Individual Blade Pitch Control for the Controls Advanced Research Turbine (CART)

Author:

Stol Karl A.1,Zhao Wenxin1,Wright Alan D.2

Affiliation:

1. Department of Mechanical Engineering, The University of Auckland, Private Bag 92019, New Zealand

2. National Renewable Energy Laboratory, 1618 Cole Boulevard, Golden, CO 80401-3393

Abstract

Pitching the individual blades of a horizontal-axis wind turbine allows control of asymmetric aerodynamic loads, which in turn influences structural loads in the nonrotating frame such as tower side-side bending. These loads are not easily controlled by traditional collective pitch algorithms. This paper presents the design of individual pitch control systems for implementation on the Controls Advanced Research Turbine (CART) in Colorado to verify controller performance for load attenuation. The control designs are based on linear time-periodic state-space models of the turbine and use optimal control methods for gain calculation. Comparisons are made between new individual pitch, new collective pitch, and baseline controller performance in both above rated and below rated wind conditions. Results from simulations show the potential of individual pitch to reduce tower side-side fatigue damage in above rated wind speeds (by 70% compared to baseline control) but with no improvement over collective pitch in below rated wind speeds. Fatigue load reductions in tower fore-aft, shaft torsion, and blade flap are also observed. From 13h of field testing, both collective and individual pitch controllers achieve a reduction in fatigue damage. However, the superior performance of individual pitch control observed in simulation was not verified by the field test results.

Publisher

ASME International

Subject

Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment

Reference14 articles.

1. Independent Pitch Control using Rotor Position Feedback for Wind-Shear and Gravity Fatigue Reduction in a Wind Turbine;Trudnowski

2. Individual Blade Pitch Control for Load Reduction;Bossanyi;Wind Energy

3. Active Load Reduction using Individual Pitch, Based on Local Blade Flow Measurements;Larsen;Wind Energy

4. Stol, K. A. , 2001, “Dynamics Modeling and Periodic Control of Horizontal-Axis Wind Turbines,” Ph.D. Thesis, Dept. Aerospace Eng. Sciences, University of Colorado at Boulder, Boulder, CO.

5. Disturbance Tracking and Blade Load Control of Wind Turbines in Variable-Speed Operation;Stol

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