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ALTERNATING CURRENT ELECTRO-OSMOTIC FLOW OF THE MAXWELL FLUIDS THROUGH A CIRCULAR MICRO-PIPE

机译:通过圆形微管改变麦克斯韦流体的当前电渗流

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摘要

Analytical solutions are presented for time periodic EOF flow of linear viscoelastic fluids through a cylindrical micro-pipe. The linear viscoelastic fluids used here are described by the general Maxwell model. The solution involves analytically solving the linearized Poisson-Boltzmann equation, together with the Cauchy momentum equation and the general Maxwell constitutive equation considering the depletion effect produced by the interaction between macro-molecules of the Maxwell fluid and the channel surface. The overall flow is divided into depletion layer and bulk flow outside of depletion layer. The velocity expressions of these two layers were obtained, respectively. By numerical computations, the influences of the periodic EOF electric oscillating Reynolds number Re, Deborah number De, depletion layer thickness δ and the viscosity ratio γ of Maxwell to Newtonian fluids on velocity profile are presented. For a prescribed De, the increasing Re will cause large changes of the EOF velocity with decreasing velocity magnitude. For a given Re, large De gives large EOF velocity magnitude. Increasing γ will lead to larger velocity amplitude for a given lower Re. However, at higher Re, the velocity amplitude decreases with the viscosity ratio γ, especially within the depletion layer. In addition, large depletion layer thickness gives small EOF velocity magnitude for fixed Re and De. Finally, the influence of De on energy dissipation is studied. These results provide a detail insight of the flow characteristic of this flow configuration.
机译:提出了线性粘弹性流体通过圆柱形微管的时间周期EOF流动的解析解。此处使用的线性粘弹性流体由一般的Maxwell模型描述。该解决方案包括考虑麦克斯韦流体的大分子与通道表面之间相互作用产生的耗竭效应,对线性化的Poisson-Boltzmann方程,柯西动量方程和一般的麦克斯韦本构方程进行解析求解。总流量分为耗尽层和耗尽层外部的总体流量。分别获得了这两层的速度表达式。通过数值计算,给出了周期性EOF电振荡雷诺数Re,Deborah数De,耗尽层厚度δ和麦克斯韦与牛顿流体的黏度比γ对速度分布的影响。对于规定的De,随着Re的增加,Re的增加将导致EOF速度发生较大的变化,而速度幅度减小。对于给定的Re,较大的De会给出较大的EOF速度幅值。对于给定的较低Re,增大γ将导致较大的速度振幅。然而,在较高的Re下,速度振幅随粘度比γ而减小,特别是在耗尽层内。另外,对于固定的Re和De,较大的耗尽层厚度可提供较小的EOF速度幅值。最后,研究了De对能量耗散的影响。这些结果提供了对该流动配置的流动特性的详细了解。

著录项

  • 来源
    《Journal of Mechanics》 |2013年第2期|233-240|共8页
  • 作者单位

    School of Mathematical Science Inner Mongolia University Hohhot, Inner Mongolia 010021, China;

    School of Mathematical Science Inner Mongolia University Hohhot, Inner Mongolia 010021, China;

    School of Mathematical Science Inner Mongolia University Hohhot, Inner Mongolia 010021, China,School of Mathematics and Statistics Inner Mongolia Finance and Economics College Hohhot, Inner Mongolia 010051, China;

    College of Mathematical Science Baotou teacher's college, Baotou Inner Mongolia 014030, China;

    School of Mathematical Science Inner Mongolia University Hohhot, Inner Mongolia 010021, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Time periodic EOF; Generalized Maxwell fluids; Circular micro-pipe; Oscillating Reynolds number; Relaxation times; Viscosity ratio;

    机译:时间周期EOF;广义麦克斯韦流体;圆形微管;振荡雷诺数;放松时间;粘度比;

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