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Fuel Saving Potential of Optimal Route-Based Control for Plug-in Hybrid Electric Vehicle

机译:用于加入式混合动力电动车辆最佳路线控制的燃料潜力

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In this paper, we evaluate the fuel savings of a plug-in hybrid electric vehicle (PHEV) that uses an optimal controller, itself based on the Pontryagin Minimum Principle (PMP). A process was developed to synthesize speed profiles through a combination of Markov chains and information from a digital map about the future route. In a potential real-world scenario, the future trip (speed, grade, stops, etc.) can be estimated, but not deterministically known. The stochastic trip prediction process models such uncertainty. A PMP strategy was implemented in a Simulink controller for a model of Prius-like PHEV and compared to a baseline strategy using Autonomie, an automotive modeling environment. Multiple real-world itineraries were defined in urban areas with various environments, and for each of them multiple speed profiles were synthesized so as to provide a statistically representative dataset, and finally fuel savings were evaluated with the optimal control.
机译:在本文中,我们基于Pontryagin最小原理(PMP)来评估使用最佳控制器的插入式混合动力电动车(PHEV)的燃料节省。开发了一个过程,以通过Markov链条和关于未来路线的数字地图的信息组合来综合速度简档。在潜在的真实情景中,可以估计未来的旅行(速度,等级,停止等),但不是确定的。随机行程预测过程模型这种不确定性。 PMP策略在SIMULINK控制器中实现了PRIUS的PHEV型号,并与使用Automie的基线策略,汽车建模环境相比。在具有各种环境的城市地区定义了多个现实世界的行程,并且对于它们中的每一个,合成了多种速度型材,以便提供统计上代表性数据集,并且最终通过最佳控制评估燃料节省。

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