Avalanching of the dune face

field observations and equilibrium theory

Conference Paper (2023)
Author(s)

P.P.J. van Wiechen (TU Delft - Coastal Engineering)

J. Rutten (TU Delft - Environmental Fluid Mechanics)

R. Mieras (University of North Carolina Wilmington)

Katherine Anarde (North Carolina State University)

M. F.S. Tissier (TU Delft - Environmental Fluid Mechanics)

Sierd De Vries (TU Delft - Coastal Engineering)

Research Group
Coastal Engineering
Copyright
© 2023 P.P.J. van Wiechen, J. Rutten, Ryan Mieras, Katherine Anarde, M.F.S. Tissier, S. de Vries
DOI related publication
https://doi.org/10.1142/9789811275135_0069
More Info
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Publication Year
2023
Language
English
Copyright
© 2023 P.P.J. van Wiechen, J. Rutten, Ryan Mieras, Katherine Anarde, M.F.S. Tissier, S. de Vries
Research Group
Coastal Engineering
Bibliographical Note
Green Open Access added to TU Delft Institutional Repository ‘You share, we take care!’ – Taverne project https://www.openaccess.nl/en/you-share-we-take-care Otherwise as indicated in the copyright section: the publisher is the copyright holder of this work and the author uses the Dutch legislation to make this work public. @en
Pages (from-to)
739-752
ISBN (print)
978-981-12-7989-8
Reuse Rights

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Abstract

A field experiment to study dune erosion was conducted on the Sand Engine near Kijkduin, the Netherlands, from November 7th 2021 to January 7th 2022. Two artificial unvegetated dunes were constructed near the high water line, and experienced significant erosion through avalanching during three storms. This paper aims to identify what drives dune erosion through avalanching by using the collected data and equilibrium theory. Results suggest that the cumulative volume eroded through avalanching during a single high water is positively correlated with the profile mismatch between the pre-storm profile and a ‘storm equilibrium profile’, described by a 2/3rd power law, an empirical coefficient A, and the total water level. This mismatch is quantified by calculating the area integral of the profile that is acquired when the upper 35 m of the pre-storm profile is subtracted from the upper 35 m of the equilibrium profile. Avalanching commences when this mismatch becomes larger than approximately 0, after which 1 m3/m of sediment erodes from the dune face for every 3 m3/m mismatch. In addition, during one event avalanching occurred even though the elevation of the total water level did not exceed the initial elevation of the dune toe. This implies that a total water level that exceeds the initial elevation of the dune toe is not a requisite for avalanching and a collision regime to occur, which contradicts conventional definitions of dune erosion regimes. These results have implications on risk assessment of storm conditions on dune erosion.

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