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Validation of CFD modelling of LH_2 spread and evaporationagainst large-scale spill experiments

机译:LH_2扩散和蒸发的CFD模型针对大规模溢出实验的验证

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Hydrogen is widely recognized as an attractive energy carrier due to its low-level air pollution and its high mass-related energy density. However, the safety characteristics of hydrogen are a concern, primarily due to its wide flammability range and high burning velocity. A significant fraction of hydrogen is stored and transported as a cryogenic liquid. Therefore, loss of hydrogen containments may lead to the formation of a pool on the ground. In general, very large spills will give a pool, whereas moderate sized spills may evaporate immediately. Accurate hazard assessments of storage systems require a proper prediction of the liquid hydrogen pool evaporation and spreading when conditions are conducive to the formation of a pool. A pool model handling the spread and the evaporation of liquid spills on different surfaces has recently been implemented in the 3D-Computational Fluid Dynamics (CFD) tool FLACS @@[1-4]. As the influence of geometry on the liquid spread is taken into account in the pool model, realistic industrial scenarios can be investigated. The model has been extensively validated for Liquefied Natural Gas (LNG) spills @@[5,6], The model has previously been tested for LH_2 release in the framework of the EU-sponsored Network of Excellence HySafe where experiments carried out by BAM were modelled. In the large-scale BAM experiments @@[7], 280 kg of liquid hydrogen was spilled in 6 tests adjacent to buildings. In these tests, the pool spreading, the evaporation, and the cloud formation were investigated. Simulations of these tests are found to compare reasonably well with the experimental results. In the present work, the liquid hydrogen spill experiments carried out by NASA are simulated with the pool model. The large-scale NASA experiments @@[8,9] consisted of 7 releases of liquefied hydrogen at White Sand, New Mexico. The release test 6 is used. During these experiments, cloud concentrations were measured at several distances downwind of the spill point. With the new pool model feature, the FLACS tool is shown to be an efficient and accurate tool for the investigation of complex and realistic accidental release scenarios of cryogenic liquids.
机译:氢由于其低水平的空气污染和与质量有关的高能量密度而被公认为是有吸引力的能量载体。然而,氢的安全特性是一个值得关注的问题,这主要是由于氢的易燃范围和高燃烧速度。大量的氢气以低温液体的形式存储和运输。因此,氢含量损失会导致在地面上形成水池。通常,非常大的泄漏会形成一个池,而中等大小的泄漏可能会立即蒸发。对存储系统进行准确的危害评估需要在条件有利于形成池的情况下正确预测液态氢池的蒸发和扩散。最近,在3D计算流体动力学(CFD)工具FLACS @@ [1-4]中实现了一个处理溢油扩散和蒸发在不同表面上蒸发的池模型。由于在池模型中考虑了几何形状对液体扩散的影响,因此可以研究现实的工业场景。该模型已针对@@ [5,6]的液化天然气(LNG)泄漏进行了广泛验证。该模型先前已在欧盟资助的卓越安全网络HySafe的框架中进行过LH_2释放测试,BAM进行的实验为建模。在大规模的BAM实验中,[@] [7]在与建筑物相邻的6个测试中溢出了280 kg液态氢。在这些测试中,研究了池扩散,蒸发和云的形成。发现这些测试的模拟可以与实验结果很好地比较。在目前的工作中,用池模型模拟了NASA进行的液态氢泄漏实验。 NASA的大型实验@ [8,9]包括新墨西哥州白沙的7种液化氢释放。使用释放测试6。在这些实验中,在溢流点下风的几个距离处测量了云的浓度。凭借新的池模型功能,FLACS工具被证明是一种用于调查复杂和现实的低温液体意外释放情况的有效且准确的工具。

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