HR: 1340h
AN: G43B-1195 [Abstracts]
TI: Geodetic Characterization of Santorini Caldera From Continuous GPS Measurements
AU: * Farmer, G T
EM: grant.farmer@gatech.edu
AF: Georgia Institute of Technology, School of Earth and Atmospheric Sciences, 311 Ferst
Drive, Atlanta, GA 30332, United States
AU: Newman, A V
EM: anewman@gatech.edu
AF: Georgia Institute of Technology, School of Earth and Atmospheric Sciences, 311 Ferst
Drive, Atlanta, GA 30332, United States
AU: Psimoulis, P
EM: ppsimo@upatras.gr
AF: Department of Civil Engineering, Patras University, Patras, 26500, Greece
AU: Stiros, S
EM: stiros@upatras.gr
AF: Department of Civil Engineering, Patras University, Patras, 26500, Greece
AB:
Santorini Caldera, in the southern Aegean, is part of a well developed, and very active volcanic system fueled by
subduction along the Hellenic arc. The caldera is partially submerged, with only pieces of caldera wall, flanks,
and central post-caldera lavas exposed above the sea level comprising a grouping of five small islands. The
system had its most recent caldera-forming event around 1650 B.C. in a massive series of Plinean eruptions that
expelled some 60 km3 of volcanic material, burying the previous island surface. The system remains active
with ongoing smaller pyroclastic and phreatic eruptions, forming the central islets atop of the submerged caldera
floor. In late-spring 2006, with UNAVCO field support and support form the Santorini Volcano Observatory, a
network of two continuous GPS monuments spanning the caldera was established, and completion of a third
monument is planned for this coming year. Additionally, 18 existing and new geodetic markers were first
established with GPS across the 5-island group in 2006. These locations cover the caldera rim and flanks, and
the central volcanic flows. Preliminary data from the two continuous GPS sites suggest that deformation across
the caldera is currently minimal, and below the detection threshold for the 1.5 year continuous network. Through
continuing analysis of the continuous network, along with additional campaign measurements, we hope to
establish the temporal character and spatial extent of potential deformation in the volcanic complex, and
determine if there exists any significant transient deformation associated with ongoing magma movement or
edifice cooling. Monitoring such a rate over time may be useful for early hazard awareness and mitigation during
regional volcanic crises.
DE: 1200 GEODESY AND GRAVITY
DE: 1240 Satellite geodesy: results (6929, 7215, 7230, 7240)
DE: 8419 Volcano monitoring (7280)
DE: 8440 Calderas
SC: Geodesy [G]
MN: 2007 Fall Meeting