微小颗粒和四次自催化反应存在于旋转抛物面分层上水平面上的生物对流流动模型

Nehad Ali Shah, A. Popoola, T. Oreyeni, E. Omokhuale, M. Altine
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引用次数: 3

摘要

该研究考虑了反应物A$(散装流体)和反应物B$(壁面催化剂)的扩散系数不等的情况,同时考虑了纳米颗粒和叶灵-鲍威尔流体的回旋微生物在存在可变流体性质和分层的非均匀厚度表面上的分散。利用龙格-库塔法和射击技术,得到了变换后控制方程的数值解。研究结果表明,随温度变化的热导率参数值的增大导致了流体动能的增大,从而导致了流体温度的显著升高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A modelling of bioconvective flow existing with tiny particles and quartic autocatalysis reaction across stratified upper horizontal surface of a paraboloid of revolution
The study considers the case of the unequal diffusion coefficients of reactant $A$ (bulk fluid) and reactant $B$ (catalyst at the wall) with the dispersion of both nanoparticles and gyrotactic microorganisms of Erying-Powell fluid flow over a surface with non-uniform thickness in the presence of variable fluid properties and stratification. The numerical solution of the transformed governing equations is obtained by using the Runge-Kutta method and shooting techniques. The outcome of this study is that the increasing values of temperature-dependent thermal conductivity parameter lead to the augmentation of the kinetic energy which thereafter causes a significant enhancement of the fluid temperature.
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