A major event of Antarctic ozone hole influence in southern Brazil in October 2016: an analysis of tropospheric and stratospheric dynamics
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Published:2018-03-16
Issue:2
Volume:36
Page:415-424
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ISSN:1432-0576
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Container-title:Annales Geophysicae
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language:en
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Short-container-title:Ann. Geophys.
Author:
Bittencourt Gabriela Dornelles, Bresciani Caroline, Kirsch Pinheiro Damaris, Bageston José Valentin, Schuch Nelson Jorge, Bencherif Hassan, Leme Neusa Paes, Vaz Peres LucasORCID
Abstract
Abstract. The Antarctic ozone hole is a cyclical phenomenon that occurs
during the austral spring where there is a large decrease in ozone content in
the Antarctic region. Ozone-poor air mass can be released and leave through
the Antarctic ozone hole, thus reaching midlatitude regions. This phenomenon
is known as the secondary effect of the Antarctic ozone hole. The objective
of this study is to show how tropospheric and stratospheric dynamics behaved
during the occurrence of this event. The ozone-poor air mass began to operate
in the region on 20 October 2016. A reduction of ozone content of
approximately 23 % was observed in relation to the climatology average
recorded between 1992 and 2016. The same air mass persisted over the region
and a drop of 19.8 % ozone content was observed on 21 October. Evidence
of the 2016 event occurred through daily mean measurements of the total ozone
column made with a surface instrument (Brewer MkIII no. 167
Spectrophotometer) located at the Southern Space Observatory
(29.42∘ S, 53.87∘ W) in São Martinho da Serra, Rio Grande do Sul.
Tropospheric dynamic analysis showed a post-frontal high pressure system on
20 and 21 October 2016, with pressure levels at sea level and thickness between 1000
and 500 hPa. Horizontal wind cuts at 250 hPa and omega values at 500 hPa revealed
the presence of subtropical jet streams. When these streams were allied with
positive omega values at 500 hPa and a high pressure system in southern Brazil and Uruguay, the advance of the ozone-poor air mass that caused
intense reductions in total ozone content could be explained. Keywords. Atmospheric composition and structure (middle atmosphere – composition and chemistry)
Publisher
Copernicus GmbH
Subject
Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Atmospheric Science,Geology,Astronomy and Astrophysics
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