Skip to main content

Research Repository

Advanced Search

Nonlinear frequency domain solution method for aerodynamic and aeromechanical analysis of wind turbines

Win Naung, Shine; Rahmati, Mohammad; Farokhi, Hamed

Nonlinear frequency domain solution method for aerodynamic and aeromechanical analysis of wind turbines Thumbnail


Authors

Mohammad Rahmati

Hamed Farokhi



Abstract

The aerodynamic simulations of wind turbines are typically carried out using a steady inflow condition. However, the aerodynamics and aeroelasticity of wind turbine blades can be significantly affected by inflow wakes due to the environmental conditions or the presence of neighbouring wind turbines. In this paper, the effects of flow unsteadiness on the aerodynamics and aeroelasticity of the wind turbine rotor are investigated. It is found that the unsteadiness of the wake can have an impact on the aerodynamic flow field around the wind turbine rotor and it could also influence the aeroelasticity of the wind turbine. One of the distinctive features of this paper is the application of the highly efficient nonlinear frequency domain solution method for modelling harmonic disturbances for the aerodynamic and aeromechanical analysis of wind turbines. A test case wind turbine is selected for the aerodynamic and aeromechanical analysis as well as for the validation of the method used. The effects of different material properties along with a large vibration amplitude on the aeroelasticity parameter known as aerodynamic damping of the wind turbine blade are also investigated in the present work. Compared to the conventional time domain solution methods, which require prohibitively large computational cost for modelling and solving aerodynamics and aeroelasticity of wind turbines, the proposed frequency domain solution method can reduce the computational cost by one to two orders of magnitude.

Citation

Win Naung, S., Rahmati, M., & Farokhi, H. (2021). Nonlinear frequency domain solution method for aerodynamic and aeromechanical analysis of wind turbines. Renewable Energy, 167, 66-81. https://doi.org/10.1016/j.renene.2020.11.046

Journal Article Type Article
Acceptance Date Nov 9, 2020
Online Publication Date Nov 16, 2020
Publication Date Apr 30, 2021
Deposit Date Oct 15, 2023
Publicly Available Date Oct 17, 2023
Journal Renewable Energy
Print ISSN 0960-1481
Electronic ISSN 1879-0682
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 167
Pages 66-81
DOI https://doi.org/10.1016/j.renene.2020.11.046
Public URL https://uwe-repository.worktribe.com/output/11177114

Files




You might also like



Downloadable Citations