Fracture Characteristics of SiC Monofilament /SiAlON Ceramic Composite

1996 ◽  
pp. 253-266
Author(s):  
K. Ueno ◽  
T. Inoue ◽  
S. Sodeoka
2011 ◽  
Vol 528 (4-5) ◽  
pp. 2196-2199 ◽  
Author(s):  
Jing-Zhou Yang ◽  
Zhao-Hui Huang ◽  
Xiao-Zhi Hu ◽  
Ming-Hao Fang ◽  
Yan-Gai Liu ◽  
...  

2013 ◽  
Vol 1 (2) ◽  
pp. 163-169 ◽  
Author(s):  
Jing-Zhou Yang ◽  
Zhao-Hui Huang ◽  
Ming-Hao Fang ◽  
Xiao-Zhi Hu ◽  
Yan-Gai Liu ◽  
...  

Materials ◽  
2020 ◽  
Vol 13 (22) ◽  
pp. 5141
Author(s):  
Jeongguk Kim

Ceramic composite materials have been efficiently used for high-temperature structural applications with improved toughness by complementing the shortcomings of monolithic ceramics. In this study, the fracture characteristics and fracture mechanisms of ceramic composite materials were studied. The ceramic composite material used in this study is Nicalon ceramic fiber reinforced ceramic matrix composites. The tensile failure behavior of two types of ceramic composites with different microstructures, namely, plain-weave and cross-ply composites, was studied. Tensile tests were performed on two types of ceramic composite material specimens. Microstructure analysis using SEM was performed to find out the relationship between tensile fracture characteristics and microstructure. It was found that there was a difference in the fracture mechanism according to the characteristics of each microstructure. In this study, the results of tensile tests, failure modes, failure characteristics, and failure mechanisms were analyzed in detail for two fabric structures, namely, plain-weave and cross-ply structures, which are representative of ceramic matrix composites. In order to help understanding of the fracture process and mechanism, the fracture initiation, crack propagation, and fracture mechanism of each composite material are schematically expressed in a two-dimensional figure. Through these results, it is intended to provide useful information for the design of ceramic composite materials based on the mechanistic understanding of the fracture process of ceramic composite materials.


Author(s):  
A. Lawley ◽  
M. R. Pinnel ◽  
A. Pattnaik

As part of a broad program on composite materials, the role of the interface on the micromechanics of deformation of metal-matrix composites is being studied. The approach is to correlate elastic behavior, micro and macroyielding, flow, and fracture behavior with associated structural detail (dislocation substructure, fracture characteristics) and stress-state. This provides an understanding of the mode of deformation from an atomistic viewpoint; a critical evaluation can then be made of existing models of composite behavior based on continuum mechanics. This paper covers the electron microscopy (transmission, fractography, scanning microscopy) of two distinct forms of composite material: conventional fiber-reinforced (aluminum-stainless steel) and directionally solidified eutectic alloys (aluminum-copper). In the former, the interface is in the form of a compound and/or solid solution whereas in directionally solidified alloys, the interface consists of a precise crystallographic boundary between the two constituents of the eutectic.


Author(s):  
Hiroshi MAENAKA ◽  
Shigeru KITAMURA ◽  
Kin-ichi NAGAI ◽  
Kazuo IKEDA ◽  
Katsuya KAJIMOTO ◽  
...  

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