Influence of overload on the fatigue crack growth retardation and the statistical variation

강의 피로균열지연거동에 미치는 과대하중의 영향과 통계적 변동에 관한 연구

  • 김선진 (부경대학교, 공과대학, 기계공학과) ;
  • 남기우 (부경대학교 재료공학과) ;
  • 김종훈 (부경대학교, 공과대학, 기계공학과) ;
  • 이창용 (부경대학교, 공과대학, 기계공학과) ;
  • 박은희 (부경대학교, 공과대학, 기계공학과) ;
  • 서상하 (부경대학교, 공과대학, 기계공학과)
  • Published : 1997.08.01

Abstract

Constant .DELTA.K fatigue crack growth rate experiments were performed by applying an intermediate single and multiple overload for structural steel, SM45C. The purpose of the present study is to investigate the influence of multiple overloads at various stress intensity factor ranges and the effect of statistical variability of crack retardation behavior. The normalized delayed load cycle, delayed crack length and the minimum crack growth rate are increased with increasing baseline stress intensity factor range when the overload ratio and the number of overload application were constant. The crack retardation under low baseline stress intensity factor range increases by increasing the number of overload application, but the minimum crack growth rate decreases by increasing the number of overload application. A strong linear correlation exists between the minimum crack growth rate and the number of overload applications. And, it was observed that the variability in the crack growth retardation behavior are presented, the probability distribution functions of delayed load cycle, delayed crack length and crack growth life are 2-parameter Weibull. The coefficient of variation of delayed load cycle and delayed crack length for the number of 10 overload applications data are 14.8 and 9.2%, respectively.

Keywords

References

  1. ASME J. Eng. Mat. and Tech. v.101 The Statistical Nature of Fatigue Crack Propagation Virkler, D. A.;Hillberry, B. M.;Goel, P. K.
  2. Eng. Fract. Mech. v.24 no.5 Time Series Analysis of Fatigue Crack Growth Data Ortiz, K.;Kiremidjian, A. S.
  3. Naval Arc. and Ocean Eng. of Japan v.165 Reliability Assessment by Simulation of Fatigue Crack Growth Itagaki, H.;Ishizuka, T.;Huang, P. Y.
  4. Fundamentals of Metal Fatigue Analysis Bannantine, J. A.;Comer, J. J.;Handrock, J. L.
  5. ASME J. Basic Eng. v.D94 no.1 Spectrum Loading and Crack Growth Wheeler, O. E.
  6. A Crack Growth Retardation Model Using an Effective Stress Concept Willenborg, J.;Engle, R. M.;Wood, H. A.
  7. The Significance of Fatigue Crack Closure in Damage Tolerance in Aircraft Structure Elber, W.
  8. Influence of Stress State on Crack Retardation Fleck, N. A.
  9. Met. Sci. v.11 Effects of Overloads on Fatigue Crack Propagation : Alluminum Alloys Knott, J. F.;Pickard, A. C.
  10. Eng. Fract. Mech. v.18 no.3 Micromechanisms of Fatigue Crack Growth Retardation Following Overloads Suresh, S.
  11. Advanced in Fracture Research v.2 Influence of Multiple Overload on Fatigue Crack Retardation in High Strength Low Alloy Structural Steel Dhar, S.
  12. Experimental Results and a Hypothesis for Fatigue Crack Propagation Under Variable Amplitude Loading Jacoby, G. H.;Nowack, H.;van Lipzig, H. T. M.
  13. Mechanisms of Overload Retardation During Fatigue Crack Propagation Bernard, P. J.;Lindley, T. C.;Richards, C. E.
  14. Int. J. Fract. v.14 no.5 Review and Extension of Compliance Information for Common Crack Growth Specimens Ashok Saxena;Hudak, S. J.
  15. ASME J. Basic Eng. v.55 A Critical Analysis of Crack Propagation Laws Paris, P. C.;Erdogan, F.
  16. Delay Effects in Fatigue Crack Propagation von Euw, E. F. J.;Hertzberg, R. W.;Robeuts
  17. Eng. Fract. Mech. v.8 The Retardation Phenomenon of Fatigue Crack Growth in HT80 Steel Matsuoka, S.;Tanaka, K.;Kwahara, M.
  18. ASME J. Eng. Mat. and Tech. v.116 A Fatigue Crack Growth Model for Single Overload Tests Goel, H. S.;Chand, S.
  19. Eng. Fract. Mech. v.10 Mechanisums of Overload Effect on Fatigue Crack Propagation in Alluminum Alloys Bathias, C.;Vancon, M.
  20. Engng. Fract. Mech. v.24 Random Fatigue Crack Growth with Retardation Ditlevsen, O.;Sobczyk, K.
  21. Eng. Fract. Mech. v.27 On Retardation Effects During Fatigue Crack Growth Under Random Overloads Arone, R.
  22. Eng. Fract. Mech. v.30 Influence of Random Overloads on Fatigue Crack Lifetime and Reliability Arone, R.
  23. Eng. Fract. Mech. v.30 Influence of Random Overloads on Fatigue Crack Lifetime and Reliability Arone, R.
  24. Fatigue of Metallic Materials(2nd ed.) Klesnil, M.;Lukas, P.
  25. Int. J. Fract. v.10 Delay in Fatigue Crack Growth Wei, R. P.;Shih, T. T.