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Vegetation controls on channel network complexity in coastal wetlands

  • Roeland C. van de Vijsel*
  • , Jim van Belzen
  • , Tjeerd J. Bouma
  • , Daphne van der Wal
  • , Bas W. Borsje
  • , Stijn Temmerman
  • , Loreta Cornacchia
  • , Olivier Gourgue
  • , Johan van de Koppel
  • *Corresponding author for this work
    • Utrecht University
    • University of Groningen
    • Wageningen University & Research
    • University of Antwerp
    • Netherland Institute for Sea Research (NIOZ), Yerseke Spatial Ecology, Yerseke, Netherlands
    • Netherland Institute for Sea Research (NIOZ), Yerseke Spatial Ecology, Yerseke, Netherlands
    • University of Twente
    • Deltares
    • Royal Belgian Institute of Natural Sciences

    Research output: Contribution to journalArticleAcademicpeer-review

    Abstract

    Channel networks are key to coastal wetland functioning and resilience under climate change. Vegetation affects sediment and hydrodynamics in many different ways, which calls for a coherent framework to explain how vegetation shapes channel network geometry and functioning. Here, we introduce an idealized model that shows how coastal wetland vegetation creates more complexly branching networks by increasing the ratio of channel incision versus topographic diffusion rates, thereby amplifying the channelization feedback that recursively incises finer-scale side-channels. This complexification trend qualitatively agrees with and provides an explanation for field data presented here as well as in earlier studies. Moreover, our model demonstrates that a stronger biogeomorphic feedback leads to higher and more densely vegetated marsh platforms and more extensive drainage networks. These findings may inspire future field research by raising the hypothesis that vegetation-induced self-organization enhances the storm surge buffering capacity of coastal wetlands and their resilience under sea-level rise.Channel networks are key to coastal wetland functioning. Here, the authors show how vegetation enhances network branching, and hypothesize that this may enhance the storm surge buffering capacity of wetlands and their resilience under sea-level rise.
    Original languageEnglish
    Article number7158
    Number of pages14
    JournalNature Communications
    Volume14
    Issue number1
    DOIs
    Publication statusPublished - 7 Nov 2023

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 13 - Climate Action
      SDG 13 Climate Action

    Keywords

    • Scale-dependent feedback
    • Sea-level rise
    • Salt
    • Pattern
    • Morphodynamics
    • Transport
    • Model
    • Face
    • Flow

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