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首页> 外文期刊>Advances in modelling and analysis, C. Systems analysis, control and design, simulation, CAD >Simulation and modelling of Math Function Based controller implemented with fuzzy and artificial neural network for a smooth transition between battery and ultracapacitor
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Simulation and modelling of Math Function Based controller implemented with fuzzy and artificial neural network for a smooth transition between battery and ultracapacitor

机译:使用模糊和人工神经网络实现的基于数学函数的控制器的仿真和建模,以实现电池和超级电容器之间的平滑过渡

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© 2018 AMSE Press. All rights reserved.Electric vehicles (EVs)/Hybrid electric vehicles (HEVs) are implemented with Hybrid Energy Storage System (HESS) to obtain the effective results. HESS has been framed by combining battery with ultracapacitor (UC). Here the battery is used to supply the average power whereas UC can meet the transient power requirement of an electric vehicle. UC always assists the battery during peak power requirements and starting of the motor can also be done. The problem associated with HESS powered vehicle is switching between battery and UC depending upon vehicle road conditions. The main aim of this work is to design a controller for proper switching of energy sources in HESS. With four individual math function, one controller has been designed based on the speed of the electric motor, named as Math Function Based (MFB) controller, further, this has been integrated with ANN as well as Fuzzy logic made two new hybrid controllers. After that two-hybrid controllers have been implemented for the electric motor, thereafter comparative analysis has been made between them and suggested one good controller based on different comparative factors. The two-hybrid controllers have been implemented in four modes and results are discussed in the simulation results and discussion section.
机译:© 2018 AMSE 出版社。保留所有权利。电动汽车(EV)/混合动力汽车(HEV)采用混合储能系统(HESS)以获得有效效果。HESS是通过将电池与超级电容器(UC)相结合来构建的。在这里,电池用于提供平均功率,而 UC 可以满足电动汽车的瞬态功率要求。UC始终在峰值功率要求期间协助电池,也可以启动电机。与 HESS 动力车辆相关的问题是根据车辆路况在电池和 UC 之间切换。这项工作的主要目的是设计一个控制器,以便在HES中正确切换能源。具有四个独立的数学函数,一个控制器是根据电动机的速度设计的,命名为基于数学函数(MFB)的控制器,此外,它还与ANN和Fuzzy logic集成了两个新的混合控制器。在为电动机实施了双混合动力控制器之后,对它们进行了比较分析,并根据不同的比较因素提出了一个好的控制器。双混合控制器已在四种模式下实现,结果将在仿真结果和讨论部分进行讨论。

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