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Finite Element Simulation of Sheet Metal Forming Processes using Non-Quadratic Anisotropic Plasticity Models and SolidShell Finite Elements

Communication avec acte
Auteur
YOUNAS, Nabeel
ccCHALAL, Hocine
178323 Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux [LEM3]
243747 Labex DAMAS
ccABED-MERAIM, Farid 

URI
http://hdl.handle.net/10985/20343
Date
2020

Résumé

During the last decades, a family of assumed-strain solid-shell finite elements has been developed with enriched benefits of solid and shell finite elements together with special treatments to avoid locking phenomena. These elements have been shown to be efficient in numerical simulation of thin 3D structures with various constitutive models. The current contribution consists in the combination of the developed linear and quadratic solid-shell elements with complex anisotropic plasticity models for aluminum alloys. Conventional quadratic anisotropic yield functions are associated with less accuracy in the simulation of forming processes with metallic materials involving strong anisotropy. For these materials, the plastic anisotropy can be modeled more accurately using advanced non-quadratic yield functions, such as the anisotropic yield criteria proposed by Barlat for aluminum alloys. In this work, various quadratic and non-quadratic anisotropic yield functions are combined with a linear eight-node hexahedral solid-shell element and a linear six-node prismatic solid-shell element, and their quadratic counterparts. The resulting solid-shell elements are implemented into the ABAQUS software for the simulation of benchmark deep drawing process of a cylindrical cup. The predicted results are assessed and compared to experimental ones taken from the literature. Compared to the use of conventional quadratic anisotropic yield functions, the results given by the combination of the developed solid-shell elements with non-quadratic anisotropic yield functions show good agreement with experiments.

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Documents liés

Visualiser des documents liés par titre, auteur, créateur et sujet.

  • Evaluation of a new solid-shell finite element on the simulation of sheet metal forming processes 
    Communication avec acte
    SALAHOUELHADJ, Abdellah; ccCHALAL, Hocine; ccABED-MERAIM, Farid  (Wiley, 2012)
    In this paper, the performance of the solid-shell finite element SHB8PS is assessed in the context of sheet metal forming simulation using anisotropic elastic-plastic behavior models. This finite element technology has ...
  • Elastic-plastic analyses using the solid-shell finite element SHB8PS and evaluation on sheet forming applications 
    Communication avec acte
    SALAHOUELHADJ, Abdellah; ccCHALAL, Hocine; ccABED-MERAIM, Farid ; ccBALAN, Tudor (Onate, E; Owen, DRJ; Peric, D; Suarez, B, 2011)
    In this contribution, the formulation of the SHB8PS continuum shell finite element is extended to anisotropic elastic-plastic behavior models with combined isotropic-kinematic hardening at large deformations. The resulting ...
  • Hardening effects on strain localization predictions in porous ductile materials using the bifurcation approach 
    Article dans une revue avec comité de lecture
    ccCHALAL, Hocine; ccABED-MERAIM, Farid  (Elsevier, 2015)
    The localization of deformation into planar bands is often considered as the ultimate stage of strain prior to ductile fracture. In this study, ductility limits of metallic materials are predicted using the Gurson–Tverga ...
  • Application of the continuum shell finite element SHB8PS to sheet forming simulation using an extended large strain anisotropic elastic–plastic formulation 
    Article dans une revue avec comité de lecture
    SALAHOUELHADJ, Abdellah; ccCHALAL, Hocine; ccABED-MERAIM, Farid ; ccBALAN, Tudor (Springer Verlag, 2012)
    This paper proposes an extension of the SHB8PS solid–shell finite element to large strain anisotropic elasto-plasticity, with application to several non-linear benchmark tests including sheet metal forming simulations. ...
  • Prédiction de la localisation par une approche d’endommagement micromécanique couplée à une analyse de bifurcation : application à la mise en forme des tôles 
    Communication avec acte
    MANSOURI, Lotfi; ccCHALAL, Hocine; ccABED-MERAIM, Farid ; ccBALAN, Tudor (Association Française de Mécanique, 2011)
    Le phénomène de localisation des déformations plastiques, qui apparait lors d’opérations de mise en forme des tôles, représente l’une des principales causes de rebut des pièces produites dans l’industrie. Plusieurs critères ...

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