A Discussion on the Critical Electric Rayleigh Number for AC Electrokinetic Flow of Binary Fluids in a Divergent Microchannel

IF 3.9 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Langmuir Pub Date : 2025-01-09 DOI:10.1021/acs.langmuir.4c03492
Jin’an Pang, Yu Han, Bo Sun, Wei Zhao
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Abstract

Electrokinetic (EK) flow is a type of flow driven or manipulated by electric body forces, influenced by various factors such as electric field intensity, electric field form, frequency, electric permittivity/conductivity, fluid viscosity, etc. The diversity of dimensionless parameters, such as the electric Rayleigh number, complicates the comparison of the EK flow stability. Consequently, comparing the performance and cost of micromixers or reactors based on EK flow is challenging, posing an obstacle to their industrial and engineering applications. In this investigation, we theoretically derived a new electric Rayleigh number (Rae) that quantifies the relationship among electric body forces, fluid viscosity, and ion diffusivity, based on a tanh model of electric conductivity distribution. The calculation results indicate that the new Rae exhibits richer variation with the control parameters and better consistency with previous experimental reports. We further conducted experimental studies on the critical electric Rayleigh number (Raec) of the AC EK flow of binary fluids in a divergent microchannel. The experimental variations align well with the theoretical predictions, particularly the existence of an optimal AC frequency and electric conductivity ratio, demonstrating that the tanh model can better elucidate the underlying physics of EK flow. With the new electric Rayleigh number, we found that EK flow in the designed divergent microchannel has a much smaller Raec than previously reported, indicating that EK flow is more unstable and thus more suitable for applications in micromixers or reactors in industry and engineering.

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发散微通道中二元流体交流电动力学流动临界电瑞利数的讨论
电动(EK)流是一种由电体力驱动或操纵的流,受电场强度、电场形式、频率、电介电常数/电导率、流体粘度等多种因素的影响。无量纲参数的多样性,如电瑞利数,使EK流动稳定性的比较复杂化。因此,比较基于EK流的微混合器或反应器的性能和成本是具有挑战性的,这对它们的工业和工程应用构成了障碍。在这项研究中,我们从理论上推导了一个新的电瑞利数(Rae),该数基于电导率分布的tanh模型,量化了电体力、流体粘度和离子扩散率之间的关系。计算结果表明,新Rae随控制参数的变化更大,与以往实验报告的一致性更好。我们进一步对二元流体在发散微通道中AC - EK流动的临界电瑞利数(Raec)进行了实验研究。实验结果与理论预测一致,特别是存在最佳交流频率和电导率比,表明tanh模型可以更好地解释EK流动的潜在物理特性。通过新的电瑞利数,我们发现设计的发散型微通道中的EK流动的Raec比之前报道的要小得多,这表明EK流动更不稳定,因此更适合工业和工程中的微混合器或反应器应用。
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来源期刊
Langmuir
Langmuir 化学-材料科学:综合
CiteScore
6.50
自引率
10.30%
发文量
1464
审稿时长
2.1 months
期刊介绍: Langmuir is an interdisciplinary journal publishing articles in the following subject categories: Colloids: surfactants and self-assembly, dispersions, emulsions, foams Interfaces: adsorption, reactions, films, forces Biological Interfaces: biocolloids, biomolecular and biomimetic materials Materials: nano- and mesostructured materials, polymers, gels, liquid crystals Electrochemistry: interfacial charge transfer, charge transport, electrocatalysis, electrokinetic phenomena, bioelectrochemistry Devices and Applications: sensors, fluidics, patterning, catalysis, photonic crystals However, when high-impact, original work is submitted that does not fit within the above categories, decisions to accept or decline such papers will be based on one criteria: What Would Irving Do? Langmuir ranks #2 in citations out of 136 journals in the category of Physical Chemistry with 113,157 total citations. The journal received an Impact Factor of 4.384*. This journal is also indexed in the categories of Materials Science (ranked #1) and Multidisciplinary Chemistry (ranked #5).
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