Back to Search Start Over

Implementation of subloading surface model for hyperelastoplasticity with nonlinear kinematic/isotropic hardening based on reference and intermediate configurations.

Authors :
Toluei, Reza
Kharazi, Mahsa
Source :
Applied Mathematical Modelling. Sep2023, Vol. 121, p751-779. 29p.
Publication Year :
2023

Abstract

• Unconventional subloading surface model is used for finite strain elastoplasticity. • Time integration schemes are proposed in reference and intermediate configurations. • Further decomposition of deformation gradient is utilized in kinematic hardening. • Diverse cases such as simple shear in tension and tension-compression are studied. • The results are in good agreement with experimental data available in literature. In this paper, the elastoplastic behavior of isotropic materials under finite strains is modelled and simulated under consideration of the subloading surface concept. Using the subloading surface model has many advantages, such as the ability of modeling more smoothly transition from elastic to plastic state and also more realistic modeling of the Bauschinger effect. For this purpose, three time integration algorithms are utilized in the reference and intermediate configurations in the present study. The first algorithm is based on a time integration scheme, available in the literature, and the second time integration is proposed by tensor exponential-based time integration and the third one is represented by a standard backward Euler time integration scheme. In the second proposed time integration, which is defined in the intermediate configuration, there is no need to use co-rotational objective time rates. However, in the third one, although it is based on the intermediate configuration, the Zaremba–Jaumann co-rotational rate is employed. Besides, in the second two time integrations, the constitutive equations are derived based on the unknown tensors defined in the intermediate configuration and as a consequence there is no restriction of using different hyperelastic models. For case studies, diverse deformation gradient tensors with and without volume changes are considered. These studied cases are accomplished for SUS 304 stainless steel and a glassy polymer (oriented PET). The obtained results of some cases are compared with available results in the literature. The agreement among the predicted results in this paper and the results from literature is good. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0307904X
Volume :
121
Database :
Academic Search Index
Journal :
Applied Mathematical Modelling
Publication Type :
Academic Journal
Accession number :
164255765
Full Text :
https://doi.org/10.1016/j.apm.2023.05.026