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    Numerical Investigation of Effusion Cooling Air Influence on the CO Emissions for a Single-Sector Aero-Engine Model Combustor

    Source: Journal of Engineering for Gas Turbines and Power:;2024:;volume( 146 ):;issue: 012::page 121014-1
    Author:
    Recio Balmaseda, Sandra
    ,
    Karpowski, Tim Jeremy Patrick
    ,
    Nicolai, Hendrik
    ,
    Koob, Philipp
    ,
    Hasse, Christian
    ,
    Greifenstein, Max
    ,
    Dreizler, Andreas
    DOI: 10.1115/1.4066159
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Stricter aviation emissions regulations have led to the desire for lean-premixed-vaporized (LPP) combustors over rich–quench–lean (RQL) burners. While this operation mode is beneficial for reducing NOx and particulate emissions, the interaction of the flame and hot exhaust gases with the cooling flow results in increased CO emissions. Predicting CO in computational fluid dynamics (CFD) simulations remains challenging. To assess current model performance under practically relevant conditions, large-eddy simulation (LES) of a lab-scale effusion cooling test-rig is performed. Flamelet-based manifolds, in combination with the artificial thickened flame (ATF) approach, are utilized to model the turbulence–chemistry interaction (TCI) in the test-rig with detailed chemical kinetics at reduced computational costs. Heat losses are considered via exhaust gas recirculation (EGR). Local transport effects in CO emissions are included through an additional transport equation. Additionally, a conjugate heat transfer (CHT) simulation is performed for good estimations of the thermal boundary conditions. Extensive validation of this comprehensive model is conducted using the available experimental dataset for the studied configuration. Subsequently, model sensitivities for predicting CO are assessed, including the progress variable definition and the formulation of the CO source term in the corresponding transport equation. To investigate the flame thickening influence in the calculated CO, an ATF post-processing correction is further developed. Integrating multiple sophisticated pollutant submodels and evaluating their sensitivity offers insights for future investigations into modeling CO emissions in aero-engines and stationary gas turbines.
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      Numerical Investigation of Effusion Cooling Air Influence on the CO Emissions for a Single-Sector Aero-Engine Model Combustor

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    contributor authorRecio Balmaseda, Sandra
    contributor authorKarpowski, Tim Jeremy Patrick
    contributor authorNicolai, Hendrik
    contributor authorKoob, Philipp
    contributor authorHasse, Christian
    contributor authorGreifenstein, Max
    contributor authorDreizler, Andreas
    date accessioned2024-12-24T18:56:15Z
    date available2024-12-24T18:56:15Z
    date copyright9/5/2024 12:00:00 AM
    date issued2024
    identifier issn0742-4795
    identifier othergtp_146_12_121014.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4303011
    description abstractStricter aviation emissions regulations have led to the desire for lean-premixed-vaporized (LPP) combustors over rich–quench–lean (RQL) burners. While this operation mode is beneficial for reducing NOx and particulate emissions, the interaction of the flame and hot exhaust gases with the cooling flow results in increased CO emissions. Predicting CO in computational fluid dynamics (CFD) simulations remains challenging. To assess current model performance under practically relevant conditions, large-eddy simulation (LES) of a lab-scale effusion cooling test-rig is performed. Flamelet-based manifolds, in combination with the artificial thickened flame (ATF) approach, are utilized to model the turbulence–chemistry interaction (TCI) in the test-rig with detailed chemical kinetics at reduced computational costs. Heat losses are considered via exhaust gas recirculation (EGR). Local transport effects in CO emissions are included through an additional transport equation. Additionally, a conjugate heat transfer (CHT) simulation is performed for good estimations of the thermal boundary conditions. Extensive validation of this comprehensive model is conducted using the available experimental dataset for the studied configuration. Subsequently, model sensitivities for predicting CO are assessed, including the progress variable definition and the formulation of the CO source term in the corresponding transport equation. To investigate the flame thickening influence in the calculated CO, an ATF post-processing correction is further developed. Integrating multiple sophisticated pollutant submodels and evaluating their sensitivity offers insights for future investigations into modeling CO emissions in aero-engines and stationary gas turbines.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleNumerical Investigation of Effusion Cooling Air Influence on the CO Emissions for a Single-Sector Aero-Engine Model Combustor
    typeJournal Paper
    journal volume146
    journal issue12
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4066159
    journal fristpage121014-1
    journal lastpage121014-9
    page9
    treeJournal of Engineering for Gas Turbines and Power:;2024:;volume( 146 ):;issue: 012
    contenttypeFulltext
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