Dynamic Modeling and Simulation of a Spar Floating Offshore Wind Turbine With Consideration of the Rotor Speed Variations

Author:

Al-Solihat Mohammed Khair1,Nahon Meyer2,Behdinan Kamran3

Affiliation:

1. Department of Mechanical Engineering, McGill University, Montreal, QC H3A 0C3, Canada; Department of Mechanical and Industrial Engineering, University of Toronto, Toronto, ON, M5S 3G8, Canada e-mail:

2. Department of Mechanical Engineering, McGill University, Montreal, QC H3A 0C3 Canada

3. Department of Mechanical and Industrial Engineering, University of Toronto, Toronto, ON M5S 3G8, Canada

Abstract

This paper presents a rigid multibody dynamic model to simulate the dynamic response of a spar floating offshore wind turbine (FOWT). The system consists of a spar floating platform, the moorings, the wind turbine tower, nacelle, and the rotor. The spar platform is modeled as a six degrees-of-freedom (6DOFs) rigid body subject to buoyancy, hydrodynamic and moorings loads. The wind turbine tower supports rigid nacelle and rotor at the tip. The rigid rotor is modeled as a disk spinning around its axis and subject to the aerodynamic load. The generator torque control law is incorporated into the system dynamics to capture the rotor spinning speed response when the turbine is operating below the rated wind speed. The equations of motions are derived using Lagrange's equation in terms of the platform quasi-coordinates and rotor spin speed. The external loads due to hydrostatics, hydrodynamics, and aerodynamics are formulated and incorporated into the equations of motion. The dynamic simulations of the spar FOWT are performed for three load cases to examine the system eigen frequencies, free decay response, and response to a combined wave and wind load. The results obtained from the present model are validated against their counterparts obtained from other simulation tools, namely, FAST, HAWC2, and Bladed, with excellent agreement. Finally, the influence of the rotor gyroscopic moment on the system dynamics is investigated.

Funder

Natural Sciences and Engineering Research Council of Canada

Publisher

ASME International

Subject

Computer Science Applications,Mechanical Engineering,Instrumentation,Information Systems,Control and Systems Engineering

Reference46 articles.

1. Dynamics of Offshore Floating Wind Turbines-Analysis of Three Concepts;Wind Energy,2011

2. Musial, W., Jonkman, J., Sclavounos, P., and Wayman, L., 2005, “Engineering Challenges for Floating Offshore Wind Turbines,” Copenhagen Offshore Wind 2005 Conference and Expedition Proceedings, Copenhagen, Denmark, Oct. 26–28.https://www.osti.gov/biblio/917212-engineering-challenges-floating-offshore-wind-turbines

3. Matha, D., Schlipf, M., Cordle, R., Pereira, R., and Jonkman, J., 2011, “Challenges in Simulation of Aerodynamics, Hydrodynamics, and Mooring-Line Dynamics of Floating Offshore Wind Turbines,” The 21st International Offshore and Polar Engineering Conference, Maui, HI, June 19–24.https://www.nrel.gov/docs/fy12osti/50544.pdf

4. Offshore Floating Vertical Axis Wind Turbines, Dynamics Modelling State of the Art. Part II: Mooring Line and Structural Dynamics;Renewable Sustainable Energy Rev.,2014

5. Motion Analysis of a Floating Offshore Wind Turbine Considering Rotor-Rotation;IES J. Part A Civ. Struct. Eng.,2008

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