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Graphite lithiation and capacity fade monitoring of lithium ion batteries using optical fibers

机译:使用光纤的锂离子电池石墨锂化和容量衰减监测

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Increasing the efficiency and safety of battery management systems may require internal monitoring of lithium ion batteries. In this work, we present an analysis of the interaction between fiber-optic evanescent wave sensors (FOEWS) and graphite particles within a lithium ion battery over multiple cycles. Through slow charging and long rest periods, the FOEWS signal has shown sensitivity to lithium concentration at the surface of graphite particles by demonstrating a response to the slow diffusion of lithium ions within graphite particles during rest periods (i.e. relaxation of the electrode). The slope of the FOEWS signal during a full charge is found to exhibit three distinct peaks that occur within lithiated graphite's stage transitions zones IV, III and II. Deviation from the observed three peak trend correlates with significant battery capacity fade and thus indicate the sensors ability to detect capacity fade in real-time. During experiments, significant deviations in the slope during charging occurred at about similar to 5% SOC and minor disturbances to the slope were observed at similar to 80% SOC, which supports limiting the depth of charge and discharge to avoid accelerated capacity fade. These results deepen our understanding of the FOEWS's interaction with lithium ion batteries and supports the development of algorithms that optimize the control and monitoring of graphite lithiation with the aim of achieving safer operation as well as maximizing capacity and battery life.
机译:为了提高电池管理系统的效率和安全性,可能需要对锂离子电池进行内部监控。在这项工作中,我们将对锂离子电池中多个周期的光纤wave逝波传感器(FOEWS)和石墨颗粒之间的相互作用进行分析。通过缓慢的充电和较长的静止时间,FOEWS信号通过展示在静止时间(即电极的松弛)期间对锂离子在石墨颗粒内缓慢扩散的响应而显示出对石墨颗粒表面锂浓度的敏感性。发现在完全充电期间FOEWS信号的斜率显示出三个不同的峰,这些峰出现在锂化石墨的相变区IV,III和II中。与观察到的三个峰值趋势的偏离与电池容量显着衰减相关,因此表明传感器能够实时检测容量衰减。在实验过程中,充电期间斜率的明显偏差发生在大约5%的SOC处,而在类似于80%SOC的情况下观察到对斜率的较小干扰,这有助于限制充电和放电的深度以避免加速的容量衰减。这些结果加深了我们对FOEWS与锂离子电池相互作用的理解,并支持算法的开发,该算法优化了石墨锂化的控制和监控,旨在实现更安全的操作以及最大程度地提高容量和电池寿命。

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