Parameterization of Mixed Layer and Deep-Ocean Mesoscales including Nonlinearity

Author:

Canuto V. M.12,Cheng Y.3,Dubovikov M. S.3,Howard A. M.4,Leboissetier A.5

Affiliation:

1. NASA Goddard Institute for Space Studies, and Department of Applied Physics and Applied Mathematics,

2. Columbia University, New York, New York

3. NASA Goddard Institute for Space Studies, and Center for Climate Systems Research, Columbia University, New York, New York

4. NASA Goddard Institute for Space Studies, New York, and Department of Physics and Computer Science, Medgar Evers College, City University of New York, Brooklyn, New York

5. NASA Goddard Institute for Space Studies, and SciSpace, LLC, New York, New York

Abstract

AbstractIn 2011, Chelton et al. carried out a comprehensive census of mesoscales using altimetry data and reached the following conclusions: “essentially all of the observed mesoscale features are nonlinear” and “mesoscales do not move with the mean velocity but with their own drift velocity,” which is “the most germane of all the nonlinear metrics.” Accounting for these results in a mesoscale parameterization presents conceptual and practical challenges since linear analysis is no longer usable and one needs a model of nonlinearity. A mesoscale parameterization is presented that has the following features: 1) it is based on the solutions of the nonlinear mesoscale dynamical equations, 2) it describes arbitrary tracers, 3) it includes adiabatic (A) and diabatic (D) regimes, 4) the eddy-induced velocity is the sum of a Gent and McWilliams (GM) term plus a new term representing the difference between drift and mean velocities, 5) the new term lowers the transfer of mean potential energy to mesoscales, 6) the isopycnal slopes are not as flat as in the GM case, 7) deep-ocean stratification is enhanced compared to previous parameterizations where being more weakly stratified allowed a large heat uptake that is not observed, 8) the strength of the Deacon cell is reduced. The numerical results are from a stand-alone ocean code with Coordinated Ocean-Ice Reference Experiment I (CORE-I) normal-year forcing.

Funder

Goddard Space Flight Center

Publisher

American Meteorological Society

Subject

Oceanography

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1. Do Sub‐Mesoscales Inhibit Destruction of PV?;Journal of Geophysical Research: Oceans;2021-10-27

2. ACC Subduction by Mesoscales;Journal of Physical Oceanography;2019-12

3. Three-Dimensional, Space-Dependent Mesoscale Diffusivity: Derivation and Implications;Journal of Physical Oceanography;2019-04

4. Improving the Upper-Ocean Temperature in an Ocean Climate Model (FESOM 1.4): Shortwave Penetration Versus Mixing Induced by Nonbreaking Surface Waves;Journal of Advances in Modeling Earth Systems;2019-02

5. Subduction by Submesoscales;Journal of Geophysical Research: Oceans;2018-12

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