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首页> 外文期刊>IEEE Transactions on Control Systems Technology >A New Real-Time Optimal Energy Management Strategy for Parallel Hybrid Electric Vehicles
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A New Real-Time Optimal Energy Management Strategy for Parallel Hybrid Electric Vehicles

机译:并联混合动力汽车的实时最优能源管理新策略

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摘要

Based on the equivalent consumption minimization strategy (ECMS), a novel real-time energy management (EM) strategy for parallel hybrid electric vehicles (HEVs) is introduced. Given the full trajectory of the driver demanded power, the ECMS optimal equivalent factor lambda* can be determined. For causal EM strategies, the entire drivecycle is not known in advance. Thus, adaptive ECMS (A-ECMS) was introduced, which sets the time-varying equivalent factor lambda as an estimate of lambda*. The proposed EM strategy is an A-ECMS. This EM strategy is designed to catch energy-saving opportunities (CESOs) during the trip, and thus, it is named ECMS-CESO. Since ECMS-CESO eliminates the calculations used for predicting the vehicle velocity and performing horizon optimization, it is easy to implement and fast for real-time applications. Simulation results show that ECMS-CESO yields fuel economy (FE) close to the maximum FE. Compared with an A-ECMS, the proposed strategy improves FE by 7%.
机译:基于等效消耗最小化策略(ECMS),提出了一种用于并联混合动力电动汽车(HEV)的新型实时能源管理(EM)策略。给定驾驶员所需功率的完整轨迹,可以确定ECMS最佳等效系数lambda *。对于因果的EM策略,整个传动周期是未知的。因此,引入了自适应ECMS(A-ECMS),它将时变等效系数lambda设置为lambda *的估计值。提议的EM策略是A-ECMS。此EM策略旨在在旅途中抓住节能机会(CESO),因此被称为ECMS-CESO。由于ECMS-CESO消除了用于预测车速和进行视野最佳化的计算,因此对于实时应用而言,它易于实现且速度很快。仿真结果表明,ECMS-CESO产生的燃油经济性(FE)接近最大FE。与A-ECMS相比,所提出的策略将有限元效率提高了7%。

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