Generation of turbulence through frontogenesis in sheared stratified flows

The large-scale structures in the ocean and the atmosphere are in geostrophic balance, and a conduit must be found to channel the energy to the small scales where it can be dissipated. In turbulence, this takes the form of an energy cascade, whereas a possible mechanism in a balanced flow is through the formation of fronts, a common occurrence in geophysics. We show that an iconic configuration in laboratory and numerical experiments for the study of turbulence, the so-called Taylor-Green or von Karman swirling flow, can be suitably adapted to domains with large aspect ratios, leading to the creation of an imposed large-scale vertical shear. To this effect, we use direct numerical simulations of the Boussinesq equations without net rotation and with no small-scale modeling. Various grid spacings are used, up to 2048(2) x 256 spatial points. The grids are always isotropic, with box aspect ratios of either 1:4 or 1:8. We find that when shear and stratification are comparable, the imposed shear layer resulting from the forcing leads to the formation of fronts and filaments which destabilize and evolve into a turbulent flow in the bulk, with a sizable amount of dissipation and mixing, following a cycle of front creation, instability, and development of turbulence. The results depend on the vertical length scales of shear and stratification. Published by AIP Publishing.

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Copyright 2018 American Institute of Physics.


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Author Sujovolsky, N. E.
Mininni, P. D.
Pouquet, Annick
Publisher UCAR/NCAR - Library
Publication Date 2018-08-01T00:00:00
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T19:22:09.147272
Metadata Record Identifier edu.ucar.opensky::articles:21959
Metadata Language eng; USA
Suggested Citation Sujovolsky, N. E., Mininni, P. D., Pouquet, Annick. (2018). Generation of turbulence through frontogenesis in sheared stratified flows. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7j1060x. Accessed 18 July 2025.

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