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    Steady State Radiolysis of Supercritical Water: Model Predictions and Validation

    Source: Journal of Nuclear Engineering and Radiation Science:;2016:;volume( 002 ):;issue: 002::page 21021
    Author:
    Subramanian, V.
    ,
    Joseph, J. M.
    ,
    Subramanian, H.
    ,
    Noأ«l, J. J.
    ,
    Guzonas, D. A.
    ,
    Wren, J. C.
    DOI: 10.1115/1.4031199
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Chemical kinetic models are being developed for the خ³radiolysis of subcritical and supercritical water (SCW) to estimate the concentrations of radiolytically produced oxidants. Many of the physical properties of water change sharply at the critical point. These properties control the chemical stability and transport behavior of the ions and radicals generated by the radiolysis of SCW. The effects of changes in the solvent properties of water on primary radiolytic processes and the subsequent aqueous reaction kinetics can be quite complicated and are not yet well understood. The approach used in this paper was to adapt an existing liquid water radiolysis model (LRM) that has already been validated for lower temperatures and a water vapor radiolysis model (VRM) validated for higher temperatures, but for lower pressures, to calculate radiolysis product speciation under conditions approaching the supercritical state. The results were then extrapolated to the supercritical regime by doing critical analysis of the input parameters. This exercise found that the vaporlike and liquidlike models make similar predictions under some conditions. This paper presents and discusses the LRM and VRM predictions for the concentrations of molecular radiolysis products, H2, O2, and H2O2 at two different irradiation times, 1آ s and 1آ hr, as a function of temperature ranging from 25آ°C to 400آ°C. The model simulation results are then compared with the concentrations of H2, O2, and H2O2 measured as a function of خ³irradiation time at 250آ°C. Model predictions on the effect of H2 addition on the radiolysis product concentrations at 400آ°C are presented and compared with the experimental results from the Beloyarsk Nuclear Power Plant (NPP).
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      Steady State Radiolysis of Supercritical Water: Model Predictions and Validation

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    http://yetl.yabesh.ir/yetl1/handle/yetl/162187
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    contributor authorSubramanian, V.
    contributor authorJoseph, J. M.
    contributor authorSubramanian, H.
    contributor authorNoأ«l, J. J.
    contributor authorGuzonas, D. A.
    contributor authorWren, J. C.
    date accessioned2017-05-09T01:32:10Z
    date available2017-05-09T01:32:10Z
    date issued2016
    identifier issn2332-8983
    identifier otherNERS_2_2_021021.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/162187
    description abstractChemical kinetic models are being developed for the خ³radiolysis of subcritical and supercritical water (SCW) to estimate the concentrations of radiolytically produced oxidants. Many of the physical properties of water change sharply at the critical point. These properties control the chemical stability and transport behavior of the ions and radicals generated by the radiolysis of SCW. The effects of changes in the solvent properties of water on primary radiolytic processes and the subsequent aqueous reaction kinetics can be quite complicated and are not yet well understood. The approach used in this paper was to adapt an existing liquid water radiolysis model (LRM) that has already been validated for lower temperatures and a water vapor radiolysis model (VRM) validated for higher temperatures, but for lower pressures, to calculate radiolysis product speciation under conditions approaching the supercritical state. The results were then extrapolated to the supercritical regime by doing critical analysis of the input parameters. This exercise found that the vaporlike and liquidlike models make similar predictions under some conditions. This paper presents and discusses the LRM and VRM predictions for the concentrations of molecular radiolysis products, H2, O2, and H2O2 at two different irradiation times, 1آ s and 1آ hr, as a function of temperature ranging from 25آ°C to 400آ°C. The model simulation results are then compared with the concentrations of H2, O2, and H2O2 measured as a function of خ³irradiation time at 250آ°C. Model predictions on the effect of H2 addition on the radiolysis product concentrations at 400آ°C are presented and compared with the experimental results from the Beloyarsk Nuclear Power Plant (NPP).
    publisherThe American Society of Mechanical Engineers (ASME)
    titleSteady State Radiolysis of Supercritical Water: Model Predictions and Validation
    typeJournal Paper
    journal volume2
    journal issue2
    journal titleJournal of Nuclear Engineering and Radiation Science
    identifier doi10.1115/1.4031199
    journal fristpage21021
    journal lastpage21021
    treeJournal of Nuclear Engineering and Radiation Science:;2016:;volume( 002 ):;issue: 002
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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