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Numerical Research of the Viscous Effect of the Bilge Keel on the Damping Moment


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1. Chakrabarti, S. Empirical calculation of roll damping of ships and barges, Ocean Engineering, Vol. 28, pp. 915-932, 2001.10.1016/S0029-8018(00)00036-6Search in Google Scholar

2. Cueva, M, Hansen, AS, Silva, JLB, Faria, F, Morato, A. HYDRODYNAMICS OF AN INSTALATION BARGE WITH BILGE KEELS AND STINGER, 29th ASME International Conference on Ocean, Offshore and Arctic Engineering, Shanghai, PEOPLES R CHINA, JUN 06-11, 2010.10.1115/OMAE2010-20059Search in Google Scholar

3. D. Mylonas, P. Sayer. The hydrodynamic flow around a yacht keel based on LES and DES, Ocean Engineering, Vol. 46, pp. 18-32, 2012.10.1016/j.oceaneng.2012.02.001Search in Google Scholar

4. Dai, CM, Miller, RW, Percival, AS. HYDRODYNAMIC EFFECTS OF BILGE KEELS ON THE HULL FLOW DURING STEADY TURNS, OMAE, Vol. 5, pp. 571-580, 2009.10.1115/OMAE2009-79585Search in Google Scholar

5. E.P. Bangun, C.M. Wang, T. Utsunomiya. Hydrodynamic forces on a rolling barge with bilge keels, Applied Ocean Research, Vol. 32, pp. 219-232, 2010.10.1016/j.apor.2009.10.008Search in Google Scholar

6. Froude, W. On the Rolling of Ships, Ph.D. thesis, Royal Institute of Naval Architects, 1861.Search in Google Scholar

7. H.H. Chun, S.H. Chun, S.Y. Kim. Roll damping characteristics of a small fishing vessel with a central wing, Ocean Engineering, Vol. 28, pp. 1601-1619, 2001.Search in Google Scholar

8. IKEDA Y., HIMENO Y, TANAKA N. On eddy making component of roll damping force on naked hull, Journal of the Society of Naval Architects of Japan, Vol. 142, pp. 54-64, 1977.10.2534/jjasnaoe1968.1977.142_54Search in Google Scholar

9. ITTC QM Procedure (2002). 7.5- 03- 01- 01.Search in Google Scholar

10. ITTC QM Procedure (2002). 7.5- 03- 02- 01.Search in Google Scholar

11. Kinnas, S. A., Yu, Y. H., Kacham, B., Lee, H. A Model of the Flow Around Bilge Keels of FPSO Hull Sections Subject to Roll Motions, Proceedings of the 12th Offshore Symposium, Soc. Naval Arch. Mar. Engr.. Houston TX., 2003.Search in Google Scholar

12. Kinnas, S. A. FPSO Roll Motions, Technical Report, Minerals Mgt. Service, USA, 2005.Search in Google Scholar

13. Kwang Hyo Jung, Kuang-An Chang, Erick T. Huang. Twodimensional flow characteristics of wave interactions with a free-rolling rectangular structure, Ocean Engineering, Vol. 32, pp. 1-20, 2005.10.1016/j.oceaneng.2004.06.007Search in Google Scholar

14. LI Yi-le, LIU Ying-zhong, MIAO Guo-ping. Potential flow solution using higher order boundary element method with Rankine source, Journal of Hydrodynamics(Ser. A), Vol. 14, no 1, pp. 80-89, 1999.Search in Google Scholar

15. LUO Min-li, MAO Xiao-fei, WANG Xiao-xia. CFD based hydrodynamic coefficients calculation to forced motion of two-dimensional section, CHINESE JOURNAL OF HYDRODYNAMICS, Vol. 26, no. 4, pp. 509-515, 2011.Search in Google Scholar

16. M. Eissa, A.F. El-Bassiouny. Analytical and numerical solutions of a non-linear ship rolling motion, Applied Mathematics and Computation, Vol. 134, pp. 243-270, 2003.10.1016/S0096-3003(01)00279-XSearch in Google Scholar

17. Maimun, A. Priyanto, K.S. Wong, M. Pauzi, M. Rafiqul. Effects of side keels on patrol vessel safety in astern waves, Ocean Engineering 2009; 36: 277-284.Search in Google Scholar

18. Pablo M. Carrica, Hamid Sadat-Hosseini, Frederick Stern. CFD analysis of broaching for a model surface combatant with explicit simulation of moving rudders and rotating propellers, Computers & Fluids, Vol. 53, pp. 117-132, 2012.10.1016/j.compfluid.2011.10.002Search in Google Scholar

