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    Advection of the Salt Wedge and Evolution of the Internal Flow Structure in the Rotterdam Waterway

    Source: Journal of Physical Oceanography:;2010:;Volume( 041 ):;issue: 001::page 3
    Author:
    de Nijs, Michel A. J.
    ,
    Pietrzak, Julie D.
    ,
    Winterwerp, Johan C.
    DOI: 10.1175/2010JPO4228.1
    Publisher: American Meteorological Society
    Abstract: An analysis of field measurements recorded over a tidal cycle in the Rotterdam Waterway is presented. These measurements are the first to elucidate the processes influencing the along-channel current structure and the excursion of the salt wedge in this estuary. The salt wedge structure remained stable throughout the measuring period. The velocity measurements indicate decoupling effects between the layers and that bed-generated turbulence is confined below the pycnocline. The barotropic M4 overtide structure is imposed at the mouth of the estuary, and the generation of M4 overtides within the estuary is found to be relatively small. Internal tidal asymmetry does not make a significant contribution to the M4 velocity frequency band. Instead, the combination of barotropic and baroclinic forcing, in conjunction with the suppression of turbulence at the interface, provides the main explanation for the time dependence and mean structure of the flow in the Rotterdam Waterway. This gives rise to the observed differences in the length of the flood and ebb, in the magnitudes of the flood and ebb velocities, in the length of the slack water periods, and in the timing of the onset of slack water at the surface and near the bed. It results in the formation of distinct exchange flow profiles at the head of the salt wedge around slack water and the creation of maximal velocities at the pycnocline during flood. Advection governs the displacement and structure of the salt wedge since turbulent mixing is suppressed. The tidal displacement of the salt wedge controls the height of the pycnocline above the bed at a particular site. Hence, it controls the height to which bed-generated turbulence can protrude into the water column. Consequently, the authors find asymmetries in the structure of the internal flow, turbulent mixing, and bed stresses that are not related to classical internal tidal asymmetry.
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      Advection of the Salt Wedge and Evolution of the Internal Flow Structure in the Rotterdam Waterway

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    contributor authorde Nijs, Michel A. J.
    contributor authorPietrzak, Julie D.
    contributor authorWinterwerp, Johan C.
    date accessioned2017-06-09T16:36:38Z
    date available2017-06-09T16:36:38Z
    date copyright2011/01/01
    date issued2010
    identifier issn0022-3670
    identifier otherams-70889.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4212719
    description abstractAn analysis of field measurements recorded over a tidal cycle in the Rotterdam Waterway is presented. These measurements are the first to elucidate the processes influencing the along-channel current structure and the excursion of the salt wedge in this estuary. The salt wedge structure remained stable throughout the measuring period. The velocity measurements indicate decoupling effects between the layers and that bed-generated turbulence is confined below the pycnocline. The barotropic M4 overtide structure is imposed at the mouth of the estuary, and the generation of M4 overtides within the estuary is found to be relatively small. Internal tidal asymmetry does not make a significant contribution to the M4 velocity frequency band. Instead, the combination of barotropic and baroclinic forcing, in conjunction with the suppression of turbulence at the interface, provides the main explanation for the time dependence and mean structure of the flow in the Rotterdam Waterway. This gives rise to the observed differences in the length of the flood and ebb, in the magnitudes of the flood and ebb velocities, in the length of the slack water periods, and in the timing of the onset of slack water at the surface and near the bed. It results in the formation of distinct exchange flow profiles at the head of the salt wedge around slack water and the creation of maximal velocities at the pycnocline during flood. Advection governs the displacement and structure of the salt wedge since turbulent mixing is suppressed. The tidal displacement of the salt wedge controls the height of the pycnocline above the bed at a particular site. Hence, it controls the height to which bed-generated turbulence can protrude into the water column. Consequently, the authors find asymmetries in the structure of the internal flow, turbulent mixing, and bed stresses that are not related to classical internal tidal asymmetry.
    publisherAmerican Meteorological Society
    titleAdvection of the Salt Wedge and Evolution of the Internal Flow Structure in the Rotterdam Waterway
    typeJournal Paper
    journal volume41
    journal issue1
    journal titleJournal of Physical Oceanography
    identifier doi10.1175/2010JPO4228.1
    journal fristpage3
    journal lastpage27
    treeJournal of Physical Oceanography:;2010:;Volume( 041 ):;issue: 001
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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