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基于环境感知器的并联式插电混合动力汽车等效能耗最小化策略。

An Equivalent Consumption Minimization Strategy for a Parallel Plug-In Hybrid Electric Vehicle Based on an Environmental Perceiver.

机构信息

College of Automotive Engineering, Jilin University, Changchun 130022, China.

Department of Aeronautical and Automotive Engineering, Loughborough University, Loughborough LE11 3TU, UK.

出版信息

Sensors (Basel). 2022 Dec 8;22(24):9621. doi: 10.3390/s22249621.

Abstract

An energy management strategy is a key technology used to exploit the energy-saving potential of a plug-in hybrid electric vehicle. This paper proposes the environmental perceiver-based equivalent consumption minimization strategy (EP-ECMS) for parallel plug-in hybrid vehicles. In this method, the traffic characteristic information obtained from the intelligent traffic system is used to guide the adjustment of the equivalence factor, improving the environmental adaptiveness of the equivalent consumption minimization strategy (ECMS). Two main works have been completed. First, a high-accuracy environmental perceiver was developed based on a graph convolutional network (GCN) and attention mechanism to complete the traffic state recognition of all graph regions based on historical information. Moreover, it provides the grade of the corresponding region where the vehicle is located (for the ECMS). Secondly, in the offline process, the search for the optimal equivalent factor is completed by using the Harris hawk optimization algorithm based on the representative working conditions under various grades. Based on the identified traffic grades in the online process, the optimized equivalence factor tables are checked for energy management control. The simulation results show that the improved EP-ECMS can achieve 7.25% energy consumption optimization compared with the traditional ECMS.

摘要

能量管理策略是挖掘插电式混合动力汽车节能潜力的关键技术。本文为并联式插电混合动力汽车提出了基于环境感知器的等效油耗最小化策略(EP-ECMS)。在该方法中,利用智能交通系统获得的交通特征信息来指导等效因子的调整,提高等效油耗最小化策略(ECMS)的环境适应性。主要完成了两项工作。首先,基于图卷积网络(GCN)和注意力机制开发了高精度的环境感知器,以根据历史信息完成所有图区域的交通状态识别。此外,它还为车辆所在的相应区域提供了等级(用于 ECMS)。其次,在离线过程中,利用基于各种等级的代表性工作条件的哈里斯鹰优化算法完成最优等效因子的搜索。在线过程中识别出交通等级后,检查优化的等效因子表以进行能量管理控制。仿真结果表明,与传统的 ECMS 相比,改进后的 EP-ECMS 可以实现 7.25%的能耗优化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/109a/9783941/95fc719796ca/sensors-22-09621-g001.jpg

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