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Global Ocean Meridional Overturning

Journal of Physical Oceanography · 2007 · Vol. 37(10) · pp. 2550–2562
Rick LumpkinKevin Speer

Abstract

Abstract A decade-mean global ocean circulation is estimated using inverse techniques, incorporating air–sea fluxes of heat and freshwater, recent hydrographic sections, and direct current measurements. This information is used to determine mass, heat, freshwater, and other chemical transports, and to constrain boundary currents and dense overflows. The 18 boxes defined by these sections are divided into 45 isopycnal (neutral density) layers. Diapycnal transfers within the boxes are allowed, representing advective fluxes and mixing processes. Air–sea fluxes at the surface produce transfers between outcropping layers. The model obtains a global overturning circulation consistent with the various observations, revealing two global-scale meridional circulation cells: an upper cell, with sinking in the Arctic and subarctic regions and upwelling in the Southern Ocean, and a lower cell, with sinking around the Antarctic continent and abyssal upwelling mainly below the crests of the major bathymetric ridges.

Oceanographic and Atmospheric ProcessesGeology and Paleoclimatology ResearchClimate variability and modelsIsopycnalGeologyUpwellingThermohaline circulationOceanographyOcean currentHydrographyAdvectionBoundary currentAbyssal zone

Funding

  • National Science Foundation
  • National Oceanic and Atmospheric Administration
Citations
797
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18.72
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References
66
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100%
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Cited by
An Eddy-Permitting Southern Ocean State Estimate
Journal of Physical Oceanography · 2010 · 512 citations
References
Global Abyssal Mixing Inferred from Lowered ADCP Shear and CTD Strain Profiles
Journal of Physical Oceanography · 2006 · 485 citations
A Neutral Density Variable for the World’s Oceans
Journal of Physical Oceanography · 1997 · 607 citations
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