Skip to main content
Log in

Long Fatigue Cracks — Microstructural Effects and Crack Closure

  • Crack Formation and Propagation
  • Published:
MRS Bulletin Aims and scope Submit manuscript

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

References

  1. P.C. Paris, R.J. Bucci, E.T. Wessel, W.G. Clark Jr., and T.R. Mager, ASTM STP 513 (1972) p. 141.

    Google Scholar 

  2. R.A. Schmidt and P.C. Paris, ASTM STP 536 (1973) p. 79.

    Google Scholar 

  3. R.J. Bucci, W.G. Clark Jr., and P.C. Paris, ASTM STP 513 (1972) p. 177.

    Google Scholar 

  4. R.J. Bucci, P.C. Paris, R.W. Hertzberg, R.A. Schmidt, and A.F. Anderson, ASTM STP 513 (1972) ibid., p. 125.

  5. P.E. Irving and C.J. Beevers, Met. Trans. 5A (1974) p. 391.

    Google Scholar 

  6. R.J. Cooke and C.J. Beevers, Mater. Sci. Eng. 13 (1974) p. 201.

    CAS  Google Scholar 

  7. R.O. Ritchie, Int. Metal. Rev. 5&6 (1979) p. 205.

    Google Scholar 

  8. S. Suresh and R.O. Ritchie, Fatigue Crack Growth Threshold Concepts, edited by D.L. Davidson and S. Suresh, (TMS-AIME, Warrendale, PA, 1984) p. 227.

  9. S. Suresh, G.F. Zamiski, and R.O. Ritchie, Met. Trans. 12A (1981) p. 1435.

    Google Scholar 

  10. T.L. Tzou, C.H. Hsueh, A.G. Evans, and R.O. Ritchie, Acta Metall. 33 (1985) p. 117.

    CAS  Google Scholar 

  11. V.B. Dutta, S. Suresh, and R.O. Ritchie, Met. Trans. 15A (1984) p. 1193.

    CAS  Google Scholar 

  12. S. Suresh, Met. Trans. 14A (1983) p. 2375.

    Google Scholar 

  13. K. Minakawa, Y. Matsuo, and A.J. McEvily, Met. Trans. 13A (1982) p. 439.

    CAS  Google Scholar 

  14. H. Suzuki and A.J. McEvily, Met. Trans. 10A (1979) p. 475.

    CAS  Google Scholar 

  15. K. Minakawa and A.J. McEvily, Scripta Metall. 15 (1981) p. 633.

    Google Scholar 

  16. D. Benoit, R. Namdar-Trixier, and R. Tixier, Mater. Sci. Eng. 45 (1980) p. 1.

    CAS  Google Scholar 

  17. A.T. Stewart, Eng. Fracture Mech. 13 (1980) p. 463.

    CAS  Google Scholar 

  18. K. Endo, K. Komai, and Y. Matsuda, Memo Faculty Eng. 31 (Kyoto University, 1969) p. 25.

    CAS  Google Scholar 

  19. K. Endo, T. Okada, and T. Hariya, Bull. JSME 15 (1972) p. 439.

    Google Scholar 

  20. J. McKittrick, P.K. Liaw, S.I. Kwun, and M.E. Fine, Met. Trans. 12A (1981) p. 1535.

    Google Scholar 

  21. J.L. Horng and M.E. Fine, Mater. Sci. Eng. 67 (1984) p. 185.

    CAS  Google Scholar 

  22. D.H. Park and M.E. Fine, in Fatigue Crack Growth Threshold Concepts, edited by D.L. Davidson and S. Suresh (TMS-AIME, Warrendale, PA, 1984) p. 145.

  23. S. Suresh, A.K. Vasudevan, and P.E. Bretz, Met. Trans. 15A (1984) p. 369.

    CAS  Google Scholar 

  24. R.O. Ritchie, S. Suresh, and P.K. Liaw, in Ultrasonic Fatigue, edited by J.M. Wells et al. (TMS-AIME, Warrendale, PA, 1982) p. 443.

