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    ACC Meanders, Energy Transfer and Mixed Barotropic-Baroclinic Instability

    Source: Journal of Physical Oceanography:;2017:;Volume( 047 ):;issue: 006::page 1291
    Author:
    Youngs, Madeleine K.
    ,
    Thompson, Andrew F.
    ,
    Lazar, Ayah
    ,
    Richards, Kelvin J.
    DOI: 10.1175/JPO-D-16-0160.1
    Publisher: American Meteorological Society
    Abstract: long-stream variations in the dynamics of the Antarctic Circumpolar Current (ACC) impact heat and tracer transport, regulate inter-basin exchange and influence closure of the overturning circulation. Topography is primarily responsible for generating deviations from zonal-mean properties, mainly through standing meanders associated with regions of high eddy kinetic energy. Here, an idealized channel model is used to explore the spatial distribution of energy exchange and its relationship to eddy geometry, as characterized by both eddy momentum and eddy buoyancy fluxes. Variations in energy exchange properties occur not only between standing meander and quasi-zonal jet regions, but throughout the meander itself. Both barotropic and baroclinic stability properties, as well as the magnitude of energy exchange terms, undergo abrupt changes along the path of the ACC. These transitions are captured by diagnosing eddy fluxes of energy and by adopting the eddy geometry framework. The latter, typically applied to barotropic stability properties, is applied here in the depth, along-stream plane to include information about both barotropic and baroclinic stability properties of the flow. These simulations reveal that eddy momentum fluxes, and thus barotropic instability, play a leading role in the energy budget within a standing meander. This result suggests that baroclinic instability alone cannot capture the dynamics of ACC standing meanders, a challenge for models where eddy fluxes are parameterized.
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      ACC Meanders, Energy Transfer and Mixed Barotropic-Baroclinic Instability

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    contributor authorYoungs, Madeleine K.
    contributor authorThompson, Andrew F.
    contributor authorLazar, Ayah
    contributor authorRichards, Kelvin J.
    date accessioned2017-06-09T17:22:20Z
    date available2017-06-09T17:22:20Z
    date issued2017
    identifier issn0022-3670
    identifier otherams-83975.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4227259
    description abstractlong-stream variations in the dynamics of the Antarctic Circumpolar Current (ACC) impact heat and tracer transport, regulate inter-basin exchange and influence closure of the overturning circulation. Topography is primarily responsible for generating deviations from zonal-mean properties, mainly through standing meanders associated with regions of high eddy kinetic energy. Here, an idealized channel model is used to explore the spatial distribution of energy exchange and its relationship to eddy geometry, as characterized by both eddy momentum and eddy buoyancy fluxes. Variations in energy exchange properties occur not only between standing meander and quasi-zonal jet regions, but throughout the meander itself. Both barotropic and baroclinic stability properties, as well as the magnitude of energy exchange terms, undergo abrupt changes along the path of the ACC. These transitions are captured by diagnosing eddy fluxes of energy and by adopting the eddy geometry framework. The latter, typically applied to barotropic stability properties, is applied here in the depth, along-stream plane to include information about both barotropic and baroclinic stability properties of the flow. These simulations reveal that eddy momentum fluxes, and thus barotropic instability, play a leading role in the energy budget within a standing meander. This result suggests that baroclinic instability alone cannot capture the dynamics of ACC standing meanders, a challenge for models where eddy fluxes are parameterized.
    publisherAmerican Meteorological Society
    titleACC Meanders, Energy Transfer and Mixed Barotropic-Baroclinic Instability
    typeJournal Paper
    journal volume047
    journal issue006
    journal titleJournal of Physical Oceanography
    identifier doi10.1175/JPO-D-16-0160.1
    journal fristpage1291
    journal lastpage1305
    treeJournal of Physical Oceanography:;2017:;Volume( 047 ):;issue: 006
    contenttypeFulltext
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