HR: 1340h
AN: T43A-1077 [Abstracts]
TI: Seismic Wide-Angle Reflection / Refraction Profiling from the DESIRE Project Reveals the Deep Structure Across the Southern Dead Sea Basin
AU: Weber, M
EM: mhw@gfz-potsdam.de
AF: GeoForschungsZentrum Potsdam (GFZ), Telegrafenberg, 14473, Potsdam, Germany
AU: * Mechie, J
EM: jimmy@gfz-potsdam.de
AF: GeoForschungsZentrum Potsdam (GFZ), Telegrafenberg, 14473, Potsdam, Germany
AU: Ab-Ayyash, K
EM: rayd@nets.com.jo
AF: GeoForschungsZentrum Potsdam (GFZ), Telegrafenberg, 14473, Potsdam, Germany
AU: Ben-Avraham, Z
EM: zviba@post.tau.ac.il
AF: Department of Geophysics and Planetary Sciences, Tel-Aviv University, Tel-Aviv, 69978,
Israel
AU: El-Kelani, R
EM: radwan@najah.edu
AF: An-Najah National University, P.O. Box 707, Nablus, Palestine,
AU: Qabbani, I
EM: iqabbani@yahoo.com
AF: Natural Resources Authority, P.O. Box 7, Amman, 11118, Jordan
AU: Group, D
EM: mhw@gfz-potsdam.de
AB:
As part of the DESIRE project a 240 km long seismic wide-angle reflection / refraction (WRR) profile was
completed in spring 2006 across the Dead Sea Transform (DST) in the region of the southern Dead Sea basin.
The DST with a total of about 105 km multi-stage left-lateral shear since about 18 Ma ago, accommodates the
movement between the Arabian and African plates. It connects the spreading centre in the Red Sea with the
Taurus collision zone in Turkey over a length of about 1100 km. With a sedimentary infill of about 10 km in places,
the southern Dead Sea basin is the largest pull-apart basin along the DST and one of the largest pull-apart
basins on Earth. The WRR measurements comprised 11 shots recorded by 200 three-component and 400 one-
component instruments spaced 300 m to 1.2 km apart along the whole length of the E-W trending profile. Models
of the P-wave velocity structure derived from the WRR data show that the sedimentary infill associated with the
formation of the southern Dead Sea basin is about 8.5 km thick beneath the profile. With around an additional 2
km of older sediments, the depth to the seismic basement beneath the southern Dead Sea basin is about 11 km
below sea level beneath the profile. In contrast, the interfaces below about 20 km depth, including the top of the
lower crust and the Moho, show less than 3 km variation in depth beneath the profile as it crosses the southern
Dead Sea basin. Thus the Dead Sea pull-apart basin is essentially an upper crustal feature with N-S upper
crustal extension associated with the left-lateral motion along the DST. The boundary between the upper and
lower crust at about 20 km depth must act as a decoupling zone. Thermo-mechanical modelling of the Dead Sea
basin supports such a scenario.
UR: http://www.gfz-potsdam.de/pb2/pb22/projects/desire/desire-home.html
DE: 7205 Continental crust (1219)
DE: 8111 Continental tectonics: strike-slip and transform
DE: 8150 Plate boundary: general (3040)
DE: 8169 Sedimentary basin processes
SC: Tectonophysics [T]
MN: 2007 Fall Meeting