Numerical Modeling of Atmospheric Temperature and Stratospheric Ozone Sensitivity to Sea Surface Temperature Variability

Author:

Smyshlyaev Sergei P.1ORCID,Jakovlev Andrew R.1ORCID,Galin Vener Ya2

Affiliation:

1. Department of Meteorological Forecasting, Russian State Hydrometeorological University, 79 Voronezhskaya Str., 192007 St. Petersburg, Russia

2. Institute of Numerical Mathematics RAS, Gubkina Str., 8, 119991 Moscow, Russia

Abstract

The results of numerical experiments with a chemistry–climate model of the lower and middle atmosphere are presented to study the sensitivity of the polar stratosphere of the Northern and Southern Hemispheres to sea surface temperature (SST) variability, both as a result of interannual variability associated with the Southern Oscillation, and because of long-term increases in SST under global warming. An analysis of the results of model experiments showed that for both scenarios of SST changes, the response of the polar stratosphere for the Northern and Southern Hemispheres is very different. In the Arctic, during the El Niño phase, conditions are created for the polar vortex to become less stable, and in the Antarctic, on the contrary, for it to become more stable, which is expressed in a weakening of the zonal wind in the winter in the Arctic and its increase in the Antarctic, followed by a spring decrease in temperature and concentration of ozone in the Antarctic and their increase in the Arctic. Global warming creates a tendency for the polar vortex to weaken in winter in the Arctic and strengthen it in the Antarctic. As a result, in the Antarctic, the concentration of ozone in the polar stratosphere decreases both in winter (June–August) and, especially, in spring (September–November). Global warming may hinder ozone recovery which is expected as a result of the reduced emissions of ozone-depleting substances. The model results demonstrate the dominant influence of Brewer–Dobson circulation variability on temperature and ozone in the polar stratosphere compared with changes in wave activity, both with changes in SST in the Southern Oscillation and with increases in SST due to global warming.

Funder

Russian Science Foundation

Publisher

MDPI AG

Reference51 articles.

1. Taylor, K.E., Williamson, D., and Zwiers, F. (2000). The Sea Surface Temperature and Sea-Ice Concentracion Boundary Conditions for AMIP II Simulations, Prigram for Climate Model Diagnosis and Intercomparison, University of California. Lawrwnce Livermore National Laboratory.

2. Global warming in the twenty-first century: Analternative scenario;Hansen;Proc. Natl. Acad. Sci. USA,2000

3. Decadal atmosphere-ocean variations in the Pacific;Trenberth;Clim. Dyn.,1994

4. The impactt of global warming on the tropical Pacific Ocean and El Niño;Collins;Nat. Geosci.,2010

5. Jakovlev, A.R., Smyshlyaev, S.P., and Galin, V.Y. (2021). Interannual Variability and Trends in Sea Surface Temperature, Lower and Middle Atmosphere Temperature at Different Latitudes for 1980–2019. Atmosphere, 12.

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