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A three-dimensional hierarchic finite element-based computational framework for the analysis of composite laminates

Ullah, Z.; Kaczmarczyk, Ł.; Pearce, C. J.

Authors

Ł. Kaczmarczyk

C. J. Pearce



Abstract

A three-dimensional hierarchic finite element-based computational framework is developed for the investigation of inter-laminar stresses and displacements in composite laminates of finite width. As compared to the standard finite elements, hierarchic finite elements allow to change the order of approximation both locally and globally without modifying the underlying finite element mesh leading to very accurate results for relatively coarse meshes. In this paper, both symmetric cross-ply and angle-ply laminates subjected to uniaxial tension are considered as test cases. Tetrahedral elements are used for the discretisation of laminates and uniform or global p-refinement is used to increase the order of approximation. Each ply within laminates is modelled as a linear-elastic, homogenous and orthotropic material. With increasing the order of approximation, the developed computational framework is able to capture the complex profiles of inter-laminar stresses and displacements very accurately. Results are compared with reference results from the literature and found in a very good agreement. The computational model is implemented in our in-house finite element software library Mesh-Oriented Finite Element Method (MoFEM). The computational framework has additional flexibly of high-performance computing and makes use of the state-of-the-art computational libraries including Portable, Extensible Toolkit for Scientific Computation (PETSc) and the Mesh-Oriented datABase (MOAB).

Citation

Ullah, Z., Kaczmarczyk, Ł., & Pearce, C. J. (2020). A three-dimensional hierarchic finite element-based computational framework for the analysis of composite laminates. Composite Structures, 239, Article 111968. https://doi.org/10.1016/j.compstruct.2020.111968

Journal Article Type Article
Acceptance Date Jan 17, 2020
Online Publication Date Jan 30, 2020
Publication Date May 1, 2020
Deposit Date Sep 11, 2024
Journal Composite Structures
Print ISSN 0263-8223
Electronic ISSN 1879-1085
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 239
Article Number 111968
DOI https://doi.org/10.1016/j.compstruct.2020.111968
Public URL https://durham-repository.worktribe.com/output/2852163
Related Public URLs https://eprints.gla.ac.uk/215594/
Other Repo URL https://eprints.gla.ac.uk/215594/