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    Reaction Model Development of Selected Aromatics as Relevant Molecules of a Kerosene Surrogate—The Importance of m-Xylene Within the Combustion of 1,3,5-Trimethylbenzene

    Source: Journal of Engineering for Gas Turbines and Power:;2021:;volume( 144 ):;issue: 002::page 21002-1
    Author:
    Ramirez Hernandez, Astrid
    ,
    Kathrotia, Trupti
    ,
    Methling, Torsten
    ,
    Braun-Unkhoff, Marina
    ,
    Riedel, Uwe
    DOI: 10.1115/1.4052206
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The development of advanced reaction models to predict pollutant emissions in aero-engine combustors usually relies on surrogate formulations of a specific jet fuel for mimicking its chemical composition. 1,3,5-trimethylbenzene is one of the suitable components to represent aromatics species in those surrogates. However, a comprehensive reaction model for 1,3,5-trimethylbenzene combustion requires a mechanism to describe the m-xylene oxidation. In this work, the development of a chemical kinetic mechanism for describing the m-xylene combustion in a wide parameter range (i.e., temperature, pressure, and fuel equivalence ratios) is presented. The m-xylene reaction submodel was developed based on existing reaction mechanisms of similar species such as toluene and reaction pathways adapted from literature. The submodel was integrated into an existing detailed mechanism that contains the kinetics of a wide range of n-paraffins, isoparaffins, cycloparaffins, and aromatics. Simulation results for m-xylene were validated against experimental data available in literature. Results show that the presented m-xylene mechanism correctly predicts ignition delay times at different pressures and temperatures as well as laminar burning velocities at atmospheric pressure and various fuel equivalence ratios. At high pressure, some deviations of the calculated laminar burning velocity and the measured values are obtained at stoichiometric to rich equivalence ratios. Additionally, the model predicts reasonably well concentration profiles of major and intermediate species at different temperatures and atmospheric pressure.
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      Reaction Model Development of Selected Aromatics as Relevant Molecules of a Kerosene Surrogate—The Importance of m-Xylene Within the Combustion of 1,3,5-Trimethylbenzene

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4284926
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    • Journal of Engineering for Gas Turbines and Power

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    contributor authorRamirez Hernandez, Astrid
    contributor authorKathrotia, Trupti
    contributor authorMethling, Torsten
    contributor authorBraun-Unkhoff, Marina
    contributor authorRiedel, Uwe
    date accessioned2022-05-08T09:16:18Z
    date available2022-05-08T09:16:18Z
    date copyright10/20/2021 12:00:00 AM
    date issued2021
    identifier issn0742-4795
    identifier othergtp_144_02_021002.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4284926
    description abstractThe development of advanced reaction models to predict pollutant emissions in aero-engine combustors usually relies on surrogate formulations of a specific jet fuel for mimicking its chemical composition. 1,3,5-trimethylbenzene is one of the suitable components to represent aromatics species in those surrogates. However, a comprehensive reaction model for 1,3,5-trimethylbenzene combustion requires a mechanism to describe the m-xylene oxidation. In this work, the development of a chemical kinetic mechanism for describing the m-xylene combustion in a wide parameter range (i.e., temperature, pressure, and fuel equivalence ratios) is presented. The m-xylene reaction submodel was developed based on existing reaction mechanisms of similar species such as toluene and reaction pathways adapted from literature. The submodel was integrated into an existing detailed mechanism that contains the kinetics of a wide range of n-paraffins, isoparaffins, cycloparaffins, and aromatics. Simulation results for m-xylene were validated against experimental data available in literature. Results show that the presented m-xylene mechanism correctly predicts ignition delay times at different pressures and temperatures as well as laminar burning velocities at atmospheric pressure and various fuel equivalence ratios. At high pressure, some deviations of the calculated laminar burning velocity and the measured values are obtained at stoichiometric to rich equivalence ratios. Additionally, the model predicts reasonably well concentration profiles of major and intermediate species at different temperatures and atmospheric pressure.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleReaction Model Development of Selected Aromatics as Relevant Molecules of a Kerosene Surrogate—The Importance of m-Xylene Within the Combustion of 1,3,5-Trimethylbenzene
    typeJournal Paper
    journal volume144
    journal issue2
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4052206
    journal fristpage21002-1
    journal lastpage21002-8
    page8
    treeJournal of Engineering for Gas Turbines and Power:;2021:;volume( 144 ):;issue: 002
    contenttypeFulltext
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