Experimental Study of a Moored Floating Oscillating Water Column Wave-Energy Converter and of a Moored Cubic Box

This paper describes experimental research on a floating moored Oscillating Water Column (OWC)-type Wave-Energy Converter (WEC) carried out in the wave flume of the Coastal Engineering Research Group of Ghent University. This research has been introduced to cover the existing data scarcity and knowl...

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Main Authors: Minghao Wu, Vasiliki Stratigaki, Peter Troch, Corrado Altomare, Tim Verbrugghe, Alejandro Crespo, Lorenzo Cappietti, Matthew Hall, Moncho Gómez-Gesteira
Format: Article
Language:English
Published: MDPI AG 2019-05-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/12/10/1834
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author Minghao Wu
Vasiliki Stratigaki
Peter Troch
Corrado Altomare
Tim Verbrugghe
Alejandro Crespo
Lorenzo Cappietti
Matthew Hall
Moncho Gómez-Gesteira
author_facet Minghao Wu
Vasiliki Stratigaki
Peter Troch
Corrado Altomare
Tim Verbrugghe
Alejandro Crespo
Lorenzo Cappietti
Matthew Hall
Moncho Gómez-Gesteira
author_sort Minghao Wu
collection DOAJ
description This paper describes experimental research on a floating moored Oscillating Water Column (OWC)-type Wave-Energy Converter (WEC) carried out in the wave flume of the Coastal Engineering Research Group of Ghent University. This research has been introduced to cover the existing data scarcity and knowledge gaps regarding response of moored floating OWC WECs. The obtained data will be available in the future for the validation of nonlinear numerical models. The experiment focuses on the assessment of the nonlinear motion and mooring-line response of a 1:25 floating moored OWC WEC model to regular waves. The OWC WEC model motion has 6 degrees of freedom and is limited by a symmetrical 4-point mooring system. The model is composed of a chamber with an orifice on top of it to simulate the power-take-off (PTO) system and the associated damping of the motion of the OWC WEC model. In the first place, the motion response in waves of the moored floating OWC WEC model is investigated and the water surface elevation in the OWC WEC chamber is measured. Secondly, two different mooring-line materials (iron chains and nylon ropes) are tested and the corresponding OWC WEC model motions and mooring-line tensions are measured. The performance of these two materials is similar in small-amplitude waves but different in large wave-amplitude conditions. Thirdly, the influence of different PTO conditions is investigated by varying the diameter of the top orifice of the OWC WEC model. The results show that the PTO damping does not affect the OWC WEC motion but has an impact on the water surface elevation inside the OWC chamber. In addition, an unbalanced mooring configuration is discussed. Finally, the obtained data for a moored cubic model in waves are presented, which is a benchmarking case for future validation purposes.
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spelling doaj.art-1bac140190d346148c582525abfc32eb2022-12-22T02:08:14ZengMDPI AGEnergies1996-10732019-05-011210183410.3390/en12101834en12101834Experimental Study of a Moored Floating Oscillating Water Column Wave-Energy Converter and of a Moored Cubic BoxMinghao Wu0Vasiliki Stratigaki1Peter Troch2Corrado Altomare3Tim Verbrugghe4Alejandro Crespo5Lorenzo Cappietti6Matthew Hall7Moncho Gómez-Gesteira8Department of Civil Engineering, Ghent University, Technologiepark 60, B-9052 Zwijnaarde, BelgiumDepartment of Civil Engineering, Ghent University, Technologiepark 60, B-9052 Zwijnaarde, BelgiumDepartment of Civil Engineering, Ghent University, Technologiepark 60, B-9052 Zwijnaarde, BelgiumDepartment of Civil Engineering, Ghent University, Technologiepark 60, B-9052 Zwijnaarde, BelgiumDepartment of Civil Engineering, Ghent University, Technologiepark 60, B-9052 Zwijnaarde, BelgiumEnvironmental Physics Laboratory, Universidade de Vigo, 36310 Pontevedra, Vigo, SpainDepartment of Civil Engineering, Università degli Studi di Firenze - UniFI, Via di Santa Marta 3, 50139 Florence, ItalySchool of Sustainable Design Engineering, University of Prince Edward Island, Charlottetown, PE C1A 4P3, CanadaEnvironmental Physics Laboratory, Universidade de Vigo, 36310 Pontevedra, Vigo, SpainThis paper describes experimental research on a floating moored Oscillating Water Column (OWC)-type Wave-Energy Converter (WEC) carried out in the wave flume of the Coastal Engineering Research Group of Ghent University. This research has been introduced to cover the existing data scarcity and knowledge gaps regarding response of moored floating OWC WECs. The obtained data will be available in the future for the validation of nonlinear numerical models. The experiment focuses on the assessment of the nonlinear motion and mooring-line response of a 1:25 floating moored OWC WEC model to regular waves. The OWC WEC model motion has 6 degrees of freedom and is limited by a symmetrical 4-point mooring system. The model is composed of a chamber with an orifice on top of it to simulate the power-take-off (PTO) system and the associated damping of the motion of the OWC WEC model. In the first place, the motion response in waves of the moored floating OWC WEC model is investigated and the water surface elevation in the OWC WEC chamber is measured. Secondly, two different mooring-line materials (iron chains and nylon ropes) are tested and the corresponding OWC WEC model motions and mooring-line tensions are measured. The performance of these two materials is similar in small-amplitude waves but different in large wave-amplitude conditions. Thirdly, the influence of different PTO conditions is investigated by varying the diameter of the top orifice of the OWC WEC model. The results show that the PTO damping does not affect the OWC WEC motion but has an impact on the water surface elevation inside the OWC chamber. In addition, an unbalanced mooring configuration is discussed. Finally, the obtained data for a moored cubic model in waves are presented, which is a benchmarking case for future validation purposes.https://www.mdpi.com/1996-1073/12/10/1834moored floating wave-energy converteroscillating water columnwave flume experimentnonlinear wave condition6 degrees of freedom motionmooring-line tension
spellingShingle Minghao Wu
Vasiliki Stratigaki
Peter Troch
Corrado Altomare
Tim Verbrugghe
Alejandro Crespo
Lorenzo Cappietti
Matthew Hall
Moncho Gómez-Gesteira
Experimental Study of a Moored Floating Oscillating Water Column Wave-Energy Converter and of a Moored Cubic Box
Energies
moored floating wave-energy converter
oscillating water column
wave flume experiment
nonlinear wave condition
6 degrees of freedom motion
mooring-line tension
title Experimental Study of a Moored Floating Oscillating Water Column Wave-Energy Converter and of a Moored Cubic Box
title_full Experimental Study of a Moored Floating Oscillating Water Column Wave-Energy Converter and of a Moored Cubic Box
title_fullStr Experimental Study of a Moored Floating Oscillating Water Column Wave-Energy Converter and of a Moored Cubic Box
title_full_unstemmed Experimental Study of a Moored Floating Oscillating Water Column Wave-Energy Converter and of a Moored Cubic Box
title_short Experimental Study of a Moored Floating Oscillating Water Column Wave-Energy Converter and of a Moored Cubic Box
title_sort experimental study of a moored floating oscillating water column wave energy converter and of a moored cubic box
topic moored floating wave-energy converter
oscillating water column
wave flume experiment
nonlinear wave condition
6 degrees of freedom motion
mooring-line tension
url https://www.mdpi.com/1996-1073/12/10/1834
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