HR: 0800h
AN: P51B-0922 [Abstracts]
TI: Subsurface Structure and the Stress State of the Utopia Basin, Mars
AU: * Searls, M L
EM: searls@levee.wustl.edu
AF: Dept of Earth and Planetary Sciences and McDonnell Center for the Space Sciences, Washington University,
One Brookings Dr, St. Louis, MO 63130
United States
AU: Phillips, R J
EM: phillips@wustite.wustl.edu
AF: Dept of Earth and Planetary Sciences and McDonnell Center for the Space Sciences, Washington University,
One Brookings Dr, St. Louis, MO 63130
United States
AB:
A great deal of work has been done in determining the resurfacing history of the northern lowlands; however, most of the
previous research has focused on the depth and characteristics of the Hesperian and Amazonian plains units that cover an
older, heavily cratered Noachian surface (e.g. Tanaka et. al. 2003). An analysis of the amount and density of fill within
the Utopia Basin could provide valuable insight to the depositional environment of the northern lowlands during the earliest
epoch of martian history. In the present study we use the topography and gravity data from recent Mars' missions to analyze
the subsurface structure of the Utopia basin, focusing on the volume and density of fill that causes the shallowness of the
basin. Using the assumption that the initial isostatic state of Utopia was similar to that of the Hellas basin allows us to
construct a model for Utopia that facilitates investigation of its interior configuration. Based on the spherical harmonic,
thin-shell elastic model of Banerdt (1986), we developed a system of equations that allows us to solve for the original
basin shape, the amount of fill within Utopia basin, the amount of flexure due to the fill material, the total vertical load
and the horizontal load potential. The presence of quasi-circular depressions within the Utopia basin (Frey 2004) indicates
that the majority of the material within Utopia was deposited early in the Noachian when the elastic lithosphere of Mars was
(presumably) relatively thin (<50 km). Given this constraint along with constraints placed on the system due to the
pre-fill isostatic assumption, we can place a lower bound on the density of the fill within Utopia basin of 2800 kg/m3.
This indicates that the amount of fill within the Utopia basin is >15 km, with a corresponding lithospheric
flexure/membrane deformation of >14 km. The high density obtained for the fill requires that it contain a large igneous
component, the source of which is problematic. Relaxing the isostatic assumption to a reasonable degree perturbs the density
bound only slightly. This thin-shell model also allows us to calculate the stress field due to the flexure/membrane
strains. The stress results show that the circumferential and radial tectonic features seen in the Utopia region (Thomson
and Head 2001) are not due solely to deformation of the elastic lithosphere, so the tectonic features observed are the
result, at least in part, of processes that occur within the load itself.
DE: 5475 Tectonics (8149)
DE: 5499 General or miscellaneous
DE: 6225 Mars
SC: Planetary Sciences [P]
MN: Fall Meeting 2005