Articles | Volume 2, issue 2
https://doi.org/10.5194/gmd-2-267-2009
https://doi.org/10.5194/gmd-2-267-2009
15 Dec 2009
 | 15 Dec 2009

Quantifying atmospheric transport, chemistry, and mixing using a new trajectory-box model and a global atmospheric-chemistry GCM

H. Riede, P. Jöckel, and R. Sander

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Cited articles

Arteta, J. and Cautenet, S.: Study of ozone distribution over the south-eastern France ({ESCOMPTE} campaign): discrimination between ozone tendencies due to chemistry and to transport, J. Atmos. Chem., 58, 111–130, 2007.
Barbosa, P. M., Stroppiana, D., and Grégoir, J.-M.: An assessment of vegetation fire in Africa (1981–1991): Burned areas, burned biomass, and atmospheric emissions, Global Biogeochem. Cy., 13, 933–950, 1999.
Jang, J. C., Jeffries, H. E., and Tonnesen, S.: Sensitivity of ozone to model grid resolution – II. Detailed process analysis for ozone chemistry, Atmos. Environ., 29, 3101–3114.
Jöckel, P., Sander, R., Kerkweg, A., Tost, H., and Lelieveld, J.: Technical Note: The Modular Earth Submodel System (MESSy) – a new approach towards Earth System Modeling, Atmos. Chem. Phys., 5, 433–444, 2005.
Jöckel, P., Tost, H., Pozzer, A., Brühl, C., Buchholz, J., Ganzeveld, L., Hoor, P., Kerkweg, A., Lawrence, M. G., Sander, R., Steil, B., Stiller, G., Tanarhte, M., Taraborrelli, D., van Aardenne, J., and Lelieveld, J.: The atmospheric chemistry general circulation model ECHAM5/MESSy1: consistent simulation of ozone from the surface to the mesosphere, Atmos. Chem. Phys., 6, 5067–5104, 2006.