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Fuzzy logic control for energy saving in autonomous electric vehicles

机译:自动驾驶汽车节能的模糊逻辑控制

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摘要

Limited battery capacity and excessive battery dimensions have been two major limiting factors in the rapid advancement of electric vehicles. An alternative to increasing battery capacities is to use better: intelligent control techniques which save energy on-board while preserving the performance that will extend the range with the same or even smaller battery capacity and dimensions. In this paper, we present a Type-2 Fuzzy Logic Controller (Type-2 FLC) as the speed controller, acting as the Driver Model Controller (DMC) in Autonomous Electric Vehicles (AEV). The DMC is implemented using realtime control hardware and tested on a scaled down version of a back to back connected brushless DC motor setup where the actual vehicle dynamics are modelled with a Hardware-In-the-Loop (HIL) system. Using the minimization of the Integral Absolute Error (IAE) has been the control design criteria and the performance is compared against Type-1 Fuzzy Logic and Proportional Integral Derivative DMCs. Particle swarm optimization is used in the control design. Comparisons on energy consumption and maximum power demand have been carried out using HIL system for NEDC and ARTEMIS drive cycles. Experimental results show that Type-2 FLC saves energy by a substantial amount while simultaneously achieving the best IAE of the control strategies tested.
机译:有限的电池容量和过大的电池尺寸已成为电动汽车快速发展的两个主要限制因素。增加电池容量的一种替代方法是使用更好的电池:智能控制技术,可在节省能源的同时节省机载能量,而在保持相同或什至更小的电池容量和尺寸的情况下,可保持性能的扩展。在本文中,我们提出了一种类型2模糊逻辑控制器(类型2 FLC)作为速度控制器,作为自动驾驶电动汽车(AEV)中的驾驶员模型控制器(DMC)。 DMC使用实时控制硬件实现,并在按比例缩小版本的背靠背连接无刷直流电机设置中进行了测试,在该设置中,实际的车辆动力学是通过硬件在环(HIL)系统建模的。使用最小化绝对绝对误差(IAE)已成为控制设计标准,并且将其性能与类型1模糊逻辑和比例积分微分DMC进行了比较。粒子群优化用于控制设计。使用HIL系统对NEDC和ARTEMIS行驶周期进行了能耗和最大功率需求的比较。实验结果表明,Type-2 FLC可以节省大量能源,同时达到所测试控制策略中最佳的IAE。

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