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Closed-loop control of a multi-cylinder HCCI engine.

机译:多缸HCCI发动机的闭环控制。

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摘要

This thesis focuses on closed-loop control of multi-cylinder HCCI engines. A single-cylinder Caterpillar 3401 HCCI engine is used to demonstrate closed-loop combustion timing control. An exhaust throttle adjusts the combustion timing by altering the amount of in-cylinder residual gases. However, when the strategy is applied to a four-cylinder Volkswagen 1.9L HCCI engine, cylinder-to-cylinder cross-talk is discovered. Because of cross-talk, multi-cylinder HCCI engine control is not a simple extension of single-cylinder HCCI engine control. A comprehensive 42-state dynamic HCCI engine model is created to capture cylinder-to-cylinder cross-talk and suggest possible control strategies. Simulations show the intake valve opening and intake valve closing events significantly affect cross-talk. Thus, managing cross-talk may be a significant aspect of multi-cylinder VVT HCCI engine control.; The 42-state HCCI engine model is useful for analysis but too complex for control synthesis. A more suitable low-order model is derived through subspace system identification and used to design an LQG controller. The LQG controller performs poorly due to engine and cylinder wall temperature fluctuations. The poor performance is remedied by adding integral action to the LQG controller. The resulting LQG-integral controller suppresses misfire and independently controls the combustion timing on each of the four cylinders. Though the LQG-integral controller performs well, a more robust controller is desired. In order to improve robustness, a nominal transfer function and uncertainty description are derived using spectral analysis and used to synthesize Hinfinity and mu-synthesis controllers.; While satisfactory for research, the piezoelectric pressure transducers used for feedback in these controllers are too expensive for commercial production. A procedure is derived for estimating combustion timing using low-cost microphones, knock sensors, and ion sensors. The procedure is experimentally validated with microphones and knock sensors, and used with a microphone for feedback in a closed-loop single-cylinder HCCI engine controller. Though only a single low-cost sensor is used in this controller, future HCCI engine control strategies may use a combination of low-cost sensors.
机译:本文主要研究多缸HCCI发动机的闭环控制。卡特彼勒3401 HCCI单缸发动机用于演示闭环燃烧正时控制。排气节气门通过改变缸内残留气体的量来调节燃烧正时。但是,当将该策略应用于四缸大众1.9升HCCI发动机时,发现了缸与缸之间的串扰。由于串扰,多缸HCCI发动机控制不是单缸HCCI发动机控制的简单扩展。建立了全面的42状态动态HCCI发动机模型,以捕获汽缸之间的串扰并提出可能的控制策略。模拟显示进气门打开和进气门关闭事件会严重影响串扰。因此,管理串扰可能是多缸VVT HCCI发动机控制的重要方面。 42状态HCCI引擎模型对于分析很有用,但对于控制综合来说太复杂了。通过子空间系统识别导出更合适的低阶模型,并将其用于设计LQG控制器。由于发动机和气缸壁温度的波动,LQG控制器的性能较差。通过向LQG控制器添加积分功能来纠正性能不佳的问题。最终的LQG集成控制器可抑制失火并独立控制四个气缸中每个气缸的燃烧正时。尽管LQG集成控制器表现良好,但仍需要一个更强大的控制器。为了提高鲁棒性,使用频谱分析得出了标称传递函数和不确定性描述,并用于合成Hinfinity和mu合成控制器。尽管对于研究而言令人满意,但是用于这些控制器中的反馈的压电压力传感器对于商业生产而言过于昂贵。推导了使用低成本麦克风,爆震传感器和离子传感器估算燃烧正时的过程。该程序已通过麦克风和爆震传感器进行了实验验证,并与麦克风一起用于闭环单缸HCCI发动机控制器中的反馈。尽管此控制器仅使用一个低成本传感器,但未来的HCCI发动机控制策略可能会结合使用低成本传感器。

著录项

  • 作者

    Souder, Jason Scott.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Engineering Mechanical.; Engineering Automotive.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 186 p.
  • 总页数 186
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;自动化技术及设备;
  • 关键词

  • 入库时间 2022-08-17 11:43:25

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