From Rayleigh-B\'enard convection to porous-media convection: how porosity affects heat transfer and flow structure
Shuang Liu, Linfeng Jiang, Kai Leong Chong, Xiaojue Zhu, Zhen-Hua Wan,, Roberto Verzicco, Richard J. A. M. Stevens, Detlef Lohse, Chao Sun

TL;DR
This study numerically investigates how porosity influences heat transfer and flow structures in porous media Rayleigh-Bénard convection, revealing non-monotonous Nusselt number behavior and different heat transfer regimes across Rayleigh numbers.
Contribution
It provides a detailed analysis of the effects of porosity on heat transfer and flow coherence, highlighting the competing mechanisms that enhance or hinder convection in porous media.
Findings
Nusselt number varies non-monotonously with porosity.
Two distinct heat transfer regimes are identified based on Rayleigh number.
Porous structure influences temperature and velocity fluctuations, affecting overall heat transfer.
Abstract
We perform a numerical study of the heat transfer and flow structure of Rayleigh-B\'enard (RB) convection in (in most cases regular) porous media, which are comprised of circular, solid obstacles located on a square lattice. This study is focused on the role of porosity in the flow properties during the transition process from the traditional RB convection with (so no obstacles included) to Darcy-type porous-media convection with approaching 0. Simulations are carried out in a cell with unity aspect ratio, for the Rayleigh number from to and varying porosities , at a fixed Prandtl number , and we restrict ourselves to the two dimensional case. For fixed , the Nusselt number is found to vary non-monotonously as a function of ; namely, with decreasing , it first increases, before it decreases for …
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