Tsunami Runup Attenuation By Onshore Obstacles

Abstract (2024)
Author(s)

Ivo van Balen (Student TU Delft)

Jonas Cels (University College London)

Keith Adams (London South Bank University)

Marco Baiguera (University of Southampton)

Tiziana Rossetto (University College London)

Alessandro Antonini (TU Delft - Coastal Engineering)

Davide Wüthrich (TU Delft - Hydraulic Structures and Flood Risk)

Denis Istrati (National Technical University of Athens)

Eugeny Buldakov (University College London)

Ian Chandler (HR Wallingford)

David McGovern (London South Bank University)

DOI related publication
https://doi.org/10.59490/coastlab.2024.763 Final published version
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Publication Year
2024
Language
English
Event
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Abstract

In a time of climate emergency due to global warming, nature-based coastal defence systems are attractive solutions for flood mitigation and adaptation. Coastal forests such as mangroves have received a growing interest for their disaster mitigation effectiveness such as water flow energy dissipation, hence helping communities to become more resilient (Iimura & Tanaka, 2012). The role of coastal forests as a defence measure was highlighted in the aftermath of the 2004 Indian Ocean Tsunami, which claimed the lives of more than 200,000 people and displaced millions more across fourteen countries. Post-disaster damage observations indicated that forests, particularly mangroves, reduced the impact of the tsunami wave in some locations. As a result, significant international relief and reconstruction efforts focused on extensive forest replantation of coastlines (Satake, 2014).

The role of coastal vegetation in reducing the severity of tsunami waves has been studied since. Several studies using physical modelling and computational approaches have provided insights into the wave attenuation provided by coastal vegetation, in terms of relationships between incident hydrodynamic conditions, forest configurations and wave height decay. However, there are still many gaps in knowledge, particularly in quantifying the efficacy of coastal forests in reducing inland hydrodynamic conditions (Tomiczek et al., 2020). It is therefore essential to improve the understanding on how wave heights, velocities and runup are influenced by the characteristics of the “obstacles”, e.g. the forest density, as well as the incident hydrodynamic conditions, e.g. the wave period. This study aims to address these questions conducting physical experiments using the novel pneumatic Tsunami Simulator (TS) developed by HR Wallingford together with UCL (Rossetto et al., 2011).