Numerical analysis of radiative MHD gravity-driven thin film third-grade fluid flow with exothermic reaction and modified Darcy’s law on an inclined plane

IF 2.3 4区 材料科学 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
Idrees Khan, Rozli Zulkifli, T. Chinyoka, Zhi Ling, Murad Ali Shah
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Abstract

This study presents a transient investigation of radiative magnetohydrodynamics (MHD) third-order (TO) chemical reactive single-step exothermic gravity-driven fluid flow through a porous medium with various kinetics, that is, zero-order, sensitised and bimolecular. The modified Darcy law to model the porous medium resistance to flow, temperature-dependent viscosity following the Nahme-type principle and convective heat exchange at the free surface boundary by Newton’s cooling law are considered in the flow governing equations. Numerical solutions of the non-linear governing flow equations are obtained using a stable and convergent semi-implicit finite difference approach with Matlab. The physical insights reveal that the reaction and radiation parameters play an essential role in determining the thermo-dynamical behaviour of the system, particularly in averting thermal runaway. The study additionally shows that the velocity and temperature profiles are significantly influenced by the porous parameter, the Grashof number, the Reynolds number and the magnetic parameter. The graphical results demonstrate that a porous medium and magnetic field suppress the velocity and temperature, indicating a stabilising effect on the flow. The findings underscore the importance of meticulously controlling the radiation and reaction parameters to avoid potential blow-up scenarios in practical applications. The validity of our numerical investigations was compared with the published reported results and was found to be in excellent agreement.

具有放热反应和修正达西定律的辐射 MHD 重力驱动薄膜第三级流体在倾斜面上流动的数值分析
本研究介绍了辐射磁流体力学(MHD)三阶(TO)化学反应单步放热重力驱动流体流经多孔介质的瞬态研究,该流体具有各种动力学特性,即零阶、敏化和双分子。流动控制方程中考虑了修正的达西定律来模拟多孔介质的流动阻力、纳姆型原理下与温度相关的粘度以及牛顿冷却定律下自由表面边界的对流热交换。利用 Matlab,采用稳定、收敛的半隐式有限差分法获得了非线性流动控制方程的数值解。物理分析表明,反应和辐射参数在决定系统的热动力学行为,特别是在避免热失控方面起着至关重要的作用。研究还表明,速度和温度曲线受到多孔参数、格拉肖夫数、雷诺数和磁参数的显著影响。图形结果表明,多孔介质和磁场抑制了速度和温度,表明对流动有稳定作用。这些发现强调了在实际应用中精心控制辐射和反应参数以避免潜在爆炸情景的重要性。我们将数值研究的有效性与已发表的报告结果进行了比较,发现两者非常一致。
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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来源期刊
Mechanics of Time-Dependent Materials
Mechanics of Time-Dependent Materials 工程技术-材料科学:表征与测试
CiteScore
4.90
自引率
8.00%
发文量
47
审稿时长
>12 weeks
期刊介绍: Mechanics of Time-Dependent Materials accepts contributions dealing with the time-dependent mechanical properties of solid polymers, metals, ceramics, concrete, wood, or their composites. It is recognized that certain materials can be in the melt state as function of temperature and/or pressure. Contributions concerned with fundamental issues relating to processing and melt-to-solid transition behaviour are welcome, as are contributions addressing time-dependent failure and fracture phenomena. Manuscripts addressing environmental issues will be considered if they relate to time-dependent mechanical properties. The journal promotes the transfer of knowledge between various disciplines that deal with the properties of time-dependent solid materials but approach these from different angles. Among these disciplines are: Mechanical Engineering, Aerospace Engineering, Chemical Engineering, Rheology, Materials Science, Polymer Physics, Design, and others.
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