Mass-Based Hybrid Nanofluid Model for Thermal Radiation Analysis of MHD Flow over a Wedge Embedded in Porous Medium

IF 1.7 Q2 ENGINEERING, MULTIDISCIPLINARY Journal of Engineering Pub Date : 2024-05-17 DOI:10.1155/2024/9528362
Sushila Choudhary, Vijendra Kumar Jarwal, Prasun Choudhary, K. Loganathan, Balachandra Pattanaik
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Abstract

This study addresses the intricate interplay of magnetohydrodynamics (MHD), thermal radiation, and porous media effects, which are crucial in numerous engineering applications, including aerospace, energy systems, and environmental processes. The development of a mass-based hybrid nanofluid model signifies a novel approach, potentially yielding more accurate predictions and insights into the thermal behavior of fluids in diverse scenarios. Thus, the current research explores the heat transfer characteristics of a unique nanofluid known as TiO2 (titania)-CuO (copper oxide)/H2O (water) hybrid nanofluid. This nanofluid flows past a static or moving wedge considering the impact of thermal radiation and magnetic field in the appearance of porous medium. To calculate the effective thermophysical attributions of the hybrid (TiO2-CuO) nanofluid, a mass-based strategy is employed. This approach involves analyzing the masses of both the first and second nanoparticles, along with the mass of the base fluid, as essential input parameters. The proposed mathematical model is modified to a dimensionless form by applying similarity transformations. The numerical solution is obtained by utilizing the bvp4c built-in function within the MATLAB environment. Graphs illustrate the influence of various parameters on temperature and velocity trends, including the magnetic field parameter and heat absorption/generation parameter as well as the thermal radiation parameter. It is noted that along with the enhancement in the values of parameters related to porous medium or magnetic field, the velocity of the hybrid nanofluid improves. This occurs when the moving wedge parameter’s value is below 1. Conversely, when the moving wedge parameter’s value exceeds 1, the velocity of the hybrid nanofluid decreases. The shape factor is more effective in the temperature profile for developed inputs of heat absorption/generation parameter. A juxtaposition of enhancement in heat transfer rate due to nanofluid (TiO2/H2O) and hybrid nanofluid (TiO2-CuO/H2O) is likewise presented. The main outcome indicates that the hybrid nanofluid exhibits superior thermal conductivity relative to the conventional nanofluid.
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基于质量的混合纳米流体模型用于多孔介质中嵌入楔形物上 MHD 流动的热辐射分析
本研究探讨了磁流体力学(MHD)、热辐射和多孔介质效应之间错综复杂的相互作用,这在航空航天、能源系统和环境过程等众多工程应用中至关重要。基于质量的混合纳米流体模型的开发标志着一种新方法的诞生,有可能对各种情况下的流体热行为进行更准确的预测和深入了解。因此,目前的研究探索了一种独特的纳米流体(TiO2(二氧化钛)-CuO(氧化铜)/H2O(水)混合纳米流体)的传热特性。考虑到多孔介质外观中热辐射和磁场的影响,这种纳米流体流过静态或移动的楔形物。为了计算混合(TiO2-CuO)纳米流体的有效热物理属性,采用了基于质量的策略。这种方法包括分析第一和第二纳米粒子的质量,以及基础流体的质量,作为基本输入参数。通过应用相似性变换,将所提出的数学模型修改为无量纲形式。数值解法是利用 MATLAB 环境中的 bvp4c 内置函数获得的。图表说明了各种参数对温度和速度趋势的影响,包括磁场参数、吸热/发热参数以及热辐射参数。我们注意到,随着多孔介质或磁场相关参数值的增加,混合纳米流体的速度也随之提高。相反,当移动楔参数的值超过 1 时,混合纳米流体的速度就会降低。在吸热/发热参数输入量增加的情况下,形状因子对温度曲线的影响更大。同样,还介绍了纳米流体(TiO2/H2O)和混合纳米流体(TiO2-CuO/H2O)提高传热速率的并列关系。主要结果表明,混合纳米流体的导热性优于传统纳米流体。
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来源期刊
Journal of Engineering
Journal of Engineering ENGINEERING, MULTIDISCIPLINARY-
CiteScore
4.20
自引率
0.00%
发文量
68
期刊介绍: Journal of Engineering is a peer-reviewed, Open Access journal that publishes original research articles as well as review articles in several areas of engineering. The subject areas covered by the journal are: - Chemical Engineering - Civil Engineering - Computer Engineering - Electrical Engineering - Industrial Engineering - Mechanical Engineering
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