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Membrane Based Measurement Technology for in situ Monitoring of Gases in Soil

The representative measurement of gas concentration and fluxes in heterogeneous soils is one of the current challenges when analyzing the interactions of biogeochemical processes in soils and global change. Furthermore, recent research projects on CO(2)-sequestration have an urgent need of CO(2)-mon...

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Autores principales: Lazik, Detlef, Ebert, Sebastian, Leuthold, Martin, Hagenau, Jens, Geistlinger, Helmut
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Molecular Diversity Preservation International (MDPI) 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3280829/
https://www.ncbi.nlm.nih.gov/pubmed/22399937
http://dx.doi.org/10.3390/s90200756
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author Lazik, Detlef
Ebert, Sebastian
Leuthold, Martin
Hagenau, Jens
Geistlinger, Helmut
author_facet Lazik, Detlef
Ebert, Sebastian
Leuthold, Martin
Hagenau, Jens
Geistlinger, Helmut
author_sort Lazik, Detlef
collection PubMed
description The representative measurement of gas concentration and fluxes in heterogeneous soils is one of the current challenges when analyzing the interactions of biogeochemical processes in soils and global change. Furthermore, recent research projects on CO(2)-sequestration have an urgent need of CO(2)-monitoring networks. Therefore, a measurement method based on selective permeation of gases through tubular membranes has been developed. Combining the specific permeation rates of gas components for a membrane and Dalton's principle, the gas concentration (or partial pressure) can be determined by the measurement of physical quantities (pressure or volume) only. Due to the comparatively small permeation constants of membranes, the influence of the sensor on its surrounding area can be neglected. The design of the sensor membranes can be adapted to the spatial scale from the bench scale to the field scale. The sensitive area for the measurement can be optimized to obtain representative results. Furthermore, a continuous time-averaged measurement is possible where the time for averaging is simply controlled by the wall-thickness of the membrane used. The measuring method is demonstrated for continuous monitoring of O(2) and CO(2) inside of a sand filled Lysimeter. Using three sensor planes inside the sand pack, which were installed normal to the gas flow direction and a reference measurement system, we demonstrate the accuracy of the gas-detection for different flux-based boundary conditions.
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spelling pubmed-32808292012-03-07 Membrane Based Measurement Technology for in situ Monitoring of Gases in Soil Lazik, Detlef Ebert, Sebastian Leuthold, Martin Hagenau, Jens Geistlinger, Helmut Sensors (Basel) Article The representative measurement of gas concentration and fluxes in heterogeneous soils is one of the current challenges when analyzing the interactions of biogeochemical processes in soils and global change. Furthermore, recent research projects on CO(2)-sequestration have an urgent need of CO(2)-monitoring networks. Therefore, a measurement method based on selective permeation of gases through tubular membranes has been developed. Combining the specific permeation rates of gas components for a membrane and Dalton's principle, the gas concentration (or partial pressure) can be determined by the measurement of physical quantities (pressure or volume) only. Due to the comparatively small permeation constants of membranes, the influence of the sensor on its surrounding area can be neglected. The design of the sensor membranes can be adapted to the spatial scale from the bench scale to the field scale. The sensitive area for the measurement can be optimized to obtain representative results. Furthermore, a continuous time-averaged measurement is possible where the time for averaging is simply controlled by the wall-thickness of the membrane used. The measuring method is demonstrated for continuous monitoring of O(2) and CO(2) inside of a sand filled Lysimeter. Using three sensor planes inside the sand pack, which were installed normal to the gas flow direction and a reference measurement system, we demonstrate the accuracy of the gas-detection for different flux-based boundary conditions. Molecular Diversity Preservation International (MDPI) 2009-02-02 /pmc/articles/PMC3280829/ /pubmed/22399937 http://dx.doi.org/10.3390/s90200756 Text en © 2009 by the authors; licensee Molecular Diversity Preservation International, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Lazik, Detlef
Ebert, Sebastian
Leuthold, Martin
Hagenau, Jens
Geistlinger, Helmut
Membrane Based Measurement Technology for in situ Monitoring of Gases in Soil
title Membrane Based Measurement Technology for in situ Monitoring of Gases in Soil
title_full Membrane Based Measurement Technology for in situ Monitoring of Gases in Soil
title_fullStr Membrane Based Measurement Technology for in situ Monitoring of Gases in Soil
title_full_unstemmed Membrane Based Measurement Technology for in situ Monitoring of Gases in Soil
title_short Membrane Based Measurement Technology for in situ Monitoring of Gases in Soil
title_sort membrane based measurement technology for in situ monitoring of gases in soil
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3280829/
https://www.ncbi.nlm.nih.gov/pubmed/22399937
http://dx.doi.org/10.3390/s90200756
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