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The oxidation kinetics of forged 12Cr-MoVW steel was investigated in an air (N2+O2) atmosphere at 873-1073 K (Δ50 K) using thermogravimetric analysis. The oxidized samples were characterized using X-ray diffraction, and the surface and cross-sectional morphologies were examined using scanning electron microscopy coupled with energy-dispersive X-ray spectroscopy. The forged 12Cr-MoVW steel samples exhibited parabolic behavior and a low oxidation rate compared with their as-cast counterparts. A protective oxide layer was uniformly formed at relatively low temperature (≤973 K) for the forged samples, which thus exhibited better oxidation resistance than the as-cast ones. These oxides are considered solid-solution compounds such as (Fe, Cr)2O3.
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Rocznik
Tom
Strony
1099--1104
Opis fizyczny
Bibliogr. 18 poz., rys., tab.
Twórcy
autor
- Department of Materials Science and Engineering, Pusan National University, Busan, Korea (Republic of)
autor
- Material Analysis Laboratory, Dea-IL Corporation, Ulsan, Korea (Republic of)
autor
- Department of Materials Science and Engineering, Pusan National University, Busan, Korea (Republic of)
autor
- Korea Institute of Industrial Technology, Busan, Korea (Republic of)
autor
- Department of Materials Science and Engineering, Pusan National University, Busan, Korea (Republic of)
- Social Enterprise, Pusan National University, Busan, Korea
Bibliografia
- [1] R. Viswan athan, J. Nutting, Advanced Heat Resistant Steels for Power Generation, New York, 1999
- [2] L. Jong-P il, H. Ji-Hyun, P. Dong-Kyu, A. In-Shup, J. Korean Powder Metall. Inst. 22, 52-59 (2015).
- [3] R. Viswan athan, W. Bakker, J. Mater. Eng. Perform. 10, 81-95 (2001).
- [4] R. Viswan athan, J.F. Henry, J. Tanzosh, G. Stanko, J. Shingledecker, B. Vitalis, R. Purgert, J. Mater. Eng. Perform. 14, 281-292 (2005).
- [5] M. Fujimi tsu, ISIJ INT 41, 612-625 (2001).
- [6] T. Sourma il, Mater. Sci. Tech. Lond. 17, 1-14 (2001).
- [7] T. Fujita , ISIJ INT 32, 175-181 (1992).
- [8] T. Maki, K. Akasaka, K. Okuno, I. Tamura, ISIJ INT 22, 253-261 (1982).
- [9] A. Dehgha n-Manshadi, P.D. Hodgson, J. Mater. Sci. 43, 6272-6277 (2008).
- [10] W. Jei-P il, L. Dong-Won, Y. Jung-Yeul, S. Shun-Myung, K. In--Soo, J. Korean Powder Metall. Inst. 20, 174-179 (2013).
- [11] A.A. Tch izhik, T.A. Tchizhik, J. Mater. Process Tech. 77, 226-232 (1998).
- [12] J. Ha, M . Tabuchi, H. Hongo, A. Toshimitsu Yokobori Jr, A. Fuji, Int. J. Pres. Ves. Pip. 81, 401-407 (2004).
- [13] J. Das, S.M. Sivakumar, Eng. Fail Anal. 7, 347-358 (2000).
- [14] B. Piera ggi, Oxid. Met. 27, 177-185 (1987).
- [15] M. Levy, P. Farrell, F. Pettit, Corrosion 42, 708-717 (1986).
- [16] J.R. Dav is, ASM specialty handbook;heat-resistant materials, Cleveland, 1997.
- [17] M.J. Gra ham, Corros. Sci. 37, 1377-1397 (1995).
- [18] M.J. Gra ham, R.J. Hussey, Oxid. Met. 44, 339-374 (1995).
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017)
Typ dokumentu
Bibliografia
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