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Designing the fiber volume ratio in SiC fiber-reinforced SiC ceramic composites under Hertzian stress

► Optimum fiber volume ratios in the SiC/SiC composite layers were designed under Hertzian stress. ► FEM analysis and spherical indentation experiments were undertaken. ► Boron nitride-pyrocarbon double coatings on the SiC fiber were effective. ► Fiber volume ratio should be designed against flexura...

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Bibliographic Details
Published in:Materials in engineering 2011-09, Vol.32 (8), p.4394-4401
Main Authors: Lee, Kee Sung, Jang, Kyung Soon, Park, Jae Hong, Kim, Tae Woo, Han, In Sub, Woo, Sang Kuk
Format: Article
Language:English
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Summary:► Optimum fiber volume ratios in the SiC/SiC composite layers were designed under Hertzian stress. ► FEM analysis and spherical indentation experiments were undertaken. ► Boron nitride-pyrocarbon double coatings on the SiC fiber were effective. ► Fiber volume ratio should be designed against flexural stress. Finite element method (FEM) analysis and experimental studies are undertaken on the design of the fiber volume ratio in silicon carbide (SiC) fiber-reinforced SiC composites under indentation contact stresses. Boron nitride (BN)/Pyrocarbon (PyC) are selected as the coating materials for the SiC fiber. Various SiC matrix/coating/fiber/coating/matrix structures are modeled by introducing a woven fiber layer in the SiC matrix. Especially, this study attempts to find the optimum fiber volume ratio in SiC fiber-reinforced SiC ceramics under Hertzian stress. The analysis is performed by changing the fiber type, fiber volume ratio, coating material, number of coating layers, and stacking sequence of the coating layers. The variation in the stress for composites in relation to the fiber volume ratio in the contact axial or radial direction is also analyzed. The same structures are fabricated experimentally by a hot process, and the mechanical behaviors regarding the load–displacement are evaluated using the Hertzian indentation method. Various SiC matrix/coating/fiber/coating/matrix structures are fabricated, and mechanical characterization is performed by changing the coating layer, according to the introduction (or omission) of the coating layer, and the number of woven fiber mats. The results show that the damage mode changes from Hertzian stress to flexural stress as the fiber volume ratio increases in composites because of the decreased matrix volume fraction, which intensifies the radial crack damage. The result significantly indicates that the optimum fiber volume ratio in SiC fiber-reinforced SiC ceramics should be designed for inhibiting the flexural stress.
ISSN:0261-3069
DOI:10.1016/j.matdes.2011.03.080