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Frontogenesis and frontal arrest of a dense filament in the oceanic surface boundary layer

Journal Article · · Journal of Fluid Mechanics
DOI:https://doi.org/10.1017/jfm.2017.833· OSTI ID:1538908

The evolution of upper ocean currents involves a set of complex, poorly understood interactions between submesoscale turbulence (e.g. density fronts and filaments and coherent vortices) and smaller-scale boundary-layer turbulence. Here we simulate the lifecycle of a cold (dense) filament undergoing frontogenesis in the presence of turbulence generated by surface stress and/or buoyancy loss. This phenomenon is examined in large-eddy simulations with resolved turbulent motions in large horizontal domains using$${\sim}10^{10}$$grid points. Steady winds are oriented in directions perpendicular or parallel to the filament axis. Due to turbulent vertical momentum mixing, cold filaments generate a potent two-celled secondary circulation in the cross-filament plane that is frontogenetic, sharpens the cross-filament buoyancy and horizontal velocity gradients and blocks Ekman buoyancy flux across the cold filament core towards the warm filament edge. Within less than a day, the frontogenesis is arrested at a small width,$${\approx}100~\text{m}$$, primarily by an enhancement of the turbulence through a small submesoscale, horizontal shear instability of the sharpened filament, followed by a subsequent slow decay of the filament by further turbulent mixing. The boundary-layer turbulence is inhomogeneous and non-stationary in relation to the evolving submesoscale currents and density stratification. The occurrence of frontogenesis and arrest are qualitatively similar with varying stress direction or with convective cooling, but the detailed evolution and flow structure differ among the cases. Thus submesoscale filament frontogenesis caused by boundary-layer turbulence, frontal arrest by frontal instability and frontal decay by forward energy cascade, and turbulent mixing are generic processes in the upper ocean.

Research Organization:
University Corporation for Atmospheric Research, Boulder, CO (United States)
Sponsoring Organization:
USDOE Office of Science (SC)
DOE Contract Number:
SC0012605
OSTI ID:
1538908
Journal Information:
Journal of Fluid Mechanics, Vol. 837; ISSN 0022-1120
Publisher:
Cambridge University Press
Country of Publication:
United States
Language:
English

References (41)

Open Ocean Momentum Flux Measurements in Moderate to Strong Winds March 1981
Computational Fluid Dynamics Modelling of a Midlatitude Small Scale upper Ocean Front July 2016
Langmuir turbulence in the ocean March 1997
An analysis of mechanisms for submesoscale vertical motion at ocean fronts January 2006
On the equilibration of a symmetrically unstable front via a secondary shear instability March 2009
Parameterization of Mixed Layer Eddies. Part I: Theory and Diagnosis June 2008
Intensification of Ocean Fronts by Down-Front Winds June 2005
Mixed Layer Instabilities and Restratification September 2007
Symmetric instability in the Gulf Stream July 2013
A subgrid-scale model for large-eddy simulation of planetary boundary-layer flows November 1994
Submesoscale Cold Filaments in the Gulf Stream October 2014
The Effect of Mesh Resolution on Convective Boundary Layer Statistics and Structures Generated by Large-Eddy Simulation October 2011
Hairpin vortex organization in wall turbulence April 2007
Langmuir–Submesoscale Interactions: Descriptive Analysis of Multiscale Frontal Spindown Simulations September 2014
Spectral Analysis of Large-Eddy Simulations of the Convective Boundary Layer December 1988
Transient Evolution of Langmuir Turbulence in Ocean Boundary Layers Driven by Hurricane Winds and Waves November 2012
Linear Fluctuation Growth during Frontogenesis December 2009
Dynamics of Winds and Currents Coupled to Surface Waves January 2010
The Mathematical Theory of Frontogenesis January 1982
Submesoscale surface fronts and filaments: secondary circulation, buoyancy flux, and frontogenesis June 2017
The regional oceanic modeling system (ROMS): a split-explicit, free-surface, topography-following-coordinate oceanic model January 2005
A Comparison of Shear- and Buoyancy-Driven Planetary Boundary Layer Flows April 1994
Mesoscale to Submesoscale Transition in the California Current System. Part II: Frontal Processes January 2008
Evidence of very long meandering features in the logarithmic region of turbulent boundary layers May 2007
Submesoscale currents in the ocean May 2016
Large eddy simulations of mixed layer instabilities and sampling strategies January 2011
Atmospheric Frontogenesis Models: Mathematical Formulation and Solution January 1972
Surface waves affect frontogenesis May 2016
Coherent structure of the convective boundary layer derived from large-eddy simulations March 1989
The mechanics of an organized wave in turbulent shear flow April 1970
Oceanic vertical mixing: A review and a model with a nonlocal boundary layer parameterization January 1994
Filament Frontogenesis by Boundary Layer Turbulence August 2015
Destruction of Potential Vorticity by Winds December 2005
A Large-Eddy-Simulation Model for the Study of Planetary Boundary-Layer Turbulence July 1984
Numerical Investigation of Neutral and Unstable Planetary Boundary Layers January 1972
A grid nesting method for large-eddy simulation of planetary boundary-layer flows July 1996
Frontogenesis and Turbulence: A Numerical Simulation December 2016
Baroclinic Frontal Instabilities and Turbulent Mixing in the Surface Boundary Layer. Part I: Unforced Simulations October 2012
The oceanic boundary layer driven by wave breaking with stochastic variability. Part 1. Direct numerical simulations January 1999
Surface gravity wave effects in the oceanic boundary layer: large-eddy simulation with vortex force and stochastic breakers November 2007
Cold filamentary intensification and oceanic surface convergence lines January 2009