Influence of Excitation by Idling Rotor on Wind Turbine Ultimate Loads in Storm Conditions

Author:

Yoshida Shigeo12,Fekry M.13

Affiliation:

1. Institute of Ocean Energy, Saga University, 1 Honjomachi, Saga 840-8502, Japan

2. Research Institute for Applied Mechanics, Kyushu University, 6-1 Kasugakoen, Kasuga, Fukuoka 816-8580, Japan

3. Department of Electrical Power and Machine Engineering, Zagazig University, Zagazig 44519, Egypt

Abstract

Typical large scale pitch-controlled wind turbines idle their rotors during storm conditions. The design loads of wind turbines are calculated by aeroelastic simulations under various conditions. These include grid loss and failures, which can increase rotor speed and excite the first-mode of the tower bending. In this study, the influences of self-excitation by the idling rotor on the ultimate loads in storm conditions were investigated. Aeroelastic simulations were conducted for a three-bladed 5 MW upwind turbine as an example, under steady and extreme turbulent wind conditions according to the international design standard IEC61400-1 ed.4. As a result, we confirmed that yaw misalignment increases the idling rotor speed and 6P, second order harmonics of blade passing frequency, excites the first-mode tower bending, which can generate a large load on the tower. Pitch stick can increase the rotor speed but not as noticeably as yaw error. Although no clear provisions exist in wind turbine design standards or guidelines for the self-excited vibration during wind turbine idling, these results indicate that conditions must be set that consider self-excited vibration.

Funder

Institute of Ocean Energy

Saga University

Publisher

MDPI AG

Reference10 articles.

1. International Electrotechnical Commission (2016). Wind Energy Generation Systems—Part 1: Design Requirements, IEC. [4th ed.]. IEC614001.

2. Totsuka, Y., Imamura, H., and Yde, A. (2016, January 15–17). Dynamic Behavior of Parked Wind Turbine at Extreme Wind Speed. Proceedings of the 1st International Symposium on Flutter and Its Application, Tokyo, Japan.

3. Aeroelastic Stability of Idling Wind Turbines;Wang;Wind Energy Sci.,2017

4. Technical Modeling Challenges for Large Idling Wind Turbines;Bangga;J. Phys. Conf. Ser.,2023

5. Lian, J., Zhou, H., and Dong, X. (2022). A Theoretical Approach for Resonance Analysis of Wind Turbines under 1P/3P Loads. Energies, 15.

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