Optimal Control for Wind Turbine Wake Mixing on Floating Platforms

Maarten J. van den Broek*, Daniel van den Berg*, Benjamin Sanderse, Jan Willem van Wingerden*

*Corresponding author for this work

Research output: Contribution to journalConference articleScientificpeer-review

4 Citations (SciVal)
38 Downloads (Pure)

Abstract

Dynamic induction control is a wind farm flow control strategy that utilises wind turbine thrust variations to accelerate breakdown of the aerodynamic wake and improve downstream turbine performance. However, when floating wind turbines are considered, additional dynamics and challenges appear that make optimal control difficult. In this work, we propose an adjoint optimisation framework for non-linear economic model-predictive control, which utilises a novel coupling of an existing aerodynamic wake model to floating platform hydrodynamics. Analysis of the frequency response for the coupled model shows that it is possible to achieve wind turbine thrust variations without inducing large motion of the rotor. Using economic model-predictive control, we find dynamic induction results that lead to an improvement of 7 % over static induction control, where the dynamic controller stimulates wake breakdown with only small variations in rotor displacement. This novel model formulation provides a starting point for the adaptation of dynamic wind farm flow control strategies for floating wind turbines.

Original languageEnglish
Pages (from-to)7656-7661
Number of pages6
JournalIFAC-PapersOnLine
Volume56
Issue number2
DOIs
Publication statusPublished - 2023
Event22nd IFAC World Congress - Yokohama, Japan
Duration: 9 Jul 202314 Jul 2023

Keywords

  • floating wind turbines
  • non-linear predictive control
  • optimal control of hybrid systems
  • wind energy
  • wind farm control

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