Comparison of Elevated Temperature Tensile Properties and Fatigue Behavior of two Variants of a Woven SiC/SiC Composite
Sreeramesh Kalluri, Anthony M. Calomino, David N. Brewer
Abstract
Sreeramesh Kalluri, Anthony M. Calomino, David N. Brewer
Abstract
Tensile properties (elastic modulus, proportional limit strength, in-plane tensile strength, and strain at failure) of two variants of a woven SiC/SiC composite, manufactured during two separate time periods (9/99 and 1/01), were determined at 1038 and 1204°C by conducting tensile tests on specimens machined from plates. Continuous cycling fatigue tests (R = 0.05 and 20 cpm) were also conducted at the same two temperatures on specimens from both composites. In this study, average tensile properties, 95% confidence intervals associated with the tensile properties, and geometric mean fatigue lives of both composite materials are compared. The observed similarities and differences in the tensile properties are highlighted and an attempt is made to understand the relationship, if any, between the tensile properties and the fatigue behaviors of the two woven composites.
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Tensile properties (elastic modulus, proportional limit strength, in-plane tensile strength, and strain at failure) of two variants of a woven SiC/SiC composite, manufactured during two separate time periods (9/99 and 1/01), were determined at 1038 and 1204°C by conducting tensile tests on specimens machined from plates. Continuous cycling fatigue tests (R = 0.05 and 20 cpm) were also conducted at the same two temperatures on specimens from both composites. In this study, average tensile properties, 95% confidence intervals associated with the tensile properties, and geometric mean fatigue lives of both composite materials are compared. The observed similarities and differences in the tensile properties are highlighted and an attempt is made to understand the relationship, if any, between the tensile properties and the fatigue behaviors of the two woven composites.
Key concepts: Ultimate tensile strength, Materials science, Composite material, Composite number, Modulus, Tensile strain, Young's modulus