The main objective of this project is to understand the role of vegetation in shaping channel networks in tidal wetlands, and the resulting impact on tidal wetland resilience to increasing sea level rise and decreasing sediment supply. The socio-economic impact of this research is very high, because of the important ecosystem services provided by tidal wetlands (e.g. carbon sequestration and coastal protection).
To reach our objectives, we have developed two software programs at the state of the art in the field of (bio-)geomorphology. TidalGeoPro is the first toolbox able to extract channel network characteristics from aerial pictures and numerical model results that is specifically designed for intertidal systems. Demeter is the first biogeomorphic model able to account for relevant fine-scale flow-vegetation interactions (less than a square meter) together with their impact on vegetation and landform developments at the landscape scale (several square kilometers) and on the long term (centuries). It makes use of state-of-the-art biogeomorphic coupling techniques (Gourgue et al., 2021). TidalGeopro and Demeter are both published with open-source licenses and support state-of-the-art research by other groups internationally.
Our project results demonstrate that the resilience of restored tidal marshes (and the preservation of the ecosystem services they provide) can be steered by restoration design (Gourgue et al., 2022) and that Demeter is a useful resource in that perspective. They also reveal two overlooked mechanisms by which dense vegetation inhibits sediment accretion with sea level rise, hence suggesting that tidal wetlands are more vulnerable than previously thought (Gourgue et al., submitted).
References:
Gourgue, O., van Belzen, J., Schwarz, C., Vandenbruwaene, W., Vanlede, J., Belliard, J.-P. Fagherazzi, S., Bouma, T.J. van de Koppel, J., Temmerman, S. (2022), Biogeomorphic modeling to assess the resilience of tidal-marsh restoration to sea level rise and sediment supply, Earth Surface Dynamics, 10, 531-553,
https://doi.org/10.5194/esurf-10-531-2022(öffnet in neuem Fenster).
Gourgue, O., Belliard, J.-P. Xu, Y., Kleinhans, M.G. Fagherazzi, S., Temmerman, S., Dense vegetation inhibits saltmarsh accretion with sea level rise, submitted to Nature Geoscience.