Statistics of Microstructure Formation in Martensitic Transitions Studied by a Random-Field Potts Model with Dipolar-like Interactions
arXiv:0807.2168 · doi:10.1088/1742-5468/2009/05/P05009
Abstract
We have developed a simple model for the study of a cubic to tetragonal martensitic transition, under athermal conditions, in systems with a certain amount of disorder. We have performed numerical simulations that allow for a statistical study of the dynamics of the transition when the system is driven from the high-temperature cubic phase to the low-temperature degenerate tetragonal phase. Our goal is to reveal the existence of kinetic constraints that arise from competition between the equivalent variants of the martensitic phase, and which prevent the system from reaching optimal final microstructures.
11 pages, 14 figures
References in corpus (5)
- Ferroelastic Dynamics and Strain Compatibility
- Jamming Percolation and Glass Transitions in Lattice Models
- Simulations of cubic-tetragonal ferroelastics
- Power law statistics of avalanches in martensitic transformation
- Random Field Potts model with dipolar-like interactions: hysteresis, avalanches and microstructure