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Microstructural Influence on Deformation and Fatigue Life of Composites Using the Generalized Method of CellsA fully coupled deformation and damage approach to modeling the response of composite materials and composite laminates is presented. It is based on the semi-­‐analytical generalized method of cells (GMC) micromechanics model as well as its higher fidelity counterpart, HFGMC, both of which provide closed-form constitutive equations for composite materials as well as the micro scale stress and strain fields in the composite phases. The provided constitutive equations allow GMC and HFGMC to function within a higher scale structural analysis (e.g., finite element analysis or lamination theory) to represent a composite material point, while the availability of the micro fields allow the incorporation of lower scale sub­‐models to represent local phenomena in the fiber and matrix. Further, GMC's formulation performs averaging when applying certain governing equations such that some degree of microscale field accuracy is surrendered in favor of extreme computational efficiency, rendering the method quite attractive as the centerpiece in a integrated computational material engineering (ICME) structural analysis; whereas HFGMC retains this microscale field accuracy, but at the price of significantly slower computational speed. Herein, the sensitivity of deformation and the fatigue life of graphite/epoxy PMC composites, with both ordered and disordered microstructures, has been investigated using this coupled deformation and damage micromechanics based approach. The local effects of fiber breakage and fatigue damage are included as sub‐models that operate on the microscale for the individual composite phases. For analysis of laminates, classical lamination theory is employed as the global or structural scale model, while GMC/HFGMC is embedded to operate on the microscale to simulate the behavior of the composite material within each laminate layer. A key outcome of this study is the statistical influence of microstructure and micromechanics idealization (GMC or HFGMC) on the overall accuracy of unidirectional and laminated composite deformation and fatigue response.
Document ID
20150010723
Acquisition Source
Glenn Research Center
Document Type
Conference Paper
Authors
Arnold, S. M.
(NASA Glenn Research Center Cleveland, OH United States)
Murthy, P.
(NASA Glenn Research Center Cleveland, OH United States)
Bednarcyk, B. A.
(NASA Glenn Research Center Cleveland, OH United States)
Pineda, E. J.
(NASA Glenn Research Center Cleveland, OH United States)
Date Acquired
June 15, 2015
Publication Date
January 5, 2015
Subject Category
Structural Mechanics
Numerical Analysis
Composite Materials
Report/Patent Number
GRC-E-DAA-TN22836
Meeting Information
Meeting: SciTech 2015
Location: Kissimmee, FL
Country: United States
Start Date: January 5, 2015
End Date: January 9, 2015
Sponsors: American Helicopter Society International, American Society for Composites, American Inst. of Aeronautics and Astronautics, American Society of Civil Engineers
Funding Number(s)
WBS: WBS 109492.02.03.01.30.01
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
Keywords
Microscale Models
Deformation
Materials Science
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