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Model-based EV range prediction for Electric Hybrid Vehicles

机译:电动混合动力汽车基于模型的EV范围预测

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This paper describes a novel approach using model-based techniques to accurately predict EV range which can be applied to both BEV (Battery Electric Vehicle) and PHEV (Plug-in Hybrid Electric Vehicle) applications. The algorithm employs three models a physical model, energy model and State of Charge (SoC) model. The outputs of the models are averaged using a weighted average. This approach provides redundancy and more importantly availability of the function. Methods are employed to provide the driver with an accurate initialisation range value when the ignition is switched on. This utilises past driving history data and determines an output value based on the previous drive cycle. The work describes the flow sequence of the EV range function. Results for several drive cycles are analysed and show that accurate EV range prediction is achieved using the algorithm.
机译:本文介绍了一种使用基于模型的技术来准确预测EV范围的新颖方法,该方法可同时应用于BEV(电池电动汽车)和PHEV(插电式混合动力汽车)应用。该算法采用了三个模型:物理模型,能量模型和荷电状态(SoC)模型。使用加权平均值对模型的输出求平均值。这种方法提供了冗余,更重要的是功能的可用性。当点火开关打开时,采用方法为驾驶员提供准确的初始化范围值。这利用了过去的驾驶历史数据并基于先前的驾驶周期来确定输出值。该作品描述了EV范围功能的流程顺序。分析了多个行驶周期的结果,结果表明使用该算法可以实现准确的EV范围预测。

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