HR: 11:35h
AN: P32A-06 INVITED [Abstracts]
TI: Composition and Mineralogy of Martian Soils
AU: * Bell, J F
EM: jfb8@cornell.edu
AF: Cornell U., 402 Space Sci. Bldg., Ithaca, NY 14853, United States
AB:
The soils of Mars--the fine-grained, porous, uppermost layer of the planet's regolith--appear to have been created
by a combination of physical and chemical weathering processes that can provide insights about the evolution of
the martian surface and climate. Remote sensing and in situ measurements and analyses of soils from five
different landing sites have revealed both surprising similarities and important (sometimes unexpected)
differences among soils across the planet. Among the similarities are the ubiquitous presence and homogeneity
of "dust" at widely-separated landing sites. Dust is the finest-grained (less than 5 microns) fraction of the soil,
and the fact that it is easily suspended and transported by dust devils and dust storms explains its ubiquity. The
reddish color and small size of dust particles had been cited as evidence for its origin as perhaps physically or
chemically comminuted and heavily-oxidized (ferric) secondary weathering products. New results from the MER
Sprit and Opportunity missions, however, indicate that dust grains may instead be volumetrically mostly
unoxidized (ferrous) material, with visual color properties imparted by only a thin rind or coating of ferric
oxides/oxyhydroxides. Another fine-grained global-scale unit is dark, silt- to sand-sized soils that occur in dunes,
drifts, and ripples. Dark sands exhibit rather homogeneous composition and mineralogy (dominated by olivine
and pyroxene) across the landing sites, suggesting that they, too, are globally-transported materials. Examples
of the kinds of variability detected in martian soils are the hematite-rich spherules, sulfur/jarosite-rich outcrop-
derived soils, and basaltic clastic fragments encountered in Meridiani Planum, the hematite, goethite, and ferric-
sulfate bearing soils encountered in Gusev crater, and crusted/armored soils and rinds encountered at both
Viking and both MER sites. Much of the observed martian soil variability may result from the action of local-scale
weathering processes and/or reflect the diversity of local precursor bedrock sources. This presentation will
provide an overview of what we know about the composition and mineralogy of martian soils, will review current
models for martian soil formation in light of the currently-available data, and will describe ways that these models
might be tested with ongoing and future Mars surface exploration missions.
DE: 5410 Composition (1060, 3672)
DE: 5464 Remote sensing
DE: 5470 Surface materials and properties
DE: 6225 Mars
SC: Planetary Sciences [P]
MN: 2007 Joint Assembly