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Direct numerical simulation study on wall-modeling of turbulent water channel flows with temperature-dependent viscosity.

Authors :
Kuwata, Y.
Suga, K.
Source :
International Journal of Heat & Fluid Flow. Oct2024, Vol. 109, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

We discuss wall-modeling of turbulent heat transfer of water channel flows with temperature-dependent viscosity via direct numerical simulations. We considered a top-cooled wall (293[K]) and a bottom-heated wall (353[K]) and varied the friction Reynolds numbers from 300 to 1000. The fluid viscosity varied depending on the local fluid temperature, whereas the other physical properties were assumed to be constant. The results show that semi-local scaling based on the local viscosity and wall friction velocity reasonably accounts for the effects of variable viscosity on turbulent flows, except in the vicinity of the wall, where wall cooling intensifies the turbulent vortical motion, leading to increased semi-locally scaled eddy diffusivities compared with those near the heated wall. In the vicinity of the cooled wall, turbulent transport is enhanced by increased viscous transport, which transfers more turbulent kinetic energy toward the cooled wall. The effectiveness of semi-local scaling for wall-modeling was validated by performing a wall-modeled large-eddy simulation at R e τ = 1000 , where we incorporated the semi-local viscous length scale into the classical mixing-length model. The modified mixing-length model reasonably reproduced the effects of variable viscosity on turbulent flows. • DNS of turbulent water channel flow with temperature-dependent viscosity is performed. • Effects of temperature-dependent viscosity on turbulence is studied. • Effectiveness of semi-local scaling based on local viscosity and friction velocity is investigated. • Wall-model for variable viscosity turbulent flows is proposed and assessed. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0142727X
Volume :
109
Database :
Academic Search Index
Journal :
International Journal of Heat & Fluid Flow
Publication Type :
Academic Journal
Accession number :
179556029
Full Text :
https://doi.org/10.1016/j.ijheatfluidflow.2024.109536