HR: 15:25h
AN: T43E-08 [Abstracts]
TI: Are stylolitic surfaces inherently unstable surfaces? Insights from shape minimization considerations
AU: Bonnetier, E
EM: eric.bonnetier@imag.fr
AF: Institut Fourier, University of Grenoble, BP 53, Grenoble, 38041, France
AU: Misbah, C
EM: chaouqi.misbah@ujf-grenoble.fr
AF: Laboratoire de Spectrométrie Physique, University of Grenoble, BP 53, Grenoble, 38041,
France
AU: * Renard, F
EM: francois.renard@ujf-grenoble.fr
AF: LGCA-CNRS-OSUG Univ. Grenoble & PGP Univ. Oslo, University of Grenoble, BP 53,
Grenoble, 38041, France
AU: Toussaint, R
EM: renaud@eost.u-strasbg.fr
AF: Ecole et Observatoire des Sciences de la Terre, University of Strasbourg, Strasbourg,
67000, France
AU: Gratier, J
EM: jean-pierre.gratier@ujf-grenoble.fr
AF: LGIT-CNRS-OSUG, University of Grenoble, BP 53, Grenoble, 38041, France
AB:
Non-planar solid-fluid-solid interfaces under stress are very common in many materials, and particularly in the
rocks of the Earth's crust. Such patterns are observed in many rocks in a wide range of spatial scales, from
undulate grain boundaries at the micrometer scale, to stylolite dissolution interface at the meter scale. It is
proposed here that these initially flat rock-fluid interfaces become rough by a morphological instability triggered by
elastic stress. A model for the formation of stylolitic patterns at all scales is thus presented. It is shown that such
instability is inherently present due to the uniaxial stress that promotes them, owing to the gain in the total elastic
energy: the intrinsic elastic energy plus the work of the external forces. This is shown explicitly by solving the
elastic problem in a linear stability analysis, and proved more generally without having resort to the computation
of the elastic field.
DE: 3900 MINERAL PHYSICS
DE: 4445 Nonlinear differential equations
DE: 8100 TECTONOPHYSICS
SC: Tectonophysics [T]
MN: 2007 Fall Meeting