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Low-speed pre-ignition and super-knock in boosted spark-ignition engines: A review

点火系统 发动机爆震 自燃温度 起爆 燃烧 涡轮增压器 爆燃 辛烷值 汽油直喷 汽车工程 机械 核工程 均质压燃 化学 物理 燃烧室 热力学 工程类 气体压缩机 有机化学 爆炸物
作者
Kristian Rönn,André Swarts,Vickey Kalaskar,Terry D. Alger,Rupali Tripathi,Juha Keskiväli,Ossi Kaario,Annukka Santasalo-Aarnio,Rolf D. Reitz,Martti Larmi
出处
期刊:Progress in Energy and Combustion Science [Elsevier]
卷期号:95: 101064-101064 被引量:13
标识
DOI:10.1016/j.pecs.2022.101064
摘要

The introduction of downsized, turbocharged Gasoline Direct Injection (GDI) engines in the automotive market has led to a rapid increase in research on Low-speed Pre-ignition (LSPI) and super-knock as abnormal combustion phenomena within the last decade. The former is characterized as an early ignition of the fuel–air mixture, primarily initiated by an oil–fuel droplet or detached deposit. Meanwhile, super-knock is an occasional development from pre-ignition to high intensity knocking through detonation, which is either initiated by a shock wave interacting with a propagating reaction and cylinder surfaces or inside a hotspot with a suitable heat release and reactivity gradient. The phenomenon can be divided into four stages, including LSPI precursor initiation, establishment and propagation of a pre-ignited flame, autoignition of end-gases and development to a detonation. LSPI and super-knock are rare phenomena, difficult to observe optically in engines, and differences in methodologies and setups between steady-state experiments can lead to discrepancies in results. Experimental research has included more detailed approaches using glow plug-equipped engines, constant volume combustion chambers and rapid compression machines. In addition, the improved availability of mechanisms for fuel and lubricant surrogates has allowed researchers to model the oil–fuel interaction at the cylinder walls, evaporation and autoignition of oil–fuel droplets and regimes for different propagation modes of an autoignition reaction wave. This paper presents a comprehensive review of the underlying phenomena behind LSPI and its development to super-knock. Furthermore, it presents the methodology in experimental research and draws conclusions for mitigating strategies based on studies involving fuel, oil and engine parameters. Finally, it discusses the prerequisites for LSPI from oil–fuel droplets and the future needs of research as original equipment manufacturers (OEM) and lubricant industry have already adopted some proven solutions to their products.
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