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    Modeling and Experimental Validation of Prechamber Jet Penetration Considering Jet Density and Ejection Pressure Variations

    Source: Journal of Engineering for Gas Turbines and Power:;2024:;volume( 146 ):;issue: 010::page 101023-1
    Author:
    Wu, Shen
    ,
    Moriyoshi, Yasuo
    ,
    Li, Tie
    ,
    Zhou, Xinyi
    ,
    Kuboyama, Tatsuya
    ,
    Chen, Run
    ,
    Morikawa, Koji
    ,
    Kimura, Shin
    ,
    Huang, Shuai
    ,
    Tanoue, Kimitoshi
    DOI: 10.1115/1.4066153
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Although prechamber (PC) is regarded as a promising solution to enhance ignition in lean-burn gas engines, a lack of comprehensive understanding of PC jet penetration dynamics remains. This study proposed a zero-dimensional (0D) model for PC jet penetration, considering the mixing of combustion products and unburned gases in jets and the floating ejection pressure. A combustion completion degree was defined by employing fuel properties and heat release to estimate the time-varying jet density. Pressure differences between the PC and the main chamber (MC) were referred to as the ejection pressure. Then, this model was validated against experimental data from a constant volume chamber (CVC) and a rapid compression and expansion machine (RCEM) with CH4-H2 blends at different equivalent ratios. Results showed that the proposed model can provide a good prediction in stationary and turbulent fields with the calibrated model coefficient. The overall jet penetration exhibits a t0.5 dependence due to its single-phase characteristic and the relatively lower density compared to the ambient gas in MC. The flame propagation speed and heat release in PC influence the combustion completion degree at the start of jet ejection. The mass fraction of burned gas in the ejected jet grows in response to the mixture equivalent ratio. Jet penetration is primarily driven by ejection pressure, with tip dynamics barely affected by the pressure difference after peaks. Tip penetration intensity rises with increasing fuel equivalent ratio and H2 addition, owing to the faster flame propagation. These findings can offer useful suggestions for model-based design and combustion model development for gas engines.
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      Modeling and Experimental Validation of Prechamber Jet Penetration Considering Jet Density and Ejection Pressure Variations

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4302963
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    • Journal of Engineering for Gas Turbines and Power

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    contributor authorWu, Shen
    contributor authorMoriyoshi, Yasuo
    contributor authorLi, Tie
    contributor authorZhou, Xinyi
    contributor authorKuboyama, Tatsuya
    contributor authorChen, Run
    contributor authorMorikawa, Koji
    contributor authorKimura, Shin
    contributor authorHuang, Shuai
    contributor authorTanoue, Kimitoshi
    date accessioned2024-12-24T18:54:30Z
    date available2024-12-24T18:54:30Z
    date copyright8/21/2024 12:00:00 AM
    date issued2024
    identifier issn0742-4795
    identifier othergtp_146_10_101023.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4302963
    description abstractAlthough prechamber (PC) is regarded as a promising solution to enhance ignition in lean-burn gas engines, a lack of comprehensive understanding of PC jet penetration dynamics remains. This study proposed a zero-dimensional (0D) model for PC jet penetration, considering the mixing of combustion products and unburned gases in jets and the floating ejection pressure. A combustion completion degree was defined by employing fuel properties and heat release to estimate the time-varying jet density. Pressure differences between the PC and the main chamber (MC) were referred to as the ejection pressure. Then, this model was validated against experimental data from a constant volume chamber (CVC) and a rapid compression and expansion machine (RCEM) with CH4-H2 blends at different equivalent ratios. Results showed that the proposed model can provide a good prediction in stationary and turbulent fields with the calibrated model coefficient. The overall jet penetration exhibits a t0.5 dependence due to its single-phase characteristic and the relatively lower density compared to the ambient gas in MC. The flame propagation speed and heat release in PC influence the combustion completion degree at the start of jet ejection. The mass fraction of burned gas in the ejected jet grows in response to the mixture equivalent ratio. Jet penetration is primarily driven by ejection pressure, with tip dynamics barely affected by the pressure difference after peaks. Tip penetration intensity rises with increasing fuel equivalent ratio and H2 addition, owing to the faster flame propagation. These findings can offer useful suggestions for model-based design and combustion model development for gas engines.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleModeling and Experimental Validation of Prechamber Jet Penetration Considering Jet Density and Ejection Pressure Variations
    typeJournal Paper
    journal volume146
    journal issue10
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4066153
    journal fristpage101023-1
    journal lastpage101023-14
    page14
    treeJournal of Engineering for Gas Turbines and Power:;2024:;volume( 146 ):;issue: 010
    contenttypeFulltext
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