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Maurine Montagnat

Publications and source records attributed to Maurine Montagnat.

2 recordsLinked to original sources

Modelling ductile strain localization with evolutive stochastic rheologies

Plate Tectonics requires strain localization over the entire thickness of the plates. However, modelling strain localization in the deep sections of the plates, which deform by ductile processes, remains a challenge, prompting the use of ad hoc schemes to model plate boundaries. We posit that the bottleneck for self-consistent generation of ductile strain localization in geodynamical models is poor representation of the intrinsic mechanical heterogeneity of rocks, in particular at small scales. This prevents its effects from being accounted for at larger scales, notably emergent properties that arise during upscaling, like anisotropy. To model this heterogeneity and its evolution, we adopt a stochastic description of the rheology, which evolves in time and space as a function of the local work-rate. This approach enables to reproduce the full variety of responses observed in nature, from heterogeneous deformation at the local scale, but homogeneous at the system-scale, with or without softening, to spontaneous development of system-scale shear zones. It enables, thereby, the construction of regime diagrams for ductile strain localization using three adimensional parameters. These parameters describe the degree of heterogeneity and potential for evolution of the rheology, function of (1) the constitutive equation, which represents the active deformation processes, (2) the evolution law for the rock mechanical properties, (3) the initial properties, and (4) the energy input to the system. This approach also enables the prediction of the intensity of localization and the resulting system-scale anisotropic softening, paving the way for self-consistent modelling of plate boundaries in geodynamics.

physics.geo-ph↗

On the role of long range internal stresses on grain nucleation during discontinuous recrystallization

The essential role of long range elastic interactions in recrystallization is demonstrated using a simple analytical model: pileup rearrangements following absorption of leading dislocations by a dislocation-free embryo provides an additional driving force that results in a drastic decrease of both the nucleation critical radius and the saddle point energy. A very sharp transition is evidenced, at which the saddle point totally disappears and nucleation becomes spontaneous. This transition occurs for a well defined critical stress corresponding to both a critical density of geometrically necessary dislocations and a critical strain, without invoking any critical nucleus size that may be reached with the help of some dislocation microstructure instability. The present model is illustrated here by the case of polycrystalline ice, but may apply to other crystalline material with significant plastic anisotropy, as Zircaloy for instance.

cond-mat.mtrl-sci↗