Hu Yandong, Werner Carsten, Li Dongqing
Department of Mechanical and Industrial Engineering, University of Toronto, 5 King's College Road, Toronto, Ontario, M5S 3G8, Canada.
J Colloid Interface Sci. 2004 Dec 15;280(2):527-36. doi: 10.1016/j.jcis.2004.08.011.
Surface roughness has been considered as a passive means of enhancing species mixing in electroosmotic flow through microfluidic systems. It is highly desirable to understand the synergetic effect of three-dimensional (3D) roughness and surface heterogeneity on the electrokinetic flow through microchannels. In this study, we developed a three-dimensional finite-volume-based numerical model to simulate electroosmotic transport in a slit microchannel (formed between two parallel plates) with numerous heterogeneous prismatic roughness elements arranged symmetrically and asymmetrically on the microchannel walls. We consider that all 3D prismatic rough elements have the same surface charge or zeta potential, the substrate (the microchannel wall) surface has a different zeta potential. The results showed that the rough channel's geometry and the electroosmotic mobility ratio of the roughness elements' surface to that of the substrate, epsilon(mu), have a dramatic influence on the induced-pressure field, the electroosmotic flow patterns, and the electroosmotic flow rate in the heterogeneous rough microchannels. The associated sample-species transport presents a tidal-wave-like concentration field at the intersection between four neighboring rough elements under low epsilon(mu) values and has a concentration field similar to that of the smooth channels under high epsilon(mu) values.
表面粗糙度被视为通过微流体系统在电渗流中增强物种混合的一种被动手段。非常有必要了解三维(3D)粗糙度和表面非均匀性对通过微通道的电动流动的协同效应。在本研究中,我们开发了一个基于三维有限体积的数值模型,以模拟在狭缝微通道(由两个平行板之间形成)中的电渗传输,该微通道壁上对称和不对称地排列着许多非均匀棱柱形粗糙度元件。我们认为所有三维棱柱形粗糙元件具有相同的表面电荷或zeta电位,而基底(微通道壁)表面具有不同的zeta电位。结果表明,粗糙通道的几何形状以及粗糙度元件表面与基底表面的电渗迁移率比ε(μ),对非均匀粗糙微通道中的感应压力场、电渗流模式和电渗流率有显著影响。在低ε(μ)值下,相关的样品物种传输在四个相邻粗糙元件的交叉处呈现出类似潮汐波的浓度场,而在高ε(μ)值下具有与光滑通道类似的浓度场。