A seakeeping analysis method for a high-speed partial air cushion supported catamaran (PACSCAT)
Tài liệu tham khảo
Bhushan, S., Stern, F., Doctors, L.J., 2011. T-Craft calm water resistance and motions, and seakeeping in regular waves. In: Proceedings of the 11th International Conference on Fast Sea Transportation. FAST 2011. Honolulu, Hawaii, USA, pp. 74–81.
Connell, S.B., Milewski, M.W., Goldman, B., Kring, C.D., 2011. Single and multi-body surface effect ship simulation for T-craft design evaluation. In: Proceedings of the 11th International Conference on Fast Sea Transportation. FAST 2011. Honolulu, Hawaii, USA, pp. 130–137.
Dhanak, R.M., 2011. SES seakeeping motion in transforming near-shore head seas. In: Proceedings of the 11th International Conference on Fast Sea Transportation. FAST 2011. Honolulu, Hawaii, USA, pp. 74–81.
Dong, 2007, A new theoretical method on longitudinal motion of planing craft in wave, J. Ship Mech., 11, 55
Donnelly, 2010
Duan, W.Y., Hudson, D.A., Price, W.G., 2000. Theoretical prediction of the motions of fast displacement vessels in long-crested head seas. In: Proceedings of the 3rd International Conference for High Performance Marine Vehicles, Shanghai. The Royal Institution of Naval Architects.
Duan, 2002, Hydrodynamic properties of high-speed catamaran, J Harbin Eng Univ, 23, 9
Duan, W.Y., Ma, S., 2003. Comparisons between STF strip theory, 2.5D theory and 3D theory for prediction of hydrodynamic forces on high speed ship. In: Proceedings of the 17th National Conference on Hydrodynamics and the 6th National Congress on Hydrodynamics. pp. 456–465 (in Chinese).
Faltinsen, 2005, 2005, 141
Guo, Z.Q., Ma, Q.W., Lin, Z., 2014. A Comparison of seakeeping predictions for wave-piercing catamarans using STF and URANS methods. In: Proceedings of the Twenty-fourth (2014) International Ocean and Polar Engineering Conference. Busan, Korea, 3, p. 746–752.
Keener, 1988
Lin, W.M., Zhang, S., Weems, K., Huan, J., Whipple, D., 2010. Hydrodynamics and dynamic simulation of multiple ships in waves including surface effect ship and air cushion vehicle. In: Proceedings of T-Craft Tool Development Review Meeting. Florida.
Ma, 2005, An efficient numerical method for solving ‘2.5D’ ship seakeeping problem, Ocean Eng., 32, 937, 10.1016/j.oceaneng.2004.10.018
Molland, A.F., Wilson, P.A., Lewthwaite, J.C., Taunton, D.J., 2005. An investigation into the hydrodynamic characteristics of a high-speed partial air cushion supported catamaran (PACSCAT). In: Proceedings of the Eighth International Conference on Fast Sea Transportation. FAST 2005. The Institute of Marine Engineering, Science and Technology.
Salvesen, N., Tuck, E.O., Faltinsen, O., 1970. Ship motions and sea loads. In: Proceedings of Transactions SNAME. New York, pp. 250–287.
Sørensen, 1995, Design of ride control system for surface effect ships using dissipative control, Auromadca, 31, 183
Wu, 1987, Coupled roll and heave motions of surface effect ship in beam seas, Ship Build China, 4, 6
Yun, L., Bliault, A., 2000. Theory and design of air cushion craft. First published in Great Britain in 2000 by Arnold, a member of the Hodder Headline Group, 338 Huston Road, London NW1 3BH, pp. 296.
Zhang S., Weems K., Lin W.M., 2011. Solving nonlinear wave-body interaction problems with the pre-corrected fast fourier transform (pFFT) method. In: Proceedings of the 11th International Conference on Fast Sea Transportation. FAST 2011. Honolulu, Hawaii, USA, pp. 153-160.
