The Role of Different Total Water Level Definitions in Coastal Flood Modelling on a Low-Elevation Dune System

Author:

Cabrita Paulo1ORCID,Montes Juan2ORCID,Duo Enrico1ORCID,Brunetta Riccardo1ORCID,Ciavola Paolo1ORCID

Affiliation:

1. Department of Physics and Earth Sciences, Università degli Studi di Ferrara, Via Saragat 1, 44122 Ferrara, Italy

2. Department of Earth Sciences, Faculty of Marine and Environmental Sciences, Marine Research University Insitute (INMAR), University of Cádiz, 11510 Puerto Real, Cádiz, Spain

Abstract

The present study investigates different combinations and methods for estimating the extreme Total Water Level (TWL) and its implications for predicting flood extension caused by coastal storms. This study analyses various TWL components and approaches and assesses how different methodologies alter flood predictions, with implications for warning systems and emergency responses. Using different combinations of individual TWL components, flood extension simulations were conducted using a hydrodynamic model in the Volano Beach area (Emilia-Romagna, Italy). A real coastal storm event was used as a reference for comparison. The findings indicate that the selection of individual TWL components and calculation methods significantly impacts flood extension predictions. The approaches, which involve calculating extreme values from a combined time series or the water level time series plus the extreme value of wave setup, yield the most realistic results, excluding the runup component. In comparison, the other combinations overestimate the flood. Incorporating hydromorphological models like XBeach could enhance the accuracy of runup estimations and improve the overall method reliability. Despite limitations such as runup estimation and the use of generic regional parameters, this study underscores the importance of the TWL combination selection in accurately predicting flood extents, emphasising the need for context-specific adaptations in environmental contexts.

Publisher

MDPI AG

Reference74 articles.

1. Coco, G., and Ciavola, P. (2017). Coastal Storm Definition. Coastal Storms, John Wiley & Sons, Ltd.

2. Population Development as a Driver of Coastal Risk: Current Trends and Future Pathways;Reimann;Camb. Prism. Coast. Futures,2023

3. Modelling Storm Impacts on Beaches, Dunes and Barrier Islands;Roelvink;Coast. Eng.,2009

4. Deltares (2023). Delft3D Flexible Mesh Suite 1D/2D/3D Modelling Suite for Integral Water Solutions, Deltares.

5. A Third-Generation Wave Model for Coastal Regions 1. Model Description and Validation;Booij;J. Geophys. Res. Ocean.,1999

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