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Modeling the effects of oil viscosity and pipe inclination on flow characteristics and drag reduction in slug flow.

机译:模拟油粘度和管道倾角对塞流中流动特性和减阻的影响。

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Computational analysis along with extensive experimental investigation have been carried out to predict drag reduction in slug flow utilizing three types of oil with viscosities of 2.5 cP, 26 cP, and 50 cP in 10-cm ID, horizontal and 2-degree inclined pipes. Effects of oil viscosity and pipe inclination on each component of the total pressure drop in slug flow were determined. The impact of liquid viscosity and pipe inclination on the effectiveness of drag reducing agents (DRA) was also investigated. Predicted values were in good agreement with experimental results.; Results from both experiments and modeling showed that the accelerational component of pressure drop was dominant in low and moderate oil viscosities. This component reached values as high as 86% of total pressure drop. Most of the drag reduction took place in the accelerational component and reached values as high as 88% out of total drag reduction. As oil viscosity increased, the frictional component was found to increase dramatically and exceeded 40% of total pressure drop in the 50 cP oil.; The DRA was found more effective in reducing both frictional and gravitational components of total pressure drop in higher-viscosity oils than in lower ones. For example, at superficial liquid and gas velocities of 0.5 and 6 m/s frictional loss was reduced by a factor of 60% in the 26 cP oil when adding 50 ppm of the DRA. The corresponding value for the 2.5 cP oil was less than 10%. Meanwhile, the DRA was more effective in reducing accelerational component, hence total pressure drop, in the 2.5 cP oil than in the 26 cP oil.; Pressure drop increased significantly when pipe inclination was changed from horizontal to 2 degrees due to the presence of the gravitational component. This increase in pipe inclination was accompanied with a decrease in the velocity of the stratified film ahead of each slug. Thus resulting in an elevated accelerational pressure loss.; This work will help introduce new mechanisms for drag reduction in multiphase flow and provide a new mechanistic or empirical correlation to incorporate drag reduction in multiphase flow.
机译:已经进行了计算分析和广泛的实验研究,以利用在10厘米内径,水平和2度倾斜管中粘度分别为2.5 cP,26 cP和50 cP的三种类型的油来预测弹团流中的阻力减小。确定了油的粘度和管道的倾斜度对塞流中总压降的每个分量的影响。还研究了液体粘度和管道倾角对减阻剂(DRA)有效性的影响。预测值与实验结果非常吻合。实验和模型结果均表明,在低和中度油粘度下,压降的加速分量占主导地位。该分量的值高达总压降的86%。减阻的大部分发生在加速度分量中,并达到总减阻中高达88%的值。随着油粘度的增加,发现摩擦成分急剧增加,并超过了50 cP油中总压降的40%。发现DRA在降低高粘度油中的总压降的摩擦分量和重力分量上均比降低粘度的油更有效。例如,当液体和气体的表面速度为0.5和6 m / s时,当添加50 ppm DRA时,在26 cP油中,摩擦损失降低了60%。 2.5 cP油的相应值小于10%。同时,与26 cP油相比,DRA在2.5 cP油中更能有效地减小加速分量,从而降低总压降。由于重力分量的存在,当管道倾斜度从水平更改为2度时,压降显着增加。管道倾角的这种增加伴随着每个弹头之前的分层膜速度的降低。因此导致升高的加速压力损失。这项工作将有助于引入用于减少多相流中阻力的新机制,并提供新的机制或经验相关性,以将减少阻力纳入多相流中。

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