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A comparison study of water impact and water exit models

  • 발행 : 2014.12.31

초록

In problems of global hydroelastic ship response in severe seas including the whipping problem, we need to know the hydrodynamic forces acting on the ship hull during almost arbitrary ship motions. In terms of ship sections, some of them can enter water but others exit from water. Computations of nonlinear free surface flows, pressure distributions and hydrodynamic forces in parallel with the computations of the ship motions including elastic vibrations of the ship hull are time consuming and are suitable only for research purposes but not for practical calculations. In this paper, it is shown that the slamming forces can be decomposed in two components within three semi-analytical models of water entry. Only heave motion is considered. The first component is proportional to the entry speed squared and the second one to the body acceleration. The coefficients in these two components are functions of the penetration depth only and can be precomputed for given shape of the body. During the exit stage the hydrodynamic force is proportional to the acceleration of the body and independent of the body shape for bodies with small deadrise angles.

키워드

과제정보

연구 과제 주관 기관 : National Research Foundation of Korea (NRF)

참고문헌

  1. Baldwin, J.L. and Steves, H.K., 1975. Vertical water entry of spheres, NASA STI/Recon Technical Report, N. 76, 13452. Silver Spring, MD, USA: White Oax Laboratory.
  2. Battistin, D. and Iafrati, A., 2003. Hydrodynamic loads during water entry of two-dimensional and axisymmetric bodies. Journal of fluids and structures, 17(5), pp.643-664. https://doi.org/10.1016/S0889-9746(03)00010-0
  3. Khabakhpasheva, T.I., Kim, Y. and Korobkin, A.A., 2014. Generalised Wagner model of water impact by numerical conformal mapping. Applied Ocean Research, 44, pp.29-38. https://doi.org/10.1016/j.apor.2013.10.007
  4. Korobkin, A.A., 1996. Water impact problems in ship hydrodynamics. In: M. Ohkusu, ed. Advances in marine hydrodynamics. Southampton: Computational Mechanics Publications.
  5. Korobkin, A.A., 2004. Analytical models of water impact. European Journal of Applied Mathematics, 15, pp.821-838. https://doi.org/10.1017/S0956792504005765
  6. Korobkin, A.A. and Iafrati, A., 2005. Hydrodynamic loads during initial stage of floating body impact. Journal of Fluids and Structures, 21(4), pp.413-427. https://doi.org/10.1016/j.jfluidstructs.2005.08.002
  7. Korobkin, A.A., 2011. Semi-analytical approach in Generalised Wagner model. Proceedings of 26th International Workshop on Water Waves and Floating Bodies, Athens, Greece, 17-20 April 2011, pp.85-88.
  8. Korobkin, A.A., 2013. A linearized model of water exit. Journal of Fluid Mechanics, 737, pp.368-386. https://doi.org/10.1017/jfm.2013.573
  9. Korobkin, A., Khabakhpasheva, T.I. and Maki, K.J., 2014. Water-exit problem with prescribed motion of a symmetric body. In Proceedings 29th International Workshop on Water Waves and Floating Bodies, Osaka, Japan, 30 March-2 April 2014, pp.117-120.
  10. Malenica, S., and Korobkin, A.A., 2007. Some aspects of slamming calculations in seakeeping. In: Proceedings of 9th International Conference on Numerical Ship Hydrodynamics, Michigan, 5-8 August 2007.
  11. Malleron, N. and Scolan, Y.M., 2008. Generalized Wagner model for 2D symmetric and elastic bodies. Proceedings of 23d International Workshop on Water Waves and Floating Bodies, IWWWFB23, Jeju, Korea, 13-16 April 2008, pp.124-127.
  12. Mei, X., Liu, Y. and Yue, D.K.P, 1999. On the water impact of general two-dimensional sections. Applied Ocean Research, 21(1), pp.1-15. https://doi.org/10.1016/S0141-1187(98)00034-0
  13. Nisewanger, C.R., 1961. Experimental determination of pressure distribution on a sphere during water entry (No. NOTSTP- 2806). California: Naval Ordnance Test Station China Lake CA.
  14. Piro, D.J. and Maki, K.J., 2011. Hydroelastic wedge entry and exit. In 11-th International Conference on Fast Sea Transport, Honolulu, Hawaii, USA, 26-29 September 2011.
  15. Piro, D.J. and Maki, K.J., 2013. Hydroelastic analysis of bodies that enter and exit water. Journal of Fluids and Structures, 37, pp.134-150. https://doi.org/10.1016/j.jfluidstructs.2012.09.006
  16. Scolan, Y.M. and Korobkin, A.A., 2001. Three-dimensional theory of water impact. Part 1. inverse Wagner problem. Journal of Fluid Mechanics, 440, pp.293-326.
  17. Tassin, A., Piro, D.J., Korobkin, A.A., Maki, K.J. and Cooker, M.J., 2013. Two-dimensional water entry and exit of a body whose shape varies in time. Journal of Fluids and Structures, 40, pp.317-336. https://doi.org/10.1016/j.jfluidstructs.2013.05.002
  18. Zhao, R., Faltinsen, O. and Aarsnes, J., 1996. Water entry of arbitrary two-dimensional sections with and without flow separation. In: Proceedings of 21-st Symposium on Naval Hydrodynamics, Trondheim, Norway, 24-28 June 1996, pp.408-423.
  19. Zhu, X., Faltinsen, O. and Hu C., 2005. Water entry loads on heeled ship sections. In: $16^{th}$ International Conference on Hydrodynamics in Ship Design, Gdańsk-Ostróda, Poland, 7-10 September 2005.