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A new shell formulation for graphene structures based on existing ab-initio data

delete2018-03-01
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R
Reza Ghaffari
T
Thang X. Duong
R
Roger A. Sauer *
DOI:10.1016/j.ijsolstr.2017.11.008delete
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Abstract

Abstract

En 中文
An existing hyperelastic membrane model for graphene calibrated from ab-initio data (Kumar and Parks, 2014) is adapted to curvilinear coordinates and extended to a rotation-free shell formulation based on iso-geometric finite elements. Therefore, the membrane model is extended by a hyperelastic bending model that reflects the ab-inito data of Kudin et al. (2001). The proposed formulation can be implemented straight-forwardly into an existing finite element package, since it does not require the description of molecular interactions. It thus circumvents the use of interatomic potentials that tend to be less accurate than ab-initio data. The proposed shell formulation is verified and analyzed by a set of simple test cases. The results are in agreement to analytical solutions and satisfy the FE patch test. The performance of the shell formulation for graphene structures is illustrated by several numerical examples. The considered examples are indentation and peeling of graphene and torsion, bending and axial stretch of carbon nanotubes. Adhesive substrates are modeled by the Lennard-Jones potential and a coarse grained contact model. In principle, the proposed formulation can be extended to other 2D materials. (C) 2017 Elsevier Ltd. All rights reserved.
Keywords:
Adhesive contact
Carbon nanotubes
Graphene
Hyperelasticity
Isogeometric finite elements
Rotation-free shell
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Journal

International Journal of Solids and Structures cover
International Journal of Solids and Structures
IF:
3.8
Papers:
1.2W
Citations:
3.1W

Organization

R
RWTH Aachen University
Scholars:
3.5W
Papers: 2.6W
Citations: 3.6W