阿伦尼乌斯活化能和零纳米颗粒通量对纳米流体通过等温内热椭圆圆柱自由对流流动的影响

IF 0.6 4区 工程技术 Q4 MECHANICS
K.-A. Yih, Ch.-J. Huang
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引用次数: 0

摘要

本文用数值方法分析了填充纳米流体的等温椭圆截面圆柱体内的阿伦尼乌斯活化能、纳米粒子零通量和内部生热对自然对流的影响。纳米流体模型涉及布朗运动和热泳效应。零纳米粒子通量的边界条件使计算结果更加真实和实用。通过适当的坐标变换,得到非相似控制方程,并用凯勒盒法求解。与前人的研究成果进行比较,得到了较好的一致性。无量纲温度分布和主要参数的努塞尔数结果以图形和表格的形式给出。详细讨论了这个问题的物理方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Arrhenius Activation Energy and Zero Nanoparticles Flux Effects on Free Convection Flow of a Nanofluid Past an Isothermal Elliptical Cylinder with Internal Heat Generation

Arrhenius Activation Energy and Zero Nanoparticles Flux Effects on Free Convection Flow of a Nanofluid Past an Isothermal Elliptical Cylinder with Internal Heat Generation

Arrhenius activation energy, zero nanoparticles flux, and internal heat generation effects on natural convection about an isothermal cylinder of elliptic cross section filled with a nanofluid are numerically analyzed in this paper. The nanofluid model involves Brownian motion and thermophoresis effects. The boundary condition of the zero nanoparticle flux causes the results to be more realistic and useful. By using a suitable coordinate transformation, the nonsimilar governing equations are achieved and then solved by Keller box method. Performing the comparisons with previously published work obtains the good agreement. The dimensionless temperature profiles and the Nusselt number results for the main parameters are presented in graphical and tabular forms. The physical aspects of the problem are discussed in details.

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来源期刊
CiteScore
1.20
自引率
16.70%
发文量
43
审稿时长
4-8 weeks
期刊介绍: Journal of Applied Mechanics and Technical Physics is a journal published in collaboration with the Siberian Branch of the Russian Academy of Sciences. The Journal presents papers on fluid mechanics and applied physics. Each issue contains valuable contributions on hypersonic flows; boundary layer theory; turbulence and hydrodynamic stability; free boundary flows; plasma physics; shock waves; explosives and detonation processes; combustion theory; multiphase flows; heat and mass transfer; composite materials and thermal properties of new materials, plasticity, creep, and failure.
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