Please use this identifier to cite or link to this item:
http://hdl.handle.net/10174/24222
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Title: | Phase-field analysis of finite-strain plates and shells including element subdivision |
Authors: | Areias, P. Rabczuk, T. Msehk, M. |
Issue Date: | 2016 |
Abstract: | With the theme of fracture of finite-strain plates and shells based on a phase-field model of crack regularization, we introduce
a new staggered algorithm for elastic and elasto-plastic materials. To account for correct fracture behavior in bending, two
independent phase-fields are used, corresponding to the lower and upper faces of the shell. This is shown to provide a realistic
behavior in bending-dominated problems, here illustrated in classical beam and plate problems. Finite strain behavior for both
elastic and elasto-plastic constitutive laws is made compatible with the phase-field model by use of a consistent updated-Lagrangian
algorithm. To guarantee sufficient resolution in the definition of the crack paths, a local remeshing algorithm based on the phase-
field values at the lower and upper shell faces is introduced. In this local remeshing algorithm, two stages are used: edge-based
element subdivision and node repositioning. Five representative numerical examples are shown, consisting of a bi-clamped beam,
two versions of a square plate, the Keesecker pressurized cylinder problem, the Hexcan problem and the Muscat-Fenech and Atkins
plate. All problems were successfully solved and the proposed solution was found to be robust and efficient. |
URI: | https://www.sciencedirect.com/science/article/pii/S0045782516300196?via%3Dihub http://hdl.handle.net/10174/24222 |
Type: | article |
Appears in Collections: | FIS - Publicações - Artigos em Revistas Internacionais Com Arbitragem Científica
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