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Large eddy simulation of hydrogen dispersion from leakage in a nuclear containment model

机译:核安全壳模型中泄漏引起的氢扩散的大涡模拟

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摘要

Hydrogen leaking inside a nuclear power plant poses a critical nuclear safety issue, and accurate prediction of the dispersion process of hydrogen has become an important topic of research. In the present study, temporal evolution of hydrogen dispersion in a test facility (called PANDA) for nuclear safety is analyzed using high-fidelity simulation techniques such as large eddy simulation (LES), high-order discretization methods, immersed boundary (IB) method, etc. An important topic in this study is how a turbulent buoyant jet of a released gas-air mixture interacts with a stratified layer formed near the ceiling of a containment. In this study, the interaction of jet penetration with the stratified layer is characterized as the "slow erosion process". The height of the jet penetration is limited by light gas at the top due to the negative buoyant effect. From a viewpoint of the safety of the containment, the present study shows that by a continuous release of hydrogen, the flammable region expands significantly over time. However, the change of the detonable region over time is much smaller compared to that of the flammable region. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:氢在核电站内部的泄漏构成了至关重要的核安全问题,准确预测氢的扩散过程已成为研究的重要课题。在本研究中,使用高保真模拟技术(例如大涡流模拟(LES),高阶离散化方法,沉浸边界(IB)方法)对用于核安全的测试设施(称为PANDA)中氢分散的时间演变进行了分析。这项研究中的一个重要主题是释放的气体-空气混合物的湍流浮力射流如何与安全壳顶部附近形成的分层层相互作用。在这项研究中,射流渗透与分层层的相互作用被称为“缓慢侵蚀过程”。由于负浮力作用,射流穿透的高度受到顶部轻气体的限制。从安全壳的安全性的角度来看,本研究表明,通过持续释放氢,易燃区域会随着时间的推移而显着扩展。然而,与可燃区域相比,可爆区域随时间的变化要小得多。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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