Microstructural Understanding of Flow Accelerated Corrosion of SA106B Carbon Steel in High-Temperature Water with Different Flow Velocities

被引:13
作者
Hu, Ying [1 ]
Xin, Long [1 ]
Hong, Chang [1 ]
Han, Yongming [1 ]
Lu, Yonghao [1 ]
机构
[1] Univ Sci & Technol Beijing, Natl Ctr Mat Serv Safety, Beijing 100083, Peoples R China
关键词
flow-accelerated corrosion; microstructure; localized corrosion; flow velocity; carbon steel; FERRITE-PEARLITE STEEL; LOW-ALLOY STEEL; CEMENTITE SPHEROIDIZATION; MECHANICAL-PROPERTIES; EROSION-CORROSION; CO2; CORROSION; BEHAVIOR; STRESS; PIPE; INITIATION;
D O I
10.3390/ma16113981
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
All light or heavy water reactors fabricated with carbon steels suffer from flow-accelerated corrosion (FAC). The FAC degradation of SA106B with different flow velocities was investigated in terms of microstructure. As flow velocity increased, the major corrosion type changed from general corrosion to localized corrosion. Severe localized corrosion occurred in the pearlite zone, which can be the prior location for generating pits. After normalizing, the improvement in microstructure homogeneity reduced the oxidation kinetics and lowered cracking sensitivity, causing a decrease in FAC rates of 33.28%, 22.47%, 22.15%, and 17.53% at flow velocity of 0 m/s, 1.63 m/s, 2.99 m/s, and 4.34 m/s, respectively. Additionally, localized corrosion tendency was decreased by reducing the micro-galvanic effect and tensile stresses in oxide film. The maximum localized corrosion rate decreased by 21.7%, 13.5%, 13.8%, and 25.4% at flow velocity of 0 m/s, 1.63 m/s, 2.99 m/s, and 4.34 m/s, respectively.
引用
收藏
页数:20
相关论文
共 46 条
[1]   Sour corrosion performance and sensitivity to hydrogen induced cracking in the X70 pipeline steel: Effect of microstructural variation and pearlite percentage [J].
Anijdan, S. H. Mousavi ;
Sabzi, M. ;
Park, N. ;
Lee, Unhae .
INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING, 2022, 199
[2]  
[Anonymous], NIST CHEM WEBBOOK
[3]  
Bignold G.J., 1981, WATER CHEM NUCL REAC
[4]   Modelling of erosion-corrosion in practical geometries [J].
Davis, Cian ;
Frawley, Patrick .
CORROSION SCIENCE, 2009, 51 (04) :769-775
[5]   Correlation of flow accelerated corrosion rate with iron solubility [J].
Fujiwara, K. ;
Domae, M. ;
Yoneda, K. ;
Inada, F. ;
Ohira, T. ;
Hisamune, K. .
NUCLEAR ENGINEERING AND DESIGN, 2011, 241 (11) :4482-4486
[6]   Mechanical properties of CO2 corrosion product scales and their relationship to corrosion rates [J].
Gao, Kewei ;
Yu, Fang ;
Pang, Xiaolu ;
Zhang, Guoan ;
Qiao, Lijie ;
Chu, Wuyang ;
Lu, Minxu .
CORROSION SCIENCE, 2008, 50 (10) :2796-2803
[7]  
Gipon E., 2020, European Federation of Corrosion (EFC) Series, P213
[8]  
Gray L.G. S., 1990, Effect of pH and temperature on the mechanism of carbon steel corrosion by aqueous carbon dioxide
[9]   Comparative study on corrosion behaviors of ferrite-pearlite steel with dual-phase steel in the simulated bottom plate environment of cargo oil tanks [J].
Hao, Xuehui ;
Zhao, Xingchuan ;
Chen, Hui ;
Huang, Baoxu ;
Ma, Jie ;
Wang, Changzheng ;
Yang, Yuansheng .
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2021, 12 :399-411
[10]  
Hwang K., 2022, WORLD J NUCL SCI TEC, V12, P1, DOI [10.4236/wjnst.2022.121001, DOI 10.4236/WJNST.2022.121001]