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On a hemi-variational formulation for a 2D elasto-plastic-damage strain gradient solid with granular microstructure†

Academic Article
Publication Date:
2023
Short description:
On a hemi-variational formulation for a 2D elasto-plastic-damage strain gradient solid with granular microstructure† / Placidi, L.; Barchiesi, E.; Dell'Isola, F.; Maksimov, V.; Misra, A.; Rezaei, N.; Scrofani, A.; Timofeev, D.. - In: MATHEMATICAL FOUNDATIONS OF COMPUTING. - ISSN 2577-8838. - 5:1(2023), pp. 1-24. [10.3934/mine.2023021]
abstract:
We report a continuum theory for 2D strain gradient materials accounting for a class of dissipation phenomena. The continuum description is constructed by means of a (reversible) placement function and by (irreversible) damage and plastic functions. Besides, expressions of elastic and dissipation energies have been assumed as well as the postulation of a hemi-variational principle. No flow rules have been assumed and plastic deformation is also compatible, that means it can be derived by a placement function. Strain gradient Partial Differential Equations (PDEs), boundary conditions (BCs) and Karush-Kuhn-Tucker (KKT) type conditions are derived by a hemi variational principle. PDEs and BCs govern the evolution of the placement descriptor and KKT conditions that of damage and plastic variables. Numerical experiments for the investigated homogeneous cases do not need the use of Finite Element simulations and have been performed to show the applicability of the model. In particular, the induced anisotropy of the response has been investigated and the coupling between damage and plasticity evolution has been shown.
Iris type:
1.1 Articolo in rivista
Keywords:
2D continua; damage mechanics; granular microstructures; Karush-Kuhn-Tucker conditions; strain gradient
List of contributors:
Placidi, L.; Barchiesi, E.; Dell'Isola, F.; Maksimov, V.; Misra, A.; Rezaei, N.; Scrofani, A.; Timofeev, D.
Authors of the University:
BARCHIESI Emilio
Handle:
https://iris.uniss.it/handle/11388/298478
Published in:
MATHEMATICAL FOUNDATIONS OF COMPUTING
Journal
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