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Mars exploration rover geologic traverse by the spirit rover in the plains of Gusev crater, Mars

  • L. S. Crumpler
  • , S. W. Squyres
  • , R. E. Arvidson
  • , III F. Bell
  • , D. Blaney
  • , N. A. Cabrol
  • , P. R. Christensen
  • , D. J. DesMarais
  • , J. D. Farmer
  • , R. Fergason
  • , M. P. Golombek
  • , F. D. Grant
  • , J. A. Grant
  • , R. Greeley
  • , B. Hahn
  • , K. E. Herkenhoff
  • , J. A. Hurowitz
  • , A. T. Knudson
  • , G. A. Landis
  • , R. Li
  • J. Maki, H. Y. McSween, D. W. Ming, J. E. Moersch, M. C. Payne, J. W. Rice, L. Richter, S. W. Ruff, M. Sims, S. D. Thompson, N. Tosca, A. Wang, P. Whelley, S. P. Wright, M. B. Wyatt
  • New Mexico Museum Natural History and Science
  • Cornell University
  • Washington University St. Louis
  • Jet Propulsion Laboratory, California Institute of Technology
  • National Aeronautics and Space Administration
  • Arizona State University
  • Smithsonian Institution
  • Stony Brook University
  • United States Geological Survey
  • NASA Glenn Research Center
  • Ohio State University
  • University of Tennessee
  • NASA Johnson Space Center
  • Institute of Space Simulation

Research output: Contribution to journalArticlepeer-review

32 Scopus citations

Abstract

The Spirit rover completed a 2.5 km traverse across gently sloping plains on the floor of Gusev crater from its location on the outer rim of Bonneville crater to the lower slopes of the Columbia Hills, Mars. Using the Athena suite of instruments in a transect approach, a systematic series of overlapping panoramic mosaics, remote sensing observations, surface analyses, and trenching operations documented the lateral variations in landforms, geologic materials, and chemistry of the surface throughout the traverse, demonstrating the ability to apply the techniques of field geology by remote rover operations. Textures and shapes of rocks within the plains are consistent with derivation from impact excavation and mixing of the upper few meters of basaltic lavas. The contact between surrounding plains and crater ejecta is generally abrupt and marked by increases in clast abundance and decimeter-scale steps in relief. Basaltic materials of the plains overlie less indurated and more altered rock types at a time-stratigraphic contact between the plains and Columbia Hills that occurs over a distance of one to two meters. This implies that regional geologic contacts are well preserved and that Earth-like field geologic mapping will be possible on Mars despite eons of overturn by small impacts.

Original languageEnglish
Pages (from-to)809-812
Number of pages4
JournalGeology
Volume33
Issue number10
DOIs
StatePublished - Oct 2005

Keywords

  • Field geology
  • Geotraverse
  • Mars
  • Planetary geology
  • Rover

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