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Failure Analysis of Short-Circuited Lithium-Ion Battery with Nickel-Manganese-Cobalt/Graphite Electrode

机译:镍 - 锰 - 钴/石墨电极短路锂离子电池的故障分析

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摘要

Accidental failures and explosions of lithium-ion batteries have been reported in recent years. To determine the root causes and mechanisms of these failures from the perspective of material degradation, failure analysis was conducted for an intentionally shorted lithium-ion battery. The battery was subjected to electrical overcharging and mechanical pressing to simulate internal short-circuiting. After in situ measurement of the temperature increase during the short-circuiting of the electrodes, the disassembled battery components (i.e., the anode, cathode, and separator) were analyzed by scanning electron microscopy and energy-dispersive X-ray spectroscopy. Regardless of the simulated short-circuit method (mechanical or electrical), damage was observed in the shorted batteries. Numerous small cracks and chemical reaction products were observed on the electrode surface, along with pore shielding on the separator. The event of short-circuiting increased the surface temperature of the battery to approximately 90 degrees C, which prompted the deterioration and decomposition of the electrolyte, thus affecting the overall battery performance; this was attributed to the decomposition of the lithium salt at 60 degrees C. The gas generation due to the breakdown of the electrolyte causes pressure accumulation inside the cell, therefore, the electrolyte leaks.
机译:近年来报道了锂离子电池的意外故障和爆炸。为了确定这些故障从材料降解的角度来看的根本原因和机制,对有意短的锂离子电池进行故障分析。对电池进行电气过充电和机械压制以模拟内部短路。在原位测量电极的短路期间温度升高,通过扫描电子显微镜和能量 - 分散X射线光谱分析拆卸的电池组件(即阳极,阴极和分离器)。无论模拟的短路方法(机械或电气),在短路电池中都观察到损坏。在电极表面上观察到许多小裂缝和化学反应产物,以及隔膜上的孔屏蔽。短路的事件增加了电池的表面温度至大约90℃,促使电解质的劣化和分解,从而影响整体电池性能;这归因于锂盐在60摄氏度下分解。由于电解质的击穿引起的气体产生导致电池内的压力积累,因此电解质泄漏。

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