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    Optical and Numerical Study on Micropilot Diesel Fuel-Ignited Methane Combustion Process under Different Diesel Fuel Injection Strategies

    Source: Journal of Energy Engineering:;2024:;Volume ( 150 ):;issue: 005::page 04024027-1
    Author:
    Longlong Jiang
    ,
    Wuqiang Long
    ,
    Hua Tian
    ,
    Jiangping Tian
    ,
    Zechuan Cui
    ,
    Yang Wang
    ,
    Ge Xiao
    ,
    Xiangyu Meng
    ,
    Peng Wang
    ,
    Mingfei Lu
    DOI: 10.1061/JLEED9.EYENG-5603
    Publisher: American Society of Civil Engineers
    Abstract: With increasingly stringent emissions regulations, the trend toward using low-carbon fuels in internal combustion engines is unstoppable. Achieving higher rates of methane substitution is a crucial direction for future diesel-methane engines. However, the details of the combustion process involving the auto-ignition of micro pilot diesel fuel and ignition of methane main fuel to form premixed flames are still not clear. Therefore, the study employed visualization technique using a rapid compression machine and numerical study to analyze the process of igniting methane main fuel using various injection strategies for micro pilot diesel fuel. The results indicate that before the onset of the second diesel injection, a pale blue premixed flame had already formed within the cylinder, and the ignition delay of the second diesel injection was influenced by the presence of this premixed flame. The ignition delay of the diesel droplets from the second injection decreases gradually as SOI1 advances. Compared to the single injection strategy, the split injection strategy forms smaller high-temperature regions during the combustion process, thereby displaying a discernible trend toward reducing NOx emissions. Since the energy contribution of the second diesel injection is only 2%, the turbulence and diffusion flames formed by the second diesel injection have a relatively low impact on the propagation of the methane premixed flame. The flame front for single injection strategy is closer to the thickened flames region, suggesting a thicker flame surface due to the concentrated distribution of diesel.
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      Optical and Numerical Study on Micropilot Diesel Fuel-Ignited Methane Combustion Process under Different Diesel Fuel Injection Strategies

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4299155
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    • Journal of Energy Engineering

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    contributor authorLonglong Jiang
    contributor authorWuqiang Long
    contributor authorHua Tian
    contributor authorJiangping Tian
    contributor authorZechuan Cui
    contributor authorYang Wang
    contributor authorGe Xiao
    contributor authorXiangyu Meng
    contributor authorPeng Wang
    contributor authorMingfei Lu
    date accessioned2024-12-24T10:33:46Z
    date available2024-12-24T10:33:46Z
    date copyright10/1/2024 12:00:00 AM
    date issued2024
    identifier otherJLEED9.EYENG-5603.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4299155
    description abstractWith increasingly stringent emissions regulations, the trend toward using low-carbon fuels in internal combustion engines is unstoppable. Achieving higher rates of methane substitution is a crucial direction for future diesel-methane engines. However, the details of the combustion process involving the auto-ignition of micro pilot diesel fuel and ignition of methane main fuel to form premixed flames are still not clear. Therefore, the study employed visualization technique using a rapid compression machine and numerical study to analyze the process of igniting methane main fuel using various injection strategies for micro pilot diesel fuel. The results indicate that before the onset of the second diesel injection, a pale blue premixed flame had already formed within the cylinder, and the ignition delay of the second diesel injection was influenced by the presence of this premixed flame. The ignition delay of the diesel droplets from the second injection decreases gradually as SOI1 advances. Compared to the single injection strategy, the split injection strategy forms smaller high-temperature regions during the combustion process, thereby displaying a discernible trend toward reducing NOx emissions. Since the energy contribution of the second diesel injection is only 2%, the turbulence and diffusion flames formed by the second diesel injection have a relatively low impact on the propagation of the methane premixed flame. The flame front for single injection strategy is closer to the thickened flames region, suggesting a thicker flame surface due to the concentrated distribution of diesel.
    publisherAmerican Society of Civil Engineers
    titleOptical and Numerical Study on Micropilot Diesel Fuel-Ignited Methane Combustion Process under Different Diesel Fuel Injection Strategies
    typeJournal Article
    journal volume150
    journal issue5
    journal titleJournal of Energy Engineering
    identifier doi10.1061/JLEED9.EYENG-5603
    journal fristpage04024027-1
    journal lastpage04024027-15
    page15
    treeJournal of Energy Engineering:;2024:;Volume ( 150 ):;issue: 005
    contenttypeFulltext
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