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Modeling and analysis of an HCCI engine during thermal transients using a thermodynamic cycle simulation with a coupled wall thermal network.

机译:HCCI发动机在热瞬态过程中的建模和分析使用带有耦合壁热网络的热力学循环仿真。

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摘要

This computational study addresses the unique characteristics of the strong coupling that exists between the thermal condition of the engine structure and the combustion in a Homogeneous Charge Compression Ignition (HCCI) engine, with particular emphasis on the effects of thermal inertia and possible control strategies to compensate for the thermal non-equilibrium that occurs. The engine modeled is a single-cylinder HCCI engine with a re-breathing exhaust valve configuration that utilizes a large amount of hot residual to increase thermal energy of the air-fuel mixture for auto-ignition and to dilute it for preventing rapid heat release rate as well as to keep burned gas temperature low for NOx control. The in-cylinder combustion and heat transfer, the gas exchange process through valves, and thermal inertia of the engine structures are considered simultaneously in order to fully investigate the HCCI engine transient behavior. A system level engine model including original combustion and heat transfer models developed for the HCCI engine was developed for this purpose. The original contribution of this study is the addition of a thermal network model that tracks the behavior of the engine's thermal boundaries during transient operation.; The combustion and performance of an HCCI engine were found to be very sensitive to the engine thermal conditions including intake air temperature, residual level and coolant temperature. In particular, the transient wall temperature excursions from steady-state values were shown to play a great role in determining the combustion characteristics by reducing or enhancing the wall heat transfer.; A stable steady-state HCCI operating range was defined and optimized for the best fuel economy by controlling the residual level, and possible shifts of the operating limits due to thermal transitions were studied. An original method was proposed to modulate the role of thermal inertia on auto-ignition during transients by compensating for thermally non-equilibrium wall conditions to enhance robust control of ignition timing in transient operation. A variable valve system was used for that purpose to control combustion phasing by optimizing residual level. The results were improved fuel economy while complying with knock and misfire limits.
机译:这项计算研究解决了均质充量压缩点火(HCCI)发动机在发动机结构的热工况与燃烧之间存在的强耦合的独特特征,特别强调了热惯性的影响和可能的补偿控制策略。对于发生的热不平衡。建模的发动机是具有重新呼吸排气门配置的单缸HCCI发动机,该结构利用大量的热残留物来增加空气燃料混合物的热能以进行自动点火并稀释以防止快速放热并保持较低的燃烧气体温度以控制NOx。为了充分研究HCCI发动机的瞬态特性,同时考虑了缸内燃烧和传热,通过阀的气体交换过程以及发动机结构的热惯性。为此,开发了系统级发动机模型,其中包括为HCCI发动机开发的原始燃烧和传热模型。该研究的原始贡献是增加了一个热网络模型,该模型可跟踪瞬态运行期间发动机热边界的行为。已发现HCCI发动机的燃烧和性能对发动机热工况非常敏感,包括进气温度,残留水平和冷却液温度。特别是,从稳态值得出的瞬态壁温偏移被证明在通过减少或增强壁热传递来确定燃烧特性方面起着重要作用。定义了稳定的HCCI稳态工作范围,并通过控制残留量来优化最佳燃油经济性,并研究了由于热转变而可能导致的工作极限变化。提出了一种原始方法,通过补偿热非平衡壁条件来增强瞬态运行中的点火正时控制,从而调节瞬态过程中热惯性对自燃的作用。为此,使用了一个可变气门系统,以通过优化残留水平来控制燃烧阶段。结果是提高了燃油经济性,同时符合爆震和失火限制。

著录项

  • 作者

    Chang, Kyoungjoon.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 193 p.
  • 总页数 193
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

  • 入库时间 2022-08-17 11:40:30

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