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Optimal Control of Integrated Starter and Generator for Maximum Energy Recovery during Engine Stop Transition in Hybrid Electric Vehicles

机译:混合动力电动汽车发动机停止过渡期间最大能量回收的集成起动器和发电机的最佳控制

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An integrated starter and generator (ISG) is a type of electric machine which is mechanically connected to an internal combustion engine (ICE). The ISG is intended to conduct important roles in the hybrid electric vehicle (HEV) such as engine start and stop. Since the HEV has frequent electric vehicle (EV)/HEV mode transition, rapid engine cranking and vibration-free engine stop controls are necessary. In the case of the engine stop, the ISG provides the negative torque output to the ICE which can rapidly escape from its resonance speed. However, the ISG torque is determined by engineering intuition, the amount of energy recovery is hardly considered. Dynamic programming (DP) is an effective solution to find optimal ISG control strategy to maximize energy recovery during engine stop transition. Even though DP is an offline algorithm, the result can be used as a reference to evaluate and improve an existing on-line algorithm. In this paper, the procedures for applying DP to ISG control during engine stop transition are explained. Simplified powertrain model, which consists of mechanical and electrical parts of HEV powertrain, is given. Then DP is applied to this model in order to verify the effect of cost function on maximizing energy recovery. In the simulation, the amount of energy recovery using DP is about 70kJ for 40 engine stop events over FTP 4-bag cycle. In addition, based on the DP result, a look-up table based real-time control is developed in the small size HEV. This experiment results in an improvement of 0.7 % better mileage in FTP 4-bag cycle.
机译:集成的起动器和发电机(ISG)是一种机械连接到内燃机(ICE)的电机类型。 ISG旨在在混合动力电动车辆(HEV)中进行重要作用,例如发动机启动和停止。由于HEV具有频繁的电动车(EV)/ HEV模式过渡,因此需要快速发动机起动和无振动发动机停止控制。在发动机停止的情况下,ISG为冰提供负扭矩输出,这可以从其共振速度迅速逸出。然而,ISG扭矩由工程直觉确定,难以考虑能量恢复量。动态编程(DP)是一种有效的解决方案,可以找到最佳ISG控制策略,以最大限度地发动机停止转换期间的能量恢复。即使DP是一个离线算法,结果也可以用作评估和改进现有在线算法的参考。在本文中,解释了用于在发动机停止转换期间将DP应用于ISG控制的程序。给出了简化的动力总成模型,由HEV动力系的机械和电气部件组成。然后将DP应用于该模型,以验证成本功能对最大化能量恢复的影响。在模拟中,使用DP的能量回收量为FTP 4袋循环的40个发动机停止事件约为70kJ。此外,基于DP结果,在小型HEV中开发了基于查找表的实时控制。该实验导致在FTP 4袋循环中提高0.7%的里程。

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