HR: 14:40h
AN: U53A-04 [Abstracts]
TI: Subduction hinge migration: The backwards component of plate tectonics
AU: * Stegman, D
EM: dave.stegman@sci.monash.edu.au
AF: Monash Cluster Computing, School of Mathematical Sciences,
Monash University, Clayton, VIC 3121
Australia
AU: Freeman, J
EM: justin.freeman@anu.edu.au
AF: Research School of Earth Sciences, The Australian National University, Acton, ACT 0200
Australia
AU: Schellart, W
EM: wouter.schellart@anu.edu.au
AF: Research School of Earth Sciences, The Australian National University, Acton, ACT 0200
Australia
AU: Moresi, L
EM: louis.moresi@sci.monash.edu.au
AF: Monash Cluster Computing, School of Mathematical Sciences,
Monash University, Clayton, VIC 3121
Australia
AU: May, D
EM: david.may@sci.monash.edu.au
AF: Monash Cluster Computing, School of Mathematical Sciences,
Monash University, Clayton, VIC 3121
Australia
AB:
There are approximately 50 distinct segments of subduction zones in the world, of which 40% have oceanic lithosphere
subducting under oceanic lithosphere. All of these ocean-ocean systems are currently experiencing hinge-rollback, with the
exception of 2 (Mariana and Kermadec). In hinge-rollback, the surface trace of the suduction zone (trench) is moving in the
opposite direction as the plate is moving (i.e. backwards). Coincidentally, the fastest moving plate boundary in the world is
actually the Tonga trench at an estimated 17 cm/yr (backwards). Although this quite important process was recognized soon
after the birth of plate tectonic theory (Elsasser, 1971), it has received only a limited amount of attention (Garfunkel,
1986; Kincaid and Olson, 1987) until recently. Laboratory models have shown that having a three dimensional experiment is
essential in order to build a correct understanding of subduction. We have developed a numerical model with the neccessary
3-D geometry capable of investigating some fundamental questions of plate tectonics: How does hinge-rollback feedback into
surface tectonics and mantle flow? What can we learn about the forces that drive plate tectonics by studying hinge-rollback?
We will present a quantatitive analysis of the effect of the lateral width of subduction zones, the key aspect to
understanding the nature of hinge-rollback. Additionally, particular emphasis has been put on gaining intuition through the
use of movies (a 3-D rendering of the numerical models), illustrating the time evolution of slab interactions with the lower
mantle as seen in such fields as velocity magnitude, strain rate, viscosity, as well as the toroidal and poloidal components
of induced flow. This investigation is well-suited to developing direct comparisons with geological and geophysical
observations such as geodetically determined hinge retreat rates, geochemical and petrological observations of arc volcanics
and back-arc ridge basalts, timing and distribution of metamorphic core complexes in backarc basins under extension,
paleostress observables such surface movements and block rotations, observations of seismic anistropy determined by shear
wave splitting, and the emerging studies of regional tomographic models of seismic anistropy.
DE: 8120 Dynamics of lithosphere and mantle: general (1213)
DE: 8149 Planetary tectonics (5475)
DE: 8170 Subduction zone processes (1031, 3060, 3613, 8413)
SC: Union [U]
MN: Fall Meeting 2005