Mechanisms Affecting the Overturning Response in Global Warming Simulations

U. Schweckendiek Leibniz-Institut für Meereswissenschaften, Kiel, Germany

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J. Willebrand Leibniz-Institut für Meereswissenschaften, Kiel, Germany

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Abstract

Climate models used to produce global warming scenarios exhibit widely diverging responses of the thermohaline circulation (THC). To investigate the mechanisms responsible for this variability, a regional Atlantic Ocean model driven with forcing diagnosed from two coupled greenhouse gas simulations has been employed. One of the coupled models (MPI) shows an almost constant THC, the other (GFDL) shows a declining THC in the twenty-first century.

The THC evolution in the regional model corresponds rather closely to that of the respective coupled simulation, that is, it remains constant when driven with the forcing from the MPI model, and declines when driven with the GFDL forcing. These findings indicate that a detailed representation of ocean processes in the region covered by the Atlantic model may not be critical for the simulation of the overall THC changes in a global warming scenario, and specifically that the coupled model’s rather coarse representation of water mass formation processes in the subpolar North Atlantic is unlikely to be the primary cause for the large differences in the THC evolution.

Sensitivity experiments have confirmed that a main parameter governing the THC response to global warming is the density of the intermediate waters in the Greenland–Iceland–Norwegian Seas, which in turn influences the density of the North Atlantic Deep Water, whereas changes in the air–sea heat and freshwater fluxes over the subpolar North Atlantic are only of moderate importance, and mainly influence the interannual–decadal variability of THC.

Finally, as a consequence of changing surface fluxes, the Labrador Sea convection ceases by about 2030 under both forcings (i.e., even in a situation where the overall THC is stable) indicating that the eventual breakdown of the convection is likely but need not coincide with substantial THC changes.

Corresponding author address: Dr. U. Schweckendiek, Leibniz-Institut für Meereswissenschaften, Düsternbrooker Weg 25, D-24105 Kiel, Germany. Email: uschweckendiek@ifm-geomar.de

Abstract

Climate models used to produce global warming scenarios exhibit widely diverging responses of the thermohaline circulation (THC). To investigate the mechanisms responsible for this variability, a regional Atlantic Ocean model driven with forcing diagnosed from two coupled greenhouse gas simulations has been employed. One of the coupled models (MPI) shows an almost constant THC, the other (GFDL) shows a declining THC in the twenty-first century.

The THC evolution in the regional model corresponds rather closely to that of the respective coupled simulation, that is, it remains constant when driven with the forcing from the MPI model, and declines when driven with the GFDL forcing. These findings indicate that a detailed representation of ocean processes in the region covered by the Atlantic model may not be critical for the simulation of the overall THC changes in a global warming scenario, and specifically that the coupled model’s rather coarse representation of water mass formation processes in the subpolar North Atlantic is unlikely to be the primary cause for the large differences in the THC evolution.

Sensitivity experiments have confirmed that a main parameter governing the THC response to global warming is the density of the intermediate waters in the Greenland–Iceland–Norwegian Seas, which in turn influences the density of the North Atlantic Deep Water, whereas changes in the air–sea heat and freshwater fluxes over the subpolar North Atlantic are only of moderate importance, and mainly influence the interannual–decadal variability of THC.

Finally, as a consequence of changing surface fluxes, the Labrador Sea convection ceases by about 2030 under both forcings (i.e., even in a situation where the overall THC is stable) indicating that the eventual breakdown of the convection is likely but need not coincide with substantial THC changes.

Corresponding author address: Dr. U. Schweckendiek, Leibniz-Institut für Meereswissenschaften, Düsternbrooker Weg 25, D-24105 Kiel, Germany. Email: uschweckendiek@ifm-geomar.de

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  • Bacher, A., J. Oberhuber, and E. Roecker, 1998: ENSO dynamics and seasonal cycle in the tropical Pacific as simulated by the ECHAM4/OPYC3 coupled general circulation model. Climate Dyn., 14 , 431450.

