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Gas propagation following a sudden loss of vacuum in a pipe cooled by He I and He II.

机译:在他和他的管道中突然在管道中突然丧失真空后的气体繁殖。

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Many cryogenic systems around the world are concerned with the sudden catastrophic loss of vacuum for cost, preventative damage, safety or other reasons. The experiments in this paper were designed to simulate the sudden vacuum break in the beam-line pipe of a liquid helium cooled superconducting particle accelerator. This paper expands previous research conducted at the National High Magnetic Field Laboratory and evaluates the differences between normal helium (He I) and superfluid helium (He II). For the experiments, a straight pipe and was evacuated and immersed in liquid helium at 4.2 K and below 2.17 K. Vacuum loss was simulated by opening a solenoid valve on a buffer tank filled nitrogen gas. Gas front arrival was observed by a temperature rise of the tube. Preliminary results suggested that the speed of the gas front through the experiment decreased exponentially along the tube for both normal liquid helium and super-fluid helium. The system was modified to a helical pipe system to increase propagation length. Testing and analysis on these two systems revealed there was minor difference between He I and He II despite the difference between the two distinct helium phases heat transfer mechanisms: convection vs thermal counterflow. Furthermore, the results indicated that the temperature of the tube wall above the LHe bath also plays a significant role in the initial front propagation. More systematic measurements are planned in with the helical tube system to further verify the results.
机译:世界各地的许多低温系统都涉及成本,预防损害,安全或其他原因的突然灾难性灾害丧失。本文的实验被设计为模拟液氦冷却超导颗粒促进剂的梁管管中的突然真空断裂。本文扩展了在国家高磁场实验室进行的先前研究,并评估正常氦(I)和超流氦之间的差异(他II)。对于实验,直管并抽空并浸入4.2 k和低于2.17k的液氦下。通过在缓冲罐填充的氮气上打开电磁阀来模拟真空损失。通过管的温度升高观察到气体前到达。初步结果表明,通过实验的气体前沿的速度沿着管沿着管道呈指数逐渐降低,用于正常液体氦气和超流体氦气。该系统被修改为螺旋管系统以增加传播长度。对这两个系统的测试和分析显示,尽管两种不同的氦阶段传热机制之间存在差异,但他与他的差别很大程度上存在差异:对流与热逆流。此外,结果表明,LHE浴上方的管壁的温度也在初始正面繁殖中起着重要作用。利用螺旋管系统计划更系统的测量以进一步验证结果。

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