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Mechanisms of interdecadal climate variability and the role of ocean–atmosphere coupling

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Abstract

Climate variability and mid-latitude mechanisms of ocean–atmosphere interactions are investigated with coupled and uncoupled integrations of a three-dimensional ocean–atmosphere–land–ice climate model of intermediate complexity. We focus on the decadal and interdecadal variability of the system and give a statistical and dynamical description of its oceanic and atmospheric signatures. In our coupled control integration, an oceanic oscillation of a period of around 20 years is found to be associated with variability of the meridional overturning circulation and is manifested by surface anomalies of temperature and salinity. On such timescales the oceanic oscillation is able to imprint itself on the atmosphere, which then covaries with the ocean at the oscillation period. The essentially slaved atmospheric pattern helps maintain the oceanic oscillation by providing large-scale anomalous heat fluxes, so catalyzing the oscillation. That is to say, because the atmosphere covaries with the ocean the damping felt by the ocean is less than what would be felt with a fixed atmosphere, so broadening the parameter regime over which such variability occurs. In addition to the presence of an atmosphere, the period and amplitude of the oscillation are found to be influenced both by the oceanic vertical diffusivity κ v , by geometrical factors, and by the presence of stochastic heat fluxes. In general, oscillations occur most readily for large values of κ v , when the mean state of the ocean is characterized by a strong meridional overturning circulation. If κ v is sufficiently strong, the ocean will oscillate even in the absence of a dynamical atmosphere. However, for more realistic values of κ v , the presence of an interacting atmosphere is required for significant oscillations. If the ocean is forced by imposed stochastic heat fluxes, instead of a fully interacting atmosphere, then decadal-scale oscillations can be produced suggestive of a damped oscillator. However, the parameter range over which oscillations occur is smaller than when the ocean is coupled to full atmosphere. More generically, the ability of comprehensive coupled ocean–atmosphere models to produce multi-decadal variability, realistic or otherwise, will depend on the oceanic mean state, and so on the diapycnal diffusivity of the modelled ocean, as well as on the ability of the atmosphere to reduce the damping felt by the ocean and so on the atmosphere’s ability to respond to persistent sea-surface temperature anomalies.

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References

  • Barsugli JJ, Battisti DS (1998) The basic effects of atmosphere–ocean thermal coupling on midlatitude variability. J Atmos Sci 55:477–493

    Article  Google Scholar 

  • Bellucci A, Gualdi S, Scoccimarro E, Navarra A (2008) NAO–ocean circulation interactions in a coupled general circulation model. Clim Dyn 31:759–777

    Article  Google Scholar 

  • Bjerknes J (1964) Atlantic air–sea interaction. Adv Geophys 10:1–82

    Google Scholar 

  • Cassou C, Deser C, Alexander MA (2007) Investigating the impact of reemerging sea surface temperature anomalies on the winter atmospheric circulation over the North Atlantic. J Clim 20:3510–3526

    Article  Google Scholar 

  • Colin de Verdière A, Huck T (1999) Baroclinic instability: an oceanic wavemaker for interdecadal variability. J Phys Oceanogr 29:893–910

    Article  Google Scholar 

  • Czaja A, Marshall J (2001) Observations of atmosphere–ocean coupling in the North Atlantic. Q J R Meteor Soc 127:1893–1916

    Article  Google Scholar 

  • Czaja A, Robertson A, Huck T (2003) The role of Atlantic ocean–atmosphere coupling in affecting North Atlantic Oscillation variability. In: The North Atlantic oscillation: climatic significance and environmental impact. Geophysical Monograph No. 134, pp 147–172. American Geophysical Union

  • Dai A, Hu A, Meehl GA, Washington WM, Strand WG (2005) Atlantic thermohaline circulation in a coupled general circulation model: unforced variations versus forced changes. J Clim 18:3270–3293

    Article  Google Scholar 

  • Danabasoglu G (2008) On multi-decadal variability of the Atlantic meridional overturning circulation in the Community Climate System Model version 3 (CCSM3). J Clim 21:5524–5544

