Biogeomorphic modeling to assess the resilience of tidal-marsh restoration to sea level rise and sediment supply
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Published:2022-06-07
Issue:3
Volume:10
Page:531-553
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ISSN:2196-632X
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Container-title:Earth Surface Dynamics
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language:en
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Short-container-title:Earth Surf. Dynam.
Author:
Gourgue OlivierORCID, van Belzen Jim, Schwarz Christian, Vandenbruwaene Wouter, Vanlede Joris, Belliard Jean-PhilippeORCID, Fagherazzi SergioORCID, Bouma Tjeerd J., van de Koppel Johan, Temmerman Stijn
Abstract
Abstract. There is an increasing demand for the creation and restoration of tidal marshes around the world, as they provide highly valued ecosystem services. Yet restored tidal marshes are strongly vulnerable to factors such as sea level rise and declining sediment supply. How fast the restored ecosystem
develops, how resilient it is to sea level rise, and how this can be steered by restoration design are key questions that are typically challenging to assess due to the complex biogeomorphic feedback processes involved. In this paper, we apply a biogeomorphic model to a specific tidal-marsh restoration project planned by dike breaching. Our modeling approach integrates tidal hydrodynamics, sediment transport, and vegetation dynamics, accounting for relevant fine-scale flow–vegetation interactions (less than 1 m2) and their impact on vegetation and landform development at the landscape scale (several km2) and in the long term (several decades). Our model performance is positively evaluated against observations of vegetation and geomorphic development in adjacent tidal marshes. Model scenarios demonstrate that the restored tidal marsh can keep pace with realistic rates of sea level rise and that its resilience is more sensitive to the availability of suspended sediments than to the rate of sea level rise. We further demonstrate that restoration design options can steer marsh resilience, as they affect the rates and spatial patterns of biogeomorphic development. By varying the width of two dike breaches, which serve as tidal inlets to the restored marsh, we show that a larger difference in the width of the two inlets leads to higher biogeomorphic diversity in restored habitats. This study showcases that biogeomorphic modeling can support management choices in restoration design to optimize tidal-marsh development towards sustainable restoration goals.
Funder
European Commission
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Geophysics
Reference135 articles.
1. Alizad, K., Hagen, S. C., Morris, J. T., Bacopoulos, P., Bilskie, M. V., Weishampel, J. F., and Medeiros, S. C.:
A coupled, two-dimensional hydrodynamic-marsh model with biological feedback, Ecol. Model., 327, 29–43, https://doi.org/10.1016/j.ecolmodel.2016.01.013, 2016. 2. Armitage, A. R., Jensen, S. M., Yoon, J. E., and Ambrose, R. F.:
Wintering shorebird assemblages and behavior in restored tidal wetlands in Southern California, Restor. Ecol., 15, 139–148, https://doi.org/10.1111/j.1526-100x.2006.00198.x, 2007. 3. Baeyens, W., van Eck, B., Lambert, C., Wollast, R., and Goeyens, L.:
General description of the Scheldt estuary, Hydrobiologia, 366, 1–14, https://doi.org/10.1023/a:1003164009031, 1997. 4. Balke, T., Stock, M., Jensen, K., Bouma, T. J., and Kleyer, M.:
A global analysis of the seaward salt marsh extent: The importance of tidal range, Water Resour. Res., 52, 3775–3786, https://doi.org/10.1002/2015wr018318, 2016. 5. Balzter, H., Braun, P. W., and Köhler, W.:
Cellular automata models for vegetation dynamics, Ecol. Model., 107, 113–125, https://doi.org/10.1016/s0304-3800(97)00202-0, 1998.
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