汽车应用中长尺寸电池的无锂电镀层在线快速充电模型

IF 4.6 4区 化学 Q2 ELECTROCHEMISTRY
Batteries Pub Date : 2023-11-22 DOI:10.3390/batteries9120563
Yu Wang, Shuoyuan Mao, Quanwei Chen, Fei Chen, Xue Zhang, Minggao Ouyang, Xuebing Han, Yuejiu Zheng
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引用次数: 0

摘要

锂离子电池(LIB)的内部负极电位与电池内部发生的锂离子插层和电镀反应密切相关。随着电池尺寸的扩大,内部负极电位分布逐渐变得不一致。然而,现有的负极电位估算模型和快速充电策略尚未考虑一致性的影响,模型的估算精度会受到不同温度和充电速率的极大影响。本研究提出了一种在线无锂快速充电等效电路模型(OLFEM),用于估算负极电位端电压和制定实际车辆中长尺寸锂电池的快速充电策略。本研究采用了集成在长尺寸锂电池中的分布式参比电极,并比较了在负极片和正极片附近测得的负极电位。随后,根据最低负电极电位点,获得了不同温度和充电速率下的模型参数。该模型在不同的运行条件下得到了进一步验证。最后,根据模型估算出的负极电位,实时开发出了一种无需镀锂的快速充电策略。结果表明,长尺寸电池正极片一侧的负电极电位较低。在不同温度和充电速率下,校准模型对负极电位的估计误差在 25 mV 以内,对端电压的估计误差在 5 mV 以内。建议的快速充电方法可防止锂镀层,并在一小时内将电池充电至 96.8%。经过 100 次循环后,电池的容量衰减小于 2%,拆解结果表明没有发生锂沉淀。本研究中概述的方法为无锂电镀层的大尺寸电池在线快速充电提供了宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Online Fast Charging Model without Lithium Plating for Long-Dimensional Cells in Automotive Applications
The internal negative electrode potential in lithium-ion batteries (LIBs) is intricately linked to the lithium-ion intercalation and plating reactions occurring within the cell. With the expansion of cell sizes, the internal negative electrode potential distribution gradually becomes inconsistent. However, the existing negative electrode potential estimation models and fast charging strategies have not yet considered the impact of consistency, and the model estimation accuracy will be greatly influenced by different temperatures and charging rates. This study proposes an online lithium-free fast charging equivalent circuit model (OLFEM) for estimating the negative electrode potential terminal voltage and developing fast charging strategies of long-dimensional LIBs in real vehicles. This study employs distributed reference electrodes integrated into long-dimensional LIBs and compares the negative electrode potential measured in the vicinity of both the negative and positive tabs. Subsequently, based on the lowest negative electrode potential point, model parameters were obtained at different temperatures and charging rates. This model is further verified under different operating conditions. Finally, a fast-charging strategy without lithium plating is developed in real-time based on the negative electrode potential estimated by the model. The results demonstrate that long-dimensional cells exhibit a lower negative electrode potential on the positive tab side. Across various temperatures and charging rates, the calibrated model achieves a negative electrode potential estimated error within 25 mV, and the estimation error for terminal voltage is within 5 mV. The proposed fast-charging method prevents lithium plating and charges the cell up to 96.8% within an hour. After 100 cycles, the cell experiences a capacity degradation of less than 2%, and the disassembly results indicate that no lithium precipitation has occurred. The methods outlined in this study provide valuable insights for online fast charging of large-dimensional batteries without lithium plating.
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来源期刊
Batteries
Batteries Energy-Energy Engineering and Power Technology
CiteScore
4.00
自引率
15.00%
发文量
217
审稿时长
7 weeks
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