A thermo-mechanical model of horizontal subduction below an overriding plate
Publication date
2000-08-09
Authors
Hunen, Jeroen van
Berg, A.P. van den
Vlaar, N.J.
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Document Type
Article
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Abstract
Subduction of young oceanic lithosphere cannot be explained by the gravitational driving mechanisms of slab pull
and ridge push. This deficiency of driving forces can be overcome by obduction of an actively overriding plate, which
forces the young plate either to subduct or to collide. This mechanism leads to shallow flattening of the slab as observed
today under parts of the west coast of North and South America. Here this process is examined by means of numerical
modeling. The convergence velocity between oceanic and continental lithospheric plates is computed from the modeling
results, and the ratio of the subduction velocity over the overriding velocity is used as a diagnostic of the efficiency of
the ongoing subduction process. We have investigated several factors influencing the mechanical resistance working
against the subduction process. In particular, we have studied the effect of a preexisting lithospheric fault with a depth
dependent shear resistance, partly decoupling the oceanic lithosphere from the overriding continent. We also
investigated the lubricating effect of a 7 km thick basaltic crustal layer on the efficiency of the subduction process and
found a log^linear relation between convergence rate and viscosity prefactor characterizing the strength of the oceanic
crust, for a range of parameter values including values for basaltic rocks, derived from empirical data. A strong mantle
fixes the subducting slab while being overridden and prevents the slab from further subduction in a Benioff style.
Viscous heating lowers the coupling strength of the crustal interface between the converging plates with about half an
order of magnitude and therefore contributes significantly to the subduction process. Finally, when varying the
overriding velocity from 2.5 to 10 cm yr 31 , we found a non-linear increase of the subduction velocity due to the presence
of non-linear mantle rheology. These results indicate that active obduction of oceanic lithosphere by an overriding
continental lithosphere is a viable mechanism for shallow flat subduction over a wide range of model
parameters. ß 2000 Elsevier Science B.V. All rights reserved.
Keywords
subduction, rheology, viscosity, plates, mantle