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    Inverse Cascades of Kinetic Energy as a Source of Intrinsic Variability: A Global OGCM Study

    Source: Journal of Physical Oceanography:;2018:;volume 048:;issue 006::page 1385
    Author:
    Sérazin, Guillaume
    ,
    Penduff, Thierry
    ,
    Barnier, Bernard
    ,
    Molines, Jean-Marc
    ,
    Arbic, Brian K.
    ,
    Müller, Malte
    ,
    Terray, Laurent
    DOI: 10.1175/JPO-D-17-0136.1
    Publisher: American Meteorological Society
    Abstract: AbstractA seasonally forced 1/12° global ocean/sea ice simulation is used to characterize the spatiotemporal inverse cascade of kinetic energy (KE). Nonlinear scale interactions associated with relative vorticity advection are evaluated using cross-spectral analysis in the frequency?wavenumber domain from sea level anomaly (SLA) time series. This analysis is applied within four eddy-active midlatitude regions having large intrinsic variability spread over a wide range of scales. Over these four regions, mesoscale surface KE is shown to spontaneously cascade toward larger spatial scales?between the deformation scale and the Rhines scale?and longer time scales (possibly exceeding 10 years). Other nonlinear processes might have to be invoked to explain the longer time scales of intrinsic variability, which have a substantial surface imprint at midlatitudes. The analysis of a fully forced 1/12° hindcast shows that low-frequency and synoptic atmospheric forcing barely affects this inverse KE cascade. The inverse cascade is also at work in a 1/4° simulation, albeit with a weaker intensity, consistent with the weaker intrinsic variability found at this coarser resolution. In the midlatitude North Pacific, the spatiotemporal cascade transfers KE from high-frequency frontal Rossby waves (FRWs), probably generated by baroclinic instability, toward the lower-frequency, westward-propagating mesoscale eddy (WME) field. The WMEs provide local gradients of potential vorticity that support these short Doppler-shifted FRWs. FRWs have periods shorter than 2 months and might be subsampled by altimetric observations, perhaps explaining why the temporal inverse cascade deduced from high-resolution models and mapped altimeter products can be quite different. The nature of the nonlinear interactions between FRWs and WMEs remains unclear but might involve wave turbulence processes.
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      Inverse Cascades of Kinetic Energy as a Source of Intrinsic Variability: A Global OGCM Study

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    contributor authorSérazin, Guillaume
    contributor authorPenduff, Thierry
    contributor authorBarnier, Bernard
    contributor authorMolines, Jean-Marc
    contributor authorArbic, Brian K.
    contributor authorMüller, Malte
    contributor authorTerray, Laurent
    date accessioned2019-09-19T10:02:31Z
    date available2019-09-19T10:02:31Z
    date copyright5/16/2018 12:00:00 AM
    date issued2018
    identifier otherjpo-d-17-0136.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4260885
    description abstractAbstractA seasonally forced 1/12° global ocean/sea ice simulation is used to characterize the spatiotemporal inverse cascade of kinetic energy (KE). Nonlinear scale interactions associated with relative vorticity advection are evaluated using cross-spectral analysis in the frequency?wavenumber domain from sea level anomaly (SLA) time series. This analysis is applied within four eddy-active midlatitude regions having large intrinsic variability spread over a wide range of scales. Over these four regions, mesoscale surface KE is shown to spontaneously cascade toward larger spatial scales?between the deformation scale and the Rhines scale?and longer time scales (possibly exceeding 10 years). Other nonlinear processes might have to be invoked to explain the longer time scales of intrinsic variability, which have a substantial surface imprint at midlatitudes. The analysis of a fully forced 1/12° hindcast shows that low-frequency and synoptic atmospheric forcing barely affects this inverse KE cascade. The inverse cascade is also at work in a 1/4° simulation, albeit with a weaker intensity, consistent with the weaker intrinsic variability found at this coarser resolution. In the midlatitude North Pacific, the spatiotemporal cascade transfers KE from high-frequency frontal Rossby waves (FRWs), probably generated by baroclinic instability, toward the lower-frequency, westward-propagating mesoscale eddy (WME) field. The WMEs provide local gradients of potential vorticity that support these short Doppler-shifted FRWs. FRWs have periods shorter than 2 months and might be subsampled by altimetric observations, perhaps explaining why the temporal inverse cascade deduced from high-resolution models and mapped altimeter products can be quite different. The nature of the nonlinear interactions between FRWs and WMEs remains unclear but might involve wave turbulence processes.
    publisherAmerican Meteorological Society
    titleInverse Cascades of Kinetic Energy as a Source of Intrinsic Variability: A Global OGCM Study
    typeJournal Paper
    journal volume48
    journal issue6
    journal titleJournal of Physical Oceanography
    identifier doi10.1175/JPO-D-17-0136.1
    journal fristpage1385
    journal lastpage1408
    treeJournal of Physical Oceanography:;2018:;volume 048:;issue 006
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
    نرم افزار کتابخانه دیجیتال "دی اسپیس" فارسی شده توسط یابش برای کتابخانه های ایرانی | تماس با یابش
    yabeshDSpacePersian