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Effect of opening area on the suppression of self-ignition of high-pressure hydrogen gas leaking in the air by an extension tube

机译:开口面积对延伸管空气中高压氢气泄漏自点火抑制的影响

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摘要

The most influential factor for self-ignition of high-pressure hydrogen is known to be the strength of the shock. Thus, the self-ignition can be suppressed by weakening the shock strength, which is possible by reducing the area where the hydrogen is ejected in this study. To confirm the possibility of this method, experiments were done by controlling the burst pressure of up to 302 bar and the ratio of the opening area. The experimental results showed that the minimum burst pressure of self-ignition is increased exponentially as the opening area is reduced. This confirmed that reducing the opening area under the same burst pressure conditions has an effect on the suppression of self-ignition. However, it was also found that the minimum shock speed that causes self-ignition gradually decreases as the opening area becomes smaller, which results from an increasing in mixing. The CFD simulation results showed that the volume of the flammable region in the tube was increased and the hydrogen-air mixing efficiency also increased when the opening area became smaller. The results suggest that reduction of the opening area can suppress a self-ignition by weakening the shock strength, but it should be noted that an increase in mixing effect also occurs. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:已知高压氢气自点火的最有影响力的因素是休克的强度。因此,通过减弱冲击强度可以抑制自点火,这通过减少在该研究中喷射氢的区域可以进行。为了确认该方法的可能性,通过控制高达302巴的突发压力和开口区域的比例来完成实验。实验结果表明,随着开口面积减小,自点火的最小突发压力呈指数增加。这证实,在相同的脉冲压力条件下减小开口面积对自燃的抑制产生影响。然而,还发现,随着开口区域变小,引起自燃的最小冲击速度逐渐减小,这导致混合中的增加。 CFD模拟结果表明,当开口区域变小时,管中易燃区域的体积增加,氢气混合效率也增加。结果表明,通过削弱冲击强度,开口区域的减少可以抑制自燃,但应该注意的是,也发生混合效果的增加。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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