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  4. Near wake hydrodynamics and structural design of a single foil cycloidal rotor in regular waves
 
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Near wake hydrodynamics and structural design of a single foil cycloidal rotor in regular waves

Citation Link: https://doi.org/10.15480/882.5007
Publikationstyp
Journal Article
Date Issued
2023-04
Sprache
English
Author(s)
Arredondo-Galeana, Abel  
Olbert, Gerrit Alexander  
Shi, Weichao  
Brennan, Feargal  
Institut
Fluiddynamik und Schiffstheorie M-8  
TORE-DOI
10.15480/882.5007
TORE-URI
http://hdl.handle.net/11420/15023
Journal
Renewable Energy  
Volume
206
Start Page
1020
End Page
1035
Citation
Renewable Energy 206: 1020-1035 (2023)
Publisher DOI
10.1016/j.renene.2023.02.068
Scopus ID
2-s2.0-85149373427
Publisher
Elsevier
Peer Reviewed
true
We present a hydrodynamic and structural model to design a single foil wave cycloidal rotor in regular waves. The hydrodynamic part considers potential flow and represents the foil as a point vortex. Unsteady effects are accounted for through Theodorsen's function. The structural part utilises beam theory to compute the bending moments and stresses on the foil of the cyclorotor. The validity of the hydrodynamic model is explored with the aid of CFD, and the CFD results are bench marked versus experimental measurements. Results show that the hydrodynamic model estimates the mean radial loading on the foil within 20%–25% in attached flow conditions, whilst it is accurate to predict the mean tangential loading only when operating close to stall, at maximum lift conditions. Because the optimal structural operation of the rotor is in attached flow conditions, and close to stall, we utilise the coupled model to design a rotor that operates optimally for a range of different sea conditions. We find that with careful dimensioning of the radius and span, power extraction in regular waves can be optimised, whilst the structural penalty is kept constant at the allowable stress level.
Subjects
Attached and vortical flow
Beam theory
Potential flow
Structural design
Wave cycloidal rotor
Wave energy converters
DDC Class
600: Technik
620: Ingenieurwissenschaften
670: Industrielle Fertigung
Funding(s)
Development of a novel wave energy converter based on hydrodynamic lift forces  
Publication version
publishedVersion
Lizenz
https://creativecommons.org/licenses/by/4.0/
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