HR: 1340h
AN: T33C-0562 [Abstracts]
TI: Three-Dimensional Numerical
Models of the Dynamics of Slab Detachment
AU: * Burkett, E R
EM: burkett@geology.ucdavis.edu
AF: University of California, Davis, One Shields Avenue, Davis, CA 95616
United States
AU: Billen, M I
EM: billen@geology.ucdavis.edu
AF: University of California, Davis, One Shields Avenue, Davis, CA 95616
United States
AB:
Gaps in hypocentral distributions and within
tomographic images of subducted slabs provided the first observations of
possible slab detachment (or break-off), the process by which a portion
of a subducted slab breaks away from subducting lithosphere. The
existence of detached slabs has been increasingly supported by more
recent studies. For instance, slab break-off is suggested to have
occurred beneath such regions as the Alps, the Mediterranean-Carpathian
Region, and the New Hebrides Islands and is surmised to be a cause for
observations including surface uplift, magmatism, and cessation of
subduction. Previous investigations of slab detachment have largely
been limited either to 2D static models and force balance calculations to
determine the feasibility of detachment of a slab to occur, or to
assessments of the maximum surface uplift and thermal effects of shallow
detachment. Recently, 2D numerical models have indicated that following
the cessation of subduction, necking of the slab and rapid detachment
occurs over a few million years due to weakening of the slab by shear
heating. Although slab detachment has not yet been modeled in 3D,
observations of lateral migration of subsidence along strike above the
possibly detaching Carpathian slab suggest that the process of slab
detachment is inherently 3D and may initiate at the edge of a slab and
migrate laterally as a tear along the slab. We present fully dynamic
numerical flow models exploring the process of slab detachment in 3D.
Our study also investigates the effect of slab thickness or age and
maximum yield stress of the cold slab interior on the process of slab
detachment. The flow models employ an effective viscosity in which the
total strain rate is accommodated by diffusion and dislocation creep. At
the cold temperatures of the slab interior, a yield stress criteria is
used to simulate the deformation by Peierls mechanism of low temperature
plasticity. We report on the time scale and morphology of detachment,
the resulting surface deformation, and the dynamics of the detached slab
within the mantle. Comparison of model results to the observed
time-scale and geometry of surface deformation provides initial
constraints on the rheology of cold subducted lithosphere.
DE: 8120 Dynamics of lithosphere and mantle: general (1213)
DE: 8159 Rheology: crust and lithosphere (8031)
DE: 8170 Subduction zone processes (1031, 3060, 3613, 8413)
SC: Tectonophysics [T]
MN: Fall Meeting 2005