具有空间效应的疏水微通道中振荡电渗透粘电流动的质量传递

IF 1.3 4区 工程技术 Q3 MECHANICS
R. Baños, J. Arcos, O. Bautista, F. Méndez
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引用次数: 0

摘要

我们对振荡电渗流(OEOF)的粘电效应和空间效应及其对被动溶质通过疏水微通道的质量传输的影响进行了数值研究。在电渗的许多应用中,ζ电位高达100–200 可以找到mV;在这种情况下,Debye–Hückel近似不再有效,必须考虑空间效应,因为有限尺寸的离子靠近微通道壁。除了先前的效应之外,由于双电层中感应的强电势的粘电效应,局部粘度可以增加。早期的工作已经研究了OEOF引起的传质;然而,综合效应的影响没有被考虑在内。这项研究表明,在粘电效应和空间效应以及微通道疏水性的适当组合下,与忽略这些效应的情况相比,质量传输可以得到控制并显著增强。对于相对较高的空间因子Γ值,发生了一种有趣的行为,其中质量输运Q~和粘电因子f~之间存在线性相关性;相反,对于低值的Γ,关系Q~−f~是非线性的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mass transport in oscillatory electroosmotic viscoelectric flow in a hydrophobic microchannel with steric effect
We conduct a numerical study of viscoelectric and steric effects on an oscillatory electroosmotic flow (OEOF) and their impact on the mass transport of a passive solute through a hydrophobic microchannel. In many applications of electroosmosis, zeta potentials as high as 100–200 mV can be found; in such a situation, the Debye–Hückel approximation is no longer valid, and the steric effect must be considered because the crowding of finite-sized ions close to the microchannel walls. In addition to the previous effect, the local viscosity can be increased due to the viscoelectric effect for strong electric potentials induced in the electric double layer. Earlier works have studied the mass transfer caused by an OEOF; however, the combined effects’ influence has not been considered. This research suggests that under an appropriate combination of the viscoelectric and steric effects, together with the microchannel hydrophobicity, the mass transport can be controlled and notably enhanced compared with the case where such effects are disregarded. An interesting behavior occurs for relatively high values of the steric factor ν, where there is a linear dependence between the mass transport Q˜ and the viscoelectric factor f˜ ; in contrast, for low values of ν, the relationship Q˜−f˜ is non-linear.
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来源期刊
Fluid Dynamics Research
Fluid Dynamics Research 物理-力学
CiteScore
2.90
自引率
6.70%
发文量
37
审稿时长
5 months
期刊介绍: Fluid Dynamics Research publishes original and creative works in all fields of fluid dynamics. The scope includes theoretical, numerical and experimental studies that contribute to the fundamental understanding and/or application of fluid phenomena.
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