HR: 0800h
AN: T41F-1291 [Abstracts]
TI: Late Cenozoic and active transpression along the Dead Sea fault in northwestern Syria
AU: * Gomez, F
EM: fgomez@missouri.edu
AF: Department of Geological Sciences, 101 Geological Sciences Bldg.
University of Missouri, Columbia, MO 65211
United States
AU: Radwan, Y
AF: Department of Geology, Syrian Atomic Energy Commission, Damascus, 00000
Syrian Arab Republic
AU: Al-Najjar, H
AF: Department of Geology, Syrian Atomic Energy Commission, Damascus, 00000
Syrian Arab Republic
AU: Layyous, I
AF: Department of Geology, Syrian Atomic Energy Commission, Damascus, 00000
Syrian Arab Republic
AU: Darkal, A
AF: Department of Geology, Damascus University, Damascus, 00000
Syrian Arab Republic
AU: Darawcheh, R
AF: Department of Geology, Syrian Atomic Energy Commission, Damascus, 00000
Syrian Arab Republic
AU: Sbeinati, R
AF: Department of Geology, Syrian Atomic Energy Commission, Damascus, 00000
Syrian Arab Republic
AU: Meghraoui, M
AF: EOST, Institute de Physique du Globe, Strasbourg, F67084
AU: Al-Ghazzi, R
AF: HIAST, Higher Institute of Applied Sciences and Technology, Damascus, 00000
Syrian Arab Republic
AU: Barazangi, M
AF: Insitute for the Study of the Continents, Snee Hall
Cornell University, Ithaca, NY 14853
United States
AB:
The left-lateral Dead Sea fault (DSF) constitutes the boundary between the Arabian and African plates as they converge with
Eurasia. In northwestern Syria, the DSF emerges from the 200-km-long "Lebanese" restraining bend with a single fault trace
that bifurcates at the Ghab Valley. Despite locally transtensional features like the Ghab Valley, neotectonic activity along
the northern DSF in northwestern Syria demonstrates that oblique plate motions result in an overall transpressive tectonic
regime. Constraints on recent tectonism are provided by neotectonic mapping, trenching of Holocene sediments, and analyses
of a 20-meter pixel digital elevation model constructed using InSAR. Evidence of Neogene and Quaternary displacement on the
northern DSF includes truncation and offset of a large, early Pliocene volcano. Preliminary estimates of the left-lateral
slip rate south of the Ghab Valley are 4 - 7 mm / yr. In the Ghab Valley, hanging valleys, beheaded drainages, and displaced
late Quaternary lava flows demonstrate that plate motion is distributed among several active fault branches. Furthermore,
warping and tilting of a late Miocene - early Pliocene paleo-surface, as well as morphometric analyses, suggest that tectonic
uplift of the Syrian Coastal Range has been coincident with recent left-lateral faulting on the adjacent DSF. Uplift is
asymmetrically distributed in that it is almost exclusively located in the western block of the DSF. The region of uplift is
greatest adjacent to the Ghab Valley. This may reflect a contribution from isostatic uplift as a result of the local
transtension. We suggest that a convergent component of plate motion is responsible for uplift of the entire Syrian Coastal
Range. Our hypothesis is consistent with regional plate tectonic models that predict 10ø - 25ø obliquity between the
Arabian-African plate motion and the strike of the northern Dead Sea fault.
DE: 7221 Paleoseismology
DE: 8107 Continental neotectonics
DE: 8110 Continental tectonics--general (0905)
SC: Tectonophysics [T]
MN: 2004 AGU Fall Meeting