HR: 0800h
AN: T21B-0526 [Abstracts]
TI: Dynamics of Subduction and Plate Motion in Laboratory Experiments
AU: * Bellahsen, N
EM: bellahs@lgs.jussieu.fr
AF: Dept. Of Geological and Environmental Sciences, Stanford University, Stanford, Stanford, CA 94305-2115
United States
AU: * Bellahsen, N
EM: bellahs@lgs.jussieu.fr
AF: Dip.Scienze Geologiche, Univ."Roma TRE", L.go S.Leonardo Murialdo, 1, Roma, 00146
Italy
AU: Faccenna, C
EM: faccenna@uniroma3.it
AF: Dip.Scienze Geologiche, Univ."Roma TRE", L.go S.Leonardo Murialdo, 1, Roma, 00146
Italy
AU: Funiciello, F
EM: ffunicie@uniroma3.it
AF: Dip.Scienze Geologiche, Univ."Roma TRE", L.go S.Leonardo Murialdo, 1, Roma, 00146
Italy
AB:
3-D laboratory experiments have been designed to investigate the way slab-bearing plates move during subduction inside the
mantle. The boundary conditions are as simple as possible: a viscous plate rests in the center of a large tank filled up by
honey and subducts under its negative buoyancy once a small instability at the plate edge is created. Varying thickness,
width, viscosity, density of the plate and mantle, three characteristic modes of subduction are observed: a retreating trench
mode (Mode I), a retreating trench mode following a transient period of advancing trench (Mode II), and an advancing trench
mode (Mode III). These modes are characterized by different partitioning of the amount of subduction into plate and trench
motion. Our experiments show that the velocity of subduction can be roughly modeled by the dynamic interaction between acting
and resisting forces and that some parameters such as the slab viscosity or thickness have the opposite influence than the
one usually suggested in the literature. This result is interpreted as the consequence of the dependence (measured in the
experiments) of the slab radius of curvature on the plate viscosity and thickness. However, it is still far from being simple
to predict how the trench and plate move. Our results suggest that the complexity of the style of subduction could also be
controlled by simple geometrical rules of a plate bending inside a stratified mantle: our planet system is in the crucial
range where the length of the slab pulling down the plate is about the double of its radius of curvature.
DE: 8120 Dynamics of lithosphere and mantle--general
DE: 8155 Plate motions--general
SC: Tectonophysics [T]
MN: 2004 AGU Fall Meeting