References

Betts, K. (1986), A new convective adjustment scheme, Part I, Observational and theoretical basis, Q. J. R. Meteorol. Soc., 112, 677.

Broccoli, A., and, et al. (2003), Twentieth-century temperature and precipitation trends in ensemble climate simulations including natural and anthropogenic forcing, J. Geophys. Res., 108, 4798, doi:10.1029/2003JD003812. [CrossRef]

Budyko, M. I. (1980), Climate in the past and future (in Russian), 355 pp., Gidrometeoizdat, Leningrad.

Covey, C., K. M. AchutaRao, S. J. Lambert, and K. E. Taylor (2000), Intercomparison of present and future climates simulated by coupled ocean-atmosphere GCMs, PCMDI Report, no. 66, Lawrence Livermore National Laboratory, http://www-pcmdi.llnl.gov/publications/pdf/report66/.

Diansky, N. A., and E. M. Volodin (2002), Simulation of present-day climate with a coupled atmosphere-ocean general circulation model, Izv., Atmos. Ocean. Phys., 38, 732.

Diansky, N. A., A. V. Bagno, and V. B. Zalesny (2002), Sigma model of ocean global ocean circulation and its sensitivity to variations in wind stress, Izv., Atmos. Ocean. Phys., 38, 477.

Dymnikov, V. P., and A. N. Filatov (1994), Principles of mathematical theory of climate (in Russian), 254 pp., VINITI, Moscow.

Dymnikov, V. P., and A. N. Filatov, et al. (2005), Current problems of numerical mathematics and mathematical modeling, Modeling climate and its changes, in: Collection of Papers in Two Volumes Devoted to the 80th Birthday of G. I. Marchuk and 25th Anniversary of the INM RAS, vol. 2 (in Russian), p. 13, Nauka, Moscow.

Galin, V. Ya. (1998), Parametrization of radiative processes in the DNM atmospheric model, Izv., Atmos. Ocean. Phys., 34, 339.

Galin, V. Ya., E. M. Volodin, and S. P. Smyshlyaev (2003), INM RAS atmospheric general circulation model with ozone dynamics, Meteorol. Gidrol., No. 5, 13.

Hall, M. M., and H. L. Bryden (1982), Direct estimates and mechanisms of ocean heat transport, Deep-Sea Res., 29, 339, doi:10.1016/0198-0149(82)90099-1. [CrossRef]

Hines, C. O. (1997), Doppler spread parametrization of gravity wave momentum deposition in the middle atmosphere, Part 2, Broad and quasimonochromatic spectra, and implementation, J. Atmos. Solar Terr. Phys., 59, 387, doi:10.1016/S1364-6826(96)00080-6. [CrossRef]

Jones, P. D., and H. L. Bryden, et al. (1999), Surface air temperature and its changes over the past 150 years, Rev. Geophys., 37, 173, doi:10.1029/1999RG900002. [CrossRef]

Macdonald, A. M., and C. Wunsh (1996), An estimate of global ocean circulation and heat fluxes, Nature, 382, 436, doi:10.1038/382436a0. [CrossRef]

Marchuk, G. I. (1980), Methods of Numerical Mathematics, 2nd ed., 570 pp., Nauka, Moscow (Springer, New York, 1975).

Meehl, G., and C. Wunsh, et al. (2004), Combination of natural and anthropogenic forcings in twentieth-century climate, J. Clim., 17, 3721, doi:10.1175/1520-0442(2004)017<3721:CONAAF>2.0.CO;2. [CrossRef]

Pacanovsky, R. C., and G. Philander (1981), Parametrization of vertical mixing in numerical models of the Tropical Ocean, J. Phys. Oceanogr., 11, 1442.

Palmer, T. N., G. J. Shutts, and R. Swinbank (1986), Alleviation of a systematic westerly bias in general circulation and numerical weather prediction models through an orographic gravity wave drag parameterization, Q. J. R. Meteorol. Soc., 112, 1001, doi:10.1002/qj.49711247406. [CrossRef]

Sarkisyan, A. S., V. B. Zalesny, and N. A. Diansky (2005), Current problems of numerical mathematics and mathematical modeling, mathematical models of ocean and sea circulation, in: Collection of Papers in Two Volumes Devoted to the 80th Birthday of G. I. Marchuk and 25th Anniversary of the INM RAS, vol. 2 (in Russian), p. 174, Nauka, Moscow.

Solomon, S., D. Qin, M. Manning, Z. Chen, M. Marquis, K. B. Averyt, M. Tignor, and H. L. Miller, Eds. (2007), Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change, 996 pp., Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA.

Steele, M., R. Morley, and W. Ermold (2001), A global ocean hydrography with a High Quality Arctic Ocean, J. Clim., 14, 2079, doi:10.1175/1520-0442(2001)014<2079:PAGOHW>2.0.CO;2. [CrossRef]

Volodin, E. M., and N. A. Diansky (2003), Response of a coupled atmosphere-ocean general circulation model to increased carbon dioxide, Izv., Atmos. Ocean. Phys., 39, 170.

Volodin, E. M., and N. A. Diansky (2004), Simulation of El Ni n o in a coupled ocean-atmosphere general circulation model, Meteorol. Gidrol., No. 12, 5.

Volodin, E. M., and V. N. Lykosov (1998), Parametrization of neat and moisture transfer in the soil-vegetation systemm for Uxe in atmospheric general circulation models: 1. Formulation and simulations based on local observational data, Izv., Atmos. Ocean. Phys., 34, 405.

Volodin, E. M., and V. N. Lykosov, et al. (2004), Relation between the global-warming parameter and the heat balance on the Earth's surface at increased contents of carbon dioxide, Izv., Atmos. Ocean. Phys., 40, 269.

Waple, A. M., R. C. Schnell, and R. S. Stone (2004), State of climate in 2003, Polar climate, Bull. Am. Meteorol. Soc., 85, 29.

Yakovlev, N. G. (2003), Coupled model of ocean general circulation and sea ice evolution in the Arctic Ocean, Izv., Atmos. Ocean. Phys., 39, 355.


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