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The effect of reduced gravity on cryogenic nitrogen boiling and pipe chilldown

机译:重力降低对低温氮沸腾和管道冷却的影响

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摘要

Manned deep space exploration will require cryogenic in-space propulsion. Yet, accurate prediction of cryogenic pipe flow boiling heat transfer is lacking, due to the absence of a cohesive reduced gravity data set covering the expected flow and thermodynamic parameter ranges needed to validate cryogenic two-phase heat transfer models. This work provides a wide range of cryogenic chilldown data aboard an aircraft flying parabolic trajectories to simulate reduced gravity. Liquid nitrogen is used to quench a 1.27 cm diameter tube from room temperature. The pressure, temperature, flow rate, and inlet conditions are reported from 10 tests covering liquid Reynolds number from 2,000 to 80,000 and pressures from 80 to 810 kPa. Corresponding terrestrial gravity tests were performed in upward, downward, and horizontal flow configurations to identify gravity and flow direction effects on chilldown. Film boiling heat transfer was lessened by up to 25% in reduced gravity, resulting in longer time and more liquid to quench the pipe to liquid temperatures. Heat transfer was enhanced by increasing the flow rate, and differences between reduced and terrestrial gravity diminished at high flow rates. The new data set will enable the development of accurate and robust heat transfer models of cryogenic pipe chilldown in reduced gravity.
机译:载人深空探测将需要低温太空推进。然而,由于缺乏凝聚力降低的重力数据集,该数据集缺乏验证低温两相传热模型所需的预期流量和热力学参数范围,因此缺乏对低温管道流沸腾传热的准确预测。这项工作提供了飞行抛物线轨迹的飞机上广泛的低温冷却数据,以模拟重力的降低。液氮用于从室温淬灭直径为1.27 cm的管。通过10个测试报告了压力,温度,流速和入口条件,这些测试涵盖了从2,000至80,000的液体雷诺数和从80至810kPa的压力。分别在向上,向下和水平流动配置中进行了相应的地面重力测试,以识别重力和流动方向对冷却的影响。在重力降低的情况下,薄膜沸腾的传热减少了多达25%,从而导致更长的时间和更多的液体将管道淬火至液体温度。通过增加流速来增强传热,并且在高流速下减小的重力和地面重力之间的差异会减小。新的数据集将有助于开发降低重力的低温管道冷却的准确而可靠的传热模型。

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