Assessing methane emissions from an offshore marine aggregate extraction site near Sylt, Eastern North Sea

Abstract. Coastal regions are estimated to contribute with up to 1 % to the global atmospheric methane (CH<sub>4</sub>) budget. However, these emissions remain highly uncertain due to strong spatial and temporal variability. Anthropogenic activities in coastal waters, such as sand mining...

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Main Authors: Schmidt, Martina (Author) , Bussmann, Ingeborg (Author) , Reith, Sarah J. E. (Author) , Palzer, Annika (Author) , Couret, Cedric (Author) , Keppler, Frank (Author) , Polag, Daniela (Author) , Sander, Lasse (Author) , Schroll, Moritz (Author) , Wietzel, Julia B. (Author)
Format: Article (Journal) Chapter/Article
Language:English
Published: 12 Nov 2025
In: EGUsphere
Year: 2025, Pages: 1-22
DOI:10.5194/egusphere-2025-4850
Online Access:Verlag, kostenfrei, Volltext: https://doi.org/10.5194/egusphere-2025-4850
Verlag, kostenfrei, Volltext: https://egusphere.copernicus.org/preprints/2025/egusphere-2025-4850/
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Author Notes:Martina Schmidt, Ingeborg Bussmann, Sarah J.E. Reith, Annika Palzer, Cedric Couret, Frank Keppler, Daniela Polag, Lasse Sander, Moritz Schroll, Julia B. Wietzel
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Summary:Abstract. Coastal regions are estimated to contribute with up to 1 % to the global atmospheric methane (CH<sub>4</sub>) budget. However, these emissions remain highly uncertain due to strong spatial and temporal variability. Anthropogenic activities in coastal waters, such as sand mining and beach nourishment, have not yet been investigated or included in the calculation of the resulting greenhouse gas emissions. Since 1984, regular beach nourishment has been carried out every summer on the west coast of the island of Sylt (North Sea, Germany). During this process, dredging vessels extract a mixture of sand and water from the seabed of a spatially confined area (Westerland II), situated approximately 8 km off the coast and deposit the material on the western beach and foreshore of Sylt. High resolution measurements of CH<sub>4</sub> in ambient air at the coastal atmospheric station Westerland (Sylt, Germany) show CH<sub>4</sub> spikes of up to 400 ppb above background concentrations. These spikes occurred mainly during summer season, during low tide and under westerly wind conditions (from the sand dredging area). To investigate the origin of the observed atmospheric CH<sub>4</sub> spikes, combined in-situ measurements of dissolved and atmospheric CH<sub>4 </sub>together with water sampling, were performed on board the research vessel RV <em>Mya II</em> (AWI) along a coastal transect from Sylt to the Westerland II dredging site. In the vicinity of the dredging site, elevated CH<sub>4</sub> concentrations were detected both in ambient air (400&ndash;500 ppb above background reaching up to 2450 ppb) and in surface and bottom waters (69&ndash;90 nmol L<sup>-1</sup>). This resulted in a mean diffusive flux of 45 &plusmn; 47 &micro;mol m<sup>-2</sup> d<sup>-1</sup> with a maximum value of 340 &micro;mol m<sup>-2 </sup>d<sup>-1</sup> in the dredging area, in contrast to a diffusive flux of 3.0 &plusmn; 3.6 &micro;mol m<sup>-2</sup> d<sup>-1</sup> during the transit. Our observations demonstrate significantly higher CH<sub>4</sub> concentrations and fluxes in both the atmosphere and the water column above the sand dredging site, compared to the areas outside the dredging activities. Furthermore, the isotopic composition of dissolved CH<sub>4</sub> within the dredging site characterized by more negative stable carbon and hydrogen isotope values, point to a microbial source of the excess CH<sub>4</sub>.
Item Description:Gesehen am 15.07.2026
Physical Description:Online Resource
DOI:10.5194/egusphere-2025-4850