Literature DB >> 33583960

Multi-model Meteorological and Aeolian Predictions for Mars 2020 and the Jezero Crater Region.

C E Newman1, M de la Torre Juárez2, J Pla-García3,4, R J Wilson5, S R Lewis6, L Neary7, M A Kahre5, F Forget8, A Spiga8,9, M I Richardson1, F Daerden7, T Bertrand10,5, D Viúdez-Moreiras3, R Sullivan11, A Sánchez-Lavega12, B Chide13, J A Rodriguez-Manfredi3.   

Abstract

Nine simulations are used to predict the meteorology and aeolian activity of the Mars 2020 landing site region. Predicted seasonal variations of pressure and surface and atmospheric temperature generally agree. Minimum and maximum pressure is predicted at Ls ∼ 145 ∘ and 250 ∘ , respectively. Maximum and minimum surface and atmospheric temperature are predicted at Ls ∼ 180 ∘ and 270 ∘ , respectively; i.e., are warmest at northern fall equinox not summer solstice. Daily pressure cycles vary more between simulations, possibly due to differences in atmospheric dust distributions. Jezero crater sits inside and close to the NW rim of the huge Isidis basin, whose daytime upslope (∼east-southeasterly) and nighttime downslope (∼northwesterly) winds are predicted to dominate except around summer solstice, when the global circulation produces more southerly wind directions. Wind predictions vary hugely, with annual maximum speeds varying from 11 to 19 ms - 1 and daily mean wind speeds peaking in the first half of summer for most simulations but in the second half of the year for two. Most simulations predict net annual sand transport toward the WNW, which is generally consistent with aeolian observations, and peak sand fluxes in the first half of summer, with the weakest fluxes around winter solstice due to opposition between the global circulation and daytime upslope winds. However, one simulation predicts transport toward the NW, while another predicts fluxes peaking later and transport toward the WSW. Vortex activity is predicted to peak in summer and dip around winter solstice, and to be greater than at InSight and much greater than in Gale crater. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1007/s11214-020-00788-2.
© The Author(s) 2021.

Entities:  

Keywords:  Aeolian; Atmosphere; Dust devils; Jezero crater; Mars; Mars 2020; Meteorology

Year:  2021        PMID: 33583960      PMCID: PMC7868679          DOI: 10.1007/s11214-020-00788-2

Source DB:  PubMed          Journal:  Space Sci Rev        ISSN: 0038-6308            Impact factor:   8.017


  17 in total

1.  A topographically forced asymmetry in the martian circulation and climate.

Authors:  Mark I Richardson; R John Wilson
Journal:  Nature       Date:  2002-03-21       Impact factor: 49.962

2.  Winds measured by the Rover Environmental Monitoring Station (REMS) during the Mars Science Laboratory (MSL) rover's Bagnold Dunes Campaign and comparison with numerical modeling using MarsWRF.

Authors:  Claire E Newman; Javier Gómez-Elvira; Mercedes Marin; Sara Navarro; Josefina Torres; Mark I Richardson; J Michael Battalio; Scott D Guzewich; Robert Sullivan; Manuel de la Torre; Ashwin R Vasavada; Nathan T Bridges
Journal:  Icarus       Date:  2016-12-14       Impact factor: 3.508

3.  Bedform alignment in directionally varying flows.

Authors:  D M Rubin; R E Hunter
Journal:  Science       Date:  1987-07-17       Impact factor: 47.728

4.  Thermal Tides in the Martian Middle Atmosphere as Seen by the Mars Climate Sounder.

Authors:  C Lee; W G Lawson; M I Richardson; N G Heavens; A Kleinböhl; D Banfield; D J McCleese; R Zurek; D Kass; J T Schofield; C B Leovy; F W Taylor; A D Toigo
Journal:  J Geophys Res       Date:  2009-03-19

5.  The Mars Pathfinder atmospheric structure investigation/meteorology (ASI/MET) experiment.

Authors:  J T Schofield; J R Barnes; D Crisp; R M Haberle; S Larsen; J A Magalhães; J R Murphy; A Seiff; G Wilson
Journal:  Science       Date:  1997-12-05       Impact factor: 47.728

6.  Threshold for sand mobility on Mars calibrated from seasonal variations of sand flux.

Authors:  F Ayoub; J-P Avouac; C E Newman; M I Richardson; A Lucas; S Leprince; N T Bridges
Journal:  Nat Commun       Date:  2014-09-30       Impact factor: 14.919

