Santos J Jobim, Storey Brian D
Franklin W. Olin College of Engineering, Needham, Massachusetts 02492, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2008 Oct;78(4 Pt 2):046316. doi: 10.1103/PhysRevE.78.046316. Epub 2008 Oct 31.
This work considers the stability of an electro-osmotic microchannel flow with streamwise electrical conductivity gradients, a configuration common in microfluidic applications such as field amplified sample stacking. Previous work on such flows has focused on how streamwise conductivity gradients set a nonuniform electro-osmotic velocity which results in dispersion of the conductivity field. However, it has been known for many years that electric fields can couple with conductivity gradients to generate unstable flows. This work demonstrates that at high electric fields such an electrohydrodynamic instability arises in this configuration and the basic mechanisms are explored through numerical simulations. The instability is unique in that the nonuniform electro-osmotic flow sets the shape of the underlying conductivity field in a way that makes it susceptible to instability. While nonuniform electro-osmotic flow sets the stage, the instability is ultimately the result of electric body forces due to slight departure from electroneutrality in the fluid bulk. A simple stability map is created where two dimensionless numbers can predict system stability reasonably well, even though the system formally depends on six dimensionless groups.
本文研究了具有流向电导率梯度的电渗微通道流动的稳定性,这种配置在微流体应用中很常见,例如场放大样品堆积。此前关于此类流动的研究主要集中在流向电导率梯度如何设定不均匀的电渗速度,进而导致电导率场的扩散。然而,多年来人们已经知道电场可以与电导率梯度相互作用产生不稳定流动。本文表明,在高电场下,这种配置中会出现一种电流体动力学不稳定性,并通过数值模拟探索了其基本机制。这种不稳定性的独特之处在于,不均匀的电渗流以一种使其易受不稳定性影响的方式设定了基础电导率场的形状。虽然不均匀的电渗流是引发条件,但这种不稳定性最终是由于流体主体中轻微偏离电中性而产生的电体力导致的。创建了一个简单的稳定性图,其中两个无量纲数可以较好地预测系统稳定性,尽管该系统形式上依赖于六个无量纲组。