Turbulent heat transfer in open-channel flows with a thermally-conductive porous wall
Seyed Morteza Habibi Khorasani, Geert Brethouwer, and Shervin Bagheri

TL;DR
This study uses DNS to explore how porous walls in open-channel turbulent flows affect heat transfer, revealing non-monotonic behavior and the importance of considering solid thermal properties for accurate predictions.
Contribution
It provides new insights into the complex heat transfer mechanisms in porous-wall turbulence, highlighting the non-monotonic effects and the impact of permeability on thermal performance.
Findings
Heat transfer initially decreases with slight porosity.
Beyond a permeability threshold, heat transfer increases and surpasses smooth-wall levels.
Reynolds analogy breakdown is similar to rough walls, with no observed saturation limit.
Abstract
Results of direct numerical simulations (DNS) of porous-wall turbulent flows in open channels with conjugate heat transfer are reported in this work. For the conductive porous walls considered here, the change in heat transfer is not monotonic. The heat flux initially decreases when going from a conductive smooth wall to slightly porous walls. In this initial porous-wall turbulence regime, the near-wall flow remains smooth-wall like and the heat transfer is dominated by molecular diffusion. As such, a reduction of the more favorably conducting solid material diminishes the overall heat transfer performance. Beyond a certain level of permeability however, the near-wall flow transitions to the K-H-like regime marked by the presence of cross-stream rollers, and the heat flux undergoes an increasing trend until it eventually surpasses that of smooth-wall turbulence. Neglecting the thermal…
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