HR: 1340h
AN: T33C-0569 [Abstracts]
TI: Interaction of the subduction process and forearc tectonics: An example from the active N - Chilean
margin
AU: * Victor, P
EM: pvictor@gfz-potsdam.de
AF: GFZ Potsdam, Telegrafenberg, Potsdam, 14473
Germany
AU: Sobiesiak, M
EM: polar@gfz-potsdam.de
AF: GFZ Potsdam, Telegrafenberg, Potsdam, 14473
Germany
AB:
Convergent plate boundaries at continental margins belong to the tectonically most active areas on earth and are endangered
by devastating earthquakes and tsunamis. The north Chilean margin is a high strain continental margin driven by fast plate
convergence rate. The greatest amount of strain is accommodated along the subduction interface. Nevertheless there is
extensive crustal deformation obvious by surface ruptures along reactivated segments of large fault systems and vertical
surface motions reflecting the interaction between subducting and overriding plates. The historical seismicity record
indicates that great earthquakes affect the Chilean Forearc with recurrence intervals of about 112+/- 21 y . The last great
event in northern Chile occurred in 1995 near Antofagasta. The Mw= 8.0 event ruptured the subduction interface 180 km along
strike with an average slip of about 5m in the depth interval between 10-50 km. From careful evaluation of the aftershock
sequence by examining the different catagories of aftershock focal mechanisms we can define three segments of the seismogenic
zone affected by the Antofagasta main shock. The non-ruptured northern segment beneath Mejillones Peninsula is seperated by
a broad transition zone from the central segment which hosts the earthquakes' rupture plane. The southern fault plane
boundary is identified by linear alignment of all apparent aftershock mechanisms. Along this southern boundary the strike
slip mechanisms are exclusively left lateral whereas the strike slip mechanisms along the northern transition zone are right
lateral. The orientations of summed moment tensors calculated from aftershock fault plane solutions on the northern segment
and in the northern transition zone differ from the orientations exhibited by moment tensors on the central segment. This
might indicate a rotational component in the coseismic movement of the ruptured segment relative to the non-ruptured segment.
The observed segmentation of the downgoing plate correlates well with changes in the coseismic surface displacement field
and coseismic rotations derived from GPS data (Allmendinger et al. in press). We can localize a transition zone at Mejillones
peninsula (23,5°S) striking approximately N 80°E dominated by clockwise vertical axis rotations also marked by
rotations of the summed moment tensors on the downgoing plate. The calculated strain tensor for this transition zone does not
correspond with long term surface deformation, implying that coseismic as well as early postseismic effects on the
subduction interface do not contribute to long term deformation of crustal fault zones. The Antofagasta earthquake took place
just south of the large 1877 gap which extends from southern Peru to Mejillones Peninsula, being the surface expression of a
barrier seperating the Antofagasta fault plane from the expected future fault plane. From our studies of the Antofagasta
subduction zone and the surface displacement field we hope to find evidences for interface-crust-surface interactions which
can be extrapolated also to the 1877 gap.
DE: 7230 Seismicity and tectonics (1207, 1217, 1240, 1242)
DE: 7240 Subduction zones (1207, 1219, 1240)
DE: 8104 Continental margins: convergent
DE: 8107 Continental neotectonics (8002)
SC: Tectonophysics [T]
MN: Fall Meeting 2005