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  HEPPA-II model-measurement intercomparison project: EPP indirect effects during the dynamically perturbed NH winter 2008-2009

Funke, B., Ball, W., Bender, S., Gardini, A., Harvey, V. L., Lambert, A., et al. (2017). HEPPA-II model-measurement intercomparison project: EPP indirect effects during the dynamically perturbed NH winter 2008-2009. Atmospheric Chemistry and Physics, 17, 3573-3604. doi:10.5194/acp-17-3573-2017.

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 Creators:
Funke, Bernd1, Author
Ball, William1, Author
Bender, Stefan1, Author
Gardini, Angela1, Author
Harvey, V. Lynn1, Author
Lambert, Alyn1, Author
Lopez-Puertas, Manuel1, Author
Marsh, Daniel R.1, Author
Meraner, Katharina2, Author           
Nieder, Holger1, Author
Paivarinta, Sanna-Mari1, Author
Perot, Kristell1, Author
Randall, Cora E.1, Author
Reddmann, Thomas1, Author
Rozanov, Eugene1, Author
Schmidt, Hauke3, Author           
Seppala, Annika1, Author
Sinnhuber, Miriam1, Author
Sukhodolov, Timofei1, Author
Stiller, Gabriele P.1, Author
Tsvetkova, Natalia D.1, AuthorVerronen, Pekka T.1, AuthorVersick, Stefan1, Authorvon Clarmann, Thomas1, AuthorWalker, Kaley A.1, AuthorYushkov, Vladimir1, Author more..
Affiliations:
1external, ou_persistent22              
2Middle and Upper Atmosphere, The Atmosphere in the Earth System, MPI for Meteorology, Max Planck Society, ou_913574              
3Middle and Upper Atmosphere, The Atmosphere in the Earth System, MPI for Meteorology, Max Planck Society, ou_913574              

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Free keywords: ENERGETIC PARTICLE-PRECIPITATION; CHEMISTRY-CLIMATE MODEL; SOLAR PROTON EVENTS; MICROWAVE LIMB SOUNDER; OCTOBER-NOVEMBER 2003; WAVE INDUCED DRAG; LOWER THERMOSPHERE; MIDDLE ATMOSPHERE; NITRIC-OXIDE; ACE-FTS
 Abstract: We compare simulations from three high-top (with upper lid above 120 km) and five medium-top (with upper lid around 80 km) atmospheric models with observations of odd nitrogen (NOx D NO+NO2), temperature, and carbon monoxide from seven satellite instruments (ACE-FTS on SciSat, GOMOS, MIPAS, and SCIAMACHY on Envisat, MLS on Aura, SABER on TIMED, and SMR on Odin) during the Northern Hemisphere (NH) polar winter 2008/2009. The models included in the comparison are the 3-D chemistry transport model 3dCTM, the ECHAM5/MESSy Atmospheric Chemistry (EMAC) model, FinROSE, the Hamburg Model of the Neutral and Ionized Atmosphere (HAMMO-NIA), the Karlsruhe Simulation Model of the Middle Atmosphere (KASIMA), the modelling tools for SOlar Climate Ozone Links studies (SOCOL and CAO-SOCOL), and the Whole Atmosphere Community Climate Model (WACCM4). The comparison focuses on the energetic particle precipitation (EPP) indirect effect, that is, the polar winter descent of NOx largely produced by EPP in the mesosphere and lower thermosphere. A particular emphasis is given to the impact of the sudden stratospheric warming (SSW) in January 2009 and the subsequent elevated stratopause (ES) event associated with enhanced descent of mesospheric air. The chemistry climate model simulations have been nudged toward reanalysis data in the troposphere and stratosphere while being unconstrained above. An odd nitrogen upper boundary condition obtained from MIPAS observations has further been applied to medium-top models. Most models provide a good representation of the mesospheric tracer descent in general, and the EPP indirect effect in particular, during the unperturbed (pre-SSW) period of the NH winter 2008/2009. The observed NOx descent into the lower mesosphere and stratosphere is generally reproduced within 20 %. Larger discrepancies of a few model simulations could be traced back either to the impact of the models' gravity wave drag scheme on the polar wintertime meridional circulation or to a combination of prescribed NOx mixing ratio at the uppermost model layer and low vertical resolution. In March-April, after the ES event, however, modelled mesospheric and stratospheric NOx distributions deviate significantly from the observations. The too-fast and early downward propagation of the NO x tongue, encountered in most simulations, coincides with a temperature high bias in the lower mesosphere (0.2-0.05 hPa), likely caused by an overestimation of descent velocities. In contrast, upper-mesospheric temperatures (at 0.05-0.001 hPa) are generally underestimated by the high-top models after the onset of the ES event, being indicative for too-slow descent and hence too-low NOx fluxes. As a consequence, the magnitude of the simulated NOx tongue is generally underestimated by these models. Descending NOx amounts simulated with mediumtop models are on average closer to the observations but show a large spread of up to several hundred percent. This is primarily attributed to the different vertical model domains in which the NOx upper boundary condition is applied. In general, the intercomparison demonstrates the ability of state-of- the-art atmospheric models to reproduce the EPP indirect effect in dynamically and geomagnetically quiescent NH winter conditions. The encountered differences between observed and simulated NOx, CO, and temperature distributions during the perturbed phase of the 2009 NH winter, however, emphasize the need for model improvements in the dynamical representation of elevated stratopause events in order to allow for a better description of the EPP indirect effect under these particular conditions.

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Language(s): eng - English
 Dates: 2017-03-142017-03-14
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: ISI: 000397827900005
DOI: 10.5194/acp-17-3573-2017
 Degree: -

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Title: Atmospheric Chemistry and Physics
Source Genre: Journal
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Pages: - Volume / Issue: 17 Sequence Number: - Start / End Page: 3573 - 3604 Identifier: ISSN: 1680-7316