利用有限差分法对多孔微通道中的瞬态流动进行数值说明,并利用响应面方法对熵进行统计解释

Q1 Mathematics
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引用次数: 0

摘要

本文介绍了双曲切线纳米流体在施加磁场时对微通道中随时间变化的流动的影响。采用达西-福克海默(Darcy-Forchheimer)模型纳入了多孔介质。化学反应由阿伦尼乌斯活化能解释。温度由对流边界条件决定。对流动中出现的不可逆现象进行了分析。建模问题产生了偏微分方程,并通过有限差分法进行计算。响应面法是一种优化技术,用于获得流体流动产生熵的最佳条件。分析结果表明,浓度随反应速率参数的增加而降低,随活化能参数的增加而升高。随着普朗特数和埃克特数的增加,熵增大,流体摩擦不可逆性达到最高。通过响应面方法,模型达到了完美的相关性,相关系数为 100%。在本模型中,魏森堡数对变化高度敏感,其次是达西数和雷诺数。雷诺数和达西数显示出正敏感性,而魏森伯格数对所产生的熵显示出负敏感性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical illustration using finite difference method for the transient flow through porous microchannel and statistical interpretation of entropy using response surface methodology
The current article discloses the influence of the hyperbolic tangent nanofluid on time dependent flow through a microchannel when a magnetic field is applied. The porous medium was incorporated using the Darcy–Forchheimer model. The chemical reaction is explained by Arrhenius activation energy. Temperature is determined by convective boundary conditions. The irreversibility occurring in the flow is analyzed. The modeled problem gives rise to partial differential equations, which are computed by finite difference method. Response surface methodology, an optimization technique, is used to attain the optimal conditions for entropy generated for the flow of fluid. Results of the analysis reveal that concentration decreases with the rise in reaction rate parameter and increases with activation energy parameter. Prandtl and Eckert numbers, with their increase, enhance entropy, and fluid friction irreversibility is at its highest. Perfect co-relation is attained for the model by the response surface methodology, with a co-relation coefficient of 100 %. The Weissenberg number is highly sensitive to change in the present modeling, followed by Darcy and Reynolds numbers. The Reynolds number and Darcy number show positive sensitivity, while the Weissenberg number shows negative sensitivity to the entropy generated.
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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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