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An Optimized Real-Time Energy Management Strategy for the Power-Split Hybrid Electric Vehicles

机译:功率分流混合动力电动汽车的优化实时能源管理策略

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摘要

This paper proposes a new real-time energy management strategy (R-EMS) to improve the fuel economy performance of the power-split hybrid electric vehicles (HEVs). Being different from most conventional optimization-based EMS, the R-EMS does not need priori information of the driving cycle and is used to the online control of HEV. The forward dynamic model of power-split powertrain is built based on the Prius MY10. At each instant, the proposed R-EMS tries to minimize the equivalent consumed power of the HEV, which is the weighted summation of gasoline power and battery output power. The equivalence factor of battery output power has a clear physical meaning that is the efficiency of gasoline energy transferred to battery energy. Another two coefficients are introduced to control the state of charge (SOC) of battery. By considering the engine torque and engine speed as two independent or dependent design variables, respectively, the 2-D R-EMS and 1-D R-EMS are formed. Several typical driving cycles are used to simulate the performance of the R-EMS, and the results show that the proposed R-EMS not only maintains the battery SOC but also saves the fuel consumption compared with the rule-based EMS.
机译:本文提出了一种新的实时能源管理策略(R-EMS),以提高动力分配混合动力电动车(HEV)的燃油经济性能。与大多数传统的基于优化的EMS不同,R-EM不需要驾驶周期的先验信息,并用于HEV的在线控制。电源分割动力总成的前向动态模型是基于Prius My10构建的。在每个瞬间,所提出的R-EMS试图最小化HEV的等同消耗功率,这是汽油功率和电池输出功率的加权求和。电池输出功率的等效系数具有清晰的物理意义,即汽油能量转移到电池能量的效率。引入另外两个系数以控制电池的充电状态(SOC)。通过将发动机扭矩和发动机速度视为两个独立或依赖性设计变量,形成了2-D R-EMS和1-D R-EMS。若干典型的驾驶循环用于模拟R-EMS的性能,结果表明,所提出的R-EMS不仅维持电池SOC,而且还与基于规则的EMS相比节省了燃料消耗。

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