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    Oxygen Transfer Model for a Flow-Through Hollow-Fiber Membrane Biofilm Reactor

    Source: Journal of Environmental Engineering:;2009:;Volume ( 135 ):;issue: 009
    Author:
    Kevin R. Gilmore
    ,
    John C. Little
    ,
    Barth F. Smets
    ,
    Nancy G. Love
    DOI: 10.1061/(ASCE)EE.1943-7870.0000035
    Publisher: American Society of Civil Engineers
    Abstract: A mechanistic oxygen transfer model was developed and applied to a flow-through hollow-fiber membrane-aerated biofilm reactor. Model results are compared to conventional clean water test results as well as performance data obtained when an actively nitrifying biofilm was present on the fibers. With the biofilm present, oxygen transfer efficiencies between 30 and 55% were calculated from the measured data including the outlet gas oxygen concentration, ammonia consumption stoichiometry, and oxidized nitrogen production stoichiometry, all of which were in reasonable agreement. The mechanistic model overpredicted the oxygen transfer by a factor of 1.3 relative to the result calculated from the outlet gas oxygen concentration, which was considered the most accurate of the measured benchmarks. A mass transfer coefficient derived from the clean water testing with oxygen sensors at the membrane-liquid interface was the most accurate of the predictive models (overpredicted by a factor of 1.1) while a coefficient determined by measuring bulk liquid dissolved oxygen underpredicted the oxygen transfer by a factor of 3. The mechanistic model was found to be an adequate tool for design because it used the published diffusion and partition coefficients rather than requiring small-scale testing to determine the system-specific mass transfer coefficients.
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      Oxygen Transfer Model for a Flow-Through Hollow-Fiber Membrane Biofilm Reactor

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    http://yetl.yabesh.ir/yetl1/handle/yetl/59443
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    • Journal of Environmental Engineering

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    contributor authorKevin R. Gilmore
    contributor authorJohn C. Little
    contributor authorBarth F. Smets
    contributor authorNancy G. Love
    date accessioned2017-05-08T21:41:22Z
    date available2017-05-08T21:41:22Z
    date copyrightSeptember 2009
    date issued2009
    identifier other%28asce%29ee%2E1943-7870%2E0000043.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/59443
    description abstractA mechanistic oxygen transfer model was developed and applied to a flow-through hollow-fiber membrane-aerated biofilm reactor. Model results are compared to conventional clean water test results as well as performance data obtained when an actively nitrifying biofilm was present on the fibers. With the biofilm present, oxygen transfer efficiencies between 30 and 55% were calculated from the measured data including the outlet gas oxygen concentration, ammonia consumption stoichiometry, and oxidized nitrogen production stoichiometry, all of which were in reasonable agreement. The mechanistic model overpredicted the oxygen transfer by a factor of 1.3 relative to the result calculated from the outlet gas oxygen concentration, which was considered the most accurate of the measured benchmarks. A mass transfer coefficient derived from the clean water testing with oxygen sensors at the membrane-liquid interface was the most accurate of the predictive models (overpredicted by a factor of 1.1) while a coefficient determined by measuring bulk liquid dissolved oxygen underpredicted the oxygen transfer by a factor of 3. The mechanistic model was found to be an adequate tool for design because it used the published diffusion and partition coefficients rather than requiring small-scale testing to determine the system-specific mass transfer coefficients.
    publisherAmerican Society of Civil Engineers
    titleOxygen Transfer Model for a Flow-Through Hollow-Fiber Membrane Biofilm Reactor
    typeJournal Paper
    journal volume135
    journal issue9
    journal titleJournal of Environmental Engineering
    identifier doi10.1061/(ASCE)EE.1943-7870.0000035
    treeJournal of Environmental Engineering:;2009:;Volume ( 135 ):;issue: 009
    contenttypeFulltext
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