Elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized Irwin correction

A theoretical model is developed to investigate the fracture behavior for an elliptical inhomogeneity embedded in an elastic-plastic matrix. It contains an arbitrarily oriented crack under a uniform stress field at infinity. In the model, the generalized Irwin approach is applied for plastic zone co...

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Main Authors: Feng, Hui, Lam, Yee Cheong, Zhou, Kun, Kumar, Shashi Bhushan, Wu, Wenjin
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/140360
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1403602020-05-28T05:18:41Z Elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized Irwin correction Feng, Hui Lam, Yee Cheong Zhou, Kun Kumar, Shashi Bhushan Wu, Wenjin School of Mechanical and Aerospace Engineering Engineering::Mechanical engineering Elastic-plastic Fracture Mechanics Generalized Irwin Model A theoretical model is developed to investigate the fracture behavior for an elliptical inhomogeneity embedded in an elastic-plastic matrix. It contains an arbitrarily oriented crack under a uniform stress field at infinity. In the model, the generalized Irwin approach is applied for plastic zone correction for crack-tip yielding. The distributed dislocation technique is utilized to formulate the present problem. The effective stress intensity factors, the plastic zone size and the crack tip opening displacement are evaluated by solving the formulated singular integral equations. The solution takes into account the plastic zone size at the crack tips and thus could provide accurate stress intensity factors and crack tip opening displacements for the assessment of crack growth. In the numerical examples, the case under a y-direction uniaxial tension is considered. The effects of the ellipse's aspect ratio, the shear moduli ratio and the normalized crack-inhomogeneity distance are investigated. The results show that the shapes of the inhomogeneity and the material combinations have significant influences. Crack propagation may be hindered if the inhomogeneity is close to circular or a hole and the crack inclination angle is close to 90°. 2020-05-28T05:18:41Z 2020-05-28T05:18:41Z 2017 Journal Article Feng, H., Lam, Y. C., Zhou, K., Kumar, S. B., & Wu, W. (2018). Elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized Irwin correction. European Journal of Mechanics - A/Solids, 67, 177-186. doi:10.1016/j.euromechsol.2017.10.001 0997-7538 https://hdl.handle.net/10356/140360 10.1016/j.euromechsol.2017.10.001 2-s2.0-85031719536 67 177 186 en European Journal of Mechanics - A/Solids © 2017 Elsevier Masson SAS. All rights reserved.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic Engineering::Mechanical engineering
Elastic-plastic Fracture Mechanics
Generalized Irwin Model
spellingShingle Engineering::Mechanical engineering
Elastic-plastic Fracture Mechanics
Generalized Irwin Model
Feng, Hui
Lam, Yee Cheong
Zhou, Kun
Kumar, Shashi Bhushan
Wu, Wenjin
Elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized Irwin correction
description A theoretical model is developed to investigate the fracture behavior for an elliptical inhomogeneity embedded in an elastic-plastic matrix. It contains an arbitrarily oriented crack under a uniform stress field at infinity. In the model, the generalized Irwin approach is applied for plastic zone correction for crack-tip yielding. The distributed dislocation technique is utilized to formulate the present problem. The effective stress intensity factors, the plastic zone size and the crack tip opening displacement are evaluated by solving the formulated singular integral equations. The solution takes into account the plastic zone size at the crack tips and thus could provide accurate stress intensity factors and crack tip opening displacements for the assessment of crack growth. In the numerical examples, the case under a y-direction uniaxial tension is considered. The effects of the ellipse's aspect ratio, the shear moduli ratio and the normalized crack-inhomogeneity distance are investigated. The results show that the shapes of the inhomogeneity and the material combinations have significant influences. Crack propagation may be hindered if the inhomogeneity is close to circular or a hole and the crack inclination angle is close to 90°.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Feng, Hui
Lam, Yee Cheong
Zhou, Kun
Kumar, Shashi Bhushan
Wu, Wenjin
format Article
author Feng, Hui
Lam, Yee Cheong
Zhou, Kun
Kumar, Shashi Bhushan
Wu, Wenjin
author_sort Feng, Hui
title Elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized Irwin correction
title_short Elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized Irwin correction
title_full Elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized Irwin correction
title_fullStr Elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized Irwin correction
title_full_unstemmed Elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized Irwin correction
title_sort elastic-plastic behavior analysis of an arbitrarily oriented crack near an elliptical inhomogeneity with generalized irwin correction
publishDate 2020
url https://hdl.handle.net/10356/140360
_version_ 1681056910418116608