  25. G.T. Gray, J.C. Williams, and A.W. Thompson, Met. Trans. 14A (1983) p. 421.

    Google Scholar 

  26. A. Saxena, S.J. Hudak Jr., J.K. Donald, and D.W. Schmidt, J. Testing and Evaluation 6 (1978) p. 167.

    Google Scholar 

  27. E.A. Esaklul, A.G. Wright, and W.W. Gerberich, Scripta Met. 17 (1983) p. 1073.

    CAS  Google Scholar 

  28. W.W. Gerberich, W. Yu, and E.A. Esaklul, Met. Trans. 15A (1984) p. 875.

    CAS  Google Scholar 

  29. W. Yu, E.A. Esaklul, and W.W. Gerberich, Met. Trans. 15A (1984) p. 889.

    CAS  Google Scholar 

  30. D.L. Davidson, Fatigue of Engineering Materials and Structures 3 (1980) p. 229.

    Google Scholar 

  31. D.L. Davidson and J. Lankford, Mater. Sci. Eng. 60 (1983) p. 225.

    Google Scholar 

  32. J. Lankford and D.L. Davidson, in Fatigue Crack Growth Threshold Concepts, edited by D.L. Davidson and S. Suresh (TMS-AIME, Warrendale, PA, 1984) p. 447.

  33. J. Lankford, D.L. Davidson, and K.S. Chan, Met. Trans. 15A (1984) p. B 1579.

    Google Scholar 

  34. J.E. Allison, PhD thesis, Carnegie Mellon University, Pittsburgh, PA, 1982.

    Google Scholar 

  35. J.L. Yuen, P. Roy, and W.D. Nix, Met. Trans. 15A (1984) p. 1769.

    CAS  Google Scholar 

  36. R.D. Carter, E.W. Lee, E.A. Starke, and C.J. Beevers, Met. Trans. 15A (1984) p. 555.

    CAS  Google Scholar 

  37. P.K. Liaw, T.R. Leax, R.S. Williams, and M.G. Peck, Met. Trans. 13A (1982) p. 1607.

    Google Scholar 

  38. W.A. Logsdon and P.K. Liaw, Eng. Fracture Mech. 24 (1986) p. 737.

    Google Scholar 

  39. P.K. Liaw, W.A. Logsdon, and M.A. Burke, “Fatigue Crack Propagation Behavior of 63Sn-37Pb Solder,” Scripta Metall. 23 (1989) p. 747.

    CAS  Google Scholar 

  40. W.A. Logsdon, P.K. Liaw, and M.A. Burke, “Fracture Behavior of 63Sn-37Pb Solder,” Eng. Fracture Mech. (in press).

  41. P.K. Liaw, J. Anello, and J.K. Donald, Met. Trans. 13A (1982) p. 2177.

    Google Scholar 

  42. P.K. Liaw, S.J. Hudak Jr., and J.K. Donald, Met. Trans. 13A (1982) p. 1633.

    Google Scholar 

  43. P.K. Liaw, T.R. Leax, R.S. Williams, and M.G. Peck, Acta Metall. 30 (1982) p. 2071.

    CAS  Google Scholar 

  44. P.K. Liaw, V.P. Swaminathan, T.R. Leax, and J.K. Donald, Scripta Met. 16 (1982) p. 871.

    CAS  Google Scholar 

  45. P.K. Liaw, J. Anello, and J.K. Donald, Scripta Met. 16 (1982) p.39.

    CAS  Google Scholar 

  46. P.K. Liaw, W.A. Logsdon, and M.H. Attaar, in Proc. International Cryogenic Materials Conference (Kobe, Japan, May 1982) p. 138.

