Oxidation behavior of non-oxide ceramics in a high-pressure, high-temperature steam environment

被引:4
|
作者
Ferber, MK [1 ]
Lin, HT [1 ]
Keiser, J [1 ]
机构
[1] Oak Ridge Natl Lab, Res Staff, Oak Ridge, TN 37831 USA
关键词
silicon carbide; silicon nitride; ceramic; composite; CFCC; paralinear oxidation; microstructural analysis;
D O I
10.1520/STP15015S
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This paper provides a review of two recent studies undertaken to examine the oxidation behavior of monolithic SiC and SiC-SiC composites in simulated and actual gas turbine environments. In the first study, a high-pressure and high-temperature test facility was used to expose a variety of structural ceramics and ceramic matrix composites to 15% water vapor carried in an air environment at 10 atm of total pressure and 1204 degreesC. The second study involved the exposure of a SiC-SiC combustor liner in an industrial gas turbine for approximately 2300 h at a total pressure of 10 atm and peak liner temperature of 1150 degreesC. In the two studies microstructural analyses were used to measure the rates of both silica scale formation and SiC recession. These experimentally determined rates were then compared with values predicted from established oxidadon/volatilization models. The estimates of the temperature and pressure sensitivities of the oxidation and volatilization rate constants, required for this comparison, were obtained from the literature. For the case of the combustor liner, the recession rate of SiC was well described by the model. However, the predicted rates of scale formation in both studies were significantly lower that the corresponding experimental values. Possible reasons for this discrepancy are addressed.
引用
收藏
页码:201 / 215
页数:15
相关论文
共 50 条
  • [41] High-pressure/high-temperature cementing
    Bybee, Karen
    1600, Society of Petroleum Engineers (SPE) (54):
  • [42] INVESTIGATION OF LIQUID DROP EVAPORATION IN A HIGH-TEMPERATURE AND HIGH-PRESSURE ENVIRONMENT
    MATLOSZ, RL
    TORDA, TP
    LEIPZIGER, S
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1972, 15 (04) : 831 - +
  • [43] High-pressure/high-temperature cementing
    Bybee, K
    JOURNAL OF PETROLEUM TECHNOLOGY, 2002, 54 (08): : 58 - +
  • [44] HIGH-PRESSURE AND HIGH-TEMPERATURE DILATOMETER
    IDE, T
    TAKI, S
    TAKEMURA, T
    JAPANESE JOURNAL OF APPLIED PHYSICS, 1977, 16 (04) : 647 - 648
  • [45] High-pressure/high-temperature challenges
    Ziegler, Robert, 1600, Society of Petroleum Engineers (SPE) (69):
  • [46] High-pressure, high-temperature synthesis of SiC-diamond nanocrystalline ceramics
    Ekimov, EA
    Gavriliuk, AG
    Palosz, B
    Gierlotka, S
    Dluzewski, P
    Tatianin, E
    Kluev, Y
    Naletov, AM
    Presz, A
    APPLIED PHYSICS LETTERS, 2000, 77 (07) : 954 - 956
  • [47] High-pressure/high-temperature synthesis of transition metal oxide perovskites
    Rodgers, Jennifer A.
    Williams, Anthony J.
    Attfield, J. Paul
    ZEITSCHRIFT FUR NATURFORSCHUNG SECTION B-A JOURNAL OF CHEMICAL SCIENCES, 2006, 61 (12): : 1515 - 1526
  • [48] Mechanical Behavior of the Production String in High-Temperature and High-Pressure Wells
    Sun Tongcheng
    Sun Lianzhong
    Yang Xiaohui
    Sun Tengfei
    Liu Zuocai
    Chemistry and Technology of Fuels and Oils, 2020, 56 : 821 - 829
  • [49] High-pressure high-temperature behavior of nitrogen-doped zirconia
    Locherer, T.
    Frost, D.
    Fuess, H.
    JOURNAL OF SOLID STATE CHEMISTRY, 2008, 181 (11) : 2983 - 2988
  • [50] Mechanical Behavior of the Production String in High-Temperature and High-Pressure Wells
    Tongcheng, Sun
    Lianzhong, Sun
    Xiaohui, Yang
    Tengfei, Sun
    Zuocai, Liu
    CHEMISTRY AND TECHNOLOGY OF FUELS AND OILS, 2020, 56 (05) : 821 - 829