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首页> 外文期刊>Journal of Hazardous Materials >Explosion characteristics for Li-ion battery electrolytes at elevated temperatures
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Explosion characteristics for Li-ion battery electrolytes at elevated temperatures

机译:锂离子电池电解液在高温下的爆炸特性

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Li-ion batteries are used in electronic devices and electric cars, yet they create safety concerns due to the possibility of the release of combustible materials. The electrolyte, one of the main components in a Li-ion cell, consists of organic carbonates. Venting and thermal runaway release organic carbonates and when mixed with air, it can result in fires and explosions. A 20-liter explosion sphere was used to determine the explosion characteristics for three typical carbonates used in electrolytes, at 373 K, and 100 kPa absolute pressure. The explosion pressure and the maximum rate of explosion pressure rise are presented for the carbonates and for hydrogen, methane, and propane, and the explosive limits for the carbonates are also identified at the same conditions. This allowed a comparison of the explosion characteristics for the carbonates with those for hydrogen, methane, and propane. Theoretical calculations gave a higher explosion pressure than that from the experimental results most likely due to losses in the hydrocarbon experiments. The carbonates analyzed have very similar explosion pressures and rate of explosion pressure rise as propane. The explosion characteristics found for the three carbonates can be used in future consequence and risk assessments for Li-ion battery installations.
机译:锂离子电池用于电子设备和电动汽车,但由于会释放可燃材料,因此会引起安全隐患。电解质是锂离子电池的主要成分之一,由有机碳酸盐组成。放空和热失控会释放出有机碳酸盐,当与空气混合时,会导致火灾和爆炸。使用20升爆炸球确定在373 K和100 kPa绝对压力下用于电解液的三种典型碳酸盐的爆炸特性。给出了碳酸盐以及氢气,甲烷和丙烷的爆炸压力和最大爆炸压力上升速率,并且在相同条件下还确定了碳酸盐的爆炸极限。这样就可以比较碳酸盐与氢,甲烷和丙烷的爆炸特性。理论计算得出的爆炸压力要比来自实验结果的爆炸压力更高,这很可能是烃实验造成的损失。分析的碳酸盐具有与丙烷非常相似的爆炸压力和爆炸压力上升速率。这三种碳酸盐的爆炸特性可用于未来锂离子电池装置的后果和风险评估。

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