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Frontal Instability and Energy Dissipation in a Submesoscale Upwelling Filament.

Authors :
JEN-PING PENG
HOLTERMANN, PETER
UMLAUF, LARS
Source :
Journal of Physical Oceanography; Jul2020, Vol. 50 Issue 7, p2017-2035, 19p
Publication Year :
2020

Abstract

Based on high-resolution turbulence microstructure and near-surface velocity data, frontal instability and its relation to turbulence are investigated inside a transient upwelling filament in the Benguela upwelling system (southeast Atlantic). The focus of our study is a sharp submesoscale front located at the edge of the filament, characterized by persistent downfront winds, a strong frontal jet, and vigorous turbulence. Our analysis reveals three distinct frontal stability regimes. (i) On the light side of the front, a 30-40-m-deep turbulent surface layer with low potential vorticity (PV) was identified. This low-PV region exhibited a welldefined two-layer structure with a convective (Ekman-forced) upper layer and a stably stratified lower layer, where turbulence was driven by forced symmetric instability (FSI). Dissipation rates in this region scaled with the Ekman buoyancy flux, in excellent quantitative agreement with recent numerical simulations of FSI. (ii) Inside the cyclonic flank of the frontal jet, near the maximum of the cross-front density gradient, the cyclonic vorticity was sufficiently strong to suppress FSI. Turbulence in this region was driven by marginal shear instability. (iii) Inside the anticyclonic flank of the frontal jet, conditions for mixed inertial/symmetric instability were satisfied. Our data provide direct evidence for the relevance of FSI, inertial instability, and marginal shear instability for overall kinetic energy dissipation in submesoscale fronts and filaments. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00223670
Volume :
50
Issue :
7
Database :
Complementary Index
Journal :
Journal of Physical Oceanography
Publication Type :
Academic Journal
Accession number :
145424595
Full Text :
https://doi.org/10.1175/JPO-D-19-0270.1