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A GA optimization for lithium-ion battery equalization based on SOC estimation by NN and FLC

机译:基于NN和FLC的SOC估计的锂离子电池均衡GA优化

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摘要

An intelligent control proposal for battery equalization is presented by genetic algorithm optimization integrated with fuzzy logic control-neural network algorithm. First, an effective two-stage DC/DC converter architecture is developed, which pave the way for the hardware module. Then, an equivalent circuit model in weighted combination with ampere-hour counting method is adopted by fuzzy logic control scheme to obtain static SOC estimation. Then the dynamic battery SOC is precisely estimated on basis of static SOC by means of neural network. The most important is the genetic algorithm optimization for battery equalization to improve the energy efficiency and time efficiency of the equalization system. Finally, certification of simulation is demonstrated to validate the proposed novel equalization scheme. (C) 2015 Elsevier Ltd. All rights reserved.
机译:通过遗传算法优化与模糊逻辑控制-神经网络算法相结合,提出了一种智能的电池均衡控制方案。首先,开发了一种有效的两级DC / DC转换器架构,为硬件模块铺平了道路。然后,采用模糊逻辑控制方案,采用与安培小时计数法加权结合的等效电路模型,得到静态SOC估计值。然后利用神经网络在静态SOC的基础上精确估算动态电池的SOC。最重要的是针对电池均衡的遗传算法优化,以提高均衡系统的能源效率和时间效率。最后,仿真证明证明了所提出的新颖均衡方案的有效性。 (C)2015 Elsevier Ltd.保留所有权利。

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