We perform direct numerical simulations of wall sheared Rayleigh-Bénard convection for Rayleigh numbers up to, Prandtl number unity and wall shear Reynolds numbers up to. Using the Monin-Obukhov length we observe the presence of three different flow states, a buoyancy dominated regime (; with the thermal boundary layer thickness), a transitional regime (; with the height of the domain) and a shear dominated regime (). In the buoyancy dominated regime, the flow dynamics is similar to that of turbulent thermal convection. The transitional regime is characterized by rolls that are increasingly elongated with increasing shear. The flow in the shear dominated regime consists of very large-scale meandering rolls, similar to the ones found in conv...
The classical example for thermally driven turbulence is Rayleigh-Bénard (RB) flow, i.e., flow in a ...
Turbulent thermal convection is ubiquitous in geophysical, astrophysical, and industrial application...
The aspect ratio (Γ) dependence of the heat transfer (Nusselt number Nu in dimensionless form) in tu...
We perform direct numerical simulations of wall sheared Rayleigh-Benard convection for Rayleigh numb...
In turbulent wall sheared thermal convection, there are three different flow regimes, depending on t...
In thermal convection for very large Rayleigh numbers (Ra), the thermal and viscous boundary layers ...
We report the results from a direct numerical simulation of turbulent Rayleigh-Bénard convection for...
A novel approach for the study of turbulent Rayleigh-B\ue9nard convection (RBC) in the compound phys...
A novel approach for the study of turbulent Rayleigh-Bénard convection (RBC) in the compound physic...
We investigate the counter-intuitive initial decrease and subsequent increase in the Nusselt number ...
The progress in our understanding of several aspects of turbulent Rayleigh-Bénard convection is revi...
Heat and momentum transfer in wall-bounded turbulent flow, coupled with the effects of wall roughnes...
Turbulence is omnipresent in Nature and technology, governing the transport of heat, mass, and momen...
The classical example for thermally driven turbulence is Rayleigh-Bénard (RB) flow, i.e., flow in a ...
The classical example for thermally driven turbulence is Rayleigh-Bénard (RB) flow, i.e., flow in a ...
Turbulent thermal convection is ubiquitous in geophysical, astrophysical, and industrial application...
The aspect ratio (Γ) dependence of the heat transfer (Nusselt number Nu in dimensionless form) in tu...
We perform direct numerical simulations of wall sheared Rayleigh-Benard convection for Rayleigh numb...
In turbulent wall sheared thermal convection, there are three different flow regimes, depending on t...
In thermal convection for very large Rayleigh numbers (Ra), the thermal and viscous boundary layers ...
We report the results from a direct numerical simulation of turbulent Rayleigh-Bénard convection for...
A novel approach for the study of turbulent Rayleigh-B\ue9nard convection (RBC) in the compound phys...
A novel approach for the study of turbulent Rayleigh-Bénard convection (RBC) in the compound physic...
We investigate the counter-intuitive initial decrease and subsequent increase in the Nusselt number ...
The progress in our understanding of several aspects of turbulent Rayleigh-Bénard convection is revi...
Heat and momentum transfer in wall-bounded turbulent flow, coupled with the effects of wall roughnes...
Turbulence is omnipresent in Nature and technology, governing the transport of heat, mass, and momen...
The classical example for thermally driven turbulence is Rayleigh-Bénard (RB) flow, i.e., flow in a ...
The classical example for thermally driven turbulence is Rayleigh-Bénard (RB) flow, i.e., flow in a ...
Turbulent thermal convection is ubiquitous in geophysical, astrophysical, and industrial application...
The aspect ratio (Γ) dependence of the heat transfer (Nusselt number Nu in dimensionless form) in tu...