Journal Information

Online ISSN: 1520-0442
Print ISSN:    0894-8755
Frequency:    Semimonthly

Continuous, Array-Based Estimates of Atlantic Ocean Heat Transport at 26.5°N

W. E. Johns,* M. O. Baringer,+ L. M. Beal,* S. A. Cunningham,# T. Kanzow,# H. L. Bryden,# J. J. M. Hirschi,# J. Marotzke,@ C. S. Meinen,+ B. Shaw,* and R. Curry&

* Division of Meteorology and Physical Oceanography, Rosenstiel School of Marine and Atmospheric Science, University of Miami, Miami, Florida

+ Physical Oceanography Division, NOAA/Atlantic Oceanographic and Meteorological Laboratory, Miami, Florida

# Ocean Observing and Climate Research Group, National Oceanography Centre, Southampton, Southampton, United Kingdom

@ Max Planck Institute for Meteorology, Hamburg, Germany

& Woods Hole Oceanographic Institution, Woods Hole, Massachusetts



Abstract

Continuous estimates of the oceanic meridional heat transport in the Atlantic are derived from the Rapid Climate Change–Meridional Overturning Circulation (MOC) and Heatflux Array (RAPID–MOCHA) observing system deployed along 26.5°N, for the period from April 2004 to October 2007. The basinwide meridional heat transport (MHT) is derived by combining temperature transports (relative to a common reference) from 1) the Gulf Stream in the Straits of Florida; 2) the western boundary region offshore of Abaco, Bahamas; 3) the Ekman layer [derived from Quick Scatterometer (QuikSCAT) wind stresses]; and 4) the interior ocean monitored by “endpoint” dynamic height moorings. The interior eddy heat transport arising from spatial covariance of the velocity and temperature fields is estimated independently from repeat hydrographic and expendable bathythermograph (XBT) sections and can also be approximated by the array.

The results for the 3.5 yr of data thus far available show a mean MHT of 1.33 ± 0.40 PW for 10-day-averaged estimates, on which time scale a basinwide mass balance can be reasonably assumed. The associated MOC strength and variability is 18.5 ± 4.9 Sv (1 Sv ≡ 106 m3 s−1). The continuous heat transport estimates range from a minimum of 0.2 to a maximum of 2.5 PW, with approximately half of the variance caused by Ekman transport changes and half caused by changes in the geostrophic circulation. The data suggest a seasonal cycle of the MHT with a maximum in summer (July–September) and minimum in late winter (March–April), with an annual range of 0.6 PW. A breakdown of the MHT into “overturning” and “gyre” components shows that the overturning component carries 88% of the total heat transport. The overall uncertainty of the annual mean MHT for the 3.5-yr record is 0.14 PW or about 10% of the mean value.

Keywords: Atlantic Ocean, Meridonial overturning circulation, Sea surface temperature, Transport, Anomalies

Received: August 12, 2010; Final Form: December 1, 2010

Corresponding author address: William E. Johns, Division of Meteorology and Physical Oceanography, Rosenstiel School of Marine and Atmospheric Science, 4600 Rickenbacker Causeway, Miami, FL 33149. E-mail:

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Duo Yang, Oleg A. Saenko. (2012) Ocean Heat Transport and Its Projected Change in CanESM2. Journal of Climate 25:23, 8148-8163.
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Martha W. Buckley, David Ferreira, Jean-Michel Campin, John Marshall, Ross Tulloch. (2012) On the Relationship between Decadal Buoyancy Anomalies and Variability of the Atlantic Meridional Overturning Circulation. Journal of Climate 25:23, 8009-8030.
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Bente Tiedje, Armin Köhl, Johanna Baehr. (2012) Potential Predictability of the North Atlantic Heat Transport Based on an Oceanic State Estimate. Journal of Climate 25:24, 8475-8486.
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John P. Dunne, Jasmin G. John, Alistair J. Adcroft, Stephen M. Griffies, Robert W. Hallberg, Elena Shevliakova, Ronald J. Stouffer, William Cooke, Krista A. Dunne, Matthew J. Harrison, John P. Krasting, Sergey L. Malyshev, P. C. D. Milly, Peter J. Phillipps, Lori T. Sentman, Bonita L. Samuels, Michael J. Spelman, Michael Winton, Andrew T. Wittenberg, Niki Zadeh. (2012) GFDL’s ESM2 Global Coupled Climate–Carbon Earth System Models. Part I: Physical Formulation and Baseline Simulation Characteristics. Journal of Climate 25:19, 6646-6665.
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M. D. Thomas, A. M. de Boer, D. P. Stevens, H. L. Johnson. (2012) Upper ocean manifestations of a reducing meridional overturning circulation. Geophysical Research Letters 39, n/a-n/a.
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