H∞ position transfer and regulation for floating offshore wind turbines

被引:0
|
作者
Eduardo Eribert Escobar Aquino
Ryozo Nagamune
机构
[1] The University of British Columbia,Department of Mechanical Engineering
来源
关键词
Offshore wind farm; wind turbine position; power regulation; disturbance rejection; H; control;
D O I
暂无
中图分类号
学科分类号
摘要
This paper proposes H∞ controller design for platform position transfer and regulation of floating offshore wind turbines. The platform movability of floating wind turbines can be utilized in mitigating the wake effect in the wind farm, thereby maximizing the wind farm’s total power capture and efficiency. The controller is designed so that aerodynamic force is adjusted to meet the three objectives simultaneously, that is, 1) to generate the desired electrical power level, 2) to achieve the desired platform position, and 3) to suppress the platform oscillation. To acquire sufficient aerodynamic force to move the heavy platform, the pitch-to-stall blade pitching strategy is taken instead of the commonly-used pitch-to-feather strategy. The desired power level is attained by the standard constant-power strategy for the generator torque, while H∞ state-feedback control of blade pitch and nacelle yaw angles is adopted for the position regulation and platform oscillation suppression. Weighting constants for the H∞ controller design are adjusted to take the trade-off between the position regulation accuracy and the platform motion reduction. To demonstrate the efficiency of the proposed controller, a virtual 5-MW semi-submersible wind turbine is considered. Simulation results show that the designed H∞ controller successfully accomplishes the platform position transfer and regulation as well as the platform oscillation reduction against wind and wave disturbances, and that it outperforms a previously-proposed linear quadratic controller with an integrator.
引用
收藏
页码:231 / 245
页数:14
相关论文
共 50 条
  • [1] H∞ position transfer and regulation for floating offshore wind turbines
    Escobar Aquino, Eduardo Eribert
    Nagamune, Ryozo
    [J]. CONTROL THEORY AND TECHNOLOGY, 2020, 18 (03) : 231 - 245
  • [2] Floating offshore wind turbines
    Sclavounos, Paul
    [J]. MARINE TECHNOLOGY SOCIETY JOURNAL, 2008, 42 (02) : 39 - 43
  • [3] TMD limited position strategy for vibration suppression of floating offshore wind turbines
    Yang J.
    He E.
    Yao W.
    Xiong B.
    [J]. Zhendong yu Chongji/Journal of Vibration and Shock, 2020, 39 (15): : 18 - 24and57
  • [4] CERTIFICATION SCHEME FOR OFFSHORE FLOATING WIND TURBINES
    Boutrot, Jonathan
    Leblanc, Aude
    [J]. PROCEEDINGS OF THE ASME 1ST INTERNATIONAL OFFSHORE WIND TECHNICAL CONFERENCE, 2018, 2018,
  • [5] WindFloat: A floating foundation for offshore wind turbines
    Roddier, Dominique
    Cermelli, Christian
    Aubault, Alexia
    Weinstein, Alla
    [J]. JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2010, 2 (03)
  • [6] FLOATING TURBINES: THE NEXT WAVE FOR OFFSHORE WIND
    Spring, Mark
    [J]. Motor Ship, 2021, 102 (1188):
  • [7] DESIGN REQUIREMENTS FOR FLOATING OFFSHORE WIND TURBINES
    Chen, Xiaohong
    Yu, Qing
    [J]. PROCEEDINGS OF THE ASME 32ND INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE AND ARCTIC ENGINEERING - 2013 - VOL 8, 2013,
  • [8] Modelling and control of floating offshore wind turbines
    Tomas-Rodriguez, M.
    Santos, M.
    [J]. REVISTA IBEROAMERICANA DE AUTOMATICA E INFORMATICA INDUSTRIAL, 2019, 16 (04): : 381 - 390
  • [9] Wind Tunnel Wake Measurements of Floating Offshore Wind Turbines
    Bayati, I.
    Belloli, M.
    Bernini, L.
    Zasso, A.
    [J]. 14TH DEEP SEA OFFSHORE WIND R&D CONFERENCE, EERA DEEPWIND'2017, 2017, 137 : 214 - 222
  • [10] Combined current and wind simulation for floating offshore wind turbines
    Otter, A.
    Desmond, C.
    Flannery, B.
    Murphy, J.
    [J]. EERA DEEPWIND OFFSHORE WIND R&D CONFERENCE, DEEPWIND 2022, 2022, 2362