Tracking twin boundary jerky motion at nanometer and microsecond scales
ORAL
Abstract
The jerky motion of twin boundaries in the ferromagnetic shape memory alloy Ni-Mn-Ga is studied by simultaneous measurements of stress and magnetic emissions (ME). A careful design of the experimental conditions results in an approximately linear relationship between the measured ME voltage and the nm-scale volumes exhibiting twinning transformation during microsecond-scale abrupt 'avalanche' events. This work shows that the same distributions of ME avalanches, related to features of jerky twin boundary motion, are found both during and between stress drop events. Maximum likelihood analysis of statistical distributions of several variables reveals a good fit to power laws truncated by exponential functions. Interestingly, the characteristic cutoffs described by the exponential functions are in the middle of the distribution range. Further, the cutoff values can be related to physical characteristics of the studied problem. Particularly, the cutoff of amplitudes of ME avalanches matches the value predicted by high rate magnetic pulse tests performed under much larger driving force values. This observation implies that avalanches during slow rate twin boundary motion and velocity changes observed by high rate tests represent the same behavior and can be described by the same theory.
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Publication: Bronstein, Emil, et al. "Tracking Twin Boundary Jerky Motion at Nanometer and Microsecond Scales." Advanced Functional Materials (2021): 2106573
Presenters
Emil Bronstein
Faculty of Mechanical Engineering, Technion - Israel Institute of Technology
Authors
Emil Bronstein
Faculty of Mechanical Engineering, Technion - Israel Institute of Technology
Laszlo Z Toth
Department of Solid State Physics, University of Debrecen
Lajos Daroczi
Department of Solid State Physics, University of Debrecen
Dezso L Beke
Department of Solid State Physics, University of Debrecen
Ronen Talmon
Viterbi Faculty of Electrical & Computer Engineering, Technion - Israel Institute of Technology
Doron Shilo
Faculty of Mechanical Engineering, Technion - Israel Institute of Technology, Technion - Israel Institute of Technology