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Effects of interface curvature on Poiseuille flow through microchannels and microtubes containing superhydrophobic surfaces with transverse grooves and ribs

机译:界面曲率对泊瓦流经微通道和微管的影响,微通道和微管包含具有横向沟槽和肋的超疏水表面

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摘要

This paper presents numerical results pertaining to the effects of interface curvature on the effective slip behavior of Poiseuille flow through microchannels and microtubes containing superhydrophobic surfaces with transverse ribs and grooves. The effects of interface curvature are systematically investigated for different normalized channel heights or tube diameters, shear-free fractions, and flow Reynolds numbers. The numerical results show that in the low Reynolds number Stokes flow regime, when the channel height or tube diameter (normalized using the groove-rib spacing) is sufficiently large, the critical interface protrusion angle at which the effective slip length becomes zero is θ_c ≈ 62°-65°, which is independent of the shear-free fraction, flow geometry (channel and tube), and flow driving mechanism. As the normalized channel height or tube diameter is reduced, for a given shear-free fraction, the critical interface protrusion angle θ_c decreases. As inertial effects become increasingly dominant corresponding to an increase in Reynolds number, the effective slip length decreases, with the tube flow exhibiting a more pronounced reduction than the channel flow. In addition, for the same corresponding values of shear-free fraction, normalized groove-rib spacing, and interface protrusion angle, longitudinal grooves are found to be consistently superior to transverse grooves in terms of effective slip performance.
机译:本文提出了与界面曲率对泊瓦流通过微通道和微管的有效滑移行为的影响有关的数值结果,该微通道和微管包含具有横肋和沟槽的超疏水表面。对于不同的归一化通道高度或管径,无剪切分数和流雷诺数,系统地研究了界面曲率的影响。数值结果表明,在低雷诺数斯托克斯流态下,当通道高度或管径(使用凹槽肋间距归一化)足够大时,有效滑移长度变为零的临界界面突出角为θ_c 62°-65°,独立于无剪切分数,流动几何形状(通道和管)以及流动驱动机构。当归一化的通道高度或管直径减小时,对于给定的无剪切分数,临界界面突出角θ_c减小。随着相应于雷诺数的增加,惯性效应变得越来越占主导地位,有效滑移长度减小,管流量的减小幅度明显大于通道流量。另外,对于相同的相应值,如无剪切比,归一化的槽肋间距和界面突出角度,发现纵向槽在有效滑动性能方面始终优于横向槽。

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  • 来源
    《Microfluidics and nanofluidics》 |2014年第5期|891-905|共15页
  • 作者

    C. J. Teo; B. C. Khoo;

  • 作者单位

    Department of Mechanical Engineering, National University of Singapore, Singapore 117576, Singapore;

    Department of Mechanical Engineering, National University of Singapore, Singapore 117576, Singapore;

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  • 正文语种 eng
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