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首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Electroosmotic transport of immiscible binary system with a layer of non-conducting fluid under interfacial slip: The role applied pressure gradient
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Electroosmotic transport of immiscible binary system with a layer of non-conducting fluid under interfacial slip: The role applied pressure gradient

机译:界面滑移下具有非导电流体层的不混溶二元系统的电渗输运:施加压力梯度的作用

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摘要

We investigate the transport of immiscible binary fluid layers, constituted by one conducting (top layer fluid) and another non-conducting (bottom layer fluid) fluids in a microfluidic channel under the combined influences of an applied pressure gradient and imposed electric field. We solve the transport equation governing the flow dynamics analytically and obtain the closed-form expressions of the velocity fields. We bring out the alteration in the flow dynamics, mainly attributable to the non-linear interaction between interfacial slip and the electrical double layer effect over small scales as modulated by the applied pressure gradient. In particular, we show the augmentation in the net volume transport rate through the channel, emerging from an intricate competition among electrical forcing, applied pressure gradient and the viscous resistance as modulated by the interfacial slip. We believe that the results of this studymay be of immense consequence for the design of various microfluidic devises, which are often used for the manipulation of two immiscible fluids in different biomedical/biochemical processes.
机译:我们研究了在施加的压力梯度和施加的电场的综合影响下,微流体通道中由一种导电(顶层流体)和另一种非导电(底层流体)流体组成的不混溶二元流体层的传输。我们解析地解决了控制流动动力学的输运方程,并获得了速度场的封闭形式。我们得出了流动动力学的变化,这主要归因于界面滑动和小双层电双层效应之间的非线性相互作用,这是由施加的压力梯度调制的。尤其是,我们显示了通过通道的净体积传输速率的增加,这是由电强迫,施加的压力梯度和由界面滑移调节的粘性阻力之间的复杂竞争而产生的。我们认为,这项研究的结果可能对各种微流体装置的设计产生巨大的影响,这些装置通常用于在不同的生物医学/生化过程中处理两种不混溶的流体。

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