AC corrosion behavior and the effect of stone-hard-soil on corrosion process in the earth alkaline rich environment

Engineering Failure Analysis - Tập 135 - Trang 106112 - 2022
Yi Liang1, Yanxia Du1, Le Chen1, Nianpei Tian1, Lei Zhang2, Lijie Qiao2
1University of Science & Technology Beijing, Beijing, 100083, PR China
2Corrosion and Protection Center, Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, PR China

Tài liệu tham khảo

Büchler, 2009, Investigation of alternating current corrosion of cathodically protected pipelines development of a detection method, mitigation measures, and a model for the mechanism, Corrosion, 65, 578, 10.5006/1.3319160 Büchler, 2012, Alternating current corrosion of cathodically protected pipelines: Discussion of the involved processes and their consequences on the critical interference values, Material and Corrosion, 63, 1181, 10.1002/maco.201206690 Nielsen, 2005, Investigating AC and DC stray current corrosion, CeoCor Ormellese, 2015, AC corrosion of cathodically protected buried pipelines: critical interference values and protection criteria, NACE, 5753 Wang, 2017, Effect of alternating current on the cathodic protection and interface structure of X80 steel, Materials, 10, 851, 10.3390/ma10080851 Wakelin, 2004, Investigation and mitigation of AC corrosion on 300 mm diameter natural gas pipeline, NACE, 04205 Wakelin, 1998, AC Corrosion - Case Histories, Test Procedures, & Mitigation, NACE, 565 Floyd, 2004, Testing and mitigation of AC corrosion on 8” line: A field Study, NACE, 04210 Nielsen, 2006, A field study of line currents and corrosion rate measurements in a pipeline critically interfered with AC and DC stray currents, CEOCOR Linhardt, 2006, AC corrosion results from laboratory investigations and from a failure analysis, NACE, 06160 Lindemuth, 2018, AC corrosion control: when too Much cathodic protection might just be a bad thing!, NACE, 11271 Kim, 2006, Electrochemical studies on the alternating current corrosion of mild steel under cathodic protection condition in marine environments, Electrochimica Acta, 51, 5259, 10.1016/j.electacta.2006.01.054 Goidanich, 2010, AC corrosion. Part 2: Parameters influencing corrosion rate, Corrosion Science, 52, 916, 10.1016/j.corsci.2009.11.012 Jiang, 2014, New findings on the factors accelerating AC corrosion of buried pipeline, Corrosion Sci., 81, 1, 10.1016/j.corsci.2013.09.005 Lipari, 2017 Wakelin, 2004, Investigation and mitigation of AC corroison on a 300 mm diameter natural gas pipeline, NACE, 04205 P. Linhardt, G. Ball, AC corrosion: results from laboratory investigations and from a failure analysis, NACE, 2006: 06160. A. J. Olesen, AC corrosion of cathodically protected pipelines, (2018). Finneran, 2018, Field examination of AC accelerated corrosion featured in monitored locations, NACE, 10911 Wakelin, 1998, AC corrosion-case histories, test procedures & mitigation, NACE, 565 Hanson, 2004, AC corrosion on a pipeline located in a HVAC utility corridor, NACE, 04209 L.V. Nielsen, P. Cohn, AC corrosion and electrical equivalent diagrams, CEOCOR, 2000. Yin, 1982, Corrosion of buried steel structures under the action of power frequency electric field, J. Chinese Soc. Corrosion Protection, 2, 33 NACE SP21424, Alternating current corrosion on cathodically protected pipelines: risk assessment, mitigation, and monitoring, 2018. Olesen, 2018, AC corrosion and the pourbaix diagram, CeoCor Nielsen, 2011, Considerations on measurements and measurement techniques under AC interference conditions, CEOCOR Nielsen, 2004, On-site measurements of AC induced corrosion: effect of AC and DC parameters, CeoCor F. Stalder, AC corrosion on cathodically protected pipelines: Guidelines for risk assessment and mitigation measures CeoCor 2001. Nielsen, 2005, Role of alkalization in AC induced