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Título : | Decline in Water Ice Abundance in the Martian Mesosphere during Aphelion |
Autor : | Toledo, D. Rannou, P. Apéstigue, V. Rodríguez Veloso, Raúl Arruego, I. Martínez, Germán M. Tamppari, L. K. Munguira, A. Lorenz, Ralph Stcherbinine, Aurélien Montmessin, F. Sánchez Lavega, Agustín Patel, P. Viúdez Moreiras, Daniel Hueso, R. Bertrand, T. Pla García, J. Yela González, M. De la Torre Juárez, M. Rodríguez Manfredi, J. A. |
Fecha de publicación : | 3-jul-2024 |
Editorial : | Europlanet |
DOI: | 10.5194/epsc2024-504 |
Versión del Editor: | https://meetingorganizer.copernicus.org/EPSC2024/EPSC2024-504.html |
Citación : | Europlanet Science Congress 17: EPSC2024-504 (2024) |
Resumen : | Clouds play a crucial role in the past and current climate of Mars. Cloud particles impact the planet's energy balance and atmospheric dynamics, as well as influence the vertical distribution of dust particles through dust scavenging. This process of dust scavenging by clouds has significant consequences for the planet's water cycle. For example, regions in the atmosphere with insufficient quantities of dust particles, or condensation nuclei, can inhibit the formation of H2O clouds, leading to the presence of water vapor in excess of saturation [1]. Recent observations made by the MEDA Radiation and Dust Sensor (RDS) [2,3] have shown a marked decline in mesospheric cloud activity (above 35-40 km) when Mars is near its aphelion (within the Aphelion Cloud Belt-ACB season), notably occurring during solar longitudes (Ls) between Ls 70° and 80° [4] (see Figure 1). In order to investigate the possible factors leading to this decrease in water ice abundance, we used a one-dimensional cloud microphysical model [5,6], which includes the processes of nucleation, condensation, coagulation, evaporation, precipitation, and coalescence, and where the vertical mixing is parameterized using an eddy diffusion profile (Keddy). Combining cloud microphysics modeling with ground-based (Mars 2020 and InSight) and orbital observations (TGO and MRO) of clouds, water vapor, and temperature, we will discuss in this presentation the main factors controlling the water abundance in the Martian mesosphere during the ACB season. |
Descripción : | How to cite: Toledo, D., Rannou, P., Apestigue, V., Rodriguez-Veloso, R., Arruego, I., Martinez, G., Tamppari, L., Munguira, A., Lorenz, R., Stcherbinine, A., Montmessin, F., Sanchez-Lavega, A., Patel, P., Smith, M., Lemmon, M., Vicente-Retortillo, A., Newman, C., Viudez-Moreiras, D., Hueso, R., and Bertrand, T. and the +4: Decline in Water Ice Abundance in the Martian Mesosphere during Aphelion, Europlanet Science Congress 2024, Berlin, Germany, 8–13 Sep 2024, EPSC2024-504, https://doi.org/10.5194/epsc2024-504, 2024. |
URI : | http://hdl.handle.net/20.500.12666/1019 |
Aparece en las colecciones: | (Espacio) Comunicaciones de Congresos |
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Fichero | Descripción | Tamaño | Formato | |
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EPSC2024-504-print.pdf | 157,04 kB | Adobe PDF | ![]() Visualizar/Abrir |
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