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On the effects of hull-girder vibration upon fatigue strength of a Post-Panamax container ship disaggregated by short-term sea state

  • 발행 : 2014.06.30

초록

The effects of hull-girder vibration on the fatigue strength of a Post-Panamax container ship are discussed in the present paper. Firstly, the short-term sea states are categorized according to the occurrence probability of each sea state. Time histories of hull-girder stress in short-term sea states are calculated by means of a nonlinear simulation code of ship response assuming that the hull-girder is rigid and flexible. Then, the calculated stress peaks are processed by the rainflow counting method, where two different counting procedures are used based on the considerations of crack propagation behaviors. Finally, the fatigue damage in life time of the ship in each categorized short-term sea state is estimated by means of Miner's rule. Based on the calculated results, the effects of hull-girder vibrations on the fatigue damage are clarified by disaggregated damage from short-term sea state.

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참고문헌

  1. Derbanne, Q., Rezende, F., de Hauteclocque, G. and Chen, X.B., 2011. Evaluation of rule-based fatigue design loads associated at a new probability level. Proceedings 21st International Offshore and Polar Engineering Conference, ISOPE 2011, Maui, Hawaii, USA, 19-24 June 2011, pp.929-935.
  2. Fukasawa, T., 2012. Some Considerations on the effect of wave-induced vibrations upon hull-girder fatigue strength of a Post-Panamax container ship. Hydroelasticity in Marine Technology, Hydroelasticity 2012, Tokyo, Japan, 19-21 September 2012, pp.389-398.
  3. Fukasawa, T., Kawabe, H. and Moan, T., 2007. On extreme ship response in severe short-term sea state, Advancements in Marine Structures. 1st Int. Conf. on Marine Structures, Advancement in Marine Structures, MARSTRUCT 2007, Glasgow, UK, 12-14 March 2007, pp.33-40.
  4. Gotoh, K., Matsuda, K. and Kitamura, O., 2012. Numerical simulation of fatigue crack propagation under superposed loading histories with two different frequencies. Hydroelasticity in Marine Technology, Hydroelasticity 2012, Tokyo, Japan, 19-21 September 2012, pp.287-297.
  5. Nippon Kaiji Kyokai, 2003. Guidelines for container carrier structures. Chiba Japan: ClassNK.
  6. Kitamura, O., Sugimura, T., Nakayama, S. and Hirota, K., 2012. A study of the results of fatigue crack propagation tests under combination loads of high & low cycles -Consideration to the effect of whipping on the fatigue strength-, 2012SOS1-4. Conference Proceedings The Japan Society of Naval Architects and Ocean Engineers, Japan, 17-18 May 2012, pp.13-16.
  7. Maddox, S.J., 1991. Fatigue strength of welded structures. Cambridge, UK: Abington Publishing.
  8. Matsuda, K., Takahashi, H. and Gotoh, K., 2011. Numerical simulation of fatigue crack propagation under variable amplitude loading with different frequency components. 25th Asian-Pacific Technical Exchange and Advisory Meeting on Marine Structures, TEAM 2011, Incheon, Korea, 26-29 September 2011, pp.736-742.
  9. Matsuishi, M. and Endo, T., 1968. Fatigue of metals subjected to varying stress. Proceedings Kyushu Branch, Japan Society of Mechanical Engineers, March 1974, pp.37-42.
  10. Sumi, Y., 2012. The effect of slam-induced whipping stress for fatigue crack growth under random seaway loading, 2012SOS1-3. Conference Proceedings The Japan Society of Naval Architects and Ocean Engineers, Kobe, Japan, 17-18 May 2012, pp.9-12.
  11. Yamamoto, Y., Fujino, M. and Fukasawa, T., 1983. Longitudinal strength of ships in rough seas. Technical Bulletin of Nippon Kaiji Kyokai, 1, pp.1-12.