Retrieval of Martian Atmospheric CO Vertical Profiles From NOMAD Observations During the First Year of TGO Operations

Author:

Modak Ashimananda1ORCID,López‐Valverde Miguel Angel1ORCID,Brines Adrian1ORCID,Stolzenbach Aurélien1ORCID,Funke Bernd1ORCID,González‐Galindo Francisco1ORCID,Hill Brittany1,Aoki Shohei2ORCID,Thomas Ian3ORCID,Liuzzi Giuliano45ORCID,Villanueva Gerónimo4ORCID,Erwin Justin3ORCID,Lopez Moreno José Juan1,Yoshida Nao6ORCID,Grabowski Udo7,Forget Francois8,Daerden Frank3ORCID,Ristic Bojan3ORCID,Bellucci Giancarlo9,Patel Manish10ORCID,Trompet Loic3ORCID,Vandaele Ann‐Carine3ORCID

Affiliation:

1. Instituto de Astrofísica de Andalucia Granada Spain

2. Graduate School of Frontier Sciences The University of Tokyo Kashiwa Japan

3. Belgian Royal Institute for Space Aeronomy Brussels Belgium

4. NASA Goddard Space Flight Center Greenbelt MD USA

5. American University Washington DC USA

6. Graduate School of Science Tohoku University Sendai Japan

7. Karlsruhe Institute of Technology Institute of Meteorology and Climate Research Karlsruhe Germany

8. Laboratoire de Météorologie Dynamique IPSL Paris France

9. Institute for Space Astrophysics and Planetology Rome Italy

10. Open University Milton Keynes UK

Abstract

AbstractWe present CO density profiles up to about 100 km in the Martian atmosphere obtained for the first time from retrievals of solar occultation measurements by the Nadir and Occultation for Mars Discovery (NOMAD) onboard ExoMars Trace Gas Orbiter (TGO). CO is an important trace gas on Mars, as it is controlled by CO2 photolysis, chemical reaction with the OH radicals, and the global dynamics. However, the measurements of CO vertical profiles have been elusive until the arrival of TGO. We show how the NOMAD CO variations describe very well the Mars general circulation. We observe a depletion of CO in the upper troposphere and mesosphere during the peak period, LS = 190°–200°, more pronounced over the northern latitudes, confirming a similar result recently reported by Atmospheric Chemistry Suite onboard TGO. However, in the lower troposphere around 20 km, and at least at high latitudes of the S. hemisphere, NOMAD CO mixing ratios increase over 1,500 ppmv during the GDS (Global Dust Storm) onset. This might be related to the downwelling branch of the Hadley circulation. A subsequent increase in tropospheric CO is observed during the decay phase of the GDS around LS = 210°–250° when the dust loading is still high. This could be associated with a reduction in the amount of OH radicals in the lower atmosphere due to lack of solar insolation. Once the GDS is over, CO steadily decreases globally during the southern summer season. A couple of distinct CO patterns associated with the Summer solstice and equinox circulation are reported and discussed.

Funder

Consejo Superior de Investigaciones Científicas

Publisher

American Geophysical Union (AGU)

Subject

Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Geochemistry and Petrology,Geophysics

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