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3种不同Cr含量Co-20Re-Cr合金在1000和1100 ℃的高温氧化行为 |
王玲1,向军淮1,2( ),张洪华1,2,覃宋林1 |
1. 江西科技师范大学材料与机电学院 南昌 330013 2. 江西科技师范大学 江西省材料表面工程重点实验室 南昌 330013 |
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High Temperature Oxidation Behavior of Three Co-20Re-xCr Alloys in 3.04×10-5 Pa Oxygen at 1000 and 1100 ℃ |
Ling WANG1,Junhuai XIANG1,2( ),Honghua ZHANG1,2,Songlin QIN1 |
1. School of Materials and Mechanical & Electrical Engineering, Jiangxi Science and Technology Normal University, Nanchang 330013, China 2. Jiangxi Key Laboratory of Surface Engineering, Jiangxi Science and Technology Normal University, Nanchang 330013, China |
引用本文:
王玲,向军淮,张洪华,覃宋林. 3种不同Cr含量Co-20Re-Cr合金在1000和1100 ℃的高温氧化行为[J]. 中国腐蚀与防护学报, 2019, 39(1): 83-88.
Ling WANG,
Junhuai XIANG,
Honghua ZHANG,
Songlin QIN.
High Temperature Oxidation Behavior of Three Co-20Re-xCr Alloys in 3.04×10-5 Pa Oxygen at 1000 and 1100 ℃. Journal of Chinese Society for Corrosion and protection, 2019, 39(1): 83-88.
链接本文:
https://www.jcscp.org/CN/10.11902/1005.4537.2018.075
或
https://www.jcscp.org/CN/Y2019/V39/I1/83
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[1] | Zhang Z G, Gesmundo F, Hou P Y, et al. Criteria for the formation of protective Al2O3 scales on Fe-Al and Fe-Cr-Al alloys [J]. Corros. Sci., 2006, 48: 741 | [2] | Mikkelsen L, Larsen P H, Linderoth S. High temperature oxidation of Fe22Cr-alloy [J]. J. Therm. Anal. Calorim., 2001, 64: 879 | [3] | Xiao B, Xiang J H, Zhang H H. Cyclic and static oxidation behavior of Fe-Cu-Ni-Al alloy at 900 ℃ [J].J.Chin. Soc. Corros. Prot., 2017, 37: 69 | [3] | 肖斌, 向军淮, 张洪华. 四元Fe-Cu-Ni-Al合金900 ℃下的恒温及循环氧化行为 [J]. 中国腐蚀与防护学报, 2017, 37: 69 | [4] | Ding Q Q, Yu Q, Li J X, et al. Research progresses of rhenium effect in nickel based superalloys [J]. Mater. Rev., 2018, 32: 110 | [4] | 丁青青, 余倩, 李吉学等. 铼在镍基高温合金中作用机理的研究现状 [J]. 材料导报, 2018, 32: 110 | [5] | Perepezko J H. The hotter the engine, the better [J]. Science, 2009, 326: 1068 | [6] | Sato J, Omori T, Oikawa K, et al. Cobalt-base high-temperature alloys [J]. Science, 2006, 312: 90 | [7] | R?sler J, Mukherji D, Baranski T. Co-Re-based alloys: A new class of high temperature materials? [J]. Adv. Eng. Mater., 2010, 9: 876 | [8] | Gorr B, Christ H J, Mukherji D, et al. Thermodynamic calculations in the development of high-temperature Co-Re-based alloys [J]. J. Alloy. Compd., 2014, 582: 50 | [9] | Gorr B, Wang L, Burk S, et al. High-temperature oxidation behavior of Mo-Si-B-based and Co-Re-Cr-based alloys [J]. Intermetallics, 2014, 48: 34 | [10] | Niu Y, Cao Z Q, Gesmundo F, et al. Grain size effects on the oxidation of two ternary Cu-Ni-20wt.% Cr alloys at 700-800 ℃ in 1 atm O2 [J]. Corros. Sci., 2003, 45: 1125 | [11] | Xiang J H, Niu Y, Gesmundo F. The oxidation of two ternary Fe-Cu-10 at.% Al alloys in 1 atm of pure O2 at 800-900 ℃ [J]. Corros. Sci., 2005, 47: 1493 | [12] | Wang L, Gorr B, Christ H J, et al. Microstructure and oxidation mechanism evolution of Co-17Re-25Cr-2Si in the temperature range 800-1,100 ℃ [J]. Oxid. Met., 2015, 83: 465 | [13] | Li T F. High Temperature Oxidation and Hot Corrosion of Metals [M]. Beijing: Chemical Industry Press, 2003 | [13] | 李铁藩. 金属高温氧化和热腐蚀 [M]. 北京: 化学工业出版社, 2003 | [14] | Gorr B, Trindade V, Burk S, et al. Oxidation behaviour of model cobalt-rhenium alloys during short-term exposure to laboratory air at elevated temperature [J]. Oxid. Met., 2009, 71: 157 | [15] | Gorr B, Burk S, Trindade V B, et al. The effect of pre-oxidation treatment on the high-temperature oxidation of Co-Re-Cr model alloys at laboratory air [J]. Oxid. Met., 2010, 74: 239 |
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