Hydroelasticity and load alleviation of tidal current turbine blades

Increasing demand for renewable energy has led to rapid developments in tidal power technologies. In this work, a hydro-servo-elastic model of a tidal current turbine is analysed and load alleviation methods implemented. The hydroelastic model uses a composite beam model coupled with a medium fideli...

Full description

Saved in:
Bibliographic Details
Main Author: Lim, Jing Jie
Other Authors: Ooi Kim Tiow
Format: Final Year Project
Language:English
Published: 2016
Subjects:
Online Access:http://hdl.handle.net/10356/69422
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-69422
record_format dspace
spelling sg-ntu-dr.10356-694222023-03-04T19:05:26Z Hydroelasticity and load alleviation of tidal current turbine blades Lim, Jing Jie Ooi Kim Tiow School of Mechanical and Aerospace Engineering Ng Bing Feng DRNTU::Engineering Increasing demand for renewable energy has led to rapid developments in tidal power technologies. In this work, a hydro-servo-elastic model of a tidal current turbine is analysed and load alleviation methods implemented. The hydroelastic model uses a composite beam model coupled with a medium fidelity unsteady vortex-lattice method for hydrodynamics. The NREL 550kW tidal current turbine is simulated in a turbulent inflow field with a shear profile. Significant fluctuations in loads are found that may be detrimental to fatigue life of turbine blades. Passive and active load alleviation methods are implemented to reduce these fluctuations. Using passive bend-twist coupling, bending loads are significantly reduced by 23% spread across most frequencies. An active cyclic pitch control targeting the dominant load at 1P frequency resulted in a 24% reduction in root-bending moments. Although an active PID control was tested, the resulting 62.5% reduction in load was deemed unrealistic. Future tests are required to validate the results. The above work was also presented at the 3rd Asian Wave & Tidal Energy Conference (AWTEC) by the author. Bachelor of Engineering (Aerospace Engineering) 2016-12-29T06:55:54Z 2016-12-29T06:55:54Z 2016 Final Year Project (FYP) http://hdl.handle.net/10356/69422 en Nanyang Technological University 40 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering
spellingShingle DRNTU::Engineering
Lim, Jing Jie
Hydroelasticity and load alleviation of tidal current turbine blades
description Increasing demand for renewable energy has led to rapid developments in tidal power technologies. In this work, a hydro-servo-elastic model of a tidal current turbine is analysed and load alleviation methods implemented. The hydroelastic model uses a composite beam model coupled with a medium fidelity unsteady vortex-lattice method for hydrodynamics. The NREL 550kW tidal current turbine is simulated in a turbulent inflow field with a shear profile. Significant fluctuations in loads are found that may be detrimental to fatigue life of turbine blades. Passive and active load alleviation methods are implemented to reduce these fluctuations. Using passive bend-twist coupling, bending loads are significantly reduced by 23% spread across most frequencies. An active cyclic pitch control targeting the dominant load at 1P frequency resulted in a 24% reduction in root-bending moments. Although an active PID control was tested, the resulting 62.5% reduction in load was deemed unrealistic. Future tests are required to validate the results. The above work was also presented at the 3rd Asian Wave & Tidal Energy Conference (AWTEC) by the author.
author2 Ooi Kim Tiow
author_facet Ooi Kim Tiow
Lim, Jing Jie
format Final Year Project
author Lim, Jing Jie
author_sort Lim, Jing Jie
title Hydroelasticity and load alleviation of tidal current turbine blades
title_short Hydroelasticity and load alleviation of tidal current turbine blades
title_full Hydroelasticity and load alleviation of tidal current turbine blades
title_fullStr Hydroelasticity and load alleviation of tidal current turbine blades
title_full_unstemmed Hydroelasticity and load alleviation of tidal current turbine blades
title_sort hydroelasticity and load alleviation of tidal current turbine blades
publishDate 2016
url http://hdl.handle.net/10356/69422
_version_ 1759857458276204544