  47. P.K. Liaw, W.A. Logsdon, and M.H. Attaar, Cryogenics (Oct. 1983) p. 523.

  48. P.K. Liaw, A. Saxena, V.P. Swaminathan, and T.T. Shih, Met. Trans. 14A (1983) p. 1631.

    CAS  Google Scholar 

  49. P.K. Liaw, W.A. Logsdon, and M.H. Attaar, in Austenitic Steels at Low Temperatures, edited by R.P. Reed and T. Horiuchi (Plenum Press, New York and London, 1983) p. 171.

  50. P.K. Liaw, S.J. Hudak Jr., and J.K. Donald, ASTM STP 791II (1983) p. 370.

    Google Scholar 

  51. R.S. Williams, P.K. Liaw, M.G. Peck, and T.R. Leax, Eng. Fracture Mech. 18 (1983) p. 953.

    Google Scholar 

  52. P.K. Liaw, T.R. Leax, and W.A. Logsdon, Acta Metall. 31 (1983) p. 1581.

    CAS  Google Scholar 

  53. P.K. Liaw, A. Saxena, V.P. Swaminathan, and T.T. Shih, in Fatigue Crack Growth Threshold Concepts, edited by D.L. Davidson and S. Suresh (TMS-AIME, Warrendale, PA, 1983) p. 205.

  54. P.K. Liaw, J. Anello, and J.K. Donald, Eng. Fracture Mech. 19 (1984) p. 1047.

    CAS  Google Scholar 

  55. P.K. Liaw, T.L. Ho, and J.K. Donald, Scripta Met. 18 (1984) p. 821.

    Google Scholar 

  56. P.K. Liaw, in Synergism of Microstructure, Mechanisms and Mechanics in Fatigue, edited by J.M. Wells and J.D. Landes (TMS-AIME, Warrendale, PA, 1984) p. 479.

  57. P.K. Liaw, J. Anello, N.S. Cheruvu, and J.K. Donald, Met. Trans. 15A (1984) p. 693.

    CAS  Google Scholar 

  58. P.K. Liaw and W.A. Logsdon, J. Eng. Mater, and Tech. 107 (1985) p. 26.

    CAS  Google Scholar 

  59. P.K. Liaw, W.A. Logsdon, and M.H. Attaar, ASTM STP 857 (1985) p. 173.

    CAS  Google Scholar 

  60. P.K. Liaw and W.A. Logsdon, Eng. Fracture Mech. 22 (1985) p. 115.

    Google Scholar 

  61. P.K. Liaw and W.A. Logsdon, Eng. Fracture Mech. 22 (1985) p. 585.

    Google Scholar 

  62. P.K. Liaw, Acta Metall. 33 (1985) p. 1489.

    CAS  Google Scholar 

  63. P.K. Liaw, T.R. Leax, and J.K. Donald, Acta Metall. 35 (1987) p. 1415.

    CAS  Google Scholar 

  64. P.K. Liaw, ASTM STP 982 (1988) p. 62.

    Google Scholar 

  65. P.K. Liaw, T.R. Leax, and J.K. Donald, “Gaseous-Environment Fatigue Crack Propagation Behavior of a Low Alloy Steel,” in 20th ASTM National Symposium on Fracture Mechanics, ASTM STP 1020 (1989) p. 581.

  66. P.K. Liaw and W. Logsdon, Acta Metall. 36 (1988) p. 1731.

    CAS  Google Scholar 

  67. P.K. Liaw and W.A. Logsdon, in Fatigue 87 II, edited by R.O. Ritchie and E.A. Starke, Jr. (Engineering Materials Advisory Services, Cradley Heath, Warley, West Midlands, U.K., 1987) p. 899.

