Numerical Investigation of the Aeroelastic Behavior of a Wind Turbine with Iced Blades

被引:23
作者
Gantasala, Sudhakar [1 ]
Tabatabaei, Narges [2 ]
Cervantes, Michel [2 ]
Aidanpaa, Jan-Olov [1 ]
机构
[1] Lulea Univ Technol, Dept Engn Sci & Math, Comp Aided Design, Div Prod & Prod Dev, S-97187 Lulea, Sweden
[2] Lulea Univ Technol, Dept Engn Sci & Math, Fluid Mech, Div Fluid & Expt Mech, S-97187 Lulea, Sweden
关键词
wind turbine; icing; simulation; aeroelastic behavior; CFD; PERFORMANCE; IDENTIFICATION; SIMULATION; AIRFOIL; LOAD; CFD;
D O I
10.3390/en12122422
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
Wind turbines installed in cold-climate regions are prone to the risks of ice accumulation which affects their aeroelastic behavior. The studies carried out on this topic so far considered icing in a few sections of the blade, mostly located in the outer part of the blade, and their influence on the loads and power production of the turbine are only analyzed. The knowledge about the influence of icing in different locations of the blade and asymmetrical icing of the blades on loads, power, and vibration behavior of the turbine is still not matured. To improve this knowledge, multiple simulation cases are needed to run with different ice accumulations on the blade considering structural and aerodynamic property changes due to ice. Such simulations can be easily run by automating the ice shape creation on aerofoil sections and two-dimensional (2-D) Computational Fluid Dynamics (CFD) analysis of those sections. The current work proposes such methodology and it is illustrated on the National Renewable Energy Laboratory (NREL) 5 MW baseline wind turbine model. The influence of symmetrical icing in different locations of the blade and asymmetrical icing of the blade assembly is analyzed on the turbine's dynamic behavior using the aeroelastic computer-aided engineering tool FAST. The outer third of the blade produces about 50% of the turbine's total power and severe icing in this part of the blade reduces power output and aeroelastic damping of the blade's flapwise vibration modes. The increase in blade mass due to ice reduces its natural frequencies which can be extracted from the vibration responses of the turbine operating under turbulent wind conditions. Symmetrical icing of the blades reduces loads acting on the turbine components, whereas asymmetrical icing of the blades induces loads and vibrations in the tower, hub, and nacelle assembly at a frequency synchronous to rotational speed of the turbine.
引用
收藏
页数:24
相关论文
共 50 条
[31]   Numerical investigation on aerodynamic performance of a novel vertical axis wind turbine with adaptive blades [J].
Wang, Ying ;
Sun, Xiaojing ;
Dong, Xiaohua ;
Zhu, Bing ;
Huang, Diangui ;
Zheng, Zhongquan .
ENERGY CONVERSION AND MANAGEMENT, 2016, 108 :275-286
[32]   Numerical Investigation of a Vertical Axis Tidal Turbine with Deforming Blades [J].
Bouzaher, Mohamed Taher ;
Hadid, Mohamed .
ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2017, 42 (05) :2167-2178
[33]   AEROELASTIC ANALYSIS OF NREL WIND TURBINE [J].
Lu, Yaozhi ;
Zhao, Fanzhou ;
Salles, Loic ;
Vandati, Mehdi .
PROCEEDINGS OF THE ASME TURBO EXPO: TURBINE TECHNICAL CONFERENCE AND EXPOSITION, 2017, VOL 9, 2017,
[34]   Numerical investigation of modeling frameworks and geometric approximations on NREL 5 MW wind turbine [J].
Siddiqui, M. Salman ;
Rasheed, Adil ;
Tabib, Mandar ;
Kvamsdal, Trond .
RENEWABLE ENERGY, 2019, 132 :1058-1075
[35]   NUMERICAL ANALYSIS OF WIND TURBINE BLADES MANUFACTURED FROM COMPOSITE MATERIALS AT DIFFERENT VELOCITIES AND ARRANGEMENTS [J].
Jaber, Haneen M. ;
Shams, Ouf A. ;
Majdi, Hasan S. ;
Abdullah, Atheer Raheem ;
Habeeb, Laith J. .
JOURNAL OF ENGINEERING SCIENCE AND TECHNOLOGY, 2023, :1-17
[36]   Numerical optimization of the asymmetric blades mounted on a vertical axis cross-flow wind turbine [J].
Jafaryar, M. ;
Kamrani, R. ;
Gorji-Bandpy, M. ;
Hatami, M. ;
Ganji, D. D. .
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2016, 70 :93-104
[37]   Investigation of performance of small wind turbine blades with winglets [J].
Kulak, Michal ;
Lipian, Michal ;
Zawadzki, Karol .
INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2021, 31 (02) :629-640
[38]   Aerodynamic shape optimization of wind turbine rotor blades considering aeroelastic deformation effect [J].
Dong Ok Yu ;
Hak Min Lee ;
Oh Joon Kwon .
Journal of Mechanical Science and Technology, 2016, 30 :705-718
[39]   Influence of Icing on the Modal Behavior of Wind Turbine Blades [J].
Gantasala, Sudhakar ;
Luneno, Jean-Claude ;
Aidanpaa, Jan-Olov .
ENERGIES, 2016, 9 (11)
[40]   Aerodynamic shape optimization of wind turbine rotor blades considering aeroelastic deformation effect [J].
Yu, Dong Ok ;
Lee, Hak Min ;
Kwon, Oh Joon .
JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2016, 30 (02) :705-718