Turbulence radiation interaction in channel flow with various optical depths

Journal Article (2018)
Author(s)

S. Silvestri (TU Delft - Energy Technology)

A. Patel (TU Delft - Energy Technology)

D.J.E.M. Roekaerts (TU Delft - Fluid Mechanics, Eindhoven University of Technology)

Rene Pecnik (TU Delft - Energy Technology)

Research Group
Energy Technology
Copyright
© 2018 S. Silvestri, A. Patel, D.J.E.M. Roekaerts, Rene Pecnik
DOI related publication
https://doi.org/10.1017/jfm.2017.738
More Info
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Publication Year
2018
Language
English
Copyright
© 2018 S. Silvestri, A. Patel, D.J.E.M. Roekaerts, Rene Pecnik
Research Group
Energy Technology
Volume number
834
Pages (from-to)
359-384
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Abstract

The present work consists of an investigation of the turbulence radiation interaction (TRI) in a radiative turbulent channel flow of grey gas bounded by isothermal hot and cold walls. The optical thickness of the channel is varied from 0.1 to 10 to observe different regimes of TRI. A high-resolution finite volume method for radiative heat transfer is employed and coupled with the direct numerical simulation (DNS) of the flow. The resulting effects of TRI on temperature statistics are strongly dependent on the considered optical depth. In particular, the contrasting role of emission and absorption is highlighted. For a low optical thickness the effect of radiative fluctuations on temperature statistics is low and causes the reduction of temperature variance through the dissipating action of emission. On the other hand, while increasing optical thickness to relatively high levels, the dissipation of temperature variance is balanced, at low wavenumbers in the turbulence spectrum, through the preferential action of absorption, which increases the large-scale temperature fluctuations. A significant rise in the effect of radiation on the temperature variance can be observed as a consequence of the reduction of radiative heat transfer length scales.