Numerical simulation of heat and mass transfer in non-Newtonian Casson nanofluids driven nonlinearly by a wedge-shaped stretching plate

IF 4.6 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Liang Zhang, Huimin Zhang
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Abstract

In this paper, the heat mass transfer and entropy production of a non-Newtonian Casson nanofluid under the nonlinear motion of a wedge-shaped stretching plate are investigated. The effects of magnetic field, free flow velocity and porous medium are fully considered in the control equations. Then, the control equations are transformed into ordinary differential equations by using similar transformations, and the effects of dimensionless parameters on the momentum, heat and mass transfer and entropy production of the fluid are solved by using numerical solution methods. The results show that increasing both the magnetic field parameter and the Darcy parameter can effectively improve the heat transfer of the nanofluid, but at the expense of frictional resistance. It is also found that when the magnetic field strength and the velocity ratio parameter are increased, the Bejan number distribution shifts to the right overall, which can be explained by the increase in the proportion of entropy production due to heat transfer in the nanofluid system. This study theoretically deepens the understanding of non-Newtonian Casson nanofluid flow properties, and also provides a key theoretical basis for engineering applications such as heat exchanger design.

Abstract Image

楔形拉伸板非线性驱动非牛顿卡森纳米流体传热传质的数值模拟
本文研究了非牛顿卡森纳米流体在楔形拉伸板非线性运动下的传热传质和熵产。控制方程充分考虑了磁场、自由流速和多孔介质的影响。然后,采用类似变换将控制方程转化为常微分方程,并采用数值解法求解无量纲参数对流体动量、传热传质和熵产的影响。结果表明,增大磁场参数和达西参数均能有效改善纳米流体的换热,但会牺牲摩擦阻力。研究还发现,当磁场强度和速度比参数增加时,贝让数分布总体向右偏移,这可以解释为纳米流体系统中由于传热而产生的熵的比例增加。该研究从理论上加深了对非牛顿卡森纳米流体流动特性的认识,也为换热器设计等工程应用提供了关键的理论依据。
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来源期刊
Chinese Journal of Physics
Chinese Journal of Physics 物理-物理:综合
CiteScore
8.50
自引率
10.00%
发文量
361
审稿时长
44 days
期刊介绍: The Chinese Journal of Physics publishes important advances in various branches in physics, including statistical and biophysical physics, condensed matter physics, atomic/molecular physics, optics, particle physics and nuclear physics. The editors welcome manuscripts on: -General Physics: Statistical and Quantum Mechanics, etc.- Gravitation and Astrophysics- Elementary Particles and Fields- Nuclear Physics- Atomic, Molecular, and Optical Physics- Quantum Information and Quantum Computation- Fluid Dynamics, Nonlinear Dynamics, Chaos, and Complex Networks- Plasma and Beam Physics- Condensed Matter: Structure, etc.- Condensed Matter: Electronic Properties, etc.- Polymer, Soft Matter, Biological, and Interdisciplinary Physics. CJP publishes regular research papers, feature articles and review papers.
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