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Experimental Investigation of the Self-Ignitionand Jet Flame of Hydrogen Jets Released under Different Conditions

机译:自燃的实验研究不同条件下释放的氢射流的射流和射流火焰

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摘要

Hydrogen is a promising clean energy source and an important chemical raw material. To use hydrogen energy more safely, a high-pressure hydrogen-release platform for hydrogen self-ignition and for generating hydrogen jet flames under different experimental conditions was investigated in this study. The associated experimental analysis was based on the theory of high-pressure hydrogen tube diffusion. We found that the higher the initial release pressure, the greater the intensity of the leading shock. When the initial release pressure was high and the leading shock intensity was strong, hydrogen was more likely to ignite spontaneously inside the tube. The higher the initial release pressure, the faster the average propagation speed of the shock in the same pipe length. The time during which a stable leading shock was formed inside the tube may be related to the initial release pressure. It was found that flame combustion intensified after the passage of air through a Mach disk, and a stable flame was formed more easily at the jet boundary layer away from the orifice axis. The maximum speed of the flame tipand the flame decay speed were very high. Moreover, the flame lengthand the diameter of the ball flame first increased and then decreased.
机译:氢是一种有前途的清洁能源,也是重要的化学原料。为了更安全地利用氢能,研究了一种高压氢释放平台,用于氢自燃和在不同实验条件下产生氢喷射火焰。相关的实验分析基于高压氢管扩散理论。我们发现,初始释放压力越高,前冲的强度越大。当初始释放压力高且前导冲击强度强时,氢气更有可能在管内自燃。初始释放压力越高,在相同管道长度下,冲击的平均传播速度越快。在管内形成稳定的前导冲击的时间可能与初始释放压力有关。已经发现,在空气通过马赫盘之后,火焰燃烧加剧,并且在远离孔口轴线的射流边界层处更容易形成稳定的火焰。火焰尖端的最大速度而且火焰衰减速度很高。而且,火焰长度球形火焰的直径先增大然后减小。

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