THERMAL-MECHANICAL FATIGUE OF MAR-M-509 SUPERALLOY - COMPARISON WITH LOW-CYCLE FATIGUE BEHAVIOR

被引:17
作者
FRANCOIS, M
REMY, L
机构
[1] Centre des matériaux P. M. FOURT, Ecole des Mines de Paris, U.R.A. CNRS, Evry, 91003, 866
关键词
D O I
10.1111/j.1460-2695.1991.tb00647.x
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Abstract— The thermal‐mechanical fatigue behaviour of a cast cobalt based superalloy, MAR‐M 509 was investigated. Hollow smooth specimens were submitted to temperature cycling between 600 and 1050°C. The mechanical strain vs temperature cycle shows a diamond shape with peak strains at intermediate temperatures. The stress‐strain behaviour as well as fatigue life curves are reported. A significant part of total life is spent in crack initiation. Comparison with isothermal low cycle fatigue was made at the temperature where peak strains occurred. Isothermal low cycle fatigue life to crack initiation was shown to give a conservative estimate of thermal mechanical fatigue life provided extra strains due to differences in thermal expansion coefficients of the oxide scale and base alloy were taken into account. Copyright © 1991, Wiley Blackwell. All rights reserved
引用
收藏
页码:115 / 129
页数:15
相关论文
共 27 条
  • [1] Glenny R.J.E., Thermal fatigue, High Temperature Materials in Gas Turbines, pp. 258-277, (1974)
  • [2] Glenny E., Northwood J.E., Shaw S.W.K., Taylor T.A., A study of the thermal fatigue behaviour of metals, J. Inst. Metals, 87, pp. 294-302
  • [3] Woodford D.A., Mowbray D.F., Effect of material characteristics and test variables on thermal fatigue of cast superalloys, Mater. Sci. Engng, 16, pp. 5-43, (1974)
  • [4] Bizon P.T., Spera D.A., Thermal‐stress fatigue behaviour of twenty six superalloys, Thermal Fatigue of Materials and Components, pp. 106-122, (1976)
  • [5] Remy, Herman C., Dambrine B., Thermal fatigue of MAR‐M 509 superalloy, Mechanical Behaviour of Materials IV, Proc., Fourth Int. Conf., 1, pp. 247-253, (1984)
  • [6] Taira S., Relationship between thermal fatigue and low cycle fatigue at elevated temperature, Fatigue at Elevated Temperatures, pp. 239-254, (1973)
  • [7] Jaske C.E., Thermal‐mechanical, low cycle fatigue of AISI 1010 steel, Thermal Fatigue of Materials and Components, pp. 170-198, (1976)
  • [8] Halford G.R., Manson S.S., Life prediction of thermal mechanical fatigue using strain range partitioning, Thermal Fatigue of Materials and Components, pp. 239-254, (1976)
  • [9] Kuwabara K., Nitta A., Thermal‐mechanical low cycle fatigue under creep fatigue interaction on type 304 stainless steel, Mechanical Behaviour of Materials III, Proc. 3rd Int. Conf., 2, pp. 69-78, (1979)
  • [10] Fujino M., Taira S., Effect of thermal cycle on low cycle fatigue life of steels and grain boundary sliding characteristics, Mechanical Behaviour of Materials III, Proc. 3rd Int. Conf., 2, pp. 49-58, (1979)