Corrosion mechanisms of candidate structural materials for supercritical water-cooled reactor
Received date: 11 Nov 2008
Accepted date: 05 Jan 2009
Published date: 05 Jun 2009
Copyright
Nickel-based alloys, austenitic stainless steel, ferritic/martensitic heat-resistant steels, and oxide dispersion strengthened steel are presently considered to be the candidate structural or fuel-cladding materials for supercritical water-cooled reactor (SCWR), one of the promising generation IV reactor for large-scale electric power production. However, corrosion and stress corrosion cracking of these candidate alloys still remain to be a major problem in the selection of nuclear fuel cladding and other structural materials, such as water rod. Survey of literature and experimental results reveal that the general corrosion mechanism of those candidate materials exhibits quite complicated mechanism in high-temperature and high-pressure supercritical water. Formation of a stable protective oxide film is the key to the best corrosion-resistant alloys. This paper focuses on the mechanism of corrosion oxide film breakdown for SCWR candidate materials.
Lefu ZHANG , Fawen ZHU , Rui TANG . Corrosion mechanisms of candidate structural materials for supercritical water-cooled reactor[J]. Frontiers in Energy, 0 , 3(2) : 233 -240 . DOI: 10.1007/s11708-009-0024-y
1 |
Was G S, Ampornrat P, Gupta G,
|
2 |
Ampornrat P, Was G S. Oxidation of ferritic-martensitic alloys T91, HCM12A and HT-9 in supercritical water. Journal of Nuclear Materials, 2007, 371(1-3): 1-17
|
3 |
Tan L, Ren X, Sridharan K,
|
4 |
Cho H S, Kimura A. Corrosion resistance of high-Cr oxide dispersion strengthened ferritic steels in super-critical pressurized water. Journal of Nuclear Materials, 2007, 367-370 (2): 1180-1184
|
5 |
Motta A T, Yilmazbayhan A, da Silva M J G,
|
6 |
The International Association for the Properties of Water and Steam. Release on the static dielectric constant of ordinary water substance for temperatures from 238 K to 873 K and pressures up to 1000 MPa. 1997, http://www.iapws.org/relguide/dielec.pdf
|
7 |
Saunders S R J, Monteiro M, Rizzo F. The oxidation behaviour of metals and alloys at high temperatures in atmospheres containing water vapour: A review. Progress in Materials Science, 2008, 53(5): 775-837
|
8 |
Halvarsson M, Tang J E, Asteman H,
|
9 |
Opila E J. Volatility of common protective oxides in high-temperature water vapor: current understanding and unanswered questions. Mater Sci Forum, 2004, 461-464: 765-774
|
10 |
Stellwag B. The mechanism of oxide film formation on austenitic stainless steels in high temperature water. Corrosion Science, 1998, 40(2-3): 337-370
|
11 |
Chen Yun, Sridharan K, Allen T. Corrosion behavior of ferritic-martensitic steel T91 in supercritical water. Corrosion Science, 2006, 48(9): 2843-2854
|
12 |
Hemmi Y, Ichikawa N, Saito N,
|
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