多收费
磷酸铁锂
热失控
电池(电)
电解质
降级(电信)
电压
能量密度
储能
锂(药物)
材料科学
热的
环境科学
容量损失
电池容量
化学
自放电
法律工程学
电极
充电周期
电流密度
核工程
作者
Guotao Gao,Xianzhong Sun,Jing Han,Hongtao Chen,Jing Zhang,Xiaoming Xu,Haifeng Wang,Yijie Gu,Hongquan Liu,Yinghui Gao,Ping Yan
标识
DOI:10.1002/ente.202501211
摘要
Against the high‐power application backdrop of lithium‐ion batteries (LIBs), issues like severe temperature rise from rapid high‐current discharge (triggering safety concerns) and energy density loss due to excessive high‐power enhancement lead to distinct material systems/manufacturing processes between high‐power and conventional LIBs. This investigation analyzed aging and thermal runaway (TR) behaviors of high‐power lithium iron phosphate (LFP) batteries under overcharge. At 1C discharge, mild initial overcharge minimally affected internal resistance/capacity but accelerated high‐rate discharge capacity fading; increased overcharge intensified capacity degradation and voltage drop, with aging initially dominated by lithium‐ion loss. Disassembling 1C constant‐current overcharged batteries and analyzing voltage curves identified five reaction stages: overcharge lag, stable delithiation, electrolyte oxidative decomposition, LiFePO 4 /electrolyte depletion, and short‐circuit. TR involved stage‐specific voltage/temperature variations (high peaks) without ignition/explosion. These confirm high‐power LFP batteries’ overcharge tolerance, supporting prospects in integrated energy storage systems (IESS).
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