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Driving Pattern Recognition for Control of Hybrid Electric Trucks

机译:混合动力电动卡车控制的驾驶模式识别

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摘要

The design procedure for an adaptive power management control strategy, based on a driving pattern recognition algorithm is proposed. The design goal of the control strategy is to minimize fuel consumption and engine-out NOx and PM emissions on a set of diversified driving schedules. Six representative driving patterns (RDP) are designed to represent different driving scenarios. For each RDP, the Dynamic Programming (DP) technique is used to find the global optimal control actions. Implementable, sub-optimal control algorithms are then extracted by analyzing the behavior of the DP control actions. A driving pattern recognition (DPR) algorithm is subsequently developed and used to classify the current driving pattern into one of the RDPs; thus, the most appropriate control algorithm is selected adaptively. This 'multi-mode' control scheme was tested on several driving cycles and was found to work satisfactorily.
机译:提出了一种基于驱动模式识别算法的自适应电源管理控制策略的设计程序。控制策略的设计目标是在一系列多样化的驾驶计划中将燃油消耗以及发动机排出的NOx和PM排放量降至最低。六个代表性的驾驶模式(RDP)被设计为代表不同的驾驶场景。对于每个RDP,使用动态编程(DP)技术来查找全局最佳控制动作。然后,通过分析DP控制动作的行为来提取可实现的次优控制算法。随后开发了一种驾驶模式识别(DPR)算法,并用于将当前驾驶模式分类为RDP之一。因此,自适应地选择最合适的控制算法。这种“多模式”控制方案已在多个行驶周期上进行了测试,并被认为能令人满意地工作。

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