Inferred wind speed and direction during the descent and landing of Perseverance on Mars

被引:3
作者
Paton, M. D. [1 ,2 ]
Savijarvi, H.
Harri, A. -m. [1 ]
Leino, J. [1 ]
Bertrand, T. [3 ]
Viudez-Moreiras, D. [4 ,5 ]
Lorenz, R. D. [6 ]
Newman, C. [7 ]
机构
[1] Finnish Meteorol Inst, POB 503, FIN-00101 Helsinki, Finland
[2] Univ Helsinki, FI-00560 Helsinki, Finland
[3] LESIA, Observ Paris, F-92195 Meudon, France
[4] CSIC, Ctr Astrobiol CAB, INTA, Madrid, Spain
[5] Natl Inst Aerosp Technol INTA, Madrid, Spain
[6] Johns Hopkins Univ, Appl Phys Lab, Laurel, MD USA
[7] Aeolis Res, Chandler, AZ USA
关键词
Mars; Wind; Atmosphere; Perseverance; Heat shield; MARTIAN ATMOSPHERE;
D O I
10.1016/j.icarus.2024.116045
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Perseverance successfully parachuted into Jezero crater close to its western rim on a Martian spring afternoon. In situ observations of the wind conditions during the parachute and powered descent are unavailable. These observations are important for characterising the Planetary Boundary Layer (PBL) and to better constrain atmospheric conditions in Jezero crater. We infer the winds during Perseverance's parachute descent from an altitude of 12 km down to 2 km by fitting a trajectory model to the reconstructed trajectory data published by the M2020 Entry, Descent and Landing team. Below 2 km altitude we infer the winds by analysing a High Resolution Imaging Science Experiment (HiRISE) image of the landing site that was obtained about one sol after the landing. Our inferred wind speed and direction profile indicate high speed winds at an altitude of 7 km blowing from the east and at 3 km blowing from the southwest. Below an altitude of 2 km, the winds are inferred to be easterlies. The heat shield impact on the surface was observed by Perseverance's Lander Vision System Camera (LCAM). Afterwards, ejecta clouds were observed moving towards the north of the impact site. These observations, together with the orientation of the parachute canopy on the surface, suggest near-surface winds at the time were southerlies. We have inferred the wind speed and direction during Perseverance's descent that are consistent with its horizontal motion as revealed by trajectory data and HiRISE image. Comparisons with atmospheric models suggest the high speed winds could be related to topographic forcing. This study provides constraints for atmospheric modelling and advances the characterisation of winds in Jezero crater, focusing on the vertical structure of the complex wind field present in the crater.
引用
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页数:20
相关论文
共 63 条
[1]   The role of shape-dependent flight stability in the origin of oriented meteorites [J].
Amin, Khunsa ;
Mac Huang, Jinzi ;
Hu, Kevin J. ;
Zhang, Jun ;
Ristroph, Leif .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2019, 116 (33) :16180-16185
[2]   The atmosphere of Mars as observed by InSight [J].
Banfield, Don ;
Spiga, Aymeric ;
Newman, Claire ;
Forget, Francois ;
Lemmon, Mark ;
Lorenz, Ralph ;
Murdoch, Naomi ;
Viudez-Moreiras, Daniel ;
Pla-Garcia, Jorge ;
Garcia, Raphael F. ;
Lognonne, Philippe ;
Karatekin, Ozgur ;
Perrin, Clement ;
Martire, Leo ;
Teanby, Nicholas ;
Hove, Bart Van ;
Maki, Justin N. ;
Kenda, Balthasar ;
Mueller, Nils T. ;
Rodriguez, Sebastien ;
Kawamura, Taichi ;
McClean, John B. ;
Stott, Alexander E. ;
Charalambous, Constantinos ;
Millour, Ehouarn ;
Johnson, Catherine L. ;
Mittelholz, Anna ;
Maattanen, Anni ;
Lewis, Stephen R. ;
Clinton, John ;
Staehler, Simon C. ;
Ceylan, Savas ;
Giardini, Domenico ;
Warren, Tristram ;
Pike, William T. ;
Daubar, Ingrid ;
Golombek, Matthew ;
Rolland, Lucie ;
Widmer-Schnidrig, Rudolf ;
Mimoun, David ;
Beucler, Eric ;
Jacob, Alice ;
Lucas, Antoine ;
Baker, Mariah ;
Ansan, Veronique ;
Hurst, Kenneth ;
Mora-Sotomayor, Luis ;
Navarro, Sara ;
Torres, Josefina ;
Lepinette, Alain .
NATURE GEOSCIENCE, 2020, 13 (03) :190-+
[3]  
Callsen S., 2020, Masters thesis
[4]   Seasonal Variability of the Daytime and Nighttime Atmospheric Turbulence Experienced by InSight on Mars [J].
Chatain, A. ;
Spiga, A. ;
Banfield, D. ;
Forget, F. ;
Murdoch, N. .
GEOPHYSICAL RESEARCH LETTERS, 2021, 48 (22)
[5]  
Clark I.G., 2022, AEROSP CONF PROC, P1, DOI [10.1109/AERO53065.2022.9843441, DOI 10.1109/AERO53065.2022.9843441]
[6]   A thermal plume model for the Martian convective boundary layer [J].
Colaitis, A. ;
Spiga, A. ;
Hourdin, F. ;
Rio, C. ;
Forget, F. ;
Millour, E. .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2013, 118 (07) :1468-1487
[7]  
Dawson M., 2007, 43 AIAA ASME SAE ASE, DOI [10.2514/6.2007-5481, DOI 10.2514/6.2007-5481]
[8]  
Dutta S., 2022, AIAA SCITECH 2022 FO, P1, DOI [10.2514/6.2022-0422, DOI 10.2514/6.2022-0422]
[9]   Dust resuspension by the flow around an impacting sphere [J].
Eames, I ;
Dalziel, SB .
JOURNAL OF FLUID MECHANICS, 2000, 403 :305-328
[10]   Listening for the Landing: Seismic Detections of Perseverance's Arrival at Mars With InSight [J].
Fernando, Benjamin ;
Wojcicka, Natalia ;
Froment, Marouchka ;
Maguire, Ross ;
Staehler, Simon C. ;
Rolland, Lucie ;
Collins, Gareth S. ;
Karatekin, Ozgur ;
Larmat, Carene ;
Sansom, Eleanor K. ;
Teanby, Nicholas A. ;
Spiga, Aymeric ;
Karakostas, Foivos ;
Leng, Kuangdai ;
Nissen-Meyer, Tarje ;
Kawamura, Taichi ;
Giardini, Domenico ;
Lognonne, Philippe ;
Banerdt, Bruce ;
Daubar, Ingrid J. .
EARTH AND SPACE SCIENCE, 2021, 8 (04)