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Annular Air Leaks in a liquid hydrogen storage tank

机译:液体储氢罐中的环形空气泄漏

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Large liquid hydrogen (LH2) storage tanks are vital infrastructure for NASA, the DOD, and industrial users. Over time, air may leak into the evacuated, perlite filled annular region of these tanks. Once inside, the extremely low temperatures will cause most of the air to freeze. If a significant mass of air is allowed to accumulate, severe damage can result from nominal draining operations. Collection of liquid air on the outer shell may chill it below its ductility range, resulting in fracture. Testing and analysis to quantify the thermal conductivity of perlite that has nitrogen frozen into its interstitial spaces and to determine the void fraction of frozen nitrogen within a perlite/frozen nitrogen mixture is presented. General equations to evaluate methods for removing frozen air, while avoiding fracture, are developed. A hypothetical leak is imposed on an existing tank geometry and a full analysis of that leak is detailed. This analysis includes a thermal model of the tank and a time-to-failure calculation. Approaches to safely remove the frozen air are analyzed, leading to the conclusion that the most feasible approach is to allow the frozen air to melt and to use a water stream to prevent the outer shell from chilling.
机译:大型液体氢气(LH2)储罐是美国宇航局,国防部和工业用户的重要基础设施。随着时间的推移,空气可能泄漏到这些罐的填充的封装环形区域中。内部,极低的温度会导致大部分空气冻结。如果允许大量的空气积聚,则可能由标称排水操作产生严重的损坏。外壳上的液体空气的集合可以在其延性范围以下冷却,导致骨折。介绍了对其间质空间中氮气的珍珠岩的导热率进行了测试和分析,并介绍了珍珠岩/冷冻氮混合物中冷冻氮的空隙级分。开发了一种避免冻结空气的方法的一般方程,同时避免骨折。假设泄漏施加在现有的罐几何形状上,并详细介绍了该泄漏。该分析包括罐的热模型和故障时间计算。分析了安全地去除冻结空气的方法,导致最可行的方法是允许冷冻空气熔化并使用水流来防止外壳冷却。

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