Boundary layer structure in turbulent Rayleigh-Benard convection
Nan Shi, Mohammad S. Emran, Joerg Schumacher

TL;DR
This study uses 3D simulations to analyze boundary layer structures in turbulent Rayleigh-Benard convection, revealing deviations from classical theories and identifying key local dynamical processes.
Contribution
It provides detailed numerical insights into boundary layer dynamics, highlighting deviations from classical laminar theories and identifying plume-related local flow structures.
Findings
Boundary layers deviate from Prandtl-Blasius predictions.
Dynamical rescaling aligns boundary layer analysis with large-scale circulation.
Boundary layer dynamics involve plume detachment and post-plume phases.
Abstract
The structure of the boundary layers in turbulent Rayleigh-Benard convection is studied by means of three-dimensional direct numerical simulations. We consider convection in a cylindrical cell at an aspect ratio one for Rayleigh numbers of Ra=3e+9 and 3e+10 at fixed Prandtl number Pr=0.7. Similar to the experimental results in the same setup and for the same Prandtl number, the structure of the laminar boundary layers of the velocity and temperature fields is found to deviate from the prediction of the Prandtl-Blasius-Pohlhausen theory. Deviations decrease when a dynamical rescaling of the data with an instantaneously defined boundary layer thickness is performed and the analysis plane is aligned with the instantaneous direction of the large-scale circulation in the closed cell. Our numerical results demonstrate that important assumptions which enter existing classical laminar boundary…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Nonlinear Dynamics and Pattern Formation · Combustion and flame dynamics
