A parametric study of coupled-mode flutter for MW-size wind turbine blades

被引:30
|
作者
Pourazarm, Pariya [1 ]
Modarres-Sadeghi, Yahya [1 ]
Lackner, Matthew [1 ]
机构
[1] Univ Massachusetts, Dept Mech & Ind Engn, Amherst, MA 01003 USA
关键词
blade instability; coupled-mode flutter; MW-size;
D O I
10.1002/we.1847
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
With the increasing size of offshore wind turbine rotors, the design criteria used for the blades may also evolve. Current offshore technology utilizes three relatively stiff blades in an upwind configuration. With the goal of minimizing the mass, there is an interest in the lightweight rotors that instead utilize two flexible blades oriented downwind. These longer blades are more flexible and thus susceptible to experience flow-induced instability. Coupled-mode flutter is one of the destructive aeroelastic instabilities that can occur in flexible structures subjected to aerodynamic loading. Because of variation in one of the system parameters, e.g., flow velocity, structural modes coalesce at a critical flow velocity, and coupled-flutter occurs. In the present work, a parametric study is conducted in order to study the influence of the natural frequencies in the torsional and flapwise directions on the critical flutter speed for wind turbine blades. Three MW-size wind turbine blades are studied using a three-dimensional blade model, which includes coupled flapwise and torsional displacements. The results show that the three blades have very similar behavior as the system parameters vary. It is shown that the first torsional natural frequency and the ratio of the first torsional natural frequency to the first flapwise natural frequency are the most critical parameters affecting the onset of instability. Critical flutter speeds even lower than the blade rated speed can be observed for blades with low torsional natural frequencies. Copyright (c) 2015 John Wiley & Sons, Ltd.
引用
下载
收藏
页码:497 / 514
页数:18
相关论文
共 50 条
  • [1] Study on coupled mode flutter parameters of large wind turbine blades
    Zhuang, Yong
    Yuan, Guangming
    SCIENTIFIC REPORTS, 2024, 14 (01):
  • [2] Sustainable vacuum-infused thermoplastic composites for MW-size wind turbine blades - Preliminary design and manufacturing issues
    van Rijswijk, K
    Joncas, S
    Bersee, HEN
    Bergsma, OK
    Beukers, A
    JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 2005, 127 (04): : 570 - 580
  • [3] Time domain flutter analysis of bend-twist coupled large composite wind turbine blades: a parametric study
    Shakya, Praveen
    Sunny, Mohammed Rabius
    Maiti, Dipak Kumar
    MECHANICS BASED DESIGN OF STRUCTURES AND MACHINES, 2022, 50 (11) : 4048 - 4070
  • [4] Flutter study of flapwise bend-twist coupled composite wind turbine blades
    Farsadi, Touraj
    Kayran, Altan
    WIND AND STRUCTURES, 2021, 32 (03) : 267 - 281
  • [5] PARAMETRIC STUDY OF COMPOSITE WIND TURBINE BLADES
    Kim, T.
    Branner, K.
    Hansen, A. M.
    COMPOSITE MATERIALS FOR STRUCTURAL PERFORMANCE: TOWARDS HIGHER LIMITS, 2011, : 339 - 350
  • [6] Experimental evidence of coupled-mode flutter in a two-meter-long non-rotating wind turbine blade
    Boersma, Pieter
    Benner, Bridget
    Currier, Todd
    Modarres-Sadeghi, Yahya
    JOURNAL OF FLUIDS AND STRUCTURES, 2022, 112
  • [7] FLUTTER OF DARRIEUS WIND TURBINE BLADES.
    Ham, Norman D.
    NASA Conference Publication, 1977, (2034): : 77 - 93
  • [8] Transient growth before coupled-mode flutter
    Schmid, PJ
    de Langre, E
    JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2003, 70 (06): : 894 - 901
  • [9] VORTEX GENERATORS FOR WIND TURBINE BLADES: A COMBINED WIND TUNNEL AND WIND TURBINE PARAMETRIC STUDY
    Mueller-Vahl, Hanns
    Pechlivanoglou, Georgios
    Nayeri, C. N.
    Paschereit, C. O.
    PROCEEDINGS OF THE ASME TURBO EXPO 2012, VOL 6, 2012, : 899 - 914
  • [10] Transient growth before coupled-mode flutter
    Schmid, P
    de Langre, E
    PROCEEDINGS OF THE 5TH INTERNATIONAL SYMPOSIUM ON FLUID STRUCTURE INTERACTION, AEROELASTICITY, FLOW INDUCED VIBRATION AND NOISE, PTS A AND B, 2002, : 1055 - 1064