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首页> 外文期刊>Journal of Micromechanics and Microengineering >Frequency-dependent velocity and vorticity fields of electro-osmotic flow in a closed-end cylindrical microchannel
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Frequency-dependent velocity and vorticity fields of electro-osmotic flow in a closed-end cylindrical microchannel

机译:封闭式圆柱微通道中电渗流的频率相关速度和涡旋场

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摘要

The frequency-dependent electro-osmotic flow in closed-end cylindrical microchannels is analyzed in this study. A dynamic ac electro-osmotic flow field is obtained analytically by solving the Navier-Stokes equation using the Green function formulation in combination with a complex variable approach. Onsager's principle of reciprocity is demonstrated to be valid for transient and ac electro-osmotic flow. The effect of a frequency-dependent ac electric field on the oscillating electro-osmotic flow is studied. The induced pressure gradient is analyzed under the effects of the channel dimension and the frequency of electric field. Based on the Stokes second problem, the solution of the slip velocity approximation is presented for comparison with the results obtained from the analytical solution developed in this study. In addition, the expression for the electro-osmotic vorticity field is derived, and the characteristic of the vorticity field in ac electro-osmotic flow is discussed.
机译:在这项研究中分析了封闭式圆柱形微通道中与频率有关的电渗流。通过使用格林函数公式结合复杂变量方法求解Navier-Stokes方程,可以解析地获得动态交流电渗流场。 Onsager的互惠原理被证明对瞬态和交流电渗流有效。研究了频率相关的交流电场对振荡电渗流的影响。在通道尺寸和电场频率的影响下分析了感应压力梯度。基于斯托克斯第二个问题,提出了滑移速度近似解,以与本研究开发的解析解的结果进行比较。此外,推导了电渗涡度场的表达式,并讨论了交流电渗流中涡度场的特性。

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