Autonomous methane seep site monitoring offshore western Svalbard: hourly to seasonal variability and associated oceanographic parameters
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Published:2022-02-18
Issue:1
Volume:18
Page:233-254
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ISSN:1812-0792
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Container-title:Ocean Science
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language:en
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Short-container-title:Ocean Sci.
Author:
Dølven Knut OlaORCID, Ferré BénédicteORCID, Silyakova AnnaORCID, Jansson Pär, Linke PeterORCID, Moser ManuelORCID
Abstract
Abstract. Improved quantification techniques of natural sources are needed to explain variations in atmospheric methane. In polar regions, high uncertainties in current estimates of methane release from the seabed remain. We present unique 10- and 3-month time series of bottom water measurements of physical and chemical parameters from two autonomous ocean observatories deployed at separate intense seabed methane seep sites (91 and 246 m depth) offshore western Svalbard from 2015 to 2016. Results show high short-term (100–1000 nmol L−1 within hours) and seasonal variation, as well as higher (2–7 times) methane concentrations compared to previous measurements. Rapid variability is explained by uneven distribution of seepage and changing ocean current directions. No overt influence of tidal hydrostatic pressure or water temperature variations on methane concentration was observed, but an observed negative correlation with temperature at the 246 m site fits with hypothesized seasonal blocking of lateral methane pathways in the sediments. Negative correlation between bottom water methane concentration (and variability) and wind forcing, concomitant with signs of weaker water column stratification, indicates increased potential for methane release to the atmosphere in fall and winter. We present new information about short- and long-term methane variability and provide a preliminary constraint on the uncertainties that arise in methane inventory estimates from this variability.
Funder
Norges Forskningsråd
Publisher
Copernicus GmbH
Subject
Cell Biology,Developmental Biology,Embryology,Anatomy
Reference66 articles.
1. Ayyub, B. M. and McCuen, R. H.: Probability, Statistics, and Reliability for
Engineers and Scientists, Chapman & Hall/CRC, 3rd Edn., CRC Press, p. 409, ISBN 9781439809518, 2011. a 2. Berndt, C., Feseker, T., Treude, T., Krastel, S., Liebetrau, V., Niemann, H.,
Bertics, V. J., Dumke, I., Dünnbier, K., Ferré, B., Graves, C.,
Gross, F., Hissmann, K., Hühnerbach, V., Krause, S., Lieser, K.,
Schauer, J., and Steinle, L.: Temporal Constraints on Hydrate-Controlled
Methane Seepage off Svalbard, Science, 343, 284–287,
https://doi.org/10.1126/science.1246298, 2014. a 3. Braga, R., Iglesias, R., Romio, C., Praeg, D., Miller, D., Viana, A., and
Ketzer, J.: Modelling methane hydrate stability changes and gas release due
to seasonal oscillations in bottom water temperatures on the Rio Grande cone,
offshore southern Brazil, Mar. Petrol. Geol., 112, 104071,
https://doi.org/10.1016/j.marpetgeo.2019.104071, 2020. a 4. Canning, A., Fietzek, P., Rehder, G., and Körtzinger, A.: Technical
note: Seamless gas measurements across the land–ocean aquatic continuum –
corrections and evaluation of sensor data for CO2, CH4 and O2 from field
deployments in contrasting environments, Biogeosciences, 18, 1351–1373,
https://doi.org/10.5194/bg-18-1351-2021, 2021. a 5. Contros GmbH: CONTROS HydroC™ CH4 Sensor for dissolved methane,
available at: https://www.kongsberg.com/globalassets/ (last access: 5 January 2022),
2018. a
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