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首页> 外文期刊>Journal of loss prevention in the process industries >Experimental study on thermal runaway risk of 18650 lithium ion battery under side-heating condition
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Experimental study on thermal runaway risk of 18650 lithium ion battery under side-heating condition

机译:侧面加热条件下18650年锂离子电池热失控风险的实验研究

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摘要

To simulate the heat transfer process between lithium-ion batteries (LIBs), an electric heater with the same size and shape as LIB in this work is used to trigger thermal runaway event. The effect of state of charge (SOC), the power of heater, the cell spacing on thermal behavior of LIB was investigated as well the amount of transferred heat between the heater and LIB was calculated. The results indicate that 50% SOC is an unstable state for LIB, that a stronger jet flame becomes more likely when the SOC of LIB is higher than 50%. Additionally, the increased spacing, lower heating power and SOC can contribute to mitigate the severity of thermal runaway behavior. Further, the dominant path of heat transfer between the heater and LIB will also vary with operating conditions. The heat conduction through air is the main heat transfer path in tests with lower heating power. However, heat radiation will replace heat conduction as the primary heat transfer mode when there is a large temperature difference between the heater and LIB in tests with higher heating power. Understanding the leading heat transfer path between LIBs can provide valuable guidelines for the safety design of lithium-ion battery modules.
机译:为了模拟锂离子电池(LIBS)之间的传热过程,在该工作中具有与Lib相同尺寸和形状的电加热器用于触发热失控事件。研究了充电状态(SOC),加热器的功率,计算了Lib的热行为上的电池间距,计算了加热器和Lib之间的转移热量。结果表明,50%SOC是LIB的不稳定状态,当LIB的SOC高于50%时,更强的喷射火焰变得更有可能。另外,增加的间距,较低的加热功率和SoC可以有助于减轻热失控行为的严重程度。此外,加热器和Lib之间的热传递的主要路径也会随运行条件而变化。通过空气的热传导是具有较低加热功率的测试中的主要传热路径。然而,当加热器和Lib中具有更高的加热功率的测试时,热辐射将更换作为主要传热模式的热传导模式。了解LIBS之间的主要传热路径可以为锂离子电池模块的安全设计提供有价值的指导。

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