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Extension of the Lower Load Limit of Gasoline Compression Ignition with 87 AKI Gasoline by Injection Timing and Pressure

机译:通过喷射正时和压力将汽油压缩点火较低负荷限制延长87AKI汽油

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Previous work has demonstrated the capabilities of gasoline compression ignition to achieve engine loads as high as 19.5 bar BMEP with a production multi-cylinder diesel engine using gasoline with an anti-knock index (AKI) of 87. In the current study, the low load limit of the engine was investigated using the same engine hardware configurations and 87 AKI fuel that was used to achieve 19.5 bar BMEP. Single injection, "minimum fueling" style injection timing and injection pressure sweeps (where fuel injection quantity was reduced at each engine operating condition until the coefficient of variance of indicated mean effective pressure rose to 3%) found that the 87 AKI test fuel could run under stable combustion conditions down to a load of 1.5 bar BMEP at an injection timing of -30 degrees after top dead center (°aTDC) with reduced injection pressure, but still without the use of intake air heating or uncooled EGR. A 0.4% concentration (by volume) of 2-Ethylhexyl Nitrate (EHN) was added to the 87 AKI test fuel to test the effects of increased reactivity on the minimum load attainable and injection timing at which it would occur, while maintaining similar physical mixing properties. The results showed that a 0.4% EHN addition caused the minimum attainable load to be reduced to 1.3 bar BMEP at a slightly delayed injection timing of -24 °aTDC. Effects of the minimum load level, injection timing, injection pressure, and fuel reactivity on auto-ignition, combustion phasing, specific fuel consumption, and gaseous emissions are also discussed.
机译:以前的工作证明了汽油压缩点火的能力,实现发动机负载高达19.5巴BMEP,使用汽油的生产多缸柴油发动机,汽油具有87的抗爆炸指数(AKI)。在目前的研究中,低负荷使用相同的发动机硬件配置和87 AKI燃料来研究发动机的限制,用于实现19.5巴BMEP。单喷射,“最小燃料”样式注射正时和注射压力扫描(在每个发动机运行状态下减少燃料喷射量,直到指示平均有效压力的变化系数升至3%)发现87 AKI测试燃料可以运行在稳定的燃烧条件下,在顶部死点(°ATDC)后的-30度的注射时刻在稳定的燃烧条件下,在止痛中心(°ATDC)减小,但仍然不使用进气加热或未冷却的EGR。向87AKI测试燃料中加入0.4%浓度(体积)的2-乙基己烯(EHN),以测试增加的反应性对其发生的最小载荷的影响,同时保持相似的物理混合特性。结果表明,在-24°ATDC的略微延迟注射时,0.4%的EHN添加引起最小可获得的载荷减少到1.3巴BMEP。还讨论了最小载荷水平,注射正时,注射压力和燃料反应性对自动点火,燃烧相位,特定燃料消耗和气态排放的影响。

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