Comparison of dU/dQ, Voltage Decay, and Float Currents via Temperature Ramps and Steps in Li-Ion Batteries

IF 5.1 4区 材料科学 Q2 ELECTROCHEMISTRY
Mohamed Azzam, Moritz Ehrensberger, Christian Endisch, Dirk-Uwe Sauer, Meinert Lewerenz
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Abstract

In this study, the effect of temperature changes on the voltage decay and current behavior of lithium-ion cells is investigated, focusing on a comparison between open-circuit voltage (OCV) measurements and float current measurements. Using our self-developed advanced Floater system, the voltage decay rates from OCV and float current measurements for three different cell types are assessed. Temperature ramps and steps, ranging from 5 °C to 50 °C, are applied to capture the impact of entropic effects and aging mechanisms. Both methods effectively capture aging dynamics, showing strong agreement between ramp and step measurements. Deviations arise only in cases of strong entropy effects due to differences in measurement strategies. The findings confirm that float currents do not introduce additional aging beyond that captured by OCV measurements. The relationship between OCV and float current is governed by differential capacity , which varies with cell voltage and temperature. Furthermore, strong deviations from classical differential voltage analysis but high agreement with local pulse measurements are observed, especially at low depths of discharge. This can be explained by the hysteresis effect of graphite. These findings highlight the benefits of high-precision float current measurements in aging studies, particularly in contrast to simpler OCV methods.

Abstract Image

比较dU/dQ,电压衰减,和浮子电流通过温度斜坡和锂离子电池的步骤
在本研究中,研究了温度变化对锂离子电池电压衰减和电流行为的影响,重点比较了开路电压(OCV)测量和浮子电流测量的差异。使用我们自主开发的先进浮子系统,评估了三种不同电池类型的OCV和浮子电流测量的电压衰减率。温度坡道和阶梯,范围从5°C到50°C,用于捕捉熵效应和老化机制的影响。这两种方法都有效地捕获了老化动力学,显示了斜坡和台阶测量之间的强烈一致性。由于测量策略的差异,只有在强熵效应的情况下才会出现偏差。研究结果证实,浮子电流不会导致OCV测量之外的额外老化。浮子电流与OCV之间的关系由差分容量决定,而差分容量随电池电压和温度的变化而变化。此外,观察到与经典差分电压分析有很大的偏差,但与局部脉冲测量高度一致,特别是在低放电深度时。这可以用石墨的滞后效应来解释。这些发现突出了高精度浮子电流测量在老化研究中的优势,特别是与简单的OCV方法相比。
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来源期刊
CiteScore
8.60
自引率
5.30%
发文量
223
期刊介绍: Electrochemical energy storage devices play a transformative role in our societies. They have allowed the emergence of portable electronics devices, have triggered the resurgence of electric transportation and constitute key components in smart power grids. Batteries & Supercaps publishes international high-impact experimental and theoretical research on the fundamentals and applications of electrochemical energy storage. We support the scientific community to advance energy efficiency and sustainability.
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