Volume 14, Issue 14 (Second Special Issue 2015)                   Modares Mechanical Engineering 2015, 14(14): 108-116 | Back to browse issues page

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Ghajar R, Peyman S, Shaghaghi A. Computation of dynamic stress intensity factors for three-dimensional cracks in functionally graded materials using interaction integral method. Modares Mechanical Engineering 2015; 14 (14) :108-116
URL: http://mme.modares.ac.ir/article-15-1448-en.html
Abstract:   (5614 Views)
To investigate, understanding and predicting dynamic fracture behavior of a cracked body, dynamic stress intensity factors (DSIFs) are important parameters. In the present work interaction integral method is presented to compute static and dynamic stress intensity factors for three-dimensional cracks contained in the functionally graded materials (FGMs), and is implemented in conjunction with the finite element method (FEM). By a suitable definition of the auxiliary fields, the interaction integral method which is not related to derivatives of material properties can be obtained. For the sake of comparison, center, edge and elliptical cracks in homogeneous and functionally graded materials under static and dynamic loading are considered. Then material gradation is introduced in an exponential form in the two directions in and normal to the crack plane. Then the influence of the graded modulus of elasticity on static and dynamic stress intensity factors is investigated. It has been shown that, material gradation has considerable reduce influence on DSIFs of functionally graded material in comparison with homogenous material. While, static stress intensity factors can decrease or increase, depend on the direction of gradation material property.
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Article Type: Research Article | Subject: Creep, Fatigue & Failure
Received: 2014/06/30 | Accepted: 2014/08/19 | Published: 2014/10/11

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