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首页> 外文期刊>Cryogenics >Two-phase flow characteristics of liquid nitrogen in vertically upward 0.5 and 1.0 mm micro-tubes: Visualization studies
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Two-phase flow characteristics of liquid nitrogen in vertically upward 0.5 and 1.0 mm micro-tubes: Visualization studies

机译:垂直向上的0.5和1.0 mm微型管中液氮的两相流动特性:可视化研究

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摘要

Application of liquid nitrogen to cooling is widely employed in many fields, such as cooling of the high temperature superconducting devices, cryosurgery and so on, in which liquid nitrogen is generally forced to flow inside very small passages to maintain good thermal performance and stability. In order to have a full understanding of the flow and heat transfer characteristics of liquid nitrogen in micro-tube, highspeed digital photography was employed to acquire the typical two-phase flow patterns of liquid nitrogen in vertically upward micro-tubes of 0.531 and 1.042 mm inner diameters. It was found from the experimental results that the flow patterns were mainly bubbly flow, slug flow, churn flow and annular flow. And the confined bubble flow, mist flow, bubble condensation and flow oscillation were also observed. These flow patterns were characterized in different types of flow regime maps. The surface tension force and the size of the diameter were revealed to be the major factors affecting the flow pattern transitions. It was found that the transition boundaries of the slug/churn flow and churn/annular flow of the present experiment shifted to lower superficial vapor velocity; while the transition boundary of the bubbly/slug flow shifted to higher superficial vapor velocity compared to the results of the room-temperature fluids in the tubes with the similar hydraulic diameters. The corresponding transition boundaries moved to lower superficial velocity when reducing the inner diameter of the micro-tubes. Time-averaged void fraction and heat transfer characteristics for individual flow patterns were presented and special attention was paid to the effect of the diameter on the variation of void fraction.
机译:液氮在冷却中的应用广泛应用于许多领域,例如高温超导设备的冷却,冷冻手术等,在这些领域中,液氮通常被迫在非常小的通道内流动以保持良好的热性能和稳定性。为了全面了解微管中液氮的流动和传热特性,采用高速数码摄影技术获取了垂直向上的微管中0.531和1.042 mm的液氮的典型两相流型。内径。从实验结果中发现,流态主要是气泡流,团状流,搅动流和环形流。并观察了密闭的气泡流动,雾流,气泡凝结和流动振荡。这些流动模式在不同类型的流动状态图中进行了表征。揭示了表面张力和直径的大小是影响流型转变的主要因素。结果发现,本实验的团状流/搅动流和搅动/环形流的过渡边界向较低的表观蒸汽速度转移;与具有类似水力直径的管中的室温流体的结果相比,气泡/团状流的过渡边界转移到更高的表观蒸汽速度。当减小微管的内径时,相应的过渡边界移至较低的表面速度。给出了各个流型的时间平均空隙率和传热特性,并特别注意了直径对空隙率变化的影响。

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