电网级锂离子电池储能系统原位性能与安全评估的伪电化学阻抗谱方法

J. Sarlashkar, B. Surampudi, Venkata R. Chundru, W. Downing
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引用次数: 2

摘要

电池储能系统(BESS)是现代重可再生能源和逆变器电网的关键使能器。人们普遍预计[1],BESS将在现代电网中看到更苛刻的任务,因为它同时(堆叠任务)和顺序(混合任务)提供大量辅助服务。这种苛刻的任务将需要更大的时间尺度、功率和荷电状态(SOC)的运行范围,并进一步提升BESS性能和安全问题。锂电镀(一般是锂沉积)被广泛报道为BESS在大电流和高荷电状态下充电时的重要老化和失效机制[2],[3]。在这项工作中,我们描述了所谓的伪电化学阻抗谱(EIS)方法的扩展,以检测和量化性能的一般退化,特别是检测锂电镀。伪eis协议可以在电池管理系统(BMS)中实现,用于实时评估性能和安全性。特别是,它支持在(快速)充电期间主动管理当前配置文件,以权衡性能和安全性。此外,它还可以离线使用,在重新部署之前测量二次寿命电池的健康状态(SOH)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pseudo Electrochemical Impedance Spectroscopy Method for In-Situ Performance and Safety Assessment of Lithium-Ion Battery Energy Storage Systems for Grid-Scale Applications
Battery energy storage system (BESS) is a key enabler of the modern renewable- and inverter-heavy electric grid. It is generally expected [1] that the BESS will see a more demanding duty in the modern grid as it delivers a multitude of ancillary services dispatched simultaneously (stacked duty) and sequentially (mixed duty). Such harsher duty will entail larger operating envelope of timescale, power, and state-of-charge (SOC), and further elevate the issues of BESS performance and safety. Lithium plating (lithium deposition in general) is widely reported as a significant aging and failure mechanism when charging the BESS at high current and high SOC [2], [3]. In this work we describe an extension to the so-called pseudo electrochemical impedance spectroscopy (EIS) method to detect and quantify general degradation in performance and specifically to detect lithium plating. The pseudo-EIS protocol is amenable to implementation in a battery management system (BMS) for real-time assessment of performance and safety. In particular, it enables proactive management of current profile during (fast) charging to trade-off performance and safety. Further, it can also be used offline to gauge state-of-health (SOH) of second-life batteries before redeployment.
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