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A coupled electrochemical-thermal-mechanical degradation modelling approach for lifetime assessment of lithium-ion batteries

机译:锂离子电池寿命评估耦合电化学 - 热机械降解建模方法

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The investigation of the aging and degradation mechanism of lithium ion batteries in automotive and energy storage applications is of particular importance for the acceptance of the battery technology. However, several factors interact to generate complicated battery aging phenomena, thus leading to limited accuracy of the established models when applied to degradation prediction under complex real running conditions. Here, a coupled electrochemical-thermal-mechanical model is presented for the degradation investigation of lithium-ion batteries. The model includes both side reactions on anode and the loss of active material of cathode and is employed to study the aging behavior of the battery applying different C-rates and ambient temperatures. Simulation results indicate that the aging of the battery is dominated by various aging factors under different operating conditions. Higher ambient temperature can accelerate SEI formation reaction, while low temperature can cause severe lithium-plating. Active material loss is affected by cycling current significantly and becomes the dominant aging factor under extremely high C-rate. The model is fitted under two accelerated aging cycles and agrees well with the experimental results. (C) 2019 Elsevier Ltd. All rights reserved.
机译:汽车和能量储存应用中锂离子电池衰老和降解机理的研究特别重要,对电池技术接受特别重要。然而,若干因素相互作用以产生复杂的电池老化现象,因此在复杂的真实运行条件下应用于降解预测时,导致建立模型的准确性有限。这里,提出了一种耦合的电化学 - 热机械模型,用于锂离子电池的降解研究。该模型包括对阳极的副反应和阴极的活性材料的损失,并且用于研究应用不同C速率和环境温度的电池的老化行为。仿真结果表明,电池老化在不同的操作条件下的各种老化因子主导。较高的环境温度可以加速SEI形成反应,而低温会导致严重的锂电镀。活性物质损失受到循环电流的影响,并且在极高的C速率下成为主导老化因子。该模型安装在两个加速老化循环下,并与实验结果一致。 (c)2019 Elsevier Ltd.保留所有权利。

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