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From Off-line to On-line Control of a Multimode Power Split Hybrid Electric Vehicle Powertrain

机译:多模式功率分配混合动力电动汽车动力总成从离线控制到在线控制

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摘要

On-line optimal control represents a crucial issue in the development of multimode power split hybrid electric vehicles (HEVs). Finding a control strategy that guarantees fuel economy optimality and ease of implementation still reveals an open research question. This paper aims at developing an on-line control approach for multimode HEVs based on previously implemented off-line control. The two control levels for multimode HEVs are presented: the operating mode selection and the torque split determination. The former is addressed adopting a machine learning approach where artificial neural networks (NNs) are trained in supervised learning using off-line control data. The torque split is resolved on-line according to efficiency-based maps extracted off-line. Simulation results for a specific multimode HEV design demonstrate the effectiveness of the developed control strategy in minimizing the value of predicted fuel consumption. Furthermore, a sensitivity study is conducted for the NN sizing parameters. The ease of implementation and adaptability suggests the potential application of the developed online control approach in a design methodology for multimode HEVs.
机译:在线最优控制是多模式功率分配混合动力电动汽车(HEV)发展中的关键问题。寻找能够确保燃油经济性最佳和易于实施的控制策略仍然揭示了一个开放的研究问题。本文旨在基于先前实现的离线控制,为多模式混合动力汽车开发一种在线控制方法。给出了多模式混合动力汽车的两个控制级别:操作模式选择和扭矩分配确定。前者的解决方法是采用机器学习方法,其中使用离线控制数据在监督学习中训练人工神经网络(NN)。扭矩分配可根据离线提取的基于效率的图进行在线解析。特定的多模式混合动力汽车设计的仿真结果证明了开发的控制策略在最小化预计油耗值方面的有效性。此外,针对NN尺寸参数进行了敏感性研究。易于实施和适应性表明,已开发的在线控制方法在多模式混合动力汽车的设计方法学中的潜在应用。

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