced up to many diameters away. Elliptic and star shaped pathlines, including periodic orbits, are observed depending on the fluid element's initial location. The trajectories and phase angles compare well with the limited experimental results, as well as with data from particle dynamics simulations. Material lines and streaklines display stretching and folding, which are indicative of the chaotic behavior of the system. The material lines have similar lengths for the same amount of rotation at different speeds, and the affect of rotational speeds appears to be primarily to change the time of mixing.
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