High temperature characteristics of melt growth composite

被引:0
|
作者
Waku, Y [1 ]
机构
[1] UBE Ind Ltd, Corp Res & Dev, Ube Res Lab, Yamaguchi 7558633, Japan
关键词
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暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Much attention has been paid to unidirectionally solidified ceramic composites as a candidate for a high-temperature structural material. We have recently developed eutectic composites, which are named as Melt Growth Composites (MGCs). The Al2O3/YAG binary MGC has a novel microstructure, in which continuous networks of single-crystal Al2O3 phases and single-crystal YAG phases interpenetrate without grain boundaries. The binary MGC fabricated is thermally stable and has the following properties: 1) the flexural strength at room temperature can be maintained up to 2073 K (just below its melting point), 2) the compressive creep strength at 1873 K and a strain rate of 10(-4)/sec is approximately 13 times higher than that of the sintered composite, and 3) it shows neither weight gain nor grain growth, even upon heating at 1973 K in an air atmosphere for 1000 hours. In addition, we have recently developed a new Al2O3/YAG/ZrO2 ternary MGC. The present ternary MGC displays superior high-temperature strength characteristics. The flexural strength increases progressively in the range 650similar to800 MPa with a rise of temperatures from room temperature up to 1873 K. These excellent high-temperature characteristics are attributed to MGC's unique microstructure consisting of single crystal phases interpenetrated with each other and their interfaces. The binary and ternary MGCs are expected to be widely used in mechanical engineering at very high temperatures in the future.
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页码:277 / 284
页数:8
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