Heat Propagation of Eyring-Prandtl Double Reaction and Pressure Driven Hydromagnetic Viscous Heating Fluid in a Device

Rasaq Adekunle Kareem, Joshua Olugbenga Ajilore, Samuel Oluyinka Sogunro
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Abstract

The effect toxic industrial discharge on the environment and ecosystem cannot be overlooked. This is owing to a partial combustion of hydrocarbon arising from industrial activities and human endeavours. As such, this investigation focuses on the pressure driven flow and heat propagation of combustible Prandtl-Eyring viscous heating fluid in a horizontal device. The combustion-reaction of the viscoplastic material is considered to be inspired by two-step exothermic reaction. With negligible reactant consumption, the flowing fluid is influenced by a chemical kinetic, activation energy and electromagnetic force. An invariant transformation of the partial derivative model to an ordinary derivative model is obtained through an applied dimensionless variable. The solutions to the unsteady thermal fluid flow model are obtained via a semi-implicit difference scheme, and the outputs of the solution are displayed in plots and tables. As revealed, an enhanced heat propagation is obtained that in turn encourages the combustion process of the system. Also, increasing material dilatant simulated fluid molecular bond and viscosity. Therefore, the outcomes of this study are treasured to the thermal and chemical engineering, and the environmental management.
埃灵-普朗特双重反应和压力驱动的流体磁粘性加热流体在装置中的热传播
有毒工业排放对环境和生态系统的影响不容忽视。这是由于工业活动和人类活动引起的碳氢化合物的部分燃烧。因此,本研究的重点是可燃Prandtl-Eyring粘性加热流体在水平装置中的压力驱动流动和热传播。粘塑性材料的燃烧反应被认为是由两步放热反应激发的。在可忽略的反应物消耗下,流动流体受到化学动力学、活化能和电磁力的影响。通过应用无量纲变量,得到了偏导数模型到常导数模型的不变变换。采用半隐式差分格式得到了非定常热流体流动模型的解,并以图形和表格的形式显示了解的输出。正如所揭示的那样,获得了增强的热传播,这反过来又促进了系统的燃烧过程。此外,增加材料膨胀模拟流体分子键和粘度。因此,本研究成果对热工、化工和环境管理具有重要的参考价值。
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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