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Calibration reduction in internal combustion engine fueling control: modeling, estimation and stability robustness.

机译:减少内燃机加油控制中的校准:建模,估计和稳定性鲁棒性。

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摘要

Controlling the fuel injection system of an internal combustion engine is a challenging and multifaceted problem. Current control algorithms rely heavily on lengthy experimentally-based calibration techniques. Even with these extensive calibration processes, suboptimal performance is often achieved because the selected control gains depend on calibrator experience and intuition instead of objective metrics. The cost and manpower required to calibrate a fueling controller can be staggering. Recent advances in air path actuation technologies such as the variable geometry turbocharger for diesel engines and variable cam timing for gasoline engines have expanded the dimensionality of the fueling control problem, further increasing the calibration burden of conventional controllers.;This dissertation presents model based alternatives to the current calibration-heavy fueling controllers used in production gasoline and diesel engines. The novelty of these controllers is derived from both the underlying plant models and the application of estimation/control theory to these models. One of the most unique aspects of these control problems is the time varying delay which characterizes the plant (i.e. the engine air path system). From a deep understanding of the physical phenomena involved, new types of air path models that directly capture the oxygen transport and mixing dynamics are developed. An experimental validation demonstrates that such a model can even account for cylinder-to-cylinder response variations caused by asymmetrical exhaust runner lengths.;Advanced model based estimation and control techniques are applied to these models to develop more effective methods of estimating the most important dynamic variables (i.e. in-cylinder oxygen concentration and cylinder imbalance) and controlling fuel delivery in diesel and gasoline engines. During the design processes, particular emphasis is placed on stability robustness, and comprehensive stability proofs are provided for the controllers and estimators developed. Because of the practical issues involved in dynamically measuring the in-cylinder oxygen concentration, the in-cylinder oxygen concentration estimator and the diesel fueling controller are validated in simulation using the engine modeling software GT-Power. Experimental validations demonstrate the capabilities of the cylinder imbalance estimator and comprehensively quantify the performance of the gasoline fueling controller through direct comparisons to the existing production controller. Above even their performance and robustness benefits, the most compelling reasons to adopt these estimators and controllers over their production counterparts are their modest calibration requirements.
机译:控制内燃机的燃料喷射系统是具有挑战性和多方面的问题。当前的控制算法严重依赖于冗长的基于实验的校准技术。即使使用这些广泛的校准过程,由于选择的控制增益取决于校准者的经验和直觉而不是客观指标,因此通常仍会获得次佳的性能。校准加油控制器所需的成本和人力可能是惊人的。空气路径致动技术的最新进展,例如柴油发动机的可变几何涡轮增压器和汽油发动机的可变凸轮正时,扩大了加油控制问题的范围,进一步增加了传统控制器的校准负担。当前用于生产汽油和柴油发动机的校准重油控制器。这些控制器的新颖性源于基本的工厂模型以及估计/控制理论在这些模型中的应用。这些控制问题的最独特方面之一是随时间变化的延迟,这是工厂(即发动机空气路径系统)的特征。通过深入了解所涉及的物理现象,开发了直接捕捉氧气传输和混合动力学的新型空气路径模型。实验验证表明,这样的模型甚至可以解决由不对称排气流道长度引起的汽缸间响应变化。;基于高级模型的估计和控制技术应用于这些模型,以开发更有效的方法来估计最重要的动态变量(例如,缸内氧气浓度和缸内不平衡)并控制柴油和汽油发动机的燃料输送。在设计过程中,特别强调稳定性的鲁棒性,并为开发的控制器和估计器提供了全面的稳定性证明。由于涉及动态测量缸内氧气浓度的实际问题,因此使用发动机建模软件GT-Power在仿真中验证了缸内氧气浓度估算器和柴油燃料控制器。实验验证证明了汽缸失衡估计器的功能,并通过与现有生产控制器的直接比较来全面量化汽油控制器的性能。除了其性能和鲁棒性优势外,与生产同类产品相比,采用这些估算器和控制器的最令人信服的理由是其适度的校准要求。

著录项

  • 作者

    Meyer, Jason.;

  • 作者单位

    The Ohio State University.;

  • 授予单位 The Ohio State University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 303 p.
  • 总页数 303
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:54

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