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Integrated cycle-to-cycle control of exhaust gas temperature, load, and combustion phasing in an HCCI engine

机译:HCCI发动机的排气温度,负载和燃烧定相的集成逐周期控制

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Precise and integrated cycle-to-cycle control of exhaust gas temperature (T), load, and combustion phasing is essential for realizing high efficiency Homogeneous Charge Compression Ignition (HCCI) engines with low exhaust emissions. In this paper a model-based control framework is developed for an integrated control of T, Indicated Mean Effective Pressure (IMEP), and combustion phasing in an HCCI engine. A discrete Control Oriented Model (COM) is developed to predict the HCCI outputs on a cycle-to-cycle basis and validated against steady-state and transient experimental data from a single cylinder Ricardo engine. The COM provides sufficient accuracy with an average uncertainty of 7 °C, 0.3 bar, and 1.6 CAD for predicting T, IMEP and combustion phasing, respectively. In addition, the COM is computationally efficient for real-time HCCI control. A three-input three-output controller is designed using a Discrete Sliding Mode Control (DSMC) method to control T, IMEP, and combustion phasing by adjusting the intake manifold pressure, fuel mass flow rate, and ratio of two Primary Reference Fuels (PRFs), respectively. The results indicate the DSMC is capable of maintaining the stability of the engine operation and tracking the desirable HCCI engine outputs, while also rejecting internal disturbances.
机译:排气温度(T),负载和燃烧定相的精确且逐周期的集成控制对于实现低废气排放的高效均质增压压缩点火(HCCI)发动机至关重要。在本文中,开发了一种基于模型的控制框架,用于HCCI发动机的T控制,指示平均有效压力(IMEP)和燃烧定相的集成控制。开发了离散控制模型(COM)以逐周期预测HCCI输出,并针对来自单缸Ricardo发动机的稳态和瞬态实验数据进行了验证。 COM提供了足够的准确度,平均不确定度为7°C,0.3 bar和1.6 CAD,分别用于预测T,IMEP和燃烧定相。此外,COM在实时HCCI控制方面在计算上是高效的。通过使用离散滑模控制(DSMC)方法设计三输入三输出控制器,以通过调节进气歧管压力,燃料质量流量和两种主要参考燃料(PRF)的比例来控制T,IMEP和燃烧定相。 ), 分别。结果表明,DSMC能够保持发动机运行的稳定性并跟踪所需的HCCI发动机输出,同时还能消除内部干扰。

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