HR: 1340h
AN: S33A-1045 [Abstracts]
TI: Structure and Anisotropy Beneath Southern Italy
AU: Okeler, A
EM: aokeler@phys.ualberta.ca
AF: Department of Physics, University of Alberta, CEB Building, Edmonton, AB T6G2G7,
Canada
AU: * Gu, Y J
EM: jgu@phys.ualberta.ca
AF: Department of Physics, University of Alberta, CEB Building, Edmonton, AB T6G2G7,
Canada
AU: Steckler, M S
EM: steckler@ldeo.columbia.edu
AF: Lamont-Doherty Earth Observatory, Columbia University, Palisades, NY 10964, United
States
AU: Lerner-Lam, A
EM: lerner@ldeo.columbia.edu
AF: Lamont-Doherty Earth Observatory, Columbia University, Palisades, NY 10964, United
States
AB:
The crust and upper mantle structures beneath southern Italy are often associated with rollback and
fragmentation of the Western Mediterranean subduction zone in the past 30 million years. In this study, we utilize
broadband records from the Calabria-Apennine-Tyrrhenian/Subduction Collision-Accretion Network (CAT/SCAN)
to probe the effect of the past and on-going plate motions beneath this region. Waveforms from two distinct
frequency ranges are examined in detail using both forward and inverse waveform modeling approaches, and the
resulting 1-D models for each path are subjected to a Monte-Carlo uncertainty test. By analyzing the Love and
Rayleigh waves from two regional earthquakes during the temporary deployment between 2003 and 2005, we are
able to retrieve information on the anisotropic seismic structure down to 200-km depth. Our study shows that the
average seismic structure beneath Calabria/Apulia is significantly faster than that beneath the Apenninic
mountain chain. Sharp changes in seismic velocities, regardless of wave polarizations, lend strong support for
the distinct geologic histories of the major tectonic units. The difference between Love- and Rayleigh-wave
models provides further constraints on the dynamic processes and crust/mantle fabric beneath the study area.
Our preliminary results show relatively minor anisotropy beneath the southeastern Tyrrhenian Sea and Calabrian
Arc region, which could be partially explained by the rapid changes in the alignment of olivine fast
crystallographic-axes due to the complex arc geometry. The ray paths connecting the Ionian Sea and the
Southern Apennines reveal strong anisotropy, where transversely polarized waves travel at higher speeds than
vertically polarized waves. Both "frozen-in" and flow-induced anisotropy could contribute to the observed
waveform differences between the Love and Rayleigh waves sampling this region.
DE: 7200 SEISMOLOGY
DE: 7205 Continental crust (1219)
DE: 7218 Lithosphere (1236)
DE: 7255 Surface waves and free oscillations
SC: Seismology [S]
MN: 2007 Fall Meeting