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    High-Fidelity Energy Deposition Ignition Model Coupled With Flame Propagation Models at Engine-Like Flow Conditions

    Source: Journal of Engineering for Gas Turbines and Power:;2023:;volume( 145 ):;issue: 005::page 51022-1
    Author:
    Kazmouz, Samuel J.
    ,
    Scarcelli, Riccardo
    ,
    Kim, Joohan
    ,
    Cheng, Zhen
    ,
    Liu, Shuaishuai
    ,
    Dai, Meizhong
    ,
    Pomraning, Eric
    ,
    Senecal, Peter K.
    ,
    Lee, Seong-Young
    DOI: 10.1115/1.4056098
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: With the heightened pressure on car manufacturers to increase the efficiency and reduce the carbon emissions of their fleets, more challenging engine operation has become a viable option. Highly dilute, boosted, and stratified charge, among others, promise engine efficiency gains and emissions reductions. At such demanding engine conditions, the spark-ignition process is a key factor for the flame initiation propagation and the combustion event. From a computational standpoint, there exist multiple spark-ignition models that perform well under conventional conditions but are not truly predictive under strenuous engine operation modes, where the underlying physics needs to be expanded. In this paper, a hybrid Lagrangian–Eulerian spark-ignition (LESI) model is coupled with different turbulence models, grid sizes, and combustion models. The ignition model, previously developed, relies on coupling Eulerian energy deposition with a Lagrangian particle evolution of the spark channel, at every time-step. The spark channel is attached to the electrodes and allowed to elongate at a speed derived from the flow velocity. The LESI model is used to simulate spark ignition in a nonquiescent crossflow environment at engine-like conditions, using converge commercial computational fluid dynamics (CFD) solver. The results highlight the consistency, robustness, and versatility of the model in a range of engine-like setups, from typical with Reynolds-averaged Navier–Stokes (RANS) and a larger grid size to high fidelity with large-eddy simulation (LES) and a finer grid size. The flame kernel growth is then evaluated against Schlieren images from an optical constant volume ignition chamber with a focus on the performance of flame propagation models, such as G-equation and thickened flame model, versus the baseline well-stirred reactor model. Finally, future development details are discussed.
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      High-Fidelity Energy Deposition Ignition Model Coupled With Flame Propagation Models at Engine-Like Flow Conditions

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    contributor authorKazmouz, Samuel J.
    contributor authorScarcelli, Riccardo
    contributor authorKim, Joohan
    contributor authorCheng, Zhen
    contributor authorLiu, Shuaishuai
    contributor authorDai, Meizhong
    contributor authorPomraning, Eric
    contributor authorSenecal, Peter K.
    contributor authorLee, Seong-Young
    date accessioned2023-11-29T18:40:02Z
    date available2023-11-29T18:40:02Z
    date copyright1/10/2023 12:00:00 AM
    date issued1/10/2023 12:00:00 AM
    date issued2023-01-10
    identifier issn0742-4795
    identifier othergtp_145_05_051022.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4294306
    description abstractWith the heightened pressure on car manufacturers to increase the efficiency and reduce the carbon emissions of their fleets, more challenging engine operation has become a viable option. Highly dilute, boosted, and stratified charge, among others, promise engine efficiency gains and emissions reductions. At such demanding engine conditions, the spark-ignition process is a key factor for the flame initiation propagation and the combustion event. From a computational standpoint, there exist multiple spark-ignition models that perform well under conventional conditions but are not truly predictive under strenuous engine operation modes, where the underlying physics needs to be expanded. In this paper, a hybrid Lagrangian–Eulerian spark-ignition (LESI) model is coupled with different turbulence models, grid sizes, and combustion models. The ignition model, previously developed, relies on coupling Eulerian energy deposition with a Lagrangian particle evolution of the spark channel, at every time-step. The spark channel is attached to the electrodes and allowed to elongate at a speed derived from the flow velocity. The LESI model is used to simulate spark ignition in a nonquiescent crossflow environment at engine-like conditions, using converge commercial computational fluid dynamics (CFD) solver. The results highlight the consistency, robustness, and versatility of the model in a range of engine-like setups, from typical with Reynolds-averaged Navier–Stokes (RANS) and a larger grid size to high fidelity with large-eddy simulation (LES) and a finer grid size. The flame kernel growth is then evaluated against Schlieren images from an optical constant volume ignition chamber with a focus on the performance of flame propagation models, such as G-equation and thickened flame model, versus the baseline well-stirred reactor model. Finally, future development details are discussed.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleHigh-Fidelity Energy Deposition Ignition Model Coupled With Flame Propagation Models at Engine-Like Flow Conditions
    typeJournal Paper
    journal volume145
    journal issue5
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4056098
    journal fristpage51022-1
    journal lastpage51022-7
    page7
    treeJournal of Engineering for Gas Turbines and Power:;2023:;volume( 145 ):;issue: 005
    contenttypeFulltext
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