A New Flame Jet Concept to Improve the Inflammation of Lean Burn Mixtures in SI Engines

M. Kettner, M. Rothe, A. Velji, U. Spicher, D. Kuhnert, R. Latsch
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引用次数: 31

Abstract

Engines with gasoline direct injection promise an increase in efficiency mainly due to the overall lean mixture and reduced pumping losses at part load. But the near stoichiometric combustion of the stratified mixture with high combustion temperature leads to high NO x emissions. The need for expensive lean NO x catalysts in combination with complex operation strategies may reduce the advantages in efficiency significantly. The Bowl-Prechamber-lgnition (BPI) concept with flame jet ignition was developed to ignite premixed lean mixtures in DISI engines. The mainly homogeneous lean mixture leads to low combustion temperatures and subsequently to low NO x emissions. By additional EGR a further reduction of the combustion temperature is achievable. The BPI concept is realized by a prechamber spark plug and a piston bowl. The main feature of the concept is its dual injection strategy. A preinjection in the inlet stroke leads to a homogeneous lean mixture with an air-fuel ratio of λ = 1.4 to λ = 1.7. During the compression stroke a second direct injection with a small amount of fuel (about 3 % of the total fuel mass) is directed towards the piston bowl. The enriched air fuel mixture in the piston bowl is transported by the piston motion towards the prechamber spark plug. Due to the pressure difference between main combustion chamber and prechamber the mixture is transported with a highly turbulent flow into the prechamber. After reliable ignition of the enriched mixture in the prechamber, flame jets penetrate into the main combustion chamber and ignite the lean mixture. Numerical and experimental investigations were carried out in a modified 3-valve single cylinder engine for part load operation. The in-cylinder flow including the mixture process in the main combustion chamber and in the prechamber was investigated by CFD simulation, so that the local mixture composition could be predicted. With extended test runs and measurements the functionality of the BPI concept has been proved. For the quantification of the mixture enrichment in the prechamber spark plug ion current measurement has been found as an appropriate measurement tool [11][12]. At part load operation in BPI mode significant reductions in fuel consumption and NOx emission have been achieved compared to stoichiometric operation. Further investigations at full load have been carried out on a single cylinder engine and a 4-cylinder production engine to analyse the influence of prechamber spark plugs on one hand and the influence of lean operation on the other hand on the engine process. Homogeneous full load operation with the prechamber spark plug has shown a reduction in knock sensitivity. Due to significantly reduced cyclic fluctuations the maximum knock amplitudes at the knock limit was reduced.
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一个新的火焰喷射概念,以改善稀薄燃烧混合物在SI发动机的炎症
采用汽油直喷的发动机有望提高效率,主要是由于整体稀薄的混合气和减少部分负荷时的泵送损失。但分层混合气的近化学计量燃烧和高燃烧温度导致了高nox排放。对昂贵的贫氮氧化物催化剂的需求与复杂的操作策略相结合,可能会大大降低效率优势。采用火焰喷射点火的碗状预室点火(BPI)概念是为了在DISI发动机中点燃预混稀混合物。主要均匀的贫混合气导致较低的燃烧温度和随后的低nox排放。通过额外的EGR,进一步降低燃烧温度是可以实现的。BPI概念是通过预室火花塞和活塞碗实现的。该概念的主要特点是其双重注入策略。在进气冲程中进行预喷射可以得到均匀的稀混合气,其空燃比为λ = 1.4至λ = 1.7。在压缩行程中,第二次直接喷射少量燃料(约占总燃料质量的3%),直接喷射到活塞筒。活塞碗中的富集空气燃料混合物通过活塞运动向预室火花塞输送。由于主燃烧室和预燃室之间的压力差,混合气以高紊流进入预燃室。浓缩混合气在预燃室可靠点火后,火焰射流进入主燃烧室,点燃贫混合气。在一种改进型三气门单缸发动机上进行了部分负荷工况的数值和实验研究。通过CFD模拟研究了主燃烧室和预燃室内混合气的缸内流动,从而预测了局部混合气的组成。通过扩展的测试运行和测量,BPI概念的功能得到了证明。对于预室火花塞混合气富集的定量分析,发现了离子电流测量[11][12]作为合适的测量工具。在BPI模式的部分负荷运行中,与化学计量操作相比,燃料消耗和氮氧化物排放显著降低。在一台单缸发动机和一台4缸量产发动机上进行了进一步的满载试验,分析了预燃室火花塞对发动机过程的影响,以及精益运行对发动机过程的影响。均匀满负荷运行与预室火花塞已显示减少爆震敏感性。由于大大减少了循环波动,在爆震极限处的最大爆震幅度减小了。
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