English

Boundary layers in turbulent vertical convection at high Prandtl number

Fluid Dynamics 2023-06-22 v2

Abstract

Many environmental flows arise due to natural convection at a vertical surface, from flows in buildings to dissolving ice faces at marine-terminating glaciers. We use three-dimensional direct numerical simulations of a vertical channel with differentially heated walls to investigate such convective, turbulent boundary layers. Through the implementation of a multiple-resolution technique, we are able to perform simulations at a wide range of Prandtl numbers PrPr. This allows us to distinguish the parameter dependences of the horizontal heat flux and the boundary layer widths in terms of the Rayleigh number RaRa and Prandtl number PrPr. For the considered parameter range 1Pr1001\leq Pr \leq 100, 106Ra10910^6 \leq Ra \leq 10^9, we find the flow to be consistent with a 'buoyancy-controlled' regime where the heat flux is independent of the wall separation. For given PrPr, the heat flux is found to scale linearly with the friction velocity VV_\ast. Finally, we discuss the implications of our results for the parameterisation of heat and salt fluxes at vertical ice-ocean interfaces.

Keywords

Cite

@article{arxiv.2105.08407,
  title  = {Boundary layers in turbulent vertical convection at high Prandtl number},
  author = {Christopher J. Howland and Chong Shen Ng and Roberto Verzicco and Detlef Lohse},
  journal= {arXiv preprint arXiv:2105.08407},
  year   = {2023}
}

Comments

18 pages, 7 figures, submitted to J. Fluid Mech