Electrochemical analysis of the microbiologically influenced corrosion of steels by sulfate-reducing bacteria

被引:22
作者
Moon, Kyung-Man
Cho, Hwang-Rae
Lee, Myung-Hoon
Shin, Sung-Kyu
Koh, Sung-Cheol [1 ]
机构
[1] Korea Maritime Univ, Div Civil & Environm Engn, Pusan 606791, South Korea
[2] Korea Maritime Univ, Dept Marine Syst Engn, Pusan 606791, South Korea
[3] Korea Maritime Univ, Dept Mat Engn, Pusan 606791, South Korea
关键词
microbiologically influenced corrosion; corrosion potential; sulfate-reducing bacteria; biofilm; pitting corrosion;
D O I
10.1007/BF03027807
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The differences between the general corrosion and microbiologically influenced corrosion (MIC) of steels were investigated in terms of its electrochemical behavior and surface phenomena. The corrosion potential of steels in the absence of SRB (sulfate-reducing bacteria) shifted to a negative value with the immersion time. However, the potential of the presence of SRB shifted to a positive value after 30 days' incubation, indicating the growth of SRB biofilms on the test metal specimens and the formation of corrosion products. In addition, the color of a medium inoculated with SRB changed from gray to black. The change in color appeared to be caused by the formation of pyrites (FeS) as a corrosion product, while no significant change in color was observed in a medium without SRB inoculation. Moreover, corrosion rates of various steels tested for MIC were higher compared to those of steels in the absence of SRB. In particular, the corrosion current density of TMCP steels in the presence of SRB was larger than that of other steels. Pitting corrosion was also observed at the surface of all steels in the SRB-inoculated medium. The pitting corrosion likely occurred due to SRB that was associated with the increasing corrosion rates through increasing cathodic reactions, which caused a reduction of sulfate to sulfide as well as the formation of an oxygen concentration cell.
引用
收藏
页码:211 / 216
页数:6
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