首页> 外文期刊>International Journal of Heat and Mass Transfer >Electroosmotic flow of a two-layer fluid in a slit channel with gradually varying wall shape and zeta potential
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Electroosmotic flow of a two-layer fluid in a slit channel with gradually varying wall shape and zeta potential

机译:缝隙通道中两层流体的电渗流,壁的形状和ζ电位逐渐变化

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HighlightsElectroosmotic flow of two-layer fluid in non-uniform channel is investigated.Conducting lubricating and non-conducting working fluids are immiscible.Wall shape and zeta potential vary slowly and periodically in a sinusoidal manner.Induced pressure gradient and deformed shape of interface are part of the solution.Effects of various factors on flow structure are investigated.AbstractThis study aims to investigate electroosmotic (EO) flow of a two-layer fluid through a slit microchannel where the wall shape as well as zeta potential may vary slowly and periodically with axial position. The two-layer EO flow is a model for the flow of two immiscible fluids: a non-conducting working fluid being dragged into motion by a conducting sheath fluid. Electric double layers may develop in the conducting fluid near the interface between the two fluids, and near a wall that is assumed to be non-uniform in both shape and zeta potential distribution. Because of these geometrical and electrical non-uniformities, pressure is internally induced. The two-fluid flow is therefore driven by electrokinetic and hydrodynamic forcings, while subjected to the combined effects of the axial variations of the wall shape and potential distribution. The present problem is formulated by invoking the lubrication approximation, for a nearly parallel flow of low Reynolds number, and the governing equations are solved as analytically as possible. The induced pressure gradient and the deformed shape of the interface, which are functions of axial position, as well as the flow rates of the two fluids, are determined by an iterative trial-and-error numerical scheme. Results are generated to show the effects due to various factors, including the applied pressure difference, interfacial potential, viscosity ratio, wall undulation, and phase shift between the wall shape and potential distribution. Some of the effects on flow in a non-uniform channel can be qualitatively different from that in a uniform channel.
机译: 突出显示 研究了非均匀通道中两层流体的电渗流。 导电的和非导电的工作液是 墙壁形状和Zeta电位以正弦形式缓慢且周期性地变化。 引起的压力梯度和界面变形是解决方案的一部分。 各种因素对流动结构的影响。 摘要 < ce:abstract-sec id =“ as010” view =“ all”> 此研究旨在研究通过两层流体的电渗(EO)流动狭缝微通道,壁的形状以及ζ电势可能会随着轴向位置缓慢而周期性地变化。两层EO流动是两种不混溶流体流动的模型:不导电的工作流体被导电的护套流体拖入运动。在导电流体中,在两种流体之间的界面附近,以及在形状和ζ电势分布均被认为是不均匀的壁附近,可能会形成双电层。由于这些几何和电气不均匀性,内部会产生压力。因此,双流体流由电动和流体动力推动,同时受到壁形状和电位分布的轴向变化的综合影响。对于低雷诺数的近似平行流,通过调用润滑近似公式可以解决当前问题,并尽可能解析地求解控制方程。轴向压力的函数,是界面的感应压力梯度和变形形状,以及两种流体的流速,是通过反复试验和错误的数值方法确定的。产生的结果显示出由各种因素引起的影响,包括施加的压力差,界面电势,粘度比,壁起伏以及壁形状与电势分布之间的相移。从质量上讲,非均匀通道上的某些影响可能与均匀通道上的不同。

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