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PIPE DIAMETER EFFECT ON THE TWO-PHASE FLOW SEPARATOR FOR REMOVAL OF LIQUID IN HORIZONTAL PIPES

机译:管道直径对两相流分离器的影响,用于在水平管中移除液体

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A pipe diameter effect on the two-phase flow liquid separation phenomenon by an annular type liquid separator is experimentally investigated, where this type of separator does not have any intrusive section inside the pipe. Past work demonstrated that a 2 cm diameter flow separator could effectively separate liquid from an annular flow regime without the use of intrusive devices in the main pipe. The current study examines the results of a 10 cm diameter pipe and compares to the 2 cm results previously observed. The separator consists of segments of Lucite tubing containing multiple holes in the separation sections. An experiment was conducted for a 10 cm inner diameter flow pipe and inlet two-phase flow regimes of stratified smooth, stratified wavy and annular mist are studied for superficial gas velocities from 0 to 8 m/s and superficial liquid velocities from 0 to 0.005 m/s. The number of holes, the pitch, and the shape of the holes in the wall of the separator were varied. The results show that the separation efficiencies were observed in the range of 80% to 100%, where the separation efficiency decreases with increasing superficial liquid velocity. Separation efficiencies of 100% were observed for stratified flow conditions. Separation efficiencies greater than 90% were usually observed for annular mist conditions. For stratified wavy conditions, separation efficiencies ranged from 80% to 100%. The separation efficiency does increase with the number of holes as expected. In comparison to the smaller 2 cm diameter test section, the results indicate the same trends, where the superficial velocities can be used as a first order scaling parameter for the separator.
机译:通过环形液体分离器对两相流动液分离现象的管道直径效应进行实验研究,其中这种类型的分离器在管内部没有任何侵入性部分。过去的工作证明,2cm直径的流量分离器可以有效地将液体与主管中的侵入式装置有效地将液体与环形流动状态分开。目前的研究检查了10厘米直径的管道的结果,并比较先前观察到的2cm结果。分离器由含有多个孔中的透光管的区段组成,在分离部分中包含多个孔。对10cm内径的流动管和入口两相流量的分层平滑,分层波浪和环形雾进行了实验,用于浅表气体速度,从0到8米/ s,浅表液体速度为0至0.005米/ s。变化孔的孔,间距和孔中的孔的形状。结果表明,在80%至100%的范围内观察到分离效率,其中分离效率随着浅表液体速度的增加而降低。对于分层流动条件,观察到100%的分离效率。通常观察到大于90%的分离效率用于环形雾条件。对于分层波浪状况,分离效率范围为80%至100%。分离效率与预期的孔数量增加。与较小的2cm直径测试部分相比,结果表示相同的趋势,其中浅速度可以用作分离器的一阶缩放参数。

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