[1]
Lankford, J., Fatigue Fracture Eng. Mater. Struct., 1985, 8(2), 161.
Google Scholar
[2]
Brown, C. W. and King, J. E., in Small Fatigue Cracks, ed. R. O. Ritchie and J. Lankford. The Metallurgical Society of AIME, Warrendale, PA, 1986, p.73±96.
Google Scholar
[3]
Newman, P. and Beevers, C. J., in Small Fatigue Cracks, ed. R. O. Ritchie and J. Lankford. The Metallurgical Society of AIME, Warrendale, PA, 1986, p.77±116.
Google Scholar
[4]
Hudak Jr, S. J., Davidson, D. L., Chan, K. S., Howland, A. C. and Walsh, M. J., in Growth of Small Cracks in Aero engine Disc Materials, Report: AFWAL-TR-88-4090. Air Force Research Laboratory, Wright-Patterson AFB, OH, 1988, p.1±41.
Google Scholar
[5]
Tokaji, K., Ogawa, T. and Harada, Y., Fatigue Fract. Engng Mater. Struct., 1986, 9(3), 205.
Google Scholar
[6]
Tokaji, K. and Ogawa, T., in Short Fatigue Cracks, ed. K. J. Miller and E. R. de los Rios. Mechanical Engineering Publications, London, 1992, p.85±99.
Google Scholar
[7]
Gerdes, C., Gysler, A. and Lutjering, G., in Fatigue Crack Growth Threshold Concepts, ed. Davidson D. L. and Suresh S. The Metallurgical Society of AIME, Warrendale, PA, 1983, pp.465-478.
Google Scholar
[8]
Ravichandran, K. S. and Larsen, J. M., Metall. Trans., 1997, 28A, 157.Trans. ASME, J. Press. Vessel Technol., 1991, 113(2), 10.
Google Scholar
[9]
Suresh, S. and Ritchie, R. O., Int. Metall. Rev., 1984, 29, 445.
Google Scholar
[10]
Ravichandran K. S. and Xu-Dong Li, "Fracture Mechanical Character of Small Cracks in Polycrystalline Materials: Concept and Numerical K Calculations," Acta Materialia, Vol. 48, 2000, pp.525-540.
DOI: 10.1016/s1359-6454(99)00348-1
Google Scholar
[11]
Kitagawa H, Takahashi S. Proc. of the 2nd Int. Conf on Mechanical Behavior of Materials, 1976, 627.
Google Scholar
[12]
Ma B.T, Laird C. Acta Metall 1989;37:325.
Google Scholar
[13]
Zhang XP, Wang CH, Ye L, Mai YW. Fatigue Fracture Eng. Mater Struct. 2002;25:141.
Google Scholar