Hostname: page-component-76fb5796d-x4r87 Total loading time: 0 Render date: 2024-04-28T08:07:48.248Z Has data issue: false hasContentIssue false

An Example of Climate-relevant Processes Unresolved by Present-day General Circulation Models

Published online by Cambridge University Press:  24 August 2009

Martin Beniston
Affiliation:
Swiss National Climate Programme (ProClim), Bärenplatz 2, 3001 Bern and Institute of Geography, Swiss Federal Institute of Technology, Zürich, Switzerland
J. Pérez-Sanchez
Affiliation:
ETS Ingenieros Industrials, Universidad de Gran Canaria, Las Palmas, Spain.

Abstract

Image of the first page of this content. For PDF version, please use the ‘Save PDF’ preceeding this image.'
Type
Short Communications & Reports
Copyright
Copyright © Foundation for Environmental Conservation 1992

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Beniston, M. (1984). A numerical study of atmospheric cellular convection. Dyn. Atmos. Oceans, 8, pp. 223–42, illustr.Google Scholar
Beniston, M. (1985). Organization of convection in response to initial and lower boundary conditions in a mesoscale numerical model. Contr. Atm. Phys., 58, pp. 3152, illustr.Google Scholar
Beniston, M. (1987). A numerical study of atmospheric pollution over complex terrain in Switzerland. Boundary Layer Meteorology, 41, pp. 7596, illustr.CrossRefGoogle Scholar
Beniston, M. & Schmetz, J. (1985). A three-dimensional study of mesoscale model response to radiative forcing. Boundary Layer Meteorol., 31, pp. 149–75, illustr.CrossRefGoogle Scholar
Beniston, M., Wolf, J. P., Beniston-Rebetez, M., Kölsch, H. J., Rairoux, P. & Wöste, L. (1990). Use of Lidar measurements and numerical models in air pollution research. J. Geophys. Res., 95, D7, pp. 9879–94, illustr.CrossRefGoogle Scholar
Chopra, K.P. (1973). Atmospheric wake and oceanic flow problems introduced by islands. Adv. Geophys., 16, pp. 297421, illustr.Google Scholar
Dickenson, R.E. (1989). Phil. Trans. Roy. Soc., Ser. B, pp. 423–31, illustr.Google Scholar
Henderson-Sellers, A. & McGuffie, K. (1987). A Climate Modeling Primer. J. Wiley, Chichester, England, UK: 217 pp., illustr.Google Scholar
Houghton, J.T., Jenkins, G.J. & Ephraums, J.J. (1990). Climate Change: The IPCC Scientific Assessment. Cambridge University Press, Cambridge, England, UK: 365 pp., illustr.Google Scholar
Pielke, R.A. (1988). Evaluation of climate change using numerical models. Pp. 6172 in Monitoring Climate for the Effects of Increasing Greenhouse Gas Concentrations (Eds Pielke, R.A. & Kittel, T.). CIRA Publications, Fort Collins, Colorado, USA: [not available for checking].Google Scholar
Pielke, R.A. (1990). Overlooked Scientific Issues in Assessing Hypothesized Greenhouse Gas Warming. Electric Utility Business Environment Conference and Exhibition, 03 1990, Denver, Colorado. [Not available for checking.]Google Scholar
Saltzmann, B. (Ed.) (1983). Theory of Climate (Advances in Geophysics, Vol. 25). Academic Press, New York, NY, USA: 505 pp., illustr.Google Scholar