A finite element model for investigating damage evolution in brittle matrix composites was developed. This modeling is based on an axisymmetric unit cell composed of a fiber and its surrounding matrix. The unit cell was discretized into linearly elastic elements for the fiber and the matrix and cohesive elements which allow cracking in the matrix, fiber-matrix interface, and fiber. The cohesive elements failed according to critical stress and critical energy release rate criteria (in shear and/or in tension). The tension and shear aspects of failure were uncoupled. In order to obtain converged solutions for the axisymmetric composite unit cell problem, inertia and viscous damping were added to the formulation, and the resulting dynamic prob...
AbstractA computationally economic finite-element-based approach has been developed to predict the s...
The problem of toughening in brittle materials reinforced by fibers is complex, involving all of the...
In this paper, micromechanical constitutive models are developed to predict the tensile and fatigue ...
A finite element model for investigating damage evolution in brittle matrix composites was developed...
A comprehensive numerical analysis of micromechanical damage behavior in a continuous fiber-resuborc...
ABSTRACT: A finite element-based numerical technique has been developed to simulate damage growth in...
A discrete fiber model is developed in this paper and applied to study the problem of non-axisymmetr...
ABSTRACT: Mechanisms of damage and the associated mechanical response are stud-ied for a unidirectio...
In the present paper, a computational model for brittle-matrix fibre-reinforced composite (FRC) mate...
The possibility of decreasing ultimate tensile strength associated with increasing fiber/matrix inte...
A micromechanics analytical model based on the consistent shear lag theory is developed for predicti...
In the present paper, a computational model for brittle-matrix fibre-reinforced composite (FRC) mate...
A finite element model of the deformation and failure of brittle matrix composites during matrix cra...
In the present paper, a computational model for brittle-matrix fibre-reinforced composite (FRC) mate...
The evolution of damage in laminated fiber reinforced composites is a complex phenomenon, which invo...
AbstractA computationally economic finite-element-based approach has been developed to predict the s...
The problem of toughening in brittle materials reinforced by fibers is complex, involving all of the...
In this paper, micromechanical constitutive models are developed to predict the tensile and fatigue ...
A finite element model for investigating damage evolution in brittle matrix composites was developed...
A comprehensive numerical analysis of micromechanical damage behavior in a continuous fiber-resuborc...
ABSTRACT: A finite element-based numerical technique has been developed to simulate damage growth in...
A discrete fiber model is developed in this paper and applied to study the problem of non-axisymmetr...
ABSTRACT: Mechanisms of damage and the associated mechanical response are stud-ied for a unidirectio...
In the present paper, a computational model for brittle-matrix fibre-reinforced composite (FRC) mate...
The possibility of decreasing ultimate tensile strength associated with increasing fiber/matrix inte...
A micromechanics analytical model based on the consistent shear lag theory is developed for predicti...
In the present paper, a computational model for brittle-matrix fibre-reinforced composite (FRC) mate...
A finite element model of the deformation and failure of brittle matrix composites during matrix cra...
In the present paper, a computational model for brittle-matrix fibre-reinforced composite (FRC) mate...
The evolution of damage in laminated fiber reinforced composites is a complex phenomenon, which invo...
AbstractA computationally economic finite-element-based approach has been developed to predict the s...
The problem of toughening in brittle materials reinforced by fibers is complex, involving all of the...
In this paper, micromechanical constitutive models are developed to predict the tensile and fatigue ...