HR: 0800h
AN: DI51A-0285 [Abstracts]
TI: Nanoscale Properties of Rocks and Subduction Zone Rheology: Inferences for the Mechanisms of Deep Earthquakes
AU: * Riedel, M R
EM: miker@geo.uni-potsdam.de
AF: University of Potsdam, Institute of Geosciences
Karl-Liebknecht-Strasse 24, Golm, 14476, Germany
AB:
Grain boundaries are the key for the understanding of mineral reaction kinetics. More generally, nanometer scale
processes involved in breaking and establishing bonds at reaction sites determine how and at which rate bulk
rock properties change in response to external tectonic forcing and possibly feed back into various geodynamic
processes.
A particular problem is the effects of grain-boundary energy on the kinetics of the olivine-spinel phase
transformation in subducting slabs. Slab rheology is affected in many ways by this (metastable) mineral phase
change. Sluggish kinetics due to metastable hindrance is likely to cause particular difficulties, because of
possible strong non-linear feedback loops between strain-rate and change of creep properties during
transformation.
In order to get these nanoscale properties included into thermo-mechanical models, reliable kinetic data is
required. The measurement of grain-boundary energies is, however, a rather difficult problem. Conventional
methods of grain boundary surface tension measurement include (a) equilibrium angles at triple junction (b)
rotating ball method (c) thermal groove method, and others (Gottstein & Shvindlerman, 1999).
Here I suggest a new method that allows for the derivation of grain-boundary energies for an isochemical phase
transformation based on experimental (in-situ) kinetic data in combination with a corresponding dynamic scaling
law (Riedel and Karato, 1997).
The application of this method to the olivine-spinel phase transformation in subducting slabs provides a solution
to the extrapolation problem of measured kinetic data: Any kinetic phase boundary measured at the laboratory
time scale can be "scaled" to the correct critical isotherm at subduction zones, under experimentelly "forbidden"
conditions (Liou et al., 2000).
Consequences for the metastability hypothesis that relates deep seismicity with olivine metastability are derived
and discussed.
References:
Gottstein G, Shvindlerman LS (1999) Grain Boundary Migration in Metals, CRC Press, 385 pp., New York.
Riedel MR, Karato S (1997) Grain-Size Evolution in Subducted Oceanic Lithosphere Associated with the Olivine-
Spinel Transformation and Its Effects on Rheology. EPSL 148: 27-43.
Liou JG, Hacker BR, Zhang RY (2000) Into the forbidden zone. Science 287, 1215-1216.
DE: 3613 Subduction zone processes (1031, 3060, 8170, 8413)
DE: 4465 Phase transitions
DE: 7209 Earthquake dynamics (1242)
DE: 7240 Subduction zones (1207, 1219, 1240)
DE: 8170 Subduction zone processes (1031, 3060, 3613, 8413)
SC: Study of the Earth's Deep Interior [DI]
MN: 2007 Fall Meeting