LAPSE:2023.35628
Published Article

LAPSE:2023.35628
Effect of Vertical Confinement and Blade Flexibility on Cross-Flow Turbines
May 23, 2023
Abstract
Both scientific and industrial communities have a growing interest in marine renewable energies. There is a wide variety of technologies in this domain, with different degrees of maturity. This study focuses on two models of a mast-free vertical axis Darrieus tidal turbine with the objective of characterizing the effect of vertical confinement, rotor configuration, and fluid−structure interactions on their performances in free-surface flows. The first model comprised four straight rigid blades maintained by circular flanges on both ends of the rotor and the second model is equipped with free-ended interchangeable blades attached to a single upper flange. Two configurations of the second model mounted with either rigid or flexible blades were used, first for comparison with the dual-flange turbine, then in order to address the effect of fluid−structure interactions on the turbine performances. While the single-flange models exhibit a significantly lower efficiency at all operating points, it is observed that the use of flexible blades tends to enhance turbine performances at low Reynolds numbers. The flow topology obtained from PIV measurement at selected operating points is discussed with respect to the performance of each turbine model in order to highlight the role of the dynamic stall and blade−vortex interactions.
Both scientific and industrial communities have a growing interest in marine renewable energies. There is a wide variety of technologies in this domain, with different degrees of maturity. This study focuses on two models of a mast-free vertical axis Darrieus tidal turbine with the objective of characterizing the effect of vertical confinement, rotor configuration, and fluid−structure interactions on their performances in free-surface flows. The first model comprised four straight rigid blades maintained by circular flanges on both ends of the rotor and the second model is equipped with free-ended interchangeable blades attached to a single upper flange. Two configurations of the second model mounted with either rigid or flexible blades were used, first for comparison with the dual-flange turbine, then in order to address the effect of fluid−structure interactions on the turbine performances. While the single-flange models exhibit a significantly lower efficiency at all operating points, it is observed that the use of flexible blades tends to enhance turbine performances at low Reynolds numbers. The flow topology obtained from PIV measurement at selected operating points is discussed with respect to the performance of each turbine model in order to highlight the role of the dynamic stall and blade−vortex interactions.
Record ID
Keywords
cross-flow turbine, fluid–structure interaction, marine renewable energy, particle image velocimetry, vertical axis turbine
Subject
Suggested Citation
Kara-Mostefa ML, Chatellier L, Thomas L. Effect of Vertical Confinement and Blade Flexibility on Cross-Flow Turbines. (2023). LAPSE:2023.35628
Author Affiliations
Kara-Mostefa ML: Institut PPRIME UPR 3346 CNRS, Université de Poitiers, ISAE-ENSMA, 86073 Poitiers, France
Chatellier L: Institut PPRIME UPR 3346 CNRS, Université de Poitiers, ISAE-ENSMA, 86073 Poitiers, France [ORCID]
Thomas L: Institut PPRIME UPR 3346 CNRS, Université de Poitiers, ISAE-ENSMA, 86073 Poitiers, France [ORCID]
Chatellier L: Institut PPRIME UPR 3346 CNRS, Université de Poitiers, ISAE-ENSMA, 86073 Poitiers, France [ORCID]
Thomas L: Institut PPRIME UPR 3346 CNRS, Université de Poitiers, ISAE-ENSMA, 86073 Poitiers, France [ORCID]
Journal Name
Energies
Volume
16
Issue
9
First Page
3693
Year
2023
Publication Date
2023-04-25
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en16093693, Publication Type: Journal Article
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Published Article

LAPSE:2023.35628
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https://doi.org/10.3390/en16093693
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[v1] (Original Submission)
May 23, 2023
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May 23, 2023
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https://psecommunity.org/LAPSE:2023.35628
Record Owner
Calvin Tsay
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