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    Extraction of Potential Energy from Geostrophic Fronts by Inertial–Symmetric Instabilities

    Source: Journal of Physical Oceanography:;2018:;volume 048:;issue 005::page 1033
    Author:
    Grisouard, Nicolas
    DOI: 10.1175/JPO-D-17-0160.1
    Publisher: American Meteorological Society
    Abstract: AbstractSubmesoscale oceanic density fronts are structures in geostrophic and hydrostatic balance, which are prone to inertial and/or symmetric instabilities. We argue in this article that drainage of potential energy from the geostrophic flow is a significant source of their growth. We illustrate our point with two-dimensional Boussinesq numerical simulations of oceanic density fronts on the f plane. A set of two-dimensional initial conditions covers the submesoscale portion of a three-dimensional parameter space consisting of the Richardson and Rossby numbers and a measure of stratification or latitude. Because we let the lateral density gradient decay with depth, the parameter space map is nontrivial, excluding low-Rossby, low-Richardson combinations. Dissipation and the presence of boundaries select a growing mode of inertial?symmetric instability consisting of flow cells that disturb isopycnal contours. Systematically, these isopycnal displacements correspond to a drainage of potential energy from the geostrophic fronts to the ageostrophic perturbations. In the majority of our experiments, this energy drainage is at least as important as the drainage of kinetic energy from the front. Various constraints, some physical, some numerical, make the energetics in our experiments more related to inertial rather than symmetric instabilities. Our results depend very weakly on the Richardson number and more on the Rossby number and relative stratification.
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      Extraction of Potential Energy from Geostrophic Fronts by Inertial–Symmetric Instabilities

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    contributor authorGrisouard, Nicolas
    date accessioned2019-09-19T10:02:35Z
    date available2019-09-19T10:02:35Z
    date copyright4/2/2018 12:00:00 AM
    date issued2018
    identifier otherjpo-d-17-0160.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4260898
    description abstractAbstractSubmesoscale oceanic density fronts are structures in geostrophic and hydrostatic balance, which are prone to inertial and/or symmetric instabilities. We argue in this article that drainage of potential energy from the geostrophic flow is a significant source of their growth. We illustrate our point with two-dimensional Boussinesq numerical simulations of oceanic density fronts on the f plane. A set of two-dimensional initial conditions covers the submesoscale portion of a three-dimensional parameter space consisting of the Richardson and Rossby numbers and a measure of stratification or latitude. Because we let the lateral density gradient decay with depth, the parameter space map is nontrivial, excluding low-Rossby, low-Richardson combinations. Dissipation and the presence of boundaries select a growing mode of inertial?symmetric instability consisting of flow cells that disturb isopycnal contours. Systematically, these isopycnal displacements correspond to a drainage of potential energy from the geostrophic fronts to the ageostrophic perturbations. In the majority of our experiments, this energy drainage is at least as important as the drainage of kinetic energy from the front. Various constraints, some physical, some numerical, make the energetics in our experiments more related to inertial rather than symmetric instabilities. Our results depend very weakly on the Richardson number and more on the Rossby number and relative stratification.
    publisherAmerican Meteorological Society
    titleExtraction of Potential Energy from Geostrophic Fronts by Inertial–Symmetric Instabilities
    typeJournal Paper
    journal volume48
    journal issue5
    journal titleJournal of Physical Oceanography
    identifier doi10.1175/JPO-D-17-0160.1
    journal fristpage1033
    journal lastpage1051
    treeJournal of Physical Oceanography:;2018:;volume 048:;issue 005
    contenttypeFulltext
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