Department of Mechanical Engineering, Indian Institute of Technology, Kharagpur-721302, India.
Langmuir. 2011 Oct 4;27(19):12243-52. doi: 10.1021/la202273e. Epub 2011 Sep 9.
In this work, we explore the possibilities of utilizing the combined consequences of interfacial electrokinetics and rheology toward augmenting the energy transfer efficiencies in narrow fluidic confinements. In particular, we consider the exploitation of steric effects (i.e., effect of finite size of the ionic species) in non-Newtonian fluids over small scales, to report dramatic augmentations in the streaming potential, for shear-thickening fluids. We first derive an expression for the streaming potential considering strong electrical double layer interactions in the confined flow passage and the consequences of the finite conductance of the Stern layer, going beyond the Debye-Hückel limit. With a detailed accounting for the excluded volume effects of the ionic species and their interaction with pertinent interfacial phenomena of special type of rheological fluids such as the power law fluids in the above-mentioned formalism, we demonstrate that a confluence of the steric interactions with the non-Newtonian transport characteristics may result in giant augmentations in the energy transfer efficiency for shear-thickening fluids under appropriate conditions.
在这项工作中,我们探索了利用界面动力学和流变学的综合影响来提高狭窄流道中能量传递效率的可能性。具体而言,我们考虑在小尺度上利用非牛顿流体中的空间位阻效应(即离子种类的有限大小的影响),以报告剪切增稠流体中流动电势的显著增强。我们首先在受限流道中考虑强电双层相互作用以及斯特恩层有限电导的影响,推导出一个考虑强电双层相互作用的流动电势表达式,超出了德拜-休克尔极限。通过在上述形式主义中详细考虑离子种类的排斥体积效应及其与特殊类型流变学流体(如幂律流体)的相关界面现象的相互作用,我们证明在适当的条件下,空间位阻相互作用与非牛顿输运特性的融合可能导致剪切增稠流体的能量传递效率发生巨大增强。