Active Edgewise Blade Damping Control of Large Wind Turbines by Using the Pitch Controller and an Interval Observer

Author:

Chamoli Suryans1,Gambier Adrian2ORCID

Affiliation:

1. Institut für Physik, Carl von Ossietzky University of Oldenburg, 26129 Oldenburg, Germany

2. Fraunhofer Gesellschaft, zur Förderung der Angewandten Forschung e. V., 27572 Bremerhaven, Germany

Abstract

Large wind turbines have typically poorly damped structures. Hence, the absence of damping leads to aeroelastic oscillations, and the operational rotor speed can approach the critical rotor speed. By using damping injection, the control system can actively introduce some additional damping. In the present work, a control approach to reduce oscillations of the rotor blades in the edgewise direction is proposed. The concept is based on the damping injection mechanism, and an additional level of safety is obtained by introducing the Dynamic Safety Margin (DSM) in the control law. The feedback control scheme requires some unmeasurable variables. This aspect is covered by using an interval observer. The control approach is tested by using simulations on a high-definition model implemented in an aeroservoelastic code. Simulation results are very satisfactory and promising for future experiments using hardware-in-the-loop equipment.

Funder

Federal Ministry of Economic Affairs and Climate Action

Publisher

MDPI AG

Subject

Control and Optimization,Control and Systems Engineering

Reference81 articles.

1. Aeroelastic instability problems for wind turbines;Hansen;Wind. Energy,2007

2. Field validation of the stability limit of a multi MW turbine;Kragh;J. Phys. Conf. Ser.,2016

3. Jacobson, D., Laninga, J., and Brandt, R. (2006, January 1–4). Wind interconnection in Manitoba. Proceedings of the CIGRÉ Canada Conference on Power Systems, Montreal, QC, Canada.

4. Role of flexible alternating current transmission systems devices in mitigating grid fault-induced vibration of wind turbines;Basu;Wind. Energy,2014

5. Actuator control of edgewise vibrations in wind turbine blades;Staino;J. Sound Vib.,2012

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