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Oxidation Behavior of Super304H Stainless Steel in Supercritical Water at 605 and 640 oC |
CHEN Hui1, XU Fubin2, FANG Yaxiong1, ZHU Zhongliang3( ) |
1 National Energy Group Science and Technology Research Institute Co., Ltd., Nanjing 210046, China 2 State Energy Group Taizhou Power Generation Co., Ltd., Taizhou 225300, China 3 Key Laboratory of Power Station Energy Transfer, Conversion and System, Ministry of Education, North China Electric Power University, Beijing 102206, China |
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Cite this article:
CHEN Hui, XU Fubin, FANG Yaxiong, ZHU Zhongliang. Oxidation Behavior of Super304H Stainless Steel in Supercritical Water at 605 and 640 oC. Journal of Chinese Society for Corrosion and protection, 2025, 45(1): 209-216.
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Abstract The oxidation behavior of Super304H austenitic stainless steel in 605 and 640 oC, 26 MPa supercritical water for 2000 h was studied by intermittent weighing method. The mass change caused by oxidation in supercritical water was measured by electronic balance. The morphology, elemental composition and phase types of the oxide scales were examined by field emission electron microscope, energy spectrometer, X-ray diffractometer and X-ray photoelectron spectrometer. The results show that the oxide scale spalling occurs during the oxidation process. Nodular iron-rich oxides formed on the steel surface at the initial oxidation stage. With the increase in oxidation time, the iron-rich oxides gradually covered the whole surface of the test steel. The oxide scale was composed of a double layered structure, the outer layer rich in Fe and the inner layer rich in Cr. The temperature and oxidation time affect the phase composition of iron-rich oxides. A thin Cr-rich oxide layer can be observed at the oxide scale/substrate interface, which has an important impact on the oxidation resistance of Super304H. The results provide data support for the accurate evaluation of the oxidation resistance of Super304H stainless steel to supercritical water.
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Received: 26 July 2024
32134.14.1005.4537.2024.225
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Fund: National Key Research and Development Program of China(2022YFB4100403) |
Corresponding Authors:
ZHU Zhongliang, E-mail: zhzl@ncepu.edu.cn
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