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Abrupt emergence of a large pockmark field in the German Bight, southeastern North Sea.

Scientific reports·2017
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Related Experiment Video

Updated: Jan 22, 2026

Evolution of Staircase Structures in Diffusive Convection
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Recent morphologic evolution of the German Wadden Sea.

Markus Benninghoff1, Christian Winter2

  • 1MARUM - Center for Marine Environmental Sciences and Faculty of Geosciences, University of Bremen, Bremen, 28359, Germany. mbenninghoff@marum.de.

Scientific Reports
|June 28, 2019
PubMed
Summary

The Wadden Sea is accumulating sediment, with intertidal flats building up faster than sea level rise. This indicates a growing intertidal zone and a steepening coastal morphology.

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Area of Science:

  • Coastal geomorphology
  • Marine geology
  • Environmental science

Background:

  • The Wadden Sea is a dynamic intertidal ecosystem facing significant environmental pressures.
  • Key drivers include sea level rise, increased storm surges, and altered tidal ranges.
  • Understanding its morphologic evolution is crucial for coastal management.

Purpose of the Study:

  • To analyze the recent morphologic changes in the German Wadden Sea from 1998 to 2016.
  • To quantify sediment budget and changes in intertidal and subtidal areas.
  • To assess the Wadden Sea's response to environmental changes.

Main Methods:

  • Utilized a comprehensive dataset of digital elevation models (DEMs) for the German Wadden Sea.
  • Conducted sediment budget analysis to quantify accretion and erosion.
  • Analyzed changes in the ratio of intertidal to subtidal surface areas.

Main Results:

  • The Wadden Sea exhibits a net sediment accumulation.
  • The intertidal zone has expanded, with most flats accreting sediment at rates exceeding mean sea level rise.
  • Subtidal areas show increasing mean depths, indicating a 'steepening' effect.

Conclusions:

  • The German Wadden Sea is resilient, accumulating sediment and expanding its intertidal areas.
  • Morphological changes, including steepening of tidal flats and channels, are quantified.
  • Findings provide critical data for understanding coastal dynamics and informing conservation strategies.