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Model-based iterative learning control strategies for precise trajectory tracking in gasoline engines

机译:基于模型的迭代学习控制策略,用于汽油发动机的精确轨迹跟踪

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In this paper trajectory tracking algorithms for gasoline engines are devised. Specifically, precise reference tracking in engine speed and air-to-fuel ratio is enabled while satisfying initial and final conditions on the center of combustion. Such a tracking of multiple reference trajectories requires a coordinated control action for the air path, the fuel path, and the ignition timing actuators. Combining a dedicated feedforward and feedback controller structure and multivariable model-based norm-optimal parallel iterative learning control strategies, feedforward control trajectories are generated that enable a precise tracking of desired reference trajectories. Experimental results focusing on the termination of the catalyst heating mode show the effectiveness of the proposed methodology, resulting in a control error reduction above 85%.
机译:本文设计了一种汽油机轨迹跟踪算法。具体地,在满足燃烧中心的初始和最终条件的同时,能够进行发动机速度和空燃比的精确参考跟踪。对多个参考轨迹的这种跟踪需要对空气路径,燃料路径和点火正时致动器进行协调的控制动作。将专用的前馈和反馈控制器结构与基于多变量模型的范数最优的并行迭代学习控制策略相结合,可生成能够精确跟踪所需参考轨迹的前馈控制轨迹。着重于终止催化剂加热模式的实验结果表明了所提出方法的有效性,从而将控制误差降低了85%以上。

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