DOI QR코드

DOI QR Code

Global hydroelastic analysis of ultra large container ships by improved beam structural model

  • Senjanovic, Ivo (University of Zagreb, Faculty of Mechanical Engineering and Naval Architecture) ;
  • Vladimir, Nikola (University of Zagreb, Faculty of Mechanical Engineering and Naval Architecture) ;
  • Tomic, Marko (University of Zagreb, Faculty of Mechanical Engineering and Naval Architecture) ;
  • Hadzic, Neven (University of Zagreb, Faculty of Mechanical Engineering and Naval Architecture) ;
  • Malenica, Sime (Bureau Veritas, Research Department)
  • Published : 2014.12.31

Abstract

Some results on the hydroelasticity of ultra large container ships related to the beam structural model and restoring stiffness achieved within EU FP7 Project TULCS are summarized. An advanced thin-walled girder theory based on the modified Timoshenko beam theory for flexural vibrations with analogical extension to the torsional problem, is used for formulation of the beam finite element for analysis of coupled horizontal and torsional ship hull vibrations. Special attention is paid to the contribution of transverse bulkheads to the open hull stiffness, as well as to the reduced stiffness of the relatively short engine room structure. In addition two definitions of the restoring stiffness are considered: consistent one, which includes hydrostatic and gravity properties, and unified one with geometric stiffness as structural contribution via calm water stress field. Both formulations are worked out by employing the finite element concept. Complete hydroelastic response of a ULCS is performed by coupling 1D structural model and 3D hydrodynamic model as well as for 3D structural and 3D hydrodynamic model. Also, fatigue of structural elements exposed to high stress concentration is considered.

Keywords

Acknowledgement

Supported by : National Research Foundation of Korea (NRF)

References

  1. AMG, 2003. User's manual. Paris: Bureau Veritas.
  2. Bishop, R.E.D. and Price, W.G., 1979. Hydroelasticity of Ships. Cambridge: Cambridge University Press.
  3. DYANA, 2005. User's manual. Zagreb: FAMENA, (internal report).
  4. Huang, L.L. and Riggs, H.R., 2000. The hydrostatic stiffness of flexible floating structure for linear hydroelasticity. Marine Structures, 13(2), pp.91-106. https://doi.org/10.1016/S0951-8339(00)00007-1
  5. HYDROSTAR, 2006. User's manual, Paris: Bureau Veritas.
  6. HYELACS, 2011. User's manual. Zagreb: Famena.
  7. Malenica, S., 2003. Some aspects of hydrostatic calculations in linear seakeeping. 14th International conference on ship and shipping research (NAV), Palermo, Italy, 24-27 June 2003, pp.7.3.1-7.3.16
  8. Malenica, S., Senjanovic, I., Derbanne, Q. and Vladimir, N., 2011. On the EU FP7 project tools for ultra large container ships - TULCS. Brodogradnja, 62(2), pp.177-187.
  9. MECAP, 2011. User's manual. Zagreb: FAMENA.
  10. Molin, B., 2003. Hydrostatique d'un corps deformable, Technical note. France: Ecole Superieure de Marseille.
  11. MSC.NASTRAN, 2005. Installation and operations guide. Newport Beach, CA: MSC. Software.
  12. Newman, J.N., 1994. Wave effects on deformable bodies. Applied Ocean Research, 16, pp.47-59. https://doi.org/10.1016/0141-1187(94)90013-2
  13. Pavazza, R., 2005. Torsion of thin-walled beams of open cross-sections with influence of shear. International Journal of Mechanical Sciences, 47(7), pp.1099-1122. https://doi.org/10.1016/j.ijmecsci.2005.02.007
  14. Price, W.G. and Wu, Y., 1985. Hydroelasticity of marine structures. Eds. NIORSON, F.I. and OLHOFF, N., Theoretical and applied mechanics. North Holland: Elsevier Science Publishers B.V.
  15. Riggs, H.R., 1996. Hydrostatic stiffness of flexible floating structures. Proceedings of the International Workshop on Very Large Floating Structures, Hayama, Japan, pp.229-234.
  16. Senjanovic, I., 1998. Finite element method in ship structures. Zagreb: University of Zagreb.
  17. Senjanovic, I., Tomasevic, S., Rudan, S. and Senjanovic, T., 2008. Role of transverse bulkheads in hull stiffness of large container ships. Engineering Structures, 30, pp.2492-2509. https://doi.org/10.1016/j.engstruct.2008.01.016
  18. Senjanovic, I., Tomasevic, S. and Vladimir, N., 2009. An advanced theory of thin-walled girders with application to ship vibrations. Marine Structures, 22(3), pp.387-437. https://doi.org/10.1016/j.marstruc.2009.03.004
  19. Senjanovic, I., Hadzic, N. and Tomic, M., 2011a. Investigation of restoring stiffness in the hydroelastic analysis of slender marine structures. Journal of Offshore Mechanics and Arctic Engineering, 133, pp.1-10.
  20. Senjanovic, I., Hadzic, N. and Vladimir, N., 2011b. Restoring stiffness in the hydroelastic analysis of marine structures. Brodogradnja, 62(3), pp.265-279.
  21. Senjanovic, I., Vladimir, N., Malenica, S. and Tomic, M., 2011c. Improvements of beam structural modelling in hydroelasticity of ultra large container ships. Proceedings of ASME 30th International Conference on Ocean, Offshore and Arctic Engineering OMAE 2011, Rotterdam, The Netherlands, June 2011, pp.219-228.
  22. Senjanovic, I., Vladimir, N. and Tomic, M., 2011d. Effective stiffness of the engine room structure in large container ships. Brodogradnja, 62(1), pp.15-27.
  23. Senjanovic, I., Vladimir, N. and Tomic, M., 2011e. Investigation of torsion, warping and distortion of large container ships. Ocean Systems Engineering, 1(1), pp.73-93. https://doi.org/10.12989/ose.2011.1.1.073
  24. Senjanovic, I., Vladimir, N. and Tomic, M., 2012a. Formulation of consistent restoring stiffness in ship hydroelastic analysis. Journal of Engineering Mathematics, 72(1), pp.141-157. https://doi.org/10.1007/s10665-011-9468-2
  25. Senjanovic, I., Vladimir, N. and Cho, D.S., 2012b. A simplified geometric stiffness in stability analysis of thin-walled structures by the finite element method. International Journal of Naval Architecture and Ocean Engineering. 4, pp.313-321. https://doi.org/10.3744/JNAOE.2012.4.3.313
  26. Senjanovic, I., Hadzic, N. and Bigot, F., 2013. Finite element formulation of different restoring stiffness issues and their influence on response. Ocean Engineering, 59(1), pp.198-213. https://doi.org/10.1016/j.oceaneng.2012.12.026
  27. Senjanovic, I., Vladimir, N., Tomic, M., Hadzic, N. and Malenica, S., 2014a. Some aspects of structural modelling and restoring stiffness in hydroelastic analysis of large container ships. Ships and Offshore Structures, 9(2), pp.199-217. https://doi.org/10.1080/17445302.2012.762728
  28. Senjanovic, I., Hadzic, N. and Vladimir, N. and Tomic, M., 2014b. Restoring stiffness formulations and their influence on ship hydroelastic response. Development in maritime transportation and exploitation of sea resources - Guedes Soares & Lopes Pena (eds). London: Taylor & Francis Group.
  29. STIFF, 2011. User's manual. Zagreb: FAMENA.
  30. Szilard, R., 2004. Theories and applications of plate analysis. New York: John Wiley & Sons.