On the thermal effect of porous material in porous media Rayleigh–Bénard convection

IF 2.8 Q2 MECHANICS
Jun-Hao Zhong, Shuang Liu, Chaojing Sun
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引用次数: 3

Abstract

Abstract We perform a two-dimensional numerical study on the thermal effect of porous media on global heat transport and flow structure in Rayleigh–Bénard (RB) convection, focusing on the role of thermal conductivity $\lambda$ of porous media, which ranges from $0.1$ to $50$ relative to the fluid. The simulation is carried out in a square RB cell with the Rayleigh number $Ra$ ranging from $10^7$ to $10^9$ and the Prandtl number $Pr$ fixed at $4.3$. The porosity of the system is fixed at $\phi =0.812$, with the porous media modelled by a set of randomly displayed circular obstacles. For a fixed $Ra$, the increase of conductivity shows a small effect on the total heat transfer, slightly depressing the Nusselt number. The limited influence comes from the small number of obstacles contacting with thermal plumes in the system as well as the counteraction of the increased plume area and the depressed plume strength. The study shows that the global heat transfer is insensitive to the conduction effect of separated porous media in the bulk region, which may have implications for industrial designs.
多孔材料在多孔介质Rayleigh–Bénard对流中的热效应
摘要我们对Rayleigh–Bénard(RB)对流中多孔介质对全局热传输和流动结构的热效应进行了二维数值研究,重点研究了多孔介质的热导率$\lambda$的作用,其范围从相对于流体的$0.1$到$50$。模拟是在一个方形RB单元中进行的,瑞利数$Ra$在$10^7$到$10^9$之间,普朗特数$Pr$固定在$4.3$。系统的孔隙率固定在$\phi=0.812$,多孔介质由一组随机显示的圆形障碍物建模。对于固定的$Ra$,电导率的增加对总传热的影响很小,略微降低了努塞尔数。有限的影响来自于系统中与热羽流接触的少量障碍物,以及羽流面积增加和羽流强度降低的抵消作用。研究表明,整体传热对本体区分离多孔介质的传导效应不敏感,这可能对工业设计有启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.40
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