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Near trapped modes in long array of truncated circular cylinders

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Auteur
Chatjigeorgiou I.K., Chatziioannou K., Mazarakos T.
Date
2019
Language
en
DOI
10.1061/ (ASCE)WW.1943-5460.0000495
Sujet
Eigenvalues and eigenfunctions
Wave energy conversion
Diffraction problem
Direct approach
Eigenfunction expansions
Multiple scattering method
Trapped modes
Truncated cylinders
Velocity potentials
Wave trapping
Circular cylinders
cylinder
eigenvalue
flow modeling
fluid mechanics
hydrodynamics
velocity profile
wave energy
wave scattering
wave-structure interaction
American Society of Civil Engineers (ASCE)
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Résumé
The purpose of this article is to investigate near trapped-mode occurrences by arrays of truncated cylinders. The basic question that this article tries to answer is whether near trapped modes (peak loading wave numbers) are indeed stimulated for arrays of truncated cylinders, such as in arrays of bottom-seated cylinders. Arrays of truncated cylinders are conceived as possible wave-energy-extraction mechanisms given that their modules are allowed to oscillate in surge (or sway) and heave, in contrast to bottom-seated cylinders, which are fixed. Hence, an additional question that should be answered is which actual mode of motion is important. To tackle these tasks, the governing hydrodynamic diffraction problem is considered. Different velocity potentials are defined for the liquid regions formed by the geometry of the truncated cylinders. The sought ultimate solution is achieved using the eigenfunction expansion technique combined with the direct approach, which, in contrast to the multiple-scattering method, is unquestionably more efficient and robust. © 2018 American Society of Civil Engineers.
URI
http://hdl.handle.net/11615/72572
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