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A Late Injection Combustion Strategy Using a Novel Ramped Combustion System

机译:一种使用新型斜坡燃烧系统的晚注射燃烧策略

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Traffic related NO_x 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:交通相关NO_X和粒子排放仍然是城市环境中的重要疑虑。电气化提供了一种长期解决方案,但仍有必要在短期和中期的短期内显着降低内燃机排放,并且在长期间的城市运输中潜在的长期。晚注射低温燃烧(LTC)通过增加贫预混合烧伤级分具有压缩点火发动机中的超低排放水平。然而,通常需要大量的稀释剂来实现点火和预混合以实现LTC的所需延迟。这导致高升压要求,增加泵送工作以及空气处理系统的复杂性,并且可能产生不利影响燃料经济性。在本文中,使用以在中高发动机负载中聚焦的新型斜坡燃烧室提供单缸轻型占空比研究发动机的结果。斜坡燃烧室改善了混合,并且能够比传统碗设计更能延迟喷射时间。该燃烧策略使LTC条件能够以较低的稀释速率实现,通常在15bar的负载下20-30%。对空气燃料相互作用的CFD分析表示斜坡碗有效地偏转远离鳞状区域的燃料,从而实现了非常晚期的注射时间。发动机系统的一个尺寸分析用于研究晚排气阀开口在改善工作回收方面的电位,从而提高了基线LTC阀门的燃料消耗。

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