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Mesoscale to Submesoscale Transition in the California Current System. Part I: Flow Structure, Eddy Flux, and Observational Tests

Journal of Physical Oceanography · 2008 · Vol. 38(1) · pp. 29–43
Xavier CapetJ. C. McWilliamsM. Jeroen MolemakerAlexander F. Shchepetkin

Abstract

Abstract In computational simulations of an idealized subtropical eastern boundary upwelling current system, similar to the California Current, a submesoscale transition occurs in the eddy variability as the horizontal grid scale is reduced to O(1) km. This first paper (in a series of three) describes the transition in terms of the emergent flow structure and the associated time-averaged eddy fluxes. In addition to the mesoscale eddies that arise from a primary instability of the alongshore, wind-driven currents, significant energy is transferred into submesoscale fronts and vortices in the upper ocean. The submesoscale arises through surface frontogenesis growing off upwelled cold filaments that are pulled offshore and strained in between the mesoscale eddy centers. In turn, some submesoscale fronts become unstable and develop submesoscale meanders and fragment into roll-up vortices. Associated with this phenomenon are a large vertical vorticity and Rossby number, a large vertical velocity, relatively flat horizontal spectra (contrary to the prevailing view of mesoscale dynamics), a large vertical buoyancy flux acting to restratify the upper ocean, a submesoscale energy conversion from potential to kinetic, a significant spatial and temporal intermittency in the upper ocean, and material exchanges between the surface boundary layer and pycnocline. Comparison with available observations indicates that submesoscale fronts and instabilities occur widely in the upper ocean, with characteristics similar to the simulations.

Oceanographic and Atmospheric ProcessesClimate variability and modelsTropical and Extratropical Cyclones ResearchMesoscale meteorologyGeologyPycnoclineFrontogenesisEddyPotential vorticityBoundary currentRossby numberClimatologyVortex

Funding

  • National Science Foundation
  • Office of Naval Research
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698
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Cited by
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References
Mixed Layer Instabilities and Restratification
Journal of Physical Oceanography · 2007 · 671 citations
Equilibrium Structure and Dynamics of the California Current System
Journal of Physical Oceanography · 2003 · 601 citations
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Journal of the American Statistical Association · 1969 · 5,019 citations
Parameterization of Mixed Layer Eddies. Part I: Theory and Diagnosis
Journal of Physical Oceanography · 2008 · 799 citations
Geostrophic Turbulence
Journal of the Atmospheric Sciences · 1971 · 971 citations
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Mesoscale to Submesoscale Transition in the California Current System. Part I: Flow Structure, Eddy Flux, and Observational Tests · Scinovex