Development and Characterization of a Rate-Dependent Three-Dimensional Macroscopic Plasticity Model Suitable for Use in Composite Impact ProblemsSeveral key capabilities have been identified by the aerospace community as lacking in the material/models for composite materials currently available within commercial transient dynamic finite element codes such as LS-DYNA. Some of the specific desired features that have been identified include the incorporation of both plasticity and damage within the material model, the capability of using the material model to analyze the response of both three-dimensional solid elements and two dimensional shell elements, and the ability to simulate the response of composites composed with a variety of composite architectures, including laminates, weaves and braids. In addition, a need has been expressed to have a material model that utilizes tabulated experimentally based input to define the evolution of plasticity and damage as opposed to utilizing discrete input parameters (such as modulus and strength) and analytical functions based on curve fitting. To begin to address these needs, an orthotropic macroscopic plasticity based model suitable for implementation within LS-DYNA has been developed. Specifically, the Tsai-Wu composite failure model has been generalized and extended to a strain-hardening based orthotropic plasticity model with a non-associative flow rule. The coefficients in the yield function are determined based on tabulated stress-strain curves in the various normal and shear directions, along with selected off-axis curves. Incorporating rate dependence into the yield function is achieved by using a series of tabluated input curves, each at a different constant strain rate. The non-associative flow-rule is used to compute the evolution of the effective plastic strain. Systematic procedures have been developed to determine the values of the various coefficients in the yield function and the flow rule based on the tabulated input data. An algorithm based on the radial return method has been developed to facilitate the numerical implementation of the material model. The presented paper will present in detail the development of the orthotropic plasticity model and the procedures used to obtain the required material parameters. Methods in which a combination of actual testing and selective numerical testing can be combined to yield the appropriate input data for the model will be described. A specific laminated polymer matrix composite will be examined to demonstrate the application of the model.
Document ID
20150010714
Acquisition Source
Glenn Research Center
Document Type
Presentation
Authors
Goldberg, Robert K. (NASA Glenn Research Center Cleveland, OH United States)
Carney, Kelly S. (NASA Glenn Research Center Cleveland, OH United States)
DuBois, Paul (George Mason Univ. Fairfax, VA, United States)
Hoffarth, Canio (Arizona State Univ. Tempe, AZ, United States)
Rajan, Subramaniam (Arizona State Univ. Tempe, AZ, United States)
Blankenhorn, Gunther (Livermore Software Technology Corp. CA, United States)
Date Acquired
June 15, 2015
Publication Date
April 21, 2015
Subject Category
Composite Materials
Report/Patent Number
GRC-E-DAA-TN22472Report Number: GRC-E-DAA-TN22472
Meeting Information
Meeting: SAE 2015 World Congress and Exhibition
Location: Detroit, MI
Country: United States
Start Date: April 21, 2015
End Date: April 23, 2015
Sponsors: Society of Automotive Engineers, Inc.
Funding Number(s)
WBS: WBS 826611.04.03.01
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
ImpactFinite Element MethodPolymer Matrix Composites