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Thermal stress analysis of a silicon carbide/aluminum compositeThermal deformations and stresses were studied in a silicon-carbide/aluminum filamentary composite at temperatures up to 370 C (700 F). Longitudinal and transverse thermal strains were measured with strain gages and a dilatometer. An elastoplastic micromechanical analysis based on a one-dimensional rule-of-mixtures model and an axisymmetric two-material composite cylinder model was performed. It was established that beyond a critical temperature thermal strains become nonlinear with decreasing longitudinal and increasing transverse thermal-expansion coefficients. This behavior was attributed to the plastic stresses in the aluminum matrix above the critical temperature. An elastoplastic analysis of both micromechanical models was performed to determine the stress distributions and thermal deformation in the fiber and matrix of the composite. While only axial stresses can be determined by the rule-of-mixtures model, the complete triaxial state of stress is established by the composite cylinder model. Theoretical predictions for the two thermal-expansion coefficients were in satisfactory agreement with experimental results.
Document ID
19920055473
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Gdoutos, E. E.
(Thrace, University Xanthi, Greece)
Karalekas, D.
(European Centre of Advanced Technology Athens, Greece)
Daniel, I. M.
(Northwestern University Evanstone, IL, United States)
Date Acquired
August 15, 2013
Publication Date
September 1, 1991
Publication Information
Publication: Experimental Mechanics
Volume: 31
Issue: 3, Se
ISSN: 0014-4851
Subject Category
Structural Mechanics
Accession Number
92A38097
Distribution Limits
Public
Copyright
Other

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