Title :
Structural analysis of a gravity substructure for 5MW offshore wind turbines
Author :
Min-Su Park ; Youn-Ju Jeong ; Young-Jun You
Author_Institution :
Struct. Eng. Res. Div., Korea Inst. of Constr. Technol., Goyang, South Korea
Abstract :
The offshore wind power generation especially has gained attention from many countries because of its huge amount of energy and infinite growth potential of application of its energy. The substructure for offshore wind turbines is strongly influenced by the effect of wave forces since the size of a tower and a rotor-nacelle becomes larger to increase the gross generation of wind turbines. Therefore, it is very important to accurately calculate the wave force acting on substructures. In the present study Eigen-function expansion method with using three-dimensional linear potential theory is used to evaluate the wave forces. The comparison between wave forces obtained from Morison equation and wave forces obtained from this study is made to compare the diffraction theory with Morison equation in case of the small substructure compared to the wave length. The wave run-up acting on the substructure is also presented. Using the wave forces obtained from this study, the structural analysis of the gravity substructure is carried out through ANSYS mechanical. The structural behaviors of the strength and deformation are evaluated to investigate an ultimate structural safety and serviceability of gravity substructure. Moreover, the modal analysis is carried out to investigate the resonance between the wind turbine and the gravity substructure. It is found that the suggested gravity substructure can be an effective substructure for 5MW offshore wind turbines.
Keywords :
deformation; mechanical strength; offshore installations; rotors; structural engineering; wind turbines; ANSYS mechanical; Eigen-function expansion method; Morison equation; diffraction theory; gravity substructure; offshore wind power generation; offshore wind turbines; power 5 MW; rotor nacelle; structural analysis; three-dimensional linear potential theory; tower; wave forces; wind turbines generation; Equations; Fluids; Gravity; Mathematical model; Safety; Wind turbines; Eigen-function expansion method; gravity substructure; offshore wind energy; structural analysis; ultimate structural safety;
Conference_Titel :
OCEANS 2014 - TAIPEI
Conference_Location :
Taipei
Print_ISBN :
978-1-4799-3645-8
DOI :
10.1109/OCEANS-TAIPEI.2014.6964542