基于老化-效应耦合模型的锂离子电池性能仿真方法及健康状态估计

Deyu Fang , Wentao Wu , Junfu Li , Weizhe Yuan , Tao Liu , Changsong Dai , Zhenbo Wang , Ming Zhao
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引用次数: 6

摘要

准确模拟锂离子电池的特性、性能和健康状态(SOH)估计对于电动汽车中的电池管理系统(BMS)至关重要。电池简化电化学模型(SEM)可以用较少的计算资源实现对电池端电压的精确估计。为了确保生命周期使用的适用性,需要在SEM模型中涉及降解物理。本工作对电池退化物理进行了深入分析,并在现有改进的单粒子(ISP)模型的基础上建立了老化效应耦合模型。首先,分析了整个生命周期中固体电解质界面(SEI)膜生长的三种机制,并结合ISP模型建立了锂离子电池的SEI膜生长模型。然后,设计了一系列针对单个细胞的识别条件,以无损地确定模型参数。最后,设计了电池老化实验,验证了电池性能仿真方法和SOH估计方法。不同老化速率下的验证结果表明,该方法可以准确估计锂离子电池全寿命周期的特性性能和SOH。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Performance simulation method and state of health estimation for lithium-ion batteries based on aging-effect coupling model

Accurate simulation of characteristics performance and state of health (SOH) estimation for lithium-ion batteries are critical for battery management systems (BMS) in electric vehicles. Battery simplified electrochemical model (SEM) can achieve accurate estimation of battery terminal voltage with less computing resources. To ensure the applicability of life-cycle usage, degradation physics need to be involved in SEM models. This work conducts deep analysis on battery degradation physics and develops an aging-effect coupling model based on an existing improved single particle (ISP) model. Firstly, three mechanisms of solid electrolyte interface (SEI) film growth throughout life cycle are analyzed, and an SEI film growth model of lithium-ion battery is built coupled with the ISP model. Then, a series of identification conditions for individual cells are designed to non-destructively determine model parameters. Finally, battery aging experiment is designed to validate the battery performance simulation method and SOH estimation method. The validation results under different aging rates indicate that this method can accurately estimate characteristics performance and SOH for lithium-ion batteries during the whole life cycle.

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