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A late injection combustion strategy using a novel ramped combustion system

机译:使用新型倾斜燃烧系统的后期喷射燃烧策略

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摘要

Traffic related NOx and particle emission remain a significant concern particularly in the urban environment. Electrification offers a medium to long term solution, but there remains a need to significantly reduce internal combustion engine emissions in the short and medium term, and potentially in the long term for long range inter city transportation. Late injection low temperature combustion (LTC) has the potential to achieve ultra-low emissions levels in a compression ignition engine by increasing the lean pre-mixed burn fraction. However, significant quantities of diluent are normally required to achieve the required delay in ignition and pre-mixing to achieve LTC. This results in high boost requirements, increased pumping work and the complexity of the air handling system and potentially adversely impacting fuel economy. In this paper, results from a single cylinder light duty research engine are presented using a novel ramped combustion chamber focused at mid to high engine loads. The ramped combustion chamber improves mixing and enables more retarded injection timings than those possible on conventional bowl designs. This combustion strategy has enabled LTC conditions to be achieved at lower dilution rates, typically 20-30% at loads up to 15bar IMEP. CFD analysis of the air-fuel interaction indicates the ramped bowl effectively deflects fuel away from the squish region enabling very late injection timings. One dimensional analysis of the engine system was used to investigate the potential of late exhaust valve opening in improving work recovery, resulting in improved fuel consumption over the baseline LTC valve timings
机译:与交通有关的氮氧化物和颗粒物排放仍然是一个重要问题,尤其是在城市环境中。电气化提供了中长期的解决方案,但是仍然需要在短期和中期显着减少内燃机的排放,并且从长远来看,对于城市间的长途运输来说,还有可能。后期喷射低温燃烧(LTC)有可能通过增加稀薄的预混燃烧分数来实现压燃式发动机的超低排放水平。但是,通常需要大量的稀释剂才能实现点火和预混合所需的延迟,以实现LTC。这导致较高的增压要求,增加的泵送工作以及空气处理系统的复杂性,并可能对燃油经济性产生不利影响。在本文中,使用新颖的倾斜燃烧室介绍了单缸轻型研究发动机的结果,该燃烧室聚焦于中高发动机负荷。倾斜的燃烧室可改善混合效果,并且与传统的转鼓设计相比,可以延长喷射正时。这种燃烧策略使LTC条件能够以较低的稀释率实现,通常在最高15bar IMEP的负载下达到20-30%。对空气-燃料相互作用的CFD分析表明,倾斜的转鼓有效地使燃料从挤压区域偏转,从而实现了非常晚的喷射正时。发动机系统的一维分析用于研究排气门延迟打开对改善工作恢复的潜力,从而导致在基准LTC气门正时上的油耗降低

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