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Geophysical Observations of Phobos Transits by InSight

  • S. C. Stähler
  • , R. Widmer-Schnidrig
  • , J. R. Scholz
  • , M. van Driel
  • , A. Mittelholz
  • , K. Hurst
  • , C. L. Johnson
  • , M. T. Lemmon
  • , P. Lognonné
  • , R. D. Lorenz
  • , N. T. Müller
  • , L. Pou
  • , A. Spiga
  • , D. Banfield
  • , S. Ceylan
  • , C. Charalambous
  • , J. Clinton
  • , D. Giardini
  • , F. Nimmo
  • , M. Panning
  • W. Zürn, W. B. Banerdt
  • Institute of Geophysics
  • ETH Zurich
  • Black Forest Observatory
  • University of Suttgart
  • Max-Planck-Institut für Sonnensystemforschung
  • Department of Earth
  • University of British Columbia
  • Science Division
  • Planetary Science Institute
  • Space Science Institute
  • Laboratoire de Probabilités et Modèles Aléatoires
  • Johns Hopkins University Applied Physics Laboratory
  • DLR
  • Department of Earth and Planetary Science
  • University of California, Santa Cruz
  • Institut Universitaire de France
  • Cornell Center for Astrophysics and Planetary Science
  • Department of Electrical and Electronic Engineering
  • Imperial College London
  • Swiss Seismological Service
  • Institute of Meteorology and Climate Research

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

15 Citations (Scopus)

Résumé

Since landing on Mars, the NASA InSight lander has witnessed eight Phobos and one Deimos transits. All transits could be observed by a drop in the solar array current and the surface temperature, but more surprisingly, for several ones, a clear signature was recorded with the seismic sensors and the magnetometer. We present a preliminary interpretation of the seismometer data as temperature-induced local deformation of the ground, supported by terrestrial analog experiments and finite-element modeling. The magnetic signature is most likely induced by changing currents from the solar arrays. While the observations are not fully understood yet, the recording of transit-related phenomena with high sampling rate will allow more precise measurements of the transit times, thus providing additional constraints for the orbital parameters of Phobos. The response of the seismometer can potentially also be used to constrain the thermoelastic properties of the shallow regolith at the landing site.

langue originaleAnglais
Numéro d'articlee2020GL089099
journalGeophysical Research Letters
Volume47
Numéro de publication19
Les DOIs
étatPublié - 16 oct. 2020

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