Numerical Modelling of an Innovative Conical Pile Head Breakwater

dc.contributor.authorHunasanahally Sathyanarayana, A.H.
dc.contributor.authorSuvarna, P.S.
dc.contributor.authorUmesh, P.
dc.contributor.authorShirlal, K.G.
dc.contributor.authorBihs, H.
dc.contributor.authorKamath, A.
dc.date.accessioned2026-02-04T12:27:21Z
dc.date.issued2022
dc.description.abstractWhen moderate wave activity at the shoreline is acceptable, pile breakwaters can serve as an alternative to conventional breakwaters. Increasing the size of the pile breakwater in the vicinity of the free surface increases the hydraulic efficiency, as most of the wave energy is concentrated around the free surface. Therefore, a conical pile head breakwater (CPHB) is proposed in the present study by gradually widening the diameter of the piles towards the free surface. Using the open-source computational fluid dynamics (CFD) model REEF3D, the transmission, reflection, and dissipation characteristics of the CPHB with monochromatic and irregular waves are examined. The investigation is carried out for both perforated and non-perforated CPHBs using monochromatic waves, and the numerical results are validated using experimental data. Further, optimally configured non-perforated and perforated CPHBs are investigated numerically by subjecting them to irregular waves using the Scott–Wiegel spectrum. The wave attenuation characteristics of the CPHBs are found to be better with irregular waves compared to monochromatic waves. With irregular waves, the minimum transmission coefficients for non-perforated and perforated CPHBs are 0.36 and 0.34, respectively. Overall, the CPHB appears to be a potential solution for coastal protection. © 2022 by the authors.
dc.identifier.citationWater (Switzerland), 2022, 14, 24, pp. -
dc.identifier.urihttps://doi.org/10.3390/w14244087
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/22260
dc.publisherMDPI
dc.subjectBreakwaters
dc.subjectCoastal engineering
dc.subjectComputational fluid dynamics
dc.subjectNumerical models
dc.subjectPiles
dc.subjectTransmissions
dc.subjectWave energy conversion
dc.subjectWave transmission
dc.subjectConical pile head breakwater
dc.subjectFree surfaces
dc.subjectHydraulic efficiency
dc.subjectIrregular waves
dc.subjectMonochromatic wave
dc.subjectPerforated pile head
dc.subjectPile head
dc.subjectWave activity
dc.subjectWave reflections
dc.subjectEnergy dissipation
dc.subjectbreakwater
dc.subjectcomputational fluid dynamics
dc.subjectenergy dissipation
dc.subjectshoreline change
dc.subjectwave attenuation
dc.subjectwave energy
dc.subjectwave reflection
dc.titleNumerical Modelling of an Innovative Conical Pile Head Breakwater

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