Xuan Xiangchun
Department of Mechanical Engineering, Clemson University, Clemson, SC 29634, USA.
Electrophoresis. 2008 Jan;29(1):33-43. doi: 10.1002/elps.200700302.
Electrokinetic flow is an efficient means to manipulate liquids and samples in lab-on-a-chip devices. It has a number of significant advantages over conventional pressure-driven flow. However, there exists inevitable Joule heating in electrokinetic flow, which is known to cause temperature variations in liquids and draw disturbances to electric, flow and concentration fields via temperature-dependent material properties. Therefore, both the throughput and the resolution of analytic studies performed in microfluidic devices are affected. This article reviews the recent progress on the topic of Joule heating and its effect in electrokinetic flow, particularly the theoretical and experimental accomplishments from the aspects of fluid mechanics and heat/mass transfer. The primary focus is placed on the temperature-induced flow variations and the accompanying phenomena at the whole channel or chip level.
电动流动是在芯片实验室设备中操纵液体和样品的一种有效手段。与传统的压力驱动流动相比,它具有许多显著优势。然而,电动流动中不可避免地存在焦耳热,已知焦耳热会导致液体温度变化,并通过与温度相关的材料特性对电场、流场和浓度场产生干扰。因此,微流控设备中进行的分析研究的通量和分辨率都会受到影响。本文综述了焦耳热及其在电动流动中的效应这一主题的最新进展,特别是从流体力学和热/质传递方面的理论和实验成果。主要关注的是在整个通道或芯片层面上温度引起的流动变化及伴随现象。