TY - JOUR
T1 - Fracture analysis of ferroelectric single crystals
T2 - Domain switching near crack tip and electric field induced crack propagation
AU - Zhang, Yihui
AU - Li, Jiangyu
AU - Fang, Daining
PY - 2013/1
Y1 - 2013/1
N2 - A theoretical analysis is developed for cracked ferroelectric single crystals, focusing on domain switching near the crack tip and field induced crack propagation under a pure electric loading. Domain switching near the crack tip is analyzed first, with the local field concentration determined from the linear piezoelectric fracture analysis, and the resulting domain switching zone established from energetic analysis and compatibility consideration. The crack propagation under a pure electric loading is then analyzed using energy release rate based on field induced domain switching near crack tip. It is found that a negative electric field opposite to the original poling direction would induce a stripe domain switching zone near crack tip, which in turn provides driving force for the electric field induced crack propagation. On the other hand, a positive electric field parallel to the original poling direction induces nearly no domain switching near crack tip, and results in no crack propagation. Good agreements with experiments and phase field simulations are observed.
AB - A theoretical analysis is developed for cracked ferroelectric single crystals, focusing on domain switching near the crack tip and field induced crack propagation under a pure electric loading. Domain switching near the crack tip is analyzed first, with the local field concentration determined from the linear piezoelectric fracture analysis, and the resulting domain switching zone established from energetic analysis and compatibility consideration. The crack propagation under a pure electric loading is then analyzed using energy release rate based on field induced domain switching near crack tip. It is found that a negative electric field opposite to the original poling direction would induce a stripe domain switching zone near crack tip, which in turn provides driving force for the electric field induced crack propagation. On the other hand, a positive electric field parallel to the original poling direction induces nearly no domain switching near crack tip, and results in no crack propagation. Good agreements with experiments and phase field simulations are observed.
KW - Compatibility
KW - Crack mechanics
KW - Domain switching
KW - Ferroelectric single crystals
KW - Fracture mechanisms
UR - http://www.scopus.com/inward/record.url?scp=84867582656&partnerID=8YFLogxK
U2 - 10.1016/j.jmps.2012.08.008
DO - 10.1016/j.jmps.2012.08.008
M3 - Article
AN - SCOPUS:84867582656
SN - 0022-5096
VL - 61
SP - 114
EP - 130
JO - Journal of the Mechanics and Physics of Solids
JF - Journal of the Mechanics and Physics of Solids
IS - 1
ER -