HR: 0800h
AN: P41B-0931 [Abstracts]
TI: Characterization of Primary, Eroded, and Mantled Volcanic Surfaces Using Data Fusion
AU: * Byrnes, J M
EM: jmbyrnes@usgs.gov
AF: U.S. Geological Survey, Astrogeology Team, 2255 North Gemini Drive, Flagstaff, AZ 86001-1637
United States
AU: Finnegan, D C
EM: david.finnegan@erdc.usace.army.mil
AF: Cold Regions Research and Engineering Lab (CRREL), 72 Lyme Road, Hanover, NH 03755-1290
United States
AU: Ramsey, M S
EM: ramsey@ivis.eps.pitt.edu
AF: University of Pittsburgh, IVIS Laboratory, 4107 O'Hara Street, 200 Space Research Coordination Center,
Pittsburgh, PA 15260-3332
United States
AU: Anderson, S W
EM: anderson@psi.edu
AF: Planetary Science Institute, 1700 East Fort Lowell Road, Suite 106, Tucson, AZ 85719-2395
United States
AB:
Volcanic surface units, including lava flows and pyroclastic materials forming plains and edifices, are widespread on the
surfaces of rocky planetary bodies. Understanding the formation and degradation processes that produce and modify such
geologic units is crucial to understanding the geologic evolution of these bodies. In order to characterize primary, eroded,
and mantled characteristics of volcanic surfaces, we are utilizing a data fusion approach to examining the Amboy Crater
cinder cone and lava flow field. Located in the Mojave Desert in southern California, this volcanic complex is roughly 80 ka
in age and covers approximately 70 sq. km. Amboy Crater is a particularly desirable study site because it displays a wide
range of volcanic features that have been subjected to various extents of erosion and mantling from aeolian and fluvial
activity, and because it is an excellent terrestrial analog for Mars. Our approach uses a suite of complementary datasets
that has been collected for Amboy Crater, including airborne LIDAR (light detection and ranging) and radar (radio detection
and ranging) data, and airborne and spaceborne visible and near infrared (VNIR), shortwave infrared (SWIR), and thermal
infrared (TIR) data. Quantitative comparison of these remote sensing datasets acquired at a range of spatial resolutions
provides constraints on the ability to discriminate various morphologic and spectral characteristics of exposed surface
units. In conjunction with field analyses, these comparisons provide means to remotely identify topographic and spectral
signatures that are diagnostic of volcanic and degradational processes. Processes examined within the study area include
lava flow emplacement and inflation, emplacement of lava cinders and spatter, erosion of the lava flows and cinder cone by
liquid flow and sandblasting, and deposition of airborne and waterborne sediments.
DE: 5415 Erosion and weathering
DE: 8429 Lava rheology and morphology
DE: 8450 Planetary volcanism (5480, 6063, 8148)
DE: 8485 Remote sensing of volcanoes
DE: 8486 Field relationships (1090, 3690)
SC: Planetary Sciences [P]
MN: Fall Meeting 2005