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    A Laboratory Study of Nonlinear Western Boundary Currents, with Application to the Gulf Stream Separation due to Inertial Overshooting

    Source: Journal of Physical Oceanography:;2011:;Volume( 041 ):;issue: 011::page 2063
    Author:
    Pierini, Stefano
    ,
    Falco, Pierpaolo
    ,
    Zambardino, Giovanni
    ,
    McClimans, Thomas A.
    ,
    Ellingsen, Ingrid
    DOI: 10.1175/2011JPO4514.1
    Publisher: American Meteorological Society
    Abstract: arious dynamical aspects of nonlinear western boundary currents (WBCs) have been investigated experimentally through physical modeling in a 5-m-diameter rotating basin. The motion of a piston with a velocity up that can be as low as up = 0.5 mm s?1 induces a horizontally unsheared current of homogeneous water that, flowing over a topographic beta slope, experiences westward intensification. First, the character of WBCs for various degrees of nonlinearity is investigated. By varying up, flows ranging from the highly nonlinear inertial Charney regime down to a weakly nonlinear regime can be simulated. In the first case, the dependence of zonal length scales on up is found to be in agreement with Charney?s theory; for weaker flows, a markedly different functional dependence emerges describing the initial transition toward the linear, viscous case. This provides an unprecedented coverage of nonlinear WBC dependence on an amplitude parameter in terms of experimental data. WBC separation from a wedge-shaped continent past a cape (simulating Cape Hatteras) due to inertial overshooting is then analyzed. By increasing current speed, a critical behavior is identified according to which a very small change of up marks the transition from a WBC that follows the coast past the cape to a WBC (nearly dynamically similar to a full-scale Gulf Stream) that separates from the cape without any substantial deflection, as with the Gulf Stream Extension. The important effect of the deflection angle of the continent is analyzed as well. Finally, the qualitative effect of a sloping sidewall along a straight coast is considered: the deflection of the flow away from the western wall due to the tendency to preserve potential vorticity clearly emerges.
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      A Laboratory Study of Nonlinear Western Boundary Currents, with Application to the Gulf Stream Separation due to Inertial Overshooting

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4214025
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    contributor authorPierini, Stefano
    contributor authorFalco, Pierpaolo
    contributor authorZambardino, Giovanni
    contributor authorMcClimans, Thomas A.
    contributor authorEllingsen, Ingrid
    date accessioned2017-06-09T16:40:42Z
    date available2017-06-09T16:40:42Z
    date copyright2011/11/01
    date issued2011
    identifier issn0022-3670
    identifier otherams-72063.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4214025
    description abstractarious dynamical aspects of nonlinear western boundary currents (WBCs) have been investigated experimentally through physical modeling in a 5-m-diameter rotating basin. The motion of a piston with a velocity up that can be as low as up = 0.5 mm s?1 induces a horizontally unsheared current of homogeneous water that, flowing over a topographic beta slope, experiences westward intensification. First, the character of WBCs for various degrees of nonlinearity is investigated. By varying up, flows ranging from the highly nonlinear inertial Charney regime down to a weakly nonlinear regime can be simulated. In the first case, the dependence of zonal length scales on up is found to be in agreement with Charney?s theory; for weaker flows, a markedly different functional dependence emerges describing the initial transition toward the linear, viscous case. This provides an unprecedented coverage of nonlinear WBC dependence on an amplitude parameter in terms of experimental data. WBC separation from a wedge-shaped continent past a cape (simulating Cape Hatteras) due to inertial overshooting is then analyzed. By increasing current speed, a critical behavior is identified according to which a very small change of up marks the transition from a WBC that follows the coast past the cape to a WBC (nearly dynamically similar to a full-scale Gulf Stream) that separates from the cape without any substantial deflection, as with the Gulf Stream Extension. The important effect of the deflection angle of the continent is analyzed as well. Finally, the qualitative effect of a sloping sidewall along a straight coast is considered: the deflection of the flow away from the western wall due to the tendency to preserve potential vorticity clearly emerges.
    publisherAmerican Meteorological Society
    titleA Laboratory Study of Nonlinear Western Boundary Currents, with Application to the Gulf Stream Separation due to Inertial Overshooting
    typeJournal Paper
    journal volume41
    journal issue11
    journal titleJournal of Physical Oceanography
    identifier doi10.1175/2011JPO4514.1
    journal fristpage2063
    journal lastpage2079
    treeJournal of Physical Oceanography:;2011:;Volume( 041 ):;issue: 011
    contenttypeFulltext
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