Along-the-path exponential integration for Floquet stability analysis of wind turbines
Date
2022Version
Acceso abierto / Sarbide irekia
Type
Contribución a congreso / Biltzarrerako ekarpena
Version
Versión publicada / Argitaratu den bertsioa
Impact
|
10.1088/1742-6596/2265/3/032026
Abstract
Traditionally, stability assessment of wind turbines has been performed by
eigenanalysis of the azimuthally-averaged linearized system after applying the Multi-Blade
Coordinate (MBC) transformation. However, due to internal or external anisotropy, the MBC
transform does not produce an exact Linear Time-Invariant (LTI) system, and a Floquet analysis
is required to capture the influence of all ...
[++]
Traditionally, stability assessment of wind turbines has been performed by
eigenanalysis of the azimuthally-averaged linearized system after applying the Multi-Blade
Coordinate (MBC) transformation. However, due to internal or external anisotropy, the MBC
transform does not produce an exact Linear Time-Invariant (LTI) system, and a Floquet analysis
is required to capture the influence of all periodic terms, leading to a more accurate stability
analysis. In this paper exponential integration methods that use system linearizations at
different blade azimuth positions are used to integrate the perturbed system state and compute
the Floquet monodromy matrix. The proposed procedure is assessed for a simple 6 DOF wind
turbine model and a more complex aeroelastic model of a 5MW onshore wind turbine. The
defined along-the-path or moving-point exponential integrator is found to be the suitable in
order to perform a Floquet stability analysis even using a coarse linearization grid. [--]
Subject
Wind turbines,
Floquet analysis,
Stability,
Exponential integration
Publisher
IOP Publishing
Published in
Journal of Physics: Conference Series 2265 (2022) 032026
Description
Trabajo presentado a The Science of Making Torque from Wind (TORQUE 2022), Delft (Holanda)
Departament
Universidad Pública de Navarra. Departamento de Ciencias /
Nafarroako Unibertsitate Publikoa. Zientziak Saila /
Universidad Pública de Navarra/Nafarroako Unibertsitate Publikoa. Institute of Smart Cities - ISC
Publisher version
Sponsorship
This work has been funded by Gobierno de Navarra’s call “Convocatoria 2020 de ayudas a
centros tecnológicos y organismos de investigación para la realización de proyectos de I+D
colaborativos” under the project PC001-002 AdaptFoil3D II.