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High Power Output Operation of RCCI Combustion.

机译:RCCI燃烧的高功率输出操作。

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摘要

A computational investigation of methods to extend the upper limit of power output of reactivity controlled compression ignition (RCCI) engines was performed. The study utilized two approaches. The first approach is to increase the engine speed while maintaining a medium load. The second approach is to operate at higher loads without changing the engine speed. Iso-octane and n-heptane were used to represent the low-reactivity fuel and high-reactivity fuel, respectively.;A light-duty diesel engine was modeled for the high speed dual-fuel RCCI combustion study. With high-speed operation several benefits were identified. Firstly, the peak pressure rise rates (PPRR), both crank angle-based and time-based, were reduced compared to those with low-speed operation. Secondly, at high speed the NO formation residence time became short, leading to reduced NOx emissions. Lastly, a frictional penalty analysis of high-speed operation using the Chen-Flynn model was conducted, which showed only 0.5 bar FMEP increase compared to that at low-speed. These findings indicate that high-speed RCCI is a very promising path for high-power output operation.;For the high-load operation study use of dual direct-injectors was explored in order to direct-inject both fuels. Analysis of the optimum injection strategy revealed two main physical mechanisms enabling high-load operation with dual direct-injectors. The first exploited local evaporative cooling from the iso-octane injection, which delayed the iso-octane ignition. The second mechanism was related to the shorter chemical residence time of the iso-octane due to its late delivery into the cylinder. It was also noted that n-heptane's role as an ignition source could not be achieved with just iso-octane.;Finally, the co-axial injector location assumption was removed by using an actual dual-injector layout. Unlike results with the co-axial injector design, the actual dual-injector layout exhibited soot and CO emission problems. In order to attempt to accommodate off-center injector locations, various injector hole patterns were tested. Although these unconventional injector hole patterns improved the emissions, it is concluded that the development of a co-axial dual-fuel injector is imperative in order to achieve clean RCCI combustion at high load.
机译:对方法进行了计算研究,以扩展反应性可控压燃(RCCI)发动机的功率输出上限。该研究采用了两种方法。第一种方法是在保持中等负载的同时提高发动机转速。第二种方法是在更高的负载下运行而不改变发动机转速。异辛烷和正庚烷分别代表低反应性燃料和高反应性燃料。轻型柴油机被建模用于高速双燃料RCCI燃烧研究。通过高速运行,发现了一些好处。首先,与低速运行相比,基于曲柄角和基于时间的峰值压力升高率(PPRR)都降低了。其次,高速形成NO的停留时间变短,导致NOx排放量减少。最后,使用Chen-Flynn模型进行了高速运行的摩擦损失分析,与低速相比,FMEP仅增加了0.5 bar。这些发现表明,高速RCCI是大功率输出运行的非常有希望的途径。对于高负载运行研究,探索了使用双直接喷射器直接喷射两种燃料的方法。对最佳喷射策略的分析揭示了两个主要物理机制,可通过双直接喷射器实现高负荷运行。首先利用异辛烷注入产生的局部蒸发冷却,这延迟了异辛烷的点火。第二种机制与异辛烷由于延迟送入钢瓶而缩短了化学停留时间有关。还应注意,仅用异辛烷不能实现正庚烷作为点火源的作用。最后,通过使用实际的双喷油器布局消除了同轴喷油器的位置假设。与同轴喷油器设计的结果不同,实际的双喷油器布局存在烟尘和一氧化碳排放问题。为了尝试适应偏心的喷油嘴位置,测试了各种喷油嘴孔型。尽管这些非常规的喷油器孔型改善了排放,但可以得出结论,为了在高负荷下实现清洁的RCCI燃烧,必须开发同轴双燃料喷油器。

著录项

  • 作者

    Lim, Jae Hyung.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 239 p.
  • 总页数 239
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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