Development of a surrogate model for wind farm control

被引:2
作者
Ciri, Umberto [1 ]
Santoni, Christian [1 ]
Bernardoni, Federico [1 ,2 ]
Salvetti, Maria Vittoria [2 ]
Leonardi, Stefano [1 ]
机构
[1] Univ Texas Dallas, Dept Mech Engn, Richardson, TX 75080 USA
[2] Univ Pisa, Dipartimento Ingn Civile & Ind, Pisa, Italy
来源
2019 AMERICAN CONTROL CONFERENCE (ACC) | 2019年
关键词
TURBINES; WAKE; SIMULATIONS;
D O I
10.23919/acc.2019.8814766
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
We present a method to derive a surrogate model for wind farm control. The procedure is based on a stochastic approach using generalized polynomial chaos (PC) and high-fidelity simulations. The turbine control law and the incoming wind conditions, such as speed and directions, are treated as uncertain variables. Wind farm power production is viewed as the random process depending on these uncertain variables. Thus, polynomial chaos expansion is used to obtain a response function that provides the wind farm power production as a function of the turbine control parameters and the wind speed and direction. The response function is obtained by using a finite set of deterministic realizations, which consist in highfidelity simulations for certain values of wind speed, direction and control parameters, interpolated by polynomials. In PC, the interpolating polynomial basis and the set of realizations are selected according to the probability density function of the uncertain parameters. This allows using a limited number of realizations to obtain an accurate response function and provides uncertainty bounds on the model. Thus, a mapping of the optimal control settings is obtained for any wind speed and direction to be employed for real-time wind farm operations. In this work, the procedure is validated against field measurements in a real wind farm in north Texas. The surrogate model is obtained by performing 64 simulations with our in-house code interpolated by 7th-order Hermite polynomials. The energy production computed with the surrogate model is accurate within 2% of the measured SCADA data. Once the response function has been obtained, an optimization problem is solved to find the control parameters maximizing the wind farm power production.
引用
收藏
页码:2849 / 2854
页数:6
相关论文
共 40 条
[2]  
Annoni J, 2016, P AMER CONTR CONF, P506, DOI 10.1109/ACC.2016.7524964
[3]   A new analytical model for wind-turbine wakes [J].
Bastankhah, Majid ;
Porte-Agel, Fernando .
RENEWABLE ENERGY, 2014, 70 :116-123
[4]  
Boersma S, 2017, P AMER CONTR CONF, P1, DOI 10.23919/ACC.2017.7962923
[5]   A control-oriented dynamic wind farm flow model: "WFSim" [J].
Boersma, S. ;
Gebraad, P. M. O. ;
Vali, M. ;
Doekemeijer, B. M. ;
van Wingerden, J. W. .
SCIENCE OF MAKING TORQUE FROM WIND (TORQUE 2016), 2016, 753
[6]   THE ORTHOGONAL DEVELOPMENT OF NON-LINEAR FUNCTIONALS IN SERIES OF FOURIER-HERMITE FUNCTIONALS [J].
CAMERON, RH ;
MARTIN, WT .
ANNALS OF MATHEMATICS, 1947, 48 (02) :385-392
[7]   Optimizing the arrangement and the selection of turbines for wind farms subject to varying wind conditions [J].
Chowdhury, Souma ;
Zhang, Jie ;
Messac, Achille ;
Castillo, Luciano .
RENEWABLE ENERGY, 2013, 52 :273-282
[8]   Unrestricted wind farm layout optimization (UWFLO): Investigating key factors influencing the maximum power generation [J].
Chowdhury, Souma ;
Zhang, Jie ;
Messac, Achille ;
Castillo, Luciano .
RENEWABLE ENERGY, 2012, 38 (01) :16-30
[9]  
Churchfield M., 2012, 50th AIAA Aerospace Sciences Meeting including the New Horizons Forum and Aerospace Exposition, P537, DOI DOI 10.2514/6.2012-537
[10]   Large-eddy simulations with extremum-seeking control for individual wind turbine power optimization [J].
Ciri, Umberto ;
Rotea, Mario ;
Santoni, Christian ;
Leonardi, Stefano .
WIND ENERGY, 2017, 20 (09) :1617-1634