Fire Characteristics of Lithium-ion Battery According to the State of Charge in an Accelerating Rate Calorimeter

Sin-Woo Kim, Eui-Ju Lee
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Abstract

Recently, the interest in ecofriendly energy as an alternative to fossil fuels, which cause climate change and sea level rise, has increased. To achieve the efficient utilization of ecofriendly energy, such as a renewable energy, considerable effort has been made to use energy storage systems (ESSs) and smart grid systems. However, many safety problems, such as battery fires caused by the increase in the use of secondary batteries, significantly limit their application scope. In this study, to investigate the fire characteristics of lithium ion batteries (LIBs), the characteristics of the spontaneous exothermic reaction and thermal runaway phenomenon that occur at each temperature of an LIB battery were investigated using an accelerating rate calorimeter. The batteries used in the experiments were standard 18650 cylindrical batteries with a capacity of 2600 mAh, and they were tested at three different state-of-charge (SOC) levels: 0%, 50%, and 100%. The type of heat generated by each experimental condition was classified into four stages, and the existence and temperature rise characteristics of each stage were investigated according to the SOC. Although thermal runaway occurred at both 50% and 100% SOC, the reaction at 50% SOC did not escalate into violent explosions like the reaction observed at 100% charging. Furthermore, the activation energies for the thermal runaway observed in the experiments conducted at 50% and 100% SOC are presented.
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加速量热计中充电状态下锂离子电池的燃烧特性
最近,人们对替代导致气候变化和海平面上升的化石燃料的环保能源越来越感兴趣。为了实现可再生能源等环保能源的高效利用,人们在使用储能系统(ess)和智能电网系统方面做出了相当大的努力。然而,二次电池使用量的增加所引发的电池火灾等诸多安全问题,极大地限制了二次电池的应用范围。为了研究锂离子电池的燃烧特性,采用加速量热计研究了锂离子电池在不同温度下的自发放热反应特性和热失控现象。实验中使用的电池为标准的18650圆柱形电池,容量为2600毫安时,并在三种不同的充电状态(SOC)水平下进行测试:0%,50%和100%。将每个实验条件下产生的热量类型划分为4个阶段,并根据SOC研究了每个阶段的存在和温升特征。尽管在50%和100%荷电状态下都发生了热失控,但50%荷电状态下的反应并没有像100%充电时那样升级为剧烈的爆炸。此外,还给出了在50%和100%荷电状态下热失控的活化能。
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