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Predictive Second Order Sliding Control of Constrained Linear Systems with Application to Automotive Control Systems

机译:约束线性系统的预测二阶滑模控制及其在汽车控制系统中的应用

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This paper presents a new predictive second order sliding controller (PSSC) formulation for setpoint tracking of constrained linear systems. The PSSC scheme is developed by combining the concepts of model predictive control (MPC) and second order discrete sliding mode control. In order to guarantee the feasibility of the PSSC during setpoint changes, a virtual reference variable is added to the PSSC cost function to calculate the closest admissible set point. The states of the system are then driven asymptotically to this admissible setpoint by the control action of the PSSC. The performance of the proposed PSSC is evaluated for an advanced automotive engine case study, where a high fidelity physics-based model of a reactivity controlled compression ignition (RCCI) engine is utilized to serve as the virtual test-bed for the simulations. Considering the hard physical constraints on the RCCI engine states and control inputs, simultaneous tracking of engine load and optimal combustion phasing is a challenging objective to achieve. The simulation results of testing the proposed PSSC on the high fidelity RCCI model show that the developed predictive controller is able to track desired engine load and combustion phasing setpoints, with minimum steady state error, and no overshoot. Moreover, the simulation results confirm the robust tracking performance of the PSSC during transient operations, in the presence of engine cyclic variability.
机译:本文提出了一种新的预测二阶滑动控制器(PSSC)公式,用于约束线性系统的设定值跟踪。通过结合模型预测控制(MPC)和二阶离散滑模控制的概念来开发PSSC方案。为了保证在设定值更改期间PSSC的可行性,将虚拟参考变量添加到PSSC成本函数以计算最接近的允许设定值。然后通过PSSC的控制动作将系统的状态渐近驱动到该允许的设定值。针对先进的汽车发动机案例研究评估了拟议的PSSC的性能,在该案例研究中,使用了基于高保真物理学的反应堆控制压燃(RCCI)发动机模型作为仿真的虚拟试验台。考虑到对RCCI发动机状态和控制输入的严格物理限制,同时跟踪发动机负载和最佳燃烧定相是一项具有挑战性的目标。在高保真RCCI模型上测试拟议的PSSC的仿真结果表明,开发的预测控制器能够跟踪所需的发动机负载和燃烧定相设定点,且稳态误差最小,并且没有超调。此外,仿真结果证实了在存在发动机循环可变性的情况下,瞬态运行期间PSSC的鲁棒跟踪性能。

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  • 来源
    《Annual American Control Conference》|2018年|1629-1634|共6页
  • 会议地点 Milwaukee(US)
  • 作者单位

    University of Michigan Department of Naval Architecture and Marine Engineering Ann Arbor MI 48109 USA;

    Michigan Technological University Department of Mechanical Engineering-Engineering Mechanics Houghton MI 49931 USA;

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