The Deep Equatorial Ocean Circulation in Wind-Forced Numerical Solutions

Author:

Ascani François1,Firing Eric2,McCreary Julian P.3,Brandt Peter4,Greatbatch Richard J.4

Affiliation:

1. Marine Science Department, University of Hawai‘i at Hilo, Hilo, Hawaii

2. School of Ocean and Earth Science and Technology, Department of Oceanography, University of Hawai‘i at Mānoa, Honolulu, Hawaii

3. Department of Oceanography, School of Ocean and Earth Science and Technology, and International Pacific Research Center, University of Hawai‘i at Mānoa, Honolulu, Hawaii

4. GEOMAR Helmholtz-Zentrum für Ozeanforschung Kiel, Kiel, Germany

Abstract

AbstractWe perform eddy-resolving and high vertical resolution numerical simulations of the circulation in an idealized equatorial Atlantic Ocean in order to explore the formation of the deep equatorial circulation (DEC) in this basin. Unlike in previous studies, the deep equatorial intraseasonal variability (DEIV) that is believed to be the source of the DEC is generated internally by instabilities of the upper-ocean currents. Two main simulations are discussed: solution 1, configured with a rectangular basin and with wind forcing that is zonally and temporally uniform, and solution 2, with realistic coastlines and an annual cycle of wind forcing varying zonally. Somewhat surprisingly, solution 1 produces the more realistic DEC; the large, vertical-scale currents [equatorial intermediate currents (EICs)] are found over a large zonal portion of the basin, and the small, vertical-scale equatorial currents [equatorial deep jets (EDJs)] form low-frequency, quasi-resonant, baroclinic equatorial basin modes with phase propagating mostly downward, consistent with observations. This study demonstrates that both types of currents arise from the rectification of DEIV, consistent with previous theories. The authors also find that the EDJs contribute to maintaining the EICs, suggesting that the nonlinear energy transfer is more complex than previously thought. In solution 2, the DEC is unrealistically weak and less spatially coherent than in the first simulation probably because of its weaker DEIV. Using intermediate solutions, this study finds that the main reason for this weaker DEIV is the use of realistic coastlines in solution 2. It remains to be determined what needs to be modified or included to obtain a realistic DEC in the more realistic configuration.

Publisher

American Meteorological Society

Subject

Oceanography

Reference51 articles.

1. Estimates of bottom flows and bottom boundary layer dissipation of the oceanic general circulation from global high-resolution models;Arbic;J. Geophys. Res.,2009

2. Ascani, F. , 2005: The equatorial subthermocline circulation in ocean general circulation models. M.S. thesis, Dept. of Oceanography, University of Hawai‘i at Mānoa, 67 pp.

3. Deep equatorial ocean circulation induced by a forced-dissipated Yanai beam;Ascani;J. Phys. Oceanogr.,2010

4. On the evolution of the thermocline and subthermocline eastward currents in the equatorial Atlantic;Bourlès;Geophys. Res. Lett.,2002

5. The deep currents in the eastern equatorial Atlantic Ocean;Bourlès;Geophys. Res. Lett.,2003

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