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    Load Range Extension in Gasoline/Diesel Dual-Fuel Engines: A Mixture Concentration and Reactivity Control Approach

    Source: Journal of Energy Resources Technology, Part A: Sustainable and Renewable Energy:;2026:;volume( 002 ):;issue:008
    Author:
    Zhang, Shanshan
    ,
    Hu, Tiantian
    ,
    Wu, Binyang
    ,
    Guo, Wenyue
    ,
    Su, Wanhua
    DOI: 10.1115/1.4071927
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. In gasoline/diesel dual-fuel engines, regulating fuel concentration and reactivity stratification effectively extends the high-load limit. This study investigates the effects of mixing characteristics of low- and high-reactivity fuels on combustion and emission performance. Based on intake airflow characteristics, an asymmetric port fuel injection strategy is proposed to control gasoline concentration stratification. Results show that forming local fuel-rich zones (equivalence ratio > 0.6) in the near-wall area significantly reduces total hydrocarbons and carbon monoxide emissions. Experimental and numerical analyses reveal that advancing diesel injection timing enhances chemical reactivity in the boundary zones while suppressing high-temperature oxidation in the core zones. Specifically, advancing the injection timing from 20 to 40 crank angle degrees before top dead center improves brake thermal efficiency by 1.5% and reduces total hydrocarbons, carbon monoxide, and nitrogen oxides emissions by 22.90%, 15.91%, and 40.60%, respectively. Late diesel injection offers greater flexibility in combustion phasing control. With the diesel double-injection strategy, a 90% gasoline substitution ratio achieves 43.57% brake thermal efficiency at 1.0-MPa brake mean effective pressure. At 1.5-MPa brake mean effective pressure, a 75% gasoline substitution ratio achieves 44.13% brake thermal efficiency, with emissions of 1.58, 5.76, and 1.88 g/kWh of total hydrocarbons, carbon monoxide, and nitrogen oxides, respectively.
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      Load Range Extension in Gasoline/Diesel Dual-Fuel Engines: A Mixture Concentration and Reactivity Control Approach

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4315549
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    • Journal of Energy Resources Technology, Part A: Sustainable and Renewable Energy

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    contributor authorZhang, Shanshan
    contributor authorHu, Tiantian
    contributor authorWu, Binyang
    contributor authorGuo, Wenyue
    contributor authorSu, Wanhua
    date accessioned2026-08-23T07:45:13Z
    date available2026-08-23T07:45:13Z
    date copyright2026/08/01
    date issued2026
    identifier issn2997-0253
    identifier otherjerta-26-1020.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4315549
    description abstractAbstract. In gasoline/diesel dual-fuel engines, regulating fuel concentration and reactivity stratification effectively extends the high-load limit. This study investigates the effects of mixing characteristics of low- and high-reactivity fuels on combustion and emission performance. Based on intake airflow characteristics, an asymmetric port fuel injection strategy is proposed to control gasoline concentration stratification. Results show that forming local fuel-rich zones (equivalence ratio > 0.6) in the near-wall area significantly reduces total hydrocarbons and carbon monoxide emissions. Experimental and numerical analyses reveal that advancing diesel injection timing enhances chemical reactivity in the boundary zones while suppressing high-temperature oxidation in the core zones. Specifically, advancing the injection timing from 20 to 40 crank angle degrees before top dead center improves brake thermal efficiency by 1.5% and reduces total hydrocarbons, carbon monoxide, and nitrogen oxides emissions by 22.90%, 15.91%, and 40.60%, respectively. Late diesel injection offers greater flexibility in combustion phasing control. With the diesel double-injection strategy, a 90% gasoline substitution ratio achieves 43.57% brake thermal efficiency at 1.0-MPa brake mean effective pressure. At 1.5-MPa brake mean effective pressure, a 75% gasoline substitution ratio achieves 44.13% brake thermal efficiency, with emissions of 1.58, 5.76, and 1.88 g/kWh of total hydrocarbons, carbon monoxide, and nitrogen oxides, respectively.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleLoad Range Extension in Gasoline/Diesel Dual-Fuel Engines: A Mixture Concentration and Reactivity Control Approach
    typeJournal Paper
    journal volume2
    journal issue8
    journal titleJournal of Energy Resources Technology, Part A: Sustainable and Renewable Energy
    identifier doi10.1115/1.4071927
    treeJournal of Energy Resources Technology, Part A: Sustainable and Renewable Energy:;2026:;volume( 002 ):;issue:008
    contenttypeFulltext
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