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Interface propagation and microstructure evolution in phase field models of stress-induced martensitic phase transformations
Authors:Valery I Levitas  Dong-Wook Lee  Dean L Preston
Institution:1. Iowa State University, Departments of Mechanical Engineering, Aerospace Engineering, and Material Science and Engineering, Ames, IA 50011, USA;2. Purdue University, School of Mechanical Engineering, West Lafayette, IN 47907-2088, USA;3. Texas Tech University, Department of Mechanical Engineering, Lubbock, TX 79409-1021, USA;4. Physics Division, Los Alamos National Laboratory, Los Alamos, NM 87545, USA
Abstract:Analytical solutions for diffuse interface propagation are found for two recently developed Landau potentials that account for the phenomenology of stress-induced martensitic phase transformations. The solutions include the interface profile and velocity as a function of temperature and stress tensor. An instability in the interface propagation near lattice instability conditions is studied numerically. The effect of material inertia is approximately included. Two methods for introducing an athermal interface friction in phase field models are discussed. In the first method an analytic expression defines the location of the diffuse interface, and the rate of change of the order parameters is required to vanish if the driving force is below a threshold. As an alternative and more physical approach, we demonstrate that the introduction of spatially oscillatory stress fields due to crystal defects and the Peierls barrier, or to a jump in chemical energy, reproduces the effect of an athermal threshold. Finite element simulations of microstructure evolution with and without an athermal threshold are performed. In the presence of spatially oscillatory fields the evolution self-arrests in realistic stationary microstructures, thus the system does not converge to an unphysical single-phase final state, and rate-independent temperature- and stress-induced phase transformation hysteresis are exhibited.
Keywords:Martensitic phase transformation  Phase field approach  Interface velocity  Athermal threshold  Microstructure evolution
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