7.  Meteorological Predictions for Mars 2020 Perseverance Rover Landing Site at Jezero Crater.

Authors:  Jorge Pla-García; S C R Rafkin; G M Martinez; Á Vicente-Retortillo; C E Newman; H Savijärvi; M de la Torre; J A Rodriguez-Manfredi; F Gómez; A Molina; D Viúdez-Moreiras; Ari-Matti Harri
Journal:  Space Sci Rev       Date:  2020-12-14       Impact factor: 8.017

8.  Wind-Driven Erosion and Exposure Potential at Mars 2020 Rover Candidate-Landing Sites.

Authors:  Matthew Chojnacki; Maria Banks; Anna Urso
Journal:  J Geophys Res Planets       Date:  2018-02-08       Impact factor: 3.755

9.  Phase diagrams of dune shape and orientation depending on sand availability.

Authors:  Xin Gao; Clément Narteau; Olivier Rozier; Sylvain Courrech du Pont
Journal:  Sci Rep       Date:  2015-09-30       Impact factor: 4.379

10.  Geology of the InSight landing site on Mars.

Authors:  M Golombek; N H Warner; J A Grant; E Hauber; V Ansan; C M Weitz; N Williams; C Charalambous; S A Wilson; A DeMott; M Kopp; H Lethcoe-Wilson; L Berger; R Hausmann; E Marteau; C Vrettos; A Trussell; W Folkner; S Le Maistre; N Mueller; M Grott; T Spohn; S Piqueux; E Millour; F Forget; I Daubar; N Murdoch; P Lognonné; C Perrin; S Rodriguez; W T Pike; T Parker; J Maki; H Abarca; R Deen; J Hall; P Andres; N Ruoff; F Calef; S Smrekar; M M Baker; M Banks; A Spiga; D Banfield; J Garvin; C E Newman; W B Banerdt
Journal:  Nat Commun       Date:  2020-02-24       Impact factor: 14.919

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  3 in total

1.  The dynamic atmospheric and aeolian environment of Jezero crater, Mars.

Authors:  Claire E Newman; Ricardo Hueso; Mark T Lemmon; Asier Munguira; Álvaro Vicente-Retortillo; Víctor Apestigue; Germán M Martínez; Daniel Toledo; Rob Sullivan; Ken E Herkenhoff; Manuel de la Torre Juárez; Mark I Richardson; Alexander E Stott; Naomi Murdoch; Agustín Sanchez-Lavega; Michael J Wolff; Ignacio Arruego; Eduardo Sebastián; Sara Navarro; Javier Gómez-Elvira; Leslie Tamppari; Daniel Viúdez-Moreiras; Ari-Matti Harri; Maria Genzer; Maria Hieta; Ralph D Lorenz; Pan Conrad; Felipe Gómez; Timothy H McConnochie; David Mimoun; Christian Tate; Tanguy Bertrand; James F Bell; Justin N Maki; Jose Antonio Rodriguez-Manfredi; Roger C Wiens; Baptiste Chide; Sylvestre Maurice; Maria-Paz Zorzano; Luis Mora; Mariah M Baker; Don Banfield; Jorge Pla-Garcia; Olivier Beyssac; Adrian Brown; Ben Clark; Alain Lepinette; Franck Montmessin; Erik Fischer; Priyaben Patel; Teresa Del Río-Gaztelurrutia; Thierry Fouchet; Raymond Francis; Scott D Guzewich
Journal:  Sci Adv       Date:  2022-05-25       Impact factor: 14.957

2.  The shallow structure of Mars at the InSight landing site from inversion of ambient vibrations.

Authors:  M Hobiger; M Hallo; C Schmelzbach; S C Stähler; D Fäh; D Giardini; M Golombek; J Clinton; N Dahmen; G Zenhäusern; B Knapmeyer-Endrun; S Carrasco; C Charalambous; K Hurst; S Kedar; W B Banerdt
Journal:  Nat Commun       Date:  2021-11-23       Impact factor: 14.919

3.  Mars Oxygen ISRU Experiment (MOXIE)-Preparing for human Mars exploration.

Authors:  Jeffrey A Hoffman; Michael H Hecht; Donald Rapp; Joseph J Hartvigsen; Jason G SooHoo; Asad M Aboobaker; John B McClean; Andrew M Liu; Eric D Hinterman; Maya Nasr; Shravan Hariharan; Kyle J Horn; Forrest E Meyen; Harald Okkels; Parker Steen; Singaravelu Elangovan; Christopher R Graves; Piyush Khopkar; Morten B Madsen; Gerald E Voecks; Peter H Smith; Theis L Skafte; Koorosh R Araghi; David J Eisenman
Journal:  Sci Adv       Date:  2022-08-31       Impact factor: 14.957

  3 in total

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