A continuum-level, dual internal state variable, thermodynamically based, work potential model, Schapery Theory, is used capture the effects of two matrix damage mechanisms in a fiber-reinforced laminated composite: microdamage and transverse cracking. Matrix microdamage accrues primarily in the form of shear microcracks between the fibers of the composite. Whereas, larger transverse matrix cracks typically span the thickness of a lamina and run parallel to the fibers. Schapery Theory uses the energy potential required to advance structural changes, associated with the damage mechanisms, to govern damage growth through a set of internal state variables. These state variables are used to quantify the stiffness degradation resulting from dama...
A three-dimensional finite element analysis was developed which includes elastoplastic, orthotropic ...
The smeared crack band theory is implemented within the generalized method of cells and high-fidelit...
A constitutive model to predict the stiffness and coefficient of thermal expansion (CTE) reduction d...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/83581/1/AIAA-2010-2815-444.pd
A thermodynamically-based work potential theory for modeling progressive damage and failure in fiber...
A continuum damage model for the prediction of damage onset and structural collapse of structures ma...
A novel, multiscale mechanics model for predicting the evolution of damage and failure in continuous...
A new damage model based on a micromechanical analysis of cracked [+/- Theta/90n]s laminates subject...
This paper presents a three-dimensional, energy based, anisotropic, stiffness reduction, progressive...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/97063/1/AIAA2012-1612.pd
A thermodynamically-based work potential theory for modeling progressive damage and failure in fiber...
Flow/damage surfaces can be defined in terms of stress, inelastic strain rate, and internal variable...
The Finite Element Analysis-Micromechanics Analysis Code/Ceramics Analysis and Reliability Evaluatio...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/77029/1/AIAA-2009-2545-493.pd
A constitutive model of progressive matrix cracking in fibers reinforced laminated composite is deve...
A three-dimensional finite element analysis was developed which includes elastoplastic, orthotropic ...
The smeared crack band theory is implemented within the generalized method of cells and high-fidelit...
A constitutive model to predict the stiffness and coefficient of thermal expansion (CTE) reduction d...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/83581/1/AIAA-2010-2815-444.pd
A thermodynamically-based work potential theory for modeling progressive damage and failure in fiber...
A continuum damage model for the prediction of damage onset and structural collapse of structures ma...
A novel, multiscale mechanics model for predicting the evolution of damage and failure in continuous...
A new damage model based on a micromechanical analysis of cracked [+/- Theta/90n]s laminates subject...
This paper presents a three-dimensional, energy based, anisotropic, stiffness reduction, progressive...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/97063/1/AIAA2012-1612.pd
A thermodynamically-based work potential theory for modeling progressive damage and failure in fiber...
Flow/damage surfaces can be defined in terms of stress, inelastic strain rate, and internal variable...
The Finite Element Analysis-Micromechanics Analysis Code/Ceramics Analysis and Reliability Evaluatio...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/77029/1/AIAA-2009-2545-493.pd
A constitutive model of progressive matrix cracking in fibers reinforced laminated composite is deve...
A three-dimensional finite element analysis was developed which includes elastoplastic, orthotropic ...
The smeared crack band theory is implemented within the generalized method of cells and high-fidelit...
A constitutive model to predict the stiffness and coefficient of thermal expansion (CTE) reduction d...