Technical note: Measurements and data analysis of sediment–water oxygen flux using a new dual-optode eddy covariance instrument

<p>Sediment–water oxygen fluxes are widely used as a proxy for organic carbon production and mineralization at the seafloor. In situ fluxes can be measured non-invasively with the aquatic eddy covariance technique, but a critical requirement is that the sensors of the instrument are able to co...

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Main Authors: M. Huettel, P. Berg, A. Merikhi
Format: Article
Language:English
Published: Copernicus Publications 2020-09-01
Series:Biogeosciences
Online Access:https://bg.copernicus.org/articles/17/4459/2020/bg-17-4459-2020.pdf
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spelling doaj-cf1b1fb6661b42b28af303a174f0b7a22020-11-25T01:58:54ZengCopernicus PublicationsBiogeosciences1726-41701726-41892020-09-01174459447610.5194/bg-17-4459-2020Technical note: Measurements and data analysis of sediment–water oxygen flux using a new dual-optode eddy covariance instrumentM. Huettel0P. Berg1A. Merikhi2Department of Earth, Ocean and Atmospheric Science, Florida State University, Tallahassee, FL 32306-4520, USADepartment of Environmental Sciences, University of Virginia, Charlottesville, VA 22904-4123, USADepartment of Earth, Ocean and Atmospheric Science, Florida State University, Tallahassee, FL 32306-4520, USA<p>Sediment–water oxygen fluxes are widely used as a proxy for organic carbon production and mineralization at the seafloor. In situ fluxes can be measured non-invasively with the aquatic eddy covariance technique, but a critical requirement is that the sensors of the instrument are able to correctly capture the high-frequency variations in dissolved oxygen concentration and vertical velocity. Even small changes in sensor characteristics during deployment as caused, e.g. by biofouling can result in erroneous flux data. Here we present a dual-optode eddy covariance instrument (2OEC) with two fast oxygen fibre sensors and document how erroneous flux interpretations and data loss can effectively be reduced by this hardware and a new data analysis approach. With deployments over a carbonate sandy sediment in the Florida Keys and comparison with parallel benthic advection chamber incubations, we demonstrate the improved data quality and data reliability facilitated by the instrument and associated data processing. Short-term changes in flux that are dubious in measurements with single oxygen sensor instruments can be confirmed or rejected with the 2OEC and in our deployments provided new insights into the temporal dynamics of benthic oxygen flux in permeable carbonate sands. Under steady conditions, representative benthic flux data can be generated with the 2OEC within a couple of hours, making this technique suitable for mapping sediment–water, intra-water column, or atmosphere–water fluxes.</p>https://bg.copernicus.org/articles/17/4459/2020/bg-17-4459-2020.pdf
collection DOAJ
language English
format Article
sources DOAJ
author M. Huettel
P. Berg
A. Merikhi
spellingShingle M. Huettel
P. Berg
A. Merikhi
Technical note: Measurements and data analysis of sediment–water oxygen flux using a new dual-optode eddy covariance instrument
Biogeosciences
author_facet M. Huettel
P. Berg
A. Merikhi
author_sort M. Huettel
title Technical note: Measurements and data analysis of sediment–water oxygen flux using a new dual-optode eddy covariance instrument
title_short Technical note: Measurements and data analysis of sediment–water oxygen flux using a new dual-optode eddy covariance instrument
title_full Technical note: Measurements and data analysis of sediment–water oxygen flux using a new dual-optode eddy covariance instrument
title_fullStr Technical note: Measurements and data analysis of sediment–water oxygen flux using a new dual-optode eddy covariance instrument
title_full_unstemmed Technical note: Measurements and data analysis of sediment–water oxygen flux using a new dual-optode eddy covariance instrument
title_sort technical note: measurements and data analysis of sediment–water oxygen flux using a new dual-optode eddy covariance instrument
publisher Copernicus Publications
series Biogeosciences
issn 1726-4170
1726-4189
publishDate 2020-09-01
description <p>Sediment–water oxygen fluxes are widely used as a proxy for organic carbon production and mineralization at the seafloor. In situ fluxes can be measured non-invasively with the aquatic eddy covariance technique, but a critical requirement is that the sensors of the instrument are able to correctly capture the high-frequency variations in dissolved oxygen concentration and vertical velocity. Even small changes in sensor characteristics during deployment as caused, e.g. by biofouling can result in erroneous flux data. Here we present a dual-optode eddy covariance instrument (2OEC) with two fast oxygen fibre sensors and document how erroneous flux interpretations and data loss can effectively be reduced by this hardware and a new data analysis approach. With deployments over a carbonate sandy sediment in the Florida Keys and comparison with parallel benthic advection chamber incubations, we demonstrate the improved data quality and data reliability facilitated by the instrument and associated data processing. Short-term changes in flux that are dubious in measurements with single oxygen sensor instruments can be confirmed or rejected with the 2OEC and in our deployments provided new insights into the temporal dynamics of benthic oxygen flux in permeable carbonate sands. Under steady conditions, representative benthic flux data can be generated with the 2OEC within a couple of hours, making this technique suitable for mapping sediment–water, intra-water column, or atmosphere–water fluxes.</p>
url https://bg.copernicus.org/articles/17/4459/2020/bg-17-4459-2020.pdf
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AT amerikhi technicalnotemeasurementsanddataanalysisofsedimentwateroxygenfluxusinganewdualoptodeeddycovarianceinstrument
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