首页> 外文学位 >1-D simulation of HCCI engine performance using knock-integral ignition prediction with Wiebe function combustion modeling, and comparison to advanced SI engine performance.
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1-D simulation of HCCI engine performance using knock-integral ignition prediction with Wiebe function combustion modeling, and comparison to advanced SI engine performance.

机译:使用带有Wiebe函数燃烧模型的爆震积分点火预测对HCCI发动机性能进行一维模拟,并与先进的SI发动机性能进行比较。

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摘要

A study of the fuel consumption benefits of Homogeneous Charge Compression Ignition (HCCI) engine operation has been done using GT-POWER 1-D engine simulation software. A port fuel injection spark ignition engine model was used as a starting point for making modifications to create an HCCI model by implementing a negative valve overlap breathing scheme and a simple knock-integral ignition timing and Wiebe combustion model based on the in-cylinder conditions at a 2000 RPM and 2 bar BMEP test point. Simulations run over a wide range of valve timing schemes produced a range in which brake specific fuel consumption from this HCCI engine are expected to fall. Further variations of the base PFI SI model were also developed to explore the fuel consumption benefits of other competing current or near production-ready technologies aimed at improving fuel consumption, and the simulation results of these models at the same load and speed test point were compared with those of the HCCI model. These models included variations on variable cam phasing, direct injection, intake valve throttling, and lean combustion. In the SI simulations, results showed expected decreases in BSFC as model complexity was increased. The HCCI simulations showed further reductions in BSFC, and the improvements fell very much in line with published experimental HCCI data. It was shown that simple model modifications can enable the use of GT-POWER for effective approximate results for HCCI operation.
机译:已经使用GT-POWER 1-D发动机仿真软件对均质压燃(HCCI)发动机运行的油耗效益进行了研究。以进气道燃料喷射火花点火发动机模型为起点,通过实施负气门重叠呼吸方案以及基于缸内条件的简单爆震积分点火正时和Wiebe燃烧模型,进行修改以创建HCCI模型。 2000 RPM和2 bar BMEP测试点。在广泛的气门正时方案上进行的模拟产生了这样一个范围,在该范围内,预计该HCCI发动机的制动器特定燃油消耗将下降。还开发了基本PFI SI模型的进一步变体,以探索旨在改善燃料消耗的其他现有竞争技术或接近生产就绪技术的燃料消耗收益,并比较了这些模型在相同负载和速度测试点的仿真结果与HCCI模型中的那些。这些模型包括可变凸轮相位,直接喷射,进气门节流和稀薄燃烧的变化。在SI仿真中,结果表明,随着模型复杂度的增加,BSFC的预期下降。 HCCI模拟显示BSFC的进一步降低,并且该改进与已发布的实验HCCI数据相去甚远。结果表明,简单的模型修改可以使GT-POWER用于HCCI操作的有效近似结果。

著录项

  • 作者

    Huisjen, Andrew Michael.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Automotive.;Engineering Mechanical.
  • 学位 M.S.
  • 年度 2010
  • 页码 71 p.
  • 总页数 71
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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