Progressive damage and failure analysis (PDFA) tools are needed to predict the nonlinear response of advanced fiber-reinforced composite structures. Predictive tools should incorporate the underlying physics of the damage and failure mechanisms observed in the composite, and should utilize as few input parameters as possible. The purpose of the Enhanced Schapery Theory (EST) was to create a PDFA tool that operates in conjunction with a commercially available finite element (FE) code (Abaqus). The tool captures the physics of the damage and failure mechanisms that result in the nonlinear behavior of the material, and the failure methodology employed yields numerical results that are relatively insensitive to changes in the FE mesh. The EST c...
This chapter is the result of a study of many special disciplines, such as damage of matrix, crackin...
Lewis Research Center is involved in the development of computational mechanics methods for predicti...
Two progressive failure methodologies currently under development by the Mechanics of Materials Bran...
A thermodynamically-based work potential theory for modeling progressive damage and failure in fiber...
A novel, multiscale mechanics model for predicting the evolution of damage and failure in continuous...
A continuum-level, dual internal state variable, thermodynamically based, work potential model, Scha...
This paper is concerned with a progressive failure analysis methodology for fiber reinforced composi...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/77029/1/AIAA-2009-2545-493.pd
A framework is presented that enables coupled multiscale analysis of composite structures. The recen...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/97063/1/AIAA2012-1612.pd
A continuum damage model for the prediction of damage onset and structural collapse of structures ma...
Progressive damage and failure in open hole composite laminate coupons subjected to flexural loading...
Refined models and procedures are described for determining progressive composite fracture in graphi...
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...
This chapter is the result of a study of many special disciplines, such as damage of matrix, crackin...
Lewis Research Center is involved in the development of computational mechanics methods for predicti...
Two progressive failure methodologies currently under development by the Mechanics of Materials Bran...
A thermodynamically-based work potential theory for modeling progressive damage and failure in fiber...
A novel, multiscale mechanics model for predicting the evolution of damage and failure in continuous...
A continuum-level, dual internal state variable, thermodynamically based, work potential model, Scha...
This paper is concerned with a progressive failure analysis methodology for fiber reinforced composi...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/77029/1/AIAA-2009-2545-493.pd
A framework is presented that enables coupled multiscale analysis of composite structures. The recen...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/97063/1/AIAA2012-1612.pd
A continuum damage model for the prediction of damage onset and structural collapse of structures ma...
Progressive damage and failure in open hole composite laminate coupons subjected to flexural loading...
Refined models and procedures are described for determining progressive composite fracture in graphi...
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...
This chapter is the result of a study of many special disciplines, such as damage of matrix, crackin...
Lewis Research Center is involved in the development of computational mechanics methods for predicti...
Two progressive failure methodologies currently under development by the Mechanics of Materials Bran...