corrosion of pipelines and concequences hereof in relation to CP requirements, NACE Olesen, 2018, Investigation of stone-hard-soil formation from AC forrosion of cathodically protected pipeline, Material Corrossion, 1 Olesen, 2017, Effect of chemical environment and PH on AC corrosion of cathodically protected structures, NACE Prinz, 1992, AC-induced corrosion on cathodically protected pipelines, Proc UK Corrosion'92 Heim, 1993, Investigation of corrosion of cathodically protected steel subjected to alternating currents, 3 R Int., 32 Ghanbari, 2017, The influence of CaCO3 scale formation on AC corrosion rates of pipeline steel under cathodic protection, Corrosion, 74, 551, 10.5006/2637 ASTM G1-03, Standard for preparing, cleaning, and evaluating corrosion test specimens. Hosokawa, 2002, New CP criteria for elimination of the risks of AC corrosion and overprotection on cathodically protected pipelines, NACE, 02111 Hosokawa, 2004, New CP maintenance concept for buried steel pipelines- current density- based CP criteria, and on-line surveillance system for CP rectifiers, NACE, 0407 Alcántara, 2016, An attempt to classify the morphologies presented by different rust phases formed during the exposure of carbon steel to marine atmospheres, Materials Characterization, 118, 65, 10.1016/j.matchar.2016.04.027 Marcus, 1992, The anodic dissolution and passivation of Ni-Cr-Fe alloys studied by ESCA, Corrosion Sci., 33, 805, 10.1016/0010-938X(92)90113-H Biwer, 1986, Electron spectroscopic study of the iron surface and its interaction with oxygen and nitrogen, J. Electron Spectroscopy Related Phenomena, 40, 339, 10.1016/0368-2048(86)80044-5 Brenna, 2011 Olesen, 2018 Um, 2014, Precipitation behavior of Ca(OH)2, Mg(OH)2, and Mn(OH)2 from CaCl2, MgCl2, and MnCl2 in NaOH-H2O solutions and study of lithium recovery from seawater via two-stage precipitation process, Hydrometallurgy, 146, 142, 10.1016/j.hydromet.2014.04.006 Neal, 1984, Calcium and magnesium hydroxide precipitation from alkaline groundwaters in Oman, and their significance to the process of serpentinization, Mineral. Mag., 48, 237, 10.1180/minmag.1984.048.347.07 Salleh, 2015, Enhanced hydrogen evolution on Mg(OH)2 covered Mg surfaces, Electrochim. Acta, 161, 144, 10.1016/j.electacta.2015.02.079 Yang, 2016, A study on magnesium corrosion by real-time imaging and electrochemical methods: relationship between local processes and hydrogen evolution, Electrochim. Acta, 198, 174, 10.1016/j.electacta.2016.03.043 Maltseva, 2019, Effect of pH on Mg(OH)2 Film Evolution on Corroding Mg by In Situ Kinetic Raman Mapping (KRM), Corrosion Science, 153, 272, 10.1016/j.corsci.2019.03.024 Momenian, 2013, Sonochemical synthesis and photocatalytic properties of metal hydroxide and carbonate (M:Mg, Ca, Sr or Ba) nanoparticles, J. Clust. Sci., 24, 1031, 10.1007/s10876-013-0595-y Cherepy, 1998, Ultrafast studies of photoexcited electron dynamics in γ- and α-Fe2O3 semiconductor nanoparticles, J. Phys. Chem. B, 102, 770, 10.1021/jp973149e Zhang, 2014, Influence of semiconductor/insulator/semiconductor structure on the photo-catalytic activity of Fe3O4/SiO2/polythiophene core/shell submicron composite, Appl. Catal. B-Environ., 150-151, 472, 10.1016/j.apcatb.2013.12.049 Génin, 2001, Structure and stability of the Fe (II)–Fe (III) green rust “fougerite” mineral and its potential for reducing pollutants in soil solutions, Applied Geochemistry, 16, 559, 10.1016/S0883-2927(00)00043-3 ISO 18086, Corrosion of metals and alloys-Determination of AC corrosion-Protection criteria, 2019. D.Z. Tang, Y.X. Du, M.X. Lu, et al, Study on CP criteria for mild steel in the presence of AC, NACE, 2014: 3802. Z.T Jiang, Y.X Du, M.X. Liu, et al, Case study of AC interference on 20 km buried pipeline field test and mitigation design, NACE, 2013: 2424.