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Optimal control of integrated energy management/mode switch timing in a three-power-source hybrid powertrain

机译:三电源混合动力总成中集成能量管理/模式切换时序的最优控制

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This study designed an efficient, easily implementable online optimal control strategy for three power-source hybrid electric powertrains. The energy improvement of optimal energy management and integrated optimal energy management/mode switch timing relative to the energy consumption in rule-based control was evaluated. First, a control-oriented vehicle model with seven subsystems was developed. For achieving rule-based control, the torque distribution among the engine, motor, and generator was designed according to performance maps of power sources. To conduct power allocation of three sources, two power-split ratios were obtained. Furthermore, for switching between three operation modes (hybrid, electric vehicle, and range extension modes), two hysteresis zones based on the required power and battery state-of-charge were used with four designed variables (boundaries). A global search method was used for the optimization. A cost function with a physical-constraint penalty was used to maximize the travel distance. A simulation performed using nested-structure for-loop programs showed that the mileage extension (energy improvement) for the optimal energy management and integrated optimal energy management/mode switch timing relative to the mileage in rule-based control for two driving cycles, NEDC and FFP-75, were [26.32%, 30.52%] and [17.22%, 20.68%], respectively. The improvements of CO2 reduction were [26.34%, 27.10%] and [23.47%, 24.12%], respectively, thus proving that this study significantly reduced energy consumption and pollutant emission by employing an easily designed control strategy. Online parameter tuning and implementation of optimal energy management in a real vehicle will be conducted in the future. (C) 2016 Elsevier Ltd. All rights reserved.
机译:这项研究设计了一种高效,易于实施的在线最优控制策略,用于三种电源混合动力总成。在基于规则的控制中,评估了最佳能量管理的能量改进以及相对于能量消耗的综合最佳能量管理/模式切换时序。首先,开发了具有七个子系统的面向控制的车辆模型。为了实现基于规则的控制,根据动力源的性能图设计了发动机,电动机和发电机之间的扭矩分配。为了进行三个电源的功率分配,获得了两个功率分配比。此外,为了在三种操作模式(混合动力,电动汽车和范围扩展模式)之间进行切换,使用了基于所需功率和电池充电状态的两个磁滞区,并带有四个设计变量(边界)。使用全局搜索方法进行优化。具有物理约束代价的成本函数用于最大化行驶距离。使用嵌套结构的for循环程序进行的仿真显示,相对于基于规则的两个行驶周期NEDC和DC行驶中的行驶里程,用于最佳能量管理的行驶里程扩展(提高能量)和集成的最佳能量管理/模式切换时序。 FFP-75分别为[26.32%,30.52%]和[17.22%,20.68%]。减少CO2的改善分别为[26.34%,27.10%]和[23.47%,24.12%],因此证明该研究通过采用易于设计的控制策略显着降低了能耗和污染物排放。未来将进行在线参数调整和在实际车辆中实现最佳能源管理。 (C)2016 Elsevier Ltd.保留所有权利。

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