Rate of Para-Orthohydrogen Conversion in Cryogenic Vortex Tube

K. Matveev, J. Leachman
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引用次数: 0

Abstract

- Raising efficiency of the cooling process for cryogenic hydrogen and minimizing hydrogen boil-off during storage and transportation of liquid hydrogen are critically important factors for widening implementation of hydrogen-based clean energy systems. One novel approach involves utilization of relatively simple catalyzed vortex tubes, where hydrogen in the primarily para-nuclear spin isomer form is converted into the ortho-form while consuming a significant amount of heat. To design such systems effectively, better understanding is required about catalyst-assisted para-orthohydrogen conversion rates in high-speed vortical flows. In this study, a computational fluid dynamics simulation has been set up to model an experimental system with cryogenic hydrogen vortex tubes. Mesh-verification and a validation study has been conducted first for a non-catalyzed tube. Then, the rate coefficient of the para-orthohydrogen conversion of cryogenic hydrogen has been determined by matching numerical results with experimental data available for a catalyzed vortex tube. The presented information can help design and optimize cryogenic hydrogen cooling within vortex tubes.
低温涡旋管内对正氢转化速率的研究
-提高低温氢冷却过程的效率,最大限度地减少液氢储存和运输过程中的氢蒸发,是扩大氢基清洁能源系统实施的关键因素。一种新颖的方法是利用相对简单的催化涡管,其中主要的对核自旋异构体形式的氢在消耗大量热量的同时转化为正形体。为了有效地设计这样的系统,需要更好地了解高速涡流中催化剂辅助的对正氢转化率。本文建立了低温氢涡管实验系统的计算流体力学模型。首先对非催化管进行了网格验证和验证研究。然后,通过将数值结果与催化涡管的实验数据进行匹配,确定了低温氢对正氢转化的速率系数。所提供的信息可以帮助设计和优化涡旋管内低温氢冷却。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
0.90
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