HR: 0800h
AN: P31A-0978 [Abstracts]
TI: Spitzer/IRS Observations of Asteroids, Centaurs, and Kuiper Belt Objects
AU: * Emery, J P
EM: jemery@mail.arc.nasa.gov
AF: NASA Ames/SETI Institute, Mail Stop 245-6, Moffett Field, CA 94035
United States
AU: Cruikshank, D P
EM: Dale.P.Cruikshank@nasa.gov
AF: NASA Ames Research Center, Mail Stop 245-6, Moffett Field, CA 94035
United States
AU: Van Cleve, J
EM: jvanclev@ball.com
AF: Ball Aerospace, 1600 Commerce St, Boulder, CO 80301
United States
AU: Stansberry, J A
EM: stansberr@as.arizona.edu
AF: Univ Ariz/Steward Observatory, 933 N Cherry Ave, Tucson, AZ 85721
United States
AB:
We will present thermal emission spectra of asteroids, Centaurs, and Kuiper Belt objects from the Infrared Spectrograph (IRS)
on the Spitzer space telescope. To date, 15 of the 42 asteroids and 11 of the 17 KBOs/Centaurs in our programs have been
observed. The asteroids observed so far sample the S, C, P, D, and M taxonomic classes and include Near Earth, Main Belt,
and Trojan asteroids. Emissivity spectra are created by dividing the measured spectral energy distributions (SEDs) by models
of the thermal continua. We use either a standard thermal model or a more advanced thermophysical model (includes thermal
inertia, obliquity, and surface roughness), as applicable for each asteroid. These models are able to describe the SEDs very
well. The asteroid spectra typically include the full range of IRS (5.2 to 38 $\mu$m) and have spectral resolutions of
64-128 and $\sim$600 for the low and high resolution modules, respectively. The most striking feature in these asteroid
spectra is an emission plateau that extends over the range $\sim$ 9.0 - 11.5 $\mu$m. This feature is strongest in the low
albedo Trojan asteroids, but is also present, though weaker, in some (but not all) of the other asteroids. We compare these
new data with laboratory spectra of meteorites and minerals. The KBO/Centaurs are colder and farther away, so they are
fainter and their SEDs peak at longer wavelengths than the asteroids. Accordingly, most of these are only observable with
the longer wavelength IRS modules ($\sim$15 - 38 $\mu$m with R $\sim$ 64-128), and the resulting sensitivity is lower. For
some of the KBO/Centaurs, the IRS data provide the first constraints on size and albedo, and we find albedos are commonly
higher than anticipated. We will discuss potential implications of these new data for surface composition and physical and
thermal properties of these objects.
DE: 6008 Composition
DE: 6060 Radiation and spectra
DE: 6061 Remote sensing
DE: 6205 Asteroids and meteoroids
SC: Planetary Sciences [P]
MN: 2004 AGU Fall Meeting