TY - JOUR
T1 - Crystal structure of oxide film of NZ2 alloy corroded in different mediums
AU - Zhang, Haixia
AU - Li, Zhongkui
AU - Zhang, Jianjun
AU - Zheng, Xin
AU - Fruchart, Daniel
AU - El Hlil, Kébir
AU - Sun, Jun
AU - Zhou, Lian
PY - 2008/6
Y1 - 2008/6
N2 - The crystal structure transformation of oxide film during corrosion and the effect of the transformation on the corrosion resistance of NZ2 were investigated. The crystal structure of oxide film of NZ2, corroded by static autoclave test in 360°C lithiated water and 400°C steam, was analyzed by Raman spectroscopy. The results show that the oxide film of NZ2 consists mostly of m-ZrO2, including a certain quantity of distorted t-ZrO2 which is stabilized by the compressive stress. With the prolongation of corrosion time, the metal/oxide interface is moving forward. When the compressive stress in the oxide formed previously is not enough to stabilize t-ZrO2, t-ZrO2 will transform to m-ZrO2, and the average content of t-ZrO2 in oxide film decreases. From oxide/metal interface to the surface of oxide film, the content of t-ZrO2 reduces gradually. When NZ2 is corroded in 360°C lithiated water, the transformation rate from t-ZrO2 to m-ZrO2 in oxide film is much lower than that in 400°C steam. The transformation from t-ZrO2 to m-ZrO2 decides the corrosion resistance of NZ2. The higher the transformation rate is, the lower t-ZrO2 content in oxide film is, and the higher corrosion rate of NZ2.
AB - The crystal structure transformation of oxide film during corrosion and the effect of the transformation on the corrosion resistance of NZ2 were investigated. The crystal structure of oxide film of NZ2, corroded by static autoclave test in 360°C lithiated water and 400°C steam, was analyzed by Raman spectroscopy. The results show that the oxide film of NZ2 consists mostly of m-ZrO2, including a certain quantity of distorted t-ZrO2 which is stabilized by the compressive stress. With the prolongation of corrosion time, the metal/oxide interface is moving forward. When the compressive stress in the oxide formed previously is not enough to stabilize t-ZrO2, t-ZrO2 will transform to m-ZrO2, and the average content of t-ZrO2 in oxide film decreases. From oxide/metal interface to the surface of oxide film, the content of t-ZrO2 reduces gradually. When NZ2 is corroded in 360°C lithiated water, the transformation rate from t-ZrO2 to m-ZrO2 in oxide film is much lower than that in 400°C steam. The transformation from t-ZrO2 to m-ZrO2 decides the corrosion resistance of NZ2. The higher the transformation rate is, the lower t-ZrO2 content in oxide film is, and the higher corrosion rate of NZ2.
KW - Corrosion resistance
KW - Crystal structure
KW - Materials failure and protection
KW - Oxide film
KW - Raman spectroscopy
UR - http://www.scopus.com/inward/record.url?scp=47049094446&partnerID=8YFLogxK
M3 - 文章
AN - SCOPUS:47049094446
SN - 1005-3093
VL - 22
SP - 327
EP - 332
JO - Cailiao Yanjiu Xuebao/Chinese Journal of Materials Research
JF - Cailiao Yanjiu Xuebao/Chinese Journal of Materials Research
IS - 3
ER -