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Electroosmotic flow of Bingham plastic ionic liquids driven by peristaltic pumping

机译:Bingham塑料离子液体的电渗流动由蠕动泵浦驱动

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An analytical study for electroosmotic flow of Bingham plastic ionic liquids driven by peristaltic pumping through a microchannel is investigated. The Poisson-Boltzmann equation for electric potential distribution is implemented to accommodate the electrical double layer in the microchannel. Boundary layer flow model is simplified under the low Reynolds number and long wavelength approximations. The solution of the electrical potential is based on the Debye-Huckel approximation for a symmetric (Z: Z) electrolyte solution. Closed form solutions for axial velocity, pressure gradient, pressure rise along one wavelength and stream function are derived. To examine the influence of physical parameters like Bingham plug flow width, electroosmotic parameter and Helmholtz-Smoluchowski velocity on pumping characteristics, computational results are illustrated. With vanishing yield stress, the Newtonian case is retrieved. An increase in plug flow width is observed to decrease volumetric flow rate and has a varied influence on the pressure rise depending on whether the flow is in the free pumping or pumping region. The findings of this study may useful in designing the microfluidics peristaltic pumps which often required to minimize the circulating volume of fluid and also helping to integrate the micropumping structure into the microfluidics circuit.
机译:研究了通过微通道通过微通道驱动的Bingham塑料离子液体电渗流的分析研究。用于电势分布的Poisson-Boltzmann方程以容纳微通道中的电双层。在低雷诺数和长波长近似下简化了边界层流程模型。电势的溶液基于对称(Z:Z)电解质溶液的Deye-Huckel近似。导出轴向速度,压力梯度,沿一个波长和流功能的压力升高的闭合形式解决方案。为了检查宾厄姆塞流宽度,电渗参数和Helmholtz-Smoluchowski速度的物理参数的影响,泵送特性,说明了计算结果。随着消失的产量应力,检索牛顿案件。观察到塞流宽度的增加以降低体积流速,并且根据流动是否在自由泵送或泵浦区域中,对压力升高具有各种影响。该研究的发现可用于设计微流体蠕动泵,这些泵通常需要最小化流体的循环体积,并且还有助于将微型泵结构集成到微流体电路中。

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