Quadratic Thermal Convection in Magneto-Casson Fluid Flow Induced by Stretchy Material with Tiny Particles and Viscous Dissipation Effects

E. Fatunmbi, O. A. Agbolade
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Abstract

This investigation is based on the phenomenon of quadratic thermal convection in Magneto-Casson fluid flow induced by stretchy material with tiny particles and viscous dissipation effects. The study aims to understand and optimize the complex behaviour of fluid flow and heat transfer in this system, which has significant implications for engineering and industrial applications. The Magneto-Casson fluid, characterized by its non-Newtonian behaviour and yield stress, interacts with stretchy material and tiny particles, introducing unique flow characteristics and thermal properties. Viscous dissipation, resulting from internal friction, further influences the convective heat transfer process. Mathematical models are developed and solved by employing a numerical technique through the Runge-Kutta Fehlberg scheme coupled with the shooting method to investigate these phenomena comprehensively. The results are deliberated using several graphs on the dimensionless profiles. The results showed that there is a decline in the momentum boundary film as the magnetic field improves due to the effect of the Lorentz force. Also, an increase in the Casson fluid term raises the viscosity and thereby resists the fluid motion.
含粘性耗散的微颗粒弹性材料诱导磁卡森流体二次热对流
本研究是基于磁卡森流体流动中二次热对流现象的研究,该现象是由具有微小颗粒和粘性耗散效应的弹性材料引起的。该研究旨在了解和优化该系统中流体流动和传热的复杂行为,这对工程和工业应用具有重要意义。Magneto-Casson流体的特点是其非牛顿行为和屈服应力,与弹性材料和微小颗粒相互作用,产生独特的流动特性和热性能。内摩擦引起的粘性耗散进一步影响对流换热过程。为了对这些现象进行全面的研究,采用龙格-库塔-费尔伯格格式和射击法相结合的数值方法建立了数学模型并进行了求解。在无量纲轮廓上用几个图对结果进行了讨论。结果表明,由于洛伦兹力的作用,动量边界膜随着磁场的增强而减小。此外,卡森流体项的增加会提高粘度,从而抑制流体运动。
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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