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首页> 外文期刊>SAE International Journal of Engines >The Effects of Piston Crevices and Injection Strategy on Low-Speed Pre-Ignition in Boosted SI Engines
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The Effects of Piston Crevices and Injection Strategy on Low-Speed Pre-Ignition in Boosted SI Engines

机译:活塞缝隙和喷射策略对增压SI发动机低速预点火的影响

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The spark ignition (SI) engine has been known to exhibit several different abnormal combustion phenomena, such as knock or pre-ignition, which have been addressed with improved engine design or control schemes. However, in highly boosted SI engines, Low-Speed Pre-Ignition (LSPI), a pre-ignition event typically followed by heavy knock, has developed into a topic of major interest due to its potential for engine damage. Previous experiments associated increases in hydrocarbon emissions with the blowdown event of an LSPI cycle. Also, the same experiments showed that there was a dependency of the LSPI activity on fuel and/or lubricant compositions. Based on these findings it was hypothesized that accumulated hydrocarbons play a role in LSPI and are consumed during LSPI events. A potential source for accumulated HC is the top land piston crevice. Since the top land crevice is a quench zone, a series of experiments was undertaken to increase the clearance in the top land region to promote flame propagation into that region. The results indicate that increasing the size of the crevice volume reduced the incidence of LSPI significantly. Further experiments were conducted to determine the sensitivity of the effect of the shape and size of the crevice volume on the LSPI rate, yielding significant changes in the LSPI frequency. In addition to the piston hardware study, it was found that the LSPI behavior is strongly dependent on the mixture formation, particularly the injection strategy and type of injection system used (PFI versus GDI). It was hypothesized that by varying the amount of liquid fuel that impinges with the cylinder wall, the oil and fuel mixture is influenced, which in turn affects the top land accumulation rate as well as the release timing.
机译:已知火花点火(SI)发动机表现出几种不同的异常燃烧现象,例如爆震或预点火,这些现象已通过改进的发动机设计或控制方案加以解决。但是,在高度增压的SI发动机中,低速预点火(LSPI)是通常引起重击的预点火事件,由于其可能损坏发动机,因此已成为引起人们广泛关注的话题。先前的实验将碳氢化合物排放量的增加与LSPI循环的排污事件相关联。同样,相同的实验表明,LSPI活性对燃料和/或润滑剂组成有依赖性。基于这些发现,可以假设积累的碳氢化合物在LSPI中起作用,并在LSPI事件中被消耗。堆积的HC的潜在来源是顶部陆地活塞缝隙。由于顶部陆地缝隙是淬火区,因此进行了一系列实验以增加顶部陆地区域的间隙,以促进火焰传播到该区域。结果表明,增加缝隙体积的大小可显着降低LSPI的发生率。进行了进一步的实验以确定缝隙体积的形状和大小对LSPI速率的影响的敏感性,从而产生LSPI频率的显着变化。除了活塞硬件研究之外,还发现LSPI行为在很大程度上取决于混合物的形成,特别是喷射策略和所用喷射系统的类型(PFI与GDI)。假设通过改变撞击到汽缸壁的液体燃料的量,会影响机油和燃料的混合物,进而影响顶部土地的积聚率以及释放时间。

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