A finite element approach, based on the concept of the J,-integrals, is derived for evaluations of the ERR associated with crack kinking in 2-D elastic anisotropic solids. The application is developed as a generalized version of the domain integral method. Attention in this work is also addressed to
Energy release rates of crack kinking by boundary condition sensitivity analysis
โ Scribed by Dong Jung Keum; Byung Man Kwak
- Publisher
- Elsevier Science
- Year
- 1992
- Tongue
- English
- Weight
- 725 KB
- Volume
- 41
- Category
- Article
- ISSN
- 0013-7944
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โฆ Synopsis
The energy release rate, which is the total derivative of the energy with respect to crack length, is recognized as corresponding to the shape sensitivity analysis with the crack length change represented by the tangential component of design velocity. In this paper the sensitivity formula recently developed for a changing boundary condition has been further extended to cover crack kinking under mixed mode loading. Due to difficulty in defining the velocity field at the comer, the energy release rate at the onset of crack kinking is obtained by extrapolating the energy release rates for iinite length kinked cracks. A rectangular plate with a single edge slant crack under uniform tension is taken as a numerical example. The multi-region technique in the numerical implementation of the boundary integral equation is adopted to consider the asymmetry of the problem. Excellent accuracy is observed as compared with reference analytic solutions.
๐ SIMILAR VOLUMES
modified crack closure integral method with square-root stress singularity elements is given for calculation of strain energy release rate for an in-plane extension of a crack. Case studies are presented to illustrate the improvement in accuracy.
Chinese abstracts 133 The experimental results show that (I) X, of two thin sheet aluminum alloys are valid; they\_ are I?, = 201.39 kg/mm"\* and l?,, = 208.31 kg/mm"2 of Lyl22c2(1), K, =226.18kg/mm"2 and K,,= 234.55 kg/mm3" of Lc4 -cs; (2) the R-curves of the four thin sheet aluminum alloys are ind