HR: 0800h
AN: P11A-0257 [Abstracts]
TI: Physical Characterization of the South Seasonal Cap of Mars From OMEGA Observations
AU: * Douté, S
EM: sylvain.doute@obs.ujf-grenoble.fr
AF: Laboratoire de Planétologie de Grenoble, Bat D de Physique B.P. 53, Grenoble Cedex 09,
38041, France
AU: Schmidt, F
EM: frederic.schmidt@obs.ujf-grenoble.fr
AF: Laboratoire de Planétologie de Grenoble, Bat D de Physique B.P. 53, Grenoble Cedex 09,
38041, France
AU: Schmitt, B
EM: bernard.schmitt@obs.ujf-grenoble.fr
AF: Laboratoire de Planétologie de Grenoble, Bat D de Physique B.P. 53, Grenoble Cedex 09,
38041, France
AU: Langevin, Y
EM: yves.langevin@ias.u-psud.fr
AF: Institut d'Astrophysique Spatiale, CNRS / Université Paris XI, Orsay Campus, Orsay,
91405, France
AU: Vincendon, M
EM: Mathieu.Vincendon@ias.u-psud.fr
AF: Institut d'Astrophysique Spatiale, CNRS / Université Paris XI, Orsay Campus, Orsay,
91405, France
AU: Bibring, J
EM: jean-pierre.bibring@ias.u-psud.fr
AF: Institut d'Astrophysique Spatiale, CNRS / Université Paris XI, Orsay Campus, Orsay,
91405, France
AU: Poulet, F
EM: francois.poulet@ias.u-psud.fr
AF: Institut d'Astrophysique Spatiale, CNRS / Université Paris XI, Orsay Campus, Orsay,
91405, France
AU: Gondet, B
EM: brigitte.gondet@ias.u-psud.fr
AF: Laboratoire de Planétologie de Grenoble, Bat D de Physique B.P. 53, Grenoble Cedex 09,
38041, France
AB:
The time and space evolution of the South Seasonal Polar Cap (SSPC)
is a major annual climatic signal. The composition, physical state
and texture of the SSPC give clues about the exchange of CO2,
H2O and dust with the atmosphere. The imaging spectrometer OMEGA
on board Mars Express has acquired the most comprehensive set of observations
to date in the near-infrared (0.93-5.1 microns) on the SSPC from winter
solstice to the end of the recession at Ls=325o of the martian year 27 [1]. The time
resolution is 3 days to one month and the spatial resolution ranges
from 700m to 10 km/pixel. The spectral range covered by OMEGA is particularly
relevant for our studies since it samples numerous absorption bands
distinctive of CO2 and H2O in their solid state. Here
we analyze with statistical techniques and a physical model a collection
of OMEGA spectral images covering the SSPC at Ls ~223o,
i.e. close to the maximum development of the cryptic region. Our goals
are to (i) segment the SSPC into different CO2 ice terrains based
on material composition and organization (ii) map the spatial variations
of some of their physical properties: dust abundance, granularity,
icy layer thickness, etc. In an earlier work [2] we introduced the
"snowdrop time", i.e.: at a given location, the
time necessary to decrease the areal coverage of CO2 from 98% to
2% during recession. We showed that it is mainly controlled by
the dispersion of its local albedo distribution ~one martian
month earlier. The physical characterization of the CO2 deposits allows
to identify and understand the processes governing this albedo distribution
variability: sub-pixel mixing, ice thickness, grain size, dust content,
etc.
[1] Langevin et al., JGR Vol. 112, 2007 [2] Schmidt et al., LPSC
XXXVIII (2007), #1743.
DE: 5422 Ices
DE: 5445 Meteorology (3346)
DE: 5462 Polar regions
DE: 5464 Remote sensing
DE: 5470 Surface materials and properties
SC: Planetary Sciences [P]
MN: 2007 Fall Meeting