A coupled-mode technique for weakly nonlinear wave interaction with large floating structures lying over variable bathymetry regions

A coupled-mode method is developed and applied to hydroelastic analysis of large floating platforms of shallow draft over variable bathymetry regions, characterised by parallel bottom contours. We consider the scattering problem of surface waves, under the combined effects of variable bathymetry and...

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Published in:Applied Ocean Research
Main Authors: Belibassakis, KA, Athanassoulis, GA
Format: Article in Journal/Newspaper
Language:English
Published: ELSEVIER SCI LTD 2006
Subjects:
Online Access:http://dspace.lib.ntua.gr/handle/123456789/16939
https://doi.org/10.1016/j.apor.2005.12.003
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spelling ftntunivathens:oai:dspace.lib.ntua.gr:123456789/16939 2023-05-15T15:19:18+02:00 A coupled-mode technique for weakly nonlinear wave interaction with large floating structures lying over variable bathymetry regions Belibassakis, KA Athanassoulis, GA 2006 http://dspace.lib.ntua.gr/handle/123456789/16939 https://doi.org/10.1016/j.apor.2005.12.003 English eng ELSEVIER SCI LTD info:eu-repo/semantics/openAccess free Applied Ocean Research Coupled modes Nonlinear hydroelastic analysis Variable bathymetry Very large floating structures Engineering Ocean Oceanography Bathymetry Boundary conditions Fluid structure interaction Hydroelasticity Mathematical models Ocean structures Plates (structural components) Water waves Coupled-mode technique Floating structures floating structure nonlinear wave offshore engineering surface wave wave propagation info:eu-repo/semantics/article 2006 ftntunivathens https://doi.org/10.1016/j.apor.2005.12.003 2019-07-13T15:58:26Z A coupled-mode method is developed and applied to hydroelastic analysis of large floating platforms of shallow draft over variable bathymetry regions, characterised by parallel bottom contours. We consider the scattering problem of surface waves, under the combined effects of variable bathymetry and a semi-infinite floating elastic plate, in the time domain. The present development is based on appropriate generalisation of the unconstrained variational principle of Luke [Luke JC. A variational principle for a fluid with a free surface. J Fluid Mech 1967;27:395-7], which models the evolution of nonlinear water waves in intermediate water depth over a general bathymetry. Assuming small plate deflections and neglecting the rotation of plate section, the large floating structure has been modelled as a thin elastic plate. The present approach is based on appropriate extensions of the nonlinear coupled-mode model developed by Athanassoulis and Belibassakis, [A nonlinear coupled-mode model for water waves over a general bathymetry. In: Proc. 21st international conference on offshore mechanics and arctic engineering OMAE 2002. 2002] for waves propagating in variable bathymetry regions. In order to consistently treat the wave field beneath the elastic floating plate down to the sloping bottom boundary, a complete, local-mode series expansion of the wave field is used, enhanced by appropriate sloping-bottom and free-surface modes. The latter enable consistent satisfaction of the Neumann bottom-boundary condition on a general topography, as well as the kinematical conditions on the free surface and on the elastic plate surface. By introducing this expansion into the variational principle, an equivalent coupled-mode system of horizontal equations is derived, fully accounting for the effects of nonlinearity and dispersion. Boundary conditions are also provided by the variational principle, ensuring that the edges of the plate are free of moment and shear force. Numerical results concerning floating structures lying over sloping seabeds are presented, as obtained by simplifying the fully nonlinear coupled-mode system, keeping only up to second-order terms. The present method can be extended to treat large floating elastic bodies or structures characterised by variable thickness (draft), flexural rigidity and mass distributions. (c) 2006 Elsevier Ltd. All rights reserved. Article in Journal/Newspaper Arctic National Technical University of Athens (NTUA): DSpace Arctic Luke ENVELOPE(-94.855,-94.855,56.296,56.296) Applied Ocean Research 28 1 59 76
institution Open Polar
collection National Technical University of Athens (NTUA): DSpace
op_collection_id ftntunivathens
language English
topic Coupled modes
Nonlinear hydroelastic analysis
Variable bathymetry
Very large floating structures
Engineering
Ocean
Oceanography
Bathymetry
Boundary conditions
Fluid structure interaction
Hydroelasticity
Mathematical models
Ocean structures
Plates (structural components)
Water waves
Coupled-mode technique
Floating structures
floating structure
nonlinear wave
offshore engineering
surface wave
wave propagation
spellingShingle Coupled modes
Nonlinear hydroelastic analysis
