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Study of vapor film dynamics and heat transfer through an image processing technique

机译:通过图像处理技术研究蒸汽膜动力学和热传递

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摘要

Understanding of two-phase heat transfer mechanisms on downward-facing hemispherical vessels is crucial during external reactor vessel cooling (ERVC) under severe accident conditions. Film boiling is the predominant heat transfer regime in the initial stages of quenching under these circumstances. In this work, the process of downward-facing film boiling on the outer surface of a hemispherical vessel is studied using high-speed video. High-speed video is a valuable measurement technique because it does not require any invasive sensors that may alter the natural liquid-vapor interface in film boiling. With high-speed video and a few image processing techniques, accurate measurements of film thickness have been made at four different degrees of subcooling (0, 3, 5, and 10 °C) and angular locations (0, 14, 28, and 42°) on a hemispherical vessel. With increasing subcooling and decreasing angular location, the vapor film thickness has been found to decrease. Average film thickness at 0 °C (respectively, 10 °C) subcooling and one second after immersion is found to be approximately 2 mm (respectively, 0.5 mm). High-speed videos taken at 650 frames per second (fps) have shown significant oscillations at the liquid-vapor interface during film boiling. Additionally, oscillations in the film thickness and its wave characteristics have been analyzed at the prescribed angular locations and degrees of subcooling. From the visual data, insights regarding the heat transfer behavior of film boiling are obtained. Additionally, the characteristics of the interfacial oscillations have been related to the heat flux distribution. The mechanism for the interfacial oscillations can be attributed to disturbances in the balance between the wall and interfacial heat fluxes, along with the hydrodynamic instability.
机译:在严重事故情况下,在外部反应堆容器冷却(ERVC)期间,了解朝下的半球形容器上的两相传热机制至关重要。在这些情况下,膜沸腾是淬火初期的主要传热方式。在这项工作中,使用高速视频研究了薄膜在半球形容器外表面上沸腾的过程。高速视频是一种有价值的测量技术,因为它不需要任何侵入性传感器,这些传感器可能会改变薄膜沸腾过程中的自然液体-蒸汽界面。利用高速视频和一些图像处理技术,可以在四种不同的过冷度(0、3、5和10 C)和角度位置(0、14、28和42)上精确测量膜厚°)在半球形容器上。随着过冷度的增加和角位置的减小,已发现蒸气膜厚度减小。发现在0 C(分别为10 C)过冷和浸入后一秒钟的平均膜厚约为2 mm(分别为0.5 mm)。在胶片沸腾期间,以每秒650帧(fps)的速度拍摄的高速视频显示出液-气界面处的明显振荡。另外,已经在规定的角度位置和过冷度下分析了薄膜厚度的波动及其波动特性。从视觉数据中,可以获得有关薄膜沸腾传热行为的见解。另外,界面振荡的特性与热通量分布有关。界面振荡的机理可以归因于壁和界面热通量之间平衡的扰动以及流体动力学的不稳定性。

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