Statistical linearisation of a nonlinear floating offshore wind turbine under random waves and winds

被引:15
|
作者
Da Silva, L. S. P. [1 ,2 ]
De Oliveira, M. [3 ]
Cazzolato, B. [1 ]
Sergiienko, N. [1 ]
Amaral, G. A. [4 ]
Ding, B. [1 ]
机构
[1] Univ Adelaide, Sch Mech Engn, Adelaide, Australia
[2] Delmar Syst, Perth, Australia
[3] Univ Sao Paulo, Dept Mech Engn, Escola Politecn, Sao Paulo, Brazil
[4] Univ Sao Paulo, Offshore Mech Lab, Escola Politecn, Sao Paulo, Brazil
基金
巴西圣保罗研究基金会;
关键词
Floating offshore wind turbine; Statistical linearisation; Frequency-domain; Aerodynamic admittance; Nonlinear dynamics; FREQUENCY-DOMAIN MODEL; ADMITTANCE FUNCTION; DYNAMIC-RESPONSE; COUPLED ANALYSIS; IMPACT; LOADS;
D O I
10.1016/j.oceaneng.2022.112033
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
This paper investigates the stochastic nonlinear dynamics of a floating offshore wind turbine (FOWT) in the frequency-domain under irregular waves and turbulent winds. The main sources of nonlinearities are estimated using statistical linearisation, which are calculated based on probability density functions (PDFs) between the degrees-of-freedom and the environment. The nonlinear mooring model captures the coupling between degrees -of-freedom when the platform has a mean displacement caused by the wind thrust, changing the natural frequency especially in surge. In addition, the nonlinear viscous drag loads offer an hydrodynamic damping that lead to better estimates of the responses. The nonlinear aerodynamic loads uses the relative motion experienced by the wind turbine under turbulent wind, and the concept of aerodynamic admittance function, which has not been applied yet to FOWTs, is included to capture the spatial effects of the wind turbulence. The results are benchmarked against nonlinear time-domain simulations using OpenFAST, and good agreement is obtained in terms of power spectral densities, PDFs and standard deviations. Several environmental conditions are used to explore some of the platform characteristics and salient features from the model. The main advantage of the following approach is the low computational cost, while providing reliable estimates of the response.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] Effects of various freak waves on dynamic responses of a Spar-buoy floating offshore wind turbine
    Li, Yan
    Li, Haoran
    Wang, Bin
    Meng, Hang
    Su, Ouming
    Tang, Yougang
    OCEAN ENGINEERING, 2024, 311
  • [42] The dynamic response of a Spar-type floating wind turbine under freak waves with different properties
    Li, Yan
    Li, Haoran
    Wang, Zhenkui
    Li, Yaolong
    Wang, Bin
    Tang, Yougang
    MARINE STRUCTURES, 2023, 91
  • [43] Control Strategies for Floating Offshore Wind Turbine: Challenges and Trends
    Salic, Tom
    Charpentier, Jean Frederic
    Benbouzid, Mohamed
    Le Boulluec, Marc
    ELECTRONICS, 2019, 8 (10)
  • [44] Modelling the hydrodynamic response of a floating offshore wind turbine-a comparative study
    Yu, Shimin
    Ransley, Edward
    Qian, Ling
    Zhou, Yang
    Brown, Scott
    Greaves, Deborah
    Hann, Martyn
    Holcombe, Anna
    Edwards, Emma
    Tosdevin, Tom
    Jagdale, Sudhir
    Li, Qian
    Zhang, Yi
    Zhang, Ningbo
    Yan, Shiqiang
    Ma, Qingwei
    Tagliafierro, Bonaventura
    Capasso, Salvatore
    Martinez-Estevez, Ivan
    Goteman, Malin
    Bernhoff, Hans
    Karimirad, Madjid
    Dominguez, Jose M.
    Altomare, Corrado
    Viccione, Giacomo
    Crespo, Alejandro J. C.
    Gomez-Gesteira, Moncho
    Eskilsson, Claes
    Fernandez, Gael Verao
    Andersen, Jacob
    Palm, Johannes
    Niosi, Francesco
    Dell'Edera, Oronzo
    Sirigu, Massimo
    Ghigo, Alberto
    Bracco, Giovanni
    Cui, Fuyin
    Chen, Shuling
    Wang, Wei
    Zhuo, Yueyue
    Li, Yang
    Peyrard, Christophe
    Benguigui, William
    Barcet, Matthieu
    Robaux, Fabien
    Benoit, Michel
    Teles, Maria
    Ntouras, Dimitris
    Manolas, Dimitris
    Papadakis, George
    APPLIED OCEAN RESEARCH, 2025, 155
  • [45] Mooring system fatigue analysis of a floating offshore wind turbine
    Barrera, Carlos
    Battistella, Tommaso
    Guanche, Raul
    Losada, Inigo J.
    OCEAN ENGINEERING, 2020, 195
  • [46] Motion Performance and Mooring System of a Floating Offshore Wind Turbine
    Zhao, Jing
    Zhang, Liang
    Wu, Haitao
    JOURNAL OF MARINE SCIENCE AND APPLICATION, 2012, 11 (03) : 328 - 334
  • [47] The typhoon effect on the aerodynamic performance of a floating offshore wind turbine
    Ma, Zhe
    Li, Wei
    Ren, Nianxin
    Ou, Jinping
    JOURNAL OF OCEAN ENGINEERING AND SCIENCE, 2017, 2 (04) : 279 - 287
  • [48] Numerical research on the interaction of multi-directional random waves with an offshore wind turbine foundation
    Ji, Xinran
    Zou, Li
    Yang, Zhiwen
    Wang, Daoru
    Bingham, Harry B.
    OCEAN ENGINEERING, 2022, 250
  • [49] Investigation on Thrust Characteristics of a Downstream Offshore Floating Wind Turbine under Yawed Inflow Conditions
    Wang, Yangwei
    Lin, Jiahuan
    Duan, Huawei
    Zhang, Jun
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2021, 9 (11)
  • [50] Dynamic response analysis of floating offshore wind turbine in combined wind and wave
    Cai H.
    Zhu R.
    Wang X.
    Fan J.
    Harbin Gongcheng Daxue Xuebao/Journal of Harbin Engineering University, 2019, 40 (01): : 118 - 125