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  4. Experimental and numerical investigation of a taut-moored wave energy converter: a validation of simulated mooring line forces
 
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Experimental and numerical investigation of a taut-moored wave energy converter: a validation of simulated mooring line forces

Journal
Ships and Offshore Structures
Journal Volume
15
Journal Issue
S1
Pages
S55-S69
Date Issued
2021
Author(s)
Yang S.-H
Ringsberg J.W
Johnson E
SHUN-HAN YANG  
DOI
10.1080/17445302.2020.1772667
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85086648455&doi=10.1080%2f17445302.2020.1772667&partnerID=40&md5=123c52acb059819571afd9941910c34d
https://scholars.lib.ntu.edu.tw/handle/123456789/598319
Abstract
A reliable simulation model to calculate the motion and force responses of wave energy converters (WECs) is imperative to ensure the reliability and long-term performance of WEC systems; these aspects are fundamental to achieving full commercialisation of wave energy. A simulation model was developed and validated concerning the simulated WEC buoy motions in a previous study; this study validated the mooring force calculations for the same model. The example WEC system comprises a buoy, a power take-off (PTO) system, and a three-leg mooring system wherein each leg is divided into two taut segments joined by a submerged float. A 1:20 physical model was built and tested in the Deepwater Offshore Basin at Shanghai Jiao Tong University. Numerical models were developed to simulate the coupled hydrodynamic and structural responses of the WEC system, primarily using potential flow theory, the boundary element method, the finite element method, and the Morison equation. The simulated and measured axial force results at the top ends of the six mooring segments were compared; the results agreed best in the lower segments of each mooring leg and in the moorings on the downwind side because of the PTO system uncertainties and the uncalibrated damping in the numerical model. Nonetheless, the numerical model reasonably predicted the moorings’ accumulated fatigue damage, demonstrating that the model can be reliably used for mooring structural analyses. The study also used the validated numerical model to simulate a full-scale WEC system installed in Runde, Norway. A comparison of the results from the full-scale measurements and simulations shows that the numerical simulation model exhibited a good predictive capability for the mooring forces of the full-scale WEC system. ? 2020 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group.
Subjects
Experiments
model validation
mooring forces
numerical simulation
taut mooring
wave energy converter
Boundary element method
Mooring
Mooring cables
Numerical methods
Offshore oil well production
Power takeoffs
Sailing vessels
Wave energy conversion
Accumulated fatigue damage
Full scale measurements
Long term performance
Numerical investigations
Potential-flow theory
Predictive capabilities
System uncertainties
Wave energy converters
Numerical models
SDGs

[SDGs]SDG7

Type
journal article

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