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Combustion Timing Control of Natural Gas HCCI Engines Using Physics-Based Modeling and LQR Controller

机译:基于物理建模和LQR控制器的天然气HCCI发动机燃烧正时控制

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摘要

Homogeneous Charge Compression Ignition (HCCI) Engines hold promises of being the next generation of internal combustion engines due to their ability to produce high thermal efficiencies and low emission levels. HCCI combustion is achieved through the auto-ignition of a compressed homogenous fuel-air mixture, thus making it a "fusion" between spark-ignition and compression-ignition engines. The main challenge in developing HCCI engines is the absence of a combustion trigger hence making it difficult to control its combustion timing.The aim of this research project is to model and control a natural gas HCCI engine. Since HCCI depends primarily on temperature and chemical composition of the mixture, Exhaust Gas Recirculation (EGR) is used to control ignition timing. In this research, a thermodynamical, physics-based nonlinear model is developed to capture the main features of the HCCI engine. In addition, the Modified Knock Integral Model (MKIM), used to predict ignition timing, is optimized. To validate the nonlinear model, ignition timing under varying conditions using the MKIM approach is shown to be in accordance with data acquired from a model developed using a sophisticated engine simulation program, GT-Power. Most control strategies are based on a linear model, therefore, the nonlinear model is linearized using the perturbation method. The linear model is validated by comparing its performance with the nonlinear model about a suitable operating point.The control of ignition timing can be defined as a regulation process where the goal is to force the nonlinear model to track a desired ignition timing by controlling the EGR ratio. Parameters from the linear model are used to determine the gains of the LQR controller. The performance of the controller is validated by implementing it on the nonlinear model and observing its ability to track the desired timing with 0.5% error within a certain operating range. To increase the operating range of the controller and reduce steady-state error, an integrator is added to the LQR. Finally, it is shown that the LQR controller is able to successfully reject disturbance, parameter variation, as well as noise.
机译:均质充气压缩点火(HCCI)发动机具有产生高热效率和低排放水平的能力,有望成为下一代内燃机。 HCCI燃烧通过压缩的均质燃料-空气混合物的自动点火实现,因此使其成为火花点火和压缩点火发动机之间的“融合”。开发HCCI发动机的主要挑战是没有燃烧触发器,因此很难控制其燃烧正时。本研究项目的目的是对天然气HCCI发动机进行建模和控制。由于HCCI主要取决于混合物的温度和化学成分,因此使用废气再循环(EGR)来控制点火正时。在这项研究中,开发了一种基于物理的热力学非线性模型,以捕获HCCI发动机的主要特征。此外,优化了用于预测点火正时的改进的爆震积分模型(MKIM)。为了验证非线性模型,使用MKIM方法在变化条件下的点火正时显示为与从使用复杂发动机仿真程序GT-Power开发的模型中获取的数据一致。大多数控制策略都是基于线性模型,因此,非线性模型是使用摄动法来线性化的。通过在适当的工作点上将其性能与非线性模型进行比较来验证线性模型。点火正时的控制可以定义为一种调节过程,其目标是通过控制EGR来迫使非线性模型跟踪所需的点火正时。比。线性模型的参数用于确定LQR控制器的增益。通过在非线性模型上实施控制器并观察其在一定工作范围内以0.5%的误差跟踪所需时序的能力,可以验证控制器的性能。为了增加控制器的工作范围并减少稳态误差,在LQR中添加了一个积分器。最后,显示了LQR控制器能够成功抑制干扰,参数变化以及噪声。

著录项

  • 作者

    Abdelgawad Marwa;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
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