基于人工智能的储能设备优化运行

Ji-Hyoun Lee, Woo-Hyun Kim, Tae-young Kang, Tae-Jun Park
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引用次数: 0

摘要

储能系统(Energy storage system, ESS)是一种电能存储设备,通过存储产生的电能,并在需要时供电,提高电能利用效率。近2 ~ 3年来,随着ESS爆炸事故的急剧增加,为了ESS的持续使用,必须对其进行故障诊断研究。ESS在高温下长时间工作,会因劣化而老化,需要稳定运行。在最近的28起火灾中,有15起发生在充电和休息时。由于在充放电过程中温度和湿度会发生快速变化,因此预测变化趋势非常重要。本研究通过基于人工智能的预测算法预测ESS运行模式,并通过基于监督学习的混淆矩阵诊断ESS故障。当系统出现故障时,研究了通过空调控制来降低系统损坏的方法。
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Optimal Operation of Energy Storage Devices based on Artificial Intelligence
Energy storage system (ESS) is a power storage device to increase power utilization efficiency by storing generated electricity and supplying power, when needed. As the number of ESS explosion accidents has been rapidly increasing over the past two to three years, a failure diagnosis study on ESS fire safety should be preceded for its continuous use. When the ESS is operated at high temperature for a long time, aging is caused owing to deterioration, and hence, stable operation is required. Among the recent 28 fires, 15 of them occurred during charging and resting. Because rapid temperature and humidity changes occur during charging and discharging, it is important to predict the trend of change. This study predicts ESS operation patterns through an artificial intelligence-based prediction algorithm, and also diagnoses ESS failures through a supervised learning-based confusion matrix. When a failure pattern is found in the ESS, a method to reduce damage through air conditioner control is studied.
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