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Vortex-induced interfacial waves in liquid-liquid flows across cylindrical bluff bodies of various sizes

机译:涡旋诱导的液体液体流动跨越各种尺寸的圆柱形虚构体流动

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The use of transverse cylinders of various sizes for generating vortex-induced waves in stratified oil-water pipe flows is investigated in this work. From CFD simulations in single phase flows, cylinders with 2 mm and 8 mm in diameter were selected which are found to generate vortices with frequencies in the range of 1 to 100 Hz. The experimental work was conducted in a 8 m long acrylic test section with 37 mm internal diameter. High speed imaging was used to study the flow patterns and the interfacial wave characteristics while velocity fields and the characteristics of the vortices shed by the cylinders in the water phase were obtained with Particle Image Velocimetry. It was found that the vortex properties generated by different cylinder sizes are reflected on the interfacial wave characteristics. The frequencies of both the waves and the vortices agreed for all cases studied, while the wave amplitudes increased with increasing cylinder diameter. The Strouhal number for the 2 mm cylinder had the same value of 0.20 as in unbounded flows, while for the 8 mm cylinder and small distance from the wall, the Strouhal number was equal to 0.27. The presence of the transverse cylinders modified the two-phase flow pattern maps and reduced the transition from stratified to dispersed flows to lower mixture velocities compared to flows without cylinders. The transition boundaries were shifted further towards lower mixture velocity with increasing cylinder diameter. (C) 2019 Elsevier Masson SAS. All rights reserved.
机译:在这项工作中研究了在分层油管流动中产生涡旋引起的各种尺寸的横向圆柱体的使用。从单相流中的CFD模拟,选择直径为2毫米和8毫米的圆柱体,发现该圆柱体在1至100Hz范围内产生频率的涡流。实验工作在8米长的丙烯酸试验部分中进行,内径为37mm。使用颗粒图像速度,获得高速成像来研究流动模式和界面波特性,而速度场和水相中的气缸中的涡流的特性。发现由不同的汽缸尺寸产生的涡旋特性反映在界面波特征上。对于所有研究的壳体同意,波浪和涡流的频率,而波浪幅度随着汽缸直径的增加而增加。 2 mm气缸的Strouhal数量与无界流量相同的0.20,而对于8 mm气缸和距离墙的距离小,速度数等于0.27。横向汽缸的存在改变了两相流动图案图,并将转变从分层减少到分散流以降低混合速度与没有汽缸的流量相比。过渡边界进一步朝向更低的混合速度移动,随着汽缸直径的增加。 (c)2019年Elsevier Masson SAS。版权所有。

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