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Influence of spark discharge characteristics on ignition and combustion process and the lean operation limit in a spark ignition engine

机译:火花排放特性对火花点火发动机点火燃烧过程的影响及燃烧过程

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摘要

Lean combustion technologies have been investigated to decrease the heat loss of spark ignition engines. However, as the excess air ratio approaches the lean operation limit, the cycle-to-cycle variation of combustion becomes an obstacle to improving thermal efficiency. This paper discusses the influences of spark discharge characteristics, such as discharge current and spark-shortening phenomena, on the ignition and combustion process under lean conditions (excess air ratio (lambda) of 1.8-2.3) to suppress the cycle-to-cycle variation of combustion and extend the lean operation limit. In this study, a customized inductive ignition system equipped with 20 conventional ignition coils was applied to enhance the ignition energy. The discharge interval between each coil unit was controlled to change the discharge current and duration. The results show that the in-cylinder discharged energy increased with the discharge interval. The cycle-to-cycle variation of combustion was minimized when the discharge interval was 0.4 ms, and consequently, the lean operation limit was extended to an excess air ratio (lambda) of 2.1. The discharge waveforms indicated that the longer discharge interval could promote spark-shortening phenomena such as re-strike due to the lower discharge current. Finally, in-cylinder photographs of ignition and combustion process showed that the flame kernel formation could be promoted by the repetition of spark-shortening phenomena such as re-strike, as well as by the high elongation of the spark channel.
机译:已经调查了瘦燃烧技术以降低火花点火发动机的热量损失。然而,随着过量的空气比接近贫效率极限,燃烧的周期到循环变化成为提高热效率的障碍。本文讨论了火花放电特性的影响,例如放电电流和火花缩短现象,在贫条件下的点火和燃烧过程(过量的空气比(Lambda)为1.8-2.3)以抑制循环到循环变化燃烧并延长瘦操作限制。在该研究中,施加配备有20个传统点火线圈的定制感应点火系统以增强点火能量。控制每个线圈单元之间的放电间隔以改变放电电流和持续时间。结果表明,缸内排出能量随放电间隔而增加。当放电间隔为0.4ms时,燃烧的循环到循环变化最小化,因此,瘦操作限制延伸到2.1的过量空气比(Lambda)。放电波形表明,较长的放电间隔可以促进火花缩短现象,例如由于较低的放电电流而重新打击。最后,点火和燃烧过程的缸内照片显示,可以通过重复火花缩短现象,例如重新打击,以及火花通道的高伸长率来促进火焰籽粒形成。

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