Variable bathymetry
Very large floating structures
Engineering
Ocean
Oceanography
Bathymetry
Boundary conditions
Fluid structure interaction
Hydroelasticity
Mathematical models
Ocean structures
Plates (structural components)
Water waves
Coupled-mode technique
Floating structures
floating structure
nonlinear wave
offshore engineering
surface wave
wave propagation
Belibassakis, KA
Athanassoulis, GA
A coupled-mode technique for weakly nonlinear wave interaction with large floating structures lying over variable bathymetry regions
topic_facet Coupled modes
Nonlinear hydroelastic analysis
Variable bathymetry
Very large floating structures
Engineering
Ocean
Oceanography
Bathymetry
Boundary conditions
Fluid structure interaction
Hydroelasticity
Mathematical models
Ocean structures
Plates (structural components)
Water waves
Coupled-mode technique
Floating structures
floating structure
nonlinear wave
offshore engineering
surface wave
wave propagation
description A coupled-mode method is developed and applied to hydroelastic analysis of large floating platforms of shallow draft over variable bathymetry regions, characterised by parallel bottom contours. We consider the scattering problem of surface waves, under the combined effects of variable bathymetry and a semi-infinite floating elastic plate, in the time domain. The present development is based on appropriate generalisation of the unconstrained variational principle of Luke [Luke JC. A variational principle for a fluid with a free surface. J Fluid Mech 1967;27:395-7], which models the evolution of nonlinear water waves in intermediate water depth over a general bathymetry. Assuming small plate deflections and neglecting the rotation of plate section, the large floating structure has been modelled as a thin elastic plate. The present approach is based on appropriate extensions of the nonlinear coupled-mode model developed by Athanassoulis and Belibassakis, [A nonlinear coupled-mode model for water waves over a general bathymetry. In: Proc. 21st international conference on offshore mechanics and arctic engineering OMAE 2002. 2002] for waves propagating in variable bathymetry regions. In order to consistently treat the wave field beneath the elastic floating plate down to the sloping bottom boundary, a complete, local-mode series expansion of the wave field is used, enhanced by appropriate sloping-bottom and free-surface modes. The latter enable consistent satisfaction of the Neumann bottom-boundary condition on a general topography, as well as the kinematical conditions on the free surface and on the elastic plate surface. By introducing this expansion into the variational principle, an equivalent coupled-mode system of horizontal equations is derived, fully accounting for the effects of nonlinearity and dispersion. Boundary conditions are also provided by the variational principle, ensuring that the edges of the plate are free of moment and shear force. Numerical results concerning floating structures lying over sloping seabeds are presented, as obtained by simplifying the fully nonlinear coupled-mode system, keeping only up to second-order terms. The present method can be extended to treat large floating elastic bodies or structures characterised by variable thickness (draft), flexural rigidity and mass distributions. (c) 2006 Elsevier Ltd. All rights reserved.
format Article in Journal/Newspaper
author Belibassakis, KA
Athanassoulis, GA
author_facet Belibassakis, KA
Athanassoulis, GA
author_sort Belibassakis, KA
title A coupled-mode technique for weakly nonlinear wave interaction with large floating structures lying over variable bathymetry regions
title_short A coupled-mode technique for weakly nonlinear wave interaction with large floating structures lying over variable bathymetry regions
title_full A coupled-mode technique for weakly nonlinear wave interaction with large floating structures lying over variable bathymetry regions
title_fullStr A coupled-mode technique for weakly nonlinear wave interaction with large floating structures lying over variable bathymetry regions
title_full_unstemmed A coupled-mode technique for weakly nonlinear wave interaction with large floating structures lying over variable bathymetry regions
title_sort coupled-mode technique for weakly nonlinear wave interaction with large floating structures lying over variable bathymetry regions
publisher ELSEVIER SCI LTD
publishDate 2006
url http://dspace.lib.ntua.gr/handle/123456789/16939
https://doi.org/10.1016/j.apor.2005.12.003
long_lat ENVELOPE(-94.855,-94.855,56.296,56.296)
geographic Arctic
Luke
geographic_facet Arctic
Luke
genre Arctic
genre_facet Arctic
op_source Applied Ocean Research
op_rights info:eu-repo/semantics/openAccess
free
op_doi https://doi.org/10.1016/j.apor.2005.12.003
container_title Applied Ocean Research
container_volume 28
container_issue 1
container_start_page 59
op_container_end_page 76
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