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Cryogenic Boiling and Two-Phase Flow during Pipe Chilldown in Earth and Reduced Gravity

机译:管道降温和重力降低时的低温沸腾和两相流动

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For many industrial, medical and space technologies, cryogenic fluids play indispensable roles. An integral part of the cryogenic transport processes is the chilldown of the system components during initial applications. In this paper, we report experimental results for a chilldown process that is involved with the unsteady two-phase vapor-liquid flow and boiling heat transfer of the cryogen coupled with the transient heat conduction inside pipe walls. We have provided fundamental understanding on the physics of the two-phase flow and boiling heat transfer during cryogenic quenching through experimental observation, measurement and analysis. Based on the temperature measurement of the tube wall, the terrestrial cryogenic chilldown process is divided into three stages of film boiling, nucleate boiling and single-phase convection that bears a close similarity to the conventional pool boiling process. In earth gravity, cooling rate is non-uniform circumferentially due to a stratified flow pattern that gives rise to more cooling on the bottom wall by liquid filaments. In microgravity, there is no stratified flow and the absence of the gravitational force sends liquid filaments to the central core and replaces them by low thermal conductivity vapor that significantly reduces the heat transfer from the wall. Thus, the chilldown process is axisymmetric, but longer in microgravity.
机译:对于许多工业,医学和太空技术而言,低温流体起着不可或缺的作用。低温运输过程中不可或缺的一部分是在初始应用期间对系统组件的冷却。在本文中,我们报告了冷却过程的实验结果,该过程涉及制冷剂的不稳定两相气液流动和沸腾传热以及管壁内的瞬态热传导。通过实验观察,测量和分析,我们对低温淬火过程中的两相流动和沸腾传热的物理原理有了基本的了解。根据管壁的温度测量结果,将陆地低温冷却过程分为膜沸腾,核沸腾和单相对流三个阶段,这三个阶段与常规池沸腾过程极为相似。在地心引力中,由于分层的流型,冷却速率在周向上不均匀,分层的流型导致液体细丝在底壁上产生更多的冷却。在微重力下,没有分层流动,并且没有重力将液体细丝传送到中心纤芯,并用低导热率的蒸气代替,从而大大减少了从壁的传热。因此,冷却过程是轴对称的,但微重力更长。

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