Experimental Study on Flow Patterns of Decaying Swirling Gas-Liquid Flow in a Horizontal Pipe

L. Shuai, Li Liu, Jiarong Zhang, Gu Hanyang
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Abstract

Swirling flow is one of the well-recognized techniques to control the working process. This special flow is widely adopted in swirl vane separators in nuclear steam generator (SG) for water droplet separation and the fission gas removal system in Thorium Molten Salt Reactor (TMSR) for gas bubble separation. Since the parameters such as separation efficiency, pressure drop and mass and heat transfer rate are strongly dependent on the flow pattern, the accurate prediction of flow patterns and their transitions is extremely important for the proper design, operation and optimization of swirling two-phase flow systems. In this paper, using air and water as working fluids, a visualization experiment is carried out to study the gas-liquid flow in a horizontal pipe containing a swirler with four helical vanes. The test pipe is 5 m in length and 30 mm in diameter. Firstly, five typical flow patterns of swirling gas-liquid flow at the outlet of the swirler are classified and defined, these being spiral chain, swirling gas column, swirling intermittent, swirling annular and swirling ribbon flow. Being affected by the different gas and liquid flow rate of non-swirling flow, it is found that the same non-swirling flow can change into different swirling flow patterns. After that, the evolution of various swirling flow patterns along the streamwise direction is analyzed considering the influence of swirl attenuation. The results indicate that the same swirling flow pattern can transform into a variety of swirling flow patterns and subsequent non-swirling flow patterns. Finally, the flow pattern maps at different positions downstream of the swirler are presented.
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水平管内气液涡流衰减流型的实验研究
旋流是一种公认的控制工作过程的技术。这种特殊流动被广泛应用于核蒸汽发生器(SG)的旋流叶片分离器中进行水滴分离,以及钍熔盐堆(TMSR)的裂变气体去除系统中进行气泡分离。由于分离效率、压降、传质换热率等参数与旋流两相流系统的流型密切相关,因此准确预测旋流两相流系统的流型及其转变对旋流两相流系统的合理设计、运行和优化至关重要。本文以空气和水为工质,对含四螺旋叶片旋流器的水平管内气液流动进行了可视化实验研究。测试管长5米,直径30毫米。首先,对旋流器出口气液旋流的五种典型流型进行了分类和定义,即螺旋链流、气柱旋流、间歇旋流、环状旋流和带状旋流。受非旋流中不同气液流量的影响,发现相同的非旋流可以转变成不同的旋流型。在此基础上,分析了考虑旋流衰减影响的旋流型沿流向的演变过程。结果表明,相同的旋流型可以转化为多种旋流型和后续的非旋流型。最后给出了旋流器下游不同位置的流型图。
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