Intracycle RPM control for vertical axis wind turbines

Author:

Sadman Sakib Mohammad1,Todd Griffith D.1ORCID,Hossain Sanower1,Bayat Saeid2ORCID,Allison James T.2ORCID

Affiliation:

1. UTD Center for Wind Energy, Department of Mechanical Engineering The University of Texas at Dallas Richardson Texas USA

2. Department of Industrial and Enterprise Systems Engineering University of Illinois at Urbana‐Champaign Champaign Illinois USA

Abstract

AbstractThe wind energy market is currently dominated by horizontal axis wind turbines (HAWTs); however, vertical axis wind turbines (VAWTs) are emerging as a design alternative, especially for deep‐water offshore siting due to their low center of gravity, ease of access to drivetrain components, and overall simplicity. Due to the absence of a pitch mechanism in large‐scale Darrieus VAWTs, stall control has often been used to manage power and loads. Introducing a pitching mechanism in H‐type VAWTs has been studied, but this diminishes the mechanical simplicity advantage, and the use of a pitching mechanism in a large‐scale Darrieus‐type VAWT is not practical. This work examines an innovative, alternative method to control the rotor dynamics of a large‐scale 5 MW VAWT to maximize power while constraining loads without introducing any new or complex mechanical elements. This control strategy is termed intracycle revolution per minute (RPM) control, where the rotational speed of the turbine is allowed to vary in an optimal fashion with the azimuthal location of blades as opposed to typical constant RPM operation. An optimization framework is formulated for an open‐loop optimal control problem and solved to maximize power subject to constraints on aerodynamic design loads. Results are presented to demonstrate the benefits and the performance limits of intracycle RPM control for large‐scale 5 MW Darrieus VAWTs, namely, (1) power production (quantified in terms of AEP) that can be increased subject to baseline load limits and (2) opportunities to significantly increase AEP or decrease loads via intracycle RPM control that are examined for both two‐bladed and three‐bladed VAWTs.

Funder

Advanced Research Projects Agency - Energy

Publisher

Wiley

Subject

Renewable Energy, Sustainability and the Environment

Reference56 articles.

1. EnnisBL GriffithDT.System levelized cost of energy analysis for floating offshore vertical‐axis wind turbines Albuquerque NM (United States) Sandia National Lab.(SNL‐NM);2018. https://www.osti.gov/biblio/1466530

2. GriffithDT BaroneMF PaquetteJ OwensBC BullDL Simao‐FerrieraC GoupeeA FowlerM.Design studies for deep‐water floating offshore vertical axis wind turbines Albuquerque NM (United States) Sandia National Lab.(SNL‐NM);2018.https://www.osti.gov/biblio/1459118

3. Simão FerreiraCJ.The near wake of the VAWT: 2D and 3D views of the VAWT aerodynamics.Ph.D. Thesis: Delft Netherlands;2009.http://resolver.tudelft.nl/uuid:ff6eaf63-ac57-492e-a680-c7a50cf5c1cf

4. Potential order-of-magnitude enhancement of wind farm power density via counter-rotating vertical-axis wind turbine arrays

5. DyachukE GoudeA LalanderE BernhoffH.Influence of Incoming flow direction on spacing between vertical axis marine current turbines placed in a row. In: International Conference on Offshore Mechanics and Arctic Engineering Ocean Space Utilization; Ocean Renewable Energy vol. 7 Ocean Renewable Energy;2012:285‐291. doi:10.1115/OMAE2012‐83347

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