    Article  Google Scholar 

  • Delworth T, Broccoli A, Rosati A, Stouffer R, Balaji V, Beesley J, Cooke W, Dixon K, Dunne J, Dunne K, Durachta J, Findell K, Ginoux P, Gnanadesikan A, Gordon C, Griffies S, Gudegel R, Harrison M, Held I, Hemler R, Horowitz L, Klein S, Knutson T, Kushner P, Langenhorst A, Lee H-C, Lin S, Lu L, Malyshev S, Milly P, Ramaswamy V, Russel J, Schwarxkopf M, Shevliakova E, Sirutis J, Spelman M, Stern W, Winton M, Wittenberg A, Wyman B, Zeng F, Zhang R (2006) GFDL’s CM2 global coupled climate models. Part I: formulation and simulation characteristics. J Clim 19:643–674

    Article  Google Scholar 

  • Delworth TL, Greatbatch RJ (2000) Multidecadal thermohaline circulation variability driven by atmospheric surface flux forcing. J Clim 13:1481–1495

    Article  Google Scholar 

  • Delworth TL, Manabe S, Stouffer RJ (1993) Interdecadal variations of the thermohaline circulation in a coupled ocean–atmosphere model. J Clim 6:1993–2011

    Article  Google Scholar 

  • Delworth TL, Mann M (2000) Observed and simulated multidecadal variability in the Northern Hemisphere. Clim Dyn 16:661–676

    Article  Google Scholar 

  • Deser C, Blackmon M (1993) Surface climate variations over the North Atlantic ocean during winter: 1900–1989. J Clim 6:1743–1753

    Article  Google Scholar 

  • Deser C, Thomas R, Peng S (2007) The transient atmospheric circulation response to North Atlantic SST and sea ice anomalies. J Clim 20:4751–4767

    Article  Google Scholar 

  • Dong B, Sutton RT (2005) Mechanism of interdecadal thermohaline circulation variability in a coupled ocean–atmosphere GCM. J Clim 18:1117–1135

    Article  Google Scholar 

  • Farneti R, Vallis GK (2009) An intermediate complexity climate model (ICCMp1) based on the GFDL Flexible Modelling System. Geosci Model Dev 2:73–88

    Article  Google Scholar 

  • Ferreira D, Frankignoul C (2005) The transient atmospheric response to midlatitude SST anomalies. J Clim 18:1049–1067

    Article  Google Scholar 

  • Frierson DMW (2007) The dynamics of idealized convection schemes and their effect on the zonally averaged tropical circulation. J Atmos Sci 64:1959–1976

    Article  Google Scholar 

  • Frierson DMW, Held IM, Zurita-Gotor P (2006) A gray-radiation aquaplanet moist GCM. Part I: static stability and eddy scales. J Atmos Sci 63:2548–2566

    Article  Google Scholar 

  • Frierson DMW, Held IM, Zurita-Gotor P (2007) A gray-radiation aquaplanet moist GCM. Part II: Energy transports in altered climates. J Atmos Sci 64(5):1680–1693

    Article  Google Scholar 

  • Griffies SM, Gnanadesikan A, Dixon KW, Dunne J, Gerdes A, Harrison MJ, Rosati A, Russel J, Samuels BL, Spelman MJ, Winton M, Zhang R (2005) Formulation of an ocean model for global climate simulations. Ocean Sci 1:45–79

    Article  Google Scholar 

  • Griffies SM, Tziperman E (1995) A linear thermohaline oscillator driven by stochastic atmospheric forcing. J Clim 8:2440–2453

    Article  Google Scholar 

  • Hasselmann K (1976) Stochastic climate models. Part I: theory. Tellus 28:473–485

    Article  Google Scholar 

  • Hogg A, Dewar W, Killworth P, Blundell J (2006) Decadal variability of the midlatitude climate system driven by the ocean circulation. J Clim 19:1149–1166

    Article  Google Scholar 

  • Huck T, Vallis G (2001) Linear stability analysis of the three-dimensional thermally-driven ocean circulation: application to interdecadal oscillations. Tellus 53A:526–545

    Article  Google Scholar 

  • Hunke EC, Dukowicz JK (1997) An elastic–viscous–plastic model for sea ice dynamics. J Phys Oceanogr 27:1849–1867

