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INVESTIGATION ON CORROSION BASE CHARACTERISTICS AND DEEP DEHYDRATION TECHNOLOGY OF MICRO-DROPLETS IN OIL PIPELINES

机译:输油管道中微滴的腐蚀基特征及深度脱水技术研究

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Corrosion is an important cause of steel pipeline failure and oil leakage, especially local pitting corrosion in long distance crude oil pipelines. Deep dehydration is of great significance to pipeline anticorrosion, however, further experimental results show that it is very difficult to achieve deep dehydration by a single electric field. Recent studies have shown that the particle size change of dispersed phase for the emulsion with large droplets after electromagnetic synergistic treatment is more obvious than that of a single electric field. In this study, the effect of micro-droplets on corrosion of oil pipelines are revealed. The role of micro-droplets in the process of microbial corrosion and electrochemical corrosion in a strong or weak acid solution for oil pipelines was summarized. A structural model of on-line tubular electromagnetic synergistic intensification coalescing device was established. The size change of particle of the dispersed phase in emulsions was studied. Crude oil and water were used as experimental materials, and the particle size distribution of dispersed phase in emulsions was tested by the evaluation system. The results showed that mean radius, d_(10) and d_(50) of water droplets in emulsion treated by electromagnetic synergism are larger than those treated by a single electric field. Strengthening droplets coalescence by electromagnetic synergism is also effective on emulsions whose particle size of the dispersed phase is less than l00μm. The role of micro-droplets in pitting corrosion is summarized based on corrosion channels. In the process of microbial corrosion and electrochemical corrosion in strong or weak acid solution, the role of water is presented in two aspects like participating in the reaction and providing ion electron transmission media. Analogous to culture medium, micro water droplets can be called corrosion medium for pitting corrosion in long-distance crude oil pipelines. A structural model of on-line tubular electromagnetic synergistic intensification coalescing device was established, including an electric field generation device and a magnetic field excitation component with orthogonal distribution and synchronous synergy. And emulsions are treated by electric and magnetic fields while flowing through the medium channel. The particle size change of dispersed phase in emulsions with average particle size of dispersed phase less than 100μm was experimental studied. It is found that mean radius, d_(10) and d_(50) of water droplets in emulsion treated by electromagnetic synergism are larger than that by a single electric field. Therefore, electromagnetic synergism can further enhance the dehydration depth compared with a single electric field.
机译:腐蚀是钢管故障和漏油的重要原因,特别是长距离原油管道中的局部点蚀。深层脱水对于管道防腐具有重要意义,但是进一步的实验结果表明,通过单一电场很难实现深层脱水。最近的研究表明,电磁协同处理后的大液滴乳液的分散相的粒径变化比单个电场更明显。在这项研究中,揭示了微滴对输油管道腐蚀的影响。总结了微滴在石油管道的强酸溶液或弱酸溶液中的微生物腐蚀和电化学腐蚀过程中的作用。建立了在线管状电磁协同强化聚结装置的结构模型。研究了乳液中分散相的粒径变化。使用原油和水作为实验材料,并通过评估系统测试了乳液中分散相的粒径分布。结果表明,电磁协同作用乳化液中水滴的平均半径d_(10)和d_(50)大于单个电场处理的水滴的平均半径。通过电磁协同作用增强液滴的聚结作用对分散相粒径小于100μm的乳液也有效。基于腐蚀通道总结了微滴在点蚀中的作用。在强酸或弱酸溶液中的微生物腐蚀和电化学腐蚀过程中,水的作用体现在两个方面,例如参与反应和提供离子电子传输介质。类似于培养基,微水滴可称为腐蚀介质,用于长距离原油管道中的点蚀。建立了在线管状电磁协同强化聚结装置的结构模型,该装置包括电场产生装置和具有正交分布和同步协同作用的磁场激励分量。乳剂在流经介质通道时会受到电场和磁场的处理。实验研究了分散相平均粒径小于100μm的乳液中分散相的粒径变化。发现通过电磁协同作用处理的乳液中水滴的平均半径d_(10)和d_(50)大于单个电场的平均半径。因此,与单电场相比,电磁协同作用可以进一步提高脱水深度。

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  • 来源
    《》|2019年|V001T08A002.1-V001T08A002.8|共8页
  • 会议地点 Qingdao(CN)
  • 作者单位

    College of Pipeline and Civil Engineering China University of Petroleum(East China) College of Petrochemical Technology Lanzhou University of Technology Qingdao Shandong PR China Lanzhou Gansu PR China;

    College of Pipeline and Civil Engineering China University of Petroleum(East China) Qingdao Shandong PR China;

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