Design and Fully Coupled Dynamic Response Analysis of a New Floating Offshore Wind Platform

Author:

Shen Yong12,Liu Chuanyi12,Pan Weichen12,Li Yajie3ORCID,Wang Xikun13ORCID

Affiliation:

1. CSSC Chengxi Shipyard (Yangzhou) Co., Ltd., Yangzhou 225217, China

2. CSSC Chengxi Shipyard Co., Ltd., Jiangyin 214433, China

3. Research Center of Fluid Machinery Engineering and Technology, Jiangsu University, Zhenjiang 212013, China

Abstract

Floating offshore wind platform (FOWP) has become the economically favored option for supporting wind turbines in deep waters. It is urgent to propose new concept designs for FOWPs that can be effectively deployed. Additionally, the extensive use of steel in such platforms significantly escalates costs, necessitating the optimization of steel utilization. Motivated by these challenges, a V-shaped floating semi-submersible platform equipped with NREL 5 MW wind turbine is designed and analyzed based on the potential flow theory and the blade element momentum theory. Fully coupled time-domain simulations are conducted using the F2A program, which couples NREL FAST and ANSYS AQWA via a Dynamic Link Library (DLL), to compare the hydrodynamic performance and stability of the V-shaped floating platform with the original triangle-shaped model of “Fuyao”. Various sea conditions have been considered, including combined wind-wave action and wind-wave-current action at different incidence angles. The results show that the V-shaped floating platform has better economic and hydrodynamic performance (e.g., a reduction of 40.4% and 12.9%, respectively, in pitch and yaw motions, and a 17.4% reduction in maximum mooring tension), but lower stability than its triangle-shaped counterpart.

Funder

Yang Zhou Science and Technology Bureau

Zhen Jiang Science and Technology Bureau

Publisher

MDPI AG

Subject

Ocean Engineering,Water Science and Technology,Civil and Structural Engineering

Reference25 articles.

1. Feasibility study of floating windfarms in shallow offshore sites;Henderson;Wind Eng.,2003

2. Butterfield, S., Musial, W., Jonkman, J.M., Sclavounos, P., and Wayman, L. (2005, January 26–28). Engineering Challenges for Floating Offshore Wind Turbines. Proceedings of the Copenhagen Offshore Wind 2005 Conference, Copenhagen, Denmark.

3. WindFloat: A floating foundation for offshore wind turbines;Roddier;J. Renew. Sustain. Energy,2010

4. Preliminary design of a floating support structure for a 5 MW offshore wind turbine;Lefebvre;Ocean Eng.,2012

5. Concept design verification of a semi-submersible floating wind turbine using coupled simulations;Huijs;Energy Procedia,2014

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