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Pontryagin's minimum principle based fuzzy adaptive energy management for hybrid electric vehicle using real-time traffic information

机译:Pontryagin使用实时交通信息的混合动力电动车辆的最低原理基于模糊自适应能源管理

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摘要

Pontryagin's minimum principle (PMP) based energy management strategy, which describes the optimal power distribution of hybrid electric vehicle as Hamiltonian minimization problem, gains the ability to ensure real-time performance and near-optimal solutions, but demonstrates poor cycle adaptability. Therefore, this paper proposes a novel fuzzy adaptive method for the PMP-based optimal strategy by utilizing real-time traffic information that is described by the average velocity and the standard deviation of the velocity on different road segments. The two velocity feature parameters are derived by the data of floating vehicles. A three-layer back-propagation neural network (BP-NN) is constructed to predict the average power with the velocity feature parameters. On the basis of battery charging sustainability, the fuzzy adaptive law is designed to calculate the co-state of the PMPbased strategy using the predicted average power and the actual battery SOC. Finally, the performance of the proposed strategy is evaluated by comparative simulation studies. It is validated that the average velocity and the standard deviation of the velocity can be well evaluated by the information of floating vehicles. Tested by the standard and practical sampled driving cycles, the BP-NN demonstrates good performance in predicting the average power with the selected velocity feature parameters. Compared with the strategy whose co-state is just corrected by the battery SOC in the feed-back manner, the proposed PMP-based fuzzy adaptive method demonstrates superiority in improving the vehicle fuel economy and maintaining the battery charging sustainability under various driving cycles.
机译:Pontryagin的最低原则(PMP)的能源管理策略,描述了混合动力汽车作为Hamiltonian最小化问题的最佳功率分布,获得了确保实时性能和近最佳解决方案的能力,但仍然表现出较差的循环适应性。因此,本文提出了一种通过利用由平均速度描述的实时交通信息和不同的道路段上的速度的标准偏差来提出基于PMP的最佳策略的新模糊自适应方法。两个速度特征参数由浮动车辆的数据导出。构造三层背部传播神经网络(BP-Nn)以预测速度特征参数的平均功率。在电池充电可持续性的基础上,模糊自适应定律旨在使用预测的平均功率和实际电池SOC计算PMPABASED策略的共同。最后,通过比较仿真研究评估所提出的策略的性能。经过验证的是,通过浮动车辆的信息,可以很好地评估平均速度和速度的标准偏差。通过标准和实际采样的驱动循环测试,BP-NN在预测所选速度特征参数的平均功率方面表现出良好的性能。与馈电的电池SoC刚刚校正的策略相比,所提出的基于PMP的模糊自适应方法在改善车辆燃料经济性并在各种驱动循环下保持电池充电可持续性的优势表明了优势。

著录项

  • 来源
    《Applied Energy》 |2021年第15期|116467.1-116467.15|共15页
  • 作者单位

    Jiangsu Univ Automot Engn Res Inst Zhenjiang 212013 Jiangsu Peoples R China;

    Jiangsu Univ Automot Engn Res Inst Zhenjiang 212013 Jiangsu Peoples R China;

    Jiangsu Univ Automot Engn Res Inst Zhenjiang 212013 Jiangsu Peoples R China;

    Jiangsu Univ Automot Engn Res Inst Zhenjiang 212013 Jiangsu Peoples R China;

    Jiangsu Univ Sch Automot & Traff Engn Zhenjiang 212013 Jiangsu Peoples R China;

    Jiangsu Univ Automot Engn Res Inst Zhenjiang 212013 Jiangsu Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hybrid electric vehicle; Fuzzy adaptive energy management; Traffic information; Average power prediction;

    机译:混合电动车;模糊自适应能源管理;交通信息;平均功率预测;

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