LAPSE:2023.4034
Published Article
LAPSE:2023.4034
Reducing Tower Fatigue through Blade Back Twist and Active Pitch-to-Stall Control Strategy for a Semi-Submersible Floating Offshore Wind Turbine
Dawn Ward, Maurizio Collu, Joy Sumner
February 22, 2023
Abstract
The necessity of producing more electricity from renewable sources has been driven predominantly by the need to prevent irreversible climate chance. Currently, industry is looking towards floating offshore wind turbine solutions to form part of their future renewable portfolio. However, wind turbine loads are often increased when mounted on a floating rather than fixed platform. Negative damping must also be avoided to prevent tower oscillations. By presenting a turbine actively pitching-to-stall, the impact on the tower fore−aft bending moment of a blade with back twist towards feather as it approaches the tip was explored, utilizing the time domain FAST v8 simulation tool. The turbine was coupled to a floating semisubmersible platform, as this type of floater suffers from increased fore−aft oscillations of the tower, and therefore could benefit from this alternative control approach. Correlation between the responses of the blade’s flapwise bending moment and the tower base’s fore−aft moment was observed with this back-twisted pitch-to-stall blade. Negative damping was also avoided by utilizing a pitch-to-stall control strategy. At 13 and 18 m/s mean turbulent winds, a 20% and 5.8% increase in the tower axial fatigue life was achieved, respectively. Overall, it was shown that the proposed approach seems to be effective in diminishing detrimental oscillations of the power output and in enhancing the tower axial fatigue life.
Keywords
blade back twist, blade flapwise moment, floating offshore wind turbine (FOWT), negative damping, pitch-to-stall, tower axial fatigue life, tower fore–aft moments
Suggested Citation
Ward D, Collu M, Sumner J. Reducing Tower Fatigue through Blade Back Twist and Active Pitch-to-Stall Control Strategy for a Semi-Submersible Floating Offshore Wind Turbine. (2023). LAPSE:2023.4034
Author Affiliations
Ward D: Department of Energy and Power, Cranfield University, Cranfield, Bedfordshire MK43 0AL, UK
Collu M: Department of Naval Architecture, Ocean & Marine Engineering, University of Strathclyde, Henry Dyer Building, 100 Montrose Street, Glasgow G4 0LZ, UK [ORCID]
Sumner J: Centre for Thermal Energy Systems and Materials, Cranfield University, Cranfield, Bedfordshire MK43 0AL, UK
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Journal Name
Energies
Volume
12
Issue
10
Article Number
E1897
Year
2019
Publication Date
2019-05-18
ISSN
1996-1073
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Original Submission
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PII: en12101897, Publication Type: Journal Article
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LAPSE:2023.4034
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https://doi.org/10.3390/en12101897
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