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Aquatic methane dynamics in a human-impacted river-floodplain of the Danube.
Sieczko, Anna Katarzyna; Demeter, Katalin; Singer, Gabriel Andreas; Tritthart, Michael; Preiner, Stefan; Mayr, Magdalena; Meisterl, Karin; Peduzzi, Peter.
Afiliación
  • Sieczko AK; Department of Limnology and Bio-Oceanography, University of Vienna, Vienna, Austria.
  • Demeter K; Department of Limnology and Bio-Oceanography, University of Vienna, Vienna, Austria.
  • Singer GA; Department of Ecohydrology, Leibniz-Institute of Freshwater Ecology and Inland Fisheries, Berlin, Germany.
  • Tritthart M; Department of Water, Atmosphere and Environment, University of Natural Resources and Life Sciences, Vienna, Austria.
  • Preiner S; WasserCluster Lunz GmbH, Dr. Carl Kupelwieser Promenade 5, Lunz am See, Austria; University of Natural Resources and Life Sciences, Institute of Hydrobiology and Aquatic Ecosystem Management, Vienna, Austria.
  • Mayr M; Department of Limnology and Bio-Oceanography, University of Vienna, Vienna, Austria.
  • Meisterl K; Department of Limnology and Bio-Oceanography, University of Vienna, Vienna, Austria.
  • Peduzzi P; Department of Limnology and Bio-Oceanography, University of Vienna, Vienna, Austria.
Limnol Oceanogr ; 61(Suppl 1): S175-S187, 2016 Nov.
Article en En | MEDLINE | ID: mdl-27881883
ABSTRACT
River-floodplain systems are characterized by changing hydrological connectivity and variability of resources delivered to floodplain water bodies. Although the importance of hydrological events has been recognized, the effect of flooding on CH4 concentrations and emissions from European, human-impacted river-floodplains is largely unknown. This study evaluates aquatic concentrations and emissions of CH4 from a highly modified, yet partly restored river-floodplain system of the Danube near Vienna (Austria). We covered a broad range of hydrological conditions, including a 1-yr flood event in 2012 and a 100-yr flood in 2013. Our findings demonstrate that river-floodplain waters were supersaturated with CH4, hence always serving as a source of CH4 to the atmosphere. Hydrologically isolated habitats in general have higher concentrations and produce higher fluxes despite lower physically defined velocities. During surface connection, however, CH4 is exported from the floodplain to the river, suggesting that the main channel serves as an "exhaust pipe" for the floodplain. This mechanism was especially important during the 100-yr flood, when a clear pulse of CH4 was flushed from the floodplain with surface floodwaters. Our results emphasize the importance of floods differing in magnitude for methane evasion from river-floodplains; 34% more CH4 was emitted from the entire system during the year with the 100-yr flood compared to a hydrologically "normal" year. Compared to the main river channel, semiisolated floodplain waters were particularly strong sources of CH4. Our findings also imply that the predicted increased frequency of extreme flooding events will have significant consequences for methane emission from river-floodplain systems.

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: Limnol Oceanogr Año: 2016 Tipo del documento: Article País de afiliación: Austria

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: Limnol Oceanogr Año: 2016 Tipo del documento: Article País de afiliación: Austria