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首页> 外文期刊>International journal of numerical methods for heat & fluid flow >Study of electrokinetic effects for heat transfer in microchannel with sinusoidal thermal boundary conditions
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Study of electrokinetic effects for heat transfer in microchannel with sinusoidal thermal boundary conditions

机译:正弦热边界条件下微通道传热的电动效应研究

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PurposeThe purpose of this study is to obtain the numerical as well as regularity results for the nonlinear elliptic set of equations arising in the study of fluid flow in microchannel induced by the pressure in the presence of interfacial electrokinetic effects.Design/methodology/approachFor the numerical study, the authors implemented traditional FDM approach, and for the regularity results they used the classical energy estimates. The interfacial electrokinetic effects result in an additional source term in classical momentum equation, hence affecting the characteristics of the flow and heat transfer. The sinusoidal temperature variation is assumed on side walls.FindingsThe results were obtained for various combinations of physical parameters appearing in the governing equations. This study concludes that in the presence of electric double layer, the average heat transfer rate reduces along with larger values of Reynolds number. It is observed that the heat transfer increases with the increase in amplitude ratio and phase deviation. The flow behavior and heat transfer rate inside the microchannel are also strongly affected by the presence of (kappa).Originality/valueTo the best of the authors knowledge, the problem of heat transfer through microchannel in combination with sinusoidal temperature variation at boundary with electric double layer effects has not been considered previously. Hence, this paper focuses on the influence of the sinusoidal boundary temperature distributions on both sidewalls of a rectangular microchannel through parallel plates with electrokinetic effects on the pressure-driven laminar flow. In addition, a detailed mathematical analysis is also to be carried out to verify the regularity of this model with the proposed boundary conditions. The study used the classical energy method to get the regularity results.
机译:目的本研究的目的是获得在存在界面电动势的情况下由压力引起的微通道内流体流动研究中产生的非线性椭圆方程组的数值和正则结果。设计/方法/方法在研究中,作者实施了传统的FDM方法,并针对规律性结果使用了经典的能量估计。界面电动势会在经典动量方程中产生一个附加的源项,从而影响流动和传热的特性。在侧壁上假定为正弦温度变化。结果对于控制方程中出现的各种物理参数组合,获得了结果。这项研究得出的结论是,在存在双电层的情况下,平均传热速率会随着雷诺数的增加而降低。观察到,随着振幅比和相位偏差的增加,热传递也增加。 (kappa)的存在也极大地影响了微通道内部的流动行为和传热速率。原始数据/值据作者所知,通过微通道进行传热的问题与电双层边界处的正弦温度变化相结合以前没有考虑过层效应。因此,本文重点研究正弦边界温度分布对矩形微通道的两个侧壁的影响,这些矩形侧壁通过平行板对压力驱动的层流具有电动效应。此外,还将进行详细的数学分析,以验证该模型在提出的边界条件下的规律性。该研究使用经典能量方法获得规律性结果。

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