HR: 1340h
AN: T33C-0561 [Abstracts]
TI: Impact of Mantle Wind on Subducting Plate Geometry and Interplate Pressure: Insights From Physical
Modelling.
AU: * Boutelier, D
EM: boutelier@geology.utoronto.ca
AF: Dept. of Geology, University of Toronto, 22 Russell Street, Toronto, ON M5S 3B1
Canada
AU: Cruden, A R
T33C-0561
AF: Dept. of Geology, University of Toronto, 22 Russell Street, Toronto, ON M5S 3B1
Canada
AB:
New physical models of subduction investigate the impact of large-scale mantle flow on the structure of the subducted slab
and deformation of the downgoing and overriding plates. The experiments comprise two lithospheric plates made of highly
filled silicone polymer resting on a model asthenosphere of low viscosity transparent silicone polymer. Subduction is driven
by a piston that pushes the subducting plate at constant rate, a slab-pull force due to the relative density of the slab, and
a basal drag force exerted by flow in the model asthenosphere. Large-scale mantle flow is imposed by a second piston moving
at constant rate in a tunnel at the bottom of the experiment tank. Passive markers in the mantle track the evolution of flow
during the experiment. Slab structure is recorded by side pictures of the experiment while horizontal deformation is studied
via passive marker grids on top of both plates. The initial mantle flow direction beneath the overriding plate can be
sub-horizontal or sub-vertical. In both cases, as the slab penetrates the mantle, the mantle flow pattern changes to
accommodate the subducting high viscosity lithosphere. As the slab continues to descend, the imposed flow produces either
over- or under-pressure on the lower surface of the slab depending on the initial mantle flow pattern (sub-horizontal or
sub-vertical respectively). Over-pressure imposed on the slab lower surface promotes shallow dip subduction while
under-pressure tends to steepen the slab. These effects resemble those observed in previous experiments when the overriding
plate moves horizontally with respect to a static asthenosphere. Our experiments also demonstrate that a strong vertical drag
force (due to relatively fast downward mantle flow) exerted on the slab results in a decrease in strain rate in both the
downgoing and overriding plates, suggesting a decrease in interplate pressure. Furthermore, with an increase in drag force
deformation in the downgoing plate can switch from compression to extension. The density contrast between the downgoing plate
and asthenosphere is varied from 0% to ~2% in order to investigate the relative contributions of mantle flow and slab pull
force on the geometry of the slab and tectonic regime (compressional or extensional).
DE: 8120 Dynamics of lithosphere and mantle: general (1213)
DE: 8170 Subduction zone processes (1031, 3060, 3613, 8413)
SC: Tectonophysics [T]
MN: Fall Meeting 2005