A time-dependent CFD approach to consequence assessment of sour natural gas leakage from buried high-pressure transmission pipelines

IF 3.6 3区 工程技术 Q2 ENGINEERING, CHEMICAL Journal of Loss Prevention in The Process Industries Pub Date : 2024-07-02 DOI:10.1016/j.jlp.2024.105389
Mojtaba Bagheri, Ataallah Sari
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Abstract

High-pressure pipelines that transport sour natural gas contain high levels of hydrogen sulfide, which is poisonous and has irreparable effects on human health even in low concentrations. These pipes are break valve-assisted and buried underground to minimize gas leakage and protect people nearby. This study examines their leakage through a series of time-dependent three-dimensional CFD simulations. In contradiction of previous works that only considered the above-ground environment, here, for more realism, the computational domain includes the pipeline, trench, covering soil, and above-ground environment. The impact of hole size, leak location on the pipe, wind velocity, atmospheric stability class, time of occurrence (day or night), and the presence of break valves on the dispersion of leaked gas are comprehensively investigated. Results indicate that the effect of hole diameter on hydrogen sulfide concentration in the above-ground environment is dominant to other factors. In addition, the probability of fatality due to gas release and the intensity of the gas leak exposure crisis are studied by combining the dose-response model and CFD simulation results. In this line, LT50, which measures how long it takes for 50% of people in different areas around the pipeline to die from exposure to hydrogen sulfide is calculated.

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采用随时间变化的 CFD 方法评估埋地高压输气管道酸性天然气泄漏的后果
输送酸性天然气的高压管道中含有大量硫化氢,硫化氢有毒,即使浓度很低也会对人体健康造成不可挽回的影响。这些管道采用断阀辅助,埋在地下,以最大限度地减少气体泄漏,保护附近居民的安全。本研究通过一系列随时间变化的三维 CFD 模拟研究了它们的泄漏情况。与以往只考虑地面环境的研究不同,为了更加逼真,本研究的计算域包括管道、沟槽、覆盖土壤和地面环境。全面研究了孔径、管道上的泄漏位置、风速、大气稳定性等级、发生时间(白天或夜晚)以及是否存在断流阀等因素对泄漏气体扩散的影响。结果表明,孔径对地面环境中硫化氢浓度的影响要大于其他因素。此外,还结合剂量反应模型和 CFD 模拟结果,研究了气体释放导致死亡的概率和气体泄漏暴露危机的强度。其中,LT50 是衡量管道周围不同地区 50%的人因暴露于硫化氢而死亡所需的时间。
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来源期刊
CiteScore
7.20
自引率
14.30%
发文量
226
审稿时长
52 days
期刊介绍: The broad scope of the journal is process safety. Process safety is defined as the prevention and mitigation of process-related injuries and damage arising from process incidents involving fire, explosion and toxic release. Such undesired events occur in the process industries during the use, storage, manufacture, handling, and transportation of highly hazardous chemicals.
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