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Physics of spontaneous ignition of high-pressure hydrogen release and transition to jet fire

机译:高压氢气自燃的物理特性,释放并转变为喷射火

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The aim of this study is to gain an insight into the physical phenomena underlying the spontaneous ignition of hydrogen following a sudden release from high-pressure storage and transition to sustained jet fire. The modelling and large-eddy simulation (LES) of the spontaneous ignition dynamics in a tube with a non-inertial rupture disk separating the high-pressure hydrogen storage and the atmosphere is described. Numerical experiments confirmed that due to the stagnation conditions a chemical reaction first commences in the tube boundary layer, and subsequently propagates throughout the tube cross-section. The dynamics of flame formation outside the tube, simulated by the LES model, has reproduced the combustion patterns, including vortex induced "flame separation", which have been experimentally observed by high-speed photography. It is concluded that the LES model can be applied for hydrogen safety engineering, e.g. for the development of innovative pressure relief devices.
机译:这项研究的目的是了解高压存储突然释放并过渡到持续喷射火后,氢自燃的物理现象。描述了具有非惯性破裂盘的,将高压氢气存储和大气分隔开的管中自燃动力学的建模和大涡模拟(LES)。数值实验证实,由于停滞条件,化学反应首先在管边界层开始,然后传播到整个管横截面。 LES模型模拟的在管外火焰形成的动力学再现了燃烧模式,包括涡流诱导的“火焰分离”,这些已通过高速摄影进行了实验观察。结论是LES模型可用于氢安全工程,例如用于开发创新型泄压装置。

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