Back to Search Start Over

Radiative forcing since preindustrial times due to ozone change in the troposphere and the lower stratosphere.

Authors :
Gauss, M.
Myhre, G.
Isaksen, I. S. A.
Collins, W. J.
Dentener, F. J.
Ellingsen, K.
Gohar, L. K.
Grewe, V.
Hauglustaine, D. A.
Iachetti, D.
Lamarque, J.-F.
Mancini, E.
Mickley, L. J.
Pitari, G.
Prather, M. J.
Pyle, J. A.
Sanderson, M. G.
Shine, K. P.
Stevenson, D. S.
Sudo, K.
Source :
Atmospheric Chemistry & Physics Discussions; 2005, Vol. 5 Issue 4, p5751-5807, 57p
Publication Year :
2005

Abstract

Changes in atmospheric ozone have occurred since the preindustrial era as a result of increasing anthropogenic emissions. Within ACCENT, a European Network of Excellence, ozone changes between 1850 and 2000 are assessed for the troposphere and the lower stratosphere (up to 30 km) by a variety of seven chemistry-climate models and three chemical transport models. The modeled ozone changes are taken as input for detailed calculations of radiative forcing. When only changes in chemistry are considered (constant climate) the modeled global-mean tropospheric ozone column increase since preindustrial times ranges from 7.9DU to 13.8DU among the ten participating models, while the stratospheric column reduction lies between 14.1DU and 47.9DU in the models considering stratospheric chemistry. The resulting radiative forcing is strongly dependent on the location and altitude of the modeled ozone change and varies between 0.26Wm<superscript>-2</superscript> and 0.53Wm<superscript>-2</superscript> due to ozone change in the troposphere and -0.25Wm<superscript>-2</superscript> and +0.12Wm<superscript>-2</superscript> due to the stratospheric ozone change. Changes in ozone and other greenhouse gases since preindustrial times have altered climate. Six out of the ten participating models have performed an additional calculation taking into account both chemical and climate change. The isolated effect of climate change is an enhancement of the tropospheric ozone column increase in all models, ranging from 1% to 37%, while the stratospheric reduction becomes slightly less severe in most models. In the three climate-chemistry models with detailed tropospheric and stratospheric chemistry the inclusion of climate change increases the resulting radiative forcing due to tropospheric ozone change by up to 0.08Wm<superscript>-2</superscript>, while the radiative forcing due to stratospheric ozone change is reduced by up to 0.14Wm<superscript>-2</superscript>. Considering tropospheric and stratospheric change combined, the total ozone column change is negative while the resulting net radiative forcing is positive. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
16807367
Volume :
5
Issue :
4
Database :
Complementary Index
Journal :
Atmospheric Chemistry & Physics Discussions
Publication Type :
Academic Journal
Accession number :
18890417
Full Text :
https://doi.org/10.5194/acpd-5-5751-2005