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Composite Adaptive Internal Model Control and Its Application to Boost Pressure Control of a Turbocharged Gasoline Engine

机译:复合自适应内模控制及其在汽油机增压压力控制中的应用

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Internal model control (IMC) explicitly incorporates the plant model and its approximate inverse and offers an intuitive controller structure and calibration procedure. In the presence of plant-model uncertainty, combining the IMC structure with parameter estimation through the certainty equivalence principle leads to adaptive IMC (AIMC), where either the plant model or its inverse is identified. This paper proposes a composite AIMC (CAIMC) that explores the IMC structure and simultaneous plant dynamics and inverse dynamics identification to achieve improved performance of AIMC. A toy plant is used to illustrate the feasibility and potential of CAIMC. The advantages of CAIMC are later demonstrated on the boost-pressure control problem of a turbocharged gasoline engine. The design of the CAIMC assumes that the plant model and its inverse are represented by the first-order linear dynamics. The unmodeled dynamics and uncertainties due to linearization and variations in operating conditions are compensated through adaptation. The resulting CAIMC is first applied to a physics-based high-order and nonlinear proprietary turbocharged gasoline engine model, and then validated on a turbocharged 2-L four-cylinder gasoline engine on a vehicle with vacuum-actuated wastegate. Both the simulation and experimental results show that the CAIMC cannot only effectively compensate for uncertainties but also auto-tune the IMC controller for the best performance.
机译:内部模型控制(IMC)明确合并了工厂模型及其近似逆,并提供了直观的控制器结构和校准过程。在存在工厂模型不确定性的情况下,通过确定性等效原理将IMC结构与参数估计结合起来,可以生成自适应IMC(AIMC),在其中可以识别工厂模型或其逆模型。本文提出了一种复合AIMC(CAIMC),该模型探讨了IMC结构以及同时进行的植物动力学和逆动力学识别,以提高AIMC的性能。一个玩具厂被用来说明CAIMC的可行性和潜力。 CAIMC的优势随后在涡轮增压汽油发动机的增压控制问题上得到证明。 CAIMC的设计假定工厂模型及其逆由一阶线性动力学表示。通过适应性补偿了线性化和运行条件变化所引起的未建模动力学和不确定性。生成的CAIMC首先应用于基于物理的高阶和非线性专有涡轮增压汽油发动机模型,然后在带有真空致动废气旁通阀的车辆的涡轮增压2升四缸汽油发动机上进行验证。仿真和实验结果均表明,CAIMC不仅可以有效地补偿不确定性,还可以自动调整IMC控制器以获得最佳性能。

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