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Fast Physics and Slow Physics in the Nonlinear Dansgaard–Oeschger Relaxation Oscillation
by
Vettoretti, Guido
, Peltier, W. Richard
in
Climate
/ Climate models
/ Climate variability
/ Computer simulation
/ Convective instability
/ Deep water
/ Deep water formation
/ Destabilization
/ Dynamical systems
/ Freshwater
/ Freshwater budget
/ Freshwater ice
/ General circulation models
/ Glacial climates
/ Hydrograph analysis
/ Hydrography
/ Ice
/ Ice environments
/ Ice melting
/ Inland water environment
/ Instability
/ Isotopes
/ Latitude
/ Localization
/ Ocean circulation
/ Oceans
/ Physics
/ Polynyas
/ Pycnocline
/ Reduction
/ Relaxation oscillations
/ Salinity
/ Salinity effects
/ Salinity gradients
/ Salt advection
/ Sea ice
/ Stability
/ Water column
2018
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Fast Physics and Slow Physics in the Nonlinear Dansgaard–Oeschger Relaxation Oscillation
by
Vettoretti, Guido
, Peltier, W. Richard
in
Climate
/ Climate models
/ Climate variability
/ Computer simulation
/ Convective instability
/ Deep water
/ Deep water formation
/ Destabilization
/ Dynamical systems
/ Freshwater
/ Freshwater budget
/ Freshwater ice
/ General circulation models
/ Glacial climates
/ Hydrograph analysis
/ Hydrography
/ Ice
/ Ice environments
/ Ice melting
/ Inland water environment
/ Instability
/ Isotopes
/ Latitude
/ Localization
/ Ocean circulation
/ Oceans
/ Physics
/ Polynyas
/ Pycnocline
/ Reduction
/ Relaxation oscillations
/ Salinity
/ Salinity effects
/ Salinity gradients
/ Salt advection
/ Sea ice
/ Stability
/ Water column
2018
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Do you wish to request the book?
Fast Physics and Slow Physics in the Nonlinear Dansgaard–Oeschger Relaxation Oscillation
by
Vettoretti, Guido
, Peltier, W. Richard
in
Climate
/ Climate models
/ Climate variability
/ Computer simulation
/ Convective instability
/ Deep water
/ Deep water formation
/ Destabilization
/ Dynamical systems
/ Freshwater
/ Freshwater budget
/ Freshwater ice
/ General circulation models
/ Glacial climates
/ Hydrograph analysis
/ Hydrography
/ Ice
/ Ice environments
/ Ice melting
/ Inland water environment
/ Instability
/ Isotopes
/ Latitude
/ Localization
/ Ocean circulation
/ Oceans
/ Physics
/ Polynyas
/ Pycnocline
/ Reduction
/ Relaxation oscillations
/ Salinity
/ Salinity effects
/ Salinity gradients
/ Salt advection
/ Sea ice
/ Stability
/ Water column
2018
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Fast Physics and Slow Physics in the Nonlinear Dansgaard–Oeschger Relaxation Oscillation
Journal Article
Fast Physics and Slow Physics in the Nonlinear Dansgaard–Oeschger Relaxation Oscillation
2018
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Overview
The Dansgaard–Oeschger (D-O) relaxation oscillation that governed glacial climate variability during marine isotope stage 3 has been accurately simulated using a high-resolution coupled climate model. Here the authors present additional detailed analyses of both the slow physics transition between warm and cold states and the fast physics transition between cold and warm states of the D-O cycle. First, the authors demonstrate that the mechanisms active during the slow transition from interstadial to stadial conditions involves the continuous flux of thick and old sea ice from the Arctic basin into the North Atlantic subpolar gyre region along the East Greenland Current. During this slow physical process, the freshwater input from sea ice melting as it moves over the surface of the warm ocean restratifies the high-latitude North Atlantic and leads to a significant reduction in the rate of North Atlantic Deep Water formation. A detailed freshwater budget and hydrography analysis is also presented to demonstrate that the D-O cycle is a low-latitude–high-latitude salt oscillator as the authors have previously argued. Second, the authors provide a more detailed analysis than previously of the fast-time-scale processes that govern the extremely rapid transition from cold stadial conditions back to the warm interstadial state. These are associated with the onset of a sub-sea ice thermohaline convective instability, which opens a massive polynya to the north of the southern boundary of the extensive North Atlantic sea ice lid that is characteristic of stadial conditions. This instability is enabled by the continuous increase of salinity above the sub-sea ice pycnocline, which eliminates the vertical salinity gradient that prevents convective destabilization of the water column under full stadial conditions. This reduction in the vertical salinity gradient beneath the sea ice lid results from the continuing northward salt transport by the North Atlantic gyre circulation once the expansion of the stadial sea ice lid has ceased. The onset of instability occurs in the Irminger basin to the south of Denmark Strait, and the authors discuss the reason for this localization of instability onset.
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