HR: 1340h
AN: MR43A-0972 [Abstracts]
TI: Micromechanical Modelling of the Viscoplastic Behavior of Olivine
AU: * Castelnau, O
EM: oc@lpmtm.univ-paris13.fr
AF: Institution of Geophysics and Planetary Physics, Scripps Institution of Oceanography, Univ.
California San Diego, 9500 Gilman Dr., La Jolla, CA 92093-0225, United States
AU: * Castelnau, O
EM: oc@lpmtm.univ-paris13.fr
AF: Laboratoire des Propriétés Mécaniques et
Thermodynamiques des Matériaux, CNRS, Université Paris Nord, av. J.B. Clément, Villetaneuse, 93430, France
AU: Blackman, D K
EM: dblackman@uscd.edu
AF: Institution of Geophysics and Planetary Physics, Scripps Institution of Oceanography, Univ.
California San Diego, 9500 Gilman Dr., La Jolla, CA 92093-0225, United States
AU: Lebensohn, R A
EM: lebenso@lanl.gov
AF: Materials Science and Technology Division, Los Alamos
National Laboratory, Los Alamos, NM 87845, United States
AU: Ponte Castaneda, P
EM: ponte@seas.upenn.edu
AF: Department of Mechanical Engineering and Applied Mechanics, University of Pennsylvania,
220 S. 33rd. Street, Philadelphia, PA 19104-6315, United States
AB:
Efforts to couple mantle flow models with predictions of mineral deformation typically ignore rheological impacts
that texture development may have on the flow evolution.
Olivine crystals have only three easy slip systems for dislocation glide, leading to strong mechanical interactions
between grains as deformation proceeds.
These intergranular interactions are also responsible for very large viscoplastic anisotropy when polycrystals
exhibit pronounced Lattice Preferred Orientations (LPO).
Using a full field polycrystal plasticity model for creep in dry polycrystalline olivine under thermomechanical
conditions prevailing in the upper mantle, it is shown that very large stress and strain rate heterogeneities build
up at the grain scale upon deformation.
Field heterogeneities increase with the strength of the hard slip system incorporated for the sake of enabling
general deformation.
Compared with several nonlinear mean field approaches for polycrystal plasticity, all based on the Self-
Consistent scheme, only the recent Second Order procedure, which is based on a variational method, really
captures the effect of intraphase stress heterogeneities on the effective viscoplastic behavior and on the local
stress and strain rate intragranular fluctuations.
Results compare very well with those of the full field method, at a significantly reduced computation effort.
We anticipate that this model is the best model to date for accurate, from the physical point of view,
micromechanical modeling of upper mantle peridotite.
The "tangent" model, most commonly used in geophysical studies of the mantle, departs significantly from the
full-field reference solutions.
Olivine polycrystals are found to be able to deform with only four independent slip systems, the hard system
perhaps being provided by dislocation climb (often observed in experimental work) and/or grain boundary
mechanisms (sliding, migration).
The resistance of this accommodation process may essentially control the flow stress of olivine polycrystals.
First attempt to assess the effect of the rheological anisotropy (associated with LPO development) on typical in
situ convective flow will also been shown.
DE: 3902 Creep and deformation
DE: 3904 Defects
DE: 5112 Microstructure
DE: 5120 Plasticity, diffusion, and creep
DE: 8162 Rheology: mantle (8033)
SC: Mineral and Rock Physics [MR]
MN: 2007 Fall Meeting