两组分气体通过自然对流和分子扩散混合的过程

Takeaki Ube, T. Takeda
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引用次数: 0

摘要

燃气轮机高温堆300热电联产(GTHTR300C)一次冷却管破裂的降压事故是一种基于设计的事故。当与GTHTR300C反应器压力容器侧面水平连接的一次管道破裂时,除逆流进入空气外,分子扩散和局部自然对流有利于气体混合。此外,预计将突然发生炉周围的自然循环流动。为了提高GTHTR300C的安全性,利用模拟GTHTR300C流路配置的实验装置,研究了氦气与空气双组分气体的混合过程。实验装置由同轴双筒和同轴水平双管组成。将球阀分别连接在水平的内管和外管上,打开球阀模拟对主管的破坏。结果证实,在实验装置内形成了稳定的空气和氦密度分层,然后在反应器内部周围产生了自然循环流动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mixing process of two component gases by natural convection and molecular diffusion
A depressurization accident involving the rupture of the primary cooling pipe of the Gas Turbine High Temperature Reactor 300 cogeneration (GTHTR300C), which is a very-high-temperature reactor, is a design-based accident. When the primary pipe connected horizontally to the side of the reactor pressure vessel of GTHTR300C ruptures, molecular diffusion and local natural convection facilitate gas mixing, in addition to air ingress by counter flow. Furthermore, it is expected that a natural circulation flow around the furnace will suddenly occur. To improve the safety of GTHTR300C, an experiment was conducted using an experimental apparatus simulating the flow path configuration of GTHTR300C to investigate the mixing process of a two-component gas of helium and air. The experimental apparatus consisted of a coaxial double cylinder and a coaxial horizontal double pipe. Ball valves were connected to a horizontal inner pipe and outer pipe, and the valves were opened to simulate damage to the main pipe. As a result, it was confirmed that a stable air and helium density stratification formed in the experimental apparatus, and then a natural circulation flow was generated around the inside of the reactor.
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