Risk Assessment of Hydrogen Fuel Cell Electric Vehicles in Tunnels

被引:0
作者
Brian D. Ehrhart
Dusty M. Brooks
Alice B. Muna
Chris B. LaFleur
机构
[1] Sandia National Laboratories,
来源
Fire Technology | 2020年 / 56卷
关键词
Hydrogen; Risk; Fuel cell electric vehicle; Event sequence diagram;
D O I
暂无
中图分类号
学科分类号
摘要
The need to understand the risks and implications of traffic incidents involving hydrogen fuel cell electric vehicles in tunnels is increasing in importance with higher numbers of these vehicles being deployed. A risk analysis was performed to capture potential scenarios that could occur in the event of a crash and provide a quantitative calculation for the probability of each scenario occurring, with a qualitative categorization of possible consequences. The risk analysis was structured using an event sequence diagram with probability distributions on each event in the tree and random sampling was used to estimate resulting probability distributions for each end-state scenario. The most likely consequence of a crash is no additional hazard from the hydrogen fuel (98.1–99.9% probability) beyond the existing hazards in a vehicle crash, although some factors need additional data and study to validate. These scenarios include minor crashes with no release or ignition of hydrogen. When the hydrogen does ignite, it is most likely a jet flame from the pressure relief device release due to a hydrocarbon fire (0.03–1.8% probability). This work represents a detailed assessment of the state-of-knowledge of the likelihood associated with various vehicle crash scenarios. This is used in an event sequence framework with uncertainty propagation to estimate uncertainty around the probability of each scenario occurring.
引用
收藏
页码:891 / 912
页数:21
相关论文
共 31 条
  • [1] Pasman H(2011)Challenges to improve confidence level of risk assessment of hydrogen technologies Int J Hydrog Energy 36 2407-2413
  • [2] Rodionov A(2011)Risk assessment of hydrogen explosion for private car with hydrogen-driven engine Int J Hydrog Energy 36 2398-2406
  • [3] Wilkening H(2018)Risk assessment methodology for onboard hydrogen storage Int J Hydrog Energy 43 6462-6475
  • [4] Moretto P(2011)Quantitative risk assessment on 2010 expo hydrogen station Int J Hydrogen Energy 36 4079-4086
  • [5] Dadashzadeh M(2009)CFD simulation study to investigate the risk from hydrogen vehicles in tunnels Int J Hydrog Energy 34 5875-5886
  • [6] Kashkarov S(1981)Advances in quantitative risk assessment—the maturing of a discipline IEEE Trans Nucl Sci 28 944-946
  • [7] Makarov D(2016)Overview of traffic safety aspects and design in road tunnels IATSS Res 40 35-46
  • [8] Molkov V(2013)A crash-prediction model for road tunnels Accid Anal Prev 55 107-115
  • [9] Zhiyong LI(1998)Bayesian parameter estimation in probabilistic risk assessment Reliab Eng Syst Saf 62 89-116
  • [10] Xiangmin PAN(2017)Study of a post-fire verification method for the activation status of hydrogen cylinder pressure relief devices Int J Hydrog Energy 42 7716-7720