Effect of Platform Motion on Aerodynamic Performance and Aeroelastic Behavior of Floating Offshore Wind Turbine Blades
Abstract
:1. Introduction
2. Numerical Methods
2.1. Derivation of Structural Equations of Motion
2.2. Discretization Method
2.3. Aerodynamic Load Prediction
2.4. Coupling Methodology
3. Results and Discussion
3.1. Aeroelastic Analyses of Bottom-Fixed Wind Turbine Rotor Blades
3.2. Aerodynamic Loads of a Floating Offshore Wind Turbine with Rigid Rotor Blades
3.3. Aeroelastic Analyses of the Floating Offshore Wind Turbine
3.3.1. Consideration of Translational Platform Motions
3.3.2. Consideration of Rotational Platform Motions
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
Abbreviations
BEM | Blade Element Momentum theory |
CFD | Computational Fluid Dynamics |
CSD | Computational Structural Dynamics |
GDW | Generalized Dynamic Wake model |
NREL | National Renewable Energy Laboratory |
Thrust coefficient, | |
Power coefficient, | |
Amplitude of platform motion | |
Vertical distance between top of tower and rotational center of platform, | |
Vertical distance between top of tower and end of rotor shaft, | |
Tower height, | |
Overhang length, | |
Nodal displacement vector represented by 15 degrees of freedom | |
Blade span, | |
Position vector of hub center defined in the nacelle frame | |
Position vector of arbitrary point on deformed blade defined in the inertial frame | |
Position vector of arbitrary point on the deformed blade defined in the hub frame | |
Position vector of the bottom of nacelle defined in the tower frame | |
Position vector of the rotational center of the platform defined in the inertial frame | |
Position vector of the bottom of the tower defined in the tower frame | |
Transformation matrix from the inertial frame to the tower frame | |
Blade deformations in axial, edgewise (lead-lag), and flapwise directions, | |
Coordinate system defined at a rotating hub center (Rotating hub frame) | |
Coordinate system defined at a hub center (Hub frame) | |
Inertial coordinate system (Inertial frame) | |
Coordinate system defined at the bottom of nacelle (Nacelle frame) | |
Coordinate system defined at the bottom of the tower (Tower frame) | |
Coordinate system defined at the undeformed blade (Undeformed frame) | |
Magnitudes of translational platform motion along with , and axes, | |
Velocities of translational platform motion along with , and axes, | |
Accelerations of translational platform motion along with , and axes, | |
Shaft tilt angle, deg | |
Blade pre-cone angle, deg | |
Built-in pre-twist of blade, deg | |
Rotational angles of platform with respect to , and axes, | |
Angular velocities of platform with respect to , and axes, | |
Angular accelerations of platform with respect to , and axes, | |
Coordinate system defined at the deformed blade (Deformed frame) | |
Blade mass per unit volume, | |
Blade torsional deformation about deformed axis, | |
Rotor azimuth angle, | |
Angular velocity of the rotor, | |
Frequency of the platform motion, |
Blade | |
Deformed frame | |
Inertial frame | |
Induced downwash | |
Perpendicular direction | |
Radial direction | |
Tower frame | |
Tangential direction | |
Free-stream |
Gravitational loads | |
Aerodynamic loads |
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Rating | 5 MW |
---|---|
Rotor configuration | Upwind, three blades |
Rotor, Hub diameters | 126 m, 3 m |
Tower length () | 87.6 m |
Overhang length () | 5 m |
Shaft tilt angle () | 5˚ |
Pre-cone angle () | 2.5˚ |
Case 1 | Case 2 | Case 3 | Case 4 | |
---|---|---|---|---|
Amplitude () | 8 m | 8 m | 8 m | 8 m |
Frequency () | 0.127 rad/s | 0.246 rad/s | 0.500 rad/s | 0.770 rad/s |
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Kim, Y.; Kwon, O.J. Effect of Platform Motion on Aerodynamic Performance and Aeroelastic Behavior of Floating Offshore Wind Turbine Blades. Energies 2019, 12, 2519. https://doi.org/10.3390/en12132519
Kim Y, Kwon OJ. Effect of Platform Motion on Aerodynamic Performance and Aeroelastic Behavior of Floating Offshore Wind Turbine Blades. Energies. 2019; 12(13):2519. https://doi.org/10.3390/en12132519
Chicago/Turabian StyleKim, Youngjin, and Oh Joon Kwon. 2019. "Effect of Platform Motion on Aerodynamic Performance and Aeroelastic Behavior of Floating Offshore Wind Turbine Blades" Energies 12, no. 13: 2519. https://doi.org/10.3390/en12132519
APA StyleKim, Y., & Kwon, O. J. (2019). Effect of Platform Motion on Aerodynamic Performance and Aeroelastic Behavior of Floating Offshore Wind Turbine Blades. Energies, 12(13), 2519. https://doi.org/10.3390/en12132519