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Filament Frontogenesis by Boundary Layer Turbulence
by
Gula, Jonathan
, Renault, Lionel
, Molemaker, M. Jeroen
, McWilliams, James C.
, Shchepetkin, Alexander F.
in
Advection
/ Boundary layer
/ Boundary layer turbulence
/ Boundary layers
/ Convergence
/ Coriolis force
/ Deformation
/ Dense water
/ Divergence
/ Downwelling
/ Eddy momentum flux
/ Frontogenesis
/ Meteorology
/ Momentum
/ Momentum balance
/ Momentum flux
/ Momentum transfer
/ Ocean circulation
/ Ocean currents
/ Oceanic turbulence
/ Pressure gradients
/ Simulation
/ Surface boundary layer
/ Surface layers
/ Thermal winds
/ Turbulence
/ Turbulent mixing
/ Velocity
/ Vertical forces
/ Vertical momentum
/ Vertical vorticity
/ Viscosity
/ Vortices
/ Vorticity
/ Wind
2015
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Filament Frontogenesis by Boundary Layer Turbulence
by
Gula, Jonathan
, Renault, Lionel
, Molemaker, M. Jeroen
, McWilliams, James C.
, Shchepetkin, Alexander F.
in
Advection
/ Boundary layer
/ Boundary layer turbulence
/ Boundary layers
/ Convergence
/ Coriolis force
/ Deformation
/ Dense water
/ Divergence
/ Downwelling
/ Eddy momentum flux
/ Frontogenesis
/ Meteorology
/ Momentum
/ Momentum balance
/ Momentum flux
/ Momentum transfer
/ Ocean circulation
/ Ocean currents
/ Oceanic turbulence
/ Pressure gradients
/ Simulation
/ Surface boundary layer
/ Surface layers
/ Thermal winds
/ Turbulence
/ Turbulent mixing
/ Velocity
/ Vertical forces
/ Vertical momentum
/ Vertical vorticity
/ Viscosity
/ Vortices
/ Vorticity
/ Wind
2015
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Do you wish to request the book?
Filament Frontogenesis by Boundary Layer Turbulence
by
Gula, Jonathan
, Renault, Lionel
, Molemaker, M. Jeroen
, McWilliams, James C.
, Shchepetkin, Alexander F.
in
Advection
/ Boundary layer
/ Boundary layer turbulence
/ Boundary layers
/ Convergence
/ Coriolis force
/ Deformation
/ Dense water
/ Divergence
/ Downwelling
/ Eddy momentum flux
/ Frontogenesis
/ Meteorology
/ Momentum
/ Momentum balance
/ Momentum flux
/ Momentum transfer
/ Ocean circulation
/ Ocean currents
/ Oceanic turbulence
/ Pressure gradients
/ Simulation
/ Surface boundary layer
/ Surface layers
/ Thermal winds
/ Turbulence
/ Turbulent mixing
/ Velocity
/ Vertical forces
/ Vertical momentum
/ Vertical vorticity
/ Viscosity
/ Vortices
/ Vorticity
/ Wind
2015
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Journal Article
Filament Frontogenesis by Boundary Layer Turbulence
2015
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Overview
A submesoscale filament of dense water in the oceanic surface layer can undergo frontogenesis with a secondary circulation that has a surface horizontal convergence and downwelling in its center. This occurs either because of the mesoscale straining deformation or because of the surface boundary layer turbulence that causes vertical eddy momentum flux divergence or, more briefly, vertical momentum mixing. In the latter case the circulation approximately has a linear horizontal momentum balance among the baroclinic pressure gradient, Coriolis force, and vertical momentum mixing, that is, a turbulent thermal wind. The frontogenetic evolution induced by the turbulent mixing sharpens the transverse gradient of the longitudinal velocity (i.e., it increases the vertical vorticity) through convergent advection by the secondary circulation. In an approximate model based on the turbulent thermal wind, the central vorticity approaches a finite-time singularity, and in a more general hydrostatic model, the central vorticity and horizontal convergence are amplified by shrinking the transverse scale to near the model’s resolution limit within a short advective period on the order of a day.
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