AMOC MULTI-DECADAL VARIABILITY- MECHANISMS, .ppt
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1、AMOC MULTI-DECADAL VARIABILITY: MECHANISMS, THEIR ROBUSTNESS, AND IMPACTS OF MODEL CONFIGURATIONS,Gokhan Danabasoglu and Steve Yeager National Center for Atmospheric Research,OUTLINE,Many Coupled General Circulation Models (CGCMs) exhibit (multi-)decadal variability in their AMOCs.,Brief review of s
2、ome proposed mechanisms and their robustness- primarily CGCM studies - few idealized studies- not comprehensive Some results from the Community Climate System Model (CCSM4) to show impacts of model configuration and parameterizations on AMOC variability,CONSENSUS: Density anomalies in the sinking re
3、gions of AMOC drive these AMOC fluctuations.,T85x1,T42x1,T31x3,AMOCmax in CCSM3,Proposed AMOC Variability Mechanisms,Delworth et al. (1993, DMS93): GFDL R15 coupled model, 40-80 yr period,weak AMOC,reduced heat transport,cold, dense pool in middle North Atlantic,T anomalies generate cyclonic gyre ci
4、rculation,anomalous circulation transports S into the sinking region,S, density, and AMOC all increase,AMOCmax vs density regressions,DMS93 and Griffies & Tziperman (1995): Damped ocean-only mode excited by atmospheric noise,Weaver & Valcke (1998): coupled mode,Delworth & Greatbatch (2000): Damped o
5、cean-only mode, continuously excited by low-frequency atmospheric forcing, implications for NAO,Dai et al. (2005): Same DMS93 mechanism in PCM (25 yr),Dong & Sutton (2005): Same DMS93 mechanism in HadCM3 (25 yr),Both Dai et al. (2005) and Dong & Sutton (2005) suggest stronger ties to the NAO.,Freshw
6、ater Transport to / from Arctic Ocean and Nordic Seas,Delworth et al. (1997), GFDL R15, 40-80 yr: Enhanced transport of relatively fresh water and sea ice from the Arctic via the East Greenland Current and Denmark Strait. These anomalies propagate around the subpolar gyre into the Labrador Sea, capp
7、ing the convection. . Greenland Sea oscillations are implicated, but how they are generated is unknown.,Jungclaus et al. (2005), ECHAM5/MPI-OM, 70-80 yr: Storage and release of freshwater from the central Arctic to the Labrador Sea convection site along with circulation changes in the Nordic Seas du
8、e to Atlantic heat and salt transports. Damped ocean mode excited by atmosphere as in DMS93.,Freshwater Transport to / from Arctic Ocean and Nordic Seas,Oka et al. (2006), MIROC, 30-50 yr: Freshwater transport through the Denmark Strait results in deep convection see-saw between the Labrador Sea and
9、 Greenland Sea. Wind Stress / NAO changes are implicated and the variability is interpreted as a coupled mode.,Winter-time mixed layer depth (m),March-mean boundary layer depth (BLD) EOF1,AMOCmax vs density regressions,AMOC lagging,AMOC leading,-10,-5,0,5,10,Danabasoglu (2008), CCSM3 T85x1 present-d
10、ay control, 20 yr:,m,DOrgeville & Peltier (2009), CCSM3 T31x3 pre-industrial control, 60 yr: Similar in-phase T and S contributions to density, less role for NAO, but suggest gyre bathymetry interaction,Role for NAO,Same Model and Integration, but 2 Different Mechanisms (HadCM3, 90 yr),Vellinga & Wu
11、 (2004): Involves large scale air-sea interaction,AMOC +,increased NHT,generates cross Equatorial SST gradient,northward ITCZ shift,increased rainfall and FW flux into the ocean,surface salinity decreases,low salinities advected north into sinking regions,AMOC -,Same Model and Integration, but 2 Dif
12、ferent Mechanisms (HadCM3, 90 yr),Hawkins & Sutton (2007): Internal ocean modeChanges in the Nordic Seas convection lead to AMOC changes. Variations in salinity transports from the Arctic and from the North Atlantic are the main controlling feedbacks. Similar to Delworth et al. (1997) and Jungclaus
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