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Robust Speed Synchronization Control for an Integrated Motor-Transmission Powertrain System with Feedback Delay

机译:具有反馈延迟的集成电机传输动力系系统的鲁棒速度同步控制

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Motor speed synchronization is important in gear shifting of emerging clutchless automated manual transmissions for battery electric vehicles (BEV) and other kinds of parallel shaft-based powertrains for hybrid electric vehicles (HEV). Difficulties of the problem mainly come from random delay induced by network communication and unknown load torques from air drag, oil drag, and friction torques, etc. To deal with these two factors, this paper proposes a robust speed synchronization controller based on act-and-wait control and disturbance observer. The former is a kind of periodical controller specially for regulating problems with feedback delay while the latter is a technique for active disturbance rejection. Firstly, the dynamic model of the motor shaft is formulated, and the system parameters are offline identified. The speed tracking problem is then transformed into a regulating one. The act-and-wait control law for the nominal model is proposed regarding the new model after transformation. Determination of controller parameters and their relationship with the speed synchronizing process are discussed. After derivation of the nominal controller, a time-domain disturbance observer is integrated to enhance robustness. Effects of different controller parameters are studied through simulations. Experiments are carried out on a test bench with the motor-transmission powertrain system. Comparisons with the conventional PI controller are performed regarding transient responses and robustness. Results show that the proposed controller is able to achieve a fast and smooth synchronization process, while the PI controller is faced with the dilemma between overshoot and settling time which cannot be simply solved through parameter calibration. In conclusion, the proposed controller is suitable for motor speed synchronization control in parallel shaft-based powertrains in BEV and HEV.
机译:电动机速度同步是重要的齿轮为电池电动车辆(BEV)和其他种类的混合动力电动汽车(HEV)平行基于轴的动力系统的新出现的无离合器自动化手动变速器的偏移。问题的困难主要来自通过网络通信,并从空气阻力未知负荷转矩,油阻力和摩擦力矩等为了解决这两个因素引起的随机延迟,这提出了一种基于鲁棒速度同步控制器行为和-wait控制和干扰观测。前者是专门用于调节与反馈延迟的问题,而后者是主动干扰抑制技术的一种周期性控制器。首先,在马达轴的动态模型被配制,并且该系统参数的离线鉴别。然后,速度跟踪问题转化为调节一个。对于标称模型的行为和等待控制规律,提出了关于改造后的新模式。讨论的控制器参数和它们与速度同步处理关系确定。标称控制器的推导后,时域干扰观测整合,以增强鲁棒性。通过仿真研究了不同的控制器参数的影响。实验测试台与马达传输动力系统上进行的。与传统的PI控制器的比较关于瞬态响应和鲁棒性来执行。结果表明,所提出的控制器能够实现快速,顺利的同步处理中,在PI控制器面临着的过冲和不能通过校准参数来简单地解决建立时间之间的窘境。总之,所提出的控制器适用于在BEV和HEV基于平行轴传动系的电动机速度同步控制。

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