z-logo
open-access-imgOpen Access
Aeroelastic multidisciplinary design optimization of a swept wind turbine blade
Author(s) -
Pavese Christian,
Tibaldi Carlo,
Zahle Frederik,
Kim Taeseong
Publication year - 2017
Publication title -
wind energy
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.743
H-Index - 92
eISSN - 1099-1824
pISSN - 1095-4244
DOI - 10.1002/we.2131
Subject(s) - aeroelasticity , structural engineering , turbine blade , multidisciplinary design optimization , turbine , wind power , aerodynamics , torsion (gastropod) , engineering , nacelle , engineering design process , control theory (sociology) , computer science , mechanical engineering , aerospace engineering , electrical engineering , multidisciplinary approach , medicine , social science , surgery , control (management) , artificial intelligence , sociology
Mitigating loads on a wind turbine rotor can reduce the cost of energy. Sweeping blades produces a structural coupling between flapwise bending and torsion, which can be used for load alleviation purposes. A multidisciplinary design optimization (MDO) problem is formulated including the blade sweep as a design variable. A multifidelity approach is used to confront the crucial effects of structural coupling on the estimation of the loads. During the MDO, ultimate and damage equivalent loads are estimated using steady‐state and frequency‐domain–based models, respectively. The final designs are verified against time‐domain full design load basis aeroelastic simulations to ensure that they comply with the constraints. A 10‐MW wind turbine blade is optimized by minimizing a cost function that includes mass and blade root flapwise fatigue loading. The design space is subjected to constraints that represent all the necessary requirements for standard design of wind turbines. Simultaneous aerodynamic and structural optimization is performed with and without sweep as a design variable. When sweep is included in the MDO process, further minimization of the cost function can be obtained. To show this achievement, a set of optimized straight blade designs is compared to a set of optimized swept blade designs. Relative to the respective optimized straight designs, the blade mass of the swept blades is reduced of an extra 2% to 3% and the blade root flapwise fatigue damage equivalent load by a further 8%.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here