Rotor Speed Control in Above-Rated Wind Speed Region for Floating Offshore Wind Turbine

被引:7
作者
Li, Jiaqi [1 ,2 ]
Geng, Hua [1 ,2 ]
机构
[1] Tsinghua Univ, Dept Automat, Beijing 100084, Peoples R China
[2] Tsinghua Univ, Beijing Natl Res Ctr Informat Sci & Technol, Beijing 100084, Peoples R China
关键词
Rotors; Aerodynamics; Torque; Generators; Wind turbines; Wind speed; Limit-cycles; Floating offshore wind turbine; limit cycle; Hopf bifurcation; nonlinear system; rotor speed control; PITCH CONTROL; ENERGY;
D O I
10.1109/TSTE.2024.3365139
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Large oscillations of the rotor speed are often observed in floating offshore wind turbines (FOWTs) operating in above-rated wind speed region. This phenomenon drastically increases the mechanical fatigue loads and even causes damage to the generator. To address this problem, this article first establishes a Reduced-Order Speed-Control-Oriented Model (ROSCOM), which demonstrates the nonlinear coupling of the platform pitch motion and the turbine rotor rotation. The oscillation mechanism is then revealed that the platform pitch motion acts as the zero dynamics of ROSCOM, which can produce limit cycles and result in large oscillations of rotor speed. Based on the Bendixson criterion and Hopf bifurcation theorem, limit cycles and Hopf bifurcation in the platform pitch motion are identified and proved. Additionally, a nonlinear generator torque compensation strategy, named Non-Minimum Phase Platform Pitch Compensation (NMP$<^>{3}$C), is designed to eliminate the limit cycles in the FOWT system. The rotor speed control performance is thus greatly improved. Electromagnetic power variation, platform pitch variation and tower base fore-aft fatigue loads are also mitigated. Digital simulations based on OpenFAST verify the analysis results and the effectiveness of the proposed method.
引用
收藏
页码:1640 / 1651
页数:12
相关论文
共 35 条
[1]  
Allen C., 2020, Definition of the UMaine VolturnUS-S reference platform developed for the IEA wind 15-megawatt offshore reference wind turbine
[2]   Emergence of floating offshore wind energy: Technology and industry [J].
Bento, Nuno ;
Fontes, Margarida .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2019, 99 :66-82
[3]   Wind turbine control for load reduction [J].
Bossanyi, EA .
WIND ENERGY, 2003, 6 (03) :229-244
[4]  
Bossanyi EA, 2000, WIND ENERGY, V3, P149, DOI [10.1002/we.34, DOI 10.1002/WE.34]
[5]  
Duarte T., 2013, Tech. Rep. NREL/CP-5000-58099
[6]   Reducing rotor speed variations of floating wind turbines by compensation of non-minimum phase zeros [J].
Fischer, Boris .
IET RENEWABLE POWER GENERATION, 2013, 7 (04) :413-419
[7]   A control-oriented wave-excited linear model for offshore floating wind turbines [J].
Fontanella, A. ;
Al, M. ;
van der Hoek, D. ;
Liu, Y. ;
van Wingerden, J. W. ;
Belloli, M. .
SCIENCE OF MAKING TORQUE FROM WIND (TORQUE 2020), PTS 1-5, 2020, 1618
[8]  
Gaertner Evan., 2020, IEA WIND TCP TASK 37, DOI DOI 10.2172/1603478
[9]   Output Power Control for Variable-Speed Variable-Pitch Wind Generation Systems [J].
Geng, Hua ;
Yang, Geng .
IEEE TRANSACTIONS ON ENERGY CONVERSION, 2010, 25 (02) :494-503
[10]  
Hansen M. O. L., 2008, AERODYNAMICS WIND TU