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Modelling driving behaviour and its impact on the energy management problem in hybrid electric vehicles

机译:驾驶行为建模及其对混合动力电动汽车能源管理问题的影响

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摘要

Perfect knowledge of future driving conditions can be rarely assumed on real applications when optimally splitting power demands among different energy sources in a hybrid electric vehicle. Since performance of a control strategy in terms of fuel economy and pollutant emissions is strongly affected by vehicle power requirements, accurate predictions of future driving conditions are needed. This paper proposes different methods to model driving patterns with a stochastic approach. All the addressed methods are based on the statistical analysis of previous driving patterns to predict future driving conditions, some of them employing standard vehicle sensors, while others require non-conventional sensors (for instance, global positioning system or inertial reference system). The different modelling techniques to estimate future driving conditions are evaluated with real driving data and optimal control methods, trading off model complexity with performance.
机译:当在混合动力电动汽车中的不同能源之间最佳地分配功率需求时,很少会在实际应用中假设对未来驾驶条件有全面的了解。由于控制策略在燃油经济性和污染物排放方面的性能受车辆功率要求的强烈影响,因此需要对未来驾驶条件的准确预测。本文提出了采用随机方法对驾驶模式进行建模的不同方法。所有解决的方法都基于对先前驾驶模式的统计分析,以预测未来的驾驶状况,其中一些采用标准的车辆传感器,而另一些则需要非常规的传感器(例如,全球定位系统或惯性参考系统)。利用实际的驾驶数据和最佳控制方法评估估计未来驾驶条件的不同建模技术,从而权衡模型的复杂性和性能。

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