Review of scaling laws applied to floating offshore wind turbines

被引:24
|
作者
Sergiienko, N. Y. [1 ]
da Silva, L. S. P. [1 ]
Bachynski-Polic, E. E. [2 ]
Cazzolato, B. S. [1 ]
Arjomandi, M. [1 ]
Ding, B. [1 ]
机构
[1] Univ Adelaide, Sch Mech Engn, Adelaide, SA 5005, Australia
[2] Norwegian Univ Sci & Technol, Dept Marine Technol, N-7491 Trondheim, Norway
来源
关键词
Wind energy; Floating offshore wind; Scaling factor; Dynamics; DESIGN; SPEED; OPTIMIZATION; COST;
D O I
10.1016/j.rser.2022.112477
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The wind energy industry is moving to offshore installations allowing for larger wind turbines to be deployed in deep-water regions with higher and steadier wind speeds. Floating offshore wind turbines consist of two main subsystems: a wind turbine itself and a floating substructure that supports it and provides stability. While the wind turbine technology is mature, the floating support structures for offshore wind turbines are still evolving and have not been deployed at a commercial scale. Due to a significant increase in the size of wind turbines over the last decade, it is important to understand how to design the floating platform to support larger wind turbines, and how the dynamics of the entire system change with increasing scale. Firstly, this article provides an overview of the trends in wind energy systems for offshore applications. Secondly, a review of existing semi-submersible platforms designed to support 5-15 MW wind turbines is provided. In addition, this article provides a comparative analysis of the techniques proposed to upscale floating support structures for larger wind energy systems with a particular focus on the system dynamics. The results demonstrate that the wind turbine mass, rated power and rotor thrust force scale with close to square rotor diameter. Towers designed for floating wind applications are usually significantly stiffer and heavier as compared to their fixed-bottom counterparts to place the tower's natural frequencies outside the wave excitation region. The analysis of semi-submersible platforms revealed a strong correlation between the wind turbine rotor diameter and the product of the distance to the offset columns and their diameter. Also, it has been found that design practices adapted by the platform developers roughly follow the theoretical square-cube (or 'mass') scaling law when designing platforms for larger wind turbines.
引用
下载
收藏
页数:13
相关论文
共 50 条
  • [21] Identification of Vibration Modes in Floating Offshore Wind Turbines
    Serrano-Antonanazas, Mikel
    Sierra-Garcia, Jesus-Enrique
    Santos, Matilde
    Tomas-Rodriguez, Maria
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2023, 11 (10)
  • [22] Study on Gyroscopic Effect of Floating Offshore Wind Turbines
    Jia-hao Chen
    Ai-guo Pei
    Peng Chen
    Zhi-qiang Hu
    China Ocean Engineering, 2021, 35 : 201 - 214
  • [23] Characterization of the unsteady aerodynamics of offshore floating wind turbines
    Sebastian, T.
    Lackner, M. A.
    WIND ENERGY, 2013, 16 (03) : 339 - 352
  • [24] Study on Gyroscopic Effect of Floating Offshore Wind Turbines
    Chen Jia-hao
    Pei Ai-guo
    Chen Peng
    Hu Zhi-qiang
    CHINA OCEAN ENGINEERING, 2021, 35 (02) : 201 - 214
  • [25] Scale model technology for floating offshore wind turbines
    Bayati, Ilmas
    Belloli, Marco
    Bernini, Luca
    Giberti, Hermes
    Zasso, Alberto
    IET RENEWABLE POWER GENERATION, 2017, 11 (09) : 1120 - 1126
  • [26] Floating offshore wind turbines port requirements for construction
    Crowle, A. P.
    Thies, P. R.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART M-JOURNAL OF ENGINEERING FOR THE MARITIME ENVIRONMENT, 2022, 236 (04) : 1047 - 1056
  • [27] OFFSHORE FLOATING WIND TURBINES ARE ASKING FOR NDE 4.0
    Singh, Ripi
    MATERIALS EVALUATION, 2023, 81 (09) : 14 - 16
  • [28] Dynamically installed anchors for floating offshore wind turbines
    Lieng, Jon Tore
    Sturm, Hendrik
    Hassel, Karl Kristian
    OCEAN ENGINEERING, 2022, 266
  • [29] Heave Plates with Holes for Floating Offshore Wind Turbines
    Ciba, Ewelina
    Dymarski, Pawel
    Grygorowicz, Miroslaw
    POLISH MARITIME RESEARCH, 2022, 29 (01) : 26 - 33
  • [30] Evaluation of control methods for floating offshore wind turbines
    Yu, Wei
    Lemmer, Frank
    Schlipf, David
    Cheng, Po Wen
    Visser, Bart
    Links, Harmen
    Gupta, Neelabh
    Dankemann, Sabrina
    Counago, Bernardino
    Serna, Jose
    EERA DEEPWIND'2018, 15TH DEEP SEA OFFSHORE WIND R&D CONFERENCE, 2018, 1104