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Active Disturbance-Rejection-Based Speed Control in Model Predictive Control for Induction Machines

机译:基于主动扰动抑制的速度控制在电气电机模型预测控制中

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Finite set model predictive torque control (FCSMPTC) of induction machines has received widespread attention in recent years due to its fast dynamic response, intuitive concept, and ability to handle nonlinear constraints. However, FCSMPTC essentially belongs to the open-loop control paradigm, and unmatched parameters inevitably cause electromagnetic torque tracking error. In addition, the outer loop (i.e., the speed loop) based on a proportional-integral (PI) regulator cannot achieve optimal control between speed dynamic response and torque tracking error compensation. The traditional control paradigm is abbreviated as PI-MPTC. In order to solve the aforementioned problem, this paper proposes active disturbance-rejection-based model predictive torque control (ADR-MPTC). First, the influence mechanism of mismatched parameters on torque prediction error in PI-MPTC is studied, and then the performance of a traditional PI regulator used to compensate for torque prediction error is analyzed. Second, this paper introduces several parts of the proposed ADR-MPTC, including the design of the torque prediction error observer, nonlinear prediction error compensation strategies, an enhanced predictive torque control, and a simplified full-order flux observer. Finally, PI-MPTC and ADR-MPTC are studied experimentally. The experimental results show that compared with PI-MPTC, ADR-MPTC performs better in dynamic and steady states, and has stronger robustness.
机译:由于其快速的动态响应,直观的概念和处理非线性约束的能力,近年来,感应机器的有限设定模型预测扭矩控制(FCSMPTC)受到广泛的关注。然而,FCSMPTC基本上属于开环控制范例,并且不可避免地引起电磁扭矩跟踪误差的无与伦比的参数。另外,基于比例积分(PI)调节器的外环(即速度环)不能在速度动态响应和扭矩跟踪误差补偿之间实现最佳控制。传统的控制范例缩写为PI-MPTC。为了解决上述问题,本文提出了基于主动扰动抑制的模型预测扭矩控制(ADR-MPTC)。首先,研究了PI-MPTC中扭矩预测误差对扭矩预测误差的影响机理,然后分析了用于补偿扭矩预测误差的传统PI调节器的性能。其次,本文介绍了所提出的ADR-MPTC的几个部分,包括扭矩预测误差观测器,非线性预测误差补偿策略,增强的预测扭矩控制和简化的全阶通量观测器的设计。最后,实验研究了PI-MPTC和ADR-MPTC。实验结果表明,与PI-MPTC相比,ADR-MPTC在动态和稳定状态下表现更好,具有更强的鲁棒性。

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