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    Geostrophic Turbulence in the Frequency–Wavenumber Domain: Eddy-Driven Low-Frequency Variability

    Source: Journal of Physical Oceanography:;2014:;Volume( 044 ):;issue: 008::page 2050
    Author:
    Arbic, Brian K.
    ,
    Müller, Malte
    ,
    Richman, James G.
    ,
    Shriver, Jay F.
    ,
    Morten, Andrew J.
    ,
    Scott, Robert B.
    ,
    Sérazin, Guillaume
    ,
    Penduff, Thierry
    DOI: 10.1175/JPO-D-13-054.1
    Publisher: American Meteorological Society
    Abstract: otivated by the potential of oceanic mesoscale eddies to drive intrinsic low-frequency variability, this paper examines geostrophic turbulence in the frequency?wavenumber domain. Frequency?wavenumber spectra, spectral fluxes, and spectral transfers are computed from an idealized two-layer quasigeostrophic (QG) turbulence model, a realistic high-resolution global ocean general circulation model, and gridded satellite altimeter products. In the idealized QG model, energy in low wavenumbers, arising from nonlinear interactions via the well-known inverse cascade, is associated with energy in low frequencies and vice versa, although not in a simple way. The range of frequencies that are highly energized and engaged in nonlinear transfer is much greater than the range of highly energized and engaged wavenumbers. Low-frequency, low-wavenumber energy is maintained primarily by nonlinearities in the QG model, with forcing and friction playing important but secondary roles. In the high-resolution ocean model, nonlinearities also generally drive kinetic energy to low frequencies as well as to low wavenumbers. Implications for the maintenance of low-frequency oceanic variability are discussed. The cascade of surface kinetic energy to low frequencies that predominates in idealized and realistic models is seen in some regions of the gridded altimeter product, but not in others. Exercises conducted with the general circulation model suggest that the spatial and temporal filtering inherent in the construction of gridded satellite altimeter maps may contribute to the discrepancies between the direction of the frequency cascade in models versus gridded altimeter maps seen in some regions. Of course, another potential reason for the discrepancy is missing physics in the models utilized here.
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      Geostrophic Turbulence in the Frequency–Wavenumber Domain: Eddy-Driven Low-Frequency Variability

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    contributor authorArbic, Brian K.
    contributor authorMüller, Malte
    contributor authorRichman, James G.
    contributor authorShriver, Jay F.
    contributor authorMorten, Andrew J.
    contributor authorScott, Robert B.
    contributor authorSérazin, Guillaume
    contributor authorPenduff, Thierry
    date accessioned2017-06-09T17:20:29Z
    date available2017-06-09T17:20:29Z
    date copyright2014/08/01
    date issued2014
    identifier issn0022-3670
    identifier otherams-83494.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4226725
    description abstractotivated by the potential of oceanic mesoscale eddies to drive intrinsic low-frequency variability, this paper examines geostrophic turbulence in the frequency?wavenumber domain. Frequency?wavenumber spectra, spectral fluxes, and spectral transfers are computed from an idealized two-layer quasigeostrophic (QG) turbulence model, a realistic high-resolution global ocean general circulation model, and gridded satellite altimeter products. In the idealized QG model, energy in low wavenumbers, arising from nonlinear interactions via the well-known inverse cascade, is associated with energy in low frequencies and vice versa, although not in a simple way. The range of frequencies that are highly energized and engaged in nonlinear transfer is much greater than the range of highly energized and engaged wavenumbers. Low-frequency, low-wavenumber energy is maintained primarily by nonlinearities in the QG model, with forcing and friction playing important but secondary roles. In the high-resolution ocean model, nonlinearities also generally drive kinetic energy to low frequencies as well as to low wavenumbers. Implications for the maintenance of low-frequency oceanic variability are discussed. The cascade of surface kinetic energy to low frequencies that predominates in idealized and realistic models is seen in some regions of the gridded altimeter product, but not in others. Exercises conducted with the general circulation model suggest that the spatial and temporal filtering inherent in the construction of gridded satellite altimeter maps may contribute to the discrepancies between the direction of the frequency cascade in models versus gridded altimeter maps seen in some regions. Of course, another potential reason for the discrepancy is missing physics in the models utilized here.
    publisherAmerican Meteorological Society
    titleGeostrophic Turbulence in the Frequency–Wavenumber Domain: Eddy-Driven Low-Frequency Variability
    typeJournal Paper
    journal volume44
    journal issue8
    journal titleJournal of Physical Oceanography
    identifier doi10.1175/JPO-D-13-054.1
    journal fristpage2050
    journal lastpage2069
    treeJournal of Physical Oceanography:;2014:;Volume( 044 ):;issue: 008
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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