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Reconstruction and Characterization of Galvanic Corrosion Behavior of X80 Pipeline Steel Welded Joints |
Yadong LI1,Qiang LI2,Xiao TANG1,Yan LI1( ) |
1. School of Materials Science and Engineering, China University of Petroleum (East China), Qingdao 266580, China 2. College of Pipeline and Civil Engineering, China University of Petroleum (East China), Qingdao 266580, China |
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Cite this article:
Yadong LI,Qiang LI,Xiao TANG,Yan LI. Reconstruction and Characterization of Galvanic Corrosion Behavior of X80 Pipeline Steel Welded Joints. Acta Metall Sin, 2019, 55(6): 801-810.
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Abstract Welding is widely used for pipeline connection. Composition, microstructures and properties of the welded joints are highly heterogeneous and the resultant corrosion such as galvanic corrosion between different parts is widely present and influence the long-time service and safety. In this sense, the fundamental research in the electrochemical behavior of such joint parts is required. Electrochemical corrosion behavior of simulated X80 steel welded joint, accurately modeled by wire beam electrode (WBE) technique, was investigated by classical electrochemical techniques and microelectrode array (MEA) technique. A new index, namely the galvanic corrosion intensity factor, was proposed and verified to succeed in characterizing the degree of galvanic corrosion. Results showed that microstructure of granular bainite mixed with ferrite showed the highest positive open circuit potential and lowest polarization resistance. Furthermore, the corrosion tendency of the isolated electrodes that constituted the X80 steel welded joint was found to increase in the following order: fine grain heat affected zone (FGHAZ) < intercritical heat affected zone (ICHAZ) < base metal (BM) < coarse grain heat affected zone (CGHAZ) < weld metal (WM). Due to the difference in potential and the polarization characteristics, the WM displayed the highest polarization resistance but the most positive current density. The CGHAZ possessed a lower polarization resistance and a higher positive current density. In comparison, the FGHAZ and ICHAZ performed a lower polarization resistance but higher negative current densities. The WM and CGHAZ acted as the main anode, while the FGHAZ and ICHAZ acted as the main cathode and the galvanic current polarity of some BM electrodes changed with time during the immersion test. The intensity of galvanic corrosion of simulated X80 steel welded joint plateaued with immersion time. The results revealed that WM and CGHAZ were the weak links in the simulated X80 pipeline steel welded joints during its long-term service.
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Received: 24 December 2018
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Fund: National Natural Science Foundation of China(No.41676071);Fundamental Research Funds for the Central Universities(No.18CX05021A) |
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