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  1. OA@INAF
  2. PRODOTTI RICERCA INAF
  3. 1 CONTRIBUTI IN RIVISTE (Journal articles)
  4. 1.01 Articoli in rivista
Please use this identifier to cite or link to this item: http://hdl.handle.net/20.500.12386/35853
Title: Martian Atmospheric Aerosols Composition and Distribution Retrievals During the First Martian Year of NOMAD/TGO Solar Occultation Measurements: 1. Methodology and Application to the MY 34 Global Dust Storm
Authors: Stolzenbach, Aurélien
López Valverde, Miguel Angel
Brines, Adrian
Modak, Ashimananda
Funke, Bernd
González-Galindo, Francisco
Thomas, Ian
Liuzzi, Giuliano
Villanueva, Gerónimo
Luginin, Mikhail
Aoki, Shohei
Grabowski, Udo
Lopez Moreno, José Juan
Rodrìguez Gòmez, Julio
Wolff, Mike
Ristic, Bojan
Daerden, Frank
BELLUCCI, Giancarlo 
Patel, Manish
Vandaele, Ann Carine
Issue Date: 2023
Journal: JOURNAL OF GEOPHYSICAL RESEARCH (PLANETS) 
Number: 128
Issue: 11
Abstract: Since the beginning of the Trace Gas Orbiter (TGO) science operations in April 2018, its instrument “Nadir and Occultation for MArs Discovery” (NOMAD) supplies detailed observations of the IR spectrums of the Martian atmosphere. We developed a procedure that allows us to evaluate the composition and distribution's parameters of the atmospheric Martian aerosols. We use a retrieval program (RCP) in conjunction with a radiative forward model (KOPRA) to evaluate the vertical profile of aerosol extinction from NOMAD measurements. We then apply a model/data fitting strategy of the aerosol extinction. In this first article, we describe the method used to evaluate the parameters representing the Martian aerosol composition and size distribution. MY 34 GDS showed a peak intensity from LS 190° to 210°. During this period, the aerosol content rises multiple scale height, reaching altitudes up to 100 km. The lowermost altitude of aerosol's detection during NOMAD observation rises up to 30 km. Dust aerosols reff were observed to be close to 1 μm and its νeff lower than 0.2. Water ice aerosols reff were observed to be submicron with a νeff lower than 0.2. The vertical aerosol structure can be divided in two parts. The lower layers are represented by higher reff than the upper layers. The change between the lower and upper layers is very steep, taking only few kilometers. The decaying phase of the GDS, LS 210°–260°, shows a decrease in altitude of the aerosol content but no meaningful difference in the observed aerosol's size distribution parameters.
URI: http://hdl.handle.net/20.500.12386/35853
URL: https://api.elsevier.com/content/abstract/scopus_id/85175965533
https://agupubs.onlinelibrary.wiley.com/doi/10.1029/2022JE007276
ISSN: 2169-9097
DOI: 10.1029/2022JE007276
Fulltext: open
Appears in Collections:1.01 Articoli in rivista

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