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Winds at the Mars 2020 Landing Site. 2. Wind Variability and Turbulence

Wind speeds measured by the Mars 2020 Perseverance rover in Jezero crater were fitted as a Weibull distribution. InSight wind data acquired in Elysium Planitia were also used to contextualize observations. Jezero winds were found to be much calmer on average than in previous landing sites, despite t...

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Autores principales: Viúdez‐Moreiras, D., de la Torre, M., Gómez‐Elvira, J., Lorenz, R. D., Apéstigue, V., Guzewich, S., Mischna, M., Sullivan, R., Herkenhoff, K., Toledo, D., Lemmon, M., Smith, M., Newman, C. E., Sánchez‐Lavega, A., Rodríguez‐Manfredi, J. A., Richardson, M., Hueso, R., Harri, A. M., Tamppari, L., Arruego, I., Bell, J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10078282/
https://www.ncbi.nlm.nih.gov/pubmed/37033152
http://dx.doi.org/10.1029/2022JE007523
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author Viúdez‐Moreiras, D.
de la Torre, M.
Gómez‐Elvira, J.
Lorenz, R. D.
Apéstigue, V.
Guzewich, S.
Mischna, M.
Sullivan, R.
Herkenhoff, K.
Toledo, D.
Lemmon, M.
Smith, M.
Newman, C. E.
Sánchez‐Lavega, A.
Rodríguez‐Manfredi, J. A.
Richardson, M.
Hueso, R.
Harri, A. M.
Tamppari, L.
Arruego, I.
Bell, J.
author_facet Viúdez‐Moreiras, D.
de la Torre, M.
Gómez‐Elvira, J.
Lorenz, R. D.
Apéstigue, V.
Guzewich, S.
Mischna, M.
Sullivan, R.
Herkenhoff, K.
Toledo, D.
Lemmon, M.
Smith, M.
Newman, C. E.
Sánchez‐Lavega, A.
Rodríguez‐Manfredi, J. A.
Richardson, M.
Hueso, R.
Harri, A. M.
Tamppari, L.
Arruego, I.
Bell, J.
author_sort Viúdez‐Moreiras, D.
collection PubMed
description Wind speeds measured by the Mars 2020 Perseverance rover in Jezero crater were fitted as a Weibull distribution. InSight wind data acquired in Elysium Planitia were also used to contextualize observations. Jezero winds were found to be much calmer on average than in previous landing sites, despite the intense aeolian activity observed. However, a great influence of turbulence and wave activity was observed in the wind speed variations, thus driving the probability of reaching the highest wind speeds at Jezero, instead of sustained winds driven by local, regional, or large‐scale circulation. The power spectral density of wind speed fluctuations follows a power‐law, whose slope deviates depending on the time of day from that predicted considering homogeneous and isotropic turbulence. Daytime wave activity is related to convection cells and smaller eddies in the boundary layer, advected over the crater. The signature of convection cells was also found during dust storm conditions, when prevailing winds were consistent with a tidal drive. Nighttime fluctuations were also intense, suggesting strong mechanical turbulence. Convective vortices were usually involved in rapid wind fluctuations and extreme winds, with variations peaking at 9.2 times the background winds. Transient high wind events by vortex‐passages, turbulence, and wave activity could be driving aeolian activity at Jezero. We report the detection of a strong dust cloud of 0.75–1.5 km in length passing over the rover. The observed aeolian activity had major implications for instrumentation, with the wind sensor suffering damage throughout the mission, probably due to flying debris advected by winds.
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spelling pubmed-100782822023-04-07 Winds at the Mars 2020 Landing Site. 2. Wind Variability and Turbulence Viúdez‐Moreiras, D. de la Torre, M. Gómez‐Elvira, J. Lorenz, R. D. Apéstigue, V. Guzewich, S. Mischna, M. Sullivan, R. Herkenhoff, K. Toledo, D. Lemmon, M. Smith, M. Newman, C. E. Sánchez‐Lavega, A. Rodríguez‐Manfredi, J. A. Richardson, M. Hueso, R. Harri, A. M. Tamppari, L. Arruego, I. Bell, J. J Geophys Res Planets Research Article Wind speeds measured by the Mars 2020 Perseverance rover in Jezero crater were fitted as a Weibull distribution. InSight wind data acquired in Elysium Planitia were also used to contextualize observations. Jezero winds were found to be much calmer on average than in previous landing sites, despite the intense aeolian activity observed. However, a great influence of turbulence and wave activity was observed in the wind speed variations, thus driving the probability of reaching the highest wind speeds at Jezero, instead of sustained winds driven by local, regional, or large‐scale circulation. The power spectral density of wind speed fluctuations follows a power‐law, whose slope deviates depending on the time of day from that predicted considering homogeneous and isotropic turbulence. Daytime wave activity is related to convection cells and smaller eddies in the boundary layer, advected over the crater. The signature of convection cells was also found during dust storm conditions, when prevailing winds were consistent with a tidal drive. Nighttime fluctuations were also intense, suggesting strong mechanical turbulence. Convective vortices were usually involved in rapid wind fluctuations and extreme winds, with variations peaking at 9.2 times the background winds. Transient high wind events by vortex‐passages, turbulence, and wave activity could be driving aeolian activity at Jezero. We report the detection of a strong dust cloud of 0.75–1.5 km in length passing over the rover. The observed aeolian activity had major implications for instrumentation, with the wind sensor suffering damage throughout the mission, probably due to flying debris advected by winds. John Wiley and Sons Inc. 2022-12-21 2022-12 /pmc/articles/PMC10078282/ /pubmed/37033152 http://dx.doi.org/10.1029/2022JE007523 Text en © 2022. The Authors. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Article
Viúdez‐Moreiras, D.
de la Torre, M.
Gómez‐Elvira, J.
Lorenz, R. D.
Apéstigue, V.
Guzewich, S.
Mischna, M.
Sullivan, R.
Herkenhoff, K.
Toledo, D.
Lemmon, M.
Smith, M.
Newman, C. E.
Sánchez‐Lavega, A.
Rodríguez‐Manfredi, J. A.
Richardson, M.
Hueso, R.
Harri, A. M.
Tamppari, L.
Arruego, I.
Bell, J.
Winds at the Mars 2020 Landing Site. 2. Wind Variability and Turbulence
title Winds at the Mars 2020 Landing Site. 2. Wind Variability and Turbulence
title_full Winds at the Mars 2020 Landing Site. 2. Wind Variability and Turbulence
title_fullStr Winds at the Mars 2020 Landing Site. 2. Wind Variability and Turbulence
title_full_unstemmed Winds at the Mars 2020 Landing Site. 2. Wind Variability and Turbulence
title_short Winds at the Mars 2020 Landing Site. 2. Wind Variability and Turbulence
title_sort winds at the mars 2020 landing site. 2. wind variability and turbulence
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10078282/
https://www.ncbi.nlm.nih.gov/pubmed/37033152
http://dx.doi.org/10.1029/2022JE007523
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