    Article  Google Scholar 

  • Kamenkovich IV, Sokolov AP, Stone PH (2002) An efficient climate model with a 3D ocean and a statistical–dynamical atmosphere. Clim Dyn 19: 585–598

    Article  Google Scholar 

  • Kravtsov S, Ghil M (2004) Interdecadal variability in a hybrid coupled ocean–atmosphere–sea-ice model. J Phys Oceanogr 34:1756–1775

    Article  Google Scholar 

  • Kushnir Y (1994) Interdecadal variations in the North Atlantic sea surface temperature and associated atmospheric conditions. J Clim 7:141–157

    Article  Google Scholar 

  • Latif M, Barnett TP (1994) Causes of decadal climate variability over the North Pacific and North America. Science 266:634–637

    Article  Google Scholar 

  • Marshall J, Johnson H, Goodman J (2001) A study of the interaction of the North Atlantic Oscillation with ocean circulation. J Clim 14:1399–1421

    Article  Google Scholar 

  • Montoya M, Griesel A, Levermann A, Mignot J, Hofmann M, Ganopolsky A, Rahmstorf S (2005) The earth system model of intermediate complexity CLIMBER-3α. Part I: description and performance for present-day conditions. Clim Dyn 25:237–263

    Article  Google Scholar 

  • Msadek R, Frankignoul C (2008) Atlantic multidecadal oceanic variability and its influence on the atmosphere in a climate model. Clim Dyn. doi:10.1007/s00382-008-0452-0

  • Preisendorfer RW, Mobley CD (1988) Principal component analysis in meteorology and oceanography. Elsevier, Amsterdam, p 425

    Google Scholar 

  • Saravanan R, Danabasoglu G, Doney S, McWilliams J (2000) Decadal variability and predictability in the midlatitude ocean–atmosphere system. J Clim 15:1073–1097

    Article  Google Scholar 

  • Saravanan R, McWilliams JC (1995) Multiple equilibria, natural variability, and climate transitions in an idealized ocean–atmsophere model. J Clim 8:2296–2323

    Article  Google Scholar 

  • Saravanan R, McWilliams JC (1998) Advective ocean–atmosphere interaction: an analytical stochastic model with implications for decadal variability. J Clim 11:165–188

    Article  Google Scholar 

  • Sutton RT, Allen MR (1997) Decadal predictability of North Atlantic sea surface temperature and climate. Nature 388:563–565

    Article  Google Scholar 

  • Timmermann A, Latif M, Voss R, Grotzner A (1998) Northern hemispheric interdecadal variability: a coupled air–sea mode. J Clim 11:1906–1931

    Google Scholar 

  • Vallis GK (2006) Atmospheric and oceanic fluid dynamics: fundamentals and large-scale circulation. Cambridge University Press, Cambridge, p 745

    Google Scholar 

  • Vallis GK, Gerber EP (2008) Local and hemispheric dynamics of the North Atlantic oscillation, annular patterns and the zonal index. Dyn Atmos Oceans 44:184–212

    Article  Google Scholar 

  • von Storch H, Zwiers FW (2001) Statistical analysis in climate research. Cambridge Univesity Press, Cambridge, p 484

    Google Scholar 

  • Winton M (2000) A reformulated three-layer sea ice model. J Atmos Ocean Tech 17:525–531

    Article  Google Scholar 

  • Zhu X, Jungclaus J (2008) Interdecadal variability of the meridional overturning circulation as an ocean internal mode. Clim Dyn 31(6):731–741

    Article  Google Scholar 

Download references

Acknowledgments

The authors would like to thank D. Frierson, S. Griffies, S. Malyshev, S. Garner, C. Milly and R. Pacanowski for help and discussions at various stages in the development of this study. Two anonymous reviewers provided insightful comments and suggestions on the manuscript and helped improve its presentation. This work was funded by NOAA and NSF.

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Correspondence to Riccardo Farneti.

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Farneti, R., Vallis, G.K. Mechanisms of interdecadal climate variability and the role of ocean–atmosphere coupling. Clim Dyn 36, 289–308 (2011). https://doi.org/10.1007/s00382-009-0674-9

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  • DOI: https://doi.org/10.1007/s00382-009-0674-9

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