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A PSO-Based Fuzzy-Controlled Searching for the Optimal Charge Pattern of Li-Ion Batteries

机译:基于PSO的锂离子电池最佳充电模式的模糊控制搜索

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摘要

This paper proposes a searching strategy based on particle swarm optimization, combined with a fuzzy-deduced fitness evaluator (FDFE), to find the optimal multistage charging pattern that delivers the most discharged capacity within the shortest charging time (CT). The objective function of the optimization problem is to maximize the cost effectiveness for the applied charging pattern based on the CT and normalized discharged capacity (NDC). Therefore, this paper proposes an FDFE to combine CT and NDC into a unified cost function to properly evaluate the multiple performance characteristics index in the charge problem. The experimental results show that the obtained pattern is capable of charging the batteries to over 88% capacity within 51 min. Compared with the conventional constant current–constant voltage method, the CT, the obtained life cycle, and the charging efficiency of the lithium-ion (Li-ion) battery for the devised approach are improved by approximately 56.8%, 21%, and 0.4%, respectively. The presented charging approach is suitable for the increasingly applications, in which the batteries are “sealed” inside the products to extend the life span.
机译:本文提出了一种基于粒子群算法的搜索策略,结合模糊推论的适用性评价器(FDFE),以找到在最短充电时间(CT)内提供最大放电容量的最优多级充电模式。优化问题的目标功能是基于CT和归一化放电容量(NDC),最大化所应用充电模式的成本效益。因此,本文提出了一种将CT和NDC组合成统一成本函数的FDFE,以正确评估收费问题中的多种性能特征指标。实验结果表明,所获得的图形能够在51分钟内将电池充电至88%以上的容量。与传统的恒定电流-恒定电压方法相比,该方法的锂离子电池的CT值,获得的寿命周期和充电效率分别提高了约56.8%,21%和0.4。 %, 分别。提出的充电方法适用于日益增长的应用,在这些应用中,电池被“密封”在产品内部以延长使用寿命。

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