- Title
- Nonconvex bundle method with application to a delamination problem
- Creator
- Dao, Minh; Gwinner, Joachim; Noll, Dominikus; Ovcharova, Nina
- Date
- 2016
- Type
- Text; Journal article
- Identifier
- http://researchonline.federation.edu.au/vital/access/HandleResolver/1959.17/185604
- Identifier
- vital:16697
- Identifier
-
https://doi.org/10.1007/s10589-016-9834-0
- Identifier
- ISBN:0926-6003
- Abstract
- Delamination is a typical failure mode of composite materials caused by weak bonding. It arises when a crack initiates and propagates under a destructive loading. Given the physical law characterizing the properties of the interlayer adhesive between the bonded bodies, we consider the problem of computing the propagation of the crack front and the stress field along the contact boundary. This leads to a hemivariational inequality, which after discretization by finite elements we solve by a nonconvex bundle method, where upper- C 1 criteria have to be minimized. As this is in contrast with other classes of mechanical problems with non-monotone friction laws and in other applied fields, where criteria are typically lower- C 1 , we propose a bundle method suited for both types of nonsmoothness. We prove its global convergence in the sense of subsequences and test it on a typical delamination problem of material sciences.
- Publisher
- New York: Springer US
- Relation
- Computational optimization and applications Vol. 65, no. 1 (2016), p. 173-203
- Rights
- All metadata describing materials held in, or linked to, the repository is freely available under a CC0 licence
- Rights
- Copyright Springer
- Subject
- Adhesives; Aerospace engineering; Algorithms; Bonding; Bonding strength; Bundling; Composite materials; Computation; Contact stresses; Convex and Discrete Geometry; Crack propagation; Cracks; Criteria; Delaminating; Delamination; Discretization; Failure modes; Interlayers; Laminated materials; Laws; Management Science; Mathematics; Mathematics - Optimization and Control; Mathematics and Statistics; Methods; Nonlinear programming; Operations Research; Operations Research/Decision Theory; Optimization; Optimization and Control; Statistics; Stress distribution; Stress propagation; 4901 Applied mathematics; 4903 Numerical and computational mathematics
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