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基于绝缘体的介电泳微器件中焦耳热效应的数值模拟。

Numerical modeling of Joule heating effects in insulator-based dielectrophoresis microdevices.

机构信息

Department of Mechanical Engineering, Clemson University, Clemson, SC, USA.

出版信息

Electrophoresis. 2013 Mar;34(5):674-83. doi: 10.1002/elps.201200501.

Abstract

Insulator-based DEP (iDEP) has been established as a powerful tool for manipulating particles in microfluidic devices. However, Joule heating may become an issue in iDEP microdevices due to the local amplification of electric field around the insulators. This results in an electrothermal force that can manifest itself in the flow field in the form of circulations, thus affecting the particle motion. We develop herein a transient, 3D, full-scale numerical model to study Joule heating and its effects on the coupled transport of charge, heat, and fluid in an iDEP device with a rectangular constriction microchannel. This model is validated by comparing the simulation results with the experimentally obtained fluid flow patterns and particle images that were reported in our recent works. It identifies a significant difference in the time scales of the electric, temperature, and flow fields in iDEP microdevices. It also predicts the locations of electrothermal flow circulations in different halves of the channel at the upstream and downstream of the constriction.

摘要

基于绝缘子的介电泳(iDEP)已被确立为在微流控设备中操纵粒子的强大工具。然而,由于绝缘子周围电场的局部放大,焦耳加热可能成为 iDEP 微器件中的一个问题。这导致了电热力,可以以循环的形式在流场中表现出来,从而影响粒子的运动。我们在此开发了一个瞬态、三维、全尺度数值模型,以研究焦耳加热及其对带有矩形收缩微通道的 iDEP 器件中电荷、热和流体的耦合输运的影响。该模型通过将模拟结果与我们最近的工作中报道的实验获得的流体流动模式和粒子图像进行比较来验证。它确定了 iDEP 微器件中电场、温度和流场的时间尺度有显著差异。它还预测了在收缩前后的通道的不同半部分中电热流循环的位置。

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