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| Evolution of Corrosion Products Film and Corrosion Behavior of C110 Steel Under High-temperature and High-pressure O2-CO2 Atmosphere in a Simulated Drilling Fluid with High Mineral Content and High Concentration of Ca2+ |
ZHAO Mifeng1,2,3,4, HU Fangting1,2,3,4, LIU Yanming5( ), SONG Wenwen1,2,3,4, XIE Junfeng1,2,3,4, LV Xianghong5, DAI Pan5, HU Hangbo5 |
1.R&D Center for Ultra Deep Complex Reservior Exploration and Development, Korla 841000, China 2.Engineering Research Center for Ultra-deep Complex Reservoir Exploration and Development, Xinjiang Uygur Autonomous Region, Korla 841000, China 3.Xinjiang Key Laboratory of Ultra-deep Oil and Gas, Korla 841000, China 4.Oil and Gas Technology Research Institute of PetroChina Tarim Oilfield Branch, Korla 841000, China 5.College of Materials Science and Engineering, Xi'an Shiyou University, Xi'an 710065, China |
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Cite this article:
ZHAO Mifeng, HU Fangting, LIU Yanming, SONG Wenwen, XIE Junfeng, LV Xianghong, DAI Pan, HU Hangbo. Evolution of Corrosion Products Film and Corrosion Behavior of C110 Steel Under High-temperature and High-pressure O2-CO2 Atmosphere in a Simulated Drilling Fluid with High Mineral Content and High Concentration of Ca2+. Journal of Chinese Society for Corrosion and protection, 2026, 46(3): 821-832.
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Abstract By taking the service conditions of a high salinity reservoir water environment with high temperature, high pressure, high-Ca2+ concentration and O2-CO2 coexistence in a western oilfield in China into account, the evolution of corrosion products film and corrosion behavior of C110 steel in different oxygen partial pressures (0-0.4 MPa) were investigated using a high-temperature/high-pressure reactor and an electrochemical testing system. The results showed that as the oxygen partial pressure increased, the uniform corrosion rate of the steel significantly rose from 0.59 to 3.56 mm/a, with intensified localized corrosion. In pure CO2 environment, a highly resistive composite film (inner layer FeCO3 and outer layer CaCO3) with protective properties was formed, resulting in low corrosion current density. In conditions of coexisting O2-CO2, additional FeO(OH) and Fe2O3 appeared in the corrosion products. Notably, under high oxygen partial pressure (P = 0.4 MPa), the corrosion product film was composed of a top layer of porous Fe2O3, intermediate CaCO3 layer with dispersed Fe2O3 particles, and discontinuous inner layer FeCO3. This structural evolution drastically reduced the film resistance and increased the corrosion current density. Moreover, Fe2O3 promoted the precipitation of CaCO3. Under the synergistic effect of O2 and CaCO3, the protective FeCO3 film diminished, and CaCO3 exhibited both inward and outward growth patterns. Additionally, the coupling of Ca2+ and Cl- exacerbated localized corrosion. This study will provide in-depth theoretical insights into the corrosion mechanisms of C110 steel in coditions of high-salinity, high-Ca2+ concentration, and O2-CO2 coexistence etc., offering important reference for corrosion protection design in harsh production well environments.
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Received: 23 June 2025
32134.14.1005.4537.2025.195
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| Fund: Opening Project Fund of Materials Service Safety Assessment Facilities(MSAF-2023-001);the Natural Science Foundation of Shaanxi Province(2025JC-YBMS-466) |
Corresponding Authors:
LIU Yanming, E-mail: ymliu10s@alum.imr.ac.cn
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