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Main Authors: Mau, Susan, Gentz, Torben, Körber, Jan-Hendrik, Torres, Marta E, Römer, Miriam, Sahling, Heiko, Wintersteller, Paul, Martinez, Roi, Schlüter, Michael, Helmke, Elisabeth
Format: Dataset Open Access
Language:en
Published: PANGAEA 2015
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Online Access:https://doi.org/10.1594/PANGAEA.854990
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author Mau, Susan
Gentz, Torben
Körber, Jan-Hendrik
Torres, Marta E
Römer, Miriam
Sahling, Heiko
Wintersteller, Paul
Martinez, Roi
Schlüter, Michael
Helmke, Elisabeth
author_facet Mau, Susan
Gentz, Torben
Körber, Jan-Hendrik
Torres, Marta E
Römer, Miriam
Sahling, Heiko
Wintersteller, Paul
Martinez, Roi
Schlüter, Michael
Helmke, Elisabeth
collection Datos científicos de ciencias marinas y ambientales
contents We investigated dissolved methane distributions along a 6 km transect crossing active seep sites at 40 m water depth in the central North Sea. These investigations were done under conditions of thermal stratification in summer (July 2013) and homogenous water column in winter (January 2014). Dissolved methane accumulated below the seasonal thermocline in summer with a median concentration of 390 nM, whereas during winter, methane concentrations were typically much lower (median concentration of 22 nM). High-resolution methane analysis using an underwater mass-spectrometer confirmed our summer results and was used to document prevailing stratification over the tidal cycle. We contrast estimates of methane oxidation rates (from 0.1 to 4.0 nM day**-1) using the traditional approach scaled to methane concentrations with microbial turnover time values and suggest that the scaling to concentration may obscure the ecosystem microbial activity when comparing systems with different methane concentrations. Our measured and averaged rate constants (k') were on the order of 0.01 day**-1, equivalent to a turnover time of 100 days, even when summer stratification led to enhanced methane concentrations in the bottom water. Consistent with these observations, we could not detect known methanotrophs and pmoA genes in water samples collected during both seasons. Estimated methane fluxes indicate that horizontal transport is the dominant process dispersing the methane plume. During periods of high wind speed (winter), more methane is lost to the atmosphere than oxidized in the water. Microbial oxidation seems of minor importance throughout the year.
format Dataset Open Access
id pangaea_https___doi_org_10_1594_PANGAEA_854990
institution PANGAEA
language en
publishDate 2015
publisher PANGAEA
record_format pangaea
spellingShingle Methane concentrations in the central North Sea
Mau, Susan
Gentz, Torben
Körber, Jan-Hendrik
Torres, Marta E
Römer, Miriam
Sahling, Heiko
Wintersteller, Paul
Martinez, Roi
Schlüter, Michael
Helmke, Elisabeth
AWI_PhyOce; Center for Marine Environmental Sciences; MARUM; Physical Oceanography @ AWI
We investigated dissolved methane distributions along a 6 km transect crossing active seep sites at 40 m water depth in the central North Sea. These investigations were done under conditions of thermal stratification in summer (July 2013) and homogenous water column in winter (January 2014). Dissolved methane accumulated below the seasonal thermocline in summer with a median concentration of 390 nM, whereas during winter, methane concentrations were typically much lower (median concentration of 22 nM). High-resolution methane analysis using an underwater mass-spectrometer confirmed our summer results and was used to document prevailing stratification over the tidal cycle. We contrast estimates of methane oxidation rates (from 0.1 to 4.0 nM day**-1) using the traditional approach scaled to methane concentrations with microbial turnover time values and suggest that the scaling to concentration may obscure the ecosystem microbial activity when comparing systems with different methane concentrations. Our measured and averaged rate constants (k') were on the order of 0.01 day**-1, equivalent to a turnover time of 100 days, even when summer stratification led to enhanced methane concentrations in the bottom water. Consistent with these observations, we could not detect known methanotrophs and pmoA genes in water samples collected during both seasons. Estimated methane fluxes indicate that horizontal transport is the dominant process dispersing the methane plume. During periods of high wind speed (winter), more methane is lost to the atmosphere than oxidized in the water. Microbial oxidation seems of minor importance throughout the year.
title Methane concentrations in the central North Sea
topic AWI_PhyOce; Center for Marine Environmental Sciences; MARUM; Physical Oceanography @ AWI
url https://doi.org/10.1594/PANGAEA.854990