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Effect of injection timing on mixture formation and combustion in an ethanol direct injection plus gasoline port injection (EDI plus GPI) engine

机译:喷射正时对乙醇直喷加汽油进气口喷射(EDI加GPI)发动机中混合物形成和燃烧的影响

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Ethanol direct injection plus gasoline port injection (EDI+GPI) is a new technology to utilise ethanol fuel more effectively and efficiently in spark-ignition engines by taking the advantages of ethanol fuel and direct injection, such as the cooling effect and anti-knock ability. A full cycle numerical modelling including both port and direct injection sprays was performed to understand the mechanisms behind the experimental results of the EDI+GPI engine. The turbulence-chemistry interaction of the two-fraction mixture partially premixed combustion was solved by a five-dimensional presumed Probability Density Function table. Effects of direct injection timing on fuel evaporation, mixing, wall-wetting, combustion and emission processes were investigated. The results showed that when the direct injection timing was retarded, the mixture around the spark plug became leaner and the distribution of equivalence ratio became more uneven. Moreover, late direct injection resulted, in severe fuel impingement and caused local over-cooling effect and over-rich mixture. Consequently, the combustion speed and temperature were decreased by retarded direct injection timing, leading to reduced NO emission and increased HC and CO emissions. Finally, numerical modelling was performed to investigate the strategy of injecting small amount of ethanol fuel on reducing the fuel impingement and incomplete combustion caused by late direct injection. (C) 2016 Elsevier Ltd. All rights reserved.
机译:乙醇直喷加汽油口喷射(EDI + GPI)是一项利用乙醇燃料和直喷的优势(如冷却效果和抗爆能力)在火花点火发动机中更有效地利用乙醇燃料的新技术。 。为了了解EDI + GPI引擎的实验结果背后的机理,进行了包括进气和直接喷射在内的全周期数值建模。通过五维假定概率密度函数表解决了部分混合的部分混合燃烧的湍流-化学相互作用。研究了直接喷射正时对燃料蒸发,混合,壁湿,燃烧和排放过程的影响。结果显示,当延迟直接喷射正时时,火花塞周围的混合物变稀,当量比的分布变得更加不均匀。而且,后期直接喷射导致严重的燃料撞击,并导致局部过冷效果和混合气过浓。因此,由于延迟了直接喷射正时,降低了燃烧速度和温度,导致NO排放减少,HC和CO排放增加。最后,进行了数值模型研究,以研究喷射少量乙醇燃料的策略,以减少后期直接喷射引起的燃料撞击和不完全燃烧。 (C)2016 Elsevier Ltd.保留所有权利。

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