RM

Ryan Mieras

info

Please Note

6 records found

Book chapter (2026) - Christine M. Baker, Katherine Anarde, Marion Tissier, Jantien Rutten, Paul van Wiechen, Ryan Mieras, Sierd De Vries
Storm-elevated water levels can lead to waves attacking the dune face (dune collision regime), resulting in avalanching and shoreward translation of the dune face. Predicting dune erosion rates during storms is critical, yet, our knowledge of the relative role of infragravity and sea-swell waves on runup excursion on an eroding dune face relies primarily on numerical modeling. Here, we assess the role of sea-swell waves, infragravity waves, and dune geometry on runup excursion during dune collision with observations collected during the Realdune/REFLEX field experiment. In situ and lidar observations were collected from Oct. 2021 to Jan. 2022 at the Sand Engine in the Netherlands. Incident sea-swell and infragravity wave contributions resulting in runup on an artificial, unvegetated dune during two winter storms were quantified. We find that infragravity wave crests contributed to the largest runup events on the dune. Additionally, runup excursion is modified by dune geometry, where more sediment at the dune base, associated with a relatively mild dune face, reduced runup extent relative to events with steeper dune faces. This suggests that shallower dune geometries with more sand at the base may temporarily enhance dune safety by reducing runup. ...
Journal article (2024) - Paul van Wiechen, Jantien Rutten, Sierd de Vries, Marion Tissier, Ryan Mieras, Katherine Anarde, Christine Baker, Ad Reniers, Jan-Willem Mol
Nearshore hydro- and morphodynamic data were collected during a field experiment under calm conditions, moderate conditions, and storm conditions with dune erosion in the collision regime. The experiment was conducted on the Sand Engine near Kijkduin, the Netherlands, from October 18, 2021, to January 7, 2022. Two artificial unvegetated dunes were constructed just above the high water line to measure storm erosion and dune impacts from higher water levels and waves. During the experiment, three storms occurred that resulted in significant erosion of both dunes. The collected hydrodynamic data include pressure sensor and velocimeter data along two cross-shore transects. The collected morphodynamic data include bathymetry and topography surveys, optical backscatter sensor data in the inner surf zone, and a continuous cross-shore line-scanning lidar data set of the dune face. This comprehensive data set can be used to (1) study relevant nearshore hydrodynamic and morphodynamic processes that occur during calm conditions, moderate conditions, and storm conditions with dune erosion in the collision regime, and (2) validate existing dune erosion models. ...
Journal article (2024) - P. P. J. van Wiechen, R. Mieras, M. F. S. Tissier, S. de Vries
This paper studies hydrodynamic and morphodynamic field measurements of two storms with dune erosion in the swash-dune collision regime. It analyses (a) the behavior and change of the total dune profile over the course of both storms (b) the erosion rate at the dune base, (c) the slumping frequency, and (d) the volumes of individual slumps. The erosion rate at the dune base shows a strong positive correlation with the square of the total water levels that were exceeded for 2% of the time, recorded approximately 5–6 m in front of the dune face (r = 0.91). Individual slumping events occurred when nearly all sediments from previous slumps at the dune base were transported away from the dune. A strong positive correlation was found between the time between two consecutive slumps, and the volume of the first slump divided by the mean erosion rate between the two slumps (r = 0.90). As a consequence, smaller slumps were followed more rapidly by a new slump than larger slumps, under identical erosion rates. The majority of the slumping events occurred after the last wave impact before a slumping event, when the instantaneous water level in front of the dune was still retreating. No clear process based on the incident hydrodynamics could be identified that determined the size of individual slumps. Overall, the results of this study suggest that the morphodynamic behavior of the upper dune face and dune crest is primarily steered by the erosion at the dune base. ...
Conference paper (2023) - Paul van Wiechen, Jantien Rutten, Marion Tissier, Sierd de Vries, Ryan Mieras, Katherine Anarde, Stefan Aarninkhof
Storm conditions can lead to excessive dune erosion with potential floods as a consequence. Barrier islands and low-lying countries protected by dunes are especially vulnerable to dune erosion. To properly assess the risks these areas face, a clear understanding of the physical processes during dune erosion is required. One of such processes is the effect of wave obliquity on sediment transport in the surf zone. Classic dune erosion models assume that dune erosion volumes decrease under oblique wave attack, because the time-averaged cross-shore undertow decreases in magnitude and with that offshore directed sediment transport decreases (Steetzel, 1993). More recent process-based erosion models predict an increase in erosion quantities, because the generated longshore currents increase surf zone sediment concentrations, and with that offshore directed sediment transport increases (Den Heijer, 2013). The main objective of this study is to analyse the effect of wave obliquity on dune erosion through a field experiment, by quantifying the effect of the decreasing undertow but increasing alongshore current on sediment concentrations in the surf zone. ...

field observations and equilibrium theory

Conference paper (2023) - Paul van Wiechen, Jantien Rutten, Ryan Mieras, Katherine Anarde, Marion Tissier, Sierd de Vries
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. ...

The realdune/reflex experiment at the sand engine

Conference paper (2022) - Paul van Wiechen, Jantien Rutten, Ryan Mieras, Katherine Anarde, Magda Wrobel, Marion Tissier, Sierd de Vries
Storm conditions can lead to excessive dune erosion with potential floods as a consequence. Barrier islands and low-lying countries protected by dunes are especially vulnerable to dune erosion. To properly assess the risks these areas face, a clear understanding of the physical processes during dune erosion is required.

An international field experiment was conducted to study dune erosion during storm surges from November 6 2021 until January 6 2022. on the Sand Engine. During the Realdune/Reflex experiment, two prototype un-vegetated dunes of 5.5 m high and 150 m long were built just above the high waterline. Due to a different shoreline orientation and nearshore bathymetry, these dunes eroded differently during moderate storm conditions. 3 storms were captured during the campaign.

This abstract presents preliminary results of morphodynamic change during these 3 storms, by means of profile changes and erosion volumes. ...