HR: 17:00h
AN: P32C-05 [PDF]
TI: Frequency of Steep Slopes on Mars: Evidence for Active Permafrost Layer at High Latitudes During High
Obliquity Periods
AU: * Kreslavsky, M A
EM: misha@mare.geo.brown.edu
AF: Department of Geological Sciences, Brown University, Providence, RI 02912-1846 United States
AU: * Kreslavsky, M A
EM: misha@mare.geo.brown.edu
AF: Astronomical Institute, Kharkov National University, Kharkov, 61022
Ukraine
AU: Head, J W
EM: James_Head_III@brown.edu
AF: Department of Geological Sciences, Brown University, Providence, RI 02912-1846 United States
AB:
Mapping of the frequency of the steepest (above 20 deg) slopes on Mars showed that the steep slopes are much less frequent at
high latitudes (above 50 deg in both hemispheres, excluding the polar caps) than in the equatorial zone (below 40 deg
latitude). In the narrow transitional belts around 45 deg latitude in both hemispheres, we have found a strong asymmetry of
steep slopes (Kreslavsky and Head, GRL, 30, 1815, 2003GL017795, 2003): steep equator-facing slopes are much more frequent
than pole-facing ones. Costard et al. (Science, 295, 110-113, 2002) calculated that the day-average summer temperatures above
the water freezing point can be reached only at high obliquity, and only at high latitudes or at pole-facing slopes at mid
latitudes. They suggested that the summer-time melting of a tens-cm-thick permafrost layer could be responsible for gullies
formation. We suggest that the repeating formation of active layer during summer in these areas at high obliquity is also
responsible for a number of other features, including the absence of steep slopes: erosion (including gullies formation) at
the presence of meltwater could preferentially eliminate the steepest slopes. Our study of morphology and topography of
individual craters confirms this suggestion. The trend in the steep slope occurrence indicates the presence of ground ice or
thin snow packs at least down to 35 deg latitude at high obliquity. The summer-time insolation and hence the day-average
temperature strongly depend not only on the latitude, obliquity and slope orientation, but also on the distance of Mars from
the sun during summer, that is on Mars orbit eccentricity and the areocentric longitude of the Sun at perihelion. The perfect
inter-hemisphere symmetry of the steep slope occurrence boundary indicates that this boundary reflects a cumulative result
of a great number of geologically short episodes of high summer temperature maxima. Preservation of steep slopes at low
latitudes indicates that Mars has never had a globally "warm" climate for a geologically appreciable duration at least since
the Late Hesperian. This also restricts the former rotation pole location within 5-10 deg from the present one for the same
time span.
DE: 1863 Snow and ice (1827)
DE: 5416 Glaciation
DE: 5455 Origin and evolution
DE: 6225 Mars
SC: Planetary Sciences [P]
MN: 2003 Fall Meeting