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Entropy generation in MHD Williamson nanofluid over a convectively heated stretching plate with chemical reaction

机译:MHD威廉姆森的熵生成纳米流体在具有化学反应的定性加热伸展板上

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This investigation focuses on the influence of thermal radiation on the magnetohydrodynamic flow of a Williamson nanofluid over a stretching sheet with chemical reaction. The phenomena at the stretching wall assume convective heat and mass exchange. The novelty of the present study is the thermodynamic analysis in the nonlinear convective flow of a Williamson nanofluid. The resulting set of the differential equations are solved by the homotopy analysis method. We explored the impacts of the emerging parameters on flow, heat, and mass characteristics, including the rate of entropy generation and the Bejan number through graphs, and extensive discussions are provided. The expressions for skin friction, Nusselt and the Sherwood numbers are also analyzed and explored through tables. It is concluded that the rate of mass transfer may be maximized with the variation of the Williamson and chemical reaction parameters. Moreover, the entropy generation rate and the Bejan number are augmented via increasing the Williamson parameter.
机译:本研究侧重于热辐射对具有化学反应的拉伸板上威廉姆森纳米流体磁力流体流动的影响。拉伸墙上的现象假设对流热和配方。本研究的新颖性是威廉姆森纳米流体的非线性对流流动的热力学分析。通过同型分析方法解决了所得到的微分方程。我们探讨了新兴参数对流动,热量和质量特征的影响,包括通过图形的熵生成和BEJAN数量的速度,以及提供了广泛的讨论。还通过桌子分析和探索皮肤摩擦,新摩泽尔和夏伍德数目的表达。结论是,随着威廉姆森和化学反应参数的变异,可以最大化传质速率。此外,通过增加威廉姆森参数来增强熵生成率和Bejan号。

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