Weight function method and stress intensity factor for two unsymmetric through-thickness and quarter-elliptical corner cracks at circular hole

•Accurate and wide-range weight functions of two hole-edge cracks are derived.•A 3D weight function method for two unsymmetrical corner cracks is established.•It is accurate and much faster than FEM for SIF calculation. Two unsymmetric through and quarter-elliptical corner cracks at a circular hole...

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Bibliographic Details
Published inEngineering fracture mechanics Vol. 264; p. 108361
Main Authors Zhang, Bo, Xu, Wu, Wu, Xue-Ren
Format Journal Article
LanguageEnglish
Published New York Elsevier Ltd 01.04.2022
Elsevier BV
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Summary:•Accurate and wide-range weight functions of two hole-edge cracks are derived.•A 3D weight function method for two unsymmetrical corner cracks is established.•It is accurate and much faster than FEM for SIF calculation. Two unsymmetric through and quarter-elliptical corner cracks at a circular hole are frequently encountered in aircraft structures. Stress intensity factors for these crack geometries are the prerequisite for aircraft damage tolerance analysis. However, compared to single and symmetric double crack(s) case, the present two unsymmetric through and corner cracks at a hole is much more complicated because more geometric variables are involved. In the present article, the two-dimensional displacement-based weight function method is extended to derive the weight functions of two unsymmetric hole-edge cracks. Accurate and wide-range weight functions and stress intensity factors are obtained. The two-dimensional weight function for the hole-edge cracks is further used in the slice synthesis weight function method to compute stress intensity factors for two unsymmetric quarter-elliptical corner cracks at a circular hole. The solution accuracy is extensively verified through comparisons to stress intensity factors obtained using finite element analysis. Compared to 3D finite element method, the present slice synthesis weight function method is 500 times faster, and therefore can provide accurate and very efficient tool for fatigue and fracture analysis of structures containing through and quarter-elliptical corner hole-edge cracks.
ISSN:0013-7944
1873-7315
DOI:10.1016/j.engfracmech.2022.108361