Simulated variability of the Atlantic meridional overturning circulation

被引:0
作者
M. Bentsen
H. Drange
T. Furevik
T. Zhou
机构
[1] Nansen Environmental and Remote Sensing Center,Geophysical Institute
[2] Bjerknes Centre for Climate Research,State Key Laboratory of Numerical Modeling for Atmospheric Sciences and Geophysical Fluid Dynamics (LASG)/Institute of Atmospheric Physics
[3] University of Bergen,undefined
[4] Nansen-Zhu International Research Centre,undefined
[5] Chinese Academy of Sciences,undefined
来源
Climate Dynamics | 2004年 / 22卷
关键词
Atlantic Meridional Overturning Circulation; North Atlantic Oscillation; Ocean General Circulation Model; Subpolar Gyre; Atlantic Meridional Overturning Circulation Variability;
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学科分类号
摘要
To examine the multi-annual to decadal scale variability of the Atlantic Meridional Overturning Circulation (AMOC) we conducted a four-member ensemble with a daily reanalysis forced, medium-resolution global version of the isopycnic coordinate ocean model MICOM, and a 300-years integration with the fully coupled Bergen Climate Model (BCM). The simulations of the AMOC with both model systems yield a long-term mean value of 18 Sv and decadal variability with an amplitude of 1–3 Sv. The power spectrum of the inter-annual to decadal scale variability of the AMOC in BCM generally follows the theoretical red noise spectrum, with indications of increased power near the 20-years period. Comparison with observational proxy indices for the AMOC, e.g. the thickness of the Labrador Sea Water, the strength of the baroclinic gyre circulation in the North Atlantic Ocean, and the surface temperature anomalies along the mean path of the Gulf Stream, shows similar trends and phasing of the variability, indicating that the simulated AMOC variability is robust and real. Mixing indices have been constructed for the Labrador, the Irminger and the Greenland-Iceland-Norwegian (GIN) seas. While convective mixing in the Labrador and the GIN seas are in opposite phase, and linked to the NAO as observations suggest, the convective mixing in the Irminger Sea is in phase with or leads the Labrador Sea. Newly formed deep water is seen as a slow, anomalous cold and fresh, plume flowing southward along the western continental slope of the Atlantic Ocean, with a return flow of warm and saline water on the surface. In addition, fast-travelling topographically trapped waves propagate southward along the continental slope towards equator, where they go east and continue along the eastern rim of the Atlantic. For both types of experiments, the Northern Hemisphere sea level pressure and 2 m temperature anomaly patterns computed based on the difference between climate states with strong and weak AMOC yields a NAO-like pattern with intensified Icelandic low and Azores high, and a warming of 0.25–0.5 °C of the central North Atlantic sea-surface temperature (SST). The reanalysis forced simulations indicate a coupling between the Labrador Sea Water production rate and an equatorial Atlantic SST index in accordance with observations. This coupling is not identified in the coupled simulation.
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页码:701 / 720
页数:19
相关论文
共 77 条
[1]  
Alley MM(1998)Direct estimates and mechanisms of ocean heat transport Nature 392 335-359
[2]  
Bentsen HL(1999)On the relationship between dense water formation and the “meridional overturning cell” in the North Atlantic Ocean Mon Weather Rev 127 2733-894
[3]  
Bleck C(1992)Is Labrador Sea Water formed in the Irminger basin? J Phys Oceanogr 22 1486-52
[4]  
Bond S(1993)Oasis: le couplage océan–atmosphère Nature 365 143-61
[5]  
Bower RS(2000)Evidence for decadal variability in an ocean general circulation model: an advective mechanism J Phys Oceanogr 30 764-231
[6]  
Broecker F(1997)undefined Science 278 1582-undefined
[7]  
Clark GWK(2002)undefined Nature 415 863-undefined
[8]  
Covey L(2003)undefined Glob Planet Change 37 103-undefined
[9]  
Curry O(2001)undefined J Phys Oceanogr 31 3374-undefined
[10]  
Curry AJ(1998)undefined Nature 391 575-undefined