麦克斯韦纳米流体在不同厚度的拉伸表面上流动时与热通量和化学反应的线性回归分析

Aamir Ali, Muhammad F. Afzaal, M. Sulaiman, S. Hussain, M. Ashraf
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引用次数: 0

摘要

非牛顿材料一直是吸引研究人员的一个话题,因为实验室和工业过程中会用到这些流体。非牛顿流体根据其特性可分为多种类型。在本研究中,我们分析了麦克斯韦流体模型,因为这种非牛顿流体材料具有独特的性质和应用。我们考虑了纳米流体的 Buongiorno 模型,这是一种两相模型,考虑了布朗运动和热泳对纳米粒子在流体中传输的影响。假定一个拉伸表面容纳化学反应流体。此外,研究还考虑了热流和磁场的影响。各种物理因素对流场的影响均以图表形式呈现。利用线性回归和数据点方法,研究了表面传热和传质速率等物理参数之间的关系。使用 t 检验法研究了各种物理参数之间的关系。麦克斯韦流体参数影响表面的热传递。随着磁场和热源参数的增加,传热速率降低。增加德博拉数、化学反应参数和磁场参数会提高表面的传质速率。流体速度随着磁场和麦克斯韦流体参数的增加而降低。热源参数会提高流体温度,而加入化学反应参数则会降低纳米粒子浓度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Linear regression analysis of MHD Maxwell nanofluid flow over a stretched surface of varying thickness with heat flux and chemical reaction
Non-Newtonian materials have been an appealing topic for researchers because of the variety of laboratory and industrial process involving these fluids. There are several kinds of non-Newtonian fluids classified according to their properties. In this study, the Maxwell fluid model is analyzed due to the unique properties and applications of this non-Newtonian material. We have considered the Buongiorno model for nanofluid, which is a two-phase model that accounts for the effects of Brownian motion and thermophoresis on the transport of nanoparticles in a fluid. A stretching surface holding a chemically reactive fluid is assumed. In addition, the study also considers the impacts of heat flux and magnetic fields. The influence of various physical factors on the flow fields is presented and graphically highlighted. Using linear regression and the data point approach, the relationship between the physical parameters, such as rate of heat and mass transfer, at the surface is investigated. The relationship between the various physical parameters was investigated using the t-test approach. The Maxwell fluid parameter influences heat transmission at the surface. As the magnetic field and heat source parameters increases, the rate of heat transfer decreases. Increasing the Deborah number, chemical reaction parameter and magnetic field parameter enhances the mass transfer rate at the surface. The fluid’s velocity decreases with rising magnetic field and Maxwell fluid parameters. The heat source parameter elevates fluid temperature, while inclusion of the chemical reactions parameter reduces nanoparticle concentration.
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