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Knock In Various Combustion Modes in a Gasoline-Fueled Automotive Enqine

机译:敲打汽油燃料汽车发动机中的各种燃烧模式

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Homogeneous charge compression ignition (HCCl) offers great potential for improved fuel economy and dramatically reduced NO_X emissions, compared to typical spark ignition (SI) combustion. However, the benefits of HCCI are limited to low and medium loads by the simultaneous occurrence of combustion instability and knock at a maximum load that is too low for conventional SI combustion. To provide smooth operation in the intermediate range between HCCl and SI requires alternative combustion strategies. One such strategy is spark-assisted compression ignition (SACI), which uses a spark plug to initiate aflame that consumes a portion of the mixture, followed by autoignition of the remaining charge. This moderates the rapid heat release and allows higher loads to be achieved without exceeding knock and stability limits. In a recent study, we have explored this region and have found that spark assist at first dramatically reduces knock as load is raised above the HCCl limit; however, with further load increase, knock returns but in a form that resembles spark ignited knock rather than the HCCl knock. This study investigates in detail the knocking conditions observed in that work. The objectives of this study are twofold: first, to explore the differences between the two forms of knock and second, to apply and compare a number of commonly used metrics for knock and noise over the range of HCCI, SACI, and SI combustion. Experimental data were acquired on a single-cylinder DI research engine equipped with a fully flexible valve actuation (FFVA) system and fueled by re search-grade gasoline. Cycle to cycle results based on filtered pressure traces are shown and compared with a number of knock measures including a widely used correlation for ringing intensity for HCCI combustion. Although based on a limited set of data, the results identify important qualitative features of the two forms of knock and point out significant differences among the knock metrics. The results suggest that further investigations are needed to fully understand both the knocking phenomenon and how best to quantify it.
机译:与典型的火花点火(SI)燃烧相比,均质充气压缩点火(HCCl)具有改善燃油经济性和显着减少NO_X排放的巨大潜力。但是,HCCI的好处仅限于中低负荷,这是因为同时发生燃烧不稳定性和爆震时产生的最大负荷对于传统的SI燃烧而言太低了。为了在HCCl和SI之间的中间范围内提供平稳运行,需要其他燃烧策略。一种这样的策略是火花辅助压缩点火(SACI),它使用火花塞引发燃烧,消耗一部分混合物,然后自动点燃剩余的装药。这可缓和快速放热,并在不超过爆震和稳定性极限的情况下实现更高的负载。在最近的研究中,我们已经探索了该区域,并发现起初,当负载升高到HCCl极限以上时,火花辅助可以显着降低爆震。但是,随着负载的进一步增加,爆震返回的形式类似于火花点火爆震,而不是HCCl爆震。这项研究详细研究了在该工作中观察到的爆震情况。这项研究的目的是双重的:首先,探索两种爆震形式之间的差异,其次,应用并比较HCCI,SACI和SI燃烧范围内的爆震和噪声的许多常用指标。实验数据是在配备有完全灵活的气门致动(FFVA)系统的单缸DI研究发动机上获取的,并以研究级汽油作为燃料。显示了基于过滤后的压力轨迹的逐周期结果,并将其与多种爆震措施进行了比较,包括广泛使用的HCCI燃烧振铃强度相关性。尽管基于一组有限的数据,但结果确定了两种形式的爆震的重要定性特征,并指出了爆震指标之间的显着差异。结果表明,需要进一步的研究以充分了解爆震现象及其最佳量化方法。

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