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    Lagrangian Estimates of Diapycnal Mixing in a Simulated K–H Instability

    Source: Journal of Atmospheric and Oceanic Technology:;2004:;volume( 021 ):;issue: 005::page 799
    Author:
    D'Asaro, Eric A.
    ,
    Winters, Kraig B.
    ,
    Lien, Ren Chieh
    DOI: 10.1175/1520-0426(2004)021<0799:LEODMI>2.0.CO;2
    Publisher: American Meteorological Society
    Abstract: The Lagrangian properties of a high-resolution, three-dimensional, direct numerical simulation of Kelvin? Helmholtz (K?H) instability are examined with the goal of assessing the ability of Lagrangian measurements to determine rates and properties of ocean mixing events. The size and rotation rates of the two-dimensional K?H vortices are easily determined even by individual trajectories. Changes in density along individual trajectories unambiguously show diapycnal mixing. These changes are highly structured during the early phases of the instability but become more random once the flow becomes turbulent. Only 36 particles were tracked, which is not enough to usefully estimate volume-averaged fluxes from the average rates of temperature change. Similarly, time-and volume-averaged vertical advective flux can be estimated to only 20% accuracy. Despite the relatively low Reynolds number of the flow, R? ≈ 100, the dissipation rates of energy ε and density variance ? are correlated with the spectral levels of transverse velocity and density in an inertial subrange, as expected for high-Reynolds-number turbulence. The Kolmogorov constants are consistent with previous studies. This suggests that these inertial dissipation methods are the most promising techniques for making useful measurements of diapycnal mixing rates from practical Lagrangian floats because they converge rapidly and have a clear theoretical basis.
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      Lagrangian Estimates of Diapycnal Mixing in a Simulated K–H Instability

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    contributor authorD'Asaro, Eric A.
    contributor authorWinters, Kraig B.
    contributor authorLien, Ren Chieh
    date accessioned2017-06-09T14:37:40Z
    date available2017-06-09T14:37:40Z
    date copyright2004/05/01
    date issued2004
    identifier issn0739-0572
    identifier otherams-2311.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4159635
    description abstractThe Lagrangian properties of a high-resolution, three-dimensional, direct numerical simulation of Kelvin? Helmholtz (K?H) instability are examined with the goal of assessing the ability of Lagrangian measurements to determine rates and properties of ocean mixing events. The size and rotation rates of the two-dimensional K?H vortices are easily determined even by individual trajectories. Changes in density along individual trajectories unambiguously show diapycnal mixing. These changes are highly structured during the early phases of the instability but become more random once the flow becomes turbulent. Only 36 particles were tracked, which is not enough to usefully estimate volume-averaged fluxes from the average rates of temperature change. Similarly, time-and volume-averaged vertical advective flux can be estimated to only 20% accuracy. Despite the relatively low Reynolds number of the flow, R? ≈ 100, the dissipation rates of energy ε and density variance ? are correlated with the spectral levels of transverse velocity and density in an inertial subrange, as expected for high-Reynolds-number turbulence. The Kolmogorov constants are consistent with previous studies. This suggests that these inertial dissipation methods are the most promising techniques for making useful measurements of diapycnal mixing rates from practical Lagrangian floats because they converge rapidly and have a clear theoretical basis.
    publisherAmerican Meteorological Society
    titleLagrangian Estimates of Diapycnal Mixing in a Simulated K–H Instability
    typeJournal Paper
    journal volume21
    journal issue5
    journal titleJournal of Atmospheric and Oceanic Technology
    identifier doi10.1175/1520-0426(2004)021<0799:LEODMI>2.0.CO;2
    journal fristpage799
    journal lastpage809
    treeJournal of Atmospheric and Oceanic Technology:;2004:;volume( 021 ):;issue: 005
    contenttypeFulltext
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