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Fast charging of lithium-ion cells: Identification of aging-minimal current profiles using a design of experiment approach and a mechanistic degradation analysis

机译:锂离子电池的快速充电:使用实验方法和机械降解分析设计,识别最小老化电流曲线

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摘要

In this work, we present a novel approach to identify aging-minimal fast charging profiles for commercial lithium-ion cells by a design of experiment (DOE) methodology and a mechanistic degradation analysis of the obtained capacity retention figures. The DOE is based on the competitive comparison of specific current profiles under repeated application to the tested cell format. The current profiles are obtained from the linear superposition of a constant current profile and four independent, charge-neutral profiles modulating the shape of the base profile. The charge-neutral profiles rely on physically meaningful assumptions about their beneficial effects for the charging procedure, e.g. that a superimposed alternating current (AC) profile reduces unwanted polarization by its intrinsic heat generation. The aging minimal profiles are identified by multiple regression analysis. Mechanistic degradation analysis is applied to study the root cause of the observed capacity roll-over of the cells after a specific cycle number. This roll-over is attributed to the occurrence of lithium plating which itself is driven by active material losses in the initial stages of the cycle life. The onset of the roll-over can be considerably delayed by a suitable choice of the current trajectory, resulting in a more than doubled life expectancy.
机译:在这项工作中,我们提出了一种新颖的方法,可通过设计实验(DOE)方法和对获得的容量保持系数进行机械退化分析来确定商用锂离子电池的最小老化快速充电曲线。 DOE基于在重复应用到测试单元格格式下特定电流曲线的竞争性比较。电流分布图是通过恒定电流分布图和四个独立的,电荷中性分布图的线性叠加来调制的,其中四个独立的电荷中性分布图调整了基本分布图的形状。充电中性曲线依赖于关于充电过程的有益效果的物理意义上的假设,例如,叠加的交流(AC)曲线通过其固有的热量产生减少了不必要的极化。通过多元回归分析确定了老化最小轮廓。机械降解分析用于研究特定循环次数后观察到的电池容量翻转的根本原因。这种翻滚归因于锂镀层的出现,而锂镀层本身是由循环寿命初期的活性材料损失驱动的。适当选择当前轨迹可以大大推迟翻转的开始,从而使预期寿命延长一倍以上。

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