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首页> 外文期刊>Journal of power sources >Experimental investigation of cascading failure in 18650 lithium ion cell arrays: Impact of cathode chemistry
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Experimental investigation of cascading failure in 18650 lithium ion cell arrays: Impact of cathode chemistry

机译:18650锂离子电池阵列级联失败的实验研究:阴极化学的影响

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摘要

This study provides a comparative analysis of dynamics and hazards associated with cascading failure in lithium ion cell arrays of different cathode chemistries. Each array consists of 3 x 4 cylindrical cells with lithium cobalt oxide (LCO), lithium nickel manganese cobalt oxide (NMC), or lithium iron phosphate (LFP) cathode. Each array is mounted in a wind tunnel supplied with a controlled gas flow. Thermal runaway is induced in one cell using an electric heater and then observed to propagate through the array. Experiments are conducted in nitrogen and air environments to study the combustion impact. Time-resolved recordings of cells' bottom surface temperatures are utilized to track the thermal runaway propagation and calculate a row-to-row propagation speed. The LFP cells are the only cells that do not always fully propagate thermal runaway. The speed of the propagation is found to be greater in air than in nitrogen. In nitrogen, all cells produce large amounts of hydrocarbons, CO and CO2, and minor amounts of O-2 and H-2. Total heats generated due to chemical reactions between cell components and flaming combustion of ejected materials normalized by the electrical energy stored are determined to be 3.5, 2.9, and 2.5 for LCO, NMC, and LFP cells, respectively.
机译:这项研究提供了对不同阴极化学物质的锂离子电池阵列级联失效相关的动力学和危害的比较分析。每个阵列由3 x 4圆柱形电池组成,带有锂钴氧化物(LCO),锂镍锰钴氧化物(NMC)或磷酸铁锂(LFP)阴极。每个阵列都安装在风洞中,并提供受控的气流。使用电加热器在一个单元中引起热失控,然后观察到其通过阵列传播。在氮气和空气环境中进行实验以研究燃烧影响。利用时间分辨的电池底表面温度记录来跟踪热失控传播并计算行对行传播速度。 LFP单元是唯一不总是完全传播热失控的单元。发现在空气中的传播速度大于在氮气中的传播速度。在氮气中,所有细胞都会产生大量的碳氢化合物,CO和CO2,以及少量的O-2和H-2。对于LCO,NMC和LFP电池,由于电池组件之间的化学反应和喷射的物质燃烧燃烧而产生的总热量分别确定为3.5、2.9和2.5,分别是存储的电能。

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