Proceedings of the National Academy of Sciences · 2007 · 515 citations · 23 references
Coupled GeomorphicWetland EcologyEngineeringGeomorphologyGeographySea LevelTidal Marsh PlatformsSediment ProcessChannel NetworkTidal ZoneFluvial ProcessLandscape Evolution ModelHydrologySediment TransportSedimentologySedimentation
Tidal marsh evolution depends on two‑way interactions between physical processes such as tidal flow erosion and sediment transport, and biological processes like vegetation‑driven sediment deposition and slope‑driven transport. The study develops a 3‑D model that couples sediment transport with vegetation biomass productivity to simulate tidal marsh accretion and channel network development. The model integrates physical sediment transport dynamics with vegetation growth, linking bed‑surface depth to biomass production and allowing feedbacks between erosion, deposition, and channel formation. With moderate sea‑level rise, the model produces marsh accretion rates that match sea‑level rise, keeping water depths and productivity constant; higher rise or reduced sediment supply increases marsh depth, biomass, deposition, and expands the channel network, while vegetation can stabilize the platform but its disturbance may cause irreversible habitat loss.
The evolution of tidal marsh platforms and interwoven channel networks cannot be addressed without treating the two-way interactions that link biological and physical processes. We have developed a 3D model of tidal marsh accretion and channel network development that couples physical sediment transport processes with vegetation biomass productivity. Tidal flow tends to cause erosion, whereas vegetation biomass, a function of bed surface depth below high tide, influences the rate of sediment deposition and slope-driven transport processes such as creek bank slumping. With a steady, moderate rise in sea level, the model builds a marsh platform and channel network with accretion rates everywhere equal to the rate of sea-level rise, meaning water depths and biological productivity remain temporally constant. An increase in the rate of sea-level rise, or a reduction in sediment supply, causes marsh-surface depths, biomass productivity, and deposition rates to increase while simultaneously causing the channel network to expand. Vegetation on the marsh platform can promote a metastable equilibrium where the platform maintains elevation relative to a rapidly rising sea level, although disturbance to vegetation could cause irreversible loss of marsh habitat.
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RESPONSES OF COASTAL WETLANDS TO RISING SEA LEVEL
James T. Morris, P. V. Sundareshwar, Christopher T. Nietch et al. · Ecology · 2002 · 1.6K citations
Development of a New England Salt Marsh
Alfred C. Redfield · Ecological Monographs · 1972 · 870 citations