论文标题
闲置速度控制具有低复杂性偏移的无偏显式模型预测控制在系统延迟的存在下
Idle speed control with low-complexity offset-free explicit model predictive control in presence of system delay
论文作者
论文摘要
由于如今对排放和燃油经济性的严格调节,对闲置速度控制(ISC)绩效的不断改善的要求正在增加。在这方面,具有约束范围的低复杂性无偏置模型预测控制(EMPC)旨在在存在严格配方的系统延迟的情况下,在无法测量的干扰下调节怠速。特别是,我们开发了基于第一原理和测试车辆驾驶数据的高保真4冲程汽油导向的喷射发动机模型,并设计了模型的预测ISC系统。为了处理从摄入到扭矩产生的延迟,我们构建了一个以延迟增强为导向的模型。为了拒绝扭矩损失的影响,我们使用干扰模型和估计器实施了无抵销的MPC方案。此外,要处理发动机控制单元中控制器的有限容量和发动机系统的简短采样,我们制定了一个低复杂性多用途二次二次程序,在状态和输入变量中存在系统延迟,并获得了一个明确的解决方案图。为了证明设计控制器的性能,进行了一系列闭环模拟。开发的显式控制器在存在扭矩损耗和系统延迟的情况下显示出适当的ISC性能。
The requirement for continual improvement of idle speed control (ISC) performance is increasing due to the stringent regulation on emission and fuel economy these days. In this regard, a low-complexity offset-free explicit model predictive control (EMPC) with constraint horizon is designed to regulate the idle speed under unmeasured disturbance in presence of system delay with rigorous formulation. Particularly, we developed a high-fidelity 4-stroke gasoline-direct injected spark-ignited engine model based on first-principles and test vehicle driving data, and designed a model predictive ISC system. To handle the delay from intake to torque production, we constructed a control-oriented model with delay augmentation. To reject the influence of torque loss, we implemented the offset-free MPC scheme with disturbance model and estimator. Moreover, to deal with the limited capacity assigned for the controller in the engine control unit and the short sampling instant of the engine system, we formulated a low-complexity multiparametric quadratic program with constraint horizon in presence of system delay in state and input variables, and obtained an explicit solution map. To demonstrate the performance of the designed controller, a series of closed-loop simulations were performed. The developed explicit controller showed proper ISC performance in presence of torque loss and system delay.