    • Search Google Scholar
    • Export Citation
  • Boyer, T., and S. Levitus, 1997: Objective Analyses of Temperature and Salinity for the World Ocean on a 1/4° Grid. NOAA Atlas NESDIS 11, 64 pp.

    • Search Google Scholar
    • Export Citation
  • Delworth, T. L., and R. J. Greatbatch, 2000: Multidecadal thermohaline circulation variability driven by atmospheric surface flux forcing. J. Climate, 13 , 14811494.

    • Search Google Scholar
    • Export Citation
  • Delworth, T., R. Stouffer, K. Dixon, M. Spelman, T. Knutson, A. Broccoli, P. Kushner, and R. Wetherald, 2002: Review of simulations of climate variability and change with the GFDL R30 coupled climate model. Climate Dyn., 19 , 555574.

    • Search Google Scholar
    • Export Citation
  • Dickson, B., I. Yashayaev, J. Meincke, B. Turrell, S. Dye, and J. Holfort, 2002: Rapid freshening of the deep North Atlantic over the past four decades. Nature, 416 , 832837.

    • Search Google Scholar
    • Export Citation
  • Dickson, R. R., E. M. Gmitrowicz, and A. J. Watson, 1990: Deep-water renewal in the northern North Atlantic. Nature, 344 , 848850.

  • Dixon, K. W., T. L. Delworth, M. J. Spelman, and R. J. Stouffer, 1999: The influence of transient surface fluxes on North Atlantic overturning in a coupled GCM climate change experiment. Geophys. Res. Lett., 26 , 27492752.

    • Search Google Scholar
    • Export Citation
  • Dixon, K. W., T. L. Delworth, T. Knutson, M. J. Spelman, and R. J. Stouffer, 2002: A comparison of climate change simulations produced by two GFDL coupled climate models. Global Planet. Change, 37 , 81102.

    • Search Google Scholar
    • Export Citation
  • Döscher, R., and R. Redler, 1997: The relative importance of northern overlow and subpolar deep convection for the North Atlantic thermohaline circulation. J. Phys. Oceanogr., 27 , 18941902.

    • Search Google Scholar
    • Export Citation
  • Döscher, R., and A. Beckmann, 2000: Effects of a bottom boundary layer parameterization in a coarse-resolution model of the North Atlantic Ocean. J. Atmos. Oceanic Technol., 17 , 698707.

    • Search Google Scholar
    • Export Citation
  • Eden, C., and T. Jung, 2001: North Atlantic interdecadel variability: Oceanic response to the North Atlantic Oscillation (1865–1997). J. Climate, 14 , 676691.

    • Search Google Scholar
    • Export Citation
  • Eden, C., and J. Willebrand, 2001: Mechanism of interannual to decadal variability of the North Atlantic circulation. J. Climate, 14 , 22662280.

    • Search Google Scholar
    • Export Citation
  • Fischer, J., and F. A. Schott, 1997: Seasonal transport variability of the Deep Western Boundary Current in the Atlantic. J. Geophys. Res., 102 , 2775127769.

    • Search Google Scholar
    • Export Citation
  • Gent, P., 2001: Will the North Atlantic Ocean thermohaline circulation weaken during the 21st century? Geophys. Res. Lett., 28 , 10231026.

    • Search Google Scholar
    • Export Citation
  • Gent, P., and J. McWilliams, 1990: Isopycnal mixing in ocean circulation models. J. Phys. Oceanogr., 20 , 150155.

  • Haney, R., 1971: Surface thermal boundary conditions for ocean circulation models. J. Phys. Oceanogr., 1 , 241248.

  • Haywood, J. M., D. L. Roberts, A. Sligo, J. M. Edwards, and K. P. Shine, 1997: General circulation model calculations of the direct radiative forcing by anthropogenic sulfate and fossil-fuel soot aerosol. J. Climate, 10 , 15621577.

