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Study of Phase Wetting in Three-Phase Oil-Water-Gas Horizontal Pipe Flow -Recommendations for Corrosion Risk Assessment

机译:三相油水气水平管流相润湿研究-腐蚀风险评估建议

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Accurate prediction of the phase wetting regime of internal pipe walls of oil production lines is of paramount importance when performing internal corrosion assessments. Therefore, corrosion control costs can be reduced as mitigation efforts can be directly aimed at the most critical pipeline areas where water is most likely to segregate and wet the pipe wall. Surface wetting regime (e.g., oil wet or water wet) depends on several factors, such as flow rates and physicochemical properties of the transported fluids, pipe diameter and inclination, and also pipe surface wettability. This work studies phase wetting regimes in three-phase oil-water-gas horizontal flow in a 0.1 m diameter carbon steel pipe in a flow loop, for flow conditions where liquid-gas slug flow pattern is predominant. Phase wetting and water layer thickness (when water wet) were measured using high frequency impedance probes flush-mounted at the internal pipe wall. Different mechanisms of water wetting are inferred from the obtained data for the bottom and top pipe walls. Maps of phase wetting regime and water layer thickness versus operating conditions are shown for different water cuts. Experimental data is discussed and compared with predictions from a proposed three-phase hydrodynamic model. Consequently, recommendations are provided for direct internal corrosion assessment.
机译:在进行内部腐蚀评估时,准确预测石油生产线内部管道壁的相润湿状态至关重要。因此,可以减少腐蚀控制成本,因为缓解措施可以直接针对最有可能使水隔离和润湿管壁的最关键的管道区域。表面润湿方式(例如,油润湿或水润湿)取决于几个因素,例如输送流体的流速和理化特性,管道直径和倾角以及管道表面的润湿性。这项工作研究了以0.1m直径的碳钢管在流动回路中的三相油气水水平流中的相润湿方式,适用于液-气塞流型为主的流动条件。使用浸没在内管壁上的高频阻抗探针测量相润湿和水层厚度(当水润湿时)。从获得的底部和顶部管壁数据可以推断出不同的水润湿机理。显示了针对不同含水率的相润湿方式和水层厚度与操作条件的关系图。讨论了实验数据,并与提出的三相流体力学模型的预测结果进行了比较。因此,提供了直接内部腐蚀评估的建议。

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