Combustion Variability Model for Control of Injection Timing for Diesel Exhaust Heating

Mitchell Bieniek, A. Stefanopoulou, J. Hoard, B. Fulton, M. V. Nieuwstadt
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引用次数: 1

Abstract

Diesel engine emission cycle data shows that major portions of cycle emissions are produced at the beginning of the test, when the aftertreatment is not at operational temperature (prior to “light-off”) [1]. To reduce diesel emissions, aggressive combustion phasing retard via injection timing can be used to achieve faster aftertreatment light-off, but this method is limited because of vibration and harshness concerns associated with the combustion variability induced by the late combustion phasing. In order to achieve aggressive exhaust heating while mitigating combustion variability concerns, the premise of controlling combustion variability is explored. In particular, a controller will use real-time measurements of combustion features and control injection timing to maintain an acceptable level of combustion variability. The closed loop controller tuning requires an understanding of combustion variability behavior as a function of combustion phasing retard. The characterization of combustion variability using engine experiments is presented, and the findings are used to develop a control-oriented combustion variability model consisting of regressions of the statistics of IMEP as a function of fuel and timing offsets.
柴油机排气加热喷射正时控制的燃烧变异性模型
柴油机循环排放数据表明,循环排放的主要部分是在试验开始时后处理未处于工作温度(“熄火”前)时产生的[1]。为了减少柴油排放,可以通过喷射定时来加速燃烧阶段的延迟,以实现更快的后处理熄火,但这种方法的局限性在于,由于燃烧阶段延迟引起的燃烧变异性会引起振动和不稳定性问题。为了在缓解燃烧变异性问题的同时实现积极的排气加热,探讨了控制燃烧变异性的前提。特别是,控制器将使用燃烧特性的实时测量和控制喷射时间,以保持可接受的燃烧可变性水平。闭环控制器的整定需要理解燃烧变异性行为作为燃烧相位延迟的函数。本文介绍了利用发动机实验对燃烧变异性的表征,并利用这些发现建立了一个以控制为导向的燃烧变异性模型,该模型由IMEP统计数据作为燃料和时间偏移的函数的回归组成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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