    • Search Google Scholar
    • Export Citation
  • Houghton, J. T., B. A. Callander, and S. K. Varney, 1992: Climate Change 1992: The Supplementary Report to the IPCC Scientific Assessment. Cambridge University Press, 205 pp.

    • Search Google Scholar
    • Export Citation
  • Houghton, J. T., Y. Ding, D. J. Griggs, M. Noguer, P. J. van der Linden, and D. Xiaosu, 2001: Climate Change 2001: The Scientific Basis. Cambridge University Press, 944 pp.

    • Search Google Scholar
    • Export Citation
  • Jia, Y., 2002: Ocean heat transport and its relationship to ocean circulation in CMIP coupled models. Climate Dyn., 20 , 153174.

  • Kushnir, Y., and I. Held, 1996: Equilibrium atmospheric response to North Atlantic SST anomalies. J. Climate, 9 , 12081220.

  • Latif, M., E. Roecker, U. Mikolajewicz, and V. Voss, 2000: Tropical stabilization of the thermohaline circulation in a greenhouse warming simulation. J. Climate, 13 , 18091813.

    • Search Google Scholar
    • Export Citation
  • Levitus, S., and T. Boyer, 1994: Temperature. Vol. 4, World Ocean Atlas 1994, NOAA Atlas NESDIS 4, 117 pp.

  • Lilly, J. M., P. B. Rhines, M. Visbeck, R. Davis, J. R. N. Lazier, F. Schott, and D. Farmer, 1999: Observing deep convection in the Labrador Sea during winter 1994/95. J. Phys. Oceanogr., 29 , 20652098.

    • Search Google Scholar
    • Export Citation
  • Manabe, S., and R. Stouffer, 1994: Multiple-century response of a coupled ocean–atmosphere model to an increase of the atmospheric carbon dioxide. J. Climate, 7 , 523.

    • Search Google Scholar
    • Export Citation
  • Oberhuber, J., E. Roecker, A. Bacher, M. Esch, and M. Latif, 1998: Predicting the ‘97 El Niño event with a global climate model. Geophys. Res. Lett., 25 , 22732276.

    • Search Google Scholar
    • Export Citation
  • Pacanowski, R., 1995: MOM 2 documentation. Users’ guide and reference manual, GFDL Ocean Group Tech. Rep. 3, 329 pp.

  • Pacanowski, P., K. Dixon, and A. Rosati, 1991: Ocean model users’ guide version 1. GFDL Ocean Group Tech. Rep. 2, 44 pp.

  • Rhein, M., and Coauthors, 2002: Labrador Sea Water: Pathways, CFC-inventory and formation rates. J. Phys. Oceanogr., 32 , 648665.

  • Stevens, D., 1990: On open boundary conditions for three dimensional primitive equation ocean circulation models. Geophys. Astrophys. Fluid Dyn., 51 , 103133.

    • Search Google Scholar
    • Export Citation
  • Stramma, L., D. Kieke, M. Rhein, F. Schott, I. Yashayaev, and K. Koltermann, 2004: Deep Water changes at the western boundary of the subpolar North Atlantic during 1996 and 2001. Deep-Sea Res., 51 , 10331056.

    • Search Google Scholar
    • Export Citation
  • Thorpe, R., J. Gregory, T. Johns, R. Wood, and J. Mitchell, 2001: Mechanisms determining the Atlantic thermohaline circulation response to greenhouse gas forcing in a non-flux-adjusted coupled climate model. J. Climate, 14 , 31023116.

    • Search Google Scholar
    • Export Citation
  • Timmermann, A., M. Latif, R. Voss, and A. Grötzner, 1998: Northern Hemispheric interdecadal variability: A coupled air–sea mode. J. Climate, 11 , 19061931.

    • Search Google Scholar
    • Export Citation
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