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Influence of oblique wave attack on wave overtopping and forces on rubble mound breakwater crest walls
Abstract At the crest of rubble mound structures a crest wall is often present to reduce the consumption of material compared to breakwaters without a crest wall. To design the crest wall several methods based on estimates of the hydraulic wave loads are available. These methods are focussed on waves that approach breakwaters perpendicular. In practice, the dominant wave conditions are often not perpendicular but approach the breakwater under an angle. Oblique waves can significantly reduce the amount of wave overtopping and reduce the wave loads on coastal structures compared to perpendicular waves. Therefore, physical model tests have been performed in a wave basin where the wave loads on crest walls and the wave overtopping discharges have been measured under oblique wave attack. Design guidelines have been developed to take the reduction due to oblique waves into account. Together with available methods to predict the wave forces and wave overtopping for perpendicular wave attack, the obtained results enable a more advanced design of crest walls.
Highlights Wave basin tests have been performed where wave loads on crest walls have been measured under oblique wave attack. Model tests showed that forces on crest walls can be predicted by using estimates of (virtual) wave run-up levels. The influence of oblique waves on horizontal and vertical forces on crest walls has been incorporated in a design guideline. To account for effects of oblique waves on wave overtopping over crest walls a design guideline has been developed.
Influence of oblique wave attack on wave overtopping and forces on rubble mound breakwater crest walls
Abstract At the crest of rubble mound structures a crest wall is often present to reduce the consumption of material compared to breakwaters without a crest wall. To design the crest wall several methods based on estimates of the hydraulic wave loads are available. These methods are focussed on waves that approach breakwaters perpendicular. In practice, the dominant wave conditions are often not perpendicular but approach the breakwater under an angle. Oblique waves can significantly reduce the amount of wave overtopping and reduce the wave loads on coastal structures compared to perpendicular waves. Therefore, physical model tests have been performed in a wave basin where the wave loads on crest walls and the wave overtopping discharges have been measured under oblique wave attack. Design guidelines have been developed to take the reduction due to oblique waves into account. Together with available methods to predict the wave forces and wave overtopping for perpendicular wave attack, the obtained results enable a more advanced design of crest walls.
Highlights Wave basin tests have been performed where wave loads on crest walls have been measured under oblique wave attack. Model tests showed that forces on crest walls can be predicted by using estimates of (virtual) wave run-up levels. The influence of oblique waves on horizontal and vertical forces on crest walls has been incorporated in a design guideline. To account for effects of oblique waves on wave overtopping over crest walls a design guideline has been developed.
Influence of oblique wave attack on wave overtopping and forces on rubble mound breakwater crest walls
van Gent, Marcel R.A. (author) / van der Werf, Ivo M. (author)
Coastal Engineering ; 151 ; 78-96
2019-04-20
19 pages
Article (Journal)
Electronic Resource
English
Prediction Method for Wave Overtopping and Wave Forces on Rubble Mound Breakwater Crest Walls
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