Computational Fluid Dynamics Simulation of Oil-Water Batch Transport in a Pumpless Virtual Flow Loop

Lei Xie, G. Mao, Kai Wang, Zhiping Li
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Abstract

Batch transportation of oil and water is a new transportation method in oil and gas gathering and transportation pipelines. Its corrosion inhibition effect has been preliminarily verified in a horizontal pipe experiment. However, achieving overall visualization in traditional loops is difficult, resulting in limited flow pattern classification and analysis of influencing factors. Combining the advantages of the traditional flow loop and the wheel flow loop, we introduce in this paper a round-head straight pipe loop and analyze the influence of key factors on the evolution of the flow pattern of the oil-water interface and the dimensionless length of the oil-water film (L~o, L~w) on the pipe wall through computational fluid dynamics (CFD) numerical simulation. The results show that the batch transportation of oil and water using the round-head straight pipe loop is more in line with the flow characteristics of oil and water two-phase flow in gathering pipelines. Three distinct three-layered flow patterns were identified, which are Flow Pattern I (oil-in-water in the upper layer, annular flow in the middle layer, and oil as the annular phase, water as the core phase, and oil-in-water in the lower layer, abbreviated as DW/O-AN-DW/O), Flow Pattern II (oil phase in the upper layer, annular flow in the middle layer, water as the annular phase, oil as the core phase, and oil in the lower layer, abbreviated as O-AN-O), and Flow Pattern III (oil phase in the upper layer, water-in-oil dispersion flow in the middle layer, and oil in the lower layer, abbreviated as O-DO/W-O). Additionally, parametric analysis reveals that the velocity of the rigid body (ν) has the greatest influence on the coverage rate of the oil film on the pipe wall, followed by the viscosity of crude oil. The density of crude oil has the least influence. The round-head straight pipe loop model offers an accurate simulation of the process of oil and water batch transportation in actual production pipelines. Therefore, the corrosion mitigation efficiency increases with the increase in oil viscosity when the viscosity of the oil lies within the range of 0.01–1 Pa·s. This increase is due to the formation of a more stable oil film on the pipe wall at higher viscosities. When the speed of the rigid body ranges from 0.5 to 1 m/s, due to the small fluid velocity, the erosion effect on the oil film on the pipe wall is relatively small, and the corrosion mitigation efficiency remains stable within a wide range.
无泵虚拟流环中油水间歇输运的计算流体动力学模拟
油水分批输送是油气集输管道中一种新的输送方式。在水平管试验中初步验证了其缓蚀效果。然而,在传统的循环中很难实现整体可视化,导致流型分类和影响因素分析受到限制。结合传统流环和轮式流环的优点,引入圆头直管流环,通过计算流体力学(CFD)数值模拟,分析了关键因素对油水界面流型演变的影响以及管壁上油水膜(L~o, L~w)无因次长度的影响。结果表明,采用圆头直管回路分批输送油水更符合集输管道中油水两相流的流动特性。三个不同的三层流动模式被确定,流型我(水乳在上层,环状流层,中间和石油的环形阶段,水为核心的阶段,和水在较低的层,缩写为DW / O-AN-DW / O),流型II(油相在上层,中间环状流层,水是环形阶段,石油为核心的阶段,和石油在较低的层,缩写为O-AN-O),流型III(上层为油相,中层为油包水分散流,下层为油相,简称O-DO/W-O)。参数分析表明,刚体速度对油膜在管壁上的覆盖率影响最大,其次是原油粘度。原油密度的影响最小。圆头直管回路模型能较准确地模拟实际生产管道中油水分批输送的过程。因此,当油的粘度在0.01-1 Pa·s范围内时,缓蚀效率随油粘度的增加而增加。这种增加是由于在更高的粘度下,管壁上形成了更稳定的油膜。当刚体速度在0.5 ~ 1m /s范围内时,由于流体速度较小,对管壁油膜的侵蚀作用相对较小,缓蚀效率在较宽范围内保持稳定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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