HR: 10:45h
AN: P32A-02 [Abstracts]
TI: Assessment of Mars Exploration Rover Landing Site Predictions
AU: * Golombek, M P
EM: mgolombek@jpl.nasa.gov
AF: Jet Propulsion Laboratory, Caltech, Pasadena, CA 91109 United States
AB:
Comprehensive analyses of remote sensing data during the 3-year effort to select the Mars Exploration Rover landing sites at
Gusev crater and Meridiani Planum correctly predicted the safe and trafficable surfaces explored by the two rovers. Gusev
crater was predicted to be a relatively low relief surface that was comparably dusty, but less rocky than the Viking landing
sites. Available data for Meridiani Planum indicated a very flat plain composed of basaltic sand to granules and hematite
that would look completely unlike any of the existing landing sites with a dark, low albedo surface, little dust and very few rocks.
Orbital thermal inertia measurements of 315 J m-2 s-0.5 K-1 at Gusev suggested surfaces dominated by duricrust to cemented soil-like materials or cohesionless sand or granules, which is consistent with observed soil characteristics and measured thermal inertias from the surface. THEMIS thermal inertias along the traverse at Gusev vary from 285 at the landing site to 330 around Bonneville rim and show systematic variations that can be related to the observed increase in rock
abundance (5-30%). Meridiani has an orbital bulk inertia of ~200, similar to measured surface inertias that correspond
to observed surfaces dominated by 0.2 mm sand size particles. Rock abundance derived from orbital thermal differencing
techniques suggested that Meridiani Planum would have very low rock abundance, consistent with the rock free plain traversed
by Opportunity. Spirit landed in an 8% orbital rock abundance pixel, consistent with the measured 7% of the surface covered by rocks >0.04 m diameter at the landing site, which is representative of the plains away from craters. The orbital albedo of the Spirit traverse varies from 0.19 to 0.30, consistent with surface measurements in and out of dust devil tracks.
Opportunity is the first landing in a low albedo portion of Mars as seen from orbit, which is consistent with the dark,
dust-free surface and measured albedos.
The close correspondence between surface characteristics inferred from orbital remote sensing data and that found at the
landing sites argues that future efforts to select safe landing sites will be successful. Linking the five landing sites to
their remote sensing signatures suggests that they span most of the important, likely safe surfaces available for landing on
Mars.
DE: 5415 Erosion and weathering
DE: 5420 Impact phenomena (includes cratering)
DE: 5470 Surface materials and properties
DE: 5494 Instruments and techniques
DE: 6225 Mars
SC: Planetary Sciences [P]
MN: 2005 Joint Assembly