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Experimental Characterization and Micromechanical Modeling of Woven Carbon/Copper CompositesThe results of an extensive experimental characterization and a preliminary analytical modeling effort for the elastoplastic mechanical behavior of 8-harness satin weave carbon/copper (C/Cu) composites are presented. Previous experimental and modeling investigations of woven composites are discussed, as is the evolution of, and motivation for, the continuing research on C/Cu composites. Experimental results of monotonic and cyclic tension, compression, and Iosipescu shear tests, and combined tension-compression tests, are presented. With regard to the test results, emphasis is placed on the effect of strain gauge size and placement, the effect of alloying the copper matrix to improve fiber-matrix bonding, yield surface characterization, and failure mechanisms. The analytical methodology used in this investigation consists of an extension of the three-dimensional generalized method of cells (GMC-3D) micromechanics model, developed by Aboudi (1994), to include inhomogeneity and plasticity effects on the subcell level. The extension of the model allows prediction of the elastoplastic mechanical response of woven composites, as represented by a true repeating unit cell for the woven composite. The model is used to examine the effects of refining the representative geometry of the composite, altering the composite overall fiber volume fraction, changing the size and placement of the strain gauge with respect to the composite's reinforcement weave, and including porosity within the infiltrated fiber yarns on the in-plane elastoplastic tensile, compressive, and shear response of 8-harness satin C/Cu. The model predictions are also compared with the appropriate monotonic experimental results.
Document ID
19970010323
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Bednarcyk, Brett A.
(Virginia Univ. Charlottesville, VA United States)
Pauly, Christopher C.
(Virginia Univ. Charlottesville, VA United States)
Pindera, Marek-Jerzy
(Virginia Univ. Charlottesville, VA United States)
Date Acquired
September 6, 2013
Publication Date
January 1, 1997
Subject Category
Metallic Materials
Report/Patent Number
E-10623
NASA-CR-202318
NAS 1.26:202318
Report Number: E-10623
Report Number: NASA-CR-202318
Report Number: NAS 1.26:202318
Accession Number
97N15517
Funding Number(s)
CONTRACT_GRANT: NAG3-1319
PROJECT: RTOP 523-61-23
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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