Two-dimensional fracture analysis of piezoelectric material based on the scaled boundary node method

2016 ◽  
Vol 25 (4) ◽  
pp. 040203 ◽  
Author(s):  
Shen-Shen Chen ◽  
Juan Wang ◽  
Qing-Hua Li
2006 ◽  
Vol 324-325 ◽  
pp. 247-250
Author(s):  
Shu Hong Liu ◽  
Meng Wu ◽  
Shu Min Duan ◽  
Hong Jun Wang

A two-dimensional electromechanical analysis is performed on a transversely isotropic piezoelectric material containing a crack based on the impermeable electric boundary condition. By introducing stress function, a general solution is provided in terms of triangle series. It is shown that the stress and electric displacement are all of 1/2 order singularity in front of the crack tip. In addition, the electromechanical fields in the vicinity of the crack when subjected to uniform tensile mechanical load are obtained using boundary collocation method.


2003 ◽  
Vol 27 (8) ◽  
pp. 853-862 ◽  
Author(s):  
Hua Xie ◽  
Toyoaki Nogami ◽  
Jianguo Wang

2010 ◽  
Vol 5 ◽  
pp. S2108-S2108
Author(s):  
Ayumu SAITOH ◽  
Taku ITOH ◽  
Atsushi KAMITANI ◽  
Nobuyuki MATSUI ◽  
Hiroaki NAKAMURA

2008 ◽  
Vol 33-37 ◽  
pp. 539-544
Author(s):  
Yan Liang Du ◽  
Shu Hong Liu ◽  
Shi Jie Duan ◽  
Yan Qiang Li

A two-dimensional electromechanical analysis is performed on a transversely isotropic piezoelectric material containing an elliptical hole, which is subjected to uniform compressive forces with intensity q acting on the edge of the hole and uniform electric displacement fields at infinity. Based on the impermeable electric boundary conditions, general electromechanical fields solution are obtained in the form of complex potentials.


2013 ◽  
Vol 80 (4) ◽  
Author(s):  
Dieter B. Brommer ◽  
Markus J. Buehler

Among the many potential two-dimensional carbon allotropes inspired by graphene, graphynes have received exceptional attention recently. Graphynes exhibit remarkable mechanical properties depending on their structure. The similar structure and two-dimensional nature of these materials yield many properties that are similar to those of graphene, but the presence of heterogeneous bond types is expected to lead to distinct properties. The main subject of this work is graphdiyne, one of the few graphynes that has been fabricated in large quantities. In this paper, we perform fracture analysis on graphdiyne and find a delocalized failure mechanism in which a crack propagates along a diagonal with respect its original direction. The covalence of the material allows for this simple but intriguing phenomenon to be investigated. Graphene is also tested to compare the behavior. This mechanism has implications for the toughness and robustness of this material, which is topical for many device applications recently proposed in the literature. Further, connections of such delocalized failure mechanisms are made to that of hidden length and sacrificial bonding in some biological systems such as proteins, bone, and nacre.


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