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Brinkman-Forchheimer flow of SWCNT and MWCNT magneto-nanoliquids in a microchannel with multiple slips and Joule heating aspects

机译:微通道中的SWCNT和MWCNT磁性纳米液体的Brinkman-Forchheimer流动,具有多个滑移和焦耳加热方面

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Purpose - The microfluidics has a wide range of applications, such as micro heat exchanger, micropumps, micromixers, cooling systems for microelectronic devices, fuel cells and microturbines. However, the enhancement of thermal energy is one of the challenges in these applications. Therefore, the purpose of this paper is to enhance heat transfer in a microchannel flow by utilizing carbon nanotubes (CNTs). MHD Brinkman-Forchheimer flow in a planar microchannel with multiple slips is considered. Aspects of viscous and Joule heating are also deployed. The consequences are presented in two different carbon nanofluids. Design/methodology/approach - The governing equations are modeled with the help of conservation equations of flow and energy under the steady-state situation. The governing equations are non-dimensionalized through dimensionless variables. The dimensionless expressions are treated via Runge-Kutta-Fehlberg-based shooting scheme. Pertinent results of velocity, skin friction coefficient, temperature and Nusselt number for assorted values of physical parameters are comprehensively discussed. Also, a closed-form solution is obtained for momentum equation for a particular case. Numerical results agree perfectly with the analytical results. Findings - It is established that multiple slip effect is favorable for velocity and temperature fields. The velocity field of multi-walled carbon nanotubes (MWCNTs) nanofluid is lower than single-walled carbon nanotubes (SWCNTs)-nanofluid, while thermal field, Nusselt number and drag force are higher in the case of MWCNT-nanofluid than SWCNT-nanofluid. The impact of nanotubes (SWCNTs and MWCNTs) is constructive for thermal boundary layer growth. Practical implications - This study may provide useful information to improve the thermal management of microelectromechanical systems. Originality/value - The effects of CNTs in microchannel flow by utilizing viscous dissipation and Joule heating are first time investigated. The results for SWCNTs and MWCNTs have been compared.
机译:用途-微流体技术具有广泛的应用,例如微型热交换器,微型泵,微型混合器,用于微电子设备的冷却系统,燃料电池和微型涡轮机。然而,提高热能是这些应用中的挑战之一。因此,本文的目的是通过利用碳纳米管(CNT)增强微通道流动中的热传递。考虑了具有多个滑动的平面微通道中的MHD Brinkman-Forchheimer流动。还采用了粘性和焦耳加热方面。结果显示在两种不同的碳纳米流体中。设计/方法/方法-在稳态情况下,借助流量和能量守恒方程对控制方程建模。控制方程是通过无量纲变量进行无量纲化的。无量纲表达式通过基于Runge-Kutta-Fehlberg的拍摄方案进行处理。综合讨论了各种物理参数值的速度,皮肤摩擦系数,温度和努塞尔数的相关结果。另外,针对特定情况,针对动量方程获得了封闭形式的解。数值结果与分析结果完全吻合。研究结果-已确定多重滑移效应对速度场和温度场有利。多壁碳纳米管(MWCNTs)纳米流体的速度场比单壁碳纳米管(SWCNTs)纳米流体的速度场低,而在MWCNT纳米流体的情况下,热场,努塞尔数和拖曳力比SWCNT-纳米流体高。纳米管(SWCNT和MWCNT)的影响对于热边界层的生长具有建设性。实际意义-这项研究可能会提供有用的信息,以改善微机电系统的热管理。原创性/价值-首次研究了利用粘性耗散和焦耳加热的微通道中碳纳米管的影响。比较了SWCNT和MWCNT的结果。

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