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MHD couple stress nanofluid flow in a permeable wall channel with entropy generation and nonlinear radiative heat

机译:MHD耦合应力纳米流体在具有熵产生和非线性辐射热的可渗透壁通道中的流动

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In this paper, both first and second laws of thermodynamics are employed to examine the combined effects of nonlinear thermal radiation, buoyancy forces, thermophoresis and Brownian motion on entropy generation rate in hydromagnetic couple stress nanofluid flow through a vertical channel with permeable walls. The model equations of momentum, energy balance and nanoparticle concentration are obtained and tackled numerically using a shooting technique coupled with Runge-Kutta-Fehlberg integration scheme. The numerical results for velocity, temperature and nanoparticles concentration profiles are utilised to determine the skin friction, Nusselt number, Sherwood number, entropy generation rate and Bejan number. It is found that the entropy production in the flow system can be effectively minimized by regulating the values of the thermophysical parameters for efficient operation. Some other interesting results are displayed graphically and discussed quantitatively.
机译:本文采用热力学第一定律和第二定律研究非线性热辐射,浮力,热泳和布朗运动对水磁耦合应力纳米流体流经具有可渗透壁的垂直通道的熵产生率的综合影响。使用与Runge-Kutta-Fehlberg积分方案结合的射击技术,获得了动量,能量平衡和纳米粒子浓度的模型方程并进行了数值求解。利用速度,温度和纳米颗粒浓度分布的数值结果来确定皮肤摩擦,努塞尔数,舍伍德数,熵产生率和贝扬数。已经发现,通过调节热物理参数的值以有效操作,可以有效地最小化流动系统中的熵产生。其他一些有趣的结果将以图形方式显示并进行定量讨论。

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