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Streaming Electric Potential in Pressure-Driven Flows Through Reservoir-Connected Microchannels

机译:通过储层相连的微通道,在压力驱动流中产生电势

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摘要

Electrical power generation employing pressure-driven flows is a fundamental problem in microfluidics. In the present work, analytical and numerical analyses are performed to study the interplaying effects of electrolyte motion with the associated electrical current in a flat microchannel with and without fluid reservoirs. The modified Navier-Stokes equations as well as a Poisson equation for the distribution of electric potential and the Nernst-Planck equations for the distribution of charge densities are solved for the steady flow of a Newtonian liquid. The results show that for a pressure-driven flow, an electric potential is induced due to the motion of charged particles, which increases linearly along the microchannel. This streaming potential generates an opposing conduction current in the core region of the channel as well as in the immediate vicinity of the walls, where the streaming current is negligible. The streaming potential varies in a nonlinear manner with the zeta potential at the walls such that a maximum potential exists at a certain zeta potential. The maximum potential is also observed to increase with both the applied pressure difference and the electric double layer thickness in the range studied. The presence of reservoirs adds significant complexity to this electrokinetic flow.
机译:利用压力驱动流的发电是微流体学中的基本问题。在目前的工作中,进行分析和数值分析以研究在具有和不具有流体储器的平坦微通道中电解质运动与相关电流的相互作用。对于牛顿液体的稳定流动,求解了改进的Navier-Stokes方程以及用于电势分布的Poisson方程和用于电荷密度分布的Nernst-Planck方程。结果表明,对于压力驱动的流,由于带电粒子的运动而感应出电势,该电势沿着微通道线性增加。该流动电势在通道的核心区域以及在壁的附近产生了相反的传导电流,在壁的附近,流动电流可以忽略。流动电势随着壁处的ζ电势以非线性方式变化,使得最大电势存在于特定的ζ电势处。在所研究的范围内,还观察到最大电势随施加的压力差和双电层厚度的增加而增加。储液器的存在大大增加了这种电动流动的复杂性。

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