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A New Combustion System Achieving High Drive Cycle Fuel Economy Improvements in a Modern Vehicle Powertrain

机译:一种新型燃烧系统,可提高现代车辆动力总成的高驱动循环燃油经济性

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Turbulent Jet Ignition is an advanced spark initiated pre-chamber combustion system for otherwise standard spark ignition engines found in current passenger vehicles. This next generation pre-chamber design simply replaces the spark plug in a conventional spark ignition engine. Turbulent Jet Ignition enables very fast burn rates due to the ignition system producing multiple, widely distributed ignition sites, which consume the main charge rapidly. This high energy ignition results from the partially combusted (reacting) pre-chamber products initiating combustion in the main chamber. The distributed ignition sites enable relatively small flame travel distances enabling short combustion durations and high burn rates. Multiple benefits include extending the knock limit and initiating combustion in very dilute mixtures (excess air and or EGR), with dilution levels being comparable to other low temperature combustion technologies (HCCI), without the complex control drawbacks. Previous Turbulent Jet Ignition experimental results have highlighted peak net indicated thermal efficiency values of 42% in a standard contemporary PFI engine platform. Additionally, the pre-chamber combustion system is capable of tolerating up to 54% mass fraction diluent (combination of excess air and EGR) at the world wide mapping point, resulting in near zero engine out NOx emissions. The purpose of this paper is to conduct a more thorough analysis of the technology and highlight the current speed load envelop recently achieved. Mini-map speed load experimental data is presented in this paper and used to generate several simulated drive cycles in a medium class passenger vehicle. Drive cycle fuel economy comparisons are then made across combustion regimes in the same engine platform, including stoichiometric spark ignition, lean burn spark ignition, HCCI and Turbulent Jet Ignition. Analysis highlights that a drive cycle fuel consumption improvement near 25% can be achieved with the Turbulent Jet Ignition combustion system, albeit with the high potential in meeting current day and future legislative emission regulations without the need for expensive lean NOx after-treatment. This would exceed the drive cycle fuel economy improvement achieved with other low temperature combustion technologies (HCCI) in the same engine platform as there is no requirement to switch back to conventional spark ignition combustion at high and low loads, which limits fuel economy improvements and maximum compression ratio for knock avoidance.
机译:湍流喷射点火是先进的火花引发的前室燃烧系统,用于当前乘用车中常见的标准火花点火发动机。这种下一代的预燃室设计可以简单地替代传统火花点火发动机中的火花塞。由于点火系统会产生多个分布广泛的点火部位,因此湍流的喷射点火可实现非常快的燃烧速度,这些部位会迅速消耗主电荷。这种高能点火是由于部分燃烧(反应)的预燃室产品在主室中引发燃烧而引起的。分布的点火部位可实现相对较小的火焰传播距离,从而缩短燃烧持续时间并提高燃烧速率。多重好处包括扩展爆震极限并在非常稀薄的混合物(过量的空气和/或EGR)中开始燃烧,其稀释水平可与其他低温燃烧技术(HCCI)相媲美,而没有复杂的控制缺点。先前的湍流喷射点火实验结果突出表明,在标准的当代PFI发动机平台上,峰值净指示热效率值为42%。此外,预燃室燃烧系统在世界范围内的测绘点能够耐受高达54%的质量分数稀释剂(过量空气和EGR的组合),从而使发动机排出的NOx排放几乎为零。本文的目的是对技术进行更彻底的分析,并强调当前实现的当前速度负载包络。本文介绍了小型地图速度载荷实验数据,并用于生成中型乘用车的多个模拟驾驶循环。然后,在同一发动机平台上的不同燃烧状态下进行驾驶循环燃油经济性比较,包括化学计量火花点火,稀薄燃烧火花点火,HCCI和湍流喷射点火。分析强调,湍流喷射点火燃烧系统可将驾驶周期的燃油消耗降低近25%,尽管在满足当前和未来的立法排放法规方面具有很大的潜力,而无需进行昂贵的稀薄NOx后处理。这将超过在同一发动机平台上使用其他低温燃烧技术(HCCI)所实现的驾驶循环燃油经济性的提高,因为不需要在高负荷和低负荷时切换回传统的火花点火燃烧,这限制了燃油经济性的提高和最大程度的提高。避免爆震的压缩比。

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