Intercomparison and interpretation of climate feedback processes in 19 atmospheric general circulation models

Author:

Cess R. D.,Potter G. L.,Blanchet J. P.,Boer G. J.,Del Genio A. D.,Déqué M.,Dymnikov V.,Galin V.,Gates W. L.,Ghan S. J.,Kiehl J. T.,Lacis A. A.,Le Treut H.,Li Z.-X.,Liang X.-Z.,McAvaney B. J.,Meleshko V. P.,Mitchell J. F. B.,Morcrette J.-J.,Randall D. A.,Rikus L.,Roeckner E.,Royer J. F.,Schlese U.,Sheinin D. A.,Slingo A.,Sokolov A. P.,Taylor K. E.,Washington W. M.,Wetherald R. T.,Yagai I.,Zhang M.-H.

Publisher

American Geophysical Union (AGU)

Subject

Paleontology,Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Atmospheric Science,Earth-Surface Processes,Geochemistry and Petrology,Soil Science,Water Science and Technology,Ecology,Aquatic Science,Forestry,Oceanography,Geophysics

Reference56 articles.

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2. Computational design of the basic dynamical processes of the UCLA general circulation model;Arakawa;Methods Comput. Phys.,1977

3. Thermodynamic constraint on the cloud liquid water feedback in climate models;Betts;J. Geophys. Res.,1987

4. The Canadian Climate Centre spectral atmospheric general circulation model;Boer;Atmos. Ocean,1984

5. A GCM simulation of the springtime Antarctic ozone decrease and its impact on mid-latitudes;Cariolle;J. Geophys. Res.,1990

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