Understanding the electrochemical processes at the interface of cathodically protected steel pipeline and soil during anodic transients

被引:2
|
作者
Zhang, Yafei [1 ]
Hinton, Bruce [1 ]
Varela, Facundo Bob [2 ]
Forsyth, Maria [1 ]
Tan, Mike Yongjun [2 ]
机构
[1] Deakin Univ, Inst Frontier Mat, Burwood, Australia
[2] Deakin Univ, Inst Frontier Mat, Waurn Ponds, Vic 3216, Australia
关键词
Steel pipeline; soil; cathodic protection; stray current corrosion; anodic transient; 3-PHASE BOUNDARY ZONE; CORROSION; IMPEDANCE; MOISTURE; CRITERIA;
D O I
10.1080/1478422X.2018.1509812
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The steel/soil interface on cathodically protected pipeline steel has been investigated using electrochemical polarisation measurements and electrochemical impedance spectroscopy, to add more insights into the electrochemical processes occurring at the interface. A critical electrode potential (CEP) was found that divides the steel corrosion reaction kinetics into two regions. When the electrode potential is below this critical value, the steel surface has a large impedance value, indicating much slower corrosion kinetics than when the electrode potential is more positive than the CEP value. This critical value is found to be related to pitting potential determined by potentiodynamic polarisation measurements. The CEP could be affected by the CP condition and environmental, including the CP potential and the soil moisture content. At a more negative CP potential, the CEP was found to be nobler; while at the same CP potential but in the soil with a higher moisture content, the CEP became more negative. The impact of the CP potential and soil moisture level on the CEP value is explained by local soil pH effects on steel passivity.
引用
收藏
页码:517 / 523
页数:7
相关论文
共 50 条
  • [31] Electrochemical processes on steel tube outer surfaces of cathode protected underground gas pipelines
    P. S. Orlov
    Surface Engineering and Applied Electrochemistry, 2008, 44 : 23 - 28
  • [32] Effect of the Size of Soil Particles on the Electrochemical Corrosion Behavior of Pipeline Steel in Saline Solutions
    B. He
    P. J. Han
    C. H. Lu
    X. H. Bai
    Materials Science, 2016, 51 : 890 - 902
  • [33] Effect of the Size of Soil Particles on the Electrochemical Corrosion Behavior of Pipeline Steel in Saline Solutions
    He, B.
    Han, P. J.
    Lu, C. H.
    Bai, X. H.
    MATERIALS SCIENCE, 2016, 51 (06) : 890 - 902
  • [34] Understanding and detecting early stages of SCC initiation in sensitized stainless steel by means of electrochemical potential transients
    Bidhar, S. K.
    Watanabe, Y.
    Tsukui, H.
    Uchimoto, T.
    PROGRESSES IN FRACTURE AND STRENGTH OF MATERIALS AND STRUCTURES, 1-4, 2007, 353-358 : 2387 - +
  • [35] SOIL-PIPELINE INTERACTION THROUGH A FRICTIONAL INTERFACE DURING EARTHQUAKES.
    Akiyoshi, T.
    Fuchida, K.
    Soil Dynamics and Earthquake Engineering, 1984, 3 (01) : 27 - 34
  • [36] Analysis of hydraulic transients during pipeline filling processes with air valves in large-scale installations
    Romero, Guillermo
    Fuertes-Miquel, Vicente S.
    Coronado-Hernandez, Oscar E.
    Ponz-Carcelen, Roman
    Biel-Sanchis, Francisco
    URBAN WATER JOURNAL, 2020, 17 (06) : 568 - 575
  • [37] ANODIC POLARIZATION STUDY OF MILD-STEEL IN NACL SOLUTION DURING ELECTROCHEMICAL MACHINING
    MAO, KW
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1973, 120 (08) : 1056 - 1060
  • [38] Influence of gasoline hydrocarbons on electrochemical processes during steel corrosion in ethanol
    Lichusina, Svetlana
    Valsiunas, Ignas
    Asadauskas, Svajus
    CHEMIJA, 2015, 26 (03): : 184 - 192
  • [39] Electrochemical Monitoring of Steel/Soil Interfaces during Wet/Dry Cycles
    Akkouche, R.
    Remazeilles, C.
    Barbalat, M.
    Sabot, R.
    Jeannin, M.
    Refait, Ph.
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2017, 164 (12) : C626 - C634
  • [40] MECHANISM OF NUCLEATION AND ELECTROCHEMICAL TRANSPORT PROCESSES IN OXIDE FORMATION DURING ANODIC-OXIDATION OF ALUMINUM
    CSOKAN, P
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1978, 125 (03) : C132 - C132