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    A Gas Tension Device with Response Times of Minutes

    Source: Journal of Atmospheric and Oceanic Technology:;2006:;volume( 023 ):;issue: 011::page 1539
    Author:
    McNeil, Craig
    ,
    D’Asaro, Eric
    ,
    Johnson, Bruce
    ,
    Horn, Matthew
    DOI: 10.1175/JTECH1974.1
    Publisher: American Meteorological Society
    Abstract: The development and testing of a new, fast response, profiling gas tension device (GTD) that measures total dissolved air pressure is presented. The new GTD equilibrates a sample volume of air using a newly developed (patent pending) tubular silicone polydimethylsiloxane (PDMS) membrane interface. The membrane interface is long, flexible, tubular, and is contained within a seawater-flushed hose. The membrane interface communicates pressure to a precise pressure gauge using low dead-volume stainless steel tubing. The pressure sensor and associated electronics are located remotely from the membrane interface. The new GTD has an operating depth in seawater of 0?300 m. The sensor was integrated onto an upper-ocean mixed layer, neutrally buoyant float, and used in air?sea gas exchange studies. Results of laboratory and pressure tank tests are presented to show response characteristics of the device. A significant hydrostatic response of the instrument was observed over the depth range of 0?9 m, and explained in terms of expulsion (or absorption) of dissolved air from the membrane after it is compressed (or decompressed). This undesirable feature of the device is unavoidable since a large exposed surface area of membrane is required to provide a rapid response. The minimum isothermal response time varies from (2 ± 1) min near the sea surface to (8 ± 2) min at 60-m depth. Results of field tests, performed in Puget Sound, Washington, during the summer of 2004, are reported, and include preliminary comparisons with mass-spectrometric analysis of in situ water samples analyzed for dissolved N2 and Ar. These tests served as preparations for deployment of two floats by aircraft into the advancing path of Hurricane Frances during September 2004 in the northwest Atlantic. The sensors performed remarkably well in the field. A model of the dynamical response of the GTD to changing hydrostatic pressure that accounts for membrane compressibility effects is presented. The model is used to correct the transient response of the GTD to enable a more precise measurement of gas tension when the float was profiling in the upper-ocean mixed layer beneath the hurricane.
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      A Gas Tension Device with Response Times of Minutes

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4227685
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    • Journal of Atmospheric and Oceanic Technology

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    contributor authorMcNeil, Craig
    contributor authorD’Asaro, Eric
    contributor authorJohnson, Bruce
    contributor authorHorn, Matthew
    date accessioned2017-06-09T17:23:25Z
    date available2017-06-09T17:23:25Z
    date copyright2006/11/01
    date issued2006
    identifier issn0739-0572
    identifier otherams-84358.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4227685
    description abstractThe development and testing of a new, fast response, profiling gas tension device (GTD) that measures total dissolved air pressure is presented. The new GTD equilibrates a sample volume of air using a newly developed (patent pending) tubular silicone polydimethylsiloxane (PDMS) membrane interface. The membrane interface is long, flexible, tubular, and is contained within a seawater-flushed hose. The membrane interface communicates pressure to a precise pressure gauge using low dead-volume stainless steel tubing. The pressure sensor and associated electronics are located remotely from the membrane interface. The new GTD has an operating depth in seawater of 0?300 m. The sensor was integrated onto an upper-ocean mixed layer, neutrally buoyant float, and used in air?sea gas exchange studies. Results of laboratory and pressure tank tests are presented to show response characteristics of the device. A significant hydrostatic response of the instrument was observed over the depth range of 0?9 m, and explained in terms of expulsion (or absorption) of dissolved air from the membrane after it is compressed (or decompressed). This undesirable feature of the device is unavoidable since a large exposed surface area of membrane is required to provide a rapid response. The minimum isothermal response time varies from (2 ± 1) min near the sea surface to (8 ± 2) min at 60-m depth. Results of field tests, performed in Puget Sound, Washington, during the summer of 2004, are reported, and include preliminary comparisons with mass-spectrometric analysis of in situ water samples analyzed for dissolved N2 and Ar. These tests served as preparations for deployment of two floats by aircraft into the advancing path of Hurricane Frances during September 2004 in the northwest Atlantic. The sensors performed remarkably well in the field. A model of the dynamical response of the GTD to changing hydrostatic pressure that accounts for membrane compressibility effects is presented. The model is used to correct the transient response of the GTD to enable a more precise measurement of gas tension when the float was profiling in the upper-ocean mixed layer beneath the hurricane.
    publisherAmerican Meteorological Society
    titleA Gas Tension Device with Response Times of Minutes
    typeJournal Paper
    journal volume23
    journal issue11
    journal titleJournal of Atmospheric and Oceanic Technology
    identifier doi10.1175/JTECH1974.1
    journal fristpage1539
    journal lastpage1558
    treeJournal of Atmospheric and Oceanic Technology:;2006:;volume( 023 ):;issue: 011
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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