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A review on micromechanical modelling of progressive failure in unidirectional fibre-reinforced composites

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A review on micromechanical modelling of progressive failure in unidirectional fibre-reinforced composites. / Wan, L.; Ismail, Y.; Sheng, Y. et al.
In: Composites Part C: Open Access, Vol. 10, 100348, 31.03.2023.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

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APA

Wan, L., Ismail, Y., Sheng, Y., Ye, J., & Yang, D. (2023). A review on micromechanical modelling of progressive failure in unidirectional fibre-reinforced composites. Composites Part C: Open Access, 10, Article 100348. https://doi.org/10.1016/j.jcomc.2023.100348

Vancouver

Wan L, Ismail Y, Sheng Y, Ye J, Yang D. A review on micromechanical modelling of progressive failure in unidirectional fibre-reinforced composites. Composites Part C: Open Access. 2023 Mar 31;10:100348. Epub 2023 Jan 20. doi: 10.1016/j.jcomc.2023.100348

Author

Wan, L. ; Ismail, Y. ; Sheng, Y. et al. / A review on micromechanical modelling of progressive failure in unidirectional fibre-reinforced composites. In: Composites Part C: Open Access. 2023 ; Vol. 10.

Bibtex

@article{473f91b02c23484eb5b9ffda266eb27d,
title = "A review on micromechanical modelling of progressive failure in unidirectional fibre-reinforced composites",
abstract = "The recent decades have seen various attempts at the numerical modelling of fibre-reinforced polymer (FRP) composites in the aerospace, auto and marine sectors due to their excellent mechanical properties. However, it is still challenging to accurately predict the failure of the composites because of their anisotropic and inhomogeneous characteristics, multiple failure modes and their interaction, especially under multiaxial loading conditions. Micromechanics-based numerical models, such as representative volume elements (RVEs), were developed to understand the progressive failure mechanisms of composites, and assessing existing failure criteria. To this aim, this review paper summarises the development of micromechanics-based RVE modelling of unidirectional (UD) FRP composites reported in the literature, with a focus on those models developed using finite element (FE) and discrete element (DE) methods. The generation of fibre spatial distribution, constitutive models of material constituents as well as periodic boundary conditions are briefly introduced. The progressive failure mechanisms of UD FRP composites simulated by RVEs under various loadings are discussed and the comparison of failure envelopes predicted by numerical results and classical failure criteria are reviewed. ",
keywords = "Discrete element method (DEM), Fibre reinforced polymer composite (FRP), Finite element method (FEM), Multiaxial loadings, Progressive failure",
author = "L. Wan and Y. Ismail and Y. Sheng and J. Ye and D. Yang",
year = "2023",
month = mar,
day = "31",
doi = "10.1016/j.jcomc.2023.100348",
language = "English",
volume = "10",
journal = "Composites Part C: Open Access",
issn = "2666-6820",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - A review on micromechanical modelling of progressive failure in unidirectional fibre-reinforced composites

AU - Wan, L.

AU - Ismail, Y.

AU - Sheng, Y.

AU - Ye, J.

AU - Yang, D.

PY - 2023/3/31

Y1 - 2023/3/31

N2 - The recent decades have seen various attempts at the numerical modelling of fibre-reinforced polymer (FRP) composites in the aerospace, auto and marine sectors due to their excellent mechanical properties. However, it is still challenging to accurately predict the failure of the composites because of their anisotropic and inhomogeneous characteristics, multiple failure modes and their interaction, especially under multiaxial loading conditions. Micromechanics-based numerical models, such as representative volume elements (RVEs), were developed to understand the progressive failure mechanisms of composites, and assessing existing failure criteria. To this aim, this review paper summarises the development of micromechanics-based RVE modelling of unidirectional (UD) FRP composites reported in the literature, with a focus on those models developed using finite element (FE) and discrete element (DE) methods. The generation of fibre spatial distribution, constitutive models of material constituents as well as periodic boundary conditions are briefly introduced. The progressive failure mechanisms of UD FRP composites simulated by RVEs under various loadings are discussed and the comparison of failure envelopes predicted by numerical results and classical failure criteria are reviewed.

AB - The recent decades have seen various attempts at the numerical modelling of fibre-reinforced polymer (FRP) composites in the aerospace, auto and marine sectors due to their excellent mechanical properties. However, it is still challenging to accurately predict the failure of the composites because of their anisotropic and inhomogeneous characteristics, multiple failure modes and their interaction, especially under multiaxial loading conditions. Micromechanics-based numerical models, such as representative volume elements (RVEs), were developed to understand the progressive failure mechanisms of composites, and assessing existing failure criteria. To this aim, this review paper summarises the development of micromechanics-based RVE modelling of unidirectional (UD) FRP composites reported in the literature, with a focus on those models developed using finite element (FE) and discrete element (DE) methods. The generation of fibre spatial distribution, constitutive models of material constituents as well as periodic boundary conditions are briefly introduced. The progressive failure mechanisms of UD FRP composites simulated by RVEs under various loadings are discussed and the comparison of failure envelopes predicted by numerical results and classical failure criteria are reviewed.

KW - Discrete element method (DEM)

KW - Fibre reinforced polymer composite (FRP)

KW - Finite element method (FEM)

KW - Multiaxial loadings

KW - Progressive failure

U2 - 10.1016/j.jcomc.2023.100348

DO - 10.1016/j.jcomc.2023.100348

M3 - Journal article

VL - 10

JO - Composites Part C: Open Access

JF - Composites Part C: Open Access

SN - 2666-6820

M1 - 100348

ER -