A combined incremental-secant mean-field homogenization scheme with per-phase residual strains for elasto-plastic composites

Wu, L.;Noels, L.;Adam, L.;Doghri, Issam
(2013) International Journal of Plasticity — Vol. 51, p. 80-102 (2013)

Files

pdfdocument.pdf
  • Restricted Access
  • Adobe PDF
  • 2.66 MB

Details

Authors
  • Wu, L.University of Liege, Department of Aeronautics and Mechanical Engineering – Computational & Multiscale Mechanics of Materials, Liège, Belgium
    Author
  • Noels, L.University of Liege, Department of Aeronautics and Mechanical Engineering – Computational & Multiscale Mechanics of Materials, Liège, Belgium
    Author
  • Adam, L.e-Xstream Engineering, Axis Park-Building H, Mont-Saint-Guibert, Belgium
    Author
  • Doghri, IssamUCLouvain
    Author
Abstract
This paper presents an incremental secant mean-field homogenization (MFH) procedure for composites made of elasto-plastic constituents. In this formulation, the residual stress and strain states reached in the elasto-plastic phases upon a fictitious elastic unloading are considered as starting point to apply the secant method. The mean stress fields in the phases are then computed using secant tensors, which are naturally isotropic and enable to define the Linear-Comparison-Composite. The method, which remains simple in its formulation, is valid for general non-monotonic and non-proportional loading. It is applied on various problems involving elastic, elasto-plastic and perfectly-plastic phases, to demonstrate its accuracy compared to other existing MFH methods. © 2013 Elsevier Ltd. All rights reserved.
Affiliations

Citations

Wu, L., Noels, L., Adam, L., & Doghri, I. (2013). A combined incremental-secant mean-field homogenization scheme with per-phase residual strains for elasto-plastic composites. International Journal of Plasticity, 51, 80-102. https://doi.org/10.1016/j.ijplas.2013.06.006 (Original work published 2013)