Laboratory for Ship and Platform Flows
http://oe.mit.edu/flowlab/pdf/Floating_Offshore_Wind_Turbines.pdf
Department of Mechanical Engineering
Ships have been engaged in
maritime trade, national defense and leisure for millennia. Their hydrodynamic
performance and design is an age-old problem in naval architecture, yet it
still presents numerous challenges to the marine hydrodynamics community. Research at the LSPF focuses on the modeling
of free surface flows past conventional and high-speed vessels and the
estimation of their resistance and seakeeping in deep and shallow waters.
Recent studies have concentrated on the coupling of hydrodynamic simulations
with modern optimal control theory for the minimization of the motions and the
fuel efficient navigation of high-performance and conventional vessels in a
stochastic environment. These studies encompass the development of analytical
and computational techniques, including the use of the state-of-the-art SWAN
(ShipWaveANalysis) Software Suite.



The exploration and development
of large offshore hydrocarbon reservoirs in deep waters is a key activity of
the oil industry, presenting a host of technological challenges. Research at
the LSPF has concentrated upon the study of the hydrodynamics and dynamics of
novel deep-water offshore platform technologies. This includes studies of the
surface wave hydrodynamics of various concepts, the nonlinear statics and
dynamics of mooring, riser and tether systems in water depths up to 10,000 feet
and the response simulation of platform concepts in hostile weather
environments. Recent studies have concentrated on the development of floater
concepts for the support of wind turbines to be deployed in large scale
offshore wind farms in shallow and deep waters. These studies encompass the
development of analytical and computational techniques, including the use of
the state-of-the-art SML (Swim-Motion-Lines) and SWAN Software Suites.



Books
Readings in Marine Hydrodynamics.
Volume published in Honor of Professor J. Nicholas Newman. Paul D. Sclavounos,
Editor.
Recent Publications
- Sclavounos,
P. D. (2007). Modeling, Valuation
and Risk Management of Assets and Derivatives in Energy and Shipping.
Massachusetts Institute of Technology.
Working Paper.
- Sclavounos,
P. D., Tracy, C. and Lee, S. (2007).
Floating Offshore Wind Turbines: Responses in a Seastate, Pareto
Optimal Designs and Economic Assessment.
Massachusetts Institute of Technology.
Working Paper.
- Sclavounos, P. D., Thomas, B. S. and Ulusoy, T. (2006). Optimal
Ship Maneuvering and Seakeeping by Linear Quadratic Gaussian (LQG)
Controllers. 26th Naval Hydrodynamics Conference, Rome, Italy,
September 17 - 22.
- Thomas, B. S. and Sclavounos, P. D. (2006). Optimal Control
Theory Applied to Ship Maneuvering in Restricted Waters. To appear in Readings in Marine Hydrodynamics,
Volume to be Published in Honor of Professor J. Nicholas Newman. Paul D.
Sclavounos, Editor.
- Chatzakis, I. and Sclavounos,
P. D. (2006). Active Motion Control of High-Speed Hydrofoil Vessels by
State-Space Methods. Journal of Ship
Research, March 2006.
- Wayman, E. N. and Sclavounos, P. D. (MIT), Butterfield, S.,
Jonkman, J. and Musial, W. (NREL)
(2006). Coupled Dynamic Modeling of Floating Wind Turbine Systems.
Offshore Technology Conference (OTC), Houston, Texas,
May 1-4, 2006.
- Sclavounos, P. D. and Wayman, E. N. (MIT), Butterfield, S.,
Jonkman, J. and Musial, W. (NREL)
(2006). Floating Wind Turbine Concepts. European Wind Energy Association
Conference (EWAC), Athens,
Greece, 27
February - 2 March, 2006.
- Jonkman, J. and Sclavounos, P. D. (2006). Development of Fully
Coupled Aeroelastic and Hydrodynamic Models for Offshore Wind Turbines.
AIAA Conference, Reno,
Nevada, January 2006.
- Sclavounos, P. D. (2005). Nonlinear Particle Kinematics of
Ocean Waves. Journal of Fluid
Mechanics, Vol. 540, pp. 133-142.
- Lee, K., Sclavounos, P. D. and Wayman, E. N. (2005). Floating
Wind Turbines. 20th Workshop on Water Waves and Floating Bodies
- Spitsbergen , Norway - May 29 to June 1, 2005.
- Withee, J. E. and Sclavounos, P. D. (2004). Fully Coupled
Dynamic Analysis of a Floating Wind Turbine System. 8th World
Renewable Energy Congress, Denver
Colorado .
- Sclavounos, P.D., Purvin, S., Talha, U. and Kim, S. (2003).
Simulation Based Resistance and Seakeeping Performance of High-Speed
Monohull and Multihull Vessels Equipped With Motion Control Lifting
Appendages. Keynote Lecture, FAST 2003 Conference , Ichia Italy .
- Li, Y. and Sclavounos, P. D. (2002). Nonlinear
Three-Dimensional Solitary Waves Generated by High-Speed Vessels Advancing
in Shallow Waters. Journal of Fluid
Mechanics, Vol. 470, pp. 383-410.
- Kim S. and Sclavounos, P. D. (2001). Fully Coupled Response
Simulations of Theme Offshore Structures in Water Depths of Up to 10,000
Feet. 11th ISOPE Conference, Stavanger , Norway.