  68. S. Suresh and R.O. Ritchie, Met. Trans. 13A (1982) p. 1627.

    Google Scholar 

  69. W. Elber, PhD thesis, University of New South Wales, 1968.

  70. B. Budiansky and J.W. Hutchinson, J. Applied Mech. 45 (1978) p. 267.

    Google Scholar 

  71. J.C. Newman, Jr., ASTM STP 590 (1976) p. 281.

    Google Scholar 

  72. H. Rack and P. Ratnaparkhi, J. Metals (November 1988) p. 55.

  73. J.K. Shang, W. Yu, and R.O. Ritchie, Mater. Sci. Eng. 102 (1988) p. 181.

    Google Scholar 

  74. D.L. Davidson, Met. Trans. 18A (1987) p. 2115.

    CAS  Google Scholar 

  75. T. Christman and S. Suresh, Mater. Sci. Eng. 102 (1988) p. 211.

    Google Scholar 

  76. J.K. Shang and R.O. Ritchie, “On the Particle-Size Dependence of Fatigue-Crack Propagation Thresholds in SiC-Particulate-Reinforced Aluminum-Alloy Composites: Role of Crack Closure and Crack Trapping,” Acta Metall. (in press).

  77. C.P. You, J.V. Lasecki, J.M. Boileau, and J.E. Allison, “Aging Effects on Fatigue Crack Growth and Closure in SiC-Reinforced 2124 Aluminum Composite,” (presented at the TMS Fall Meeting, Chicago, IL, 1988).

  78. A.T. Yokobori Jr. and T. Yokobori, Proc. Int. Conf. Fatigue Thresholds 1 (1981) p. 171.

    Google Scholar 

  79. L.P. Pook and N.E. Frost, Int. J. Fracture 9 (1973) p. 53.

    CAS  Google Scholar 

  80. V. Weiss and D.N. Lal, Met. Trans. 5A (1974) p. 1946.

    Google Scholar 

  81. E. Phillips, “Formation of a Study Group on Crack Closure Measurements and Analysis,” ASTM Letter(188E) 3 (December 1984).

  82. T.T. Shih and R.P. Wei, Eng. Fracture Mech. 6 (1974) p. 19.

    CAS  Google Scholar 

  83. D. Dan and J. Weertman, Eng. Fracture Mech. 15 (1981) p. 87.

    Google Scholar 

  84. J.J. Lee and W.N. Sharpe Jr., ASTM STP 982 (1988) p. 2

    Google Scholar 

  85. J.R. Jira, T. Weerasooriya, T. Nicholas, and J.M. Larsen, ASTM STP 982 (1988) p. 617.

    Google Scholar 

  86. J.M. Larsen, T. Nicholas, A.W. Thompson, and J.C. Williams, in Small Fatigue Cracks, edited by R.O. Ritchie and J. Lankford (TMS-AIME, Warrendale, PA, 1986) p. 499.

  87. R.C. McClung and H. Sehitoglu, ASTM STP 982 (1988) p. 279.

    Google Scholar 

  88. S.J. Hudak Jr. and D.L. Davidson, ASTM STP 982 (1988) ibid. p. 121.

  89. W.A. Troha, T. Nicholas, and A.F. Grandt Jr., ASTM STP 982 (1988) ibid. p. 598.

  90. P.L. Lalor and H. Sehitoglu, ASTM STP 982 (1988) ibid. p. 342.

  91. R.G. Chermahini, K.N. Shivakumar, and J.C. Newman Jr., ASTM STP 982 (1988) ibid. p. 398.

  92. H. Nakamura and A. Kobayashi, ASTM STP 982 (1988) ibid. p. 459.

  93. N.A. Fleck and J.C. Newman Jr., ASTM STP 982 (1988) ibid. p. 319.

  94. T. Nicholas, A.N. Palazotto, and E. Bednarz, ASTM STP 982 (1988) ibid. p. 361.

  95. D.M. Tracey, J. Eng. Mater. Tech., Trans. ASME, 98 (1976) p. 146.

    Google Scholar 

Download references

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Liaw, P.K. Long Fatigue Cracks — Microstructural Effects and Crack Closure. MRS Bulletin 14, 25–35 (1989). https://doi.org/10.1557/S0883769400061935

Download citation

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1557/S0883769400061935

Navigation