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Second law analysis of MHD natural convection slip flow of Casson fluid through an inclined microchannel

机译:通过倾斜微通道的MHD自然对流滑动MHD自然对流滑动流动分析

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Purpose - Microfluidics is one of the interesting areas of the research in thermal and engineering fields due to its wide range of applications in a variety of heat transport problems such as micromixers, micropumps, cooling systems for microelectromechanical systems (MEMS) micro heat exchangers, etc. Lower cost with better thermal performance is the main objective of these devices. Therefore, in this study, the entropy generation in an electrically conducting Casson fluid flow through an inclined microchannel with hydraulic slip and the convective condition hves been numerically investigated. Aspects of viscous dissipation, natural convection, joule heating, magnetic field and uniform heat source/sink are used Design/methodology/approach - Suitable non-dimensional variables are used to reduce the non-linear system of ordinary differential equations, and then this system is solved numerically using Runge-Kutta-Fehlberg fourth fifth order method along with shooting technique. The obtained numerical solutions of the fluid velocity and temperature are used to characterize the entropy generation and Bejan number. Also, the Nusselt number and skin friction coefficient for various values of parameters are examined in detail through graphs. The obtained present results are compared with the existing one which is perfectly found to be in good agreement. Findings - It is established that the production of the entropy can be improved with the aspects of joule heating, viscous dissipation and internal heat source/sink. The entropy generation enhances for increasing values of Casson Parameter (β) and Biot number (Bi). Furthermore, it is interestingly noticed that the enhancement of Reynolds number and uniform heat source/sink shows the dual behaviour of the entropy generation due to significant influence of the viscous forces in the region close to the channel walls. It was observed that increasing behaviour of the heat transfer rate for enhancement values of the Eckert number and heat source/sink ratio parameter and the drag force are retarded with higher estimations of Reynolds number. Originality/value - Entropy generation analysis on MHD Casson fluid flow through an inclined microchannel with the aspects of convective, Joule heating, viscous dissipation, magnetism, hydraulic slip and internal heat source/sink has been numerically investigated.
机译:目的 - Microfluidics是热和工程领域研究的有趣区域之一,由于其各种热传输问题,如微观镜,微泵,微电机电系统(MEMS)微型换热器等的各种热传输问题,因此。具有更好的热性能的较低成本是这些设备的主要目标。因此,在该研究中,通过倾斜的微通道流过具有液压滑槽的倾斜微通道的熵生成,并且在数值上研究了对流条件HVE。使用粘性耗散,自然对流,焦耳加热,磁场和均匀热源/水槽的方面设计/方法/方法 - 合适的非维变量用于减少常微分方程的非线性系统,然后是该系统使用跳动-Kutta-Fehlberg第四五阶方法在数值上进行解决,以及拍摄技术。所获得的流体速度和温度的数值溶液用于表征熵生成和BEJAN数。此外,通过图表详细检查了各种参数值的露体数量和皮肤摩擦系数。将获得的现有结果与现有的结果进行比较,这是一个完美的达成一致意见。调查结果 - 建立了纱线加热,粘性耗散和内部热源/水槽的方面可以改善熵的生产。熵产生增加Casson参数(β)和Biot数(Bi)的增加。此外,有趣的是,雷诺数和均匀热源/水槽的增强显示了由于靠近通道壁的区域中的粘性力的显着影响而产生的熵产生的双重行为。观察到,对于埃克特数和热源/沉降比参数的增强值和拖曳力的增加行为以及雷诺数的估计值延迟。在数值上研究了具有对流,焦耳加热,粘性耗散,磁力,液压滑动和内部热源/水槽的倾斜微通道的MHD Casson流体流过倾斜微通道的熵生成分析。

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