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滑移辅助下非对称加热微通道中电渗流的不可逆性分析:焦耳加热和共轭传热的影响。

Irreversibility analysis in a slip aided electroosmotic flow through an asymmetrically heated microchannel: The effects of joule heating and the conjugate heat transfer.

机构信息

Department of Mechanical Engineering, Indian Institute of Technology Guwahati, Assam, 781039, India.

Department of Mechanical Engineering, Indian Institute of Technology Guwahati, Assam, 781039, India.

出版信息

Anal Chim Acta. 2019 Jan 3;1045:85-97. doi: 10.1016/j.aca.2018.08.058. Epub 2018 Sep 3.

DOI:10.1016/j.aca.2018.08.058
PMID:30454576
Abstract

In this article, we discuss about the entropy generation minimization in a slip-modulated electrically actuated transport through an asymmetrically heated microchannel. While investigating the underlying thermo-hydrodynamics towards minimizing the irreversibility of the system under present consideration, we take the combined effects of Joule heating and the conjugate transfer of heat into account in this analysis. We primarily focus to tune the relevant thermo-physical as well as geometrical parameters towards minimizing the global irreversibility of the system. We show that the cooperative-correlative effects of the temperature gradient (between walls and fluid) and viscous dissipation in the system, as modulated by the slipping hydrodynamics stemming from the interfacial electrochemistry and Joule heating effects originating from higher conduction currents, bring in a change in the underlying thermal transport characteristics of heat, leading to an alteration in thermodynamic irreversibility in the system. We unveil optimum values of geometrical and thermo-physical parameters for which a change in thermal transport of heat as triggered by the viscous dissipation and joule heating effect leads to a minimum entropy generation in the system. Moreover, we show that the ionic concentration of the electrolyte present in the fluid can fetch a reduction in the irreversibility as well. We believe that the insights gained from this analysis may be useful for constructing the well-optimized futuristic micro heat exchanging systems/devices, typically used in MEMS.

摘要

在本文中,我们讨论了通过非对称加热微通道中的滑动调制电动传输的熵产生最小化。在研究当前考虑的系统不可逆性最小化的基础热力学时,我们在分析中考虑了焦耳加热和热共轭传递的综合影响。我们主要关注调整相关的热物理和几何参数,以最小化系统的整体不可逆性。我们表明,系统中温度梯度(壁和流体之间)和粘性耗散的协同相关效应,通过界面电化学产生的滑动流体动力学以及源自更高传导电流的焦耳加热效应进行调制,会改变热的基本热传输特性,导致系统中热力学不可逆性的改变。我们揭示了几何和热物理参数的最佳值,其中粘性耗散和焦耳加热效应触发的热传输变化会导致系统中熵产生最小化。此外,我们表明流体中电解质的离子浓度也可以降低不可逆性。我们相信,从这项分析中获得的见解可能有助于构建用于 MEMS 的未来优化微热交换系统/设备。

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