多相流管道腐蚀研究进展
Research Progress of Corrosion in Multiphase Pipeline
DOI: 10.12677/MS.2023.136057, PDF,    科研立项经费支持
作者: 付鑫鑫, 王文龙:滨州学院化工与安全学院,山东 滨州;赵 伟:莒南中油一达燃气有限公司,山东 临沂
关键词: 加速腐蚀冲刷腐蚀冲蚀损伤 Accelerated Corrosion Flow Erosion Erosion Damage
摘要: 由于多相流动的复杂性,工业多相流管道系统经常出现局部腐蚀问题,进而造成严重的经济损失和环境污染。本文通过调研多相流管道腐蚀的相关研究,总结和分析了多相流管道中的流动加速腐蚀、泡状流中气泡冲刷腐蚀、气液固多相流冲蚀等多种腐蚀形式的研究进展,指出了当前研究存在的问题,提出了未来研究的发展方向。总结成果可为深入认识和把握多相流管道腐蚀、安全高效运行管道系统提供借鉴。
Abstract: Due to the complexity of multiphase flow, local corrosion often occurs in in-dustrial multiphase flow pipeline systems, which leads to serious economic losses and environ-mental pollution. This paper summarizes and analyzes the research progress of various corrosion forms such as flow accelerated corrosion in multiphase flow pipelines, erosion caused by bubble in bubble flow, erosion in gas-liquid-solid multiphase flow and so on. Meanwhile, the existing problems in current research on corrosion of multiphase pipelines were pointed out, and the development direction in future was also clarified. In general, the research results could provide reference for the further understanding and grasping of the corrosion of multiphase pipelines, as well as the safe and efficient operation of pipeline system.
文章引用:付鑫鑫, 王文龙, 赵伟. 多相流管道腐蚀研究进展[J]. 材料科学, 2023, 13(6): 536-541. https://doi.org/10.12677/MS.2023.136057

参考文献

[1] 姜晓霞, 李诗卓, 李曙. 金属的腐蚀磨蚀[M]. 北京: 化学工业出版社, 2003: 93-109.
[2] 严卓奇. 流量加速腐蚀对核电站二回路材料影响及对策的研究[D]: [硕士学位论文]. 上海: 上海交通大学, 2007.
[3] 刘忠, 刘春波, 郑玉贵. 碳钢在单相流中流动加速腐蚀的数值模拟[J]. 核动力工程, 2009, 20(5): 50-52.
[4] 茅俊杰. 气液两相流管道冲刷腐蚀的研究[D]: [硕士学位论文]. 济南: 山东大学, 2012.
[5] 马光耀, 陈菁. 余热锅炉受热面管道内壁的氧化膜腐蚀[J]. 材料科学与工程学报, 2016, 34(6): 1015-1019.
[6] 李虹锐, 甘玮, 崔国光, 等. 全保护加氧处理技术在超超临界机组中的实用分析[J]. 湖北电力, 2021, 45(3): 103-105.
[7] 刘元亮, 刘少胡, 马卫国. 高温高压气井连续管在CO2环境中的电化学腐蚀数值模拟[J]. 高压物理学报, 2020, 34(5): 85-92.
[8] Lotz, U. and Postlethwaite, J. (1990) Erosion-Corrosion in Disturbed Two Phase Liquid/Particle Flow. Corrosion Science, 30, 95-106. [Google Scholar] [CrossRef
[9] Ma, K.T., Ferng, Y.M. and Ma, Y.P. (1998) Numerically In-vestigating the Influence of Local Flow Behaviors on Flow-Accelerated Corrosion Using Two-Fluid Equations. Nuclear Technology, 123, 90-102. [Google Scholar] [CrossRef
[10] El-Gammal, M., Mazhar, H., Cotton, J.S., et al. (2010) The Hydrody-namic Effects of Single-Phase Flow on Flow Accelerated Corrosion in a 90-Degree Elbow. Nuclear Engineering & De-sign, 240, 1589-1598. [Google Scholar] [CrossRef
[11] 张凌翔, 周克毅, 徐奇, 等. 90˚弯管流动加速腐蚀的实验和数值模拟[J]. 化工学报, 2018, 69(12): 5173-5181.
[12] 陈兵, 房启超, 任科洋. 基于试验的CO2输送弯管电化学腐蚀模拟[J]. 腐蚀与防护, 2022, 43(1): 56-61.
[13] 彭翊, 韩睿璇, 陈耀东. 孔板管道下游流动加速腐蚀速率数值模拟研究[J]. 原子能科学技术, 2015, 49(1): 77-82.
[14] 孙海生, 郝开开, 常春梅. 管道内壁凸起诱发的流体加速腐蚀模拟计算[J]. 石油化工设备, 2014, 43(4): 36-39.
[15] Kim, D.J., Kim, S.W., Lee, J.Y., et al. (2021) Flow-Accelerated Corrosion Assessment for SA106 and SA335 Pipes with Elbows and Welds. Nuclear Engineering and Technology, 53, 3003-3011. [Google Scholar] [CrossRef
[16] 肖卓楠. 温度对碳钢管道流动加速腐蚀失效影响的数值模拟[J]. 材料保护, 2020, 53(3): 35-40.
[17] Madasamy, P., Mukunthan, M., Chandramohan, P., et al. (2021) Influence of Bend Geometry on Flow Accelerated Corrosion under Neutral pH Conditions. Engineering Failure Analysis, 122, 105-127. [Google Scholar] [CrossRef
[18] Davidson, J.F. and Harrison, D. (1963) Fluidized Particles. Cambridge University Press, New York.
