Langmuir Turbulence and deeply penetrating jets in an unstratified mixed layer. Polton, J. A. & Belcher, S. E. J. Geophys. Res., 112(C9):1-11, 9, 2007.
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Paper doi abstract bibtex The influence of surface waves and an applied wind stress is studied in an ensemble of large eddy simulations to investigate the nature of deeply penetrating jets into an unstratified mixed layer. The influence of a steady monochromatic surface wave propagating parallel to the wind direction is parameterized using the wave-filtered Craik-Leibovich equations. Tracer trajectories and instantaneous downwelling velocities reveal classic counterrotating Langmuir rolls. The associated downwelling jets penetrate to depths in excess of the wave's Stokes depth scale, δ_s . Qualitative evidence suggests the depth of the jets is controlled by the Ekman depth scale. Analysis of turbulent kinetic energy (tke) budgets reveals a dynamical distinction between Langmuir turbulence and shear-driven turbulence. In the former, tke production is dominated by Stokes shear and a vertical flux term transports tke to a depth where it is dissipated. In the latter, tke production is from the mean shear and is locally balanced by dissipation. We define the turbulent Langmuir number La_t = (v_*/U_s )^0.5 (v_* is the ocean's friction velocity and U_s is the surface Stokes drift velocity) and a turbulent anisotropy coefficient R_t = øverlinew'^2 /(øverlineu'^2 + øverlinev'^2). The transition between shear-driven and Langmuir turbulence is investigated by varying external wave parameters δ_s and La_t and by diagnosing R_t and the Eulerian mean and Stokes shears. When either La_t or δ_s are sufficiently small the Stokes shear dominates the mean shear and the flow is preconditioned to Langmuir turbulence and the associated deeply penetrating jets
@article{ mendeley_6041954004,
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abstract = {The influence of surface waves and an applied wind stress is studied in an ensemble of large eddy simulations to investigate the nature of deeply penetrating jets into an unstratified mixed layer. The influence of a steady monochromatic surface wave propagating parallel to the wind direction is parameterized using the wave-filtered Craik-Leibovich equations. Tracer trajectories and instantaneous downwelling velocities reveal classic counterrotating Langmuir rolls. The associated downwelling jets penetrate to depths in excess of the wave's Stokes depth scale, δ_s . Qualitative evidence suggests the depth of the jets is controlled by the Ekman depth scale. Analysis of turbulent kinetic energy (tke) budgets reveals a dynamical distinction between Langmuir turbulence and shear-driven turbulence. In the former, tke production is dominated by Stokes shear and a vertical flux term transports tke to a depth where it is dissipated. In the latter, tke production is from the mean shear and is locally balanced by dissipation. We define the turbulent Langmuir number La_t = (v_*/U_s )^0.5 (v_* is the ocean's friction velocity and U_s is the surface Stokes drift velocity) and a turbulent anisotropy coefficient R_t = øverline{w'^2} /(øverline{u'^2} + øverline{v'^2}). The transition between shear-driven and Langmuir turbulence is investigated by varying external wave parameters δ_s and La_t and by diagnosing R_t and the Eulerian mean and Stokes shears. When either La_t or δ_s are sufficiently small the Stokes shear dominates the mean shear and the flow is preconditioned to Langmuir turbulence and the associated deeply penetrating jets},
month = {9},
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year = {2007},
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title = {Langmuir Turbulence and deeply penetrating jets in an unstratified mixed layer},
day = {25},
journal = {J. Geophys. Res.},
version = {1378800822},
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url_mendeley = {http://www.mendeley.com/research/langmuir-turbulence-deeply-penetrating-jets-unstratified-mixed-layer/},
source_type = {article},
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author = {Jeff A. {Polton} and Stephen E. {Belcher}},
pages = {1-11},
volume = {112},
doi = {10.1029/2007JC004205},
url = {http://www.agu.org/pubs/crossref/2007/2007JC004205.shtml},
type = {Journal Article},
notes = {From Duplicate 1 ( Langmuir Turbulence and deeply penetrating jets in an unstratified mixed layer - Polton, Jeff A.; Belcher, Stephen E. )
From Duplicate 1 ( Langmuir Turbulence and deeply penetrating jets in an unstratified mixed layer - Polton, Jeff A.; Belcher, Stephen E. )
From Duplicate 2 ( Langmuir Turbulence and deeply penetrating jets in an unstratified mixed layer - Polton, Jeff A; Belcher, Stephen E )
{C}09020, doi:10.1029/2007JC004205
From Duplicate 3 ( Langmuir Turbulence and deeply penetrating jets in an unstratified mixed layer - Polton, Jeff A.; Belcher, Stephen E. )
{C}09020, doi:10.1029/2007JC004205},
issn = {0148-0227},
modified = {1378800822},
citation_key = {Polton07},
subdiscipline = {Oceanography},
journal = {J. Geophys. Res.},
dateaccessed = {05/07/12}
}
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