19. PU Jin-yun, ZHANG Wei-kang, JIN Tao. Melinikov’s method for non-liner rolling motions of a flooded ship, Journal of Hydrodynamics(Ser. B), Vol. 17, no. 5, pp. 580-584, 2005.Search in Google Scholar

20. Qiuxin Gao, DracosVassalos. Numerical study of damage ship hydrodynamics, Ocean Engineering, Vol. 55, pp. 199-205, 2012.10.1016/j.oceaneng.2012.08.003Search in Google Scholar

21. Robert V. Wilson, Pablo M. Carrica, Fred Stern. Unsteady RANS method for ship motions with application to roll for a surface combatant, Computers & Fluids, Vol. 35, pp. 501-524, 2006.10.1016/j.compfluid.2004.12.005Search in Google Scholar

22. Souza Jr., J.R., Fernandes, A.C., Masetti, I.Q., da Silva, S., Kroff, S.A.B.. Nonlinear rolling of an FPSO with largerthan- usual bilge keels, Proceedings of the International Conference on Offshore Mechanics and Arctic Engineering - OMAE, Lisbon, Portugal; July 5, 1998 - July 9, 1998.Search in Google Scholar

23. Stern F, Wilson R, Coleman H, Paterson E. Comprehensive approach to verification and validation of CFD simulations-Part 1: Methodology and procedures, ASME J Fluids Eng., Vol. 123, pp. 793-802, 2001.10.1115/1.1412235Search in Google Scholar

24. Tanaka, N., Hishida, T. A Study on the Bilge Keels. Part 1. Two Dimensional Model Experiments, J. Soc. Nav. Archit. Jpn., Vol. 101, pp. 99-105, 1957.10.2534/jjasnaoe1952.1957.99Search in Google Scholar

25. Tanaka, N. A Study on the Bilge Keels. Part 2. Full Sized Model Experiment, J. Soc. Nav. Archit. Jpn., Vol. 103, pp. 69-73, 1958.10.2534/jjasnaoe1952.1958.69Search in Google Scholar

26. Tanaka, N. A Study on the Bilge Keels. Part 3. The Effect of the Ship Form and the Bilge Keel Size on the Action of the Bilge Keel, J. Soc. Nav. Archit. Jpn., Vol. 105, pp. 27-32, 1959.10.2534/jjasnaoe1952.1959.27Search in Google Scholar

27. Tanaka, N. A Study on the Bilge Keels. Part 4. On the Eddy making Resistance to the Rolling of a Ship Hull, J. Soc. Nav. Archit. Jpn., Vol. 109, pp. 205-212, 1960.10.2534/jjasnaoe1952.1961.205Search in Google Scholar

28. Thiagarajan, Krish P., Braddock, Ellen C. Influence of Bilge Keel Width on the Roll Damping of FPSO, 24th International Conference on Offshore Mechanics and Arctic Engineering, Halkidiki, GREECE; JUN 12-17, 2005.Search in Google Scholar

29. Vaidhyanathan, M. Separated Flows Near a Free Surface. Ph.D. thesis, University of California, Berkeley, CA., 1993.Search in Google Scholar

30. Wilson R, Stern F, Coleman H, Paterson E. Comprehensive approach to verification and validation of CFD simulations-Part 2: Application for RANS simulation of a cargo/container ship, ASME J Fluids Eng., Vol. 123, pp. 803-810, 2001.10.1115/1.1412236Search in Google Scholar

31. Wilson R, Shao J, Stern F. Discussion: Criticisms of the correction factor verification method, ASME J Fluids Eng., Vol. 125, pp. 732-733, 2003.10.1115/1.1588693Search in Google Scholar

32. YANG Bo, WANG Zuo-chao, WU Ming. Numerical Simulation of Naval Ship’s Roll Damping Based on CFD, Procedia Engineering, Vol. 37,pp. 14-18, 2012.10.1016/j.proeng.2012.04.194Search in Google Scholar

33. YANG Chun-lei, ZHU Ren-chuan, MIAO Guo-ping, FAN Ju. Numerical simulation of rolling for 3-D ship with forward speed and nonlinear damping analysis, Journal of Hydrodynamics(Ser. B), Vol. 25, no. 1, pp. 148-155, 2013.10.1016/S1001-6058(13)60348-0Search in Google Scholar

34. Yeung, R.W., Liao, S.-W., Roddier, D. Hydrodynamic coefficients of rolling rectangular cylinders, Eighth International Journal of Offshore and Polar Engineers, Vol. 8, pp. 242-250, 1998.Search in Google Scholar

35. Yeung, R., Roddier, D., Alessandrini, B., Gentaz, L., and Liao, S.-W. On Roll Hydrodynamics of Cylinders Fitted With Bilge Keels, Proceedings 23rd Symposium Naval Hydrodynamics, Washington, DC., 2000. Search in Google Scholar

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