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Analysis and control of multimode combustion switching sequence.

机译:多模式燃烧切换顺序的分析和控制。

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摘要

Highly dilute, low temperature combustion technologies, such as homogeneous charge compression ignition (HCCI), show significant improvements in internal combustion engine fuel efficiency and engine-out NOx emissions. These improvements, however, occur at limited operating range and conventional spark ignition (SI) combustion is still required to fulfill the driver's high torque demands. In consequence, such multimode engines involve discrete switches between the two distinct combustion modes. Such switches unfortunately require a finite amount of time, during which they exhibit penalties in efficiency.;Along with its challenges, the design of such a novel system offers new degrees of freedom in terms of engine and aftertreatment specifications. Prior assessments of this technology were based on optimistic assumptions and neglected switching dynamics. Furthermore, emissions and driveability were not fully addressed. To this end, a comprehensive simulation framework, which accounts for above-mentioned penalties and incorporates interactions between multimode engine, driveline, and three-way catalyst (TWC), has been developed.;Experimental data was used to parameterize a novel mode switch model, formulated as finite-state machine. This model was combined with supervisory controller designs, which made the switching decision. The associated drive cycle results were analyzed and it was seen that mode switches have significant influence on overall fuel economy, and the issue of drivability needs to be addressed within the supervisory strategy. After expanding the analysis to address emissions assuming a TWC, it was shown that, in practice, HCCI operation requires the depletion of the TWC's oxygen storage capacity (OSC). For large OSCs the resulting lean-rich cycling nullifies HCCI's original efficiency benefits. In addition, future emissions standards are still unlikely to be fulfilled, deeming a system consisting of such a multimode engine and TWC with generous OSC unfavorable.;In view of these difficulties, the modeling framework was extended to a mild hybrid electric vehicle (HEV) allowing a prolonged operation in HCCI mode with associated fuel economy benefits during city driving. Further analysis on how to reduce NOx while maintaining fuel economy resulted in a counterintuitive suggestion. It was deemed beneficial to constrain the HCCI operation to a small region, exhibiting lowest NOx, while reducing instead of increasing the OSC.
机译:高度稀释的低温燃烧技术,例如均质充量压缩点火(HCCI),显示出内燃机燃油效率和发动机排出的NOx排放量的显着改善。但是,这些改进发生在有限的工作范围内,仍然需要常规的火花点火(SI)燃烧来满足驾驶员的高扭矩要求。结果,这样的多模式发动机包括两个不同燃烧模式之间的离散开关。不幸的是,这种开关需要有限的时间,在此期间它们会表现出效率上的损失。伴随着其挑战,这种新颖的系统的设计在发动机和后处理规格方面提供了新的自由度。对该技术的先前评估是基于乐观假设和被忽略的开关动力学。此外,排放和驾驶性能没有得到充分解决。为此,已经开发了一个综合的仿真框架,该框架考虑了上述惩罚,并考虑了多模式发动机,传动系统和三元催化器(TWC)之间的相互作用。;使用实验数据对新型模式切换模型进行参数化,公式化为有限状态机。该模型与监督控制器设计相结合,从而做出切换决策。对相关的驾驶循环结果进行了分析,发现模式切换对整体燃油经济性有重大影响,并且可驾驶性问题需要在监督策略中解决。在扩大分析范围以解决假设为TWC的排放之后,结果表明,实际上,HCCI运行需要消耗TWC的氧气存储能力(OSC)。对于大型OSC,所产生的稀薄富油循环使HCCI的原始效率优势无效。此外,未来的排放标准仍然不太可能实现,认为这样的多模式发动机和TWC组成的系统对OSC不利,因此;鉴于这些困难,建模框架已扩展到轻度混合动力电动汽车(HEV)允许在HCCI模式下长时间运行,并在城市驾驶期间带来相关的燃油经济性优势。关于如何在保持燃油经济性的同时减少NOx的进一步分析提出了违反直觉的建议。认为将HCCI操作限制在一个小区域,表现出最低的NOx,同时减少而不是增加OSC是有益的。

著录项

  • 作者

    Nuesch, Sandro Patrick.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 218 p.
  • 总页数 218
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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