卡森流体通过可渗透介质在扩展表面上流动时,带辐射热和耗散热的惯性阻力的本构行为及化学反应

Q1 Mathematics
Rupa Baithalu , Titilayo M Agbaje , Subhajit Panda , S.R. Mishra
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引用次数: 0

摘要

在先进的工业和生物医学应用中,结合聚合物加工、血流分析和食品加工,卡森流体模型成为说明非牛顿流体运输的关键框架。提出的分析研究了考虑卡森流体流过填充达西介质的扩展表面时达西-福奇海默惯性阻力的本构行为。同时,分析了辐射和耗散热效应、化学反应等有利体力对热和浓度分布的协同作用。采用适当的变换规则假设,将控制流现象转化为无量纲形式。这导致了这些控制方程中涉及的某些因素的出现。在此基础上,采用“谱拟线性化方法”对耦合非线性模型集问题进行了数值处理。当前策略收敛属性的一致性以及与前期调查结果的验证为具体案例提供了支持。此外,还用图形描述了控制因素对流动剖面的影响。结果表明,惯性阻力和辐射热的有效相互作用对速度相对温度分布有影响。此外,化学反应的增强影响浓度分布,更强的反应导致更陡的梯度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the constitutive behaviour of the inertial drag with radiative and dissipative heat and chemical reaction for Casson fluid flow over an extending surface through permeable medium
In advanced industrial and biomedical application combined with polymer processing, blood flow analysis, and food processing, the Casson fluid model emerged as a crucial framework for illustrating the transportation of non-Newtonian fluids. The proposed analysis investigates the constitutive behavior of the Darcy-Forchheimer inertial drag considering Casson fluid flow through an extending surface packed with Darcy medium. Also, favorable body forces like radiative and dissipative heat effects and chemical reactions are analyzed to carry out the synergistic role in the thermal and concentration distribution. The suitable assumptions of transformation rules are adopted to transform the governing flow phenomena into dimensionless forms. This leads to the appearance of certain factors involved in these governing equations. Further, coupled nonlinear sets of model problems are handled numerically employing the “spectral Quasi-linearization method”. The conformity of the attribute of convergence of the current strategy and the validation with the earlier investigation supported the particular cases. Further, the behaviour of the controlling factors on the flow profiles is depicted graphically. The results reveal the effective interaction of inertial drag and radiant heat on the velocity vis-a-vis temperature distributions. Moreover, the illustration of the enhanced chemical reaction influences the concentration profile with stronger reactions leading to sharper gradients.
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来源期刊
CiteScore
6.20
自引率
0.00%
发文量
138
审稿时长
14 weeks
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