A Quantitative Analysis of the Fire Hazard Generated from Hydrogen Fuel Cell Electric Vehicles

Sungwook Kang, Kyu-Min Lee, Minjae Kwon, O. Lim, Joungyoon Choi
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Abstract

There is a lack of information on (i) the potential fire load of new green-technology vehicles, (ii) flame spread behavior, (iii) thermal impacts on high-pressure hydrogen storage vessels (HSVs) and lithium-ion batteries (LIBs) during fuel cell electric vehicles fires (FCEVs), and (iv) thermal damage to adjacent vehicles and upper structural members during FCEV fires occurring in civil structures, such as underground spaces, multi-story parks, and tunnels. In view of this, a full-scale fire test was conducted in this study to quantitatively assess the fire risk of hydrogen FCEVs. Large-scale cone calorimetry was used to quantify the thermal intensity released from the FCEV fire. The flame spreading behavior through an FCEV with HSVs and LIBs was observed using the thermocouples installed. Changes in the temperature and irradiance around the FCEV fire were also measured using an instrumented test rig. The peak heat release rate, total heat released, and fire growth rate were observed to be 5.99 MW, 11.8 GJ, and 0.0055 kW/s², respectively. The temporal point of hydrogen gas release from the HSVs' thermal pressure relief device (TPRD) was estimated to be 16.2-26.2 min. The initiation of thermal runaway of LIBs was deduced from the temperature-time profiles of the LIB modules and their metal housing approximately 22.2 min after HCEV ignition. Moreover, FCEV fires could thermally impair adjacent upper structural members by 800 ℃ combustion gas for at least 13 min and emit a median heat flux of 27.2 kW/m² (peak heat flux of 76.5 kW/m²) to adjacent vehicles. The measurements and findings obtained from this study can contribute to the evaluation of and further studies on newly emerging fire hazards.
氢燃料电池汽车火灾危险性的定量分析
关于(i)新型绿色技术车辆的潜在火灾负荷,(ii)火焰蔓延行为,(iii)燃料电池电动汽车火灾(FCEV)时对高压储氢容器(hsv)和锂离子电池(lib)的热影响,以及(iv)发生在地下空间、多层公园和隧道等民用建筑中的FCEV火灾对相邻车辆和上部结构构件的热损伤等方面的信息缺乏。鉴于此,本研究进行了全尺寸的火灾试验,定量评估氢燃料电池汽车的火灾风险。大规模的锥形量热法被用来量化热强度释放FCEV火。利用安装的热电偶,观察了带有hsv和lib的燃料电池汽车的火焰蔓延行为。FCEV着火周围的温度和辐照度的变化也使用仪器测试装置进行了测量。峰值放热速率、总放热速率和火焰生长速率分别为5.99 MW、11.8 GJ和0.0055 kW/s²。热释压装置(TPRD)释放氢气的时间点估计为16.2 ~ 26.2 min。根据热释压装置模块及其金属外壳的温度-时间曲线,在HCEV点火后约22.2 min,热失控开始。此外,燃料电池汽车火灾对相邻上部结构构件产生800℃燃烧气体至少13 min的热损伤,对相邻车辆的中位热流密度为27.2 kW/m²,峰值热流密度为76.5 kW/m²。从本研究中获得的测量和发现有助于评估和进一步研究新出现的火灾危险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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