Numerical Examination of a Squeezing Casson Hybrid Nanofluid Flow Considering Thermophoretic and Internal Heating Mechanisms

A. El Harfouf, Rachid Herbazi, Walid Abouloifa, S. Mounir, H. Mes-Adi, A. Wakif, M. Mejdal, M. Nfaoui
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Abstract

One of the main areas of study in the field is increasingly the flow of non-Newtonian fluids. These liquids find extensive use in nuclear reactors, food processing, paint and adhesives, drilling rigs, and cooling systems, among other industrial and engineering domains. However, hybrid nanofluids are crucial to the process of heat transfer. Considering this, this study investigates the motion of a Casson hybrid nanofluid squeezing flow between two parallel plates under the influence of a heat source and thermophoretic particle deposition. The Runge–Kutta–Fehlberg fourth–fifth-order approach is utilized to numerically solve the ordinary differential equations derived from the partial differential equations governing fluid flow, by utilizing suitable similarity variables. The diagrams show how several important parameters affect fluid profiles both with and without the Casson parameter. These figures demonstrate how fluid velocity increases as the local porosity parameter increases. When the heat source/sink parameter is increased, thermal dispersal increases, and when the thermophoretic parameter is increased, the concentration profile increases.
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考虑热泳和内部加热机制的挤压卡松混合纳米流体流动的数值检验
该领域的一个主要研究方向是非牛顿流体的流动。这些液体广泛应用于核反应堆、食品加工、涂料和粘合剂、钻机和冷却系统等工业和工程领域。然而,混合纳米流体对传热过程至关重要。有鉴于此,本研究探讨了卡松混合纳米流体在热源和热泳粒子沉积影响下在两平行板之间的挤压流运动。本研究采用 Runge-Kutta-Fehlberg 四阶-五阶方法,利用适当的相似变量,对流体流动偏微分方程推导出的常微分方程进行数值求解。图表显示了几个重要参数在有卡松参数和没有卡松参数的情况下对流体剖面的影响。这些图表展示了流体速度是如何随着局部孔隙度参数的增加而增加的。当热源/散热参数增加时,热扩散增加;当热泳参数增加时,浓度剖面增加。
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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