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On the nature of the longitudinal anomaly of the southern hemisphere lower stratospheric temperature

Published online by Cambridge University Press:  01 September 2008

Luis Eduardo Antunes Vieira
Affiliation:
Max-Planck-Institut für Sonnensystemforschung, 37191 Katlenburg-Lindau, Germany email: vieira@mps.mpg.de
Ligia Alves da Silva
Affiliation:
Instituto Nacional de Pesquisas Espaciais, 12227-010 Sao Jose dos Campos, Brazil email: dasilva@mps.mpg.de
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Abstract

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The effects of changes in the solar radiative emission on ozone levels in the stratosphere have been considered as a candidate to explain the link between solar activity and its effects on the climate. As ozone absorbs electromagnetic radiation, changes in ozone concentrations alter Earth's radiative balance by modifying both incoming solar radiation and outgoing radiation. In this way, ozone controls solar energy deposition in the stratosphere and its variations alter the thermal structure of the stratosphere. These changes are assumed to propagate downward through a chain of feedbacks involving thermal and dynamical processes. The effects of high energy particle precipitation on mesospheric and stratospheric ozone have also been investigated. However, while the effects of high energy particle precipitation on ozone distribution in the auroral region has been investigated during the last decades, little is known about the role of the high energy particle precipitation on the stratospheric composition and thermal structure in the tropical/subtropical region. Here we show that the spatial distribution of the lower stratosphere temperature is affected by the presence of the southern hemisphere magnetic anomaly. We found that during the austral winter and spring, in the subtropical region (below 30 deg S), the reduction of the lower stratosphere temperature occurs systematically in the magnetic anomaly area. This result is consistent with the observations that in the southern hemisphere subtropical region the energy of precipitating particles is deposited lower in altitude in regions with weaker magnetic field intensity.

Type
Contributed Papers
Copyright
Copyright © International Astronomical Union 2009

References

Crook, J. A., Gillett, N. P., & Keeley, S. P. E. 2008, Geophys. Res. Lett., 35, L07806, doi:10.1029/2007GL032698.Google Scholar
Cubasch, U. & Voss, R. 2000, Space Science Reviews, 94 (1-2), 185198.Google Scholar
Da Silva, L. A., Vieira, L. E. A., Echer, E., & Satyamurty, P. 2008, JASTP, submitted.Google Scholar
Gledhill, J. A. 1976, Reviews of Geophysics, 14 (2), 173187.Google Scholar
Grytsai, A. V., Evtushevsky, O. M., Agapitov, O. V., Klekociuk, A. R., & Milinevsky, G. P. 2007, Ann. Geophys., 25, 361374.Google Scholar
Pinto, O. & Gonzalez, W. D. 1986, Journal of Geophysical Research, 91 (A6), 70727078.Google Scholar
Pinto, O. & Gonzalez, W. D. 1989, Journal of Atmospheric and Terrestrial Physics, 51 (5), 351365.Google Scholar
Pinto, O., Kirchhoff, V., & Gonzalez, W. D. 1990, Annales Geophysicae-Atmospheres Hydrospheres and Space Sciences, 8 (5), 365367.Google Scholar
Randall, C. E., et al. 2006, Geophysical Research Letters, 33.Google Scholar
Rossow, W. B. & Schiffer, R. A. 1991, Bulletin of the American Meteorological Society, 72, 220.Google Scholar
Vampola, A. & Gorney, D. 1983, J. Geophys. Res., 88 (A8), 62676274.Google Scholar
Vieira, L. E. A. & da Silva, L. A. 2006, Geophys. Res. Lett., 33, L14802, doi:10.1029/2006GL026389.Google Scholar
Vieira, L. E. A., da Silva, L. A., & Guarnieri, F. L. 2008, J. Geophys. Res., 113, A08226, doi:10.1029/2008JA013052.Google Scholar
Vincent, D. G. 1994, Monthly Weather Review, 122, 19491970.Google Scholar