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Numerical investigation of necking in perforated sheets using the periodic homogenization approach

Article dans une revue avec comité de lecture
Auteur
ZHU, Jianchang
ccBEN BETTAIEB, Mohamed
ccABED-MERAIM, Farid 
178323 Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux [LEM3]
243747 Labex DAMAS

URI
http://hdl.handle.net/10985/17463
DOI
10.1016/j.ijmecsci.2019.105209
Date
2020
Journal
International Journal of Mechanical Sciences

Résumé

Due to their attractive properties, perforated sheets are increasingly used in a number of industrial applications, such as automotive, architecture, pollution control, etc. Consequently, the accurate modeling of the mechanical behavior of this kind of sheets still remains a valuable goal to reach. This paper aims to contribute to this effort by developing reliable numerical tools capable of predicting the occurrence of necking in perforated sheets. These tools are based on the coupling between the periodic homogenization technique and three plastic instability criteria. The periodic homogenization technique is used to derive equivalent macroscopic mechanical behavior for a representative volume element of these sheets. On the other hand, the prediction of plastic instability is based on three necking criteria: the maximum force criterion (diffuse necking), the general bifurcation criterion (diffuse necking), and the loss of ellipticity criterion (localized necking). The predictions obtained by applying the three instability criteria are thoroughly analyzed and compared. A sensitivity study is also conducted to numerically investigate the influence on the prediction of necking of the design parameters (dimension, aspect-ratio, orientation, and shape of the holes), the macroscopic boundary conditions and the metal matrix material parameters (plastic anisotropy, hardening).

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LEM3_IJMS_2020_BENBETTAIEB.pdf
Taille:
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Description:
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Fin d'embargo:
2020-07-01
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Documents liés

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

  • Numerical investigation of the ductility limit of perforated sheets 
    Communication sans acte
    ZHU, Jianchang; ccBEN BETTAIEB, Mohamed; ccABED-MERAIM, Farid  (2018)
    Perforated sheets are widely used in automotive, architecture, pollution control, and other fields. Because perforated sheets are lightweight and aesthetically attractive, and also allow specific elements such as water, ...
  • Investigation of the competition between void coalescence and macroscopic strain localization using the periodic homogenization multiscale scheme 
    Article dans une revue avec comité de lecture
    ZHU, Jianchang; ccBEN BETTAIEB, Mohamed; ccABED-MERAIM, Farid  (Elsevier, 2020)
    In most voided metallic materials, the failure process is often driven by the competition between the phenomena of void coalescence and plastic strain localization. This paper proposes a new numerical approach that allows ...
  • A comparative study of three techniques for the computation of the macroscopic tangent moduli by periodic homogenization 
    Communication avec acte
    ZHU, Jianchang; ccBEN BETTAIEB, Mohamed; ccABED-MERAIM, Farid  (2019)
    The robust and efficient computation of the macroscopic tangent moduli represents a challenging numerical task in the process of the determination of the effective macroscopic properties of heterogeneous media. The aim of ...
  • Comparative study of three techniques for the computation of the macroscopic tangent moduli by periodic homogenization scheme 
    Article dans une revue avec comité de lecture
    ZHU, Jianchang; ccBEN BETTAIEB, Mohamed; ccABED-MERAIM, Farid  (Springer Verlag, 2020)
    In numerical strategies developed for determining the efective macroscopic properties of heterogeneous media, the efcient and robust computation of macroscopic tangent moduli represents an essential step to achieve. Indeed, ...
  • Prediction of Localized Necking in Polycrystalline Aggregates Based on Periodic Homogenization 
    Communication avec acte
    ZHU, Jianchang; ccBEN BETTAIEB, Mohamed; ccABED-MERAIM, Farid  (K. Wisniewski; T. Burczynski, 2018)
    Ductile failure is the main mechanism that limits the formability of thin metal sheets during forming processes. In the current contribution, ductile failure is assumed to be solely induced by the occurrence of localized ...

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