EGU24-17274, updated on 11 Mar 2024
https://doi.org/10.5194/egusphere-egu24-17274
EGU General Assembly 2024
© Author(s) 2024. This work is distributed under
the Creative Commons Attribution 4.0 License.

How does landscape vegetation configuration regulate local channel initiation in rapidly expanding marsh?

Dawei Wang1,2, Junhong Bai1, Chuanhui Gu3, Olivier Gourgue4, Jean-Philippe Belliard2, Liyue Cui5, Yinghai Ke5, Liming Xue6, Lixiang Wen1, and Stijn Temmerman2
Dawei Wang et al.
  • 1School of Environment, Beijing Normal University, Beijing, China
  • 2Ecosphere Research Group, University of Antwerp, Antwerp, Belgium
  • 3Environmental Research Center, Duke Kunshan University, Kunshan, China
  • 4Operational Directorate Natural Environment, Royal Belgian Institute of Natural Sciences, Brussels, Belgium
  • 5College of Resources, Environment and Tourism, Capital Normal University, Beijing, China
  • 6State Key Laboratory of Estuarine and Coastal Research, East China Normal University, Shanghai, China

Biogeomorphic interactions between tidal channels and marsh plants play a crucial role in enhancing coastal resilience to climate change. Previous studies linking the channel formation with vegetation dynamics predominantly focused on the early initiation, characterized by local-scale plant-flow feedbacks. However, the influence of rapid changes in landscape-scale vegetation pattern on the channel initiation remains poorly understood, especially in micro-tidal system. In this study, we investigated this relationship through biogeomorphic modeling combined with the analysis of satellite images in a rapidly expanding marsh in China under Spartina alterniflora invasion. The satellite images demonstrated the increase in drainage density and the decrease in unchanneled path length following plant encroachment. Our modeling results showed that local flow acceleration between vegetation patches was insufficient to initiate channels rapidly before the merging of isolated patches under micro-tidal conditions. With plant expansion, the continuous marsh caused landscape flow diversion from homogenous platform flow to concentrated channel flow, which promoted evident tributary channel initiation in the landward marsh zone. The vegetation removal scenarios further highlighted that the flow divergence from adjacent platforms due to the spatial heterogeneity in plant configuration amplified the magnitude of local hydrodynamics and further channel incision. Our findings emphasize that the initiation of tidal channels not only depends on local plant-flow interaction but is largely driven by landscape vegetation configuration under micro-tidal conditions.

How to cite: Wang, D., Bai, J., Gu, C., Gourgue, O., Belliard, J.-P., Cui, L., Ke, Y., Xue, L., Wen, L., and Temmerman, S.: How does landscape vegetation configuration regulate local channel initiation in rapidly expanding marsh?, EGU General Assembly 2024, Vienna, Austria, 14–19 Apr 2024, EGU24-17274, https://doi.org/10.5194/egusphere-egu24-17274, 2024.