Artículos de revistas
A BEM model applied to failure analysis of multi-fractured structures
Fecha
2011Registro en:
ENGINEERING FAILURE ANALYSIS, v.18, n.6, p.1538-1549, 2011
1350-6307
10.1016/j.engfailanal.2011.05.014
Autor
LEONEL, Edson Denner
VENTURINI, Wilson Sergio
CHATEAUNEUF, Alaa
Institución
Resumen
Due to manufacturing or damage process, brittle materials present a large number of micro-cracks which are randomly distributed. The lifetime of these materials is governed by crack propagation under the applied mechanical and thermal loadings. In order to deal with these kinds of materials, the present work develops a boundary element method (BEM) model allowing for the analysis of multiple random crack propagation in plane structures. The adopted formulation is based on the dual BEM, for which singular and hyper-singular integral equations are used. An iterative scheme to predict the crack growth path and crack length increment is proposed. This scheme enables us to simulate the localization and coalescence phenomena, which are the main contribution of this paper. Considering the fracture mechanics approach, the displacement correlation technique is applied to evaluate the stress intensity factors. The propagation angle and the equivalent stress intensity factor are calculated using the theory of maximum circumferential stress. Examples of multi-fractured domains, loaded up to rupture, are considered to illustrate the applicability of the proposed method. (C) 2011 Elsevier Ltd. All rights reserved.