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Basic Configuration Design and Performance Prediction of an 1 MW Wind Turbine Blade

1 MW 풍력터빈 블레이드 형상기본설계 및 성능해석

  • 김범석 (한국선급 에너지.산업기술센터) ;
  • 김만응 (한국선급 에너지.산업기술센터) ;
  • 이영호 (한국해양대학교 기계.정보공학부)
  • Published : 2008.10.01

Abstract

In modem wind power system of large capacity above 1MW, horizontal axis wind turbine(HAWT) is a common type. And, the optimum design of wind turbine to guarantee excellent power performance and its reliability in structure and longevity is a key technology in wind Industry. In this study, mathematical expressions based upon the conventional BEMT(blade element momentum theory) applying to basic 1MW wind turbine blade configuration design. Power coefficient and related flow parameters, such as Prandtl's tip loss coefficient, tangential and axial flow induction factors of the wind turbine analyzed systematically. X-FOIL was used to acquire lift and drag coefficients of the 2-D airfoils and we use Viterna-Corrigan formula to interpolate the aerodynamic characteristics in post-stall region. In order to predict the performance characteristics of the blade, a performance analysis carried out by BEMT method. As a results, axial and tangential flow factors, angle of attack, power coefficient investigated in this study.

Keywords

References

  1. Guanpeng Xu, 2001, "Computational Studies of Horizontal Axis Wind Turbines," Doctoral dissertation, Georgia Institute of Technology
  2. Betz A., 1919, "Schraubenpropeller mit gerings term energieverlust," Gottinger Nachr
  3. Tony Burton, David Sharpe, Nick Jenkins, Ervin Bossanyi, 2001, "Wind energy handbook," John Willy&Sons, pp. 73-74
  4. R.B. Langtry, J.Gola, F.R. Menter. 2006, "Predicting 2D Airfoil and 3D Wind Turbine Rotor Performance using a Transition Model for General CFD Codes," AIAA 2006-0395
  5. T. Tanger, David Kokurek, 2003, Wind turbine post stall airfoil performance characteristics guidelines for blade element momentum methods, NREL/CP-500-36900

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  2. Optimization of 5-MW wind turbine blade using fluid structure interaction analysis vol.31, pp.2, 2017, https://doi.org/10.1007/s12206-017-0124-2