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Intelligent Energy Management and Optimization in a Hybridized All-Terrain Vehicle With Simple On–Off Control of the Internal Combustion Engine

机译:混合动力全地形车的智能能源管理和优化,具有内燃机的简单开关控制

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摘要

This paper presents research in cognitive vehicle energy management for low-cost hybrid electric vehicle (HEV) power systems for small vehicles, such as all-terrain vehicles (ATVs). The power system consists of a small engine, a lead–acid battery, and an ultracapacitor. For simplicity of implementation and low hardware cost, engine control is restricted to two states, i.e., on and off, and vehicle speed control is restricted to three discrete levels, namely, high, medium, and low. The authors developed advanced algorithms for modeling and optimizing vehicle energy flow, machine learning of optimal control settings generated by dynamic programmling on real-world drive cycles, and an intelligent energy controller designed for online energy control based on knowledge about the driving mission and knowledge obtained through machine learning. The intelligent vehicle energy controller cognitive intelligent power management (CIPM) has been implemented and evaluated in a simulated vehicle model and in an ATV, i.e., Polaris Ranger EV, which was converted to an HEV. Experimental results show that the intelligent energy controller CIPM can lead to a significant improvement in fuel economy compared with the existing conventional vehicle controllers in an ATV.
机译:本文介绍了用于小型车辆(例如全地形车)的低成本混合动力汽车(HEV)动力系统的认知车辆能源管理的研究。动力系统由小型发动机,铅酸电池和超级电容器组成。为了简化实施和降低硬件成本,将发动机控制限制为两个状态,即开和关,并且将车速控制限制为三个离散级别,即高,中和低。作者开发了先进的算法,用于建模和优化车辆能量流,通过对实际驾驶周期进行动态编程生成的最佳控制设置的机器学习以及基于有关驾驶任务和所获知识的用于在线能量控制的智能能量控制器通过机器学习。智能车辆能量控制器认知智能电源管理(CIPM)已在模拟车辆模型和ATV(即北极星游侠EV)的ATV中实现并进行了评估,并已转换为HEV。实验结果表明,与ATV中现有的常规车辆控制器相比,智能能源控制器CIPM可以显着改善燃油经济性。

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