INTERDECADAL VARIABILITY IN A HYBRID COUPLED OCEAN-ATMOSPHERE MODEL

Authors
Citation
F. Chen et M. Ghil, INTERDECADAL VARIABILITY IN A HYBRID COUPLED OCEAN-ATMOSPHERE MODEL, Journal of physical oceanography, 26(8), 1996, pp. 1561-1578
Citations number
78
Categorie Soggetti
Oceanografhy
ISSN journal
00223670
Volume
26
Issue
8
Year of publication
1996
Pages
1561 - 1578
Database
ISI
SICI code
0022-3670(1996)26:8<1561:IVIAHC>2.0.ZU;2-W
Abstract
A hybrid coupled ocean-atmosphere model is used to investigate low-fre quency variability in the climate system. The model's atmospheric comp onent is a Budyko-Sellers-North, two-dimensional energy-balance model; the oceanic component is a simplified general circulation model. The coupled model is confined to an idealized, rectangular North Atlantic basin. In the present model version, the ocean density depends exclusi vely on temperature. An interdecadal oscillation with a period of 40-5 0 years is found in the hybrid coupled model when model parameters are within the climatological range, even though density does not depend on salinity. This interdecadal oscillation is characterized by a pair of vortices of opposite signs, that grow and decay in quadrature with each other in the ocean's upper layer; their centers follow each other anticlockwise through the northwestern quadrant of the model domain.T he interdecadal oscillation's physical mechanism resembles that of the interdecadal oscillation analyzed in an earlier, uncoupled model by t he same authors. Central to the mechanism is the prescribed component in the surface heat fluxes. In this coupled model, the prescribed forc ing component comes from solar radiation. Surface-density variations i n high latitudes drive the oscillation and are due to the cooling effe ct of atmospheric forcing there. Sensitivity studies are performed by adjusting two free parameters in the model: the atmospheric thermal di ffusion coefficient and air-sea coupling coefficient. The 40-50 year o scillation arises by Hopf bifurcation as the model parameters cross th e neutral stability curve. The resulting limit cycle is fairly robust, exists in a wide parameter range, and responds more to the diffusion parameter than the coupling parameter. Larger values of both parameter s reduce the amplitude of the interdecadal oscillation, but neither af fects crucially its period.