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Electrode Cooling Effect on Out-Of-Phase Electrothermal Streaming in Rotating Electric Fields

机译:电极冷却对旋转电场中异相电热流的影响

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摘要

In this work, we focus on investigating electrothermal flow in rotating electric fields (ROT-ETF), with primary attention paid to the horizontal traveling-wave electrothermal (TWET) vortex induced at the center of the electric field. The frequency-dependent flow profiles in the microdevice are analyzed using different heat transfer models. Accordingly, we address in particular the importance of electrode cooling in ROT-ETF as metal electrodes of high thermal conductivity, while substrate material of low heat dissipation capability is employed to develop such microfluidic chips. Under this circumstance, cooling of electrode array due to external natural convection on millimeter-scale electrode pads for external wire connection occurs and makes the internal temperature maxima shift from the electrode plane to a bit of distance right above the cross-shaped interelectrode gaps, giving rise to reversal of flow rotation from a typical repulsion-type to attraction-type induction vortex, which is in good accordance with our experimental observations of co-field TWET streaming at frequencies in the order of reciprocal charge relaxation time of the bulk fluid. These results point out a way to make a correct interpretation of out-of-phase electrothermal streaming behavior, which holds great potential for handing high-conductivity analytes in modern microfluidic systems.
机译:在这项工作中,我们专注于研究旋转电场中的电热流(ROT-ETF),主要关注在电场中心引起的水平行波电热(TWET)涡流。使用不同的传热模型分析了微型设备中与频率相关的流动曲线。因此,我们特别解决了在ROT-ETF中电极冷却作为高导热率金属电极的重要性,同时采用低散热能力的基板材料来开发这种微流控芯片。在这种情况下,由于用于外部导线连接的毫米级电极垫上的外部自然对流而产生的电极阵列冷却,并使内部温度最大值从电极平面移至十字形电极间间隙正上方的一段距离,从而产生导致流体旋转从典型的排斥型向吸引型反转,这与我们对同场TWET流在一定频率下(大体流体的电荷缓和时间的倒数)的实验观察非常吻合。这些结果指出了一种正确解释异相电热流行为的方法,该方法对于处理现代微流体系统中的高电导率分析物具有巨大的潜力。

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