A STUDY OF THE REACTION ZONE IN AN SIC FIBER-REINFORCED TITANIUM-ALLOY COMPOSITE

被引:37
作者
DAS, G
机构
[1] Metcut-Materials Research Group, Wright-Patterson Air Force Base, 45433-0511, OH
来源
METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE | 1990年 / 21卷 / 06期
关键词
D O I
10.1007/BF02672572
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Results on several aspects of a SiC fiber-reinforced IMI-829 (α-titanium alloy) metal matrix composite (MMC) are presented. Scanning Auger microscopy (SAM) of SiC fibers reveals a high concentration of oxygen which varies across the diameter of the fibers. It also shows that composition of SiC changes across the diameter and, for the most part, is carbon-rich nonstoichiometric SiC. Transmission electron microscopy (TEM) of thin MMC foils shows the presence of TiC and TiSi2 in the reaction zone. Postfabrication thermal exposures of MMC s at 975 °C lead to void formation in the reaction zone. Concentration profiles of various elements across the reaction zone reveal a buildup of Zr, Nb, and Si and a decrease of Ti, Al, and Sn in the matrix around the reaction zone. Void formation in the reaction zone has been explained by the relatively high flow of Si atoms to the matrix leading to an accumulation of vacancies in the reaction zone which condense to form voids. In addition, an enhancement of hardness in the matrix around the reaction zone has been attributed to a strengthening of the matrix by solid solution and precipitation hardening, together with a contribution from residual stresses. © 1990 The Metallurgical of Society of AIME.
引用
收藏
页码:1571 / 1578
页数:8
相关论文
共 16 条
[1]  
BEAVER MB, 1986, ENCY MATERIALS SCI E, V7, P5109
[2]  
BLACKBURN LD, 1966, MAMTM663 MAT LAB INT
[3]  
Das G., 1989, Praktische Metallographie, V26, P443
[4]  
DAS G, IN PRESS J MATER RES
[5]  
DAS G, 1988, 46TH P ANN M EL MICR, P738
[6]  
DAS G, 1989, 6TH WORLD C TIT 2, P907
[7]  
DEBOLT HE, 1973, SILICON CARBIDE 1973, P168
[8]  
HENRY KD, 1975, J COMPOS MATER, V9, P73
[9]  
PIROUZ P, 1988, INTERFACES POLYM CER, P141
[10]  
Rhodes, 1985, ASTM STP, V864, P585