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Nondeterministic Theories of Climatic Change

Published online by Cambridge University Press:  20 January 2017

Edward N. Lorenz*
Affiliation:
Massachusetts Institute of Technology, Cambridge, Massachusetts 02139 USA

Abstract

A basic assumption in some climatic theories is that, given the physical properties of the atmosphere and the underlying ocean and land, specified environmental parameters (amount of solar heating, etc.) would determine a unique climate and that climatic changes therefore result from changes in the environment. The possibility that no such unique climate exists and that nondeterministic factors are wholly or partly responsible for long-period fluctuations of the atmosphere-ocean-earth system, is considered. A simple difference equation is used to illustrate the phenomena of transitivity, intransitivity, and almost-intransitivity. Numerical models of moderate size suggest that almost-intransitivity might lead to persistence of atmospheric anomalies for a whole season. The effect of this persistence could be to allow substantial anomalies to build up in the underlying ocean or land, perhaps as abnormal temperatures or excessive snow or ice. These anomalies could subsequently influence the atmosphere, leading to long-period fluctuations. The implications of this possibility for the numerical modeling of climate, and for the interpretation of the output of numerical models, are discussed.

Type
Research Article
Copyright
University of Washington

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References

Bjerknes, J., (1969). Atmospheric teleconnections from the equatorial Pacific. Monthly Weather Review 97 163172.2.3.CO;2>CrossRefGoogle Scholar
Davies, T.V., (1956). The forced flow due to heating of a rotating liquid. Philosophical Transactions of the Royal Society of London 249 2764Series A.Google Scholar
Fultz, D., Long, R.R., Owens, G.V., Bohan, W., Kaylor, R., Weil, J., (1959). Studies of thermal convection in a rotating cylinder with some implications for large-scale atmospheric motions. Meteorological Monographs 4 No. 21 1104.Google Scholar
Lamb, H.H., (1972). Climate: Present, Past, and Future Methuen LondonChapter 7.Google Scholar
Leith, C.E., (1973). The standard error of time-average estimates of climatic means. Journal of Applied Meteorology 12 10661069.2.0.CO;2>CrossRefGoogle Scholar
Lorenz, E.N., (1962). Simplified dynamic equations applied to the rotating-basin experiments. Journal of Atmospheric Science 19 3951.2.0.CO;2>CrossRefGoogle Scholar
Lorenz, E.N., (1964). The problem of deducing the climate from the governing dynamic equations. Tellus 20 111.Google Scholar
Lorenz, E.N., (1968). Climatic determinism. Meteorological Monographs 8 No. 30 13.Google Scholar
Manabe, S., Weatherald, R.T., (1975). The effects of doubling the CO2 concentration on the climate of a general circulation model. Journal of Atmospheric Science 32 315.2.0.CO;2>CrossRefGoogle Scholar
Mitchell, J.M., (1965). Causes of climatic change. Meteorological Monographs 8 1159No. 30.Google Scholar
Namias, J., (1969). Seasonal interactions between the North Pacific Ocean and the atmosphere during the 1960's. Monthly Weather Review 97 173192.2.3.CO;2>CrossRefGoogle Scholar
Sellers, W.D., (1965). Physical Climatology University of Chicago Press ChicagoChapter 13.Google Scholar
Warshaw, M., Rapp, R.R., (1973). An experiment on the sensitivity of a global circulation model. Journal of Applied Meteorology 12 4349.2.0.CO;2>CrossRefGoogle Scholar