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Numerical Simulation of Heat Transfer in Mixed Electroosmotic Pressure-Driven Flow in Straight Microchannels

机译:直管微通道内混合电渗压力驱动流传热的数值模拟

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This paper investigates two-dimensional, time-independent elecroosmotic pressure-driven flow generated by a direct current electric potential with asymmetrical and symmetrical zeta potential distributions along the microchannel walls. Fluid flow through the horizontal microchannel is simulated using a numerical method. Two different cases are proposed to study the effect of electric potential on the flow field. First, negative electric potential is applied on the microchannel walls. In this case, large segments with negative electric potential are initially placed on the first half of the microchannel walls with two different arrangements. Afterward, smaller segments with negative electric potential are placed on the microchannel walls. Next, negative electric potential is replaced by positive electric potential on the microchannel walls in the similar manner. It is shown that applying positive potential on the walls contributes to the localized circular flows within the microchannel. The size of these vortices is also proved to considerably vary with the applied zeta potential magnitude. Finally, the effect of wall zeta potential on heat transfer was studied for all the four types of microchannels by imposing a constant uniform heat flux on the walls. The Nusselt number plots indicate how heat transfer varies along the microchannel walls. The Nusselt number fluctuation can be observed where the positive and negative electric potentials are located.
机译:本文研究由直流电沿微通道壁分布的不对称和对称zeta电位分布所产生的二维,与时间无关的电渗透压力驱动流。使用数值方法模拟通过水平微通道的流体流动。提出了两种不同的情况来研究电势对流场的影响。首先,在微通道壁上施加负电势。在这种情况下,最初将具有负电位的大段以两种不同的方式放置在微通道壁的前半部分。之后,将具有负电位的较小段放置在微通道壁上。接下来,以类似方式用微通道壁上的正电位代替负电位。结果表明,在壁上施加正电势有助于微通道内的局部循环流。这些涡旋的大小也被证明会随着所施加的ζ电势大小而显着变化。最后,通过在壁上施加恒定的均匀热通量,研究了所有四种类型的微通道的壁Zeta电势对传热的影响。努塞尔数图表明了传热沿微通道壁的变化。可以在正电位和负电位所在的位置观察到Nusselt数波动。

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