[19] Astarita, G. and Apuzzo, G. (1965) Motion of Gas Bubbles in Non-Newtonian Liquids. AIChE Journal, 11, 815-820. [Google Scholar] [CrossRef
[20] Knapp, R.T., Daily, J.W. and Hammitt, F.G. (1970) Cavitation. McGraw-Hill, New York.
[21] Ball, G.J., Howell, B.P., Leighton, T.G., et al. (2000) Shock-Induced Collapse of a Cy-lindrical Air Cavity in Water: A Free-Lagrange Simulation. Shock Waves, 10, 265-276. [Google Scholar] [CrossRef
[22] Adechy, D. and Issa, R.I. (2004) Modelling of Annular Flow through Pipes and T-Junctions. Computers & Fluids, 33, 289-313. [Google Scholar] [CrossRef
[23] Chen, H.S., Li, Y.J., Chen, D.R. and Wang, J.D. (2007) Ex-perimental and Numerical Investigations on Development of Cavitation Erosion Pits on Solid Surface. Tribology Letters, 26, 153-159. [Google Scholar] [CrossRef
[24] Fortes-Patella, R., Challier, G., Reboud, J.L., et al. (2013) Energy Balance in Cavitation Erosion: From Bubble Collapse to Indentation of Material Surface. Journal of Fluids Engineering, 135, Article ID: 011303. [Google Scholar] [CrossRef
[25] Sreedhar, B.K., Albert, S.K. and Pandit, A.B. (2017) Cavitation Damage: Theory and Measurements—A Review. Wear, 372-373, 177-196. [Google Scholar] [CrossRef
[26] Bozzini, B., Ricotti, M.E., Boniardi, M., et al. (2003) Evaluation of Erosion-Corrosion in Multiphase Flow via CFD and Experimental Analysis. Wear, 255, 237-245. [Google Scholar] [CrossRef
[27] Vieira, R.E., Kesana, N.R., Mclaury, B.S., et al. (2012) Sand Erosion in Multiphase Flow for Low-Liquid Loading and Annular Conditions. ASME 2012 International Mechanical Engineering Congress and Exposition, Houston, 9-15 November 2012, 2445-2454. [Google Scholar] [CrossRef
[28] Kesana, N.R., Throneberry, J.M., McLaury, B.S., et al. (2014) Effect of Particle Size and Liquid Viscosity on Erosion in Annular and Slug Flow. Journal of Energy Resources Tech-nology, 136, Article ID: 012901. [Google Scholar] [CrossRef
[29] Parsi, M., Vieira, R.E., Kesana, N., et al. (2015) Ultrasonic Measurements of Sand Particle Erosion in Gas Dominant Multiphase Churn Flow in Vertical Pipes. Wear: An International Journal on the Science and Technology of Friction, Lubrication and Wear, 328-329, 401-413. [Google Scholar] [CrossRef
[30] Bitter, J.G.A. (1963) A Study of Erosion Phenomena: Part I. Wear, 6, 5-21. [Google Scholar] [CrossRef
[31] Bitter, J.G.A. (1963) A Study of Erosion Phenomena: Part II. Wear, 6, 169-190. [Google Scholar] [CrossRef
[32] Salama, M.M. (2000) An Alternative to API 14E Erosional Velocity Limits for Sand-Laden Fluids. Journal of Energy Resources Technology, 122, 71-77. [Google Scholar] [CrossRef
[33] Oka, Y.I., Okamura, K. and Yoshida, T. (2005) Practical Estimation of Ero-sion Damage Caused by Solid Particle Impact: Part 1: Effects of Impact Parameters on a Predictive Equation. Wear, 259, 95-101. [Google Scholar] [CrossRef
[34] Oka, Y.I. and Yoshida, T. (2005) Practical Estimation of Erosion Damage Caused by Solid Particle Impact: Part 2: Mechanical Properties of Materials Directly Associated with Erosion Damage. Wear, 259, 102-109. [Google Scholar] [CrossRef
[35] Chen, X., Mclaury, B.S. and Shirazi, S.A. (2006) A Comprehen-sive Procedure to Estimate Erosion in Elbows for Gas/Liquid/Sand Multiphase Flow. Journal of Energy Resources Technology, 128, 70-78. [Google Scholar] [CrossRef
[36] Lu, Y. and Agrawal, M. (2014) A Computational-Fluid-Dynamics-Based Eulerian-Granular Approach for Characterization of Sand Erosion in Multiphase-Flow Systems. SPE Journal, 19, 586-597. [Google Scholar] [CrossRef
[37] (1981) API R P. 14E. Recommended Practice for Design and Installation of Offshore Production Platform Piping Systems. American Petroleum Institute Recommended Practice RP, 22.
[38] McLaury, B.S. and Shirazi, S.A. (2000) An Alternate Method to API RP 14E for Predicting Solids Erosion in Multiphase Flow. Journal of Energy Resources Technology, 122, 115-122. [Google Scholar] [CrossRef
[39] Bourgoyne Jr., A.T. (1989) Experimental Study of Erosion in Diverter Systems Due to Sand Production. SPE/IADC Drilling Conference, New Orleans, February 1989, SPE-18716-MS. [Google Scholar] [CrossRef
[40] Det Norske Vertitas (2007) Recommended Practice RP O501 Erosive Wear in Piping Systems. Technical Report, DNV RP O501-Revision 4.2, i-iii, 1-39.