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    Oxy-Combustion Modeling for Direct-Fired Supercritical CO2 Power Cycles

    Source: Journal of Energy Resources Technology:;2019:;volume( 141 ):;issue: 007::page 70706
    Author:
    Strakey, Peter A.
    DOI: 10.1115/1.4043124
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Supercritical CO2 power cycles for fossil energy power generation will likely employ oxy-combustion at very high pressures, possibly exceeding 300 bar. At these high pressures, a direct fired oxy-combustor is more likely to behave like a rocket engine than any type of conventional gas turbine combustor. Issues such as injector design, wall heat transfer, and combustion dynamics may play a challenging role in combustor design. Computational fluid dynamics modeling will not only be useful, but may be a necessity in the combustor design process. To accurately model turbulent reacting flows, combustion submodels appropriate for the conditions of interest as defined by the turbulent time and length scales as well as chemical kinetic time scales are necessary. This paper presents a comparison of various turbulence–chemistry interaction (TCI) modeling approaches on a canonical, single injector, direct-fired sCO2 combustor. Large eddy simulation is used to model the turbulent combustion process with varying levels of injector oxygen concentration while comparing the effect of the combustion submodel on CO emissions and flame shape. While experimental data are not yet available to validate the simulations, the sensitivity of CO production and flame shape can be studied as a function of combustion modeling approach and oxygen concentration in an effort to better understand how to approach combustion modeling at these unique conditions.
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      Oxy-Combustion Modeling for Direct-Fired Supercritical CO2 Power Cycles

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    contributor authorStrakey, Peter A.
    date accessioned2019-06-08T09:28:20Z
    date available2019-06-08T09:28:20Z
    date copyright3/29/2019 12:00:00 AM
    date issued2019
    identifier issn0195-0738
    identifier otherjert_141_07_070706.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4257520
    description abstractSupercritical CO2 power cycles for fossil energy power generation will likely employ oxy-combustion at very high pressures, possibly exceeding 300 bar. At these high pressures, a direct fired oxy-combustor is more likely to behave like a rocket engine than any type of conventional gas turbine combustor. Issues such as injector design, wall heat transfer, and combustion dynamics may play a challenging role in combustor design. Computational fluid dynamics modeling will not only be useful, but may be a necessity in the combustor design process. To accurately model turbulent reacting flows, combustion submodels appropriate for the conditions of interest as defined by the turbulent time and length scales as well as chemical kinetic time scales are necessary. This paper presents a comparison of various turbulence–chemistry interaction (TCI) modeling approaches on a canonical, single injector, direct-fired sCO2 combustor. Large eddy simulation is used to model the turbulent combustion process with varying levels of injector oxygen concentration while comparing the effect of the combustion submodel on CO emissions and flame shape. While experimental data are not yet available to validate the simulations, the sensitivity of CO production and flame shape can be studied as a function of combustion modeling approach and oxygen concentration in an effort to better understand how to approach combustion modeling at these unique conditions.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleOxy-Combustion Modeling for Direct-Fired Supercritical CO2 Power Cycles
    typeJournal Paper
    journal volume141
    journal issue7
    journal titleJournal of Energy Resources Technology
    identifier doi10.1115/1.4043124
    journal fristpage70706
    journal lastpage070706-8
    treeJournal of Energy Resources Technology:;2019:;volume( 141 ):;issue: 007
    contenttypeFulltext
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