Multi layered Surface Oxides within Crevices of Type 316L Stainless Steels in High-Temperature Pure Water

被引:12
作者
Soma, Y. [1 ]
Kato, C. [1 ]
Yamamoto, M. [1 ]
机构
[1] Japan Atom Energy Agcy, Res Grp Corros Resistant Mat, Tokai, Ibaraki 3191195, Japan
关键词
corrosion; crevice; high-temperature water; oxidation; stainless steel; surface oxide layer; transmission electron microscopy; 288-DEGREES-C WATER; THERMODYNAMIC PROPERTIES; CORROSION; FILMS; HYDROGEN; CRACKING; ALLOYS; OXYGEN;
D O I
10.5006/1106
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Surface oxide layers were formed within crevices of Type 316L (EMS S31603) stainless steels in pure water at 288 degrees C and 8 MPa. Cross-sectional structures of the surface oxides were analyzed using transmission electron microscopy. In the condition of dissolved oxygen concentration of 2 ppm, the properties of the surface oxide layer changed with position and dual- or triplex-layered oxides were formed at a certain distance from the crevice mouth. The multilayered oxides were composed of Fe-based oxide in the core and a high-Cr content in the outer layer, which had not been observed on a boldly exposed surface. On the contrary, in deaerated conditions, the surface oxide layers were composed of a magnetite (Fe3O4)-based outer and a Cr-enriched inner oxide layer, regardless of the crevice position. Electrochemical condition within the crevice was identified by using a E-pH diagram. It was suggested that, at 400 mu m distance from the crevice mouth, the potential lowered at the early stage of exposure, and then shifted to the noble direction with a decrement of pH. Consequently, even within a narrow crevice with a gap size of a few mu m, the uniqueness of the crevice electrochemistry, characterized by the position and time dependence of both the potential and the pH, has been exhibited.
引用
收藏
页码:366 / 374
页数:9
相关论文
共 50 条
[31]   Imitating seasonal temperature fluctuations for the H2S corrosion of 304L and 316L austenitic stainless steels [J].
A. Davoodi ;
M. Babaiee ;
M. Pakshir .
Metals and Materials International, 2013, 19 :731-740
[32]   The Semiconductor Character of Passive Film of 304L Stainless Steel(SS), 316L SS and Nickel Alloy 800 Formed in Zinc Contained High-temperature and High-pressure Water [J].
Zhang, Shenghan ;
Lian, Jia ;
Tan, Yu .
ENVIRONMENTAL BIOTECHNOLOGY AND MATERIALS ENGINEERING, PTS 1-3, 2011, 183-185 :1847-1851
[33]   Effect of pH on corrosion behavior of 316L stainless steel in hydrogenated high temperature water [J].
Wang, Jiazhen ;
Wang, Jianqiu ;
Ming, Hongliang ;
Zhang, Zhiming ;
Han, En-Hou .
MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION, 2018, 69 (05) :580-589
[34]   Effects of surface finishes, heat treatments and printing orientations on stress corrosion cracking behavior of laser powder bed fusion 316L stainless steel in high-temperature water [J].
Que, Zaiqing ;
Riipinen, Tuomas ;
Ferreiros, Pedro ;
Goel, Sneha ;
Sipila, Konsta ;
Saario, Timo ;
Ikalainen, Tiina ;
Toivonen, Aki ;
Revuelta, Alejandro .
CORROSION SCIENCE, 2024, 233
[35]   Surface Treatment of 316L Stainless Steel by High Current Pulsed Electron Beamac [J].
Hao, Shengzhi ;
Xu, Yang ;
Li, Mincai ;
Dong, Chuang .
PRICM 7, PTS 1-3, 2010, 654-656 :1803-+
[36]   Acceleration of Environmentally Assisted Cracking Initiation of the Type 316L Steel in High-Temperature Water and Hydrogenated-Steam Vapor Environments [J].
Hojna, Anna ;
Halodova, Patricie ;
Janousek, Jaromir ;
Zimina, Mariia .
CORROSION, 2020, 76 (12) :1177-1193
[37]   The effect of low temperature heat treatment on stress corrosion crack initiation in machined 316L stainless steel in high-temperature hydrogenated water [J].
Chang, Litao ;
Mukahiwa, Kudzanai ;
Duff, Jonathan ;
Burke, M. Grace ;
Scenini, Fabio .
SCRIPTA MATERIALIA, 2021, 195
[38]   Evidence for Surface Changes During Ennoblement of Type 316L Stainless Steel: Dissolved Oxidant and Capacitance Measurements [J].
Dickinson, W. H. ;
Lewandowski, Z. ;
Geer, R. D. .
CORROSION, 2019, 75 (06) :570-579
[39]   In situ measurement of corrosion of type 316L stainless steel in 553 K pure water via the electrical resistance of a thin wire [J].
Ishida, Kazushige ;
Lister, Derek .
JOURNAL OF NUCLEAR SCIENCE AND TECHNOLOGY, 2012, 49 (11) :1078-1091
[40]   Surface Engineering of Stainless-Steel 316L and 304L Electrodes for Hydrogen Production in Alkaline and Saline Water [J].
Heiba, Asmaa R. ;
Omran, Mostafa M. ;
Abd El Hamid, Shaimaa E. ;
Allam, Nageh K. ;
El Sawy, Ehab N. .
ENERGY & FUELS, 2024, 38 (22) :22424-22439