A fully coupled frequency domain model for floating offshore wind turbines

被引:21
|
作者
Karimi, Meysam [1 ]
Buckham, Brad [1 ]
Crawford, Curran [1 ]
机构
[1] Univ Victoria, Dept Mech Engn, Victoria, BC, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Wind turbine; Offshore; Floating platform; Frequency domain model;
D O I
10.1007/s40722-019-00134-x
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
This paper presents a new frequency domain modeling approach for floating offshore wind turbines with coupled wind turbine, floating platform, and mooring system sub-models. The sub-models are generated using the validated numerical tools FAST and WAMIT to obtain the frequency domain aerodynamic and hydrodynamic characteristics, respectively, for any given design candidate. The turbulent wind and irregular wave loads are incorporated in the frequency domain model using wind and wave power spectral density functions, the JONSWAP and Kaimal spectra, respectively. To validate the proposed 6 DOF frequency domain framework across standard operational environmental conditions, predicted system responses of a 5 MW NREL offshore wind turbine with three classes of reference platforms including the OC3-Hywind, the MIT/NREL TLP, and the OC4-DeepCwind semisubmersible were compared to the outputs of 6 DOF and 22 DOF FAST time domain simulations. The comparison over an aggregate of eleven environmental conditions focused on differences in predicted platform rigid body motions and structural considerations including platform surge, roll, and pitch, and rotor thrust, total blade root and tower base bending moments/fatigue loads, fairlead and anchor tensions/fatigue loads. In terms of platform motions, the worst match of frequency and time domain model predictions was seen for the OC4-DeepCwind semisubmersible with errors of 13.2% in peak displacement values. The frequency domain model predictions of rotor thrust, blade root and tower base bending moments demonstrated the largest error in the case of the OC3-Hywind spar buoy with the peak loads differing by up to 12.8%. Errors in the predictions of maximum fairlead and anchor tensions were less than 11.5% with maximum error occurring for the MIT/NREL TLP. In terms of fatigue load comparison, the blade root and tower base fatigue load predictions showed less than 9.8% errors for all the reference platforms. Comparison of the fairlead and anchor fatigue loads showed that errors were less than 13.8% with the largest error seen for the OC3-Hywind spar buoy platform. Overall, the frequency domain model provides reliable means for assessing platforms dynamics at the conceptual stage of the design process.
引用
收藏
页码:135 / 158
页数:24
相关论文
共 50 条
  • [1] A fully coupled frequency domain model for floating offshore wind turbines
    Meysam Karimi
    Brad Buckham
    Curran Crawford
    [J]. Journal of Ocean Engineering and Marine Energy, 2019, 5 : 135 - 158
  • [2] Establishing a fully coupled CFD analysis tool for floating offshore wind turbines
    Liu, Yuanchuan
    Xiao, Qing
    Incecik, Atilla
    Peyrard, Christophe
    Wan, Decheng
    [J]. RENEWABLE ENERGY, 2017, 112 : 280 - 301
  • [3] Bidirectional vibration control for fully-coupled floating offshore wind turbines
    Luo, Mengjie
    Jin, Xin
    Yue, Yong
    Chen, Yiming
    [J]. OCEAN ENGINEERING, 2024, 292
  • [4] An efficient frequency-domain model for quick load analysis of floating offshore wind turbines
    Pegalajar-Jurado, Antonio
    Borg, Michael
    Bredmose, Henrik
    [J]. WIND ENERGY SCIENCE, 2018, 3 (02) : 693 - 712
  • [5] Iterative Frequency-Domain Response of Floating Offshore Wind Turbines with Parametric Drag
    Lemmer, Frank
    Yu, Wei
    Cheng, Po Wen
    [J]. JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2018, 6 (04):
  • [6] Floating offshore wind turbines
    Sclavounos, Paul
    [J]. MARINE TECHNOLOGY SOCIETY JOURNAL, 2008, 42 (02) : 39 - 43
  • [7] A simplified method for coupled analysis of floating offshore wind turbines
    Karimirad, Madjid
    Moan, Torgeir
    [J]. MARINE STRUCTURES, 2012, 27 (01) : 45 - 63
  • [8] Development of a fully coupled aero-hydro-mooring-elastic tool for floating offshore wind turbines
    Liu, Yuanchuan
    Xiao, Qing
    [J]. JOURNAL OF HYDRODYNAMICS, 2019, 31 (01) : 21 - 33
  • [9] Development of a fully coupled aero-hydro-mooring-elastic tool for floating offshore wind turbines
    Yuanchuan Liu
    Qing Xiao
    [J]. Journal of Hydrodynamics, 2019, 31 : 21 - 33
  • [10] Scale model technology for floating offshore wind turbines
    Bayati, Ilmas
    Belloli, Marco
    Bernini, Luca
    Giberti, Hermes
    Zasso, Alberto
    [J]. IET RENEWABLE POWER GENERATION, 2017, 11 (09) : 1120 - 1126