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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Extending Lean and Exhaust Gas Recirculation-Dilute Operating Limits of a Modern Gasoline Direct-Injection Engine Using a Low-Energy Transient Plasma Ignition System
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Extending Lean and Exhaust Gas Recirculation-Dilute Operating Limits of a Modern Gasoline Direct-Injection Engine Using a Low-Energy Transient Plasma Ignition System

机译:扩展了使用低能量瞬态等离子点火系统的现代汽油直喷发动机的稀薄和废气再循环-稀释的运行极限

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The efficiency improvement and emissions reduction potential of lean and exhaust gas recirculation (EGR)-dilute operation of spark-ignition gasoline engines is well understood and documented. However, dilute operation is generally limited by deteriorating combustion stability with increasing inert gas levels. The combustion stability decreases due to reduced mixture flame speeds resulting in significantly increased combustion initiation periods and burn durations. A study was designed and executed to evaluate the potential to extend lean and EGR-dilute limits using a low-energy transient plasma ignition system. The low-energy transient plasma was generated by nanosecond pulses and its performance compared to a conventional transistorized coil ignition (TCI) system operated on an automotive, gasoline direct-injection (GDI) single-cylinder research engine. The experimental assessment was focused on steady-state experiments at the part load condition of 1500 rpm 5.6 bar indicated mean effective pressure (IMEP), where dilution tolerance is particularly critical to improving efficiency and emission performance. Experimental results suggest that the energy delivery process of the low-energy transient plasma ignition system significantly improves part load dilution tolerance by reducing the early flame development period. Statistical analysis of relevant combustion metrics was performed in order to further investigate the effects of the advanced ignition system on combustion stability. Results confirm that at select operating conditions EGR tolerance and lean limit could be improved by as much as 20% (from 22.7 to 27.1% EGR) and nearly 10% (from λ = 1.55 to 1.7) with the low-energy transient plasma ignition system.
机译:火花点火汽油发动机稀薄和废气再循环(EGR)稀运行的效率提高和减排潜力已得到充分理解和记录。然而,稀化操作通常受到随着惰性气体水平增加而恶化的燃烧稳定性的限制。由于混合火焰速度降低,燃烧稳定性降低,从而导致燃烧起始时间和燃烧持续时间显着增加。设计并执行了一项研究,以评估使用低能量瞬态等离子体点火系统扩大稀薄和EGR稀释极限的可能性。低能量瞬态等离子体是由纳秒脉冲产生的,与在汽车,汽油直喷(GDI)单缸研究发动机上运行的常规晶体管化线圈点火(TCI)系统相比,其性能更高。实验评估的重点是在1500 rpm的部分负载条件下的稳态实验,其中5.6 bar表示平均有效压力(IMEP),其中稀释耐受性对于提高效率和排放性能特别重要。实验结果表明,低能瞬态等离子点火系统的能量传递过程通过缩短早期火焰产生周期,显着提高了部分负荷稀释耐受性。为了进一步研究先进点火系统对燃烧稳定性的影响,对相关燃烧指标进行了统计分析。结果证实,在选定的运行条件下,使用低能瞬变等离子点火系统,EGR公差和稀薄极限可以提高多达20%(从22.7到27.1%EGR)和近10%(从λ= 1.55到1.7)。 。

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