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Wave-induced mixing in the upper ocean: Distribution and application to a global ocean circulation model

TLDR
In this article, the wave-induced vertical viscosity (or diffusivity) Bv is defined, which can be used as a parameter to estimate the strength of waveinduced mixing.
Abstract
[1] From the Reynolds stress expression, the wave-induced vertical viscosity (or diffusivity) Bv is defined, which can be used as a parameter to estimate the strength of wave-induced mixing. In addition, a parameter D5 is introduced to represent a wave-induced mixing penetration depth. The global distribution of Bv averaged over the upper 20 m is calculated and its latitudinal transects in boreal summer and winter is discussed. The results show that in summer the wave-induced mixing is strong in the southern oceans south of 30°S, and in winter it is strong in the north Pacific and the north Atlantic north of 30°N, as well as in the southern oceans south of 40°S. Adding Bv to the vertical diffusivity in a global ocean circulation model yields a temperature structure in the upper 100 m that is closer to the observed climatology than a model without the wave-induced mixing.

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Journal ArticleDOI

A numerical estimation of the impact of Stokes drift on upper ocean temperature

TL;DR: In this paper, the impact of Stokes drift on the mixed layer temperature variation was estimated by taking into account an advective heat transport term induced by the Stokes Drift in the equation of mixed-layer temperature and using the oceanic and wave parameters.
Journal ArticleDOI

Water Vapor Transport and Cross-Equatorial Flow over the Asian-Australia Monsoon Region Simulated by CMIP5 Climate Models

TL;DR: In this article, the summer mean water vapor transport (WVT) and cross-equatorial flow (CEF) over the Asian-Australian monsoon region simulated by 22 coupled atmospheric-oceanic general circulation models from the World Climate Research Programme's Coupled Model Intercomparison Project Phase 5 (CMIP5) were evaluated.
Journal ArticleDOI

GCOAST: Skill assessments of coupling wave and circulation models (NEMO-WAM)

TL;DR: In this paper, a coupled ocean and wave model for the North Sea and the Baltic Sea, which is part of the Geestacht COAstal model SysTem GCOAST, is presented.
Journal ArticleDOI

The numerical investigation of seasonal variation of the cold water mass in the Beibu Gulf and its mechanisms

TL;DR: A wave-tide-circulation coupled model based on the Princeton Ocean Model was established to explore the seasonal variation of the cold water mass in the Beibu Gulf and its mechanisms.
References
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Journal ArticleDOI

Development of a turbulence closure model for geophysical fluid problems

TL;DR: The second-moment turbulent closure hypothesis has been applied to geophysical fluid problems since 1973, when genuine predictive skill in coping with the effects of stratification was demonstrated as discussed by the authors.

Climatological atlas of the world ocean

TL;DR: A project to objectively analyze historical ocean temperature, salinity, oxygen, and percent oxygen saturation data for the world ocean has recently been completed at the National Oceanic and Atmospheric Administration's (NOAA) Geophysical Fluid Dynamics Laboratory, Princeton, New Jersey.
Book

Climatological Atlas of the World Ocean

TL;DR: A project to objectively analyze historical ocean temperature, salinity, oxygen, and percent oxygen saturation data for the world ocean has recently been completed at the National Oceanic and Atmospheric Administration's (NOAA) Geophysical Fluid Dynamics Laboratory, Princeton, New Jersey.
Journal ArticleDOI

Spatial variability of turbulent mixing in the Abyssal Ocean

TL;DR: Ocean microstructure data show that turbulent mixing in the deep Brazil Basin of the South Atlantic Ocean is weak at all depths above smooth abyssal plains and the South American Continental Rise, which implies that abyssal circulations have complex spatial structures that are linked to the underlying bathymetry.
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