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Mixing enhancement of low-Reynolds electro-osmotic flows in microchannels with temperature-patterned walls

机译:具有温度模式壁的微通道中低雷诺兹电渗流的混合增强

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Mixing becomes challenging in microchannels because of the low Reynolds number. This study aims to present a mixing enhancement method for electro-osmotic flows in microchannels using vortices caused by temperature-patterned walls. Since the fluid is non-isothermal, the conventional form of Nernst- Planck equation is modified by adding a new migration term which is dependent on both temperature and internal electric potential gradient. This term results in the so-called thermo-electrochemical migration phenomenon. The coupled Navier-Stokes, Poisson, modified Nernst-Planck, energy and advection- diffusion equations are iteratively solved by multiple lattice Boltzmann methods to obtain the velocity, internal electric potential, ion distribution, temperature and species concentration fields, respectively. To enhance the mixing, three schemes of temperature-patterned walls have been considered with symmetrical or asymmetrical arrangements of blocks with surface charge and temperature. Modeling results show that the asymmetric arrangement scheme is the most efficient scheme and enhances the mixing of species by 39% when the Reynolds number is on the order of 10~(-3). Current results may help improve the design of micro-mixers at low Reynolds number.
机译:由于雷诺数低,在微通道中混合变得具有挑战性。这项研究旨在提出一种混合增强方法,该方法利用温度模式壁引起的涡旋来改善微通道中的电渗流。由于流体是非等温的,因此可以通过添加新的迁移项来修改常规形式的Nernst-Planck方程,该迁移项既取决于温度又取决于内部电势梯度。该术语导致所谓的热电化学迁移现象。耦合的Navier-Stokes,Poisson,修正的Nernst-Planck方程,能量方程和对流扩散方程通过多格子Boltzmann方法迭代求解,分别获得了速度,内部电势,离子分布,温度和物种浓度场。为了增强混合效果,考虑了三种模式的温度图案墙,对称或不对称排列的块具有表面电荷和温度。建模结果表明,当雷诺数在10〜(-3)数量级时,非对称排列方案是最有效的方案,将物种混合提高了39%。当前的结果可能有助于改进低雷诺数下的微型混合器的设计。

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