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On the Effect of Variable Opening Geometries, and Operating Conditions on High Pressure Hydrogen Releases:udIgnition Risks

机译:关于可变的开孔几何形状和操作条件对高压氢气释放的影响: ud点火风险

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摘要

Understanding and predicting the behavior of pressurized hydrogen when released into air is needed for the safe utilization of hydrogen. Analysis based on Computational Fluid Dynamics, can be used to accurately study this flow and anticipate its consequence without performing expensive experimental testing. Simulation of sudden release of highly under-expanded hydrogen jet and detecting auto-ignition is the focus of this work. The present thesis addresses ignition risks associated with the diffusion-expansion of hydrogen into ambient air, through a series of case studies, covering several types of exit geometries: fixed circular, and fixed elliptic openings, as well as expanding circular geometries, under different pressure conditions, to describe the properties that affect ignition and to determine when ignition has occurred. To be more specific this research aims at capturing all the features of the flow required, to examine where and when the probability of ignition exists, and to determine the effect of changing the opening geometry on ignition risks.
机译:为了安全地利用氢气,需要了解和预测加压氢气释放到空气中后的行为。基于计算流体动力学的分析可用于准确研究此流动并预测其后果,而无需执行昂贵的实验测试。这项工作的重点是模拟高度膨胀不足的氢射流突然释放并检测自动点火的过程。通过一系列案例研究,本论文解决了与氢扩散-扩散到周围空气中有关的着火风险,涵盖了几种出口几何形状:固定圆形和固定椭圆形开口,以及在不同压力下膨胀圆形几何形状条件,以描述影响点火的特性并确定何时发生点火。更具体地说,本研究旨在捕获所需流动的所有特征,检查存在点火可能性的位置和时间,并确定改变开口几何形状对点火风险的影响。

著录项

  • 作者

    Nakhle Wissam;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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