A three-dimensional multi-scale computational homogenisation framework is developed for the prediction of nonlinear micro/meso-mechanical response of the fibre-reinforced polymer (FRP) composites. Two dominant damage mechanisms, i.e. matrix elasto-plastic response and fibre–matrix decohesion are considered and modelled using a non-associative pressure dependent paraboloidal yield criterion and cohesive interface elements respectively. A linear-elastic transversely isotropic material model is used to model yarns/fibres within the representative volume element (RVE). A unified approach is used to impose the RVE boundary conditions, which allows convenient switching between linear displacement, uniform traction and periodic boundary conditions...
A fully coupled hygro-thermo-mechanical computational framework based on the multi-scale computation...
A fully coupled hygro-thermo-mechanical computational framework based on the multi-scale computa- ti...
A multi-scale FE2 approach based on the periodic homogenization theory is developed to predict the o...
AbstractA three-dimensional multi-scale computational homogenisation framework is developed for the ...
A three-dimensional multi-scale computational homogenisation framework is developed for the predicti...
AbstractA three-dimensional multi-scale computational homogenisation framework is developed for the ...
A three-dimensional multi-scale computational homogenisation framework was developed for the predict...
A three-dimensional multi-scale computational homogenisation framework was developed for the predict...
A coupled hygro-thermo-mechanical computational model is proposed for fibre reinforced polymers, for...
A coupled hygro-thermo-mechanical computational model is proposed for fibre reinforced polymers, for...
AbstractA three-dimensional multi-fibre multi-layer micromechanical finite element model was develop...
This paper presents a multiscale computational homogenisation approach for the calculation of homoge...
AbstractA three-dimensional multi-fibre multi-layer micromechanical finite element model was develop...
This paper presents an initial computational multiscale modelling of the fibre-reinforced composite ...
A fully coupled hygro-thermo-mechanical computational framework based on the multi-scale computation...
A fully coupled hygro-thermo-mechanical computational framework based on the multi-scale computation...
A fully coupled hygro-thermo-mechanical computational framework based on the multi-scale computa- ti...
A multi-scale FE2 approach based on the periodic homogenization theory is developed to predict the o...
AbstractA three-dimensional multi-scale computational homogenisation framework is developed for the ...
A three-dimensional multi-scale computational homogenisation framework is developed for the predicti...
AbstractA three-dimensional multi-scale computational homogenisation framework is developed for the ...
A three-dimensional multi-scale computational homogenisation framework was developed for the predict...
A three-dimensional multi-scale computational homogenisation framework was developed for the predict...
A coupled hygro-thermo-mechanical computational model is proposed for fibre reinforced polymers, for...
A coupled hygro-thermo-mechanical computational model is proposed for fibre reinforced polymers, for...
AbstractA three-dimensional multi-fibre multi-layer micromechanical finite element model was develop...
This paper presents a multiscale computational homogenisation approach for the calculation of homoge...
AbstractA three-dimensional multi-fibre multi-layer micromechanical finite element model was develop...
This paper presents an initial computational multiscale modelling of the fibre-reinforced composite ...
A fully coupled hygro-thermo-mechanical computational framework based on the multi-scale computation...
A fully coupled hygro-thermo-mechanical computational framework based on the multi-scale computation...
A fully coupled hygro-thermo-mechanical computational framework based on the multi-scale computa- ti...
A multi-scale FE2 approach based on the periodic homogenization theory is developed to predict the o...