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Crustal and time-varying magnetic fields at the InSight landing site on Mars

  • Catherine L. Johnson
  • , Anna Mittelholz
  • , Benoit Langlais
  • , Christopher T. Russell
  • , Véronique Ansan
  • , Don Banfield
  • , Peter J. Chi
  • , Matthew O. Fillingim
  • , Francois Forget
  • , Heidi Fuqua Haviland
  • , Matthew Golombek
  • , Steve Joy
  • , Philippe Lognonné
  • , Xinping Liu
  • , Chloé Michaut
  • , Lu Pan
  • , Cathy Quantin-Nataf
  • , Aymeric Spiga
  • , Sabine Stanley
  • , Shea N. Thorne
  • Mark A. Wieczorek, Yanan Yu, Suzanne E. Smrekar, William B. Banerdt
  • University of British Columbia
  • Planetary Science Institute
  • Université de Nantes
  • Institute of Geophysics and Planetary Physics, University of California
  • Cornell Center for Astrophysics and Planetary Science
  • University of California, Space Sciences Laboratory
  • NASA Marshall Space Flight Center
  • Science Division
  • Laboratoire de Probabilités et Modèles Aléatoires
  • Ecole Normale Supérieure de Lyon
  • IGFL, Université de Lyon, Université Lyon 1
  • PSL research University & IPSL
  • Institut Universitaire de France
  • Johns Hopkins University Krieger School of Arts and Sciences
  • Johns Hopkins University Applied Physics Laboratory
  • Université Côte d’Azur

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

Magnetic fields provide a window into a planet’s interior structure and evolution, including its atmospheric and space environments. Satellites at Mars have measured crustal magnetic fields indicating an ancient dynamo. These crustal fields interact with the solar wind to generate transient fields and electric currents in Mars’s upper atmosphere. Surface magnetic field data play a key role in understanding these effects and the dynamo. Here we report measurements of magnetic field strength and direction at the InSight (Interior Exploration using Seismic Investigations, Geodesy and Heat Transport) landing site on Mars. We find that the field is ten times stronger than predicted by satellite-based models. We infer magnetized rocks beneath the surface, within ~150 km of the landing site, consistent with a past dynamo with Earth-like strength. Geological mapping and InSight seismic data suggest that much or all of the magnetization sources are carried in basement rocks, which are at least 3.9 billion years old and are overlain by between 200 m and ~10 km of lava flows and modified ancient terrain. Daily variations in the magnetic field indicate contributions from ionospheric currents at 120 km to 180 km altitude. Higher-frequency variations are also observed; their origin is unknown, but they probably propagate from even higher altitudes to the surface. We propose that the time-varying fields can be used to investigate the electrical conductivity structure of the martian interior.

langue originaleAnglais
Pages (de - à)199-204
Nombre de pages6
journalNature Geoscience
Volume13
Numéro de publication3
Les DOIs
étatPublié - 1 mars 2020

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