Geometrically nonlinear modelling of pre-stressed viscoelastic fibre-reinforced composites with application to arteries
I.I. Tagiltsev, A.V. Shutov

TL;DR
This paper develops a geometrically exact model for pre-stressed fibre-reinforced composites, incorporating viscoelasticity and multiple reference configurations, validated through FEM simulations and comparison with the opening angle approach.
Contribution
It introduces a novel modeling framework that includes two reference configurations and applies it to viscoelastic composites, enabling the use of standard numerical algorithms for pre-stressed inelastic structures.
Findings
The model accurately predicts the behavior of pre-stressed composites.
A locking effect reduces the opening angle compared to individual layers.
Standard cutting tests may not fully capture pre-stress effects.
Abstract
Modelling of mechanical behaviour of pre-stressed fibre-reinforced composites is considered in a geometrically exact setting. A general approach which includes two different reference configurations is employed: one configuration corresponds to the load-free state of the structure and another one to the stress-free state of each material particle. The applicability of the approach is demonstrated in terms of a viscoelastic material model; both the matrix and the fibre are modelled using a multiplicative split of the deformation gradient tensor; a transformation rule for initial conditions is elaborated and specified. Apart from its simplicity, an important advantage of the approach is that well-established numerical algorithms can be used for pre-stressed inelastic structures. The interrelation between the advocated approach and the widely used "opening angle" approach is clarified. A…
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