HR: 1340h
AN: P13A-0971 [Abstracts]
TI: Basal Topography of the South Polar Layered Deposits
AU: * Davies, C W
EM: davies@gps.caltech.edu
AF: Caltech, 1200 East California BVLD., Pasadena, CA 91125
United States
AU: Murray, B C
EM: bcm@gps.caltech.edu
AF: Caltech, 1200 East California BVLD., Pasadena, CA 91125
United States
AU: Byrne, S
EM: shane@quake.mit.edu
AF: MIT, 77 Massachusetts Ave., Cambridge, MA 02139
United States
AB:
The ice inferred to comprise the south polar layered deposits (SPLD) represents a significant fraction of the total water
reservoir of the planet. The basal topography of these deposits is currently unconstrained but may be expected to contain
considerable relief based on the heavily cratered nature of the surrounding terrain. In this work we report on our efforts to
characterize the overall nature of this basal topography and in so doing better constrain the volume of this important
volatile reservoir. Our approach has been to measure elevations at the periphery of the SPLD (defined by [1]) and use various
interpolation techniques to estimate the basal topography. We used 1300 control points from the edges and areas surrounding
the SPLD and included extensive control points from within the Chasmae and other features to fit a surface beneath the SPLD.
No assumptions were made about any lithospheric flexure, nor did the results suggest that possibility. We first tested a
variety of surface interpolation routines on a comparable area of cratered terrain immediately adjacent to the SPLD, using
the same spatial distribution of 1300 height control points as we used for the SPLD itself, and found that the topography was
broadly reproducible (ignoring craters) to within a few hundred meters. The SPLD basal topography we derive can be
subtracted from the current spatial topography to produce isopach maps of the layered deposits. All interpolation methods we
tested (within the ArcMap 8.3) indicate a lower total SPLD volume than that previous published [Smith et al., 2001]. Our
best estimate for the SPLD volume is ~1 million km$^3$, with a formal error in volume of ~5%, corresponding to an average
thickness of ~950 meters. In comparison, [2] estimated this volume to be ~1.2-1.7 million km$^3$. The Prometheus impact
basin is present as a rimmed depression, consistent with the inference by [3]. More unexpected is the presence of a broad
ridge underlying nearly the entire eastern half of the SPLD, which makes those deposits relatively thin. Our isopach maps
show the northwestern portion of the Ultimi lobe to be an isolated thick region, in agreement with [1].
[1] Kolb, E. J., and K. L. Tanaka (2001), Icarus, 154, 22-39.
[2] Smith, D. E., et al. (2001), J. Geophys. Res., 106(E10), 23,689-23,722.
[3] Byrne, S., and A. B. Ivanov (2004), J. Geophys. Res., In press.
DE: 5462 Polar regions
DE: 6225 Mars
SC: Planetary Sciences [P]
MN: 2004 AGU Fall Meeting