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首页> 外文期刊>International Journal of Heat and Mass Transfer >Numerical study of mixing and heat transfer in mixed electroosmotic/pressure driven flow through T-shaped microchannels
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Numerical study of mixing and heat transfer in mixed electroosmotic/pressure driven flow through T-shaped microchannels

机译:T型微通道电渗/压力混合流中混合和传热的数值研究

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This paper investigates mixing and heat transfer characteristics of mixed electroosmotic-pressure driven flow within a T-shaped microchannel. Two different mechanisms were proposed to enhance mixing efficiency within the channel. First, a non-uniform DC electric potential was embedded on the horizontal section of the channel which causes the straight streamlines to deviate and thus increases interfacial contact area and mass diffusion by absorbing ions into electrodes. Next, a ribbed channel configuration was proposed. It is shown that due to separation, recirculation zones appear behind the obstacles which helps in enhancing mixing efficiency. Finally a combined effect of ribbed channel and wall zeta potential was investigated. The numerical results show that due to presence of non-uniform zeta potential, the induced vortices are pushed into the middle of the channel and thus mixing enhances drastically by using this scheme. Intensity of mixing was computed for all cases and it was found that for any Reynolds number, there exists a Schmidt number value which below that specific value, imposing electric field reduces mixing. Finally, heat transfer was studied for all introduced cases for a constant uniform heat flux imposed at the walls. The obtained local average Nusselt number indicates that employing zeta potential has an important effect on the mixture temperature within the channel and at the outlet of the channel.
机译:本文研究了在T形微通道内混合电渗压力驱动流的混合和传热特性。提出了两种不同的机制来增强通道内的混合效率。首先,不均匀的直流电势嵌入通道的水平截面,这会导致直线流线偏离,从而通过将离子吸收到电极中而增加界面接触面积和质量扩散。接下来,提出了肋状通道构造。结果表明,由于分离,再循环区域出现在障碍物的后面,这有助于提高混合效率。最后,研究了带肋通道和壁zeta电位的组合效应。数值结果表明,由于存在不均匀的zeta电位,诱发的涡流被推入通道的中部,因此使用该方案可大大增强混合效果。计算所有情况下的混合强度,发现对于任何雷诺数,都存在一个施密特值,该施密特值低于该特定值,强加电场会减少混合。最后,对所有引入的情况下的传热进行了研究,以求在壁上施加恒定恒定的热通量。所获得的局部平均努塞尔数表明,使用zeta电位对通道内和通道出口处的混合物温度具有重要影响。

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