HR: 0800h
AN: T41C-1238 [Abstracts]
TI: Geodynamics Of Mid-Tertiary Extensional Phase In Southwest Texas And Relationship With The Rio Bravo
Fault
AU: * Le Pichon, X T
EM: lepichon@cdf.u-3mrs.fr
AF: College de France, BP80, Aix-en-Provence, cedex04
France
AU: Husson, L
AF: College de France, BP80, Aix-en-Provence, cedex04
France
AU: Henry, P
EM: henry@cdf.u-3mrs.fr
AF: College de France, BP80, Aix-en-Provence, cedex04
France
AB:
Three independent sets of data lead us to conclude that gravity collapse alone cannot account for the Cenozoic evolution of
the Texas margin of the GOM and that there has been since Paleocene a significant reactivation of the extension there.1) We
have examined an extensive set of thermal data from wells including 2000 Reservoir temperatures offshore Texas and Louisiana.
Solving for 1-D thermal and stratigraphic evolution of 166 representative wells we obtain the basal heat flow that defines
the existence of a well defined anomaly centred on the Corsair Fault. The basal heat flow increases over less than 100 km
from 35 mW/m2 northwest of the Corsair Fault to 55 mW/m2 on the fault. This increase is best explained by a crustal
extensional episode during Upper Cenozoic as demonstrated by a simple modelization. The thermal structure results in very
high temperatures at depth. The deepest wellls at 6000 m depth give a temperature larger than 200C. Below the Corsair rift,
the extrapolated temperature is more than 300C at 10 000 m (6 s twt), 375C at 12.5 km (7 s twt) and close to 500C at 18.5 km
(9 s twt). 2) Velocity/depth data from refraction (Ebeniro et al., 1988), from Moho inversion based on gravity and from 11s
TWT seismic reflection depth sections show that the deep decollement layer is indeed very deep and very hot and that there
is little if any igneous crust below the Corsair Rift. The velocity structure lead us to conclude that the major decollement
that is generally identified with the Middle-Cretaceous Unconformity (MCU) and that lies at a depth of 7 s twt increasing to
9 s below the Corsair Rift plunges from 12-13 km northwest of the Corsair Fault to 18-19 km below the Corsair Rift. There the
Moho is localized at 21-22km. The 3 km thick material between these two depths could potentially include the Cretaceous,
Jurassic and Triassic as well as the whole igneous crust. In any case at this depth the present extrapolated temperature is
about 500øC. The brittle-ductile transition at the present time is then expected to be situated within the sedimentary
section and the brittle - ductile transition is probably situated between 6 and 8 s twt. The material, whatever its
composition, below the main d‚collement in the area of the Corsair Rift must be metarmorphized and ductile.3) Field data led
to the identification a major left-lateral shear zone most active during the late Eocene-Oligocene that we have called the
Rio Bravo Fault zone. The fault zone had been previously described in the literature as the N120ø Texas lineament assumed to
have been inherited from the Jurassic opening of the Gulf of Mexico and located at the boundary between Texas and Mexico,
approximately coinciding with the Rio Bravo (or Rio Grande).We demonstrate that this zone of shear was active during
Oligocene from about 31øN to about 25øN. We conclude that an approximately 1000 km long left-lateral shear zone was active
during mid-Tertiary with a total offset of 40-60 km. Its activity affected the Tertiary depocenters in Texas and within the
Burgos Basin. It could account for the Paleocene to Oligocene extension in Southwest Texas.
DE: 8105 Continental margins and sedimentary basins
DE: 8107 Continental neotectonics
DE: 8120 Dynamics of lithosphere and mantle--general
SC: Tectonophysics [T]
MN: 2004 AGU Fall Meeting