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Quadratic prismatic and hexahedral solid‒shell elements for geometric nonlinear analysis of laminated composite structures

Article dans une revue avec comité de lecture
Auteur
WANG, Peng
178323 Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux [LEM3]
ccCHALAL, Hocine
178323 Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux [LEM3]
ccABED-MERAIM, Farid
178323 Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux [LEM3]

URI
http://hdl.handle.net/10985/17481
DOI
10.1016/j.compstruct.2017.03.091
Date
2017
Journal
Composite Structures

Résumé

The current contribution proposes two quadratic, prismatic and hexahedral, solid–shell elements for the geometric nonlinear analysis of laminated composite structures. The formulation of the proposed solid–shell elements is based on a fully three-dimensional approach combining the assumed-strain method and the reduced-integration technique. In particular, only translational degrees of freedom are considered in the formulation and a preferential direction is chosen as the thickness direction, along which an arbitrary number of integration points are arranged. Making use of different physical local frames, these elements are coupled with fully three-dimensional orthotropic constitutive equations, which allows modeling multilayered composite structures with only a single element layer through the thickness. A series of popular nonlinear benchmark tests for laminated composite structures is performed to assess the performance of the proposed SHB elements. Compared to reference solutions taken from the literature, the results provided by the SHB elements show excellent agreement. Moreover, on the whole, the proposed SHB elements perform better than state-of-the-art ABAQUS elements, which have the same geometry and kinematics, using comparable mesh discretizations.

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Documents liés

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

  • Efficient solid–shell finite elements for quasi-static and dynamic analyses and their application to sheet metal forming simulation 
    Article dans une revue avec comité de lecture
    WANG, Peng; ccCHALAL, Hocine; ccABED-MERAIM, Farid (Trans Tech Publications, 2015)
    Thin structures are commonly designed and employedin engineering industries to save material, reduce weight and improve the overall performance of products. The finite element (FE) simulation of such thin structural ...
  • Simulation of nonlinear benchmarks and sheet metal forming processes using linear and quadratic solid–shell elements combined with advanced anisotropic behavior models 
    Communication avec acte
    WANG, Peng; ccCHALAL, Hocine; ccABED-MERAIM, Farid (EDP Sciences, 2016)
    A family of prismatic and hexahedral solid‒shell (SHB) elements with their linear and quadratic versions is presented in this paper to model thin 3D structures. Based on reduced integration and special treatments to eliminate ...
  • On the use of solid–shell elements for thin structures: Application to impact and sheet metal forming simulations 
    Communication avec acte
    WANG, Peng; ccCHALAL, Hocine; ccABED-MERAIM, Farid (AIP, 2016)
    A family of linear and quadratic assumed-strain based solid‒shell elements (SHB) is presented in this paper to simulate 3D thin structural problems including both quasi-static and dynamic analyses. The SHB solid‒shell ...
  • Quadratic solid‒shell elements for nonlinear structural analysis and sheet metal forming simulation 
    Article dans une revue avec comité de lecture
    WANG, Peng; ccCHALAL, Hocine; ccABED-MERAIM, Farid (Springer Verlag, 2017)
    In this paper, two quadratic solid‒shell (SHB) elements are proposed for the three-dimensional modeling of thin structures. These consist of a twenty-node hexahedral solid‒shell element, denoted SHB20, and its fifteen-node ...
  • Explicit dynamic analysis of sheet metal forming processes using linear prismatic and hexahedral solid‒shell elements 
    Article dans une revue avec comité de lecture
    WANG, Peng; ccCHALAL, Hocine; ccABED-MERAIM, Farid (Emerald, 2017)
    This paper proposes two linear solid‒shell finite elements for the three-dimensional modeling of thin structures in the context of explicit dynamic analysis. These solid‒shell formulations, which are extensions of their ...

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