LAPSE:2023.4075
Published Article

LAPSE:2023.4075
Numerical and Experimental Study of the Solo Duck Wave Energy Converter
February 22, 2023
Abstract
The Edinburgh Duck is one of the highly-efficient wave energy converters (WECs). Compared to the spine-connected Duck configuration, the solo Duck will be able to use the point absorber effect to enhance its power capture performance. In this paper, a 3D computational fluid dynamic (CFD) model is developed to predict the hydrodynamic performance of the solo Duck WEC in regular waveswithin a wide range ofwave steepness until the Duck capsizes. A set of experiments was designed to validate the accuracy of the CFD model. Boundary element method (BEM) simulations are also performed for comparison. CFD results agree well with experimental results and the main difference comes from the friction in the mechanical transmission system. CFD results also agree well with BEM results and differences appear at large wave steepness as a result of two hydrodynamic nonlinear factors: the nonlinear waveform and the vortex generation process. The influence of both two nonlinear factors iscombined to be quantitatively represented by the drag torque coefficient.The vortex generation process is found to cause a rapid drop of the pressure force due to the vortexes taking away the kinetic energy from the fluid.
The Edinburgh Duck is one of the highly-efficient wave energy converters (WECs). Compared to the spine-connected Duck configuration, the solo Duck will be able to use the point absorber effect to enhance its power capture performance. In this paper, a 3D computational fluid dynamic (CFD) model is developed to predict the hydrodynamic performance of the solo Duck WEC in regular waveswithin a wide range ofwave steepness until the Duck capsizes. A set of experiments was designed to validate the accuracy of the CFD model. Boundary element method (BEM) simulations are also performed for comparison. CFD results agree well with experimental results and the main difference comes from the friction in the mechanical transmission system. CFD results also agree well with BEM results and differences appear at large wave steepness as a result of two hydrodynamic nonlinear factors: the nonlinear waveform and the vortex generation process. The influence of both two nonlinear factors iscombined to be quantitatively represented by the drag torque coefficient.The vortex generation process is found to cause a rapid drop of the pressure force due to the vortexes taking away the kinetic energy from the fluid.
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Keywords
computational fluid dynamic, experiment, hydrodynamic nonlinearity, solo Duck, wave steepness
Subject
Suggested Citation
Wu J, Yao Y, Sun D, Ni Z, Göteman M. Numerical and Experimental Study of the Solo Duck Wave Energy Converter. (2023). LAPSE:2023.4075
Author Affiliations
Wu J: School of Mechanical Engineering, Southeast University, Nanjing 211189, Jiangsu, China
Yao Y: Shenzhen Graduate School, Harbin Institute of Technology, Shenzhen 518055, Guangdong, China
Sun D: School of Mechanical Engineering, Southeast University, Nanjing 211189, Jiangsu, China
Ni Z: School of Mechanical Engineering, Southeast University, Nanjing 211189, Jiangsu, China
Göteman M: Department of Engineering Science, Uppsala University, 75121 Uppsala, Sweden
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Yao Y: Shenzhen Graduate School, Harbin Institute of Technology, Shenzhen 518055, Guangdong, China
Sun D: School of Mechanical Engineering, Southeast University, Nanjing 211189, Jiangsu, China
Ni Z: School of Mechanical Engineering, Southeast University, Nanjing 211189, Jiangsu, China
Göteman M: Department of Engineering Science, Uppsala University, 75121 Uppsala, Sweden
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Journal Name
Energies
Volume
12
Issue
10
Article Number
E1941
Year
2019
Publication Date
2019-05-21
ISSN
1996-1073
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Original Submission
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PII: en12101941, Publication Type: Journal Article
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LAPSE:2023.4075
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https://doi.org/10.3390/en12101941
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