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通过聚电解质接枝微通道的幂律流体的旋转电渗流。

Rotating electroosmotic flow of power-law fluid through polyelectrolyte grafted microchannel.

机构信息

Department of Mechanical Engineering, National Institute of Technology, Tiruchirappalli, Tamil Nadu 620015, India.

出版信息

Colloids Surf B Biointerfaces. 2020 Sep;193:111058. doi: 10.1016/j.colsurfb.2020.111058. Epub 2020 May 4.

DOI:10.1016/j.colsurfb.2020.111058
PMID:32408258
Abstract

Due to evergrowing importance of understanding flow of bio-fluids in Lab-on-CD based systems, we investigate the flow behaviour of power-law fluids in the rotating electroosmotic flow through a polyelectrolyte grafted (soft) narrow channel. We use an in-house numerical code to solve the governing transport equations for the velocities and flow rates in a rotating channel subjected to an applied external electric field. We show the strong effect of polyelectrolyte layer on the flow behaviour and find an increase in flow rate as we increase the size of the polyelectrolyte layer. We also show that rheology strongly influences the interplay of the Coriolis forces due to rotation and electrical body force due to the applied electric field. We show that the velocities are generally higher for shear thinning fluids as compared to shear thickening fluids. We also show that presence of polymer brushes in the polyelectrolyte layer creates a drag on the fluid which reduces velocities. We also show that the flow rates are strongly altered by the effect of rotation and that shear thickening fluids have lower flow rates than shear thinning fluids. The effect of fluid rheology on the shear stress distribution is also discussed. We believe that studying effect of fluid rheology becomes very important for designing soft channel based Lab-on-CD systems driven by electroosmotic forcing and dealing with rheologically complex bio-fluids such as blood, saliva or mucus.

摘要

由于越来越重视理解基于 Lab-on-CD 的系统中生物流体的流动,我们研究了在旋转电渗流中通过聚电解质接枝(软)窄通道的幂律流体的流动行为。我们使用内部数值代码来求解在旋转通道中受到外部电场作用时的速度和流量的控制传输方程。我们展示了聚电解质层对流动行为的强烈影响,并发现随着聚电解质层尺寸的增加,流量增加。我们还表明,流变学强烈影响由于旋转产生的科里奥利力和由于施加的电场产生的电体力之间的相互作用。我们表明,与剪切增稠流体相比,剪切稀化流体的速度通常更高。我们还表明,聚电解质层中的聚合物刷会对流体产生阻力,从而降低速度。我们还表明,旋转的影响强烈改变了流量,并且剪切增稠流体的流量低于剪切稀化流体。还讨论了流体流变学对剪切应力分布的影响。我们相信,研究流体流变学的影响对于设计由电渗流驱动的基于软通道的 Lab-on-CD 系统以及处理血液、唾液或粘液等流变复杂的生物流体非常重要。

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