MHD Ree-Eyring纳米流体在多孔介质中的Cattaneo-Christov热流密度,包括熵优化和陀螺仪微生物

IF 0.8 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
M. Vinodkumar Reddy, Jintu Mani Nath, K. Ramakrishna Reddy, Tusar Kanti Das, K. Venugopal Reddy
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引用次数: 0

摘要

该研究旨在对纳米流体在Darcy-Forchheimer多孔介质中磁流体动力学(MHD)流动的Cattaneo-Christov热流模型进行广泛的数值分析。该分析将整合活化能、回旋式微生物、熵优化、布朗运动和热泳术的影响,并特别关注拉伸表面上的流动动力学。利用Buongiorno纳米流体模型,研究流体流动中的复杂相互作用。这项研究在其方法上是开创性的,因为它将复杂的因素,如热流模型、非牛顿流体行为、熵生成、微生物动力学和纳米模型效应结合到一个统一的数值框架中。通过解决这些多方面的因素,该研究旨在促进对复杂流体系统中传热和传质的理解。正在进行的调查是使用bvp5c MATLAB软件包使用数值方法进行的。该研究结果有望加强各种应用的热管理策略,包括航空航天工程、电子冷却、能源系统和生物医学技术。观察到,考虑有限热松弛的Cattaneo-Christov热流密度模型能迅速减小热分布。此外,洛伦兹力、布朗运动和辐射弥散热显著增强,热泳动和活化能促进了质量分布。此外,由于对流和热扩散的增强,Peclet和生物对流Lewis数的增加导致了更高的运动密度。随着洛伦兹力、扩散因子、布林克曼数和温差因子的增强,熵的产生也很有前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cattaneo-Christov heat flux in MHD Ree-Eyring nanofluid flow via porous medium including entropy optimization and gyrotactic microorganism

The proposed study aims to perform an extensive numerical analysis of the Cattaneo-Christov heat flux model for the magnetohydrodynamic (MHD) flow of Ree-eyring nanofluid through a Darcy-Forchheimer porous medium. This analysis will integrate the effects of Activation energy, gyrotactic microorganisms, entropy optimization, Brownian motion, and Thermophoresis, with a particular focus on the dynamics of flow over a stretching surface. Utilizing the Buongiorno nanofluid model, the research will explore the complex interactions within fluid flow. This investigation is pioneering in its approach, as it combines intricate factors such as heat flux modelling, non-Newtonian fluid behaviour, entropy generation, microbial dynamics, and nano-model effects into a unified numerical framework. By addressing these multifaceted elements, the study aims to advance the understanding of heat and mass transfer in sophisticated fluid systems. The ongoing investigation is conducted using a numerical approach using the bvp5c MATLAB package. The findings are expected to enhance thermal management strategies across diverse applications, including aerospace engineering, electronic cooling, energy systems, and biomedical technologies. It is observed that The Cattaneo-Christov heat flux model, considering finite thermal relaxation, reduces heat distribution promptly. Furthermore, enhanced Lorentz force, Brownian motion, and radiation diffuse heat significantly, while thermophoresis and activation energy boost mass distribution. Also, Increased Peclet and bioconvection Lewis numbers lead to higher motile density due to stronger convection and thermal diffusion. The entropy generation also looks promising with the enhancement in Lorentz force, diffusion factor, Brinkman number, and temperature difference factor.

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来源期刊
Journal of the Korean Physical Society
Journal of the Korean Physical Society PHYSICS, MULTIDISCIPLINARY-
CiteScore
1.20
自引率
16.70%
发文量
276
审稿时长
5.5 months
期刊介绍: The Journal of the Korean Physical Society (JKPS) covers all fields of physics spanning from statistical physics and condensed matter physics to particle physics. The manuscript to be published in JKPS is required to hold the originality, significance, and recent completeness. The journal is composed of Full paper, Letters, and Brief sections. In addition, featured articles with outstanding results are selected by the Editorial board and introduced in the online version. For emphasis on aspect of international journal, several world-distinguished researchers join the Editorial board. High quality of papers may be express-published when it is recommended or requested.
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