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A finite deformation isogeometric finite element approach to fibre-reinforced composites with fibre bending stiffness

Witt, Carina ; Kaiser, Tobias and Menzel, Andreas LU (2021) In Journal of Engineering Mathematics 128(1).
Abstract

It is a common technique in many fields of engineering to reinforce materials with certain types of fibres in order to enhance the mechanical properties of the overall material. Specific simulation methods help to predict the behaviour of these composites in advance. In this regard, a widely established approach is the incorporation of the fibre direction vector as an additional argument of the energy function in order to capture the specific material properties in the fibre direction. While this model represents the transverse isotropy of a material, it cannot capture effects that result from a bending of the fibres and does not include any length scale that might allow the simulation of size effects. In this contribution, an enhanced... (More)

It is a common technique in many fields of engineering to reinforce materials with certain types of fibres in order to enhance the mechanical properties of the overall material. Specific simulation methods help to predict the behaviour of these composites in advance. In this regard, a widely established approach is the incorporation of the fibre direction vector as an additional argument of the energy function in order to capture the specific material properties in the fibre direction. While this model represents the transverse isotropy of a material, it cannot capture effects that result from a bending of the fibres and does not include any length scale that might allow the simulation of size effects. In this contribution, an enhanced approach is considered which relies on the introduction of higher-gradient contributions of the deformation map in the stored energy density function and which eventually allows accounting for fibre bending stiffness in simulations. The respective gradient fields are approximated by NURBS basis functions within an isogeometric finite element framework by taking advantage of their characteristic continuity properties. The isogeometric finite element approach that is presented in this contribution for fibre-reinforced composites with fibre bending stiffness accounts for finite deformations. It is shown that the proposed method is in accordance with semi-analytical solutions for a representative boundary value problem. In an additional example it is observed that the initial fibre orientation and the particular bending stiffness of the fibres influence the deformation as well as the stress response of the material.

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Please use this url to cite or link to this publication:
author
; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Anisotropic elasticity, Fibre bending stiffness, Fibre curvature, Fibre stretch gradient, Finite deformations, Generalised continuum, Isogeometric analysis
in
Journal of Engineering Mathematics
volume
128
issue
1
article number
15
publisher
Springer
external identifiers
  • scopus:85107003709
ISSN
0022-0833
DOI
10.1007/s10665-021-10117-3
language
English
LU publication?
yes
id
b2a2ba56-5345-4935-8a3b-0c7e50f58891
date added to LUP
2021-12-17 09:47:41
date last changed
2022-04-27 06:44:16
@article{b2a2ba56-5345-4935-8a3b-0c7e50f58891,
  abstract     = {{<p>It is a common technique in many fields of engineering to reinforce materials with certain types of fibres in order to enhance the mechanical properties of the overall material. Specific simulation methods help to predict the behaviour of these composites in advance. In this regard, a widely established approach is the incorporation of the fibre direction vector as an additional argument of the energy function in order to capture the specific material properties in the fibre direction. While this model represents the transverse isotropy of a material, it cannot capture effects that result from a bending of the fibres and does not include any length scale that might allow the simulation of size effects. In this contribution, an enhanced approach is considered which relies on the introduction of higher-gradient contributions of the deformation map in the stored energy density function and which eventually allows accounting for fibre bending stiffness in simulations. The respective gradient fields are approximated by NURBS basis functions within an isogeometric finite element framework by taking advantage of their characteristic continuity properties. The isogeometric finite element approach that is presented in this contribution for fibre-reinforced composites with fibre bending stiffness accounts for finite deformations. It is shown that the proposed method is in accordance with semi-analytical solutions for a representative boundary value problem. In an additional example it is observed that the initial fibre orientation and the particular bending stiffness of the fibres influence the deformation as well as the stress response of the material.</p>}},
  author       = {{Witt, Carina and Kaiser, Tobias and Menzel, Andreas}},
  issn         = {{0022-0833}},
  keywords     = {{Anisotropic elasticity; Fibre bending stiffness; Fibre curvature; Fibre stretch gradient; Finite deformations; Generalised continuum; Isogeometric analysis}},
  language     = {{eng}},
  number       = {{1}},
  publisher    = {{Springer}},
  series       = {{Journal of Engineering Mathematics}},
  title        = {{A finite deformation isogeometric finite element approach to fibre-reinforced composites with fibre bending stiffness}},
  url          = {{http://dx.doi.org/10.1007/s10665-021-10117-3}},
  doi          = {{10.1007/s10665-021-10117-3}},
  volume       = {{128}},
  year         = {{2021}},
}