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首页> 外文期刊>International journal of hydrogen energy >Experimental study of spontaneous ignition induced by sudden hydrogen release through tubes with different shaped cross-sections
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Experimental study of spontaneous ignition induced by sudden hydrogen release through tubes with different shaped cross-sections

机译:异形截面管突然放出氢气引起自燃的实验研究

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The shock wave dynamics, spontaneous ignition and flame variation during high-pressure hydrogen release through tubes with different cross-section shapes are experimentally studied. Tubes with square, pentagon and circular cross-section shapes are considered in the experiments. The experimental results show that the cross-section shape of the tube has no great difference on the minimum burst pressure for spontaneous ignition in our tests. In the three tubes with length of 300 mm, spontaneous ignition may occur when overpressure of shock wave is 0.9 MPa. When the spontaneous ignition is induced in a non- circular cross-section tube, the possible turbulent flow in the corner of the tube increases can promote the mixing of hydrogen and air, thus producing more amount of the hydrogen/air mixture. As a result, both the peak light signal and flame duration detected in the non-circular cross-section tubes are more intense than those in the circular tube. The smaller angle of the corner leads to a more intensity flame inside tube. When the hydrogen flame propagates to the tube exit from the circular tube, the ball-like flame developed near tube exit is relatively weak. In addition, second flame separation outside the tube is observed for the cases of non-circular cross-section tubes. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:实验研究了通过不同横截面形状的高压管释放高压氢时的冲击波动力学,自燃和火焰变化。实验中考虑了具有方形,五边形和圆形横截面形状的管。实验结果表明,在我们的测试中,管子的横截面形状与用于自燃的最小爆破压力没有太大差异。在三根长度为300 mm的管中,当冲击波的超压为0.9 MPa时,可能会发生自燃。当在非圆形横截面管中引发自燃时,在管角处可能出现的湍流增加,会促进氢气和空气的混合,从而产生更多量的氢气/空气混合物。结果,在非圆形截面管中检测到的峰值光信号和火焰持续时间都比在圆形管中检测到的强。角的角度越小,导致管内火焰的强度越高。当氢火焰从圆形管传播到管出口时,在管出口附近产生的球形火焰相对较弱。另外,对于非圆形横截面的管子,在管子外观察到第二次火焰分离。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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