NASA NTRS · 20060011232
Development of Design Analysis Methods for C/SiC Composite Structures
Abstract
The stress-strain behavior at room temperature and at 1100 C (2000 F) was measured for two carbon-fiber-reinforced silicon carbide (C/SiC) composite materials: a two-dimensional plain-weave quasi-isotropic laminate and a three-dimensional angle-interlock woven composite. Micromechanics-based material models were developed for predicting the response properties of these two materials. The micromechanics based material models were calibrated by correlating the predicted material property values with the measured values. Four-point beam bending sub-element specimens were fabricated with these two fiber architectures and four-point bending tests were performed at room temperature and at 1100 C. Displacements and strains were measured at various locations along the beam and recorded as a function of load magnitude. The calibrated material models were used in concert with a nonlinear finite element solution to simulate the structural response of these two materials in the four-point beam bending tests. The structural response predicted by the nonlinear analysis method compares favorably with the measured response for both materials and for both test temperatures. Results show that the material models scale up fairly well from coupon to subcomponent level.
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Sullivan, Roy M., Mital, Subodh K., Murthy, Pappu L. N., Palko, Joseph L., Cueno, Jacques C., Koenig, John R.. 2006-03-01. Development of Design Analysis Methods for C/SiC Composite Structures. https://ntrs.nasa.gov/citations/20060011232
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