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Investigation of the thermal effects of fuel injection into retained residuals in HCCI engine

机译:HCCI发动机中燃油喷射到残留燃油中的热效应研究

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Low-temperature combustion in reciprocating engines appears to be a cutting-edge technology which ensures extremely low emissions of nitrogen oxides and particulate matters in parallel with high fuel efficiency. This mode of combustion can be realized in homogeneous charge compression ignition engines. However, this technology poses challenges, and fast response combustion controllability is one of the issues to be solved to make this concept widely applicable. The introduction of direct injection of gasoline into recompressed residuals during negative valve overlap is one of the promising techniques to keep the advantages of having a homogeneous mixture during the main combustion while adding controllability through split ratio and injection timing within the recompression event.The present study aims to thoroughly investigate the thermal effects associated with gasoline injection during the negative valve overlap phase and explain qualitatively and quantitatively their impact on the gas exchange process and, further, on the combustion phasing during the main event. Single cylinder engine experiments are designed to evaluate these effects at different injection timings and mixture compositions. The scope of the research is focused on low-load operation at constant engine speed. The discussion of in-cylinder pressure analysis results and engine operational parameters is complemented by gas exchange simulations to provide more insight into the entire working process.It is confirmed by the results that negative valve overlap gasoline injection can be used as a measure to control combustion phasing in homogeneous charge compression ignition engines. The controllability is assured through balancing between evaporative cooling or heating of the trapped residuals. With this measure effective regulation of internal exhaust gas recirculation ratio, ranging from 41% to 64%, was demonstrated. This further enables fast intake valve closing temperature adjustment in a range of around 50 K, which finally results in superior auto-ignition timing control in a range between 5 °CA and 10 °CA before or after top dead center, depending on the global mixture strength. The work further provides fundamental understanding of the regulation mechanisms and concludes on the possibilities of applying this knowledge in a production engine.
机译:往复式发动机中的低温燃烧似乎是一项尖端技术,可确保极低的氮氧化物和颗粒物排放,同时提高燃油效率。这种燃烧模式可以在均质充气压缩点火发动机中实现。然而,该技术提出了挑战,并且快速响应燃烧可控性是要使该概念广泛适用要解决的问题之一。在负气门重叠期间将汽油直接喷射引入再压缩残余物中是一种有前途的技术,该技术可以保持主燃烧过程中具有均匀混合物的优点,同时在再压缩事件中通过分流比和喷射正时增加可控性。目的是彻底研究负气门重叠阶段与汽油喷射相关的热效应,并定性和定量地解释其对气体交换过程的影响,以及对主要事件中燃烧阶段的影响。单缸发动机实验旨在评估不同喷射正时和混合气成分下的这些影响。研究范围集中在恒定发动机转速下的低负荷运行。气缸内压力分析结果和发动机工作参数的讨论辅以气体交换模拟,以提供对整个工作过程的更多了解。结果证实,负气门重叠汽油喷射可用作控制燃烧的措施逐步采用均质充量压缩点火发动机。通过平衡蒸发的冷却或加热残留的残渣来确保可控制性。通过该措施,证明了内部废气再循环率的有效调节范围为41%至64%。这进一步实现了进气门关闭温度的快速调节,范围大约为50 K,这最终导致了在上止点之前或之后,在5°CA到10°CA之间的出色的自动点火正时控制,具体取决于整体混合物强度。这项工作进一步提供了对调节机制的基本理解,并总结了将这种知识应用于生产引擎的可能性。

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