Hydrodynamic analysis of an H-shaped pile-restrained floating breakwater combined with a pair of vertical barriers

dc.contributor.authorPanda, A.
dc.contributor.authorKarmakar, D.
dc.contributor.authorRao, M.
dc.date.accessioned2026-02-04T12:24:55Z
dc.date.issued2024
dc.description.abstractThe present study analyses the performance of a composite breakwater consisting of an H-shaped breakwater attached with vertical/inclined barriers held from both sides using the Multi-Domain Boundary Element Method (MDBEM). The study is performed to analyse the wave transformation characteristics (reflection and transmission), wave energy dissipation and horizontal wave forces due to the gravity wave-structure interaction. The hydrodynamic performance of the integrated breakwater is performed due to the effect of changing various structural properties such as porosity, width and depth of structural elements, relative spacing between breakwater and barrier, angle of incidence and the inclination of the barriers. The boundary conditions and the corresponding edge conditions are incorporated for each surface and interface and correlated with Green's function to solve the boundary value problem. The detailed study proposes the suitable dimensions of the structural elements of the breakwater for optimal performance. The application of inclined barriers over the vertical barrier in certain conditions for maximising wave reflection is presented and analysed to understand the effectiveness of the barrier inclination. The favourable barrier dimensions and the suitable relative spacing for deep water regions are discussed, and the effect of rigidity and porosity of the barriers are analysed to maximise breakwater performance in wave attenuation. On considering the suitable design parameters and structural stability, the composition of vertical/inclined barriers with an H-shaped pile-restrained floating breakwater serves as a protective component by encountering maximum wave force and dissipating considerable wave energy to provide an efficient solution in harbour protection. © 2024 Elsevier Ltd
dc.identifier.citationOcean Engineering, 2024, 298, , pp. -
dc.identifier.issn298018
dc.identifier.urihttps://doi.org/10.1016/j.oceaneng.2024.117152
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/21178
dc.publisherElsevier Ltd
dc.subjectBoundary element method
dc.subjectBoundary value problems
dc.subjectFloating breakwaters
dc.subjectHydrodynamics
dc.subjectPiles
dc.subjectPorosity
dc.subjectSailing vessels
dc.subjectStability
dc.subjectWave energy conversion
dc.subjectComposite breakwater
dc.subjectH-shaped
dc.subjectMulti-domain boundary element method
dc.subjectMulti-domain boundary element methods
dc.subjectPerformance
dc.subjectRelative spacing
dc.subjectStructural elements
dc.subjectVertical/inclined barrier
dc.subjectWave force
dc.subjectWave force coefficients
dc.subjectEnergy dissipation
dc.subjectbarrier (equipment)
dc.subjectboundary element method
dc.subjectbreakwater
dc.subjectdynamic analysis
dc.subjectdynamic response
dc.subjectefficiency measurement
dc.subjectenergy dissipation
dc.subjectGreen function
dc.subjecthydrodynamics
dc.subjectperformance assessment
dc.subjectpile response
dc.subjectstructural analysis
dc.subjectstructural response
dc.subjectwave attenuation
dc.subjectwave energy
dc.subjectwave force
dc.subjectwave-structure interaction
dc.titleHydrodynamic analysis of an H-shaped pile-restrained floating breakwater combined with a pair of vertical barriers

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