Impact of electro-osmotic, activation energy and chemical reaction on Sisko fluid over Darcy–Forchheimer porous stretching cylinder

S. S. Nisha, Poulomi De
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Abstract

This study provides numerical solution for two-dimensional electro-osmotically motivated electro-magneto-hydrodynamic Sisko fluid through an elongating porous cylinder. The electro-osmotic, activation energy with chemical reaction are also interpreted for this flow model. The numerical equations that govern this flow problem are renewed into dimensionless form by applying appropriate transformations exploiting Runge–Kutta–Fehlberg fifth order through shooting technique method. The after-effects are illustrated as graphs for the concerned physical parameters and their impact on convection and conduction is also studied. The velocity rises for electro-osmotic parameter whereas drops for magnetic and porous parameter. The temperature shows an increasing profile for the curvature, electric and thermal conductivity parameter while decreases for Prandtl number. The concentration of nanoparticles in the fluid boosts for activation energy but deflates for curvature parameter. The present findings appear to be in good accord when compared to earlier published studies. Numerous opportunities and applications are presented by applying electro-osmotic forces to non-Newtonian fluid flow, especially in the fields of nanotechnology, electro-kinetics and micro-fluids. The current study can be applied to design effective electro-magnetic devices, particularly in certain thermal transport characteristic regime. The main findings demonstrate the great utility of electro-osmosis in micro-fluidic devices, chemical analysis, soil analysis and cement slurries for managing flow and heat transmission.
达西-福克海默多孔拉伸圆柱体上的电渗、活化能和化学反应对西斯科流体的影响
本研究提供了二维电-渗透动机电-磁-流体动力学西斯科流体流经拉长多孔圆柱体的数值解法。此外,还对该流动模型的电-渗透、化学反应活化能进行了解释。通过射击技术方法,利用 Runge-Kutta-Fehlberg 五阶进行适当变换,将控制该流动问题的数值方程更新为无量纲形式。对相关物理参数的后效应进行了图表说明,并研究了它们对对流和传导的影响。电渗参数的速度上升,而磁性和多孔参数的速度下降。曲率、电导率和热导率参数的温度曲线呈上升趋势,而普朗特数的温度曲线呈下降趋势。流体中纳米粒子的浓度会提高活化能,但会降低曲率参数。与之前发表的研究结果相比,目前的发现似乎非常吻合。将电渗透力应用于非牛顿流体流动,特别是在纳米技术、电动力学和微流体领域,会带来许多机遇和应用。目前的研究可用于设计有效的电磁设备,特别是在某些热传输特性机制中。主要研究结果表明,电渗在微流体设备、化学分析、土壤分析和水泥浆的流动和热传输管理中具有巨大的实用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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