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Published in: Computational Mechanics 4/2014

01-04-2014 | Original Paper

A direct traction boundary integral equation method for three-dimension crack problems in infinite and finite domains

Authors: Guizhong Xie, Jianming Zhang, Cheng Huang, Chenjun Lu, Guangyao Li

Published in: Computational Mechanics | Issue 4/2014

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Abstract

This paper presents a direct traction boundary integral equation method (TBIEM) for three-dimensional crack problems. The TBIEM is based on the traction boundary integral equation (TBIE). The TBIE is collocated on both the external boundary and one of the crack surfaces. The displacements and tractions are used as unknowns on the external boundary and the relative crack opening displacements (CODs) are introduced as unknowns on the crack surface. In our implementation, all the surfaces of the considered structure are discretized into discontinuous elements to satisfy the continuity requirement for the existence of finite-part integrals, and special crack-front elements are constructed to capture the crack-tip behavior. To calculate the finite-part integrals, an adaptive singular integral technique is proposed. The stress intensity factors (SIFs) are computed through a modified COD extrapolation method. Numerical examples of SIFs computation are presented to demonstrate the accuracy and efficiency of our method.

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Appendix
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Metadata
Title
A direct traction boundary integral equation method for three-dimension crack problems in infinite and finite domains
Authors
Guizhong Xie
Jianming Zhang
Cheng Huang
Chenjun Lu
Guangyao Li
Publication date
01-04-2014
Publisher
Springer Berlin Heidelberg
Published in
Computational Mechanics / Issue 4/2014
Print ISSN: 0178-7675
Electronic ISSN: 1432-0924
DOI
https://doi.org/10.1007/s00466-013-0918-8

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