Research on active and passive schemes for safety improvement of nuclear energy hydrogen production system

Qunxiang Gao, Qi Sun, Ping Zhang, Gangyong Zhao, Wei Peng
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Abstract

Nuclear hydrogen production has the advantages of large-scale and low carbon emissions, and is expected to play an active role in the energy transition process. However, the storage and transportation of hydrogen pose potential risks of leakage and diffusion when connected to high-pressure hydrogen storage tanks and pipelines. To address this concern, this study focused on designing three distinct safety improvement schemes tailored for potential hydrogen leakage accidents. These schemes encompassed a passively distributed arrangement of obstacles (Scheme 1), a passively centralized arrangement of obstacles (Scheme 2), and an active fan array blowing (Scheme 3). Numerical simulation methods were applied on extensive spatial scales for relevant calculations. The results revealed that all three schemes effectively reduced the diffusion distance of combustible hydrogen. Specifically, at lower ambient wind speeds, Scheme 1, Scheme 2, and Scheme 3 achieved the shortest diffusion distances of 123 m, 56 m, and 46 m, respectively. Meanwhile, at higher ambient wind speeds, the corresponding distances were 282 m, 100 m, and 79 m. These results collectively offer valuable insights to mitigate the risk of leakage accidents in nuclear hydrogen production systems.
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提高核能制氢系统安全的主动和被动方案研究
核制氢具有大规模和低碳排放的优势,有望在能源转型过程中发挥积极作用。然而,氢气的储存和运输在与高压储氢罐和管道连接时存在泄漏和扩散的潜在风险。为了解决这一问题,本研究重点针对潜在的氢泄漏事故设计了三种不同的安全改进方案。这些方案包括被动式分布障碍物布置(方案 1)、被动式集中障碍物布置(方案 2)和主动式风扇阵列吹风(方案 3)。相关计算采用了大空间尺度的数值模拟方法。结果表明,这三种方案都有效地减少了可燃氢气的扩散距离。具体来说,在较低的环境风速下,方案 1、方案 2 和方案 3 的扩散距离最短,分别为 123 米、56 米和 46 米。这些结果为降低核制氢系统的泄漏事故风险提供了宝贵的启示。
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