Back to Search
Start Over
Effect of Platform Motion on Aerodynamic Performance and Aeroelastic Behavior of Floating Offshore Wind Turbine Blades
- Source :
- Energies, Vol 12, Iss 13, p 2519 (2019), Energies; Volume 12; Issue 13; Pages: 2519
- Publication Year :
- 2019
- Publisher :
- MDPI AG, 2019.
-
Abstract
- In the present study, a numerical framework for predicting the aerodynamic performance and the aeroelastic behavior of floating offshore wind turbine rotor blades involving platform motion was developed. For this purpose, the aerodynamic and structural analyses were conducted simultaneously in a tightly coupled manner by exchanging the information about the aerodynamic loads and the elastic blade deformations at every time step. The elastic behavior of the turbine rotor blades was described by adopting a structural model based on the Euler-Bernoulli beam. The aerodynamic loads by the rotor blades were evaluated by adopting a blade element momentum theory. The numerical simulations were conducted when the platform of the wind turbine independently moves in each of the six degrees-of-freedom directions consisting of heave, sway, surge, roll, pitch, and yaw. It was observed that flexible blades exhibit complicated vibratory behaviors when they are excited by the aerodynamic, inertia, and gravitational forces simultaneously. It was found that the load variation caused by the platform surge or pitch motion has a significant influence on the flapwise and torsional deformations of the rotor blades. The torsional deformation mainly occurs in the nose-down direction, and results in a reduction of the aerodynamic loads. It was also found that the flapwise root bending moment is mainly influenced by the platform surge and pitch motions. On the other hand, the edgewise bending moment is mostly dictated by the gravitational force, but is not affected much by the platform motion.
- Subjects :
- Control and Optimization
Turbine blade
020209 energy
Blade element momentum theory
media_common.quotation_subject
Energy Engineering and Power Technology
02 engineering and technology
Inertia
01 natural sciences
Turbine
lcsh:Technology
010305 fluids & plasmas
law.invention
floating offshore wind turbine (FOWT)
platform motion
aerodynamics
aeroelasticity
elastic blade deformations
unsteady blade element momentum theory
Physics::Fluid Dynamics
law
0103 physical sciences
0202 electrical engineering, electronic engineering, information engineering
Electrical and Electronic Engineering
Engineering (miscellaneous)
media_common
Renewable Energy, Sustainability and the Environment
business.industry
Rotor (electric)
lcsh:T
Building and Construction
Aerodynamics
Structural engineering
Aeroelasticity
Bending moment
business
Geology
Energy (miscellaneous)
Subjects
Details
- Language :
- English
- ISSN :
- 19961073
- Volume :
- 12
- Issue :
- 13
- Database :
- OpenAIRE
- Journal :
- Energies
- Accession number :
- edsair.doi.dedup.....bf7c19d05e41ae9f264a06daf7f1f4fa