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首页> 外文期刊>Journal of power sources >Optimal energy management with balanced fuel economy and battery life for large hybrid electric mining truck
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Optimal energy management with balanced fuel economy and battery life for large hybrid electric mining truck

机译:大型混合电动矿车均衡燃油经济性和电池寿命的最佳能源管理

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摘要

With the addition of an energy storage system (ESS) and advanced controls, a hybrid electric propulsion system can considerably improve the fuel economy over a pure mechanical powertrain. However, the high cost and relatively short operating life of the battery ESS constitute a significant portion of the total operation cost (TOC) of an electrified vehicle, particularly for heavy-duty vehicles with a larger ESS. In this work, a new method for generating the optimal energy management strategy (EMS), considering the TOC of a hybrid electric mining truck (HEMT), is introduced. The cost associated with battery performance degradation and operation lifeshortening under different battery use patterns is added to form the globally optimal, TOC-based EMS. The optimal EMS under different vehicle operation profiles are identified using dynamic programming (DP) to serve as benchmarks. An intelligent optimal ESS energy management method for achieving the minimum TOC during real-time, open-pit HEMT operations is introduced by combining an artificial neural network (ANN) model and a fuzzy-logic controller (FLC). The new, real-time intelligent optimal EMS led to twenty-one percent TOC reduction of the HEMT over the traditional, pure fuel economy-oriented optimal EMS, and formed the foundation of TOCbased, optimal EMS development for hybrid electric vehicles (HEVs).
机译:随着储能系统(ESS)和先进的控制,混合电动推进系统可以在纯机械动力总成中显着改善燃料经济性。然而,电池ESS的高成本和相对短的操作寿命构成了电气化车辆总操作成本(TOC)的重要部分,特别是对于具有较大ESS的重型车辆。在这项工作中,引入了考虑混合动力电动挖掘卡车(HEMT)的TOC的最佳能量管理策略(EMS)的新方法。添加了不同电池使用模式下电池性能下降和操作寿命的成本,以形成全球最佳的基于TOC的EMS。使用动态编程(DP)识别不同车辆操作简档下的最佳EMS以用作基准。通过组合人工神经网络(ANN)模型和模糊逻辑控制器(FLC)来引入用于在实时实现最小TOC的智能最佳ESS能量管理方法。新的实时智能最优EMS导致了传统,纯粹的燃料经济性的最佳EMS的二十一度TOC减少了HEMT,并形成了对混合电动汽车(HEV)的最佳EMS开发的基础。

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