Published June 18, 2024 | Accepted
Journal Article Open

Modelling the anisotropy evolution in sheet metals with heterogeneous properties

Abstract

The adoption of local heat treatments to effectively modify the material behaviour is an interesting solution for improving the formability limits of sheet metals during complex forming processes. Being the Finite Element approach the most effective way to design the material modification, in this study we develop a comprehensive constitutive framework to describe the spectrum of plastic responses associated with different levels of annealing, while considering the effect of the anisotropy.

Both changes of the flow stress and the anisotropy with the level of annealing are modelled using sigmoidal functions and introduced in a metal plasticity anisotropic model (Hill48). This approach provides a constitutive framework that, relying on a limited number of experimental characterization tests, allows to predict the evolution of the yield locus according to the level of annealing experienced by the material during the heat treatment. The proposed approach revealed to be an effective tool for modeling the spectrum of heterogeneous mechanical responses, particularly valuable, for instance, in the context of local heat treatments, such as laser-based methods or welding processes. It allows to capture the material behavior in terms of š¯‘…-values distribution, not only in the region irradiated by the laser spot but also in the transitional region. The detailed hybrid numerical/experimental methodology allows to plug-in any anistropic plasticity model, making the constitutive framework extremely versatile and needing a very limited number of tests. The calibration of the model from experiments and the accuracy of the predictions are thoroughly discussed.

Copyright and License

© 2024 Elsevier.

Acknowledgement

The activities have been financed by the European Union - NextGenerationEU (National Sustainable Mobility Center CN00000023Italian Ministry of University and Research Decree n. 1033 - 17/06/2022, Spoke 11 - Innovative Materials and Lightweighting). The opinions expressed are those of the authors only and should not be considered as representative of the European Union or the European Commission’s official position. Neither the European Union nor the European Commission can be held responsible for them.

A.L. conducted part of this study when he was affiliated at Università Politecnica delle Marche.

Contributions

Attilio Lattanzi: Writing – original draft, Visualization, Validation, Methodology, Investigation, Formal analysis, Conceptualization. Antonio Piccininni: Writing – original draft, Visualization, Validation, Resources, Methodology, Investigation, Formal analysis. Marco Rossi: Writing – review & editing, Project administration, Conceptualization. Gianfranco Palumbo: Writing – review & editing, Supervision, Project administration, Conceptualization.

Data Availability

Data will be made available on request.

Conflict of Interest

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

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Additional details

Created:
June 26, 2024
Modified:
June 26, 2024