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大型液氢库区泄漏扩散全尺度模拟及安全分析
王若彤, 疏志勇, 雷刚, 梁文清, 陈强, 刘海洋, 郑晓红, 钱华
清华大学学报(自然科学版) ›› 2026, Vol. 66 ›› Issue (3) : 440-451.
PDF(13961 KB)
PDF(13961 KB)
大型液氢库区泄漏扩散全尺度模拟及安全分析
Full-scale simulation and safety analysis of leakage and dispersion in large-scale liquid hydrogen storage areas
研究大型液氢库区发生大规模液氢泄漏的安全问题, 对实现发射场全生命周期风险可控至关重要。该文首先基于火灾动力学模拟器构建了仿真模型, 模拟了液氢泄漏后的扩散过程和意外火灾; 随后, 通过引入顶部受限和太阳辐照等因素, 分析了氢云的横向扩散尺度和对发射场安全性的影响, 并研究了意外着火后库区附近的火势蔓延和危险范围。研究结果表明:当建筑设施偏离主导风向时, 氢云的横向扩散不足以对建筑造成影响; 顶部受限结构会抑制泄漏初期的垂直扩散, 从而增强水平输运, 导致近场区域危险暴露时间延长; 太阳辐射对液氢初期蒸发扩散的影响可忽略, 但随着时间推移, 其产生的热效应能延长近场危险暴露时间, 同时延迟到达远场的时间; 液氢火灾具有快速蔓延特性(火焰高度骤增, 横向扩展达15m)和高温危害性(核心温度大于700℃), 高强度热辐射会严重威胁周边结构设施(如引发钢材结构失效和混凝土爆裂)。该文研究结果可为大型液氢库区安全设计和危险应急响应提供参考。
Objective: Although liquid hydrogen provides high energy density and clean combustion, it poses significant safety risks due to its low boiling point, high diffusivity, and flammability. Therefore, addressing the safety challenges associated with large-scale liquid hydrogen leaks is essential for operational safety and risk management in hydrogen infrastructure, particularly in large-scale storage areas. This study investigates the dispersion characteristics of hydrogen vapor clouds and subsequent fire hazards following catastrophic leakage events, providing critical insights into safety implications under diverse environmental conditions. Methods: A numerical model based on the fire dynamics simulator (FDS)—an advanced computational fluid dynamics tool developed by the U.S. National Institute of Standards and Technology—was developed. The applicability and accuracy of FDS in hydrogen safety simulations were systematically validated through comparisons with experimental data, quantitative error analysis, and cross-validation using peer studies. The simulations examined leakage scenarios involving evaporation, vapor dispersion, and fire development, incorporating fluid dynamics, phase change, combustion, and thermal radiation processes. Environmental factors such as overhead obstructions and solar radiation were also considered. The leakage source was modeled as a liquid hydrogen storage tank located at the center of a large-scale storage area. The lateral dispersion behavior of the hydrogen cloud under varying wind speeds and its impact on structures located off the downwind direction were analyzed. Subsequently, three comparative scenarios were established: a baseline case, a case with overhead confinement, and one with solar radiation. The effects of ceiling obstructions and solar heating on hazardous exposure times and cloud dispersion were evaluated. Moreover, the fire development and potential hazards in the vicinity of the storage area following immediate ignition after leakage were examined. Results: Simulation results indicated that: (1) Buildings located offset from the main wind direction were not affected by the lateral dispersion of the flammable hydrogen cloud. (2) The ceiling structure suppressed the vertical dispersion of the hydrogen cloud during the initial leakage phase and increased the horizontal transport rate, leading to a large gas-to-ground contact area and a prolonged hazardous exposure duration in near-field regions, which resulted in an increase in hazardous exposure time at Building 2 by 5s. (3) Solar radiation played a minimal role in the early-stage evaporation and dispersion of liquid hydrogen. Its thermal effect grew with time, serving to prolong the hazardous exposure time at building facility 2 by 12 s through accelerated cloud dispersion, with a corresponding delay in far-field arrival due to enhanced dilution. (4) In the event of ignition, the liquid hydrogen fire developed extremely rapidly, reaching a flame height of 30m and a lateral spread of 15 m within 9s; the core flame temperature exceeded 700℃. In the simulated fire scenario, the thermal radiation intensity in the ceiling monitoring area consistently exceeded the safety threshold. The thermal radiation intensity exceeded 12.5kW/m2, accounting for over 70% of the total simulation time, potentially causing structural damage such as steel failure and concrete spalling. Conclusions: Quantitative studies on overhead confinement and solar radiation provide new insights into the potential risks of hydrogen facilities in complex environments, while research on the dynamic characteristics of accidental fires offers valuable information for the prevention of daily fires and the development of appropriate strategies to suppress fires.
hydrogen safety / liquid hydrogen / leakage and diffusion / fire hazards / numerical simulation
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