| Literature DB >> 28773078 |
Zhong Li1, Caiyu Li2, Hongchang Qian3, Jun Li4, Liang Huang5, Cuiwei Du6.
Abstract
The corrosion behavior of X80Entities:
Keywords: X80 steel; alternating current interference; coating defect; corrosion
Year: 2017 PMID: 28773078 PMCID: PMC5551763 DOI: 10.3390/ma10070720
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1The microstructure of X80 pipeline steel.
Chemical compositions of the simulated solution (g·L−1).
| pH | NaCl | Na2SO4 | NaHCO3 | KNO3 | MgCl2·6H2O | CaCl2 |
|---|---|---|---|---|---|---|
| 9.4 | 3.4945 | 1.2603 | 0.146 | 0.2152 | 0.3383 | 0.1221 |
Figure 2The experimental set-up configuration of electrochemical test.
Figure 3The open circuit potentials of WE1 and WE2 with different area ratios under alternating current (AC) interference.
Figure 4The variation of AC currents on the specimens of different area ratios with immersion time: (1) area ratio of 1:1; (2) area ratio of 1:2; (3) area ratio of 1:3.
Figure 5The variation of direct current (DC) under different area ratios with immersion time: (1) area ratio of 1:1; (2) area ratio of 1:2; (3) area ratio of 1:3.
Figure 6Corrosion morphology of WE1 (n) and WE2 (n’) at different area ratio: (a) 1:1; (b) 1:2; (c) 1:3 under AC interference for seven days after removal of corrosion products.
Figure 7Corrosion rates of WE1 and WE2 with different area ratios under AC interference.
Figure 8SEM and energy dispersive spectroscopy (EDS) analysis of corrosion products of WE2 with different area ratios of WE2: (a) 1:1; (b) 1:2; (c) 1:3 under AC interference.