Casson Magnetoconvective Nanofluid Flow Caused by An Upright Dish with Radiative Heat

IF 2.9 4区 综合性期刊 Q1 Multidisciplinary
Mizanur Rahman, Md. Yousuf Ali, R. Nasrin
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引用次数: 0

Abstract

Magnetohydrodynamics (MHD), Casson nanofluids, mixed convection, and thermal radiation are crucial in enhancing heat transfer efficiency and system performance in engineering and industry, particularly in heat exchangers and combustion systems, thereby driving technological progress and economic growth. The primary objective of this study is to explore the mixed convective heat and mass transfer in the boundary layer of Casson nanofluid flow. This flow passes through an upright dish and is subjected to an externally applied magnetic field and thermal radiation. To analyze this, suitable non-dimensional variables transform the time-dependent governing equations. The dimensionless equations are numerically solved using the explicit finite difference method. The solution convergence is ensured properly by thoroughly checking comprehensive stability and convergence criteria. This research provides detailed profiles that showcase the velocity, temperature, concentration, and isothermal distribution, along with patterns of streamlines and unique features of various flow, thermal, and concentration fields. Through a linear evaluation of the radiative heat flux, it is convincingly shown that the Lorentz force significantly influences flow profiles, ultimately leading to their reduction. The numerical results indicate that the velocity significantly increases by approximately 70.56% in the free convection area. There is a substantial increase in friction by 17.89%, demonstrating excellent flow resistance. The thermal performance also improves, showing an approximate enhancement of 12.98%, suggesting a higher heat transfer efficiency. Three new linear regression equations for multiple variables are derived. It explores the use of thermal radiation in Casson nanofluid flow over a flat plate affected by MHD, resulting in enhanced heat transfer and improved flat plate cooling.

Abstract Image

带有辐射热的直立盘引起的卡松磁对流纳米流体流动
磁流体力学(MHD)、卡松纳米流体、混合对流和热辐射对于提高工程和工业领域(尤其是热交换器和燃烧系统)的传热效率和系统性能至关重要,从而推动技术进步和经济增长。本研究的主要目的是探索 Casson 纳米流体流动边界层中的混合对流传热和传质。该流体通过一个直立的碟片,并受到外部施加的磁场和热辐射的影响。为了对其进行分析,需要对随时间变化的控制方程进行适当的非尺寸变量变换。使用显式有限差分法对无量纲方程进行数值求解。通过全面检查稳定性和收敛标准,确保了求解的收敛性。这项研究提供了详细的剖面图,展示了速度、温度、浓度和等温分布,以及各种流动、热场和浓度场的流线模式和独特特征。通过对辐射热通量的线性评估,令人信服地表明洛伦兹力对流动剖面有显著影响,并最终导致其减小。数值结果表明,在自由对流区域,速度显著增加了约 70.56%。摩擦力大幅增加了 17.89%,显示出出色的流动阻力。热性能也有所改善,大约提高了 12.98%,表明传热效率更高。得出了三个新的多变量线性回归方程。该研究探索了在受 MHD 影响的平板上的 Casson 纳米流体流动中使用热辐射的方法,从而增强了热传递并改善了平板冷却。
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来源期刊
Arabian Journal for Science and Engineering
Arabian Journal for Science and Engineering 综合性期刊-综合性期刊
CiteScore
5.20
自引率
3.40%
发文量
0
审稿时长
4.3 months
期刊介绍: King Fahd University of Petroleum & Minerals (KFUPM) partnered with Springer to publish the Arabian Journal for Science and Engineering (AJSE). AJSE, which has been published by KFUPM since 1975, is a recognized national, regional and international journal that provides a great opportunity for the dissemination of research advances from the Kingdom of Saudi Arabia, MENA and the world.
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