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Review
. 2023 Dec;52(12):2034-2052.
doi: 10.1007/s13280-023-01901-9. Epub 2023 Jul 5.

Coastal erosion and climate change: A review on coastal-change process and modeling

Affiliations
Review

Coastal erosion and climate change: A review on coastal-change process and modeling

Tianze Pang et al. Ambio. 2023 Dec.

Abstract

Coastal erosion is a normal process of nature. However, the rate of coastal erosion, and the frequency and intensity of coastal flooding events, are now on the rise around the world due to the changing climate. Current responses to coastal erosion are primarily determined by site-specific factors, such as coastal elevation, coastal slope, coastal features, and historical coastline change rate, without a systematic understanding of the coastal-change processes in the context of climate change, including spatiotemporal changes in sea level, regional changes in wave climate, and sea ice coverage. In the absence of a clear understanding of the coastal-change processes, most of the current coastal responses have been built upon a risky assumption (i.e., the present-day coastal change will persist) and are not resilient to future climate change. Here, we conduct a literature review to summarize the latest scientific understanding of the coastal-change processes under climate change and the potential research gaps towards the prediction of future coastal erosion. Our review suggests that a coupled coastal simulation system with a nearshore wave model (e.g., SWAN, MIKE21, etc.) can play a critical role in both the short-term and long-term coastal risk assessment and protective measure development.

Keywords: Climate change; Coastal Vulnerability Index; Coastal erosion; Coastal-change process; Nearshore wave; Wave model.

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Conflict of interest statement

The authors have no relevant financial or non-financial interests to disclose.

Figures

Fig. 1
Fig. 1
Illustration of the seven key parameters of CVI
Fig. 2
Fig. 2
Models (a) and subjects of application (b) in the collected case-studies
Fig. 3
Fig. 3
Conceptualization of the review progress and the coupled coastal model

References

    1. Abanades Tercero, J. 2017. Beach morphodynamics in the lee of a wave farm: Synergies with coastal defence. In 11th European wave and tidal energy conference
    1. Addo KA. Assessing coastal vulnerability index to climate change: the case of Accra – Ghana. Journal of Coastal Research. 2013;65(sp2):1892–1897. doi: 10.2112/SI65-320.1. - DOI
    1. Airy GB. On tides and waves. In: Rose HJ, editor. Encyclopaedia Metropolitana (mixed sciences) London: John Joseph Griffin & Co; 1985.
    1. Al-Awadhi T, Mansour S, Hereher M. Assessment of coastal sensitivity to non-eustatic sea level rise: a case study on Muscat coast—Sultanate of Oman. Arabian Journal of Geosciences. 2020;13:371. doi: 10.1007/s12517-020-05321-x. - DOI
    1. Alves B, Angnuureng DB, Morand P, Almar R. A review on coastal erosion and flooding risks and best management practices in West Africa: what has been done and should be done. Journal of Coastal Conservation. 2020 doi: 10.1007/s11852-020-00755-7. - DOI

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