Chein Reiyu, Yang Yeong Chin, Lin Yushan
Department of Mechanical Engineering, National Chung Hsing University, Taichung City, Taiwan, P. R. China.
Electrophoresis. 2006 Feb;27(3):640-9. doi: 10.1002/elps.200500314.
In this study we present simple analytical models that predict the temperature and pressure variations in electrokinetic-driven microchannel flow under the Joule heating effect. For temperature prediction, a simple model shows that the temperature is related to the Joule heating parameter, autothermal Joule heating parameter, external cooling parameter, Peclet number, and the channel length to channel hydraulic diameter ratio. The simple model overpredicted the thermally developed temperature compared with the full numerical simulation, but in good agreement with the experimental measurements. The factors that affect the external cooling parameters, such as the heat transfer coefficient, channel configuration, and channel material are also examined based on this simple model. Based on the mass conservation, a simple model is developed that predicts the pressure variations, including the temperature effect. An adverse pressure gradient is required to satisfy the mass conservation requirement. The temperature effect on the pressure gradient is via the temperature-dependent fluid viscosity and electroosmotic velocity.
在本研究中,我们提出了简单的分析模型,用于预测焦耳热效应下电动驱动微通道流中的温度和压力变化。对于温度预测,一个简单模型表明,温度与焦耳热参数、自热焦耳热参数、外部冷却参数、佩克莱数以及通道长度与通道水力直径之比有关。与全数值模拟相比,该简单模型高估了热充分发展时的温度,但与实验测量结果吻合良好。基于该简单模型,还研究了影响外部冷却参数的因素,如传热系数、通道结构和通道材料。基于质量守恒,开发了一个预测压力变化的简单模型,其中包括温度效应。需要一个不利的压力梯度来满足质量守恒要求。温度对压力梯度的影响是通过与温度相关的流体粘度和电渗速度实现的。